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1 /* tc-arm.c -- Assemble for the ARM
2 Copyright 1994-2013 Free Software Foundation, Inc.
3 Contributed by Richard Earnshaw (rwe@pegasus.esprit.ec.org)
4 Modified by David Taylor (dtaylor@armltd.co.uk)
5 Cirrus coprocessor mods by Aldy Hernandez (aldyh@redhat.com)
6 Cirrus coprocessor fixes by Petko Manolov (petkan@nucleusys.com)
7 Cirrus coprocessor fixes by Vladimir Ivanov (vladitx@nucleusys.com)
8
9 This file is part of GAS, the GNU Assembler.
10
11 GAS is free software; you can redistribute it and/or modify
12 it under the terms of the GNU General Public License as published by
13 the Free Software Foundation; either version 3, or (at your option)
14 any later version.
15
16 GAS is distributed in the hope that it will be useful,
17 but WITHOUT ANY WARRANTY; without even the implied warranty of
18 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 GNU General Public License for more details.
20
21 You should have received a copy of the GNU General Public License
22 along with GAS; see the file COPYING. If not, write to the Free
23 Software Foundation, 51 Franklin Street - Fifth Floor, Boston, MA
24 02110-1301, USA. */
25
26 #include "as.h"
27 #include <limits.h>
28 #include <stdarg.h>
29 #define NO_RELOC 0
30 #include "safe-ctype.h"
31 #include "subsegs.h"
32 #include "obstack.h"
33 #include "libiberty.h"
34 #include "opcode/arm.h"
35
36 #ifdef OBJ_ELF
37 #include "elf/arm.h"
38 #include "dw2gencfi.h"
39 #endif
40
41 #include "dwarf2dbg.h"
42
43 #ifdef OBJ_ELF
44 /* Must be at least the size of the largest unwind opcode (currently two). */
45 #define ARM_OPCODE_CHUNK_SIZE 8
46
47 /* This structure holds the unwinding state. */
48
49 static struct
50 {
51 symbolS * proc_start;
52 symbolS * table_entry;
53 symbolS * personality_routine;
54 int personality_index;
55 /* The segment containing the function. */
56 segT saved_seg;
57 subsegT saved_subseg;
58 /* Opcodes generated from this function. */
59 unsigned char * opcodes;
60 int opcode_count;
61 int opcode_alloc;
62 /* The number of bytes pushed to the stack. */
63 offsetT frame_size;
64 /* We don't add stack adjustment opcodes immediately so that we can merge
65 multiple adjustments. We can also omit the final adjustment
66 when using a frame pointer. */
67 offsetT pending_offset;
68 /* These two fields are set by both unwind_movsp and unwind_setfp. They
69 hold the reg+offset to use when restoring sp from a frame pointer. */
70 offsetT fp_offset;
71 int fp_reg;
72 /* Nonzero if an unwind_setfp directive has been seen. */
73 unsigned fp_used:1;
74 /* Nonzero if the last opcode restores sp from fp_reg. */
75 unsigned sp_restored:1;
76 } unwind;
77
78 #endif /* OBJ_ELF */
79
80 /* Results from operand parsing worker functions. */
81
82 typedef enum
83 {
84 PARSE_OPERAND_SUCCESS,
85 PARSE_OPERAND_FAIL,
86 PARSE_OPERAND_FAIL_NO_BACKTRACK
87 } parse_operand_result;
88
89 enum arm_float_abi
90 {
91 ARM_FLOAT_ABI_HARD,
92 ARM_FLOAT_ABI_SOFTFP,
93 ARM_FLOAT_ABI_SOFT
94 };
95
96 /* Types of processor to assemble for. */
97 #ifndef CPU_DEFAULT
98 /* The code that was here used to select a default CPU depending on compiler
99 pre-defines which were only present when doing native builds, thus
100 changing gas' default behaviour depending upon the build host.
101
102 If you have a target that requires a default CPU option then the you
103 should define CPU_DEFAULT here. */
104 #endif
105
106 #ifndef FPU_DEFAULT
107 # ifdef TE_LINUX
108 # define FPU_DEFAULT FPU_ARCH_FPA
109 # elif defined (TE_NetBSD)
110 # ifdef OBJ_ELF
111 # define FPU_DEFAULT FPU_ARCH_VFP /* Soft-float, but VFP order. */
112 # else
113 /* Legacy a.out format. */
114 # define FPU_DEFAULT FPU_ARCH_FPA /* Soft-float, but FPA order. */
115 # endif
116 # elif defined (TE_VXWORKS)
117 # define FPU_DEFAULT FPU_ARCH_VFP /* Soft-float, VFP order. */
118 # else
119 /* For backwards compatibility, default to FPA. */
120 # define FPU_DEFAULT FPU_ARCH_FPA
121 # endif
122 #endif /* ifndef FPU_DEFAULT */
123
124 #define streq(a, b) (strcmp (a, b) == 0)
125
126 static arm_feature_set cpu_variant;
127 static arm_feature_set arm_arch_used;
128 static arm_feature_set thumb_arch_used;
129
130 /* Flags stored in private area of BFD structure. */
131 static int uses_apcs_26 = FALSE;
132 static int atpcs = FALSE;
133 static int support_interwork = FALSE;
134 static int uses_apcs_float = FALSE;
135 static int pic_code = FALSE;
136 static int fix_v4bx = FALSE;
137 /* Warn on using deprecated features. */
138 static int warn_on_deprecated = TRUE;
139
140
141 /* Variables that we set while parsing command-line options. Once all
142 options have been read we re-process these values to set the real
143 assembly flags. */
144 static const arm_feature_set *legacy_cpu = NULL;
145 static const arm_feature_set *legacy_fpu = NULL;
146
147 static const arm_feature_set *mcpu_cpu_opt = NULL;
148 static const arm_feature_set *mcpu_fpu_opt = NULL;
149 static const arm_feature_set *march_cpu_opt = NULL;
150 static const arm_feature_set *march_fpu_opt = NULL;
151 static const arm_feature_set *mfpu_opt = NULL;
152 static const arm_feature_set *object_arch = NULL;
153
154 /* Constants for known architecture features. */
155 static const arm_feature_set fpu_default = FPU_DEFAULT;
156 static const arm_feature_set fpu_arch_vfp_v1 = FPU_ARCH_VFP_V1;
157 static const arm_feature_set fpu_arch_vfp_v2 = FPU_ARCH_VFP_V2;
158 static const arm_feature_set fpu_arch_vfp_v3 = FPU_ARCH_VFP_V3;
159 static const arm_feature_set fpu_arch_neon_v1 = FPU_ARCH_NEON_V1;
160 static const arm_feature_set fpu_arch_fpa = FPU_ARCH_FPA;
161 static const arm_feature_set fpu_any_hard = FPU_ANY_HARD;
162 static const arm_feature_set fpu_arch_maverick = FPU_ARCH_MAVERICK;
163 static const arm_feature_set fpu_endian_pure = FPU_ARCH_ENDIAN_PURE;
164
165 #ifdef CPU_DEFAULT
166 static const arm_feature_set cpu_default = CPU_DEFAULT;
167 #endif
168
169 static const arm_feature_set arm_ext_v1 = ARM_FEATURE (ARM_EXT_V1, 0);
170 static const arm_feature_set arm_ext_v2 = ARM_FEATURE (ARM_EXT_V1, 0);
171 static const arm_feature_set arm_ext_v2s = ARM_FEATURE (ARM_EXT_V2S, 0);
172 static const arm_feature_set arm_ext_v3 = ARM_FEATURE (ARM_EXT_V3, 0);
173 static const arm_feature_set arm_ext_v3m = ARM_FEATURE (ARM_EXT_V3M, 0);
174 static const arm_feature_set arm_ext_v4 = ARM_FEATURE (ARM_EXT_V4, 0);
175 static const arm_feature_set arm_ext_v4t = ARM_FEATURE (ARM_EXT_V4T, 0);
176 static const arm_feature_set arm_ext_v5 = ARM_FEATURE (ARM_EXT_V5, 0);
177 static const arm_feature_set arm_ext_v4t_5 =
178 ARM_FEATURE (ARM_EXT_V4T | ARM_EXT_V5, 0);
179 static const arm_feature_set arm_ext_v5t = ARM_FEATURE (ARM_EXT_V5T, 0);
180 static const arm_feature_set arm_ext_v5e = ARM_FEATURE (ARM_EXT_V5E, 0);
181 static const arm_feature_set arm_ext_v5exp = ARM_FEATURE (ARM_EXT_V5ExP, 0);
182 static const arm_feature_set arm_ext_v5j = ARM_FEATURE (ARM_EXT_V5J, 0);
183 static const arm_feature_set arm_ext_v6 = ARM_FEATURE (ARM_EXT_V6, 0);
184 static const arm_feature_set arm_ext_v6k = ARM_FEATURE (ARM_EXT_V6K, 0);
185 static const arm_feature_set arm_ext_v6t2 = ARM_FEATURE (ARM_EXT_V6T2, 0);
186 static const arm_feature_set arm_ext_v6m = ARM_FEATURE (ARM_EXT_V6M, 0);
187 static const arm_feature_set arm_ext_v6_notm = ARM_FEATURE (ARM_EXT_V6_NOTM, 0);
188 static const arm_feature_set arm_ext_v6_dsp = ARM_FEATURE (ARM_EXT_V6_DSP, 0);
189 static const arm_feature_set arm_ext_barrier = ARM_FEATURE (ARM_EXT_BARRIER, 0);
190 static const arm_feature_set arm_ext_msr = ARM_FEATURE (ARM_EXT_THUMB_MSR, 0);
191 static const arm_feature_set arm_ext_div = ARM_FEATURE (ARM_EXT_DIV, 0);
192 static const arm_feature_set arm_ext_v7 = ARM_FEATURE (ARM_EXT_V7, 0);
193 static const arm_feature_set arm_ext_v7a = ARM_FEATURE (ARM_EXT_V7A, 0);
194 static const arm_feature_set arm_ext_v7r = ARM_FEATURE (ARM_EXT_V7R, 0);
195 static const arm_feature_set arm_ext_v7m = ARM_FEATURE (ARM_EXT_V7M, 0);
196 static const arm_feature_set arm_ext_v8 = ARM_FEATURE (ARM_EXT_V8, 0);
197 static const arm_feature_set arm_ext_m =
198 ARM_FEATURE (ARM_EXT_V6M | ARM_EXT_OS | ARM_EXT_V7M, 0);
199 static const arm_feature_set arm_ext_mp = ARM_FEATURE (ARM_EXT_MP, 0);
200 static const arm_feature_set arm_ext_sec = ARM_FEATURE (ARM_EXT_SEC, 0);
201 static const arm_feature_set arm_ext_os = ARM_FEATURE (ARM_EXT_OS, 0);
202 static const arm_feature_set arm_ext_adiv = ARM_FEATURE (ARM_EXT_ADIV, 0);
203 static const arm_feature_set arm_ext_virt = ARM_FEATURE (ARM_EXT_VIRT, 0);
204
205 static const arm_feature_set arm_arch_any = ARM_ANY;
206 static const arm_feature_set arm_arch_full = ARM_FEATURE (-1, -1);
207 static const arm_feature_set arm_arch_t2 = ARM_ARCH_THUMB2;
208 static const arm_feature_set arm_arch_none = ARM_ARCH_NONE;
209 static const arm_feature_set arm_arch_v6m_only = ARM_ARCH_V6M_ONLY;
210
211 static const arm_feature_set arm_cext_iwmmxt2 =
212 ARM_FEATURE (0, ARM_CEXT_IWMMXT2);
213 static const arm_feature_set arm_cext_iwmmxt =
214 ARM_FEATURE (0, ARM_CEXT_IWMMXT);
215 static const arm_feature_set arm_cext_xscale =
216 ARM_FEATURE (0, ARM_CEXT_XSCALE);
217 static const arm_feature_set arm_cext_maverick =
218 ARM_FEATURE (0, ARM_CEXT_MAVERICK);
219 static const arm_feature_set fpu_fpa_ext_v1 = ARM_FEATURE (0, FPU_FPA_EXT_V1);
220 static const arm_feature_set fpu_fpa_ext_v2 = ARM_FEATURE (0, FPU_FPA_EXT_V2);
221 static const arm_feature_set fpu_vfp_ext_v1xd =
222 ARM_FEATURE (0, FPU_VFP_EXT_V1xD);
223 static const arm_feature_set fpu_vfp_ext_v1 = ARM_FEATURE (0, FPU_VFP_EXT_V1);
224 static const arm_feature_set fpu_vfp_ext_v2 = ARM_FEATURE (0, FPU_VFP_EXT_V2);
225 static const arm_feature_set fpu_vfp_ext_v3xd = ARM_FEATURE (0, FPU_VFP_EXT_V3xD);
226 static const arm_feature_set fpu_vfp_ext_v3 = ARM_FEATURE (0, FPU_VFP_EXT_V3);
227 static const arm_feature_set fpu_vfp_ext_d32 =
228 ARM_FEATURE (0, FPU_VFP_EXT_D32);
229 static const arm_feature_set fpu_neon_ext_v1 = ARM_FEATURE (0, FPU_NEON_EXT_V1);
230 static const arm_feature_set fpu_vfp_v3_or_neon_ext =
231 ARM_FEATURE (0, FPU_NEON_EXT_V1 | FPU_VFP_EXT_V3);
232 static const arm_feature_set fpu_vfp_fp16 = ARM_FEATURE (0, FPU_VFP_EXT_FP16);
233 static const arm_feature_set fpu_neon_ext_fma = ARM_FEATURE (0, FPU_NEON_EXT_FMA);
234 static const arm_feature_set fpu_vfp_ext_fma = ARM_FEATURE (0, FPU_VFP_EXT_FMA);
235 static const arm_feature_set fpu_vfp_ext_armv8 =
236 ARM_FEATURE (0, FPU_VFP_EXT_ARMV8);
237 static const arm_feature_set fpu_neon_ext_armv8 =
238 ARM_FEATURE (0, FPU_NEON_EXT_ARMV8);
239 static const arm_feature_set fpu_crypto_ext_armv8 =
240 ARM_FEATURE (0, FPU_CRYPTO_EXT_ARMV8);
241 static const arm_feature_set crc_ext_armv8 =
242 ARM_FEATURE (0, CRC_EXT_ARMV8);
243
244 static int mfloat_abi_opt = -1;
245 /* Record user cpu selection for object attributes. */
246 static arm_feature_set selected_cpu = ARM_ARCH_NONE;
247 /* Must be long enough to hold any of the names in arm_cpus. */
248 static char selected_cpu_name[16];
249
250 /* Return if no cpu was selected on command-line. */
251 static bfd_boolean
252 no_cpu_selected (void)
253 {
254 return selected_cpu.core == arm_arch_none.core
255 && selected_cpu.coproc == arm_arch_none.coproc;
256 }
257
258 #ifdef OBJ_ELF
259 # ifdef EABI_DEFAULT
260 static int meabi_flags = EABI_DEFAULT;
261 # else
262 static int meabi_flags = EF_ARM_EABI_UNKNOWN;
263 # endif
264
265 static int attributes_set_explicitly[NUM_KNOWN_OBJ_ATTRIBUTES];
266
267 bfd_boolean
268 arm_is_eabi (void)
269 {
270 return (EF_ARM_EABI_VERSION (meabi_flags) >= EF_ARM_EABI_VER4);
271 }
272 #endif
273
274 #ifdef OBJ_ELF
275 /* Pre-defined "_GLOBAL_OFFSET_TABLE_" */
276 symbolS * GOT_symbol;
277 #endif
278
279 /* 0: assemble for ARM,
280 1: assemble for Thumb,
281 2: assemble for Thumb even though target CPU does not support thumb
282 instructions. */
283 static int thumb_mode = 0;
284 /* A value distinct from the possible values for thumb_mode that we
285 can use to record whether thumb_mode has been copied into the
286 tc_frag_data field of a frag. */
287 #define MODE_RECORDED (1 << 4)
288
289 /* Specifies the intrinsic IT insn behavior mode. */
290 enum implicit_it_mode
291 {
292 IMPLICIT_IT_MODE_NEVER = 0x00,
293 IMPLICIT_IT_MODE_ARM = 0x01,
294 IMPLICIT_IT_MODE_THUMB = 0x02,
295 IMPLICIT_IT_MODE_ALWAYS = (IMPLICIT_IT_MODE_ARM | IMPLICIT_IT_MODE_THUMB)
296 };
297 static int implicit_it_mode = IMPLICIT_IT_MODE_ARM;
298
299 /* If unified_syntax is true, we are processing the new unified
300 ARM/Thumb syntax. Important differences from the old ARM mode:
301
302 - Immediate operands do not require a # prefix.
303 - Conditional affixes always appear at the end of the
304 instruction. (For backward compatibility, those instructions
305 that formerly had them in the middle, continue to accept them
306 there.)
307 - The IT instruction may appear, and if it does is validated
308 against subsequent conditional affixes. It does not generate
309 machine code.
310
311 Important differences from the old Thumb mode:
312
313 - Immediate operands do not require a # prefix.
314 - Most of the V6T2 instructions are only available in unified mode.
315 - The .N and .W suffixes are recognized and honored (it is an error
316 if they cannot be honored).
317 - All instructions set the flags if and only if they have an 's' affix.
318 - Conditional affixes may be used. They are validated against
319 preceding IT instructions. Unlike ARM mode, you cannot use a
320 conditional affix except in the scope of an IT instruction. */
321
322 static bfd_boolean unified_syntax = FALSE;
323
324 /* An immediate operand can start with #, and ld*, st*, pld operands
325 can contain [ and ]. We need to tell APP not to elide whitespace
326 before a [, which can appear as the first operand for pld.
327 Likewise, a { can appear as the first operand for push, pop, vld*, etc. */
328 const char arm_symbol_chars[] = "#[]{}";
329
330 enum neon_el_type
331 {
332 NT_invtype,
333 NT_untyped,
334 NT_integer,
335 NT_float,
336 NT_poly,
337 NT_signed,
338 NT_unsigned
339 };
340
341 struct neon_type_el
342 {
343 enum neon_el_type type;
344 unsigned size;
345 };
346
347 #define NEON_MAX_TYPE_ELS 4
348
349 struct neon_type
350 {
351 struct neon_type_el el[NEON_MAX_TYPE_ELS];
352 unsigned elems;
353 };
354
355 enum it_instruction_type
356 {
357 OUTSIDE_IT_INSN,
358 INSIDE_IT_INSN,
359 INSIDE_IT_LAST_INSN,
360 IF_INSIDE_IT_LAST_INSN, /* Either outside or inside;
361 if inside, should be the last one. */
362 NEUTRAL_IT_INSN, /* This could be either inside or outside,
363 i.e. BKPT and NOP. */
364 IT_INSN /* The IT insn has been parsed. */
365 };
366
367 /* The maximum number of operands we need. */
368 #define ARM_IT_MAX_OPERANDS 6
369
370 struct arm_it
371 {
372 const char * error;
373 unsigned long instruction;
374 int size;
375 int size_req;
376 int cond;
377 /* "uncond_value" is set to the value in place of the conditional field in
378 unconditional versions of the instruction, or -1 if nothing is
379 appropriate. */
380 int uncond_value;
381 struct neon_type vectype;
382 /* This does not indicate an actual NEON instruction, only that
383 the mnemonic accepts neon-style type suffixes. */
384 int is_neon;
385 /* Set to the opcode if the instruction needs relaxation.
386 Zero if the instruction is not relaxed. */
387 unsigned long relax;
388 struct
389 {
390 bfd_reloc_code_real_type type;
391 expressionS exp;
392 int pc_rel;
393 } reloc;
394
395 enum it_instruction_type it_insn_type;
396
397 struct
398 {
399 unsigned reg;
400 signed int imm;
401 struct neon_type_el vectype;
402 unsigned present : 1; /* Operand present. */
403 unsigned isreg : 1; /* Operand was a register. */
404 unsigned immisreg : 1; /* .imm field is a second register. */
405 unsigned isscalar : 1; /* Operand is a (Neon) scalar. */
406 unsigned immisalign : 1; /* Immediate is an alignment specifier. */
407 unsigned immisfloat : 1; /* Immediate was parsed as a float. */
408 /* Note: we abuse "regisimm" to mean "is Neon register" in VMOV
409 instructions. This allows us to disambiguate ARM <-> vector insns. */
410 unsigned regisimm : 1; /* 64-bit immediate, reg forms high 32 bits. */
411 unsigned isvec : 1; /* Is a single, double or quad VFP/Neon reg. */
412 unsigned isquad : 1; /* Operand is Neon quad-precision register. */
413 unsigned issingle : 1; /* Operand is VFP single-precision register. */
414 unsigned hasreloc : 1; /* Operand has relocation suffix. */
415 unsigned writeback : 1; /* Operand has trailing ! */
416 unsigned preind : 1; /* Preindexed address. */
417 unsigned postind : 1; /* Postindexed address. */
418 unsigned negative : 1; /* Index register was negated. */
419 unsigned shifted : 1; /* Shift applied to operation. */
420 unsigned shift_kind : 3; /* Shift operation (enum shift_kind). */
421 } operands[ARM_IT_MAX_OPERANDS];
422 };
423
424 static struct arm_it inst;
425
426 #define NUM_FLOAT_VALS 8
427
428 const char * fp_const[] =
429 {
430 "0.0", "1.0", "2.0", "3.0", "4.0", "5.0", "0.5", "10.0", 0
431 };
432
433 /* Number of littlenums required to hold an extended precision number. */
434 #define MAX_LITTLENUMS 6
435
436 LITTLENUM_TYPE fp_values[NUM_FLOAT_VALS][MAX_LITTLENUMS];
437
438 #define FAIL (-1)
439 #define SUCCESS (0)
440
441 #define SUFF_S 1
442 #define SUFF_D 2
443 #define SUFF_E 3
444 #define SUFF_P 4
445
446 #define CP_T_X 0x00008000
447 #define CP_T_Y 0x00400000
448
449 #define CONDS_BIT 0x00100000
450 #define LOAD_BIT 0x00100000
451
452 #define DOUBLE_LOAD_FLAG 0x00000001
453
454 struct asm_cond
455 {
456 const char * template_name;
457 unsigned long value;
458 };
459
460 #define COND_ALWAYS 0xE
461
462 struct asm_psr
463 {
464 const char * template_name;
465 unsigned long field;
466 };
467
468 struct asm_barrier_opt
469 {
470 const char * template_name;
471 unsigned long value;
472 const arm_feature_set arch;
473 };
474
475 /* The bit that distinguishes CPSR and SPSR. */
476 #define SPSR_BIT (1 << 22)
477
478 /* The individual PSR flag bits. */
479 #define PSR_c (1 << 16)
480 #define PSR_x (1 << 17)
481 #define PSR_s (1 << 18)
482 #define PSR_f (1 << 19)
483
484 struct reloc_entry
485 {
486 char * name;
487 bfd_reloc_code_real_type reloc;
488 };
489
490 enum vfp_reg_pos
491 {
492 VFP_REG_Sd, VFP_REG_Sm, VFP_REG_Sn,
493 VFP_REG_Dd, VFP_REG_Dm, VFP_REG_Dn
494 };
495
496 enum vfp_ldstm_type
497 {
498 VFP_LDSTMIA, VFP_LDSTMDB, VFP_LDSTMIAX, VFP_LDSTMDBX
499 };
500
501 /* Bits for DEFINED field in neon_typed_alias. */
502 #define NTA_HASTYPE 1
503 #define NTA_HASINDEX 2
504
505 struct neon_typed_alias
506 {
507 unsigned char defined;
508 unsigned char index;
509 struct neon_type_el eltype;
510 };
511
512 /* ARM register categories. This includes coprocessor numbers and various
513 architecture extensions' registers. */
514 enum arm_reg_type
515 {
516 REG_TYPE_RN,
517 REG_TYPE_CP,
518 REG_TYPE_CN,
519 REG_TYPE_FN,
520 REG_TYPE_VFS,
521 REG_TYPE_VFD,
522 REG_TYPE_NQ,
523 REG_TYPE_VFSD,
524 REG_TYPE_NDQ,
525 REG_TYPE_NSDQ,
526 REG_TYPE_VFC,
527 REG_TYPE_MVF,
528 REG_TYPE_MVD,
529 REG_TYPE_MVFX,
530 REG_TYPE_MVDX,
531 REG_TYPE_MVAX,
532 REG_TYPE_DSPSC,
533 REG_TYPE_MMXWR,
534 REG_TYPE_MMXWC,
535 REG_TYPE_MMXWCG,
536 REG_TYPE_XSCALE,
537 REG_TYPE_RNB
538 };
539
540 /* Structure for a hash table entry for a register.
541 If TYPE is REG_TYPE_VFD or REG_TYPE_NQ, the NEON field can point to extra
542 information which states whether a vector type or index is specified (for a
543 register alias created with .dn or .qn). Otherwise NEON should be NULL. */
544 struct reg_entry
545 {
546 const char * name;
547 unsigned int number;
548 unsigned char type;
549 unsigned char builtin;
550 struct neon_typed_alias * neon;
551 };
552
553 /* Diagnostics used when we don't get a register of the expected type. */
554 const char * const reg_expected_msgs[] =
555 {
556 N_("ARM register expected"),
557 N_("bad or missing co-processor number"),
558 N_("co-processor register expected"),
559 N_("FPA register expected"),
560 N_("VFP single precision register expected"),
561 N_("VFP/Neon double precision register expected"),
562 N_("Neon quad precision register expected"),
563 N_("VFP single or double precision register expected"),
564 N_("Neon double or quad precision register expected"),
565 N_("VFP single, double or Neon quad precision register expected"),
566 N_("VFP system register expected"),
567 N_("Maverick MVF register expected"),
568 N_("Maverick MVD register expected"),
569 N_("Maverick MVFX register expected"),
570 N_("Maverick MVDX register expected"),
571 N_("Maverick MVAX register expected"),
572 N_("Maverick DSPSC register expected"),
573 N_("iWMMXt data register expected"),
574 N_("iWMMXt control register expected"),
575 N_("iWMMXt scalar register expected"),
576 N_("XScale accumulator register expected"),
577 };
578
579 /* Some well known registers that we refer to directly elsewhere. */
580 #define REG_R12 12
581 #define REG_SP 13
582 #define REG_LR 14
583 #define REG_PC 15
584
585 /* ARM instructions take 4bytes in the object file, Thumb instructions
586 take 2: */
587 #define INSN_SIZE 4
588
589 struct asm_opcode
590 {
591 /* Basic string to match. */
592 const char * template_name;
593
594 /* Parameters to instruction. */
595 unsigned int operands[8];
596
597 /* Conditional tag - see opcode_lookup. */
598 unsigned int tag : 4;
599
600 /* Basic instruction code. */
601 unsigned int avalue : 28;
602
603 /* Thumb-format instruction code. */
604 unsigned int tvalue;
605
606 /* Which architecture variant provides this instruction. */
607 const arm_feature_set * avariant;
608 const arm_feature_set * tvariant;
609
610 /* Function to call to encode instruction in ARM format. */
611 void (* aencode) (void);
612
613 /* Function to call to encode instruction in Thumb format. */
614 void (* tencode) (void);
615 };
616
617 /* Defines for various bits that we will want to toggle. */
618 #define INST_IMMEDIATE 0x02000000
619 #define OFFSET_REG 0x02000000
620 #define HWOFFSET_IMM 0x00400000
621 #define SHIFT_BY_REG 0x00000010
622 #define PRE_INDEX 0x01000000
623 #define INDEX_UP 0x00800000
624 #define WRITE_BACK 0x00200000
625 #define LDM_TYPE_2_OR_3 0x00400000
626 #define CPSI_MMOD 0x00020000
627
628 #define LITERAL_MASK 0xf000f000
629 #define OPCODE_MASK 0xfe1fffff
630 #define V4_STR_BIT 0x00000020
631
632 #define T2_SUBS_PC_LR 0xf3de8f00
633
634 #define DATA_OP_SHIFT 21
635
636 #define T2_OPCODE_MASK 0xfe1fffff
637 #define T2_DATA_OP_SHIFT 21
638
639 #define A_COND_MASK 0xf0000000
640 #define A_PUSH_POP_OP_MASK 0x0fff0000
641
642 /* Opcodes for pushing/poping registers to/from the stack. */
643 #define A1_OPCODE_PUSH 0x092d0000
644 #define A2_OPCODE_PUSH 0x052d0004
645 #define A2_OPCODE_POP 0x049d0004
646
647 /* Codes to distinguish the arithmetic instructions. */
648 #define OPCODE_AND 0
649 #define OPCODE_EOR 1
650 #define OPCODE_SUB 2
651 #define OPCODE_RSB 3
652 #define OPCODE_ADD 4
653 #define OPCODE_ADC 5
654 #define OPCODE_SBC 6
655 #define OPCODE_RSC 7
656 #define OPCODE_TST 8
657 #define OPCODE_TEQ 9
658 #define OPCODE_CMP 10
659 #define OPCODE_CMN 11
660 #define OPCODE_ORR 12
661 #define OPCODE_MOV 13
662 #define OPCODE_BIC 14
663 #define OPCODE_MVN 15
664
665 #define T2_OPCODE_AND 0
666 #define T2_OPCODE_BIC 1
667 #define T2_OPCODE_ORR 2
668 #define T2_OPCODE_ORN 3
669 #define T2_OPCODE_EOR 4
670 #define T2_OPCODE_ADD 8
671 #define T2_OPCODE_ADC 10
672 #define T2_OPCODE_SBC 11
673 #define T2_OPCODE_SUB 13
674 #define T2_OPCODE_RSB 14
675
676 #define T_OPCODE_MUL 0x4340
677 #define T_OPCODE_TST 0x4200
678 #define T_OPCODE_CMN 0x42c0
679 #define T_OPCODE_NEG 0x4240
680 #define T_OPCODE_MVN 0x43c0
681
682 #define T_OPCODE_ADD_R3 0x1800
683 #define T_OPCODE_SUB_R3 0x1a00
684 #define T_OPCODE_ADD_HI 0x4400
685 #define T_OPCODE_ADD_ST 0xb000
686 #define T_OPCODE_SUB_ST 0xb080
687 #define T_OPCODE_ADD_SP 0xa800
688 #define T_OPCODE_ADD_PC 0xa000
689 #define T_OPCODE_ADD_I8 0x3000
690 #define T_OPCODE_SUB_I8 0x3800
691 #define T_OPCODE_ADD_I3 0x1c00
692 #define T_OPCODE_SUB_I3 0x1e00
693
694 #define T_OPCODE_ASR_R 0x4100
695 #define T_OPCODE_LSL_R 0x4080
696 #define T_OPCODE_LSR_R 0x40c0
697 #define T_OPCODE_ROR_R 0x41c0
698 #define T_OPCODE_ASR_I 0x1000
699 #define T_OPCODE_LSL_I 0x0000
700 #define T_OPCODE_LSR_I 0x0800
701
702 #define T_OPCODE_MOV_I8 0x2000
703 #define T_OPCODE_CMP_I8 0x2800
704 #define T_OPCODE_CMP_LR 0x4280
705 #define T_OPCODE_MOV_HR 0x4600
706 #define T_OPCODE_CMP_HR 0x4500
707
708 #define T_OPCODE_LDR_PC 0x4800
709 #define T_OPCODE_LDR_SP 0x9800
710 #define T_OPCODE_STR_SP 0x9000
711 #define T_OPCODE_LDR_IW 0x6800
712 #define T_OPCODE_STR_IW 0x6000
713 #define T_OPCODE_LDR_IH 0x8800
714 #define T_OPCODE_STR_IH 0x8000
715 #define T_OPCODE_LDR_IB 0x7800
716 #define T_OPCODE_STR_IB 0x7000
717 #define T_OPCODE_LDR_RW 0x5800
718 #define T_OPCODE_STR_RW 0x5000
719 #define T_OPCODE_LDR_RH 0x5a00
720 #define T_OPCODE_STR_RH 0x5200
721 #define T_OPCODE_LDR_RB 0x5c00
722 #define T_OPCODE_STR_RB 0x5400
723
724 #define T_OPCODE_PUSH 0xb400
725 #define T_OPCODE_POP 0xbc00
726
727 #define T_OPCODE_BRANCH 0xe000
728
729 #define THUMB_SIZE 2 /* Size of thumb instruction. */
730 #define THUMB_PP_PC_LR 0x0100
731 #define THUMB_LOAD_BIT 0x0800
732 #define THUMB2_LOAD_BIT 0x00100000
733
734 #define BAD_ARGS _("bad arguments to instruction")
735 #define BAD_SP _("r13 not allowed here")
736 #define BAD_PC _("r15 not allowed here")
737 #define BAD_COND _("instruction cannot be conditional")
738 #define BAD_OVERLAP _("registers may not be the same")
739 #define BAD_HIREG _("lo register required")
740 #define BAD_THUMB32 _("instruction not supported in Thumb16 mode")
741 #define BAD_ADDR_MODE _("instruction does not accept this addressing mode");
742 #define BAD_BRANCH _("branch must be last instruction in IT block")
743 #define BAD_NOT_IT _("instruction not allowed in IT block")
744 #define BAD_FPU _("selected FPU does not support instruction")
745 #define BAD_OUT_IT _("thumb conditional instruction should be in IT block")
746 #define BAD_IT_COND _("incorrect condition in IT block")
747 #define BAD_IT_IT _("IT falling in the range of a previous IT block")
748 #define MISSING_FNSTART _("missing .fnstart before unwinding directive")
749 #define BAD_PC_ADDRESSING \
750 _("cannot use register index with PC-relative addressing")
751 #define BAD_PC_WRITEBACK \
752 _("cannot use writeback with PC-relative addressing")
753 #define BAD_RANGE _("branch out of range")
754 #define UNPRED_REG(R) _("using " R " results in unpredictable behaviour")
755
756 static struct hash_control * arm_ops_hsh;
757 static struct hash_control * arm_cond_hsh;
758 static struct hash_control * arm_shift_hsh;
759 static struct hash_control * arm_psr_hsh;
760 static struct hash_control * arm_v7m_psr_hsh;
761 static struct hash_control * arm_reg_hsh;
762 static struct hash_control * arm_reloc_hsh;
763 static struct hash_control * arm_barrier_opt_hsh;
764
765 /* Stuff needed to resolve the label ambiguity
766 As:
767 ...
768 label: <insn>
769 may differ from:
770 ...
771 label:
772 <insn> */
773
774 symbolS * last_label_seen;
775 static int label_is_thumb_function_name = FALSE;
776
777 /* Literal pool structure. Held on a per-section
778 and per-sub-section basis. */
779
780 #define MAX_LITERAL_POOL_SIZE 1024
781 typedef struct literal_pool
782 {
783 expressionS literals [MAX_LITERAL_POOL_SIZE];
784 unsigned int next_free_entry;
785 unsigned int id;
786 symbolS * symbol;
787 segT section;
788 subsegT sub_section;
789 #ifdef OBJ_ELF
790 struct dwarf2_line_info locs [MAX_LITERAL_POOL_SIZE];
791 #endif
792 struct literal_pool * next;
793 } literal_pool;
794
795 /* Pointer to a linked list of literal pools. */
796 literal_pool * list_of_pools = NULL;
797
798 #ifdef OBJ_ELF
799 # define now_it seg_info (now_seg)->tc_segment_info_data.current_it
800 #else
801 static struct current_it now_it;
802 #endif
803
804 static inline int
805 now_it_compatible (int cond)
806 {
807 return (cond & ~1) == (now_it.cc & ~1);
808 }
809
810 static inline int
811 conditional_insn (void)
812 {
813 return inst.cond != COND_ALWAYS;
814 }
815
816 static int in_it_block (void);
817
818 static int handle_it_state (void);
819
820 static void force_automatic_it_block_close (void);
821
822 static void it_fsm_post_encode (void);
823
824 #define set_it_insn_type(type) \
825 do \
826 { \
827 inst.it_insn_type = type; \
828 if (handle_it_state () == FAIL) \
829 return; \
830 } \
831 while (0)
832
833 #define set_it_insn_type_nonvoid(type, failret) \
834 do \
835 { \
836 inst.it_insn_type = type; \
837 if (handle_it_state () == FAIL) \
838 return failret; \
839 } \
840 while(0)
841
842 #define set_it_insn_type_last() \
843 do \
844 { \
845 if (inst.cond == COND_ALWAYS) \
846 set_it_insn_type (IF_INSIDE_IT_LAST_INSN); \
847 else \
848 set_it_insn_type (INSIDE_IT_LAST_INSN); \
849 } \
850 while (0)
851
852 /* Pure syntax. */
853
854 /* This array holds the chars that always start a comment. If the
855 pre-processor is disabled, these aren't very useful. */
856 const char comment_chars[] = "@";
857
858 /* This array holds the chars that only start a comment at the beginning of
859 a line. If the line seems to have the form '# 123 filename'
860 .line and .file directives will appear in the pre-processed output. */
861 /* Note that input_file.c hand checks for '#' at the beginning of the
862 first line of the input file. This is because the compiler outputs
863 #NO_APP at the beginning of its output. */
864 /* Also note that comments like this one will always work. */
865 const char line_comment_chars[] = "#";
866
867 const char line_separator_chars[] = ";";
868
869 /* Chars that can be used to separate mant
870 from exp in floating point numbers. */
871 const char EXP_CHARS[] = "eE";
872
873 /* Chars that mean this number is a floating point constant. */
874 /* As in 0f12.456 */
875 /* or 0d1.2345e12 */
876
877 const char FLT_CHARS[] = "rRsSfFdDxXeEpP";
878
879 /* Prefix characters that indicate the start of an immediate
880 value. */
881 #define is_immediate_prefix(C) ((C) == '#' || (C) == '$')
882
883 /* Separator character handling. */
884
885 #define skip_whitespace(str) do { if (*(str) == ' ') ++(str); } while (0)
886
887 static inline int
888 skip_past_char (char ** str, char c)
889 {
890 /* PR gas/14987: Allow for whitespace before the expected character. */
891 skip_whitespace (*str);
892
893 if (**str == c)
894 {
895 (*str)++;
896 return SUCCESS;
897 }
898 else
899 return FAIL;
900 }
901
902 #define skip_past_comma(str) skip_past_char (str, ',')
903
904 /* Arithmetic expressions (possibly involving symbols). */
905
906 /* Return TRUE if anything in the expression is a bignum. */
907
908 static int
909 walk_no_bignums (symbolS * sp)
910 {
911 if (symbol_get_value_expression (sp)->X_op == O_big)
912 return 1;
913
914 if (symbol_get_value_expression (sp)->X_add_symbol)
915 {
916 return (walk_no_bignums (symbol_get_value_expression (sp)->X_add_symbol)
917 || (symbol_get_value_expression (sp)->X_op_symbol
918 && walk_no_bignums (symbol_get_value_expression (sp)->X_op_symbol)));
919 }
920
921 return 0;
922 }
923
924 static int in_my_get_expression = 0;
925
926 /* Third argument to my_get_expression. */
927 #define GE_NO_PREFIX 0
928 #define GE_IMM_PREFIX 1
929 #define GE_OPT_PREFIX 2
930 /* This is a bit of a hack. Use an optional prefix, and also allow big (64-bit)
931 immediates, as can be used in Neon VMVN and VMOV immediate instructions. */
932 #define GE_OPT_PREFIX_BIG 3
933
934 static int
935 my_get_expression (expressionS * ep, char ** str, int prefix_mode)
936 {
937 char * save_in;
938 segT seg;
939
940 /* In unified syntax, all prefixes are optional. */
941 if (unified_syntax)
942 prefix_mode = (prefix_mode == GE_OPT_PREFIX_BIG) ? prefix_mode
943 : GE_OPT_PREFIX;
944
945 switch (prefix_mode)
946 {
947 case GE_NO_PREFIX: break;
948 case GE_IMM_PREFIX:
949 if (!is_immediate_prefix (**str))
950 {
951 inst.error = _("immediate expression requires a # prefix");
952 return FAIL;
953 }
954 (*str)++;
955 break;
956 case GE_OPT_PREFIX:
957 case GE_OPT_PREFIX_BIG:
958 if (is_immediate_prefix (**str))
959 (*str)++;
960 break;
961 default: abort ();
962 }
963
964 memset (ep, 0, sizeof (expressionS));
965
966 save_in = input_line_pointer;
967 input_line_pointer = *str;
968 in_my_get_expression = 1;
969 seg = expression (ep);
970 in_my_get_expression = 0;
971
972 if (ep->X_op == O_illegal || ep->X_op == O_absent)
973 {
974 /* We found a bad or missing expression in md_operand(). */
975 *str = input_line_pointer;
976 input_line_pointer = save_in;
977 if (inst.error == NULL)
978 inst.error = (ep->X_op == O_absent
979 ? _("missing expression") :_("bad expression"));
980 return 1;
981 }
982
983 #ifdef OBJ_AOUT
984 if (seg != absolute_section
985 && seg != text_section
986 && seg != data_section
987 && seg != bss_section
988 && seg != undefined_section)
989 {
990 inst.error = _("bad segment");
991 *str = input_line_pointer;
992 input_line_pointer = save_in;
993 return 1;
994 }
995 #else
996 (void) seg;
997 #endif
998
999 /* Get rid of any bignums now, so that we don't generate an error for which
1000 we can't establish a line number later on. Big numbers are never valid
1001 in instructions, which is where this routine is always called. */
1002 if (prefix_mode != GE_OPT_PREFIX_BIG
1003 && (ep->X_op == O_big
1004 || (ep->X_add_symbol
1005 && (walk_no_bignums (ep->X_add_symbol)
1006 || (ep->X_op_symbol
1007 && walk_no_bignums (ep->X_op_symbol))))))
1008 {
1009 inst.error = _("invalid constant");
1010 *str = input_line_pointer;
1011 input_line_pointer = save_in;
1012 return 1;
1013 }
1014
1015 *str = input_line_pointer;
1016 input_line_pointer = save_in;
1017 return 0;
1018 }
1019
1020 /* Turn a string in input_line_pointer into a floating point constant
1021 of type TYPE, and store the appropriate bytes in *LITP. The number
1022 of LITTLENUMS emitted is stored in *SIZEP. An error message is
1023 returned, or NULL on OK.
1024
1025 Note that fp constants aren't represent in the normal way on the ARM.
1026 In big endian mode, things are as expected. However, in little endian
1027 mode fp constants are big-endian word-wise, and little-endian byte-wise
1028 within the words. For example, (double) 1.1 in big endian mode is
1029 the byte sequence 3f f1 99 99 99 99 99 9a, and in little endian mode is
1030 the byte sequence 99 99 f1 3f 9a 99 99 99.
1031
1032 ??? The format of 12 byte floats is uncertain according to gcc's arm.h. */
1033
1034 char *
1035 md_atof (int type, char * litP, int * sizeP)
1036 {
1037 int prec;
1038 LITTLENUM_TYPE words[MAX_LITTLENUMS];
1039 char *t;
1040 int i;
1041
1042 switch (type)
1043 {
1044 case 'f':
1045 case 'F':
1046 case 's':
1047 case 'S':
1048 prec = 2;
1049 break;
1050
1051 case 'd':
1052 case 'D':
1053 case 'r':
1054 case 'R':
1055 prec = 4;
1056 break;
1057
1058 case 'x':
1059 case 'X':
1060 prec = 5;
1061 break;
1062
1063 case 'p':
1064 case 'P':
1065 prec = 5;
1066 break;
1067
1068 default:
1069 *sizeP = 0;
1070 return _("Unrecognized or unsupported floating point constant");
1071 }
1072
1073 t = atof_ieee (input_line_pointer, type, words);
1074 if (t)
1075 input_line_pointer = t;
1076 *sizeP = prec * sizeof (LITTLENUM_TYPE);
1077
1078 if (target_big_endian)
1079 {
1080 for (i = 0; i < prec; i++)
1081 {
1082 md_number_to_chars (litP, (valueT) words[i], sizeof (LITTLENUM_TYPE));
1083 litP += sizeof (LITTLENUM_TYPE);
1084 }
1085 }
1086 else
1087 {
1088 if (ARM_CPU_HAS_FEATURE (cpu_variant, fpu_endian_pure))
1089 for (i = prec - 1; i >= 0; i--)
1090 {
1091 md_number_to_chars (litP, (valueT) words[i], sizeof (LITTLENUM_TYPE));
1092 litP += sizeof (LITTLENUM_TYPE);
1093 }
1094 else
1095 /* For a 4 byte float the order of elements in `words' is 1 0.
1096 For an 8 byte float the order is 1 0 3 2. */
1097 for (i = 0; i < prec; i += 2)
1098 {
1099 md_number_to_chars (litP, (valueT) words[i + 1],
1100 sizeof (LITTLENUM_TYPE));
1101 md_number_to_chars (litP + sizeof (LITTLENUM_TYPE),
1102 (valueT) words[i], sizeof (LITTLENUM_TYPE));
1103 litP += 2 * sizeof (LITTLENUM_TYPE);
1104 }
1105 }
1106
1107 return NULL;
1108 }
1109
1110 /* We handle all bad expressions here, so that we can report the faulty
1111 instruction in the error message. */
1112 void
1113 md_operand (expressionS * exp)
1114 {
1115 if (in_my_get_expression)
1116 exp->X_op = O_illegal;
1117 }
1118
1119 /* Immediate values. */
1120
1121 /* Generic immediate-value read function for use in directives.
1122 Accepts anything that 'expression' can fold to a constant.
1123 *val receives the number. */
1124 #ifdef OBJ_ELF
1125 static int
1126 immediate_for_directive (int *val)
1127 {
1128 expressionS exp;
1129 exp.X_op = O_illegal;
1130
1131 if (is_immediate_prefix (*input_line_pointer))
1132 {
1133 input_line_pointer++;
1134 expression (&exp);
1135 }
1136
1137 if (exp.X_op != O_constant)
1138 {
1139 as_bad (_("expected #constant"));
1140 ignore_rest_of_line ();
1141 return FAIL;
1142 }
1143 *val = exp.X_add_number;
1144 return SUCCESS;
1145 }
1146 #endif
1147
1148 /* Register parsing. */
1149
1150 /* Generic register parser. CCP points to what should be the
1151 beginning of a register name. If it is indeed a valid register
1152 name, advance CCP over it and return the reg_entry structure;
1153 otherwise return NULL. Does not issue diagnostics. */
1154
1155 static struct reg_entry *
1156 arm_reg_parse_multi (char **ccp)
1157 {
1158 char *start = *ccp;
1159 char *p;
1160 struct reg_entry *reg;
1161
1162 skip_whitespace (start);
1163
1164 #ifdef REGISTER_PREFIX
1165 if (*start != REGISTER_PREFIX)
1166 return NULL;
1167 start++;
1168 #endif
1169 #ifdef OPTIONAL_REGISTER_PREFIX
1170 if (*start == OPTIONAL_REGISTER_PREFIX)
1171 start++;
1172 #endif
1173
1174 p = start;
1175 if (!ISALPHA (*p) || !is_name_beginner (*p))
1176 return NULL;
1177
1178 do
1179 p++;
1180 while (ISALPHA (*p) || ISDIGIT (*p) || *p == '_');
1181
1182 reg = (struct reg_entry *) hash_find_n (arm_reg_hsh, start, p - start);
1183
1184 if (!reg)
1185 return NULL;
1186
1187 *ccp = p;
1188 return reg;
1189 }
1190
1191 static int
1192 arm_reg_alt_syntax (char **ccp, char *start, struct reg_entry *reg,
1193 enum arm_reg_type type)
1194 {
1195 /* Alternative syntaxes are accepted for a few register classes. */
1196 switch (type)
1197 {
1198 case REG_TYPE_MVF:
1199 case REG_TYPE_MVD:
1200 case REG_TYPE_MVFX:
1201 case REG_TYPE_MVDX:
1202 /* Generic coprocessor register names are allowed for these. */
1203 if (reg && reg->type == REG_TYPE_CN)
1204 return reg->number;
1205 break;
1206
1207 case REG_TYPE_CP:
1208 /* For backward compatibility, a bare number is valid here. */
1209 {
1210 unsigned long processor = strtoul (start, ccp, 10);
1211 if (*ccp != start && processor <= 15)
1212 return processor;
1213 }
1214
1215 case REG_TYPE_MMXWC:
1216 /* WC includes WCG. ??? I'm not sure this is true for all
1217 instructions that take WC registers. */
1218 if (reg && reg->type == REG_TYPE_MMXWCG)
1219 return reg->number;
1220 break;
1221
1222 default:
1223 break;
1224 }
1225
1226 return FAIL;
1227 }
1228
1229 /* As arm_reg_parse_multi, but the register must be of type TYPE, and the
1230 return value is the register number or FAIL. */
1231
1232 static int
1233 arm_reg_parse (char **ccp, enum arm_reg_type type)
1234 {
1235 char *start = *ccp;
1236 struct reg_entry *reg = arm_reg_parse_multi (ccp);
1237 int ret;
1238
1239 /* Do not allow a scalar (reg+index) to parse as a register. */
1240 if (reg && reg->neon && (reg->neon->defined & NTA_HASINDEX))
1241 return FAIL;
1242
1243 if (reg && reg->type == type)
1244 return reg->number;
1245
1246 if ((ret = arm_reg_alt_syntax (ccp, start, reg, type)) != FAIL)
1247 return ret;
1248
1249 *ccp = start;
1250 return FAIL;
1251 }
1252
1253 /* Parse a Neon type specifier. *STR should point at the leading '.'
1254 character. Does no verification at this stage that the type fits the opcode
1255 properly. E.g.,
1256
1257 .i32.i32.s16
1258 .s32.f32
1259 .u16
1260
1261 Can all be legally parsed by this function.
1262
1263 Fills in neon_type struct pointer with parsed information, and updates STR
1264 to point after the parsed type specifier. Returns SUCCESS if this was a legal
1265 type, FAIL if not. */
1266
1267 static int
1268 parse_neon_type (struct neon_type *type, char **str)
1269 {
1270 char *ptr = *str;
1271
1272 if (type)
1273 type->elems = 0;
1274
1275 while (type->elems < NEON_MAX_TYPE_ELS)
1276 {
1277 enum neon_el_type thistype = NT_untyped;
1278 unsigned thissize = -1u;
1279
1280 if (*ptr != '.')
1281 break;
1282
1283 ptr++;
1284
1285 /* Just a size without an explicit type. */
1286 if (ISDIGIT (*ptr))
1287 goto parsesize;
1288
1289 switch (TOLOWER (*ptr))
1290 {
1291 case 'i': thistype = NT_integer; break;
1292 case 'f': thistype = NT_float; break;
1293 case 'p': thistype = NT_poly; break;
1294 case 's': thistype = NT_signed; break;
1295 case 'u': thistype = NT_unsigned; break;
1296 case 'd':
1297 thistype = NT_float;
1298 thissize = 64;
1299 ptr++;
1300 goto done;
1301 default:
1302 as_bad (_("unexpected character `%c' in type specifier"), *ptr);
1303 return FAIL;
1304 }
1305
1306 ptr++;
1307
1308 /* .f is an abbreviation for .f32. */
1309 if (thistype == NT_float && !ISDIGIT (*ptr))
1310 thissize = 32;
1311 else
1312 {
1313 parsesize:
1314 thissize = strtoul (ptr, &ptr, 10);
1315
1316 if (thissize != 8 && thissize != 16 && thissize != 32
1317 && thissize != 64)
1318 {
1319 as_bad (_("bad size %d in type specifier"), thissize);
1320 return FAIL;
1321 }
1322 }
1323
1324 done:
1325 if (type)
1326 {
1327 type->el[type->elems].type = thistype;
1328 type->el[type->elems].size = thissize;
1329 type->elems++;
1330 }
1331 }
1332
1333 /* Empty/missing type is not a successful parse. */
1334 if (type->elems == 0)
1335 return FAIL;
1336
1337 *str = ptr;
1338
1339 return SUCCESS;
1340 }
1341
1342 /* Errors may be set multiple times during parsing or bit encoding
1343 (particularly in the Neon bits), but usually the earliest error which is set
1344 will be the most meaningful. Avoid overwriting it with later (cascading)
1345 errors by calling this function. */
1346
1347 static void
1348 first_error (const char *err)
1349 {
1350 if (!inst.error)
1351 inst.error = err;
1352 }
1353
1354 /* Parse a single type, e.g. ".s32", leading period included. */
1355 static int
1356 parse_neon_operand_type (struct neon_type_el *vectype, char **ccp)
1357 {
1358 char *str = *ccp;
1359 struct neon_type optype;
1360
1361 if (*str == '.')
1362 {
1363 if (parse_neon_type (&optype, &str) == SUCCESS)
1364 {
1365 if (optype.elems == 1)
1366 *vectype = optype.el[0];
1367 else
1368 {
1369 first_error (_("only one type should be specified for operand"));
1370 return FAIL;
1371 }
1372 }
1373 else
1374 {
1375 first_error (_("vector type expected"));
1376 return FAIL;
1377 }
1378 }
1379 else
1380 return FAIL;
1381
1382 *ccp = str;
1383
1384 return SUCCESS;
1385 }
1386
1387 /* Special meanings for indices (which have a range of 0-7), which will fit into
1388 a 4-bit integer. */
1389
1390 #define NEON_ALL_LANES 15
1391 #define NEON_INTERLEAVE_LANES 14
1392
1393 /* Parse either a register or a scalar, with an optional type. Return the
1394 register number, and optionally fill in the actual type of the register
1395 when multiple alternatives were given (NEON_TYPE_NDQ) in *RTYPE, and
1396 type/index information in *TYPEINFO. */
1397
1398 static int
1399 parse_typed_reg_or_scalar (char **ccp, enum arm_reg_type type,
1400 enum arm_reg_type *rtype,
1401 struct neon_typed_alias *typeinfo)
1402 {
1403 char *str = *ccp;
1404 struct reg_entry *reg = arm_reg_parse_multi (&str);
1405 struct neon_typed_alias atype;
1406 struct neon_type_el parsetype;
1407
1408 atype.defined = 0;
1409 atype.index = -1;
1410 atype.eltype.type = NT_invtype;
1411 atype.eltype.size = -1;
1412
1413 /* Try alternate syntax for some types of register. Note these are mutually
1414 exclusive with the Neon syntax extensions. */
1415 if (reg == NULL)
1416 {
1417 int altreg = arm_reg_alt_syntax (&str, *ccp, reg, type);
1418 if (altreg != FAIL)
1419 *ccp = str;
1420 if (typeinfo)
1421 *typeinfo = atype;
1422 return altreg;
1423 }
1424
1425 /* Undo polymorphism when a set of register types may be accepted. */
1426 if ((type == REG_TYPE_NDQ
1427 && (reg->type == REG_TYPE_NQ || reg->type == REG_TYPE_VFD))
1428 || (type == REG_TYPE_VFSD
1429 && (reg->type == REG_TYPE_VFS || reg->type == REG_TYPE_VFD))
1430 || (type == REG_TYPE_NSDQ
1431 && (reg->type == REG_TYPE_VFS || reg->type == REG_TYPE_VFD
1432 || reg->type == REG_TYPE_NQ))
1433 || (type == REG_TYPE_MMXWC
1434 && (reg->type == REG_TYPE_MMXWCG)))
1435 type = (enum arm_reg_type) reg->type;
1436
1437 if (type != reg->type)
1438 return FAIL;
1439
1440 if (reg->neon)
1441 atype = *reg->neon;
1442
1443 if (parse_neon_operand_type (&parsetype, &str) == SUCCESS)
1444 {
1445 if ((atype.defined & NTA_HASTYPE) != 0)
1446 {
1447 first_error (_("can't redefine type for operand"));
1448 return FAIL;
1449 }
1450 atype.defined |= NTA_HASTYPE;
1451 atype.eltype = parsetype;
1452 }
1453
1454 if (skip_past_char (&str, '[') == SUCCESS)
1455 {
1456 if (type != REG_TYPE_VFD)
1457 {
1458 first_error (_("only D registers may be indexed"));
1459 return FAIL;
1460 }
1461
1462 if ((atype.defined & NTA_HASINDEX) != 0)
1463 {
1464 first_error (_("can't change index for operand"));
1465 return FAIL;
1466 }
1467
1468 atype.defined |= NTA_HASINDEX;
1469
1470 if (skip_past_char (&str, ']') == SUCCESS)
1471 atype.index = NEON_ALL_LANES;
1472 else
1473 {
1474 expressionS exp;
1475
1476 my_get_expression (&exp, &str, GE_NO_PREFIX);
1477
1478 if (exp.X_op != O_constant)
1479 {
1480 first_error (_("constant expression required"));
1481 return FAIL;
1482 }
1483
1484 if (skip_past_char (&str, ']') == FAIL)
1485 return FAIL;
1486
1487 atype.index = exp.X_add_number;
1488 }
1489 }
1490
1491 if (typeinfo)
1492 *typeinfo = atype;
1493
1494 if (rtype)
1495 *rtype = type;
1496
1497 *ccp = str;
1498
1499 return reg->number;
1500 }
1501
1502 /* Like arm_reg_parse, but allow allow the following extra features:
1503 - If RTYPE is non-zero, return the (possibly restricted) type of the
1504 register (e.g. Neon double or quad reg when either has been requested).
1505 - If this is a Neon vector type with additional type information, fill
1506 in the struct pointed to by VECTYPE (if non-NULL).
1507 This function will fault on encountering a scalar. */
1508
1509 static int
1510 arm_typed_reg_parse (char **ccp, enum arm_reg_type type,
1511 enum arm_reg_type *rtype, struct neon_type_el *vectype)
1512 {
1513 struct neon_typed_alias atype;
1514 char *str = *ccp;
1515 int reg = parse_typed_reg_or_scalar (&str, type, rtype, &atype);
1516
1517 if (reg == FAIL)
1518 return FAIL;
1519
1520 /* Do not allow regname(... to parse as a register. */
1521 if (*str == '(')
1522 return FAIL;
1523
1524 /* Do not allow a scalar (reg+index) to parse as a register. */
1525 if ((atype.defined & NTA_HASINDEX) != 0)
1526 {
1527 first_error (_("register operand expected, but got scalar"));
1528 return FAIL;
1529 }
1530
1531 if (vectype)
1532 *vectype = atype.eltype;
1533
1534 *ccp = str;
1535
1536 return reg;
1537 }
1538
1539 #define NEON_SCALAR_REG(X) ((X) >> 4)
1540 #define NEON_SCALAR_INDEX(X) ((X) & 15)
1541
1542 /* Parse a Neon scalar. Most of the time when we're parsing a scalar, we don't
1543 have enough information to be able to do a good job bounds-checking. So, we
1544 just do easy checks here, and do further checks later. */
1545
1546 static int
1547 parse_scalar (char **ccp, int elsize, struct neon_type_el *type)
1548 {
1549 int reg;
1550 char *str = *ccp;
1551 struct neon_typed_alias atype;
1552
1553 reg = parse_typed_reg_or_scalar (&str, REG_TYPE_VFD, NULL, &atype);
1554
1555 if (reg == FAIL || (atype.defined & NTA_HASINDEX) == 0)
1556 return FAIL;
1557
1558 if (atype.index == NEON_ALL_LANES)
1559 {
1560 first_error (_("scalar must have an index"));
1561 return FAIL;
1562 }
1563 else if (atype.index >= 64 / elsize)
1564 {
1565 first_error (_("scalar index out of range"));
1566 return FAIL;
1567 }
1568
1569 if (type)
1570 *type = atype.eltype;
1571
1572 *ccp = str;
1573
1574 return reg * 16 + atype.index;
1575 }
1576
1577 /* Parse an ARM register list. Returns the bitmask, or FAIL. */
1578
1579 static long
1580 parse_reg_list (char ** strp)
1581 {
1582 char * str = * strp;
1583 long range = 0;
1584 int another_range;
1585
1586 /* We come back here if we get ranges concatenated by '+' or '|'. */
1587 do
1588 {
1589 skip_whitespace (str);
1590
1591 another_range = 0;
1592
1593 if (*str == '{')
1594 {
1595 int in_range = 0;
1596 int cur_reg = -1;
1597
1598 str++;
1599 do
1600 {
1601 int reg;
1602
1603 if ((reg = arm_reg_parse (&str, REG_TYPE_RN)) == FAIL)
1604 {
1605 first_error (_(reg_expected_msgs[REG_TYPE_RN]));
1606 return FAIL;
1607 }
1608
1609 if (in_range)
1610 {
1611 int i;
1612
1613 if (reg <= cur_reg)
1614 {
1615 first_error (_("bad range in register list"));
1616 return FAIL;
1617 }
1618
1619 for (i = cur_reg + 1; i < reg; i++)
1620 {
1621 if (range & (1 << i))
1622 as_tsktsk
1623 (_("Warning: duplicated register (r%d) in register list"),
1624 i);
1625 else
1626 range |= 1 << i;
1627 }
1628 in_range = 0;
1629 }
1630
1631 if (range & (1 << reg))
1632 as_tsktsk (_("Warning: duplicated register (r%d) in register list"),
1633 reg);
1634 else if (reg <= cur_reg)
1635 as_tsktsk (_("Warning: register range not in ascending order"));
1636
1637 range |= 1 << reg;
1638 cur_reg = reg;
1639 }
1640 while (skip_past_comma (&str) != FAIL
1641 || (in_range = 1, *str++ == '-'));
1642 str--;
1643
1644 if (skip_past_char (&str, '}') == FAIL)
1645 {
1646 first_error (_("missing `}'"));
1647 return FAIL;
1648 }
1649 }
1650 else
1651 {
1652 expressionS exp;
1653
1654 if (my_get_expression (&exp, &str, GE_NO_PREFIX))
1655 return FAIL;
1656
1657 if (exp.X_op == O_constant)
1658 {
1659 if (exp.X_add_number
1660 != (exp.X_add_number & 0x0000ffff))
1661 {
1662 inst.error = _("invalid register mask");
1663 return FAIL;
1664 }
1665
1666 if ((range & exp.X_add_number) != 0)
1667 {
1668 int regno = range & exp.X_add_number;
1669
1670 regno &= -regno;
1671 regno = (1 << regno) - 1;
1672 as_tsktsk
1673 (_("Warning: duplicated register (r%d) in register list"),
1674 regno);
1675 }
1676
1677 range |= exp.X_add_number;
1678 }
1679 else
1680 {
1681 if (inst.reloc.type != 0)
1682 {
1683 inst.error = _("expression too complex");
1684 return FAIL;
1685 }
1686
1687 memcpy (&inst.reloc.exp, &exp, sizeof (expressionS));
1688 inst.reloc.type = BFD_RELOC_ARM_MULTI;
1689 inst.reloc.pc_rel = 0;
1690 }
1691 }
1692
1693 if (*str == '|' || *str == '+')
1694 {
1695 str++;
1696 another_range = 1;
1697 }
1698 }
1699 while (another_range);
1700
1701 *strp = str;
1702 return range;
1703 }
1704
1705 /* Types of registers in a list. */
1706
1707 enum reg_list_els
1708 {
1709 REGLIST_VFP_S,
1710 REGLIST_VFP_D,
1711 REGLIST_NEON_D
1712 };
1713
1714 /* Parse a VFP register list. If the string is invalid return FAIL.
1715 Otherwise return the number of registers, and set PBASE to the first
1716 register. Parses registers of type ETYPE.
1717 If REGLIST_NEON_D is used, several syntax enhancements are enabled:
1718 - Q registers can be used to specify pairs of D registers
1719 - { } can be omitted from around a singleton register list
1720 FIXME: This is not implemented, as it would require backtracking in
1721 some cases, e.g.:
1722 vtbl.8 d3,d4,d5
1723 This could be done (the meaning isn't really ambiguous), but doesn't
1724 fit in well with the current parsing framework.
1725 - 32 D registers may be used (also true for VFPv3).
1726 FIXME: Types are ignored in these register lists, which is probably a
1727 bug. */
1728
1729 static int
1730 parse_vfp_reg_list (char **ccp, unsigned int *pbase, enum reg_list_els etype)
1731 {
1732 char *str = *ccp;
1733 int base_reg;
1734 int new_base;
1735 enum arm_reg_type regtype = (enum arm_reg_type) 0;
1736 int max_regs = 0;
1737 int count = 0;
1738 int warned = 0;
1739 unsigned long mask = 0;
1740 int i;
1741
1742 if (skip_past_char (&str, '{') == FAIL)
1743 {
1744 inst.error = _("expecting {");
1745 return FAIL;
1746 }
1747
1748 switch (etype)
1749 {
1750 case REGLIST_VFP_S:
1751 regtype = REG_TYPE_VFS;
1752 max_regs = 32;
1753 break;
1754
1755 case REGLIST_VFP_D:
1756 regtype = REG_TYPE_VFD;
1757 break;
1758
1759 case REGLIST_NEON_D:
1760 regtype = REG_TYPE_NDQ;
1761 break;
1762 }
1763
1764 if (etype != REGLIST_VFP_S)
1765 {
1766 /* VFPv3 allows 32 D registers, except for the VFPv3-D16 variant. */
1767 if (ARM_CPU_HAS_FEATURE (cpu_variant, fpu_vfp_ext_d32))
1768 {
1769 max_regs = 32;
1770 if (thumb_mode)
1771 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used,
1772 fpu_vfp_ext_d32);
1773 else
1774 ARM_MERGE_FEATURE_SETS (arm_arch_used, arm_arch_used,
1775 fpu_vfp_ext_d32);
1776 }
1777 else
1778 max_regs = 16;
1779 }
1780
1781 base_reg = max_regs;
1782
1783 do
1784 {
1785 int setmask = 1, addregs = 1;
1786
1787 new_base = arm_typed_reg_parse (&str, regtype, &regtype, NULL);
1788
1789 if (new_base == FAIL)
1790 {
1791 first_error (_(reg_expected_msgs[regtype]));
1792 return FAIL;
1793 }
1794
1795 if (new_base >= max_regs)
1796 {
1797 first_error (_("register out of range in list"));
1798 return FAIL;
1799 }
1800
1801 /* Note: a value of 2 * n is returned for the register Q<n>. */
1802 if (regtype == REG_TYPE_NQ)
1803 {
1804 setmask = 3;
1805 addregs = 2;
1806 }
1807
1808 if (new_base < base_reg)
1809 base_reg = new_base;
1810
1811 if (mask & (setmask << new_base))
1812 {
1813 first_error (_("invalid register list"));
1814 return FAIL;
1815 }
1816
1817 if ((mask >> new_base) != 0 && ! warned)
1818 {
1819 as_tsktsk (_("register list not in ascending order"));
1820 warned = 1;
1821 }
1822
1823 mask |= setmask << new_base;
1824 count += addregs;
1825
1826 if (*str == '-') /* We have the start of a range expression */
1827 {
1828 int high_range;
1829
1830 str++;
1831
1832 if ((high_range = arm_typed_reg_parse (&str, regtype, NULL, NULL))
1833 == FAIL)
1834 {
1835 inst.error = gettext (reg_expected_msgs[regtype]);
1836 return FAIL;
1837 }
1838
1839 if (high_range >= max_regs)
1840 {
1841 first_error (_("register out of range in list"));
1842 return FAIL;
1843 }
1844
1845 if (regtype == REG_TYPE_NQ)
1846 high_range = high_range + 1;
1847
1848 if (high_range <= new_base)
1849 {
1850 inst.error = _("register range not in ascending order");
1851 return FAIL;
1852 }
1853
1854 for (new_base += addregs; new_base <= high_range; new_base += addregs)
1855 {
1856 if (mask & (setmask << new_base))
1857 {
1858 inst.error = _("invalid register list");
1859 return FAIL;
1860 }
1861
1862 mask |= setmask << new_base;
1863 count += addregs;
1864 }
1865 }
1866 }
1867 while (skip_past_comma (&str) != FAIL);
1868
1869 str++;
1870
1871 /* Sanity check -- should have raised a parse error above. */
1872 if (count == 0 || count > max_regs)
1873 abort ();
1874
1875 *pbase = base_reg;
1876
1877 /* Final test -- the registers must be consecutive. */
1878 mask >>= base_reg;
1879 for (i = 0; i < count; i++)
1880 {
1881 if ((mask & (1u << i)) == 0)
1882 {
1883 inst.error = _("non-contiguous register range");
1884 return FAIL;
1885 }
1886 }
1887
1888 *ccp = str;
1889
1890 return count;
1891 }
1892
1893 /* True if two alias types are the same. */
1894
1895 static bfd_boolean
1896 neon_alias_types_same (struct neon_typed_alias *a, struct neon_typed_alias *b)
1897 {
1898 if (!a && !b)
1899 return TRUE;
1900
1901 if (!a || !b)
1902 return FALSE;
1903
1904 if (a->defined != b->defined)
1905 return FALSE;
1906
1907 if ((a->defined & NTA_HASTYPE) != 0
1908 && (a->eltype.type != b->eltype.type
1909 || a->eltype.size != b->eltype.size))
1910 return FALSE;
1911
1912 if ((a->defined & NTA_HASINDEX) != 0
1913 && (a->index != b->index))
1914 return FALSE;
1915
1916 return TRUE;
1917 }
1918
1919 /* Parse element/structure lists for Neon VLD<n> and VST<n> instructions.
1920 The base register is put in *PBASE.
1921 The lane (or one of the NEON_*_LANES constants) is placed in bits [3:0] of
1922 the return value.
1923 The register stride (minus one) is put in bit 4 of the return value.
1924 Bits [6:5] encode the list length (minus one).
1925 The type of the list elements is put in *ELTYPE, if non-NULL. */
1926
1927 #define NEON_LANE(X) ((X) & 0xf)
1928 #define NEON_REG_STRIDE(X) ((((X) >> 4) & 1) + 1)
1929 #define NEON_REGLIST_LENGTH(X) ((((X) >> 5) & 3) + 1)
1930
1931 static int
1932 parse_neon_el_struct_list (char **str, unsigned *pbase,
1933 struct neon_type_el *eltype)
1934 {
1935 char *ptr = *str;
1936 int base_reg = -1;
1937 int reg_incr = -1;
1938 int count = 0;
1939 int lane = -1;
1940 int leading_brace = 0;
1941 enum arm_reg_type rtype = REG_TYPE_NDQ;
1942 const char *const incr_error = _("register stride must be 1 or 2");
1943 const char *const type_error = _("mismatched element/structure types in list");
1944 struct neon_typed_alias firsttype;
1945
1946 if (skip_past_char (&ptr, '{') == SUCCESS)
1947 leading_brace = 1;
1948
1949 do
1950 {
1951 struct neon_typed_alias atype;
1952 int getreg = parse_typed_reg_or_scalar (&ptr, rtype, &rtype, &atype);
1953
1954 if (getreg == FAIL)
1955 {
1956 first_error (_(reg_expected_msgs[rtype]));
1957 return FAIL;
1958 }
1959
1960 if (base_reg == -1)
1961 {
1962 base_reg = getreg;
1963 if (rtype == REG_TYPE_NQ)
1964 {
1965 reg_incr = 1;
1966 }
1967 firsttype = atype;
1968 }
1969 else if (reg_incr == -1)
1970 {
1971 reg_incr = getreg - base_reg;
1972 if (reg_incr < 1 || reg_incr > 2)
1973 {
1974 first_error (_(incr_error));
1975 return FAIL;
1976 }
1977 }
1978 else if (getreg != base_reg + reg_incr * count)
1979 {
1980 first_error (_(incr_error));
1981 return FAIL;
1982 }
1983
1984 if (! neon_alias_types_same (&atype, &firsttype))
1985 {
1986 first_error (_(type_error));
1987 return FAIL;
1988 }
1989
1990 /* Handle Dn-Dm or Qn-Qm syntax. Can only be used with non-indexed list
1991 modes. */
1992 if (ptr[0] == '-')
1993 {
1994 struct neon_typed_alias htype;
1995 int hireg, dregs = (rtype == REG_TYPE_NQ) ? 2 : 1;
1996 if (lane == -1)
1997 lane = NEON_INTERLEAVE_LANES;
1998 else if (lane != NEON_INTERLEAVE_LANES)
1999 {
2000 first_error (_(type_error));
2001 return FAIL;
2002 }
2003 if (reg_incr == -1)
2004 reg_incr = 1;
2005 else if (reg_incr != 1)
2006 {
2007 first_error (_("don't use Rn-Rm syntax with non-unit stride"));
2008 return FAIL;
2009 }
2010 ptr++;
2011 hireg = parse_typed_reg_or_scalar (&ptr, rtype, NULL, &htype);
2012 if (hireg == FAIL)
2013 {
2014 first_error (_(reg_expected_msgs[rtype]));
2015 return FAIL;
2016 }
2017 if (! neon_alias_types_same (&htype, &firsttype))
2018 {
2019 first_error (_(type_error));
2020 return FAIL;
2021 }
2022 count += hireg + dregs - getreg;
2023 continue;
2024 }
2025
2026 /* If we're using Q registers, we can't use [] or [n] syntax. */
2027 if (rtype == REG_TYPE_NQ)
2028 {
2029 count += 2;
2030 continue;
2031 }
2032
2033 if ((atype.defined & NTA_HASINDEX) != 0)
2034 {
2035 if (lane == -1)
2036 lane = atype.index;
2037 else if (lane != atype.index)
2038 {
2039 first_error (_(type_error));
2040 return FAIL;
2041 }
2042 }
2043 else if (lane == -1)
2044 lane = NEON_INTERLEAVE_LANES;
2045 else if (lane != NEON_INTERLEAVE_LANES)
2046 {
2047 first_error (_(type_error));
2048 return FAIL;
2049 }
2050 count++;
2051 }
2052 while ((count != 1 || leading_brace) && skip_past_comma (&ptr) != FAIL);
2053
2054 /* No lane set by [x]. We must be interleaving structures. */
2055 if (lane == -1)
2056 lane = NEON_INTERLEAVE_LANES;
2057
2058 /* Sanity check. */
2059 if (lane == -1 || base_reg == -1 || count < 1 || count > 4
2060 || (count > 1 && reg_incr == -1))
2061 {
2062 first_error (_("error parsing element/structure list"));
2063 return FAIL;
2064 }
2065
2066 if ((count > 1 || leading_brace) && skip_past_char (&ptr, '}') == FAIL)
2067 {
2068 first_error (_("expected }"));
2069 return FAIL;
2070 }
2071
2072 if (reg_incr == -1)
2073 reg_incr = 1;
2074
2075 if (eltype)
2076 *eltype = firsttype.eltype;
2077
2078 *pbase = base_reg;
2079 *str = ptr;
2080
2081 return lane | ((reg_incr - 1) << 4) | ((count - 1) << 5);
2082 }
2083
2084 /* Parse an explicit relocation suffix on an expression. This is
2085 either nothing, or a word in parentheses. Note that if !OBJ_ELF,
2086 arm_reloc_hsh contains no entries, so this function can only
2087 succeed if there is no () after the word. Returns -1 on error,
2088 BFD_RELOC_UNUSED if there wasn't any suffix. */
2089
2090 static int
2091 parse_reloc (char **str)
2092 {
2093 struct reloc_entry *r;
2094 char *p, *q;
2095
2096 if (**str != '(')
2097 return BFD_RELOC_UNUSED;
2098
2099 p = *str + 1;
2100 q = p;
2101
2102 while (*q && *q != ')' && *q != ',')
2103 q++;
2104 if (*q != ')')
2105 return -1;
2106
2107 if ((r = (struct reloc_entry *)
2108 hash_find_n (arm_reloc_hsh, p, q - p)) == NULL)
2109 return -1;
2110
2111 *str = q + 1;
2112 return r->reloc;
2113 }
2114
2115 /* Directives: register aliases. */
2116
2117 static struct reg_entry *
2118 insert_reg_alias (char *str, unsigned number, int type)
2119 {
2120 struct reg_entry *new_reg;
2121 const char *name;
2122
2123 if ((new_reg = (struct reg_entry *) hash_find (arm_reg_hsh, str)) != 0)
2124 {
2125 if (new_reg->builtin)
2126 as_warn (_("ignoring attempt to redefine built-in register '%s'"), str);
2127
2128 /* Only warn about a redefinition if it's not defined as the
2129 same register. */
2130 else if (new_reg->number != number || new_reg->type != type)
2131 as_warn (_("ignoring redefinition of register alias '%s'"), str);
2132
2133 return NULL;
2134 }
2135
2136 name = xstrdup (str);
2137 new_reg = (struct reg_entry *) xmalloc (sizeof (struct reg_entry));
2138
2139 new_reg->name = name;
2140 new_reg->number = number;
2141 new_reg->type = type;
2142 new_reg->builtin = FALSE;
2143 new_reg->neon = NULL;
2144
2145 if (hash_insert (arm_reg_hsh, name, (void *) new_reg))
2146 abort ();
2147
2148 return new_reg;
2149 }
2150
2151 static void
2152 insert_neon_reg_alias (char *str, int number, int type,
2153 struct neon_typed_alias *atype)
2154 {
2155 struct reg_entry *reg = insert_reg_alias (str, number, type);
2156
2157 if (!reg)
2158 {
2159 first_error (_("attempt to redefine typed alias"));
2160 return;
2161 }
2162
2163 if (atype)
2164 {
2165 reg->neon = (struct neon_typed_alias *)
2166 xmalloc (sizeof (struct neon_typed_alias));
2167 *reg->neon = *atype;
2168 }
2169 }
2170
2171 /* Look for the .req directive. This is of the form:
2172
2173 new_register_name .req existing_register_name
2174
2175 If we find one, or if it looks sufficiently like one that we want to
2176 handle any error here, return TRUE. Otherwise return FALSE. */
2177
2178 static bfd_boolean
2179 create_register_alias (char * newname, char *p)
2180 {
2181 struct reg_entry *old;
2182 char *oldname, *nbuf;
2183 size_t nlen;
2184
2185 /* The input scrubber ensures that whitespace after the mnemonic is
2186 collapsed to single spaces. */
2187 oldname = p;
2188 if (strncmp (oldname, " .req ", 6) != 0)
2189 return FALSE;
2190
2191 oldname += 6;
2192 if (*oldname == '\0')
2193 return FALSE;
2194
2195 old = (struct reg_entry *) hash_find (arm_reg_hsh, oldname);
2196 if (!old)
2197 {
2198 as_warn (_("unknown register '%s' -- .req ignored"), oldname);
2199 return TRUE;
2200 }
2201
2202 /* If TC_CASE_SENSITIVE is defined, then newname already points to
2203 the desired alias name, and p points to its end. If not, then
2204 the desired alias name is in the global original_case_string. */
2205 #ifdef TC_CASE_SENSITIVE
2206 nlen = p - newname;
2207 #else
2208 newname = original_case_string;
2209 nlen = strlen (newname);
2210 #endif
2211
2212 nbuf = (char *) alloca (nlen + 1);
2213 memcpy (nbuf, newname, nlen);
2214 nbuf[nlen] = '\0';
2215
2216 /* Create aliases under the new name as stated; an all-lowercase
2217 version of the new name; and an all-uppercase version of the new
2218 name. */
2219 if (insert_reg_alias (nbuf, old->number, old->type) != NULL)
2220 {
2221 for (p = nbuf; *p; p++)
2222 *p = TOUPPER (*p);
2223
2224 if (strncmp (nbuf, newname, nlen))
2225 {
2226 /* If this attempt to create an additional alias fails, do not bother
2227 trying to create the all-lower case alias. We will fail and issue
2228 a second, duplicate error message. This situation arises when the
2229 programmer does something like:
2230 foo .req r0
2231 Foo .req r1
2232 The second .req creates the "Foo" alias but then fails to create
2233 the artificial FOO alias because it has already been created by the
2234 first .req. */
2235 if (insert_reg_alias (nbuf, old->number, old->type) == NULL)
2236 return TRUE;
2237 }
2238
2239 for (p = nbuf; *p; p++)
2240 *p = TOLOWER (*p);
2241
2242 if (strncmp (nbuf, newname, nlen))
2243 insert_reg_alias (nbuf, old->number, old->type);
2244 }
2245
2246 return TRUE;
2247 }
2248
2249 /* Create a Neon typed/indexed register alias using directives, e.g.:
2250 X .dn d5.s32[1]
2251 Y .qn 6.s16
2252 Z .dn d7
2253 T .dn Z[0]
2254 These typed registers can be used instead of the types specified after the
2255 Neon mnemonic, so long as all operands given have types. Types can also be
2256 specified directly, e.g.:
2257 vadd d0.s32, d1.s32, d2.s32 */
2258
2259 static bfd_boolean
2260 create_neon_reg_alias (char *newname, char *p)
2261 {
2262 enum arm_reg_type basetype;
2263 struct reg_entry *basereg;
2264 struct reg_entry mybasereg;
2265 struct neon_type ntype;
2266 struct neon_typed_alias typeinfo;
2267 char *namebuf, *nameend ATTRIBUTE_UNUSED;
2268 int namelen;
2269
2270 typeinfo.defined = 0;
2271 typeinfo.eltype.type = NT_invtype;
2272 typeinfo.eltype.size = -1;
2273 typeinfo.index = -1;
2274
2275 nameend = p;
2276
2277 if (strncmp (p, " .dn ", 5) == 0)
2278 basetype = REG_TYPE_VFD;
2279 else if (strncmp (p, " .qn ", 5) == 0)
2280 basetype = REG_TYPE_NQ;
2281 else
2282 return FALSE;
2283
2284 p += 5;
2285
2286 if (*p == '\0')
2287 return FALSE;
2288
2289 basereg = arm_reg_parse_multi (&p);
2290
2291 if (basereg && basereg->type != basetype)
2292 {
2293 as_bad (_("bad type for register"));
2294 return FALSE;
2295 }
2296
2297 if (basereg == NULL)
2298 {
2299 expressionS exp;
2300 /* Try parsing as an integer. */
2301 my_get_expression (&exp, &p, GE_NO_PREFIX);
2302 if (exp.X_op != O_constant)
2303 {
2304 as_bad (_("expression must be constant"));
2305 return FALSE;
2306 }
2307 basereg = &mybasereg;
2308 basereg->number = (basetype == REG_TYPE_NQ) ? exp.X_add_number * 2
2309 : exp.X_add_number;
2310 basereg->neon = 0;
2311 }
2312
2313 if (basereg->neon)
2314 typeinfo = *basereg->neon;
2315
2316 if (parse_neon_type (&ntype, &p) == SUCCESS)
2317 {
2318 /* We got a type. */
2319 if (typeinfo.defined & NTA_HASTYPE)
2320 {
2321 as_bad (_("can't redefine the type of a register alias"));
2322 return FALSE;
2323 }
2324
2325 typeinfo.defined |= NTA_HASTYPE;
2326 if (ntype.elems != 1)
2327 {
2328 as_bad (_("you must specify a single type only"));
2329 return FALSE;
2330 }
2331 typeinfo.eltype = ntype.el[0];
2332 }
2333
2334 if (skip_past_char (&p, '[') == SUCCESS)
2335 {
2336 expressionS exp;
2337 /* We got a scalar index. */
2338
2339 if (typeinfo.defined & NTA_HASINDEX)
2340 {
2341 as_bad (_("can't redefine the index of a scalar alias"));
2342 return FALSE;
2343 }
2344
2345 my_get_expression (&exp, &p, GE_NO_PREFIX);
2346
2347 if (exp.X_op != O_constant)
2348 {
2349 as_bad (_("scalar index must be constant"));
2350 return FALSE;
2351 }
2352
2353 typeinfo.defined |= NTA_HASINDEX;
2354 typeinfo.index = exp.X_add_number;
2355
2356 if (skip_past_char (&p, ']') == FAIL)
2357 {
2358 as_bad (_("expecting ]"));
2359 return FALSE;
2360 }
2361 }
2362
2363 /* If TC_CASE_SENSITIVE is defined, then newname already points to
2364 the desired alias name, and p points to its end. If not, then
2365 the desired alias name is in the global original_case_string. */
2366 #ifdef TC_CASE_SENSITIVE
2367 namelen = nameend - newname;
2368 #else
2369 newname = original_case_string;
2370 namelen = strlen (newname);
2371 #endif
2372
2373 namebuf = (char *) alloca (namelen + 1);
2374 strncpy (namebuf, newname, namelen);
2375 namebuf[namelen] = '\0';
2376
2377 insert_neon_reg_alias (namebuf, basereg->number, basetype,
2378 typeinfo.defined != 0 ? &typeinfo : NULL);
2379
2380 /* Insert name in all uppercase. */
2381 for (p = namebuf; *p; p++)
2382 *p = TOUPPER (*p);
2383
2384 if (strncmp (namebuf, newname, namelen))
2385 insert_neon_reg_alias (namebuf, basereg->number, basetype,
2386 typeinfo.defined != 0 ? &typeinfo : NULL);
2387
2388 /* Insert name in all lowercase. */
2389 for (p = namebuf; *p; p++)
2390 *p = TOLOWER (*p);
2391
2392 if (strncmp (namebuf, newname, namelen))
2393 insert_neon_reg_alias (namebuf, basereg->number, basetype,
2394 typeinfo.defined != 0 ? &typeinfo : NULL);
2395
2396 return TRUE;
2397 }
2398
2399 /* Should never be called, as .req goes between the alias and the
2400 register name, not at the beginning of the line. */
2401
2402 static void
2403 s_req (int a ATTRIBUTE_UNUSED)
2404 {
2405 as_bad (_("invalid syntax for .req directive"));
2406 }
2407
2408 static void
2409 s_dn (int a ATTRIBUTE_UNUSED)
2410 {
2411 as_bad (_("invalid syntax for .dn directive"));
2412 }
2413
2414 static void
2415 s_qn (int a ATTRIBUTE_UNUSED)
2416 {
2417 as_bad (_("invalid syntax for .qn directive"));
2418 }
2419
2420 /* The .unreq directive deletes an alias which was previously defined
2421 by .req. For example:
2422
2423 my_alias .req r11
2424 .unreq my_alias */
2425
2426 static void
2427 s_unreq (int a ATTRIBUTE_UNUSED)
2428 {
2429 char * name;
2430 char saved_char;
2431
2432 name = input_line_pointer;
2433
2434 while (*input_line_pointer != 0
2435 && *input_line_pointer != ' '
2436 && *input_line_pointer != '\n')
2437 ++input_line_pointer;
2438
2439 saved_char = *input_line_pointer;
2440 *input_line_pointer = 0;
2441
2442 if (!*name)
2443 as_bad (_("invalid syntax for .unreq directive"));
2444 else
2445 {
2446 struct reg_entry *reg = (struct reg_entry *) hash_find (arm_reg_hsh,
2447 name);
2448
2449 if (!reg)
2450 as_bad (_("unknown register alias '%s'"), name);
2451 else if (reg->builtin)
2452 as_warn (_("ignoring attempt to use .unreq on fixed register name: '%s'"),
2453 name);
2454 else
2455 {
2456 char * p;
2457 char * nbuf;
2458
2459 hash_delete (arm_reg_hsh, name, FALSE);
2460 free ((char *) reg->name);
2461 if (reg->neon)
2462 free (reg->neon);
2463 free (reg);
2464
2465 /* Also locate the all upper case and all lower case versions.
2466 Do not complain if we cannot find one or the other as it
2467 was probably deleted above. */
2468
2469 nbuf = strdup (name);
2470 for (p = nbuf; *p; p++)
2471 *p = TOUPPER (*p);
2472 reg = (struct reg_entry *) hash_find (arm_reg_hsh, nbuf);
2473 if (reg)
2474 {
2475 hash_delete (arm_reg_hsh, nbuf, FALSE);
2476 free ((char *) reg->name);
2477 if (reg->neon)
2478 free (reg->neon);
2479 free (reg);
2480 }
2481
2482 for (p = nbuf; *p; p++)
2483 *p = TOLOWER (*p);
2484 reg = (struct reg_entry *) hash_find (arm_reg_hsh, nbuf);
2485 if (reg)
2486 {
2487 hash_delete (arm_reg_hsh, nbuf, FALSE);
2488 free ((char *) reg->name);
2489 if (reg->neon)
2490 free (reg->neon);
2491 free (reg);
2492 }
2493
2494 free (nbuf);
2495 }
2496 }
2497
2498 *input_line_pointer = saved_char;
2499 demand_empty_rest_of_line ();
2500 }
2501
2502 /* Directives: Instruction set selection. */
2503
2504 #ifdef OBJ_ELF
2505 /* This code is to handle mapping symbols as defined in the ARM ELF spec.
2506 (See "Mapping symbols", section 4.5.5, ARM AAELF version 1.0).
2507 Note that previously, $a and $t has type STT_FUNC (BSF_OBJECT flag),
2508 and $d has type STT_OBJECT (BSF_OBJECT flag). Now all three are untyped. */
2509
2510 /* Create a new mapping symbol for the transition to STATE. */
2511
2512 static void
2513 make_mapping_symbol (enum mstate state, valueT value, fragS *frag)
2514 {
2515 symbolS * symbolP;
2516 const char * symname;
2517 int type;
2518
2519 switch (state)
2520 {
2521 case MAP_DATA:
2522 symname = "$d";
2523 type = BSF_NO_FLAGS;
2524 break;
2525 case MAP_ARM:
2526 symname = "$a";
2527 type = BSF_NO_FLAGS;
2528 break;
2529 case MAP_THUMB:
2530 symname = "$t";
2531 type = BSF_NO_FLAGS;
2532 break;
2533 default:
2534 abort ();
2535 }
2536
2537 symbolP = symbol_new (symname, now_seg, value, frag);
2538 symbol_get_bfdsym (symbolP)->flags |= type | BSF_LOCAL;
2539
2540 switch (state)
2541 {
2542 case MAP_ARM:
2543 THUMB_SET_FUNC (symbolP, 0);
2544 ARM_SET_THUMB (symbolP, 0);
2545 ARM_SET_INTERWORK (symbolP, support_interwork);
2546 break;
2547
2548 case MAP_THUMB:
2549 THUMB_SET_FUNC (symbolP, 1);
2550 ARM_SET_THUMB (symbolP, 1);
2551 ARM_SET_INTERWORK (symbolP, support_interwork);
2552 break;
2553
2554 case MAP_DATA:
2555 default:
2556 break;
2557 }
2558
2559 /* Save the mapping symbols for future reference. Also check that
2560 we do not place two mapping symbols at the same offset within a
2561 frag. We'll handle overlap between frags in
2562 check_mapping_symbols.
2563
2564 If .fill or other data filling directive generates zero sized data,
2565 the mapping symbol for the following code will have the same value
2566 as the one generated for the data filling directive. In this case,
2567 we replace the old symbol with the new one at the same address. */
2568 if (value == 0)
2569 {
2570 if (frag->tc_frag_data.first_map != NULL)
2571 {
2572 know (S_GET_VALUE (frag->tc_frag_data.first_map) == 0);
2573 symbol_remove (frag->tc_frag_data.first_map, &symbol_rootP, &symbol_lastP);
2574 }
2575 frag->tc_frag_data.first_map = symbolP;
2576 }
2577 if (frag->tc_frag_data.last_map != NULL)
2578 {
2579 know (S_GET_VALUE (frag->tc_frag_data.last_map) <= S_GET_VALUE (symbolP));
2580 if (S_GET_VALUE (frag->tc_frag_data.last_map) == S_GET_VALUE (symbolP))
2581 symbol_remove (frag->tc_frag_data.last_map, &symbol_rootP, &symbol_lastP);
2582 }
2583 frag->tc_frag_data.last_map = symbolP;
2584 }
2585
2586 /* We must sometimes convert a region marked as code to data during
2587 code alignment, if an odd number of bytes have to be padded. The
2588 code mapping symbol is pushed to an aligned address. */
2589
2590 static void
2591 insert_data_mapping_symbol (enum mstate state,
2592 valueT value, fragS *frag, offsetT bytes)
2593 {
2594 /* If there was already a mapping symbol, remove it. */
2595 if (frag->tc_frag_data.last_map != NULL
2596 && S_GET_VALUE (frag->tc_frag_data.last_map) == frag->fr_address + value)
2597 {
2598 symbolS *symp = frag->tc_frag_data.last_map;
2599
2600 if (value == 0)
2601 {
2602 know (frag->tc_frag_data.first_map == symp);
2603 frag->tc_frag_data.first_map = NULL;
2604 }
2605 frag->tc_frag_data.last_map = NULL;
2606 symbol_remove (symp, &symbol_rootP, &symbol_lastP);
2607 }
2608
2609 make_mapping_symbol (MAP_DATA, value, frag);
2610 make_mapping_symbol (state, value + bytes, frag);
2611 }
2612
2613 static void mapping_state_2 (enum mstate state, int max_chars);
2614
2615 /* Set the mapping state to STATE. Only call this when about to
2616 emit some STATE bytes to the file. */
2617
2618 void
2619 mapping_state (enum mstate state)
2620 {
2621 enum mstate mapstate = seg_info (now_seg)->tc_segment_info_data.mapstate;
2622
2623 #define TRANSITION(from, to) (mapstate == (from) && state == (to))
2624
2625 if (mapstate == state)
2626 /* The mapping symbol has already been emitted.
2627 There is nothing else to do. */
2628 return;
2629
2630 if (state == MAP_ARM || state == MAP_THUMB)
2631 /* PR gas/12931
2632 All ARM instructions require 4-byte alignment.
2633 (Almost) all Thumb instructions require 2-byte alignment.
2634
2635 When emitting instructions into any section, mark the section
2636 appropriately.
2637
2638 Some Thumb instructions are alignment-sensitive modulo 4 bytes,
2639 but themselves require 2-byte alignment; this applies to some
2640 PC- relative forms. However, these cases will invovle implicit
2641 literal pool generation or an explicit .align >=2, both of
2642 which will cause the section to me marked with sufficient
2643 alignment. Thus, we don't handle those cases here. */
2644 record_alignment (now_seg, state == MAP_ARM ? 2 : 1);
2645
2646 if (TRANSITION (MAP_UNDEFINED, MAP_DATA))
2647 /* This case will be evaluated later in the next else. */
2648 return;
2649 else if (TRANSITION (MAP_UNDEFINED, MAP_ARM)
2650 || TRANSITION (MAP_UNDEFINED, MAP_THUMB))
2651 {
2652 /* Only add the symbol if the offset is > 0:
2653 if we're at the first frag, check it's size > 0;
2654 if we're not at the first frag, then for sure
2655 the offset is > 0. */
2656 struct frag * const frag_first = seg_info (now_seg)->frchainP->frch_root;
2657 const int add_symbol = (frag_now != frag_first) || (frag_now_fix () > 0);
2658
2659 if (add_symbol)
2660 make_mapping_symbol (MAP_DATA, (valueT) 0, frag_first);
2661 }
2662
2663 mapping_state_2 (state, 0);
2664 #undef TRANSITION
2665 }
2666
2667 /* Same as mapping_state, but MAX_CHARS bytes have already been
2668 allocated. Put the mapping symbol that far back. */
2669
2670 static void
2671 mapping_state_2 (enum mstate state, int max_chars)
2672 {
2673 enum mstate mapstate = seg_info (now_seg)->tc_segment_info_data.mapstate;
2674
2675 if (!SEG_NORMAL (now_seg))
2676 return;
2677
2678 if (mapstate == state)
2679 /* The mapping symbol has already been emitted.
2680 There is nothing else to do. */
2681 return;
2682
2683 seg_info (now_seg)->tc_segment_info_data.mapstate = state;
2684 make_mapping_symbol (state, (valueT) frag_now_fix () - max_chars, frag_now);
2685 }
2686 #else
2687 #define mapping_state(x) ((void)0)
2688 #define mapping_state_2(x, y) ((void)0)
2689 #endif
2690
2691 /* Find the real, Thumb encoded start of a Thumb function. */
2692
2693 #ifdef OBJ_COFF
2694 static symbolS *
2695 find_real_start (symbolS * symbolP)
2696 {
2697 char * real_start;
2698 const char * name = S_GET_NAME (symbolP);
2699 symbolS * new_target;
2700
2701 /* This definition must agree with the one in gcc/config/arm/thumb.c. */
2702 #define STUB_NAME ".real_start_of"
2703
2704 if (name == NULL)
2705 abort ();
2706
2707 /* The compiler may generate BL instructions to local labels because
2708 it needs to perform a branch to a far away location. These labels
2709 do not have a corresponding ".real_start_of" label. We check
2710 both for S_IS_LOCAL and for a leading dot, to give a way to bypass
2711 the ".real_start_of" convention for nonlocal branches. */
2712 if (S_IS_LOCAL (symbolP) || name[0] == '.')
2713 return symbolP;
2714
2715 real_start = ACONCAT ((STUB_NAME, name, NULL));
2716 new_target = symbol_find (real_start);
2717
2718 if (new_target == NULL)
2719 {
2720 as_warn (_("Failed to find real start of function: %s\n"), name);
2721 new_target = symbolP;
2722 }
2723
2724 return new_target;
2725 }
2726 #endif
2727
2728 static void
2729 opcode_select (int width)
2730 {
2731 switch (width)
2732 {
2733 case 16:
2734 if (! thumb_mode)
2735 {
2736 if (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v4t))
2737 as_bad (_("selected processor does not support THUMB opcodes"));
2738
2739 thumb_mode = 1;
2740 /* No need to force the alignment, since we will have been
2741 coming from ARM mode, which is word-aligned. */
2742 record_alignment (now_seg, 1);
2743 }
2744 break;
2745
2746 case 32:
2747 if (thumb_mode)
2748 {
2749 if (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v1))
2750 as_bad (_("selected processor does not support ARM opcodes"));
2751
2752 thumb_mode = 0;
2753
2754 if (!need_pass_2)
2755 frag_align (2, 0, 0);
2756
2757 record_alignment (now_seg, 1);
2758 }
2759 break;
2760
2761 default:
2762 as_bad (_("invalid instruction size selected (%d)"), width);
2763 }
2764 }
2765
2766 static void
2767 s_arm (int ignore ATTRIBUTE_UNUSED)
2768 {
2769 opcode_select (32);
2770 demand_empty_rest_of_line ();
2771 }
2772
2773 static void
2774 s_thumb (int ignore ATTRIBUTE_UNUSED)
2775 {
2776 opcode_select (16);
2777 demand_empty_rest_of_line ();
2778 }
2779
2780 static void
2781 s_code (int unused ATTRIBUTE_UNUSED)
2782 {
2783 int temp;
2784
2785 temp = get_absolute_expression ();
2786 switch (temp)
2787 {
2788 case 16:
2789 case 32:
2790 opcode_select (temp);
2791 break;
2792
2793 default:
2794 as_bad (_("invalid operand to .code directive (%d) (expecting 16 or 32)"), temp);
2795 }
2796 }
2797
2798 static void
2799 s_force_thumb (int ignore ATTRIBUTE_UNUSED)
2800 {
2801 /* If we are not already in thumb mode go into it, EVEN if
2802 the target processor does not support thumb instructions.
2803 This is used by gcc/config/arm/lib1funcs.asm for example
2804 to compile interworking support functions even if the
2805 target processor should not support interworking. */
2806 if (! thumb_mode)
2807 {
2808 thumb_mode = 2;
2809 record_alignment (now_seg, 1);
2810 }
2811
2812 demand_empty_rest_of_line ();
2813 }
2814
2815 static void
2816 s_thumb_func (int ignore ATTRIBUTE_UNUSED)
2817 {
2818 s_thumb (0);
2819
2820 /* The following label is the name/address of the start of a Thumb function.
2821 We need to know this for the interworking support. */
2822 label_is_thumb_function_name = TRUE;
2823 }
2824
2825 /* Perform a .set directive, but also mark the alias as
2826 being a thumb function. */
2827
2828 static void
2829 s_thumb_set (int equiv)
2830 {
2831 /* XXX the following is a duplicate of the code for s_set() in read.c
2832 We cannot just call that code as we need to get at the symbol that
2833 is created. */
2834 char * name;
2835 char delim;
2836 char * end_name;
2837 symbolS * symbolP;
2838
2839 /* Especial apologies for the random logic:
2840 This just grew, and could be parsed much more simply!
2841 Dean - in haste. */
2842 name = input_line_pointer;
2843 delim = get_symbol_end ();
2844 end_name = input_line_pointer;
2845 *end_name = delim;
2846
2847 if (*input_line_pointer != ',')
2848 {
2849 *end_name = 0;
2850 as_bad (_("expected comma after name \"%s\""), name);
2851 *end_name = delim;
2852 ignore_rest_of_line ();
2853 return;
2854 }
2855
2856 input_line_pointer++;
2857 *end_name = 0;
2858
2859 if (name[0] == '.' && name[1] == '\0')
2860 {
2861 /* XXX - this should not happen to .thumb_set. */
2862 abort ();
2863 }
2864
2865 if ((symbolP = symbol_find (name)) == NULL
2866 && (symbolP = md_undefined_symbol (name)) == NULL)
2867 {
2868 #ifndef NO_LISTING
2869 /* When doing symbol listings, play games with dummy fragments living
2870 outside the normal fragment chain to record the file and line info
2871 for this symbol. */
2872 if (listing & LISTING_SYMBOLS)
2873 {
2874 extern struct list_info_struct * listing_tail;
2875 fragS * dummy_frag = (fragS * ) xmalloc (sizeof (fragS));
2876
2877 memset (dummy_frag, 0, sizeof (fragS));
2878 dummy_frag->fr_type = rs_fill;
2879 dummy_frag->line = listing_tail;
2880 symbolP = symbol_new (name, undefined_section, 0, dummy_frag);
2881 dummy_frag->fr_symbol = symbolP;
2882 }
2883 else
2884 #endif
2885 symbolP = symbol_new (name, undefined_section, 0, &zero_address_frag);
2886
2887 #ifdef OBJ_COFF
2888 /* "set" symbols are local unless otherwise specified. */
2889 SF_SET_LOCAL (symbolP);
2890 #endif /* OBJ_COFF */
2891 } /* Make a new symbol. */
2892
2893 symbol_table_insert (symbolP);
2894
2895 * end_name = delim;
2896
2897 if (equiv
2898 && S_IS_DEFINED (symbolP)
2899 && S_GET_SEGMENT (symbolP) != reg_section)
2900 as_bad (_("symbol `%s' already defined"), S_GET_NAME (symbolP));
2901
2902 pseudo_set (symbolP);
2903
2904 demand_empty_rest_of_line ();
2905
2906 /* XXX Now we come to the Thumb specific bit of code. */
2907
2908 THUMB_SET_FUNC (symbolP, 1);
2909 ARM_SET_THUMB (symbolP, 1);
2910 #if defined OBJ_ELF || defined OBJ_COFF
2911 ARM_SET_INTERWORK (symbolP, support_interwork);
2912 #endif
2913 }
2914
2915 /* Directives: Mode selection. */
2916
2917 /* .syntax [unified|divided] - choose the new unified syntax
2918 (same for Arm and Thumb encoding, modulo slight differences in what
2919 can be represented) or the old divergent syntax for each mode. */
2920 static void
2921 s_syntax (int unused ATTRIBUTE_UNUSED)
2922 {
2923 char *name, delim;
2924
2925 name = input_line_pointer;
2926 delim = get_symbol_end ();
2927
2928 if (!strcasecmp (name, "unified"))
2929 unified_syntax = TRUE;
2930 else if (!strcasecmp (name, "divided"))
2931 unified_syntax = FALSE;
2932 else
2933 {
2934 as_bad (_("unrecognized syntax mode \"%s\""), name);
2935 return;
2936 }
2937 *input_line_pointer = delim;
2938 demand_empty_rest_of_line ();
2939 }
2940
2941 /* Directives: sectioning and alignment. */
2942
2943 /* Same as s_align_ptwo but align 0 => align 2. */
2944
2945 static void
2946 s_align (int unused ATTRIBUTE_UNUSED)
2947 {
2948 int temp;
2949 bfd_boolean fill_p;
2950 long temp_fill;
2951 long max_alignment = 15;
2952
2953 temp = get_absolute_expression ();
2954 if (temp > max_alignment)
2955 as_bad (_("alignment too large: %d assumed"), temp = max_alignment);
2956 else if (temp < 0)
2957 {
2958 as_bad (_("alignment negative. 0 assumed."));
2959 temp = 0;
2960 }
2961
2962 if (*input_line_pointer == ',')
2963 {
2964 input_line_pointer++;
2965 temp_fill = get_absolute_expression ();
2966 fill_p = TRUE;
2967 }
2968 else
2969 {
2970 fill_p = FALSE;
2971 temp_fill = 0;
2972 }
2973
2974 if (!temp)
2975 temp = 2;
2976
2977 /* Only make a frag if we HAVE to. */
2978 if (temp && !need_pass_2)
2979 {
2980 if (!fill_p && subseg_text_p (now_seg))
2981 frag_align_code (temp, 0);
2982 else
2983 frag_align (temp, (int) temp_fill, 0);
2984 }
2985 demand_empty_rest_of_line ();
2986
2987 record_alignment (now_seg, temp);
2988 }
2989
2990 static void
2991 s_bss (int ignore ATTRIBUTE_UNUSED)
2992 {
2993 /* We don't support putting frags in the BSS segment, we fake it by
2994 marking in_bss, then looking at s_skip for clues. */
2995 subseg_set (bss_section, 0);
2996 demand_empty_rest_of_line ();
2997
2998 #ifdef md_elf_section_change_hook
2999 md_elf_section_change_hook ();
3000 #endif
3001 }
3002
3003 static void
3004 s_even (int ignore ATTRIBUTE_UNUSED)
3005 {
3006 /* Never make frag if expect extra pass. */
3007 if (!need_pass_2)
3008 frag_align (1, 0, 0);
3009
3010 record_alignment (now_seg, 1);
3011
3012 demand_empty_rest_of_line ();
3013 }
3014
3015 /* Directives: Literal pools. */
3016
3017 static literal_pool *
3018 find_literal_pool (void)
3019 {
3020 literal_pool * pool;
3021
3022 for (pool = list_of_pools; pool != NULL; pool = pool->next)
3023 {
3024 if (pool->section == now_seg
3025 && pool->sub_section == now_subseg)
3026 break;
3027 }
3028
3029 return pool;
3030 }
3031
3032 static literal_pool *
3033 find_or_make_literal_pool (void)
3034 {
3035 /* Next literal pool ID number. */
3036 static unsigned int latest_pool_num = 1;
3037 literal_pool * pool;
3038
3039 pool = find_literal_pool ();
3040
3041 if (pool == NULL)
3042 {
3043 /* Create a new pool. */
3044 pool = (literal_pool *) xmalloc (sizeof (* pool));
3045 if (! pool)
3046 return NULL;
3047
3048 pool->next_free_entry = 0;
3049 pool->section = now_seg;
3050 pool->sub_section = now_subseg;
3051 pool->next = list_of_pools;
3052 pool->symbol = NULL;
3053
3054 /* Add it to the list. */
3055 list_of_pools = pool;
3056 }
3057
3058 /* New pools, and emptied pools, will have a NULL symbol. */
3059 if (pool->symbol == NULL)
3060 {
3061 pool->symbol = symbol_create (FAKE_LABEL_NAME, undefined_section,
3062 (valueT) 0, &zero_address_frag);
3063 pool->id = latest_pool_num ++;
3064 }
3065
3066 /* Done. */
3067 return pool;
3068 }
3069
3070 /* Add the literal in the global 'inst'
3071 structure to the relevant literal pool. */
3072
3073 static int
3074 add_to_lit_pool (void)
3075 {
3076 literal_pool * pool;
3077 unsigned int entry;
3078
3079 pool = find_or_make_literal_pool ();
3080
3081 /* Check if this literal value is already in the pool. */
3082 for (entry = 0; entry < pool->next_free_entry; entry ++)
3083 {
3084 if ((pool->literals[entry].X_op == inst.reloc.exp.X_op)
3085 && (inst.reloc.exp.X_op == O_constant)
3086 && (pool->literals[entry].X_add_number
3087 == inst.reloc.exp.X_add_number)
3088 && (pool->literals[entry].X_unsigned
3089 == inst.reloc.exp.X_unsigned))
3090 break;
3091
3092 if ((pool->literals[entry].X_op == inst.reloc.exp.X_op)
3093 && (inst.reloc.exp.X_op == O_symbol)
3094 && (pool->literals[entry].X_add_number
3095 == inst.reloc.exp.X_add_number)
3096 && (pool->literals[entry].X_add_symbol
3097 == inst.reloc.exp.X_add_symbol)
3098 && (pool->literals[entry].X_op_symbol
3099 == inst.reloc.exp.X_op_symbol))
3100 break;
3101 }
3102
3103 /* Do we need to create a new entry? */
3104 if (entry == pool->next_free_entry)
3105 {
3106 if (entry >= MAX_LITERAL_POOL_SIZE)
3107 {
3108 inst.error = _("literal pool overflow");
3109 return FAIL;
3110 }
3111
3112 pool->literals[entry] = inst.reloc.exp;
3113 #ifdef OBJ_ELF
3114 /* PR ld/12974: Record the location of the first source line to reference
3115 this entry in the literal pool. If it turns out during linking that the
3116 symbol does not exist we will be able to give an accurate line number for
3117 the (first use of the) missing reference. */
3118 if (debug_type == DEBUG_DWARF2)
3119 dwarf2_where (pool->locs + entry);
3120 #endif
3121 pool->next_free_entry += 1;
3122 }
3123
3124 inst.reloc.exp.X_op = O_symbol;
3125 inst.reloc.exp.X_add_number = ((int) entry) * 4;
3126 inst.reloc.exp.X_add_symbol = pool->symbol;
3127
3128 return SUCCESS;
3129 }
3130
3131 /* Can't use symbol_new here, so have to create a symbol and then at
3132 a later date assign it a value. Thats what these functions do. */
3133
3134 static void
3135 symbol_locate (symbolS * symbolP,
3136 const char * name, /* It is copied, the caller can modify. */
3137 segT segment, /* Segment identifier (SEG_<something>). */
3138 valueT valu, /* Symbol value. */
3139 fragS * frag) /* Associated fragment. */
3140 {
3141 unsigned int name_length;
3142 char * preserved_copy_of_name;
3143
3144 name_length = strlen (name) + 1; /* +1 for \0. */
3145 obstack_grow (&notes, name, name_length);
3146 preserved_copy_of_name = (char *) obstack_finish (&notes);
3147
3148 #ifdef tc_canonicalize_symbol_name
3149 preserved_copy_of_name =
3150 tc_canonicalize_symbol_name (preserved_copy_of_name);
3151 #endif
3152
3153 S_SET_NAME (symbolP, preserved_copy_of_name);
3154
3155 S_SET_SEGMENT (symbolP, segment);
3156 S_SET_VALUE (symbolP, valu);
3157 symbol_clear_list_pointers (symbolP);
3158
3159 symbol_set_frag (symbolP, frag);
3160
3161 /* Link to end of symbol chain. */
3162 {
3163 extern int symbol_table_frozen;
3164
3165 if (symbol_table_frozen)
3166 abort ();
3167 }
3168
3169 symbol_append (symbolP, symbol_lastP, & symbol_rootP, & symbol_lastP);
3170
3171 obj_symbol_new_hook (symbolP);
3172
3173 #ifdef tc_symbol_new_hook
3174 tc_symbol_new_hook (symbolP);
3175 #endif
3176
3177 #ifdef DEBUG_SYMS
3178 verify_symbol_chain (symbol_rootP, symbol_lastP);
3179 #endif /* DEBUG_SYMS */
3180 }
3181
3182
3183 static void
3184 s_ltorg (int ignored ATTRIBUTE_UNUSED)
3185 {
3186 unsigned int entry;
3187 literal_pool * pool;
3188 char sym_name[20];
3189
3190 pool = find_literal_pool ();
3191 if (pool == NULL
3192 || pool->symbol == NULL
3193 || pool->next_free_entry == 0)
3194 return;
3195
3196 mapping_state (MAP_DATA);
3197
3198 /* Align pool as you have word accesses.
3199 Only make a frag if we have to. */
3200 if (!need_pass_2)
3201 frag_align (2, 0, 0);
3202
3203 record_alignment (now_seg, 2);
3204
3205 sprintf (sym_name, "$$lit_\002%x", pool->id);
3206
3207 symbol_locate (pool->symbol, sym_name, now_seg,
3208 (valueT) frag_now_fix (), frag_now);
3209 symbol_table_insert (pool->symbol);
3210
3211 ARM_SET_THUMB (pool->symbol, thumb_mode);
3212
3213 #if defined OBJ_COFF || defined OBJ_ELF
3214 ARM_SET_INTERWORK (pool->symbol, support_interwork);
3215 #endif
3216
3217 for (entry = 0; entry < pool->next_free_entry; entry ++)
3218 {
3219 #ifdef OBJ_ELF
3220 if (debug_type == DEBUG_DWARF2)
3221 dwarf2_gen_line_info (frag_now_fix (), pool->locs + entry);
3222 #endif
3223 /* First output the expression in the instruction to the pool. */
3224 emit_expr (&(pool->literals[entry]), 4); /* .word */
3225 }
3226
3227 /* Mark the pool as empty. */
3228 pool->next_free_entry = 0;
3229 pool->symbol = NULL;
3230 }
3231
3232 #ifdef OBJ_ELF
3233 /* Forward declarations for functions below, in the MD interface
3234 section. */
3235 static void fix_new_arm (fragS *, int, short, expressionS *, int, int);
3236 static valueT create_unwind_entry (int);
3237 static void start_unwind_section (const segT, int);
3238 static void add_unwind_opcode (valueT, int);
3239 static void flush_pending_unwind (void);
3240
3241 /* Directives: Data. */
3242
3243 static void
3244 s_arm_elf_cons (int nbytes)
3245 {
3246 expressionS exp;
3247
3248 #ifdef md_flush_pending_output
3249 md_flush_pending_output ();
3250 #endif
3251
3252 if (is_it_end_of_statement ())
3253 {
3254 demand_empty_rest_of_line ();
3255 return;
3256 }
3257
3258 #ifdef md_cons_align
3259 md_cons_align (nbytes);
3260 #endif
3261
3262 mapping_state (MAP_DATA);
3263 do
3264 {
3265 int reloc;
3266 char *base = input_line_pointer;
3267
3268 expression (& exp);
3269
3270 if (exp.X_op != O_symbol)
3271 emit_expr (&exp, (unsigned int) nbytes);
3272 else
3273 {
3274 char *before_reloc = input_line_pointer;
3275 reloc = parse_reloc (&input_line_pointer);
3276 if (reloc == -1)
3277 {
3278 as_bad (_("unrecognized relocation suffix"));
3279 ignore_rest_of_line ();
3280 return;
3281 }
3282 else if (reloc == BFD_RELOC_UNUSED)
3283 emit_expr (&exp, (unsigned int) nbytes);
3284 else
3285 {
3286 reloc_howto_type *howto = (reloc_howto_type *)
3287 bfd_reloc_type_lookup (stdoutput,
3288 (bfd_reloc_code_real_type) reloc);
3289 int size = bfd_get_reloc_size (howto);
3290
3291 if (reloc == BFD_RELOC_ARM_PLT32)
3292 {
3293 as_bad (_("(plt) is only valid on branch targets"));
3294 reloc = BFD_RELOC_UNUSED;
3295 size = 0;
3296 }
3297
3298 if (size > nbytes)
3299 as_bad (_("%s relocations do not fit in %d bytes"),
3300 howto->name, nbytes);
3301 else
3302 {
3303 /* We've parsed an expression stopping at O_symbol.
3304 But there may be more expression left now that we
3305 have parsed the relocation marker. Parse it again.
3306 XXX Surely there is a cleaner way to do this. */
3307 char *p = input_line_pointer;
3308 int offset;
3309 char *save_buf = (char *) alloca (input_line_pointer - base);
3310 memcpy (save_buf, base, input_line_pointer - base);
3311 memmove (base + (input_line_pointer - before_reloc),
3312 base, before_reloc - base);
3313
3314 input_line_pointer = base + (input_line_pointer-before_reloc);
3315 expression (&exp);
3316 memcpy (base, save_buf, p - base);
3317
3318 offset = nbytes - size;
3319 p = frag_more ((int) nbytes);
3320 fix_new_exp (frag_now, p - frag_now->fr_literal + offset,
3321 size, &exp, 0, (enum bfd_reloc_code_real) reloc);
3322 }
3323 }
3324 }
3325 }
3326 while (*input_line_pointer++ == ',');
3327
3328 /* Put terminator back into stream. */
3329 input_line_pointer --;
3330 demand_empty_rest_of_line ();
3331 }
3332
3333 /* Emit an expression containing a 32-bit thumb instruction.
3334 Implementation based on put_thumb32_insn. */
3335
3336 static void
3337 emit_thumb32_expr (expressionS * exp)
3338 {
3339 expressionS exp_high = *exp;
3340
3341 exp_high.X_add_number = (unsigned long)exp_high.X_add_number >> 16;
3342 emit_expr (& exp_high, (unsigned int) THUMB_SIZE);
3343 exp->X_add_number &= 0xffff;
3344 emit_expr (exp, (unsigned int) THUMB_SIZE);
3345 }
3346
3347 /* Guess the instruction size based on the opcode. */
3348
3349 static int
3350 thumb_insn_size (int opcode)
3351 {
3352 if ((unsigned int) opcode < 0xe800u)
3353 return 2;
3354 else if ((unsigned int) opcode >= 0xe8000000u)
3355 return 4;
3356 else
3357 return 0;
3358 }
3359
3360 static bfd_boolean
3361 emit_insn (expressionS *exp, int nbytes)
3362 {
3363 int size = 0;
3364
3365 if (exp->X_op == O_constant)
3366 {
3367 size = nbytes;
3368
3369 if (size == 0)
3370 size = thumb_insn_size (exp->X_add_number);
3371
3372 if (size != 0)
3373 {
3374 if (size == 2 && (unsigned int)exp->X_add_number > 0xffffu)
3375 {
3376 as_bad (_(".inst.n operand too big. "\
3377 "Use .inst.w instead"));
3378 size = 0;
3379 }
3380 else
3381 {
3382 if (now_it.state == AUTOMATIC_IT_BLOCK)
3383 set_it_insn_type_nonvoid (OUTSIDE_IT_INSN, 0);
3384 else
3385 set_it_insn_type_nonvoid (NEUTRAL_IT_INSN, 0);
3386
3387 if (thumb_mode && (size > THUMB_SIZE) && !target_big_endian)
3388 emit_thumb32_expr (exp);
3389 else
3390 emit_expr (exp, (unsigned int) size);
3391
3392 it_fsm_post_encode ();
3393 }
3394 }
3395 else
3396 as_bad (_("cannot determine Thumb instruction size. " \
3397 "Use .inst.n/.inst.w instead"));
3398 }
3399 else
3400 as_bad (_("constant expression required"));
3401
3402 return (size != 0);
3403 }
3404
3405 /* Like s_arm_elf_cons but do not use md_cons_align and
3406 set the mapping state to MAP_ARM/MAP_THUMB. */
3407
3408 static void
3409 s_arm_elf_inst (int nbytes)
3410 {
3411 if (is_it_end_of_statement ())
3412 {
3413 demand_empty_rest_of_line ();
3414 return;
3415 }
3416
3417 /* Calling mapping_state () here will not change ARM/THUMB,
3418 but will ensure not to be in DATA state. */
3419
3420 if (thumb_mode)
3421 mapping_state (MAP_THUMB);
3422 else
3423 {
3424 if (nbytes != 0)
3425 {
3426 as_bad (_("width suffixes are invalid in ARM mode"));
3427 ignore_rest_of_line ();
3428 return;
3429 }
3430
3431 nbytes = 4;
3432
3433 mapping_state (MAP_ARM);
3434 }
3435
3436 do
3437 {
3438 expressionS exp;
3439
3440 expression (& exp);
3441
3442 if (! emit_insn (& exp, nbytes))
3443 {
3444 ignore_rest_of_line ();
3445 return;
3446 }
3447 }
3448 while (*input_line_pointer++ == ',');
3449
3450 /* Put terminator back into stream. */
3451 input_line_pointer --;
3452 demand_empty_rest_of_line ();
3453 }
3454
3455 /* Parse a .rel31 directive. */
3456
3457 static void
3458 s_arm_rel31 (int ignored ATTRIBUTE_UNUSED)
3459 {
3460 expressionS exp;
3461 char *p;
3462 valueT highbit;
3463
3464 highbit = 0;
3465 if (*input_line_pointer == '1')
3466 highbit = 0x80000000;
3467 else if (*input_line_pointer != '0')
3468 as_bad (_("expected 0 or 1"));
3469
3470 input_line_pointer++;
3471 if (*input_line_pointer != ',')
3472 as_bad (_("missing comma"));
3473 input_line_pointer++;
3474
3475 #ifdef md_flush_pending_output
3476 md_flush_pending_output ();
3477 #endif
3478
3479 #ifdef md_cons_align
3480 md_cons_align (4);
3481 #endif
3482
3483 mapping_state (MAP_DATA);
3484
3485 expression (&exp);
3486
3487 p = frag_more (4);
3488 md_number_to_chars (p, highbit, 4);
3489 fix_new_arm (frag_now, p - frag_now->fr_literal, 4, &exp, 1,
3490 BFD_RELOC_ARM_PREL31);
3491
3492 demand_empty_rest_of_line ();
3493 }
3494
3495 /* Directives: AEABI stack-unwind tables. */
3496
3497 /* Parse an unwind_fnstart directive. Simply records the current location. */
3498
3499 static void
3500 s_arm_unwind_fnstart (int ignored ATTRIBUTE_UNUSED)
3501 {
3502 demand_empty_rest_of_line ();
3503 if (unwind.proc_start)
3504 {
3505 as_bad (_("duplicate .fnstart directive"));
3506 return;
3507 }
3508
3509 /* Mark the start of the function. */
3510 unwind.proc_start = expr_build_dot ();
3511
3512 /* Reset the rest of the unwind info. */
3513 unwind.opcode_count = 0;
3514 unwind.table_entry = NULL;
3515 unwind.personality_routine = NULL;
3516 unwind.personality_index = -1;
3517 unwind.frame_size = 0;
3518 unwind.fp_offset = 0;
3519 unwind.fp_reg = REG_SP;
3520 unwind.fp_used = 0;
3521 unwind.sp_restored = 0;
3522 }
3523
3524
3525 /* Parse a handlerdata directive. Creates the exception handling table entry
3526 for the function. */
3527
3528 static void
3529 s_arm_unwind_handlerdata (int ignored ATTRIBUTE_UNUSED)
3530 {
3531 demand_empty_rest_of_line ();
3532 if (!unwind.proc_start)
3533 as_bad (MISSING_FNSTART);
3534
3535 if (unwind.table_entry)
3536 as_bad (_("duplicate .handlerdata directive"));
3537
3538 create_unwind_entry (1);
3539 }
3540
3541 /* Parse an unwind_fnend directive. Generates the index table entry. */
3542
3543 static void
3544 s_arm_unwind_fnend (int ignored ATTRIBUTE_UNUSED)
3545 {
3546 long where;
3547 char *ptr;
3548 valueT val;
3549 unsigned int marked_pr_dependency;
3550
3551 demand_empty_rest_of_line ();
3552
3553 if (!unwind.proc_start)
3554 {
3555 as_bad (_(".fnend directive without .fnstart"));
3556 return;
3557 }
3558
3559 /* Add eh table entry. */
3560 if (unwind.table_entry == NULL)
3561 val = create_unwind_entry (0);
3562 else
3563 val = 0;
3564
3565 /* Add index table entry. This is two words. */
3566 start_unwind_section (unwind.saved_seg, 1);
3567 frag_align (2, 0, 0);
3568 record_alignment (now_seg, 2);
3569
3570 ptr = frag_more (8);
3571 memset (ptr, 0, 8);
3572 where = frag_now_fix () - 8;
3573
3574 /* Self relative offset of the function start. */
3575 fix_new (frag_now, where, 4, unwind.proc_start, 0, 1,
3576 BFD_RELOC_ARM_PREL31);
3577
3578 /* Indicate dependency on EHABI-defined personality routines to the
3579 linker, if it hasn't been done already. */
3580 marked_pr_dependency
3581 = seg_info (now_seg)->tc_segment_info_data.marked_pr_dependency;
3582 if (unwind.personality_index >= 0 && unwind.personality_index < 3
3583 && !(marked_pr_dependency & (1 << unwind.personality_index)))
3584 {
3585 static const char *const name[] =
3586 {
3587 "__aeabi_unwind_cpp_pr0",
3588 "__aeabi_unwind_cpp_pr1",
3589 "__aeabi_unwind_cpp_pr2"
3590 };
3591 symbolS *pr = symbol_find_or_make (name[unwind.personality_index]);
3592 fix_new (frag_now, where, 0, pr, 0, 1, BFD_RELOC_NONE);
3593 seg_info (now_seg)->tc_segment_info_data.marked_pr_dependency
3594 |= 1 << unwind.personality_index;
3595 }
3596
3597 if (val)
3598 /* Inline exception table entry. */
3599 md_number_to_chars (ptr + 4, val, 4);
3600 else
3601 /* Self relative offset of the table entry. */
3602 fix_new (frag_now, where + 4, 4, unwind.table_entry, 0, 1,
3603 BFD_RELOC_ARM_PREL31);
3604
3605 /* Restore the original section. */
3606 subseg_set (unwind.saved_seg, unwind.saved_subseg);
3607
3608 unwind.proc_start = NULL;
3609 }
3610
3611
3612 /* Parse an unwind_cantunwind directive. */
3613
3614 static void
3615 s_arm_unwind_cantunwind (int ignored ATTRIBUTE_UNUSED)
3616 {
3617 demand_empty_rest_of_line ();
3618 if (!unwind.proc_start)
3619 as_bad (MISSING_FNSTART);
3620
3621 if (unwind.personality_routine || unwind.personality_index != -1)
3622 as_bad (_("personality routine specified for cantunwind frame"));
3623
3624 unwind.personality_index = -2;
3625 }
3626
3627
3628 /* Parse a personalityindex directive. */
3629
3630 static void
3631 s_arm_unwind_personalityindex (int ignored ATTRIBUTE_UNUSED)
3632 {
3633 expressionS exp;
3634
3635 if (!unwind.proc_start)
3636 as_bad (MISSING_FNSTART);
3637
3638 if (unwind.personality_routine || unwind.personality_index != -1)
3639 as_bad (_("duplicate .personalityindex directive"));
3640
3641 expression (&exp);
3642
3643 if (exp.X_op != O_constant
3644 || exp.X_add_number < 0 || exp.X_add_number > 15)
3645 {
3646 as_bad (_("bad personality routine number"));
3647 ignore_rest_of_line ();
3648 return;
3649 }
3650
3651 unwind.personality_index = exp.X_add_number;
3652
3653 demand_empty_rest_of_line ();
3654 }
3655
3656
3657 /* Parse a personality directive. */
3658
3659 static void
3660 s_arm_unwind_personality (int ignored ATTRIBUTE_UNUSED)
3661 {
3662 char *name, *p, c;
3663
3664 if (!unwind.proc_start)
3665 as_bad (MISSING_FNSTART);
3666
3667 if (unwind.personality_routine || unwind.personality_index != -1)
3668 as_bad (_("duplicate .personality directive"));
3669
3670 name = input_line_pointer;
3671 c = get_symbol_end ();
3672 p = input_line_pointer;
3673 unwind.personality_routine = symbol_find_or_make (name);
3674 *p = c;
3675 demand_empty_rest_of_line ();
3676 }
3677
3678
3679 /* Parse a directive saving core registers. */
3680
3681 static void
3682 s_arm_unwind_save_core (void)
3683 {
3684 valueT op;
3685 long range;
3686 int n;
3687
3688 range = parse_reg_list (&input_line_pointer);
3689 if (range == FAIL)
3690 {
3691 as_bad (_("expected register list"));
3692 ignore_rest_of_line ();
3693 return;
3694 }
3695
3696 demand_empty_rest_of_line ();
3697
3698 /* Turn .unwind_movsp ip followed by .unwind_save {..., ip, ...}
3699 into .unwind_save {..., sp...}. We aren't bothered about the value of
3700 ip because it is clobbered by calls. */
3701 if (unwind.sp_restored && unwind.fp_reg == 12
3702 && (range & 0x3000) == 0x1000)
3703 {
3704 unwind.opcode_count--;
3705 unwind.sp_restored = 0;
3706 range = (range | 0x2000) & ~0x1000;
3707 unwind.pending_offset = 0;
3708 }
3709
3710 /* Pop r4-r15. */
3711 if (range & 0xfff0)
3712 {
3713 /* See if we can use the short opcodes. These pop a block of up to 8
3714 registers starting with r4, plus maybe r14. */
3715 for (n = 0; n < 8; n++)
3716 {
3717 /* Break at the first non-saved register. */
3718 if ((range & (1 << (n + 4))) == 0)
3719 break;
3720 }
3721 /* See if there are any other bits set. */
3722 if (n == 0 || (range & (0xfff0 << n) & 0xbff0) != 0)
3723 {
3724 /* Use the long form. */
3725 op = 0x8000 | ((range >> 4) & 0xfff);
3726 add_unwind_opcode (op, 2);
3727 }
3728 else
3729 {
3730 /* Use the short form. */
3731 if (range & 0x4000)
3732 op = 0xa8; /* Pop r14. */
3733 else
3734 op = 0xa0; /* Do not pop r14. */
3735 op |= (n - 1);
3736 add_unwind_opcode (op, 1);
3737 }
3738 }
3739
3740 /* Pop r0-r3. */
3741 if (range & 0xf)
3742 {
3743 op = 0xb100 | (range & 0xf);
3744 add_unwind_opcode (op, 2);
3745 }
3746
3747 /* Record the number of bytes pushed. */
3748 for (n = 0; n < 16; n++)
3749 {
3750 if (range & (1 << n))
3751 unwind.frame_size += 4;
3752 }
3753 }
3754
3755
3756 /* Parse a directive saving FPA registers. */
3757
3758 static void
3759 s_arm_unwind_save_fpa (int reg)
3760 {
3761 expressionS exp;
3762 int num_regs;
3763 valueT op;
3764
3765 /* Get Number of registers to transfer. */
3766 if (skip_past_comma (&input_line_pointer) != FAIL)
3767 expression (&exp);
3768 else
3769 exp.X_op = O_illegal;
3770
3771 if (exp.X_op != O_constant)
3772 {
3773 as_bad (_("expected , <constant>"));
3774 ignore_rest_of_line ();
3775 return;
3776 }
3777
3778 num_regs = exp.X_add_number;
3779
3780 if (num_regs < 1 || num_regs > 4)
3781 {
3782 as_bad (_("number of registers must be in the range [1:4]"));
3783 ignore_rest_of_line ();
3784 return;
3785 }
3786
3787 demand_empty_rest_of_line ();
3788
3789 if (reg == 4)
3790 {
3791 /* Short form. */
3792 op = 0xb4 | (num_regs - 1);
3793 add_unwind_opcode (op, 1);
3794 }
3795 else
3796 {
3797 /* Long form. */
3798 op = 0xc800 | (reg << 4) | (num_regs - 1);
3799 add_unwind_opcode (op, 2);
3800 }
3801 unwind.frame_size += num_regs * 12;
3802 }
3803
3804
3805 /* Parse a directive saving VFP registers for ARMv6 and above. */
3806
3807 static void
3808 s_arm_unwind_save_vfp_armv6 (void)
3809 {
3810 int count;
3811 unsigned int start;
3812 valueT op;
3813 int num_vfpv3_regs = 0;
3814 int num_regs_below_16;
3815
3816 count = parse_vfp_reg_list (&input_line_pointer, &start, REGLIST_VFP_D);
3817 if (count == FAIL)
3818 {
3819 as_bad (_("expected register list"));
3820 ignore_rest_of_line ();
3821 return;
3822 }
3823
3824 demand_empty_rest_of_line ();
3825
3826 /* We always generate FSTMD/FLDMD-style unwinding opcodes (rather
3827 than FSTMX/FLDMX-style ones). */
3828
3829 /* Generate opcode for (VFPv3) registers numbered in the range 16 .. 31. */
3830 if (start >= 16)
3831 num_vfpv3_regs = count;
3832 else if (start + count > 16)
3833 num_vfpv3_regs = start + count - 16;
3834
3835 if (num_vfpv3_regs > 0)
3836 {
3837 int start_offset = start > 16 ? start - 16 : 0;
3838 op = 0xc800 | (start_offset << 4) | (num_vfpv3_regs - 1);
3839 add_unwind_opcode (op, 2);
3840 }
3841
3842 /* Generate opcode for registers numbered in the range 0 .. 15. */
3843 num_regs_below_16 = num_vfpv3_regs > 0 ? 16 - (int) start : count;
3844 gas_assert (num_regs_below_16 + num_vfpv3_regs == count);
3845 if (num_regs_below_16 > 0)
3846 {
3847 op = 0xc900 | (start << 4) | (num_regs_below_16 - 1);
3848 add_unwind_opcode (op, 2);
3849 }
3850
3851 unwind.frame_size += count * 8;
3852 }
3853
3854
3855 /* Parse a directive saving VFP registers for pre-ARMv6. */
3856
3857 static void
3858 s_arm_unwind_save_vfp (void)
3859 {
3860 int count;
3861 unsigned int reg;
3862 valueT op;
3863
3864 count = parse_vfp_reg_list (&input_line_pointer, &reg, REGLIST_VFP_D);
3865 if (count == FAIL)
3866 {
3867 as_bad (_("expected register list"));
3868 ignore_rest_of_line ();
3869 return;
3870 }
3871
3872 demand_empty_rest_of_line ();
3873
3874 if (reg == 8)
3875 {
3876 /* Short form. */
3877 op = 0xb8 | (count - 1);
3878 add_unwind_opcode (op, 1);
3879 }
3880 else
3881 {
3882 /* Long form. */
3883 op = 0xb300 | (reg << 4) | (count - 1);
3884 add_unwind_opcode (op, 2);
3885 }
3886 unwind.frame_size += count * 8 + 4;
3887 }
3888
3889
3890 /* Parse a directive saving iWMMXt data registers. */
3891
3892 static void
3893 s_arm_unwind_save_mmxwr (void)
3894 {
3895 int reg;
3896 int hi_reg;
3897 int i;
3898 unsigned mask = 0;
3899 valueT op;
3900
3901 if (*input_line_pointer == '{')
3902 input_line_pointer++;
3903
3904 do
3905 {
3906 reg = arm_reg_parse (&input_line_pointer, REG_TYPE_MMXWR);
3907
3908 if (reg == FAIL)
3909 {
3910 as_bad ("%s", _(reg_expected_msgs[REG_TYPE_MMXWR]));
3911 goto error;
3912 }
3913
3914 if (mask >> reg)
3915 as_tsktsk (_("register list not in ascending order"));
3916 mask |= 1 << reg;
3917
3918 if (*input_line_pointer == '-')
3919 {
3920 input_line_pointer++;
3921 hi_reg = arm_reg_parse (&input_line_pointer, REG_TYPE_MMXWR);
3922 if (hi_reg == FAIL)
3923 {
3924 as_bad ("%s", _(reg_expected_msgs[REG_TYPE_MMXWR]));
3925 goto error;
3926 }
3927 else if (reg >= hi_reg)
3928 {
3929 as_bad (_("bad register range"));
3930 goto error;
3931 }
3932 for (; reg < hi_reg; reg++)
3933 mask |= 1 << reg;
3934 }
3935 }
3936 while (skip_past_comma (&input_line_pointer) != FAIL);
3937
3938 skip_past_char (&input_line_pointer, '}');
3939
3940 demand_empty_rest_of_line ();
3941
3942 /* Generate any deferred opcodes because we're going to be looking at
3943 the list. */
3944 flush_pending_unwind ();
3945
3946 for (i = 0; i < 16; i++)
3947 {
3948 if (mask & (1 << i))
3949 unwind.frame_size += 8;
3950 }
3951
3952 /* Attempt to combine with a previous opcode. We do this because gcc
3953 likes to output separate unwind directives for a single block of
3954 registers. */
3955 if (unwind.opcode_count > 0)
3956 {
3957 i = unwind.opcodes[unwind.opcode_count - 1];
3958 if ((i & 0xf8) == 0xc0)
3959 {
3960 i &= 7;
3961 /* Only merge if the blocks are contiguous. */
3962 if (i < 6)
3963 {
3964 if ((mask & 0xfe00) == (1 << 9))
3965 {
3966 mask |= ((1 << (i + 11)) - 1) & 0xfc00;
3967 unwind.opcode_count--;
3968 }
3969 }
3970 else if (i == 6 && unwind.opcode_count >= 2)
3971 {
3972 i = unwind.opcodes[unwind.opcode_count - 2];
3973 reg = i >> 4;
3974 i &= 0xf;
3975
3976 op = 0xffff << (reg - 1);
3977 if (reg > 0
3978 && ((mask & op) == (1u << (reg - 1))))
3979 {
3980 op = (1 << (reg + i + 1)) - 1;
3981 op &= ~((1 << reg) - 1);
3982 mask |= op;
3983 unwind.opcode_count -= 2;
3984 }
3985 }
3986 }
3987 }
3988
3989 hi_reg = 15;
3990 /* We want to generate opcodes in the order the registers have been
3991 saved, ie. descending order. */
3992 for (reg = 15; reg >= -1; reg--)
3993 {
3994 /* Save registers in blocks. */
3995 if (reg < 0
3996 || !(mask & (1 << reg)))
3997 {
3998 /* We found an unsaved reg. Generate opcodes to save the
3999 preceding block. */
4000 if (reg != hi_reg)
4001 {
4002 if (reg == 9)
4003 {
4004 /* Short form. */
4005 op = 0xc0 | (hi_reg - 10);
4006 add_unwind_opcode (op, 1);
4007 }
4008 else
4009 {
4010 /* Long form. */
4011 op = 0xc600 | ((reg + 1) << 4) | ((hi_reg - reg) - 1);
4012 add_unwind_opcode (op, 2);
4013 }
4014 }
4015 hi_reg = reg - 1;
4016 }
4017 }
4018
4019 return;
4020 error:
4021 ignore_rest_of_line ();
4022 }
4023
4024 static void
4025 s_arm_unwind_save_mmxwcg (void)
4026 {
4027 int reg;
4028 int hi_reg;
4029 unsigned mask = 0;
4030 valueT op;
4031
4032 if (*input_line_pointer == '{')
4033 input_line_pointer++;
4034
4035 skip_whitespace (input_line_pointer);
4036
4037 do
4038 {
4039 reg = arm_reg_parse (&input_line_pointer, REG_TYPE_MMXWCG);
4040
4041 if (reg == FAIL)
4042 {
4043 as_bad ("%s", _(reg_expected_msgs[REG_TYPE_MMXWCG]));
4044 goto error;
4045 }
4046
4047 reg -= 8;
4048 if (mask >> reg)
4049 as_tsktsk (_("register list not in ascending order"));
4050 mask |= 1 << reg;
4051
4052 if (*input_line_pointer == '-')
4053 {
4054 input_line_pointer++;
4055 hi_reg = arm_reg_parse (&input_line_pointer, REG_TYPE_MMXWCG);
4056 if (hi_reg == FAIL)
4057 {
4058 as_bad ("%s", _(reg_expected_msgs[REG_TYPE_MMXWCG]));
4059 goto error;
4060 }
4061 else if (reg >= hi_reg)
4062 {
4063 as_bad (_("bad register range"));
4064 goto error;
4065 }
4066 for (; reg < hi_reg; reg++)
4067 mask |= 1 << reg;
4068 }
4069 }
4070 while (skip_past_comma (&input_line_pointer) != FAIL);
4071
4072 skip_past_char (&input_line_pointer, '}');
4073
4074 demand_empty_rest_of_line ();
4075
4076 /* Generate any deferred opcodes because we're going to be looking at
4077 the list. */
4078 flush_pending_unwind ();
4079
4080 for (reg = 0; reg < 16; reg++)
4081 {
4082 if (mask & (1 << reg))
4083 unwind.frame_size += 4;
4084 }
4085 op = 0xc700 | mask;
4086 add_unwind_opcode (op, 2);
4087 return;
4088 error:
4089 ignore_rest_of_line ();
4090 }
4091
4092
4093 /* Parse an unwind_save directive.
4094 If the argument is non-zero, this is a .vsave directive. */
4095
4096 static void
4097 s_arm_unwind_save (int arch_v6)
4098 {
4099 char *peek;
4100 struct reg_entry *reg;
4101 bfd_boolean had_brace = FALSE;
4102
4103 if (!unwind.proc_start)
4104 as_bad (MISSING_FNSTART);
4105
4106 /* Figure out what sort of save we have. */
4107 peek = input_line_pointer;
4108
4109 if (*peek == '{')
4110 {
4111 had_brace = TRUE;
4112 peek++;
4113 }
4114
4115 reg = arm_reg_parse_multi (&peek);
4116
4117 if (!reg)
4118 {
4119 as_bad (_("register expected"));
4120 ignore_rest_of_line ();
4121 return;
4122 }
4123
4124 switch (reg->type)
4125 {
4126 case REG_TYPE_FN:
4127 if (had_brace)
4128 {
4129 as_bad (_("FPA .unwind_save does not take a register list"));
4130 ignore_rest_of_line ();
4131 return;
4132 }
4133 input_line_pointer = peek;
4134 s_arm_unwind_save_fpa (reg->number);
4135 return;
4136
4137 case REG_TYPE_RN: s_arm_unwind_save_core (); return;
4138 case REG_TYPE_VFD:
4139 if (arch_v6)
4140 s_arm_unwind_save_vfp_armv6 ();
4141 else
4142 s_arm_unwind_save_vfp ();
4143 return;
4144 case REG_TYPE_MMXWR: s_arm_unwind_save_mmxwr (); return;
4145 case REG_TYPE_MMXWCG: s_arm_unwind_save_mmxwcg (); return;
4146
4147 default:
4148 as_bad (_(".unwind_save does not support this kind of register"));
4149 ignore_rest_of_line ();
4150 }
4151 }
4152
4153
4154 /* Parse an unwind_movsp directive. */
4155
4156 static void
4157 s_arm_unwind_movsp (int ignored ATTRIBUTE_UNUSED)
4158 {
4159 int reg;
4160 valueT op;
4161 int offset;
4162
4163 if (!unwind.proc_start)
4164 as_bad (MISSING_FNSTART);
4165
4166 reg = arm_reg_parse (&input_line_pointer, REG_TYPE_RN);
4167 if (reg == FAIL)
4168 {
4169 as_bad ("%s", _(reg_expected_msgs[REG_TYPE_RN]));
4170 ignore_rest_of_line ();
4171 return;
4172 }
4173
4174 /* Optional constant. */
4175 if (skip_past_comma (&input_line_pointer) != FAIL)
4176 {
4177 if (immediate_for_directive (&offset) == FAIL)
4178 return;
4179 }
4180 else
4181 offset = 0;
4182
4183 demand_empty_rest_of_line ();
4184
4185 if (reg == REG_SP || reg == REG_PC)
4186 {
4187 as_bad (_("SP and PC not permitted in .unwind_movsp directive"));
4188 return;
4189 }
4190
4191 if (unwind.fp_reg != REG_SP)
4192 as_bad (_("unexpected .unwind_movsp directive"));
4193
4194 /* Generate opcode to restore the value. */
4195 op = 0x90 | reg;
4196 add_unwind_opcode (op, 1);
4197
4198 /* Record the information for later. */
4199 unwind.fp_reg = reg;
4200 unwind.fp_offset = unwind.frame_size - offset;
4201 unwind.sp_restored = 1;
4202 }
4203
4204 /* Parse an unwind_pad directive. */
4205
4206 static void
4207 s_arm_unwind_pad (int ignored ATTRIBUTE_UNUSED)
4208 {
4209 int offset;
4210
4211 if (!unwind.proc_start)
4212 as_bad (MISSING_FNSTART);
4213
4214 if (immediate_for_directive (&offset) == FAIL)
4215 return;
4216
4217 if (offset & 3)
4218 {
4219 as_bad (_("stack increment must be multiple of 4"));
4220 ignore_rest_of_line ();
4221 return;
4222 }
4223
4224 /* Don't generate any opcodes, just record the details for later. */
4225 unwind.frame_size += offset;
4226 unwind.pending_offset += offset;
4227
4228 demand_empty_rest_of_line ();
4229 }
4230
4231 /* Parse an unwind_setfp directive. */
4232
4233 static void
4234 s_arm_unwind_setfp (int ignored ATTRIBUTE_UNUSED)
4235 {
4236 int sp_reg;
4237 int fp_reg;
4238 int offset;
4239
4240 if (!unwind.proc_start)
4241 as_bad (MISSING_FNSTART);
4242
4243 fp_reg = arm_reg_parse (&input_line_pointer, REG_TYPE_RN);
4244 if (skip_past_comma (&input_line_pointer) == FAIL)
4245 sp_reg = FAIL;
4246 else
4247 sp_reg = arm_reg_parse (&input_line_pointer, REG_TYPE_RN);
4248
4249 if (fp_reg == FAIL || sp_reg == FAIL)
4250 {
4251 as_bad (_("expected <reg>, <reg>"));
4252 ignore_rest_of_line ();
4253 return;
4254 }
4255
4256 /* Optional constant. */
4257 if (skip_past_comma (&input_line_pointer) != FAIL)
4258 {
4259 if (immediate_for_directive (&offset) == FAIL)
4260 return;
4261 }
4262 else
4263 offset = 0;
4264
4265 demand_empty_rest_of_line ();
4266
4267 if (sp_reg != REG_SP && sp_reg != unwind.fp_reg)
4268 {
4269 as_bad (_("register must be either sp or set by a previous"
4270 "unwind_movsp directive"));
4271 return;
4272 }
4273
4274 /* Don't generate any opcodes, just record the information for later. */
4275 unwind.fp_reg = fp_reg;
4276 unwind.fp_used = 1;
4277 if (sp_reg == REG_SP)
4278 unwind.fp_offset = unwind.frame_size - offset;
4279 else
4280 unwind.fp_offset -= offset;
4281 }
4282
4283 /* Parse an unwind_raw directive. */
4284
4285 static void
4286 s_arm_unwind_raw (int ignored ATTRIBUTE_UNUSED)
4287 {
4288 expressionS exp;
4289 /* This is an arbitrary limit. */
4290 unsigned char op[16];
4291 int count;
4292
4293 if (!unwind.proc_start)
4294 as_bad (MISSING_FNSTART);
4295
4296 expression (&exp);
4297 if (exp.X_op == O_constant
4298 && skip_past_comma (&input_line_pointer) != FAIL)
4299 {
4300 unwind.frame_size += exp.X_add_number;
4301 expression (&exp);
4302 }
4303 else
4304 exp.X_op = O_illegal;
4305
4306 if (exp.X_op != O_constant)
4307 {
4308 as_bad (_("expected <offset>, <opcode>"));
4309 ignore_rest_of_line ();
4310 return;
4311 }
4312
4313 count = 0;
4314
4315 /* Parse the opcode. */
4316 for (;;)
4317 {
4318 if (count >= 16)
4319 {
4320 as_bad (_("unwind opcode too long"));
4321 ignore_rest_of_line ();
4322 }
4323 if (exp.X_op != O_constant || exp.X_add_number & ~0xff)
4324 {
4325 as_bad (_("invalid unwind opcode"));
4326 ignore_rest_of_line ();
4327 return;
4328 }
4329 op[count++] = exp.X_add_number;
4330
4331 /* Parse the next byte. */
4332 if (skip_past_comma (&input_line_pointer) == FAIL)
4333 break;
4334
4335 expression (&exp);
4336 }
4337
4338 /* Add the opcode bytes in reverse order. */
4339 while (count--)
4340 add_unwind_opcode (op[count], 1);
4341
4342 demand_empty_rest_of_line ();
4343 }
4344
4345
4346 /* Parse a .eabi_attribute directive. */
4347
4348 static void
4349 s_arm_eabi_attribute (int ignored ATTRIBUTE_UNUSED)
4350 {
4351 int tag = obj_elf_vendor_attribute (OBJ_ATTR_PROC);
4352
4353 if (tag < NUM_KNOWN_OBJ_ATTRIBUTES)
4354 attributes_set_explicitly[tag] = 1;
4355 }
4356
4357 /* Emit a tls fix for the symbol. */
4358
4359 static void
4360 s_arm_tls_descseq (int ignored ATTRIBUTE_UNUSED)
4361 {
4362 char *p;
4363 expressionS exp;
4364 #ifdef md_flush_pending_output
4365 md_flush_pending_output ();
4366 #endif
4367
4368 #ifdef md_cons_align
4369 md_cons_align (4);
4370 #endif
4371
4372 /* Since we're just labelling the code, there's no need to define a
4373 mapping symbol. */
4374 expression (&exp);
4375 p = obstack_next_free (&frchain_now->frch_obstack);
4376 fix_new_arm (frag_now, p - frag_now->fr_literal, 4, &exp, 0,
4377 thumb_mode ? BFD_RELOC_ARM_THM_TLS_DESCSEQ
4378 : BFD_RELOC_ARM_TLS_DESCSEQ);
4379 }
4380 #endif /* OBJ_ELF */
4381
4382 static void s_arm_arch (int);
4383 static void s_arm_object_arch (int);
4384 static void s_arm_cpu (int);
4385 static void s_arm_fpu (int);
4386 static void s_arm_arch_extension (int);
4387
4388 #ifdef TE_PE
4389
4390 static void
4391 pe_directive_secrel (int dummy ATTRIBUTE_UNUSED)
4392 {
4393 expressionS exp;
4394
4395 do
4396 {
4397 expression (&exp);
4398 if (exp.X_op == O_symbol)
4399 exp.X_op = O_secrel;
4400
4401 emit_expr (&exp, 4);
4402 }
4403 while (*input_line_pointer++ == ',');
4404
4405 input_line_pointer--;
4406 demand_empty_rest_of_line ();
4407 }
4408 #endif /* TE_PE */
4409
4410 /* This table describes all the machine specific pseudo-ops the assembler
4411 has to support. The fields are:
4412 pseudo-op name without dot
4413 function to call to execute this pseudo-op
4414 Integer arg to pass to the function. */
4415
4416 const pseudo_typeS md_pseudo_table[] =
4417 {
4418 /* Never called because '.req' does not start a line. */
4419 { "req", s_req, 0 },
4420 /* Following two are likewise never called. */
4421 { "dn", s_dn, 0 },
4422 { "qn", s_qn, 0 },
4423 { "unreq", s_unreq, 0 },
4424 { "bss", s_bss, 0 },
4425 { "align", s_align, 0 },
4426 { "arm", s_arm, 0 },
4427 { "thumb", s_thumb, 0 },
4428 { "code", s_code, 0 },
4429 { "force_thumb", s_force_thumb, 0 },
4430 { "thumb_func", s_thumb_func, 0 },
4431 { "thumb_set", s_thumb_set, 0 },
4432 { "even", s_even, 0 },
4433 { "ltorg", s_ltorg, 0 },
4434 { "pool", s_ltorg, 0 },
4435 { "syntax", s_syntax, 0 },
4436 { "cpu", s_arm_cpu, 0 },
4437 { "arch", s_arm_arch, 0 },
4438 { "object_arch", s_arm_object_arch, 0 },
4439 { "fpu", s_arm_fpu, 0 },
4440 { "arch_extension", s_arm_arch_extension, 0 },
4441 #ifdef OBJ_ELF
4442 { "word", s_arm_elf_cons, 4 },
4443 { "long", s_arm_elf_cons, 4 },
4444 { "inst.n", s_arm_elf_inst, 2 },
4445 { "inst.w", s_arm_elf_inst, 4 },
4446 { "inst", s_arm_elf_inst, 0 },
4447 { "rel31", s_arm_rel31, 0 },
4448 { "fnstart", s_arm_unwind_fnstart, 0 },
4449 { "fnend", s_arm_unwind_fnend, 0 },
4450 { "cantunwind", s_arm_unwind_cantunwind, 0 },
4451 { "personality", s_arm_unwind_personality, 0 },
4452 { "personalityindex", s_arm_unwind_personalityindex, 0 },
4453 { "handlerdata", s_arm_unwind_handlerdata, 0 },
4454 { "save", s_arm_unwind_save, 0 },
4455 { "vsave", s_arm_unwind_save, 1 },
4456 { "movsp", s_arm_unwind_movsp, 0 },
4457 { "pad", s_arm_unwind_pad, 0 },
4458 { "setfp", s_arm_unwind_setfp, 0 },
4459 { "unwind_raw", s_arm_unwind_raw, 0 },
4460 { "eabi_attribute", s_arm_eabi_attribute, 0 },
4461 { "tlsdescseq", s_arm_tls_descseq, 0 },
4462 #else
4463 { "word", cons, 4},
4464
4465 /* These are used for dwarf. */
4466 {"2byte", cons, 2},
4467 {"4byte", cons, 4},
4468 {"8byte", cons, 8},
4469 /* These are used for dwarf2. */
4470 { "file", (void (*) (int)) dwarf2_directive_file, 0 },
4471 { "loc", dwarf2_directive_loc, 0 },
4472 { "loc_mark_labels", dwarf2_directive_loc_mark_labels, 0 },
4473 #endif
4474 { "extend", float_cons, 'x' },
4475 { "ldouble", float_cons, 'x' },
4476 { "packed", float_cons, 'p' },
4477 #ifdef TE_PE
4478 {"secrel32", pe_directive_secrel, 0},
4479 #endif
4480 { 0, 0, 0 }
4481 };
4482 \f
4483 /* Parser functions used exclusively in instruction operands. */
4484
4485 /* Generic immediate-value read function for use in insn parsing.
4486 STR points to the beginning of the immediate (the leading #);
4487 VAL receives the value; if the value is outside [MIN, MAX]
4488 issue an error. PREFIX_OPT is true if the immediate prefix is
4489 optional. */
4490
4491 static int
4492 parse_immediate (char **str, int *val, int min, int max,
4493 bfd_boolean prefix_opt)
4494 {
4495 expressionS exp;
4496 my_get_expression (&exp, str, prefix_opt ? GE_OPT_PREFIX : GE_IMM_PREFIX);
4497 if (exp.X_op != O_constant)
4498 {
4499 inst.error = _("constant expression required");
4500 return FAIL;
4501 }
4502
4503 if (exp.X_add_number < min || exp.X_add_number > max)
4504 {
4505 inst.error = _("immediate value out of range");
4506 return FAIL;
4507 }
4508
4509 *val = exp.X_add_number;
4510 return SUCCESS;
4511 }
4512
4513 /* Less-generic immediate-value read function with the possibility of loading a
4514 big (64-bit) immediate, as required by Neon VMOV, VMVN and logic immediate
4515 instructions. Puts the result directly in inst.operands[i]. */
4516
4517 static int
4518 parse_big_immediate (char **str, int i)
4519 {
4520 expressionS exp;
4521 char *ptr = *str;
4522
4523 my_get_expression (&exp, &ptr, GE_OPT_PREFIX_BIG);
4524
4525 if (exp.X_op == O_constant)
4526 {
4527 inst.operands[i].imm = exp.X_add_number & 0xffffffff;
4528 /* If we're on a 64-bit host, then a 64-bit number can be returned using
4529 O_constant. We have to be careful not to break compilation for
4530 32-bit X_add_number, though. */
4531 if ((exp.X_add_number & ~(offsetT)(0xffffffffU)) != 0)
4532 {
4533 /* X >> 32 is illegal if sizeof (exp.X_add_number) == 4. */
4534 inst.operands[i].reg = ((exp.X_add_number >> 16) >> 16) & 0xffffffff;
4535 inst.operands[i].regisimm = 1;
4536 }
4537 }
4538 else if (exp.X_op == O_big
4539 && LITTLENUM_NUMBER_OF_BITS * exp.X_add_number > 32)
4540 {
4541 unsigned parts = 32 / LITTLENUM_NUMBER_OF_BITS, j, idx = 0;
4542
4543 /* Bignums have their least significant bits in
4544 generic_bignum[0]. Make sure we put 32 bits in imm and
4545 32 bits in reg, in a (hopefully) portable way. */
4546 gas_assert (parts != 0);
4547
4548 /* Make sure that the number is not too big.
4549 PR 11972: Bignums can now be sign-extended to the
4550 size of a .octa so check that the out of range bits
4551 are all zero or all one. */
4552 if (LITTLENUM_NUMBER_OF_BITS * exp.X_add_number > 64)
4553 {
4554 LITTLENUM_TYPE m = -1;
4555
4556 if (generic_bignum[parts * 2] != 0
4557 && generic_bignum[parts * 2] != m)
4558 return FAIL;
4559
4560 for (j = parts * 2 + 1; j < (unsigned) exp.X_add_number; j++)
4561 if (generic_bignum[j] != generic_bignum[j-1])
4562 return FAIL;
4563 }
4564
4565 inst.operands[i].imm = 0;
4566 for (j = 0; j < parts; j++, idx++)
4567 inst.operands[i].imm |= generic_bignum[idx]
4568 << (LITTLENUM_NUMBER_OF_BITS * j);
4569 inst.operands[i].reg = 0;
4570 for (j = 0; j < parts; j++, idx++)
4571 inst.operands[i].reg |= generic_bignum[idx]
4572 << (LITTLENUM_NUMBER_OF_BITS * j);
4573 inst.operands[i].regisimm = 1;
4574 }
4575 else
4576 return FAIL;
4577
4578 *str = ptr;
4579
4580 return SUCCESS;
4581 }
4582
4583 /* Returns the pseudo-register number of an FPA immediate constant,
4584 or FAIL if there isn't a valid constant here. */
4585
4586 static int
4587 parse_fpa_immediate (char ** str)
4588 {
4589 LITTLENUM_TYPE words[MAX_LITTLENUMS];
4590 char * save_in;
4591 expressionS exp;
4592 int i;
4593 int j;
4594
4595 /* First try and match exact strings, this is to guarantee
4596 that some formats will work even for cross assembly. */
4597
4598 for (i = 0; fp_const[i]; i++)
4599 {
4600 if (strncmp (*str, fp_const[i], strlen (fp_const[i])) == 0)
4601 {
4602 char *start = *str;
4603
4604 *str += strlen (fp_const[i]);
4605 if (is_end_of_line[(unsigned char) **str])
4606 return i + 8;
4607 *str = start;
4608 }
4609 }
4610
4611 /* Just because we didn't get a match doesn't mean that the constant
4612 isn't valid, just that it is in a format that we don't
4613 automatically recognize. Try parsing it with the standard
4614 expression routines. */
4615
4616 memset (words, 0, MAX_LITTLENUMS * sizeof (LITTLENUM_TYPE));
4617
4618 /* Look for a raw floating point number. */
4619 if ((save_in = atof_ieee (*str, 'x', words)) != NULL
4620 && is_end_of_line[(unsigned char) *save_in])
4621 {
4622 for (i = 0; i < NUM_FLOAT_VALS; i++)
4623 {
4624 for (j = 0; j < MAX_LITTLENUMS; j++)
4625 {
4626 if (words[j] != fp_values[i][j])
4627 break;
4628 }
4629
4630 if (j == MAX_LITTLENUMS)
4631 {
4632 *str = save_in;
4633 return i + 8;
4634 }
4635 }
4636 }
4637
4638 /* Try and parse a more complex expression, this will probably fail
4639 unless the code uses a floating point prefix (eg "0f"). */
4640 save_in = input_line_pointer;
4641 input_line_pointer = *str;
4642 if (expression (&exp) == absolute_section
4643 && exp.X_op == O_big
4644 && exp.X_add_number < 0)
4645 {
4646 /* FIXME: 5 = X_PRECISION, should be #define'd where we can use it.
4647 Ditto for 15. */
4648 if (gen_to_words (words, 5, (long) 15) == 0)
4649 {
4650 for (i = 0; i < NUM_FLOAT_VALS; i++)
4651 {
4652 for (j = 0; j < MAX_LITTLENUMS; j++)
4653 {
4654 if (words[j] != fp_values[i][j])
4655 break;
4656 }
4657
4658 if (j == MAX_LITTLENUMS)
4659 {
4660 *str = input_line_pointer;
4661 input_line_pointer = save_in;
4662 return i + 8;
4663 }
4664 }
4665 }
4666 }
4667
4668 *str = input_line_pointer;
4669 input_line_pointer = save_in;
4670 inst.error = _("invalid FPA immediate expression");
4671 return FAIL;
4672 }
4673
4674 /* Returns 1 if a number has "quarter-precision" float format
4675 0baBbbbbbc defgh000 00000000 00000000. */
4676
4677 static int
4678 is_quarter_float (unsigned imm)
4679 {
4680 int bs = (imm & 0x20000000) ? 0x3e000000 : 0x40000000;
4681 return (imm & 0x7ffff) == 0 && ((imm & 0x7e000000) ^ bs) == 0;
4682 }
4683
4684 /* Parse an 8-bit "quarter-precision" floating point number of the form:
4685 0baBbbbbbc defgh000 00000000 00000000.
4686 The zero and minus-zero cases need special handling, since they can't be
4687 encoded in the "quarter-precision" float format, but can nonetheless be
4688 loaded as integer constants. */
4689
4690 static unsigned
4691 parse_qfloat_immediate (char **ccp, int *immed)
4692 {
4693 char *str = *ccp;
4694 char *fpnum;
4695 LITTLENUM_TYPE words[MAX_LITTLENUMS];
4696 int found_fpchar = 0;
4697
4698 skip_past_char (&str, '#');
4699
4700 /* We must not accidentally parse an integer as a floating-point number. Make
4701 sure that the value we parse is not an integer by checking for special
4702 characters '.' or 'e'.
4703 FIXME: This is a horrible hack, but doing better is tricky because type
4704 information isn't in a very usable state at parse time. */
4705 fpnum = str;
4706 skip_whitespace (fpnum);
4707
4708 if (strncmp (fpnum, "0x", 2) == 0)
4709 return FAIL;
4710 else
4711 {
4712 for (; *fpnum != '\0' && *fpnum != ' ' && *fpnum != '\n'; fpnum++)
4713 if (*fpnum == '.' || *fpnum == 'e' || *fpnum == 'E')
4714 {
4715 found_fpchar = 1;
4716 break;
4717 }
4718
4719 if (!found_fpchar)
4720 return FAIL;
4721 }
4722
4723 if ((str = atof_ieee (str, 's', words)) != NULL)
4724 {
4725 unsigned fpword = 0;
4726 int i;
4727
4728 /* Our FP word must be 32 bits (single-precision FP). */
4729 for (i = 0; i < 32 / LITTLENUM_NUMBER_OF_BITS; i++)
4730 {
4731 fpword <<= LITTLENUM_NUMBER_OF_BITS;
4732 fpword |= words[i];
4733 }
4734
4735 if (is_quarter_float (fpword) || (fpword & 0x7fffffff) == 0)
4736 *immed = fpword;
4737 else
4738 return FAIL;
4739
4740 *ccp = str;
4741
4742 return SUCCESS;
4743 }
4744
4745 return FAIL;
4746 }
4747
4748 /* Shift operands. */
4749 enum shift_kind
4750 {
4751 SHIFT_LSL, SHIFT_LSR, SHIFT_ASR, SHIFT_ROR, SHIFT_RRX
4752 };
4753
4754 struct asm_shift_name
4755 {
4756 const char *name;
4757 enum shift_kind kind;
4758 };
4759
4760 /* Third argument to parse_shift. */
4761 enum parse_shift_mode
4762 {
4763 NO_SHIFT_RESTRICT, /* Any kind of shift is accepted. */
4764 SHIFT_IMMEDIATE, /* Shift operand must be an immediate. */
4765 SHIFT_LSL_OR_ASR_IMMEDIATE, /* Shift must be LSL or ASR immediate. */
4766 SHIFT_ASR_IMMEDIATE, /* Shift must be ASR immediate. */
4767 SHIFT_LSL_IMMEDIATE, /* Shift must be LSL immediate. */
4768 };
4769
4770 /* Parse a <shift> specifier on an ARM data processing instruction.
4771 This has three forms:
4772
4773 (LSL|LSR|ASL|ASR|ROR) Rs
4774 (LSL|LSR|ASL|ASR|ROR) #imm
4775 RRX
4776
4777 Note that ASL is assimilated to LSL in the instruction encoding, and
4778 RRX to ROR #0 (which cannot be written as such). */
4779
4780 static int
4781 parse_shift (char **str, int i, enum parse_shift_mode mode)
4782 {
4783 const struct asm_shift_name *shift_name;
4784 enum shift_kind shift;
4785 char *s = *str;
4786 char *p = s;
4787 int reg;
4788
4789 for (p = *str; ISALPHA (*p); p++)
4790 ;
4791
4792 if (p == *str)
4793 {
4794 inst.error = _("shift expression expected");
4795 return FAIL;
4796 }
4797
4798 shift_name = (const struct asm_shift_name *) hash_find_n (arm_shift_hsh, *str,
4799 p - *str);
4800
4801 if (shift_name == NULL)
4802 {
4803 inst.error = _("shift expression expected");
4804 return FAIL;
4805 }
4806
4807 shift = shift_name->kind;
4808
4809 switch (mode)
4810 {
4811 case NO_SHIFT_RESTRICT:
4812 case SHIFT_IMMEDIATE: break;
4813
4814 case SHIFT_LSL_OR_ASR_IMMEDIATE:
4815 if (shift != SHIFT_LSL && shift != SHIFT_ASR)
4816 {
4817 inst.error = _("'LSL' or 'ASR' required");
4818 return FAIL;
4819 }
4820 break;
4821
4822 case SHIFT_LSL_IMMEDIATE:
4823 if (shift != SHIFT_LSL)
4824 {
4825 inst.error = _("'LSL' required");
4826 return FAIL;
4827 }
4828 break;
4829
4830 case SHIFT_ASR_IMMEDIATE:
4831 if (shift != SHIFT_ASR)
4832 {
4833 inst.error = _("'ASR' required");
4834 return FAIL;
4835 }
4836 break;
4837
4838 default: abort ();
4839 }
4840
4841 if (shift != SHIFT_RRX)
4842 {
4843 /* Whitespace can appear here if the next thing is a bare digit. */
4844 skip_whitespace (p);
4845
4846 if (mode == NO_SHIFT_RESTRICT
4847 && (reg = arm_reg_parse (&p, REG_TYPE_RN)) != FAIL)
4848 {
4849 inst.operands[i].imm = reg;
4850 inst.operands[i].immisreg = 1;
4851 }
4852 else if (my_get_expression (&inst.reloc.exp, &p, GE_IMM_PREFIX))
4853 return FAIL;
4854 }
4855 inst.operands[i].shift_kind = shift;
4856 inst.operands[i].shifted = 1;
4857 *str = p;
4858 return SUCCESS;
4859 }
4860
4861 /* Parse a <shifter_operand> for an ARM data processing instruction:
4862
4863 #<immediate>
4864 #<immediate>, <rotate>
4865 <Rm>
4866 <Rm>, <shift>
4867
4868 where <shift> is defined by parse_shift above, and <rotate> is a
4869 multiple of 2 between 0 and 30. Validation of immediate operands
4870 is deferred to md_apply_fix. */
4871
4872 static int
4873 parse_shifter_operand (char **str, int i)
4874 {
4875 int value;
4876 expressionS exp;
4877
4878 if ((value = arm_reg_parse (str, REG_TYPE_RN)) != FAIL)
4879 {
4880 inst.operands[i].reg = value;
4881 inst.operands[i].isreg = 1;
4882
4883 /* parse_shift will override this if appropriate */
4884 inst.reloc.exp.X_op = O_constant;
4885 inst.reloc.exp.X_add_number = 0;
4886
4887 if (skip_past_comma (str) == FAIL)
4888 return SUCCESS;
4889
4890 /* Shift operation on register. */
4891 return parse_shift (str, i, NO_SHIFT_RESTRICT);
4892 }
4893
4894 if (my_get_expression (&inst.reloc.exp, str, GE_IMM_PREFIX))
4895 return FAIL;
4896
4897 if (skip_past_comma (str) == SUCCESS)
4898 {
4899 /* #x, y -- ie explicit rotation by Y. */
4900 if (my_get_expression (&exp, str, GE_NO_PREFIX))
4901 return FAIL;
4902
4903 if (exp.X_op != O_constant || inst.reloc.exp.X_op != O_constant)
4904 {
4905 inst.error = _("constant expression expected");
4906 return FAIL;
4907 }
4908
4909 value = exp.X_add_number;
4910 if (value < 0 || value > 30 || value % 2 != 0)
4911 {
4912 inst.error = _("invalid rotation");
4913 return FAIL;
4914 }
4915 if (inst.reloc.exp.X_add_number < 0 || inst.reloc.exp.X_add_number > 255)
4916 {
4917 inst.error = _("invalid constant");
4918 return FAIL;
4919 }
4920
4921 /* Encode as specified. */
4922 inst.operands[i].imm = inst.reloc.exp.X_add_number | value << 7;
4923 return SUCCESS;
4924 }
4925
4926 inst.reloc.type = BFD_RELOC_ARM_IMMEDIATE;
4927 inst.reloc.pc_rel = 0;
4928 return SUCCESS;
4929 }
4930
4931 /* Group relocation information. Each entry in the table contains the
4932 textual name of the relocation as may appear in assembler source
4933 and must end with a colon.
4934 Along with this textual name are the relocation codes to be used if
4935 the corresponding instruction is an ALU instruction (ADD or SUB only),
4936 an LDR, an LDRS, or an LDC. */
4937
4938 struct group_reloc_table_entry
4939 {
4940 const char *name;
4941 int alu_code;
4942 int ldr_code;
4943 int ldrs_code;
4944 int ldc_code;
4945 };
4946
4947 typedef enum
4948 {
4949 /* Varieties of non-ALU group relocation. */
4950
4951 GROUP_LDR,
4952 GROUP_LDRS,
4953 GROUP_LDC
4954 } group_reloc_type;
4955
4956 static struct group_reloc_table_entry group_reloc_table[] =
4957 { /* Program counter relative: */
4958 { "pc_g0_nc",
4959 BFD_RELOC_ARM_ALU_PC_G0_NC, /* ALU */
4960 0, /* LDR */
4961 0, /* LDRS */
4962 0 }, /* LDC */
4963 { "pc_g0",
4964 BFD_RELOC_ARM_ALU_PC_G0, /* ALU */
4965 BFD_RELOC_ARM_LDR_PC_G0, /* LDR */
4966 BFD_RELOC_ARM_LDRS_PC_G0, /* LDRS */
4967 BFD_RELOC_ARM_LDC_PC_G0 }, /* LDC */
4968 { "pc_g1_nc",
4969 BFD_RELOC_ARM_ALU_PC_G1_NC, /* ALU */
4970 0, /* LDR */
4971 0, /* LDRS */
4972 0 }, /* LDC */
4973 { "pc_g1",
4974 BFD_RELOC_ARM_ALU_PC_G1, /* ALU */
4975 BFD_RELOC_ARM_LDR_PC_G1, /* LDR */
4976 BFD_RELOC_ARM_LDRS_PC_G1, /* LDRS */
4977 BFD_RELOC_ARM_LDC_PC_G1 }, /* LDC */
4978 { "pc_g2",
4979 BFD_RELOC_ARM_ALU_PC_G2, /* ALU */
4980 BFD_RELOC_ARM_LDR_PC_G2, /* LDR */
4981 BFD_RELOC_ARM_LDRS_PC_G2, /* LDRS */
4982 BFD_RELOC_ARM_LDC_PC_G2 }, /* LDC */
4983 /* Section base relative */
4984 { "sb_g0_nc",
4985 BFD_RELOC_ARM_ALU_SB_G0_NC, /* ALU */
4986 0, /* LDR */
4987 0, /* LDRS */
4988 0 }, /* LDC */
4989 { "sb_g0",
4990 BFD_RELOC_ARM_ALU_SB_G0, /* ALU */
4991 BFD_RELOC_ARM_LDR_SB_G0, /* LDR */
4992 BFD_RELOC_ARM_LDRS_SB_G0, /* LDRS */
4993 BFD_RELOC_ARM_LDC_SB_G0 }, /* LDC */
4994 { "sb_g1_nc",
4995 BFD_RELOC_ARM_ALU_SB_G1_NC, /* ALU */
4996 0, /* LDR */
4997 0, /* LDRS */
4998 0 }, /* LDC */
4999 { "sb_g1",
5000 BFD_RELOC_ARM_ALU_SB_G1, /* ALU */
5001 BFD_RELOC_ARM_LDR_SB_G1, /* LDR */
5002 BFD_RELOC_ARM_LDRS_SB_G1, /* LDRS */
5003 BFD_RELOC_ARM_LDC_SB_G1 }, /* LDC */
5004 { "sb_g2",
5005 BFD_RELOC_ARM_ALU_SB_G2, /* ALU */
5006 BFD_RELOC_ARM_LDR_SB_G2, /* LDR */
5007 BFD_RELOC_ARM_LDRS_SB_G2, /* LDRS */
5008 BFD_RELOC_ARM_LDC_SB_G2 } }; /* LDC */
5009
5010 /* Given the address of a pointer pointing to the textual name of a group
5011 relocation as may appear in assembler source, attempt to find its details
5012 in group_reloc_table. The pointer will be updated to the character after
5013 the trailing colon. On failure, FAIL will be returned; SUCCESS
5014 otherwise. On success, *entry will be updated to point at the relevant
5015 group_reloc_table entry. */
5016
5017 static int
5018 find_group_reloc_table_entry (char **str, struct group_reloc_table_entry **out)
5019 {
5020 unsigned int i;
5021 for (i = 0; i < ARRAY_SIZE (group_reloc_table); i++)
5022 {
5023 int length = strlen (group_reloc_table[i].name);
5024
5025 if (strncasecmp (group_reloc_table[i].name, *str, length) == 0
5026 && (*str)[length] == ':')
5027 {
5028 *out = &group_reloc_table[i];
5029 *str += (length + 1);
5030 return SUCCESS;
5031 }
5032 }
5033
5034 return FAIL;
5035 }
5036
5037 /* Parse a <shifter_operand> for an ARM data processing instruction
5038 (as for parse_shifter_operand) where group relocations are allowed:
5039
5040 #<immediate>
5041 #<immediate>, <rotate>
5042 #:<group_reloc>:<expression>
5043 <Rm>
5044 <Rm>, <shift>
5045
5046 where <group_reloc> is one of the strings defined in group_reloc_table.
5047 The hashes are optional.
5048
5049 Everything else is as for parse_shifter_operand. */
5050
5051 static parse_operand_result
5052 parse_shifter_operand_group_reloc (char **str, int i)
5053 {
5054 /* Determine if we have the sequence of characters #: or just :
5055 coming next. If we do, then we check for a group relocation.
5056 If we don't, punt the whole lot to parse_shifter_operand. */
5057
5058 if (((*str)[0] == '#' && (*str)[1] == ':')
5059 || (*str)[0] == ':')
5060 {
5061 struct group_reloc_table_entry *entry;
5062
5063 if ((*str)[0] == '#')
5064 (*str) += 2;
5065 else
5066 (*str)++;
5067
5068 /* Try to parse a group relocation. Anything else is an error. */
5069 if (find_group_reloc_table_entry (str, &entry) == FAIL)
5070 {
5071 inst.error = _("unknown group relocation");
5072 return PARSE_OPERAND_FAIL_NO_BACKTRACK;
5073 }
5074
5075 /* We now have the group relocation table entry corresponding to
5076 the name in the assembler source. Next, we parse the expression. */
5077 if (my_get_expression (&inst.reloc.exp, str, GE_NO_PREFIX))
5078 return PARSE_OPERAND_FAIL_NO_BACKTRACK;
5079
5080 /* Record the relocation type (always the ALU variant here). */
5081 inst.reloc.type = (bfd_reloc_code_real_type) entry->alu_code;
5082 gas_assert (inst.reloc.type != 0);
5083
5084 return PARSE_OPERAND_SUCCESS;
5085 }
5086 else
5087 return parse_shifter_operand (str, i) == SUCCESS
5088 ? PARSE_OPERAND_SUCCESS : PARSE_OPERAND_FAIL;
5089
5090 /* Never reached. */
5091 }
5092
5093 /* Parse a Neon alignment expression. Information is written to
5094 inst.operands[i]. We assume the initial ':' has been skipped.
5095
5096 align .imm = align << 8, .immisalign=1, .preind=0 */
5097 static parse_operand_result
5098 parse_neon_alignment (char **str, int i)
5099 {
5100 char *p = *str;
5101 expressionS exp;
5102
5103 my_get_expression (&exp, &p, GE_NO_PREFIX);
5104
5105 if (exp.X_op != O_constant)
5106 {
5107 inst.error = _("alignment must be constant");
5108 return PARSE_OPERAND_FAIL;
5109 }
5110
5111 inst.operands[i].imm = exp.X_add_number << 8;
5112 inst.operands[i].immisalign = 1;
5113 /* Alignments are not pre-indexes. */
5114 inst.operands[i].preind = 0;
5115
5116 *str = p;
5117 return PARSE_OPERAND_SUCCESS;
5118 }
5119
5120 /* Parse all forms of an ARM address expression. Information is written
5121 to inst.operands[i] and/or inst.reloc.
5122
5123 Preindexed addressing (.preind=1):
5124
5125 [Rn, #offset] .reg=Rn .reloc.exp=offset
5126 [Rn, +/-Rm] .reg=Rn .imm=Rm .immisreg=1 .negative=0/1
5127 [Rn, +/-Rm, shift] .reg=Rn .imm=Rm .immisreg=1 .negative=0/1
5128 .shift_kind=shift .reloc.exp=shift_imm
5129
5130 These three may have a trailing ! which causes .writeback to be set also.
5131
5132 Postindexed addressing (.postind=1, .writeback=1):
5133
5134 [Rn], #offset .reg=Rn .reloc.exp=offset
5135 [Rn], +/-Rm .reg=Rn .imm=Rm .immisreg=1 .negative=0/1
5136 [Rn], +/-Rm, shift .reg=Rn .imm=Rm .immisreg=1 .negative=0/1
5137 .shift_kind=shift .reloc.exp=shift_imm
5138
5139 Unindexed addressing (.preind=0, .postind=0):
5140
5141 [Rn], {option} .reg=Rn .imm=option .immisreg=0
5142
5143 Other:
5144
5145 [Rn]{!} shorthand for [Rn,#0]{!}
5146 =immediate .isreg=0 .reloc.exp=immediate
5147 label .reg=PC .reloc.pc_rel=1 .reloc.exp=label
5148
5149 It is the caller's responsibility to check for addressing modes not
5150 supported by the instruction, and to set inst.reloc.type. */
5151
5152 static parse_operand_result
5153 parse_address_main (char **str, int i, int group_relocations,
5154 group_reloc_type group_type)
5155 {
5156 char *p = *str;
5157 int reg;
5158
5159 if (skip_past_char (&p, '[') == FAIL)
5160 {
5161 if (skip_past_char (&p, '=') == FAIL)
5162 {
5163 /* Bare address - translate to PC-relative offset. */
5164 inst.reloc.pc_rel = 1;
5165 inst.operands[i].reg = REG_PC;
5166 inst.operands[i].isreg = 1;
5167 inst.operands[i].preind = 1;
5168 }
5169 /* Otherwise a load-constant pseudo op, no special treatment needed here. */
5170
5171 if (my_get_expression (&inst.reloc.exp, &p, GE_NO_PREFIX))
5172 return PARSE_OPERAND_FAIL;
5173
5174 *str = p;
5175 return PARSE_OPERAND_SUCCESS;
5176 }
5177
5178 /* PR gas/14887: Allow for whitespace after the opening bracket. */
5179 skip_whitespace (p);
5180
5181 if ((reg = arm_reg_parse (&p, REG_TYPE_RN)) == FAIL)
5182 {
5183 inst.error = _(reg_expected_msgs[REG_TYPE_RN]);
5184 return PARSE_OPERAND_FAIL;
5185 }
5186 inst.operands[i].reg = reg;
5187 inst.operands[i].isreg = 1;
5188
5189 if (skip_past_comma (&p) == SUCCESS)
5190 {
5191 inst.operands[i].preind = 1;
5192
5193 if (*p == '+') p++;
5194 else if (*p == '-') p++, inst.operands[i].negative = 1;
5195
5196 if ((reg = arm_reg_parse (&p, REG_TYPE_RN)) != FAIL)
5197 {
5198 inst.operands[i].imm = reg;
5199 inst.operands[i].immisreg = 1;
5200
5201 if (skip_past_comma (&p) == SUCCESS)
5202 if (parse_shift (&p, i, SHIFT_IMMEDIATE) == FAIL)
5203 return PARSE_OPERAND_FAIL;
5204 }
5205 else if (skip_past_char (&p, ':') == SUCCESS)
5206 {
5207 /* FIXME: '@' should be used here, but it's filtered out by generic
5208 code before we get to see it here. This may be subject to
5209 change. */
5210 parse_operand_result result = parse_neon_alignment (&p, i);
5211
5212 if (result != PARSE_OPERAND_SUCCESS)
5213 return result;
5214 }
5215 else
5216 {
5217 if (inst.operands[i].negative)
5218 {
5219 inst.operands[i].negative = 0;
5220 p--;
5221 }
5222
5223 if (group_relocations
5224 && ((*p == '#' && *(p + 1) == ':') || *p == ':'))
5225 {
5226 struct group_reloc_table_entry *entry;
5227
5228 /* Skip over the #: or : sequence. */
5229 if (*p == '#')
5230 p += 2;
5231 else
5232 p++;
5233
5234 /* Try to parse a group relocation. Anything else is an
5235 error. */
5236 if (find_group_reloc_table_entry (&p, &entry) == FAIL)
5237 {
5238 inst.error = _("unknown group relocation");
5239 return PARSE_OPERAND_FAIL_NO_BACKTRACK;
5240 }
5241
5242 /* We now have the group relocation table entry corresponding to
5243 the name in the assembler source. Next, we parse the
5244 expression. */
5245 if (my_get_expression (&inst.reloc.exp, &p, GE_NO_PREFIX))
5246 return PARSE_OPERAND_FAIL_NO_BACKTRACK;
5247
5248 /* Record the relocation type. */
5249 switch (group_type)
5250 {
5251 case GROUP_LDR:
5252 inst.reloc.type = (bfd_reloc_code_real_type) entry->ldr_code;
5253 break;
5254
5255 case GROUP_LDRS:
5256 inst.reloc.type = (bfd_reloc_code_real_type) entry->ldrs_code;
5257 break;
5258
5259 case GROUP_LDC:
5260 inst.reloc.type = (bfd_reloc_code_real_type) entry->ldc_code;
5261 break;
5262
5263 default:
5264 gas_assert (0);
5265 }
5266
5267 if (inst.reloc.type == 0)
5268 {
5269 inst.error = _("this group relocation is not allowed on this instruction");
5270 return PARSE_OPERAND_FAIL_NO_BACKTRACK;
5271 }
5272 }
5273 else
5274 {
5275 char *q = p;
5276 if (my_get_expression (&inst.reloc.exp, &p, GE_IMM_PREFIX))
5277 return PARSE_OPERAND_FAIL;
5278 /* If the offset is 0, find out if it's a +0 or -0. */
5279 if (inst.reloc.exp.X_op == O_constant
5280 && inst.reloc.exp.X_add_number == 0)
5281 {
5282 skip_whitespace (q);
5283 if (*q == '#')
5284 {
5285 q++;
5286 skip_whitespace (q);
5287 }
5288 if (*q == '-')
5289 inst.operands[i].negative = 1;
5290 }
5291 }
5292 }
5293 }
5294 else if (skip_past_char (&p, ':') == SUCCESS)
5295 {
5296 /* FIXME: '@' should be used here, but it's filtered out by generic code
5297 before we get to see it here. This may be subject to change. */
5298 parse_operand_result result = parse_neon_alignment (&p, i);
5299
5300 if (result != PARSE_OPERAND_SUCCESS)
5301 return result;
5302 }
5303
5304 if (skip_past_char (&p, ']') == FAIL)
5305 {
5306 inst.error = _("']' expected");
5307 return PARSE_OPERAND_FAIL;
5308 }
5309
5310 if (skip_past_char (&p, '!') == SUCCESS)
5311 inst.operands[i].writeback = 1;
5312
5313 else if (skip_past_comma (&p) == SUCCESS)
5314 {
5315 if (skip_past_char (&p, '{') == SUCCESS)
5316 {
5317 /* [Rn], {expr} - unindexed, with option */
5318 if (parse_immediate (&p, &inst.operands[i].imm,
5319 0, 255, TRUE) == FAIL)
5320 return PARSE_OPERAND_FAIL;
5321
5322 if (skip_past_char (&p, '}') == FAIL)
5323 {
5324 inst.error = _("'}' expected at end of 'option' field");
5325 return PARSE_OPERAND_FAIL;
5326 }
5327 if (inst.operands[i].preind)
5328 {
5329 inst.error = _("cannot combine index with option");
5330 return PARSE_OPERAND_FAIL;
5331 }
5332 *str = p;
5333 return PARSE_OPERAND_SUCCESS;
5334 }
5335 else
5336 {
5337 inst.operands[i].postind = 1;
5338 inst.operands[i].writeback = 1;
5339
5340 if (inst.operands[i].preind)
5341 {
5342 inst.error = _("cannot combine pre- and post-indexing");
5343 return PARSE_OPERAND_FAIL;
5344 }
5345
5346 if (*p == '+') p++;
5347 else if (*p == '-') p++, inst.operands[i].negative = 1;
5348
5349 if ((reg = arm_reg_parse (&p, REG_TYPE_RN)) != FAIL)
5350 {
5351 /* We might be using the immediate for alignment already. If we
5352 are, OR the register number into the low-order bits. */
5353 if (inst.operands[i].immisalign)
5354 inst.operands[i].imm |= reg;
5355 else
5356 inst.operands[i].imm = reg;
5357 inst.operands[i].immisreg = 1;
5358
5359 if (skip_past_comma (&p) == SUCCESS)
5360 if (parse_shift (&p, i, SHIFT_IMMEDIATE) == FAIL)
5361 return PARSE_OPERAND_FAIL;
5362 }
5363 else
5364 {
5365 char *q = p;
5366 if (inst.operands[i].negative)
5367 {
5368 inst.operands[i].negative = 0;
5369 p--;
5370 }
5371 if (my_get_expression (&inst.reloc.exp, &p, GE_IMM_PREFIX))
5372 return PARSE_OPERAND_FAIL;
5373 /* If the offset is 0, find out if it's a +0 or -0. */
5374 if (inst.reloc.exp.X_op == O_constant
5375 && inst.reloc.exp.X_add_number == 0)
5376 {
5377 skip_whitespace (q);
5378 if (*q == '#')
5379 {
5380 q++;
5381 skip_whitespace (q);
5382 }
5383 if (*q == '-')
5384 inst.operands[i].negative = 1;
5385 }
5386 }
5387 }
5388 }
5389
5390 /* If at this point neither .preind nor .postind is set, we have a
5391 bare [Rn]{!}, which is shorthand for [Rn,#0]{!}. */
5392 if (inst.operands[i].preind == 0 && inst.operands[i].postind == 0)
5393 {
5394 inst.operands[i].preind = 1;
5395 inst.reloc.exp.X_op = O_constant;
5396 inst.reloc.exp.X_add_number = 0;
5397 }
5398 *str = p;
5399 return PARSE_OPERAND_SUCCESS;
5400 }
5401
5402 static int
5403 parse_address (char **str, int i)
5404 {
5405 return parse_address_main (str, i, 0, GROUP_LDR) == PARSE_OPERAND_SUCCESS
5406 ? SUCCESS : FAIL;
5407 }
5408
5409 static parse_operand_result
5410 parse_address_group_reloc (char **str, int i, group_reloc_type type)
5411 {
5412 return parse_address_main (str, i, 1, type);
5413 }
5414
5415 /* Parse an operand for a MOVW or MOVT instruction. */
5416 static int
5417 parse_half (char **str)
5418 {
5419 char * p;
5420
5421 p = *str;
5422 skip_past_char (&p, '#');
5423 if (strncasecmp (p, ":lower16:", 9) == 0)
5424 inst.reloc.type = BFD_RELOC_ARM_MOVW;
5425 else if (strncasecmp (p, ":upper16:", 9) == 0)
5426 inst.reloc.type = BFD_RELOC_ARM_MOVT;
5427
5428 if (inst.reloc.type != BFD_RELOC_UNUSED)
5429 {
5430 p += 9;
5431 skip_whitespace (p);
5432 }
5433
5434 if (my_get_expression (&inst.reloc.exp, &p, GE_NO_PREFIX))
5435 return FAIL;
5436
5437 if (inst.reloc.type == BFD_RELOC_UNUSED)
5438 {
5439 if (inst.reloc.exp.X_op != O_constant)
5440 {
5441 inst.error = _("constant expression expected");
5442 return FAIL;
5443 }
5444 if (inst.reloc.exp.X_add_number < 0
5445 || inst.reloc.exp.X_add_number > 0xffff)
5446 {
5447 inst.error = _("immediate value out of range");
5448 return FAIL;
5449 }
5450 }
5451 *str = p;
5452 return SUCCESS;
5453 }
5454
5455 /* Miscellaneous. */
5456
5457 /* Parse a PSR flag operand. The value returned is FAIL on syntax error,
5458 or a bitmask suitable to be or-ed into the ARM msr instruction. */
5459 static int
5460 parse_psr (char **str, bfd_boolean lhs)
5461 {
5462 char *p;
5463 unsigned long psr_field;
5464 const struct asm_psr *psr;
5465 char *start;
5466 bfd_boolean is_apsr = FALSE;
5467 bfd_boolean m_profile = ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_m);
5468
5469 /* PR gas/12698: If the user has specified -march=all then m_profile will
5470 be TRUE, but we want to ignore it in this case as we are building for any
5471 CPU type, including non-m variants. */
5472 if (selected_cpu.core == arm_arch_any.core)
5473 m_profile = FALSE;
5474
5475 /* CPSR's and SPSR's can now be lowercase. This is just a convenience
5476 feature for ease of use and backwards compatibility. */
5477 p = *str;
5478 if (strncasecmp (p, "SPSR", 4) == 0)
5479 {
5480 if (m_profile)
5481 goto unsupported_psr;
5482
5483 psr_field = SPSR_BIT;
5484 }
5485 else if (strncasecmp (p, "CPSR", 4) == 0)
5486 {
5487 if (m_profile)
5488 goto unsupported_psr;
5489
5490 psr_field = 0;
5491 }
5492 else if (strncasecmp (p, "APSR", 4) == 0)
5493 {
5494 /* APSR[_<bits>] can be used as a synonym for CPSR[_<flags>] on ARMv7-A
5495 and ARMv7-R architecture CPUs. */
5496 is_apsr = TRUE;
5497 psr_field = 0;
5498 }
5499 else if (m_profile)
5500 {
5501 start = p;
5502 do
5503 p++;
5504 while (ISALNUM (*p) || *p == '_');
5505
5506 if (strncasecmp (start, "iapsr", 5) == 0
5507 || strncasecmp (start, "eapsr", 5) == 0
5508 || strncasecmp (start, "xpsr", 4) == 0
5509 || strncasecmp (start, "psr", 3) == 0)
5510 p = start + strcspn (start, "rR") + 1;
5511
5512 psr = (const struct asm_psr *) hash_find_n (arm_v7m_psr_hsh, start,
5513 p - start);
5514
5515 if (!psr)
5516 return FAIL;
5517
5518 /* If APSR is being written, a bitfield may be specified. Note that
5519 APSR itself is handled above. */
5520 if (psr->field <= 3)
5521 {
5522 psr_field = psr->field;
5523 is_apsr = TRUE;
5524 goto check_suffix;
5525 }
5526
5527 *str = p;
5528 /* M-profile MSR instructions have the mask field set to "10", except
5529 *PSR variants which modify APSR, which may use a different mask (and
5530 have been handled already). Do that by setting the PSR_f field
5531 here. */
5532 return psr->field | (lhs ? PSR_f : 0);
5533 }
5534 else
5535 goto unsupported_psr;
5536
5537 p += 4;
5538 check_suffix:
5539 if (*p == '_')
5540 {
5541 /* A suffix follows. */
5542 p++;
5543 start = p;
5544
5545 do
5546 p++;
5547 while (ISALNUM (*p) || *p == '_');
5548
5549 if (is_apsr)
5550 {
5551 /* APSR uses a notation for bits, rather than fields. */
5552 unsigned int nzcvq_bits = 0;
5553 unsigned int g_bit = 0;
5554 char *bit;
5555
5556 for (bit = start; bit != p; bit++)
5557 {
5558 switch (TOLOWER (*bit))
5559 {
5560 case 'n':
5561 nzcvq_bits |= (nzcvq_bits & 0x01) ? 0x20 : 0x01;
5562 break;
5563
5564 case 'z':
5565 nzcvq_bits |= (nzcvq_bits & 0x02) ? 0x20 : 0x02;
5566 break;
5567
5568 case 'c':
5569 nzcvq_bits |= (nzcvq_bits & 0x04) ? 0x20 : 0x04;
5570 break;
5571
5572 case 'v':
5573 nzcvq_bits |= (nzcvq_bits & 0x08) ? 0x20 : 0x08;
5574 break;
5575
5576 case 'q':
5577 nzcvq_bits |= (nzcvq_bits & 0x10) ? 0x20 : 0x10;
5578 break;
5579
5580 case 'g':
5581 g_bit |= (g_bit & 0x1) ? 0x2 : 0x1;
5582 break;
5583
5584 default:
5585 inst.error = _("unexpected bit specified after APSR");
5586 return FAIL;
5587 }
5588 }
5589
5590 if (nzcvq_bits == 0x1f)
5591 psr_field |= PSR_f;
5592
5593 if (g_bit == 0x1)
5594 {
5595 if (!ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6_dsp))
5596 {
5597 inst.error = _("selected processor does not "
5598 "support DSP extension");
5599 return FAIL;
5600 }
5601
5602 psr_field |= PSR_s;
5603 }
5604
5605 if ((nzcvq_bits & 0x20) != 0
5606 || (nzcvq_bits != 0x1f && nzcvq_bits != 0)
5607 || (g_bit & 0x2) != 0)
5608 {
5609 inst.error = _("bad bitmask specified after APSR");
5610 return FAIL;
5611 }
5612 }
5613 else
5614 {
5615 psr = (const struct asm_psr *) hash_find_n (arm_psr_hsh, start,
5616 p - start);
5617 if (!psr)
5618 goto error;
5619
5620 psr_field |= psr->field;
5621 }
5622 }
5623 else
5624 {
5625 if (ISALNUM (*p))
5626 goto error; /* Garbage after "[CS]PSR". */
5627
5628 /* Unadorned APSR is equivalent to APSR_nzcvq/CPSR_f (for writes). This
5629 is deprecated, but allow it anyway. */
5630 if (is_apsr && lhs)
5631 {
5632 psr_field |= PSR_f;
5633 as_tsktsk (_("writing to APSR without specifying a bitmask is "
5634 "deprecated"));
5635 }
5636 else if (!m_profile)
5637 /* These bits are never right for M-profile devices: don't set them
5638 (only code paths which read/write APSR reach here). */
5639 psr_field |= (PSR_c | PSR_f);
5640 }
5641 *str = p;
5642 return psr_field;
5643
5644 unsupported_psr:
5645 inst.error = _("selected processor does not support requested special "
5646 "purpose register");
5647 return FAIL;
5648
5649 error:
5650 inst.error = _("flag for {c}psr instruction expected");
5651 return FAIL;
5652 }
5653
5654 /* Parse the flags argument to CPSI[ED]. Returns FAIL on error, or a
5655 value suitable for splatting into the AIF field of the instruction. */
5656
5657 static int
5658 parse_cps_flags (char **str)
5659 {
5660 int val = 0;
5661 int saw_a_flag = 0;
5662 char *s = *str;
5663
5664 for (;;)
5665 switch (*s++)
5666 {
5667 case '\0': case ',':
5668 goto done;
5669
5670 case 'a': case 'A': saw_a_flag = 1; val |= 0x4; break;
5671 case 'i': case 'I': saw_a_flag = 1; val |= 0x2; break;
5672 case 'f': case 'F': saw_a_flag = 1; val |= 0x1; break;
5673
5674 default:
5675 inst.error = _("unrecognized CPS flag");
5676 return FAIL;
5677 }
5678
5679 done:
5680 if (saw_a_flag == 0)
5681 {
5682 inst.error = _("missing CPS flags");
5683 return FAIL;
5684 }
5685
5686 *str = s - 1;
5687 return val;
5688 }
5689
5690 /* Parse an endian specifier ("BE" or "LE", case insensitive);
5691 returns 0 for big-endian, 1 for little-endian, FAIL for an error. */
5692
5693 static int
5694 parse_endian_specifier (char **str)
5695 {
5696 int little_endian;
5697 char *s = *str;
5698
5699 if (strncasecmp (s, "BE", 2))
5700 little_endian = 0;
5701 else if (strncasecmp (s, "LE", 2))
5702 little_endian = 1;
5703 else
5704 {
5705 inst.error = _("valid endian specifiers are be or le");
5706 return FAIL;
5707 }
5708
5709 if (ISALNUM (s[2]) || s[2] == '_')
5710 {
5711 inst.error = _("valid endian specifiers are be or le");
5712 return FAIL;
5713 }
5714
5715 *str = s + 2;
5716 return little_endian;
5717 }
5718
5719 /* Parse a rotation specifier: ROR #0, #8, #16, #24. *val receives a
5720 value suitable for poking into the rotate field of an sxt or sxta
5721 instruction, or FAIL on error. */
5722
5723 static int
5724 parse_ror (char **str)
5725 {
5726 int rot;
5727 char *s = *str;
5728
5729 if (strncasecmp (s, "ROR", 3) == 0)
5730 s += 3;
5731 else
5732 {
5733 inst.error = _("missing rotation field after comma");
5734 return FAIL;
5735 }
5736
5737 if (parse_immediate (&s, &rot, 0, 24, FALSE) == FAIL)
5738 return FAIL;
5739
5740 switch (rot)
5741 {
5742 case 0: *str = s; return 0x0;
5743 case 8: *str = s; return 0x1;
5744 case 16: *str = s; return 0x2;
5745 case 24: *str = s; return 0x3;
5746
5747 default:
5748 inst.error = _("rotation can only be 0, 8, 16, or 24");
5749 return FAIL;
5750 }
5751 }
5752
5753 /* Parse a conditional code (from conds[] below). The value returned is in the
5754 range 0 .. 14, or FAIL. */
5755 static int
5756 parse_cond (char **str)
5757 {
5758 char *q;
5759 const struct asm_cond *c;
5760 int n;
5761 /* Condition codes are always 2 characters, so matching up to
5762 3 characters is sufficient. */
5763 char cond[3];
5764
5765 q = *str;
5766 n = 0;
5767 while (ISALPHA (*q) && n < 3)
5768 {
5769 cond[n] = TOLOWER (*q);
5770 q++;
5771 n++;
5772 }
5773
5774 c = (const struct asm_cond *) hash_find_n (arm_cond_hsh, cond, n);
5775 if (!c)
5776 {
5777 inst.error = _("condition required");
5778 return FAIL;
5779 }
5780
5781 *str = q;
5782 return c->value;
5783 }
5784
5785 /* If the given feature available in the selected CPU, mark it as used.
5786 Returns TRUE iff feature is available. */
5787 static bfd_boolean
5788 mark_feature_used (const arm_feature_set *feature)
5789 {
5790 /* Ensure the option is valid on the current architecture. */
5791 if (!ARM_CPU_HAS_FEATURE (cpu_variant, *feature))
5792 return FALSE;
5793
5794 /* Add the appropriate architecture feature for the barrier option used.
5795 */
5796 if (thumb_mode)
5797 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used, *feature);
5798 else
5799 ARM_MERGE_FEATURE_SETS (arm_arch_used, arm_arch_used, *feature);
5800
5801 return TRUE;
5802 }
5803
5804 /* Parse an option for a barrier instruction. Returns the encoding for the
5805 option, or FAIL. */
5806 static int
5807 parse_barrier (char **str)
5808 {
5809 char *p, *q;
5810 const struct asm_barrier_opt *o;
5811
5812 p = q = *str;
5813 while (ISALPHA (*q))
5814 q++;
5815
5816 o = (const struct asm_barrier_opt *) hash_find_n (arm_barrier_opt_hsh, p,
5817 q - p);
5818 if (!o)
5819 return FAIL;
5820
5821 if (!mark_feature_used (&o->arch))
5822 return FAIL;
5823
5824 *str = q;
5825 return o->value;
5826 }
5827
5828 /* Parse the operands of a table branch instruction. Similar to a memory
5829 operand. */
5830 static int
5831 parse_tb (char **str)
5832 {
5833 char * p = *str;
5834 int reg;
5835
5836 if (skip_past_char (&p, '[') == FAIL)
5837 {
5838 inst.error = _("'[' expected");
5839 return FAIL;
5840 }
5841
5842 if ((reg = arm_reg_parse (&p, REG_TYPE_RN)) == FAIL)
5843 {
5844 inst.error = _(reg_expected_msgs[REG_TYPE_RN]);
5845 return FAIL;
5846 }
5847 inst.operands[0].reg = reg;
5848
5849 if (skip_past_comma (&p) == FAIL)
5850 {
5851 inst.error = _("',' expected");
5852 return FAIL;
5853 }
5854
5855 if ((reg = arm_reg_parse (&p, REG_TYPE_RN)) == FAIL)
5856 {
5857 inst.error = _(reg_expected_msgs[REG_TYPE_RN]);
5858 return FAIL;
5859 }
5860 inst.operands[0].imm = reg;
5861
5862 if (skip_past_comma (&p) == SUCCESS)
5863 {
5864 if (parse_shift (&p, 0, SHIFT_LSL_IMMEDIATE) == FAIL)
5865 return FAIL;
5866 if (inst.reloc.exp.X_add_number != 1)
5867 {
5868 inst.error = _("invalid shift");
5869 return FAIL;
5870 }
5871 inst.operands[0].shifted = 1;
5872 }
5873
5874 if (skip_past_char (&p, ']') == FAIL)
5875 {
5876 inst.error = _("']' expected");
5877 return FAIL;
5878 }
5879 *str = p;
5880 return SUCCESS;
5881 }
5882
5883 /* Parse the operands of a Neon VMOV instruction. See do_neon_mov for more
5884 information on the types the operands can take and how they are encoded.
5885 Up to four operands may be read; this function handles setting the
5886 ".present" field for each read operand itself.
5887 Updates STR and WHICH_OPERAND if parsing is successful and returns SUCCESS,
5888 else returns FAIL. */
5889
5890 static int
5891 parse_neon_mov (char **str, int *which_operand)
5892 {
5893 int i = *which_operand, val;
5894 enum arm_reg_type rtype;
5895 char *ptr = *str;
5896 struct neon_type_el optype;
5897
5898 if ((val = parse_scalar (&ptr, 8, &optype)) != FAIL)
5899 {
5900 /* Case 4: VMOV<c><q>.<size> <Dn[x]>, <Rd>. */
5901 inst.operands[i].reg = val;
5902 inst.operands[i].isscalar = 1;
5903 inst.operands[i].vectype = optype;
5904 inst.operands[i++].present = 1;
5905
5906 if (skip_past_comma (&ptr) == FAIL)
5907 goto wanted_comma;
5908
5909 if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) == FAIL)
5910 goto wanted_arm;
5911
5912 inst.operands[i].reg = val;
5913 inst.operands[i].isreg = 1;
5914 inst.operands[i].present = 1;
5915 }
5916 else if ((val = arm_typed_reg_parse (&ptr, REG_TYPE_NSDQ, &rtype, &optype))
5917 != FAIL)
5918 {
5919 /* Cases 0, 1, 2, 3, 5 (D only). */
5920 if (skip_past_comma (&ptr) == FAIL)
5921 goto wanted_comma;
5922
5923 inst.operands[i].reg = val;
5924 inst.operands[i].isreg = 1;
5925 inst.operands[i].isquad = (rtype == REG_TYPE_NQ);
5926 inst.operands[i].issingle = (rtype == REG_TYPE_VFS);
5927 inst.operands[i].isvec = 1;
5928 inst.operands[i].vectype = optype;
5929 inst.operands[i++].present = 1;
5930
5931 if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) != FAIL)
5932 {
5933 /* Case 5: VMOV<c><q> <Dm>, <Rd>, <Rn>.
5934 Case 13: VMOV <Sd>, <Rm> */
5935 inst.operands[i].reg = val;
5936 inst.operands[i].isreg = 1;
5937 inst.operands[i].present = 1;
5938
5939 if (rtype == REG_TYPE_NQ)
5940 {
5941 first_error (_("can't use Neon quad register here"));
5942 return FAIL;
5943 }
5944 else if (rtype != REG_TYPE_VFS)
5945 {
5946 i++;
5947 if (skip_past_comma (&ptr) == FAIL)
5948 goto wanted_comma;
5949 if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) == FAIL)
5950 goto wanted_arm;
5951 inst.operands[i].reg = val;
5952 inst.operands[i].isreg = 1;
5953 inst.operands[i].present = 1;
5954 }
5955 }
5956 else if ((val = arm_typed_reg_parse (&ptr, REG_TYPE_NSDQ, &rtype,
5957 &optype)) != FAIL)
5958 {
5959 /* Case 0: VMOV<c><q> <Qd>, <Qm>
5960 Case 1: VMOV<c><q> <Dd>, <Dm>
5961 Case 8: VMOV.F32 <Sd>, <Sm>
5962 Case 15: VMOV <Sd>, <Se>, <Rn>, <Rm> */
5963
5964 inst.operands[i].reg = val;
5965 inst.operands[i].isreg = 1;
5966 inst.operands[i].isquad = (rtype == REG_TYPE_NQ);
5967 inst.operands[i].issingle = (rtype == REG_TYPE_VFS);
5968 inst.operands[i].isvec = 1;
5969 inst.operands[i].vectype = optype;
5970 inst.operands[i].present = 1;
5971
5972 if (skip_past_comma (&ptr) == SUCCESS)
5973 {
5974 /* Case 15. */
5975 i++;
5976
5977 if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) == FAIL)
5978 goto wanted_arm;
5979
5980 inst.operands[i].reg = val;
5981 inst.operands[i].isreg = 1;
5982 inst.operands[i++].present = 1;
5983
5984 if (skip_past_comma (&ptr) == FAIL)
5985 goto wanted_comma;
5986
5987 if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) == FAIL)
5988 goto wanted_arm;
5989
5990 inst.operands[i].reg = val;
5991 inst.operands[i].isreg = 1;
5992 inst.operands[i].present = 1;
5993 }
5994 }
5995 else if (parse_qfloat_immediate (&ptr, &inst.operands[i].imm) == SUCCESS)
5996 /* Case 2: VMOV<c><q>.<dt> <Qd>, #<float-imm>
5997 Case 3: VMOV<c><q>.<dt> <Dd>, #<float-imm>
5998 Case 10: VMOV.F32 <Sd>, #<imm>
5999 Case 11: VMOV.F64 <Dd>, #<imm> */
6000 inst.operands[i].immisfloat = 1;
6001 else if (parse_big_immediate (&ptr, i) == SUCCESS)
6002 /* Case 2: VMOV<c><q>.<dt> <Qd>, #<imm>
6003 Case 3: VMOV<c><q>.<dt> <Dd>, #<imm> */
6004 ;
6005 else
6006 {
6007 first_error (_("expected <Rm> or <Dm> or <Qm> operand"));
6008 return FAIL;
6009 }
6010 }
6011 else if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) != FAIL)
6012 {
6013 /* Cases 6, 7. */
6014 inst.operands[i].reg = val;
6015 inst.operands[i].isreg = 1;
6016 inst.operands[i++].present = 1;
6017
6018 if (skip_past_comma (&ptr) == FAIL)
6019 goto wanted_comma;
6020
6021 if ((val = parse_scalar (&ptr, 8, &optype)) != FAIL)
6022 {
6023 /* Case 6: VMOV<c><q>.<dt> <Rd>, <Dn[x]> */
6024 inst.operands[i].reg = val;
6025 inst.operands[i].isscalar = 1;
6026 inst.operands[i].present = 1;
6027 inst.operands[i].vectype = optype;
6028 }
6029 else if ((val = arm_reg_parse (&ptr, REG_TYPE_RN)) != FAIL)
6030 {
6031 /* Case 7: VMOV<c><q> <Rd>, <Rn>, <Dm> */
6032 inst.operands[i].reg = val;
6033 inst.operands[i].isreg = 1;
6034 inst.operands[i++].present = 1;
6035
6036 if (skip_past_comma (&ptr) == FAIL)
6037 goto wanted_comma;
6038
6039 if ((val = arm_typed_reg_parse (&ptr, REG_TYPE_VFSD, &rtype, &optype))
6040 == FAIL)
6041 {
6042 first_error (_(reg_expected_msgs[REG_TYPE_VFSD]));
6043 return FAIL;
6044 }
6045
6046 inst.operands[i].reg = val;
6047 inst.operands[i].isreg = 1;
6048 inst.operands[i].isvec = 1;
6049 inst.operands[i].issingle = (rtype == REG_TYPE_VFS);
6050 inst.operands[i].vectype = optype;
6051 inst.operands[i].present = 1;
6052
6053 if (rtype == REG_TYPE_VFS)
6054 {
6055 /* Case 14. */
6056 i++;
6057 if (skip_past_comma (&ptr) == FAIL)
6058 goto wanted_comma;
6059 if ((val = arm_typed_reg_parse (&ptr, REG_TYPE_VFS, NULL,
6060 &optype)) == FAIL)
6061 {
6062 first_error (_(reg_expected_msgs[REG_TYPE_VFS]));
6063 return FAIL;
6064 }
6065 inst.operands[i].reg = val;
6066 inst.operands[i].isreg = 1;
6067 inst.operands[i].isvec = 1;
6068 inst.operands[i].issingle = 1;
6069 inst.operands[i].vectype = optype;
6070 inst.operands[i].present = 1;
6071 }
6072 }
6073 else if ((val = arm_typed_reg_parse (&ptr, REG_TYPE_VFS, NULL, &optype))
6074 != FAIL)
6075 {
6076 /* Case 13. */
6077 inst.operands[i].reg = val;
6078 inst.operands[i].isreg = 1;
6079 inst.operands[i].isvec = 1;
6080 inst.operands[i].issingle = 1;
6081 inst.operands[i].vectype = optype;
6082 inst.operands[i].present = 1;
6083 }
6084 }
6085 else
6086 {
6087 first_error (_("parse error"));
6088 return FAIL;
6089 }
6090
6091 /* Successfully parsed the operands. Update args. */
6092 *which_operand = i;
6093 *str = ptr;
6094 return SUCCESS;
6095
6096 wanted_comma:
6097 first_error (_("expected comma"));
6098 return FAIL;
6099
6100 wanted_arm:
6101 first_error (_(reg_expected_msgs[REG_TYPE_RN]));
6102 return FAIL;
6103 }
6104
6105 /* Use this macro when the operand constraints are different
6106 for ARM and THUMB (e.g. ldrd). */
6107 #define MIX_ARM_THUMB_OPERANDS(arm_operand, thumb_operand) \
6108 ((arm_operand) | ((thumb_operand) << 16))
6109
6110 /* Matcher codes for parse_operands. */
6111 enum operand_parse_code
6112 {
6113 OP_stop, /* end of line */
6114
6115 OP_RR, /* ARM register */
6116 OP_RRnpc, /* ARM register, not r15 */
6117 OP_RRnpcsp, /* ARM register, neither r15 nor r13 (a.k.a. 'BadReg') */
6118 OP_RRnpcb, /* ARM register, not r15, in square brackets */
6119 OP_RRnpctw, /* ARM register, not r15 in Thumb-state or with writeback,
6120 optional trailing ! */
6121 OP_RRw, /* ARM register, not r15, optional trailing ! */
6122 OP_RCP, /* Coprocessor number */
6123 OP_RCN, /* Coprocessor register */
6124 OP_RF, /* FPA register */
6125 OP_RVS, /* VFP single precision register */
6126 OP_RVD, /* VFP double precision register (0..15) */
6127 OP_RND, /* Neon double precision register (0..31) */
6128 OP_RNQ, /* Neon quad precision register */
6129 OP_RVSD, /* VFP single or double precision register */
6130 OP_RNDQ, /* Neon double or quad precision register */
6131 OP_RNSDQ, /* Neon single, double or quad precision register */
6132 OP_RNSC, /* Neon scalar D[X] */
6133 OP_RVC, /* VFP control register */
6134 OP_RMF, /* Maverick F register */
6135 OP_RMD, /* Maverick D register */
6136 OP_RMFX, /* Maverick FX register */
6137 OP_RMDX, /* Maverick DX register */
6138 OP_RMAX, /* Maverick AX register */
6139 OP_RMDS, /* Maverick DSPSC register */
6140 OP_RIWR, /* iWMMXt wR register */
6141 OP_RIWC, /* iWMMXt wC register */
6142 OP_RIWG, /* iWMMXt wCG register */
6143 OP_RXA, /* XScale accumulator register */
6144
6145 OP_REGLST, /* ARM register list */
6146 OP_VRSLST, /* VFP single-precision register list */
6147 OP_VRDLST, /* VFP double-precision register list */
6148 OP_VRSDLST, /* VFP single or double-precision register list (& quad) */
6149 OP_NRDLST, /* Neon double-precision register list (d0-d31, qN aliases) */
6150 OP_NSTRLST, /* Neon element/structure list */
6151
6152 OP_RNDQ_I0, /* Neon D or Q reg, or immediate zero. */
6153 OP_RVSD_I0, /* VFP S or D reg, or immediate zero. */
6154 OP_RR_RNSC, /* ARM reg or Neon scalar. */
6155 OP_RNSDQ_RNSC, /* Vector S, D or Q reg, or Neon scalar. */
6156 OP_RNDQ_RNSC, /* Neon D or Q reg, or Neon scalar. */
6157 OP_RND_RNSC, /* Neon D reg, or Neon scalar. */
6158 OP_VMOV, /* Neon VMOV operands. */
6159 OP_RNDQ_Ibig, /* Neon D or Q reg, or big immediate for logic and VMVN. */
6160 OP_RNDQ_I63b, /* Neon D or Q reg, or immediate for shift. */
6161 OP_RIWR_I32z, /* iWMMXt wR register, or immediate 0 .. 32 for iWMMXt2. */
6162
6163 OP_I0, /* immediate zero */
6164 OP_I7, /* immediate value 0 .. 7 */
6165 OP_I15, /* 0 .. 15 */
6166 OP_I16, /* 1 .. 16 */
6167 OP_I16z, /* 0 .. 16 */
6168 OP_I31, /* 0 .. 31 */
6169 OP_I31w, /* 0 .. 31, optional trailing ! */
6170 OP_I32, /* 1 .. 32 */
6171 OP_I32z, /* 0 .. 32 */
6172 OP_I63, /* 0 .. 63 */
6173 OP_I63s, /* -64 .. 63 */
6174 OP_I64, /* 1 .. 64 */
6175 OP_I64z, /* 0 .. 64 */
6176 OP_I255, /* 0 .. 255 */
6177
6178 OP_I4b, /* immediate, prefix optional, 1 .. 4 */
6179 OP_I7b, /* 0 .. 7 */
6180 OP_I15b, /* 0 .. 15 */
6181 OP_I31b, /* 0 .. 31 */
6182
6183 OP_SH, /* shifter operand */
6184 OP_SHG, /* shifter operand with possible group relocation */
6185 OP_ADDR, /* Memory address expression (any mode) */
6186 OP_ADDRGLDR, /* Mem addr expr (any mode) with possible LDR group reloc */
6187 OP_ADDRGLDRS, /* Mem addr expr (any mode) with possible LDRS group reloc */
6188 OP_ADDRGLDC, /* Mem addr expr (any mode) with possible LDC group reloc */
6189 OP_EXP, /* arbitrary expression */
6190 OP_EXPi, /* same, with optional immediate prefix */
6191 OP_EXPr, /* same, with optional relocation suffix */
6192 OP_HALF, /* 0 .. 65535 or low/high reloc. */
6193
6194 OP_CPSF, /* CPS flags */
6195 OP_ENDI, /* Endianness specifier */
6196 OP_wPSR, /* CPSR/SPSR/APSR mask for msr (writing). */
6197 OP_rPSR, /* CPSR/SPSR/APSR mask for msr (reading). */
6198 OP_COND, /* conditional code */
6199 OP_TB, /* Table branch. */
6200
6201 OP_APSR_RR, /* ARM register or "APSR_nzcv". */
6202
6203 OP_RRnpc_I0, /* ARM register or literal 0 */
6204 OP_RR_EXr, /* ARM register or expression with opt. reloc suff. */
6205 OP_RR_EXi, /* ARM register or expression with imm prefix */
6206 OP_RF_IF, /* FPA register or immediate */
6207 OP_RIWR_RIWC, /* iWMMXt R or C reg */
6208 OP_RIWC_RIWG, /* iWMMXt wC or wCG reg */
6209
6210 /* Optional operands. */
6211 OP_oI7b, /* immediate, prefix optional, 0 .. 7 */
6212 OP_oI31b, /* 0 .. 31 */
6213 OP_oI32b, /* 1 .. 32 */
6214 OP_oI32z, /* 0 .. 32 */
6215 OP_oIffffb, /* 0 .. 65535 */
6216 OP_oI255c, /* curly-brace enclosed, 0 .. 255 */
6217
6218 OP_oRR, /* ARM register */
6219 OP_oRRnpc, /* ARM register, not the PC */
6220 OP_oRRnpcsp, /* ARM register, neither the PC nor the SP (a.k.a. BadReg) */
6221 OP_oRRw, /* ARM register, not r15, optional trailing ! */
6222 OP_oRND, /* Optional Neon double precision register */
6223 OP_oRNQ, /* Optional Neon quad precision register */
6224 OP_oRNDQ, /* Optional Neon double or quad precision register */
6225 OP_oRNSDQ, /* Optional single, double or quad precision vector register */
6226 OP_oSHll, /* LSL immediate */
6227 OP_oSHar, /* ASR immediate */
6228 OP_oSHllar, /* LSL or ASR immediate */
6229 OP_oROR, /* ROR 0/8/16/24 */
6230 OP_oBARRIER_I15, /* Option argument for a barrier instruction. */
6231
6232 /* Some pre-defined mixed (ARM/THUMB) operands. */
6233 OP_RR_npcsp = MIX_ARM_THUMB_OPERANDS (OP_RR, OP_RRnpcsp),
6234 OP_RRnpc_npcsp = MIX_ARM_THUMB_OPERANDS (OP_RRnpc, OP_RRnpcsp),
6235 OP_oRRnpc_npcsp = MIX_ARM_THUMB_OPERANDS (OP_oRRnpc, OP_oRRnpcsp),
6236
6237 OP_FIRST_OPTIONAL = OP_oI7b
6238 };
6239
6240 /* Generic instruction operand parser. This does no encoding and no
6241 semantic validation; it merely squirrels values away in the inst
6242 structure. Returns SUCCESS or FAIL depending on whether the
6243 specified grammar matched. */
6244 static int
6245 parse_operands (char *str, const unsigned int *pattern, bfd_boolean thumb)
6246 {
6247 unsigned const int *upat = pattern;
6248 char *backtrack_pos = 0;
6249 const char *backtrack_error = 0;
6250 int i, val = 0, backtrack_index = 0;
6251 enum arm_reg_type rtype;
6252 parse_operand_result result;
6253 unsigned int op_parse_code;
6254
6255 #define po_char_or_fail(chr) \
6256 do \
6257 { \
6258 if (skip_past_char (&str, chr) == FAIL) \
6259 goto bad_args; \
6260 } \
6261 while (0)
6262
6263 #define po_reg_or_fail(regtype) \
6264 do \
6265 { \
6266 val = arm_typed_reg_parse (& str, regtype, & rtype, \
6267 & inst.operands[i].vectype); \
6268 if (val == FAIL) \
6269 { \
6270 first_error (_(reg_expected_msgs[regtype])); \
6271 goto failure; \
6272 } \
6273 inst.operands[i].reg = val; \
6274 inst.operands[i].isreg = 1; \
6275 inst.operands[i].isquad = (rtype == REG_TYPE_NQ); \
6276 inst.operands[i].issingle = (rtype == REG_TYPE_VFS); \
6277 inst.operands[i].isvec = (rtype == REG_TYPE_VFS \
6278 || rtype == REG_TYPE_VFD \
6279 || rtype == REG_TYPE_NQ); \
6280 } \
6281 while (0)
6282
6283 #define po_reg_or_goto(regtype, label) \
6284 do \
6285 { \
6286 val = arm_typed_reg_parse (& str, regtype, & rtype, \
6287 & inst.operands[i].vectype); \
6288 if (val == FAIL) \
6289 goto label; \
6290 \
6291 inst.operands[i].reg = val; \
6292 inst.operands[i].isreg = 1; \
6293 inst.operands[i].isquad = (rtype == REG_TYPE_NQ); \
6294 inst.operands[i].issingle = (rtype == REG_TYPE_VFS); \
6295 inst.operands[i].isvec = (rtype == REG_TYPE_VFS \
6296 || rtype == REG_TYPE_VFD \
6297 || rtype == REG_TYPE_NQ); \
6298 } \
6299 while (0)
6300
6301 #define po_imm_or_fail(min, max, popt) \
6302 do \
6303 { \
6304 if (parse_immediate (&str, &val, min, max, popt) == FAIL) \
6305 goto failure; \
6306 inst.operands[i].imm = val; \
6307 } \
6308 while (0)
6309
6310 #define po_scalar_or_goto(elsz, label) \
6311 do \
6312 { \
6313 val = parse_scalar (& str, elsz, & inst.operands[i].vectype); \
6314 if (val == FAIL) \
6315 goto label; \
6316 inst.operands[i].reg = val; \
6317 inst.operands[i].isscalar = 1; \
6318 } \
6319 while (0)
6320
6321 #define po_misc_or_fail(expr) \
6322 do \
6323 { \
6324 if (expr) \
6325 goto failure; \
6326 } \
6327 while (0)
6328
6329 #define po_misc_or_fail_no_backtrack(expr) \
6330 do \
6331 { \
6332 result = expr; \
6333 if (result == PARSE_OPERAND_FAIL_NO_BACKTRACK) \
6334 backtrack_pos = 0; \
6335 if (result != PARSE_OPERAND_SUCCESS) \
6336 goto failure; \
6337 } \
6338 while (0)
6339
6340 #define po_barrier_or_imm(str) \
6341 do \
6342 { \
6343 val = parse_barrier (&str); \
6344 if (val == FAIL && ! ISALPHA (*str)) \
6345 goto immediate; \
6346 if (val == FAIL \
6347 /* ISB can only take SY as an option. */ \
6348 || ((inst.instruction & 0xf0) == 0x60 \
6349 && val != 0xf)) \
6350 { \
6351 inst.error = _("invalid barrier type"); \
6352 backtrack_pos = 0; \
6353 goto failure; \
6354 } \
6355 } \
6356 while (0)
6357
6358 skip_whitespace (str);
6359
6360 for (i = 0; upat[i] != OP_stop; i++)
6361 {
6362 op_parse_code = upat[i];
6363 if (op_parse_code >= 1<<16)
6364 op_parse_code = thumb ? (op_parse_code >> 16)
6365 : (op_parse_code & ((1<<16)-1));
6366
6367 if (op_parse_code >= OP_FIRST_OPTIONAL)
6368 {
6369 /* Remember where we are in case we need to backtrack. */
6370 gas_assert (!backtrack_pos);
6371 backtrack_pos = str;
6372 backtrack_error = inst.error;
6373 backtrack_index = i;
6374 }
6375
6376 if (i > 0 && (i > 1 || inst.operands[0].present))
6377 po_char_or_fail (',');
6378
6379 switch (op_parse_code)
6380 {
6381 /* Registers */
6382 case OP_oRRnpc:
6383 case OP_oRRnpcsp:
6384 case OP_RRnpc:
6385 case OP_RRnpcsp:
6386 case OP_oRR:
6387 case OP_RR: po_reg_or_fail (REG_TYPE_RN); break;
6388 case OP_RCP: po_reg_or_fail (REG_TYPE_CP); break;
6389 case OP_RCN: po_reg_or_fail (REG_TYPE_CN); break;
6390 case OP_RF: po_reg_or_fail (REG_TYPE_FN); break;
6391 case OP_RVS: po_reg_or_fail (REG_TYPE_VFS); break;
6392 case OP_RVD: po_reg_or_fail (REG_TYPE_VFD); break;
6393 case OP_oRND:
6394 case OP_RND: po_reg_or_fail (REG_TYPE_VFD); break;
6395 case OP_RVC:
6396 po_reg_or_goto (REG_TYPE_VFC, coproc_reg);
6397 break;
6398 /* Also accept generic coprocessor regs for unknown registers. */
6399 coproc_reg:
6400 po_reg_or_fail (REG_TYPE_CN);
6401 break;
6402 case OP_RMF: po_reg_or_fail (REG_TYPE_MVF); break;
6403 case OP_RMD: po_reg_or_fail (REG_TYPE_MVD); break;
6404 case OP_RMFX: po_reg_or_fail (REG_TYPE_MVFX); break;
6405 case OP_RMDX: po_reg_or_fail (REG_TYPE_MVDX); break;
6406 case OP_RMAX: po_reg_or_fail (REG_TYPE_MVAX); break;
6407 case OP_RMDS: po_reg_or_fail (REG_TYPE_DSPSC); break;
6408 case OP_RIWR: po_reg_or_fail (REG_TYPE_MMXWR); break;
6409 case OP_RIWC: po_reg_or_fail (REG_TYPE_MMXWC); break;
6410 case OP_RIWG: po_reg_or_fail (REG_TYPE_MMXWCG); break;
6411 case OP_RXA: po_reg_or_fail (REG_TYPE_XSCALE); break;
6412 case OP_oRNQ:
6413 case OP_RNQ: po_reg_or_fail (REG_TYPE_NQ); break;
6414 case OP_oRNDQ:
6415 case OP_RNDQ: po_reg_or_fail (REG_TYPE_NDQ); break;
6416 case OP_RVSD: po_reg_or_fail (REG_TYPE_VFSD); break;
6417 case OP_oRNSDQ:
6418 case OP_RNSDQ: po_reg_or_fail (REG_TYPE_NSDQ); break;
6419
6420 /* Neon scalar. Using an element size of 8 means that some invalid
6421 scalars are accepted here, so deal with those in later code. */
6422 case OP_RNSC: po_scalar_or_goto (8, failure); break;
6423
6424 case OP_RNDQ_I0:
6425 {
6426 po_reg_or_goto (REG_TYPE_NDQ, try_imm0);
6427 break;
6428 try_imm0:
6429 po_imm_or_fail (0, 0, TRUE);
6430 }
6431 break;
6432
6433 case OP_RVSD_I0:
6434 po_reg_or_goto (REG_TYPE_VFSD, try_imm0);
6435 break;
6436
6437 case OP_RR_RNSC:
6438 {
6439 po_scalar_or_goto (8, try_rr);
6440 break;
6441 try_rr:
6442 po_reg_or_fail (REG_TYPE_RN);
6443 }
6444 break;
6445
6446 case OP_RNSDQ_RNSC:
6447 {
6448 po_scalar_or_goto (8, try_nsdq);
6449 break;
6450 try_nsdq:
6451 po_reg_or_fail (REG_TYPE_NSDQ);
6452 }
6453 break;
6454
6455 case OP_RNDQ_RNSC:
6456 {
6457 po_scalar_or_goto (8, try_ndq);
6458 break;
6459 try_ndq:
6460 po_reg_or_fail (REG_TYPE_NDQ);
6461 }
6462 break;
6463
6464 case OP_RND_RNSC:
6465 {
6466 po_scalar_or_goto (8, try_vfd);
6467 break;
6468 try_vfd:
6469 po_reg_or_fail (REG_TYPE_VFD);
6470 }
6471 break;
6472
6473 case OP_VMOV:
6474 /* WARNING: parse_neon_mov can move the operand counter, i. If we're
6475 not careful then bad things might happen. */
6476 po_misc_or_fail (parse_neon_mov (&str, &i) == FAIL);
6477 break;
6478
6479 case OP_RNDQ_Ibig:
6480 {
6481 po_reg_or_goto (REG_TYPE_NDQ, try_immbig);
6482 break;
6483 try_immbig:
6484 /* There's a possibility of getting a 64-bit immediate here, so
6485 we need special handling. */
6486 if (parse_big_immediate (&str, i) == FAIL)
6487 {
6488 inst.error = _("immediate value is out of range");
6489 goto failure;
6490 }
6491 }
6492 break;
6493
6494 case OP_RNDQ_I63b:
6495 {
6496 po_reg_or_goto (REG_TYPE_NDQ, try_shimm);
6497 break;
6498 try_shimm:
6499 po_imm_or_fail (0, 63, TRUE);
6500 }
6501 break;
6502
6503 case OP_RRnpcb:
6504 po_char_or_fail ('[');
6505 po_reg_or_fail (REG_TYPE_RN);
6506 po_char_or_fail (']');
6507 break;
6508
6509 case OP_RRnpctw:
6510 case OP_RRw:
6511 case OP_oRRw:
6512 po_reg_or_fail (REG_TYPE_RN);
6513 if (skip_past_char (&str, '!') == SUCCESS)
6514 inst.operands[i].writeback = 1;
6515 break;
6516
6517 /* Immediates */
6518 case OP_I7: po_imm_or_fail ( 0, 7, FALSE); break;
6519 case OP_I15: po_imm_or_fail ( 0, 15, FALSE); break;
6520 case OP_I16: po_imm_or_fail ( 1, 16, FALSE); break;
6521 case OP_I16z: po_imm_or_fail ( 0, 16, FALSE); break;
6522 case OP_I31: po_imm_or_fail ( 0, 31, FALSE); break;
6523 case OP_I32: po_imm_or_fail ( 1, 32, FALSE); break;
6524 case OP_I32z: po_imm_or_fail ( 0, 32, FALSE); break;
6525 case OP_I63s: po_imm_or_fail (-64, 63, FALSE); break;
6526 case OP_I63: po_imm_or_fail ( 0, 63, FALSE); break;
6527 case OP_I64: po_imm_or_fail ( 1, 64, FALSE); break;
6528 case OP_I64z: po_imm_or_fail ( 0, 64, FALSE); break;
6529 case OP_I255: po_imm_or_fail ( 0, 255, FALSE); break;
6530
6531 case OP_I4b: po_imm_or_fail ( 1, 4, TRUE); break;
6532 case OP_oI7b:
6533 case OP_I7b: po_imm_or_fail ( 0, 7, TRUE); break;
6534 case OP_I15b: po_imm_or_fail ( 0, 15, TRUE); break;
6535 case OP_oI31b:
6536 case OP_I31b: po_imm_or_fail ( 0, 31, TRUE); break;
6537 case OP_oI32b: po_imm_or_fail ( 1, 32, TRUE); break;
6538 case OP_oI32z: po_imm_or_fail ( 0, 32, TRUE); break;
6539 case OP_oIffffb: po_imm_or_fail ( 0, 0xffff, TRUE); break;
6540
6541 /* Immediate variants */
6542 case OP_oI255c:
6543 po_char_or_fail ('{');
6544 po_imm_or_fail (0, 255, TRUE);
6545 po_char_or_fail ('}');
6546 break;
6547
6548 case OP_I31w:
6549 /* The expression parser chokes on a trailing !, so we have
6550 to find it first and zap it. */
6551 {
6552 char *s = str;
6553 while (*s && *s != ',')
6554 s++;
6555 if (s[-1] == '!')
6556 {
6557 s[-1] = '\0';
6558 inst.operands[i].writeback = 1;
6559 }
6560 po_imm_or_fail (0, 31, TRUE);
6561 if (str == s - 1)
6562 str = s;
6563 }
6564 break;
6565
6566 /* Expressions */
6567 case OP_EXPi: EXPi:
6568 po_misc_or_fail (my_get_expression (&inst.reloc.exp, &str,
6569 GE_OPT_PREFIX));
6570 break;
6571
6572 case OP_EXP:
6573 po_misc_or_fail (my_get_expression (&inst.reloc.exp, &str,
6574 GE_NO_PREFIX));
6575 break;
6576
6577 case OP_EXPr: EXPr:
6578 po_misc_or_fail (my_get_expression (&inst.reloc.exp, &str,
6579 GE_NO_PREFIX));
6580 if (inst.reloc.exp.X_op == O_symbol)
6581 {
6582 val = parse_reloc (&str);
6583 if (val == -1)
6584 {
6585 inst.error = _("unrecognized relocation suffix");
6586 goto failure;
6587 }
6588 else if (val != BFD_RELOC_UNUSED)
6589 {
6590 inst.operands[i].imm = val;
6591 inst.operands[i].hasreloc = 1;
6592 }
6593 }
6594 break;
6595
6596 /* Operand for MOVW or MOVT. */
6597 case OP_HALF:
6598 po_misc_or_fail (parse_half (&str));
6599 break;
6600
6601 /* Register or expression. */
6602 case OP_RR_EXr: po_reg_or_goto (REG_TYPE_RN, EXPr); break;
6603 case OP_RR_EXi: po_reg_or_goto (REG_TYPE_RN, EXPi); break;
6604
6605 /* Register or immediate. */
6606 case OP_RRnpc_I0: po_reg_or_goto (REG_TYPE_RN, I0); break;
6607 I0: po_imm_or_fail (0, 0, FALSE); break;
6608
6609 case OP_RF_IF: po_reg_or_goto (REG_TYPE_FN, IF); break;
6610 IF:
6611 if (!is_immediate_prefix (*str))
6612 goto bad_args;
6613 str++;
6614 val = parse_fpa_immediate (&str);
6615 if (val == FAIL)
6616 goto failure;
6617 /* FPA immediates are encoded as registers 8-15.
6618 parse_fpa_immediate has already applied the offset. */
6619 inst.operands[i].reg = val;
6620 inst.operands[i].isreg = 1;
6621 break;
6622
6623 case OP_RIWR_I32z: po_reg_or_goto (REG_TYPE_MMXWR, I32z); break;
6624 I32z: po_imm_or_fail (0, 32, FALSE); break;
6625
6626 /* Two kinds of register. */
6627 case OP_RIWR_RIWC:
6628 {
6629 struct reg_entry *rege = arm_reg_parse_multi (&str);
6630 if (!rege
6631 || (rege->type != REG_TYPE_MMXWR
6632 && rege->type != REG_TYPE_MMXWC
6633 && rege->type != REG_TYPE_MMXWCG))
6634 {
6635 inst.error = _("iWMMXt data or control register expected");
6636 goto failure;
6637 }
6638 inst.operands[i].reg = rege->number;
6639 inst.operands[i].isreg = (rege->type == REG_TYPE_MMXWR);
6640 }
6641 break;
6642
6643 case OP_RIWC_RIWG:
6644 {
6645 struct reg_entry *rege = arm_reg_parse_multi (&str);
6646 if (!rege
6647 || (rege->type != REG_TYPE_MMXWC
6648 && rege->type != REG_TYPE_MMXWCG))
6649 {
6650 inst.error = _("iWMMXt control register expected");
6651 goto failure;
6652 }
6653 inst.operands[i].reg = rege->number;
6654 inst.operands[i].isreg = 1;
6655 }
6656 break;
6657
6658 /* Misc */
6659 case OP_CPSF: val = parse_cps_flags (&str); break;
6660 case OP_ENDI: val = parse_endian_specifier (&str); break;
6661 case OP_oROR: val = parse_ror (&str); break;
6662 case OP_COND: val = parse_cond (&str); break;
6663 case OP_oBARRIER_I15:
6664 po_barrier_or_imm (str); break;
6665 immediate:
6666 if (parse_immediate (&str, &val, 0, 15, TRUE) == FAIL)
6667 goto failure;
6668 break;
6669
6670 case OP_wPSR:
6671 case OP_rPSR:
6672 po_reg_or_goto (REG_TYPE_RNB, try_psr);
6673 if (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_virt))
6674 {
6675 inst.error = _("Banked registers are not available with this "
6676 "architecture.");
6677 goto failure;
6678 }
6679 break;
6680 try_psr:
6681 val = parse_psr (&str, op_parse_code == OP_wPSR);
6682 break;
6683
6684 case OP_APSR_RR:
6685 po_reg_or_goto (REG_TYPE_RN, try_apsr);
6686 break;
6687 try_apsr:
6688 /* Parse "APSR_nvzc" operand (for FMSTAT-equivalent MRS
6689 instruction). */
6690 if (strncasecmp (str, "APSR_", 5) == 0)
6691 {
6692 unsigned found = 0;
6693 str += 5;
6694 while (found < 15)
6695 switch (*str++)
6696 {
6697 case 'c': found = (found & 1) ? 16 : found | 1; break;
6698 case 'n': found = (found & 2) ? 16 : found | 2; break;
6699 case 'z': found = (found & 4) ? 16 : found | 4; break;
6700 case 'v': found = (found & 8) ? 16 : found | 8; break;
6701 default: found = 16;
6702 }
6703 if (found != 15)
6704 goto failure;
6705 inst.operands[i].isvec = 1;
6706 /* APSR_nzcv is encoded in instructions as if it were the REG_PC. */
6707 inst.operands[i].reg = REG_PC;
6708 }
6709 else
6710 goto failure;
6711 break;
6712
6713 case OP_TB:
6714 po_misc_or_fail (parse_tb (&str));
6715 break;
6716
6717 /* Register lists. */
6718 case OP_REGLST:
6719 val = parse_reg_list (&str);
6720 if (*str == '^')
6721 {
6722 inst.operands[1].writeback = 1;
6723 str++;
6724 }
6725 break;
6726
6727 case OP_VRSLST:
6728 val = parse_vfp_reg_list (&str, &inst.operands[i].reg, REGLIST_VFP_S);
6729 break;
6730
6731 case OP_VRDLST:
6732 val = parse_vfp_reg_list (&str, &inst.operands[i].reg, REGLIST_VFP_D);
6733 break;
6734
6735 case OP_VRSDLST:
6736 /* Allow Q registers too. */
6737 val = parse_vfp_reg_list (&str, &inst.operands[i].reg,
6738 REGLIST_NEON_D);
6739 if (val == FAIL)
6740 {
6741 inst.error = NULL;
6742 val = parse_vfp_reg_list (&str, &inst.operands[i].reg,
6743 REGLIST_VFP_S);
6744 inst.operands[i].issingle = 1;
6745 }
6746 break;
6747
6748 case OP_NRDLST:
6749 val = parse_vfp_reg_list (&str, &inst.operands[i].reg,
6750 REGLIST_NEON_D);
6751 break;
6752
6753 case OP_NSTRLST:
6754 val = parse_neon_el_struct_list (&str, &inst.operands[i].reg,
6755 &inst.operands[i].vectype);
6756 break;
6757
6758 /* Addressing modes */
6759 case OP_ADDR:
6760 po_misc_or_fail (parse_address (&str, i));
6761 break;
6762
6763 case OP_ADDRGLDR:
6764 po_misc_or_fail_no_backtrack (
6765 parse_address_group_reloc (&str, i, GROUP_LDR));
6766 break;
6767
6768 case OP_ADDRGLDRS:
6769 po_misc_or_fail_no_backtrack (
6770 parse_address_group_reloc (&str, i, GROUP_LDRS));
6771 break;
6772
6773 case OP_ADDRGLDC:
6774 po_misc_or_fail_no_backtrack (
6775 parse_address_group_reloc (&str, i, GROUP_LDC));
6776 break;
6777
6778 case OP_SH:
6779 po_misc_or_fail (parse_shifter_operand (&str, i));
6780 break;
6781
6782 case OP_SHG:
6783 po_misc_or_fail_no_backtrack (
6784 parse_shifter_operand_group_reloc (&str, i));
6785 break;
6786
6787 case OP_oSHll:
6788 po_misc_or_fail (parse_shift (&str, i, SHIFT_LSL_IMMEDIATE));
6789 break;
6790
6791 case OP_oSHar:
6792 po_misc_or_fail (parse_shift (&str, i, SHIFT_ASR_IMMEDIATE));
6793 break;
6794
6795 case OP_oSHllar:
6796 po_misc_or_fail (parse_shift (&str, i, SHIFT_LSL_OR_ASR_IMMEDIATE));
6797 break;
6798
6799 default:
6800 as_fatal (_("unhandled operand code %d"), op_parse_code);
6801 }
6802
6803 /* Various value-based sanity checks and shared operations. We
6804 do not signal immediate failures for the register constraints;
6805 this allows a syntax error to take precedence. */
6806 switch (op_parse_code)
6807 {
6808 case OP_oRRnpc:
6809 case OP_RRnpc:
6810 case OP_RRnpcb:
6811 case OP_RRw:
6812 case OP_oRRw:
6813 case OP_RRnpc_I0:
6814 if (inst.operands[i].isreg && inst.operands[i].reg == REG_PC)
6815 inst.error = BAD_PC;
6816 break;
6817
6818 case OP_oRRnpcsp:
6819 case OP_RRnpcsp:
6820 if (inst.operands[i].isreg)
6821 {
6822 if (inst.operands[i].reg == REG_PC)
6823 inst.error = BAD_PC;
6824 else if (inst.operands[i].reg == REG_SP)
6825 inst.error = BAD_SP;
6826 }
6827 break;
6828
6829 case OP_RRnpctw:
6830 if (inst.operands[i].isreg
6831 && inst.operands[i].reg == REG_PC
6832 && (inst.operands[i].writeback || thumb))
6833 inst.error = BAD_PC;
6834 break;
6835
6836 case OP_CPSF:
6837 case OP_ENDI:
6838 case OP_oROR:
6839 case OP_wPSR:
6840 case OP_rPSR:
6841 case OP_COND:
6842 case OP_oBARRIER_I15:
6843 case OP_REGLST:
6844 case OP_VRSLST:
6845 case OP_VRDLST:
6846 case OP_VRSDLST:
6847 case OP_NRDLST:
6848 case OP_NSTRLST:
6849 if (val == FAIL)
6850 goto failure;
6851 inst.operands[i].imm = val;
6852 break;
6853
6854 default:
6855 break;
6856 }
6857
6858 /* If we get here, this operand was successfully parsed. */
6859 inst.operands[i].present = 1;
6860 continue;
6861
6862 bad_args:
6863 inst.error = BAD_ARGS;
6864
6865 failure:
6866 if (!backtrack_pos)
6867 {
6868 /* The parse routine should already have set inst.error, but set a
6869 default here just in case. */
6870 if (!inst.error)
6871 inst.error = _("syntax error");
6872 return FAIL;
6873 }
6874
6875 /* Do not backtrack over a trailing optional argument that
6876 absorbed some text. We will only fail again, with the
6877 'garbage following instruction' error message, which is
6878 probably less helpful than the current one. */
6879 if (backtrack_index == i && backtrack_pos != str
6880 && upat[i+1] == OP_stop)
6881 {
6882 if (!inst.error)
6883 inst.error = _("syntax error");
6884 return FAIL;
6885 }
6886
6887 /* Try again, skipping the optional argument at backtrack_pos. */
6888 str = backtrack_pos;
6889 inst.error = backtrack_error;
6890 inst.operands[backtrack_index].present = 0;
6891 i = backtrack_index;
6892 backtrack_pos = 0;
6893 }
6894
6895 /* Check that we have parsed all the arguments. */
6896 if (*str != '\0' && !inst.error)
6897 inst.error = _("garbage following instruction");
6898
6899 return inst.error ? FAIL : SUCCESS;
6900 }
6901
6902 #undef po_char_or_fail
6903 #undef po_reg_or_fail
6904 #undef po_reg_or_goto
6905 #undef po_imm_or_fail
6906 #undef po_scalar_or_fail
6907 #undef po_barrier_or_imm
6908
6909 /* Shorthand macro for instruction encoding functions issuing errors. */
6910 #define constraint(expr, err) \
6911 do \
6912 { \
6913 if (expr) \
6914 { \
6915 inst.error = err; \
6916 return; \
6917 } \
6918 } \
6919 while (0)
6920
6921 /* Reject "bad registers" for Thumb-2 instructions. Many Thumb-2
6922 instructions are unpredictable if these registers are used. This
6923 is the BadReg predicate in ARM's Thumb-2 documentation. */
6924 #define reject_bad_reg(reg) \
6925 do \
6926 if (reg == REG_SP || reg == REG_PC) \
6927 { \
6928 inst.error = (reg == REG_SP) ? BAD_SP : BAD_PC; \
6929 return; \
6930 } \
6931 while (0)
6932
6933 /* If REG is R13 (the stack pointer), warn that its use is
6934 deprecated. */
6935 #define warn_deprecated_sp(reg) \
6936 do \
6937 if (warn_on_deprecated && reg == REG_SP) \
6938 as_warn (_("use of r13 is deprecated")); \
6939 while (0)
6940
6941 /* Functions for operand encoding. ARM, then Thumb. */
6942
6943 #define rotate_left(v, n) (v << n | v >> (32 - n))
6944
6945 /* If VAL can be encoded in the immediate field of an ARM instruction,
6946 return the encoded form. Otherwise, return FAIL. */
6947
6948 static unsigned int
6949 encode_arm_immediate (unsigned int val)
6950 {
6951 unsigned int a, i;
6952
6953 for (i = 0; i < 32; i += 2)
6954 if ((a = rotate_left (val, i)) <= 0xff)
6955 return a | (i << 7); /* 12-bit pack: [shift-cnt,const]. */
6956
6957 return FAIL;
6958 }
6959
6960 /* If VAL can be encoded in the immediate field of a Thumb32 instruction,
6961 return the encoded form. Otherwise, return FAIL. */
6962 static unsigned int
6963 encode_thumb32_immediate (unsigned int val)
6964 {
6965 unsigned int a, i;
6966
6967 if (val <= 0xff)
6968 return val;
6969
6970 for (i = 1; i <= 24; i++)
6971 {
6972 a = val >> i;
6973 if ((val & ~(0xff << i)) == 0)
6974 return ((val >> i) & 0x7f) | ((32 - i) << 7);
6975 }
6976
6977 a = val & 0xff;
6978 if (val == ((a << 16) | a))
6979 return 0x100 | a;
6980 if (val == ((a << 24) | (a << 16) | (a << 8) | a))
6981 return 0x300 | a;
6982
6983 a = val & 0xff00;
6984 if (val == ((a << 16) | a))
6985 return 0x200 | (a >> 8);
6986
6987 return FAIL;
6988 }
6989 /* Encode a VFP SP or DP register number into inst.instruction. */
6990
6991 static void
6992 encode_arm_vfp_reg (int reg, enum vfp_reg_pos pos)
6993 {
6994 if ((pos == VFP_REG_Dd || pos == VFP_REG_Dn || pos == VFP_REG_Dm)
6995 && reg > 15)
6996 {
6997 if (ARM_CPU_HAS_FEATURE (cpu_variant, fpu_vfp_ext_d32))
6998 {
6999 if (thumb_mode)
7000 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used,
7001 fpu_vfp_ext_d32);
7002 else
7003 ARM_MERGE_FEATURE_SETS (arm_arch_used, arm_arch_used,
7004 fpu_vfp_ext_d32);
7005 }
7006 else
7007 {
7008 first_error (_("D register out of range for selected VFP version"));
7009 return;
7010 }
7011 }
7012
7013 switch (pos)
7014 {
7015 case VFP_REG_Sd:
7016 inst.instruction |= ((reg >> 1) << 12) | ((reg & 1) << 22);
7017 break;
7018
7019 case VFP_REG_Sn:
7020 inst.instruction |= ((reg >> 1) << 16) | ((reg & 1) << 7);
7021 break;
7022
7023 case VFP_REG_Sm:
7024 inst.instruction |= ((reg >> 1) << 0) | ((reg & 1) << 5);
7025 break;
7026
7027 case VFP_REG_Dd:
7028 inst.instruction |= ((reg & 15) << 12) | ((reg >> 4) << 22);
7029 break;
7030
7031 case VFP_REG_Dn:
7032 inst.instruction |= ((reg & 15) << 16) | ((reg >> 4) << 7);
7033 break;
7034
7035 case VFP_REG_Dm:
7036 inst.instruction |= (reg & 15) | ((reg >> 4) << 5);
7037 break;
7038
7039 default:
7040 abort ();
7041 }
7042 }
7043
7044 /* Encode a <shift> in an ARM-format instruction. The immediate,
7045 if any, is handled by md_apply_fix. */
7046 static void
7047 encode_arm_shift (int i)
7048 {
7049 if (inst.operands[i].shift_kind == SHIFT_RRX)
7050 inst.instruction |= SHIFT_ROR << 5;
7051 else
7052 {
7053 inst.instruction |= inst.operands[i].shift_kind << 5;
7054 if (inst.operands[i].immisreg)
7055 {
7056 inst.instruction |= SHIFT_BY_REG;
7057 inst.instruction |= inst.operands[i].imm << 8;
7058 }
7059 else
7060 inst.reloc.type = BFD_RELOC_ARM_SHIFT_IMM;
7061 }
7062 }
7063
7064 static void
7065 encode_arm_shifter_operand (int i)
7066 {
7067 if (inst.operands[i].isreg)
7068 {
7069 inst.instruction |= inst.operands[i].reg;
7070 encode_arm_shift (i);
7071 }
7072 else
7073 {
7074 inst.instruction |= INST_IMMEDIATE;
7075 if (inst.reloc.type != BFD_RELOC_ARM_IMMEDIATE)
7076 inst.instruction |= inst.operands[i].imm;
7077 }
7078 }
7079
7080 /* Subroutine of encode_arm_addr_mode_2 and encode_arm_addr_mode_3. */
7081 static void
7082 encode_arm_addr_mode_common (int i, bfd_boolean is_t)
7083 {
7084 /* PR 14260:
7085 Generate an error if the operand is not a register. */
7086 constraint (!inst.operands[i].isreg,
7087 _("Instruction does not support =N addresses"));
7088
7089 inst.instruction |= inst.operands[i].reg << 16;
7090
7091 if (inst.operands[i].preind)
7092 {
7093 if (is_t)
7094 {
7095 inst.error = _("instruction does not accept preindexed addressing");
7096 return;
7097 }
7098 inst.instruction |= PRE_INDEX;
7099 if (inst.operands[i].writeback)
7100 inst.instruction |= WRITE_BACK;
7101
7102 }
7103 else if (inst.operands[i].postind)
7104 {
7105 gas_assert (inst.operands[i].writeback);
7106 if (is_t)
7107 inst.instruction |= WRITE_BACK;
7108 }
7109 else /* unindexed - only for coprocessor */
7110 {
7111 inst.error = _("instruction does not accept unindexed addressing");
7112 return;
7113 }
7114
7115 if (((inst.instruction & WRITE_BACK) || !(inst.instruction & PRE_INDEX))
7116 && (((inst.instruction & 0x000f0000) >> 16)
7117 == ((inst.instruction & 0x0000f000) >> 12)))
7118 as_warn ((inst.instruction & LOAD_BIT)
7119 ? _("destination register same as write-back base")
7120 : _("source register same as write-back base"));
7121 }
7122
7123 /* inst.operands[i] was set up by parse_address. Encode it into an
7124 ARM-format mode 2 load or store instruction. If is_t is true,
7125 reject forms that cannot be used with a T instruction (i.e. not
7126 post-indexed). */
7127 static void
7128 encode_arm_addr_mode_2 (int i, bfd_boolean is_t)
7129 {
7130 const bfd_boolean is_pc = (inst.operands[i].reg == REG_PC);
7131
7132 encode_arm_addr_mode_common (i, is_t);
7133
7134 if (inst.operands[i].immisreg)
7135 {
7136 constraint ((inst.operands[i].imm == REG_PC
7137 || (is_pc && inst.operands[i].writeback)),
7138 BAD_PC_ADDRESSING);
7139 inst.instruction |= INST_IMMEDIATE; /* yes, this is backwards */
7140 inst.instruction |= inst.operands[i].imm;
7141 if (!inst.operands[i].negative)
7142 inst.instruction |= INDEX_UP;
7143 if (inst.operands[i].shifted)
7144 {
7145 if (inst.operands[i].shift_kind == SHIFT_RRX)
7146 inst.instruction |= SHIFT_ROR << 5;
7147 else
7148 {
7149 inst.instruction |= inst.operands[i].shift_kind << 5;
7150 inst.reloc.type = BFD_RELOC_ARM_SHIFT_IMM;
7151 }
7152 }
7153 }
7154 else /* immediate offset in inst.reloc */
7155 {
7156 if (is_pc && !inst.reloc.pc_rel)
7157 {
7158 const bfd_boolean is_load = ((inst.instruction & LOAD_BIT) != 0);
7159
7160 /* If is_t is TRUE, it's called from do_ldstt. ldrt/strt
7161 cannot use PC in addressing.
7162 PC cannot be used in writeback addressing, either. */
7163 constraint ((is_t || inst.operands[i].writeback),
7164 BAD_PC_ADDRESSING);
7165
7166 /* Use of PC in str is deprecated for ARMv7. */
7167 if (warn_on_deprecated
7168 && !is_load
7169 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v7))
7170 as_warn (_("use of PC in this instruction is deprecated"));
7171 }
7172
7173 if (inst.reloc.type == BFD_RELOC_UNUSED)
7174 {
7175 /* Prefer + for zero encoded value. */
7176 if (!inst.operands[i].negative)
7177 inst.instruction |= INDEX_UP;
7178 inst.reloc.type = BFD_RELOC_ARM_OFFSET_IMM;
7179 }
7180 }
7181 }
7182
7183 /* inst.operands[i] was set up by parse_address. Encode it into an
7184 ARM-format mode 3 load or store instruction. Reject forms that
7185 cannot be used with such instructions. If is_t is true, reject
7186 forms that cannot be used with a T instruction (i.e. not
7187 post-indexed). */
7188 static void
7189 encode_arm_addr_mode_3 (int i, bfd_boolean is_t)
7190 {
7191 if (inst.operands[i].immisreg && inst.operands[i].shifted)
7192 {
7193 inst.error = _("instruction does not accept scaled register index");
7194 return;
7195 }
7196
7197 encode_arm_addr_mode_common (i, is_t);
7198
7199 if (inst.operands[i].immisreg)
7200 {
7201 constraint ((inst.operands[i].imm == REG_PC
7202 || (is_t && inst.operands[i].reg == REG_PC)),
7203 BAD_PC_ADDRESSING);
7204 constraint (inst.operands[i].reg == REG_PC && inst.operands[i].writeback,
7205 BAD_PC_WRITEBACK);
7206 inst.instruction |= inst.operands[i].imm;
7207 if (!inst.operands[i].negative)
7208 inst.instruction |= INDEX_UP;
7209 }
7210 else /* immediate offset in inst.reloc */
7211 {
7212 constraint ((inst.operands[i].reg == REG_PC && !inst.reloc.pc_rel
7213 && inst.operands[i].writeback),
7214 BAD_PC_WRITEBACK);
7215 inst.instruction |= HWOFFSET_IMM;
7216 if (inst.reloc.type == BFD_RELOC_UNUSED)
7217 {
7218 /* Prefer + for zero encoded value. */
7219 if (!inst.operands[i].negative)
7220 inst.instruction |= INDEX_UP;
7221
7222 inst.reloc.type = BFD_RELOC_ARM_OFFSET_IMM8;
7223 }
7224 }
7225 }
7226
7227 /* inst.operands[i] was set up by parse_address. Encode it into an
7228 ARM-format instruction. Reject all forms which cannot be encoded
7229 into a coprocessor load/store instruction. If wb_ok is false,
7230 reject use of writeback; if unind_ok is false, reject use of
7231 unindexed addressing. If reloc_override is not 0, use it instead
7232 of BFD_ARM_CP_OFF_IMM, unless the initial relocation is a group one
7233 (in which case it is preserved). */
7234
7235 static int
7236 encode_arm_cp_address (int i, int wb_ok, int unind_ok, int reloc_override)
7237 {
7238 inst.instruction |= inst.operands[i].reg << 16;
7239
7240 gas_assert (!(inst.operands[i].preind && inst.operands[i].postind));
7241
7242 if (!inst.operands[i].preind && !inst.operands[i].postind) /* unindexed */
7243 {
7244 gas_assert (!inst.operands[i].writeback);
7245 if (!unind_ok)
7246 {
7247 inst.error = _("instruction does not support unindexed addressing");
7248 return FAIL;
7249 }
7250 inst.instruction |= inst.operands[i].imm;
7251 inst.instruction |= INDEX_UP;
7252 return SUCCESS;
7253 }
7254
7255 if (inst.operands[i].preind)
7256 inst.instruction |= PRE_INDEX;
7257
7258 if (inst.operands[i].writeback)
7259 {
7260 if (inst.operands[i].reg == REG_PC)
7261 {
7262 inst.error = _("pc may not be used with write-back");
7263 return FAIL;
7264 }
7265 if (!wb_ok)
7266 {
7267 inst.error = _("instruction does not support writeback");
7268 return FAIL;
7269 }
7270 inst.instruction |= WRITE_BACK;
7271 }
7272
7273 if (reloc_override)
7274 inst.reloc.type = (bfd_reloc_code_real_type) reloc_override;
7275 else if ((inst.reloc.type < BFD_RELOC_ARM_ALU_PC_G0_NC
7276 || inst.reloc.type > BFD_RELOC_ARM_LDC_SB_G2)
7277 && inst.reloc.type != BFD_RELOC_ARM_LDR_PC_G0)
7278 {
7279 if (thumb_mode)
7280 inst.reloc.type = BFD_RELOC_ARM_T32_CP_OFF_IMM;
7281 else
7282 inst.reloc.type = BFD_RELOC_ARM_CP_OFF_IMM;
7283 }
7284
7285 /* Prefer + for zero encoded value. */
7286 if (!inst.operands[i].negative)
7287 inst.instruction |= INDEX_UP;
7288
7289 return SUCCESS;
7290 }
7291
7292 /* inst.reloc.exp describes an "=expr" load pseudo-operation.
7293 Determine whether it can be performed with a move instruction; if
7294 it can, convert inst.instruction to that move instruction and
7295 return TRUE; if it can't, convert inst.instruction to a literal-pool
7296 load and return FALSE. If this is not a valid thing to do in the
7297 current context, set inst.error and return TRUE.
7298
7299 inst.operands[i] describes the destination register. */
7300
7301 static bfd_boolean
7302 move_or_literal_pool (int i, bfd_boolean thumb_p, bfd_boolean mode_3)
7303 {
7304 unsigned long tbit;
7305
7306 if (thumb_p)
7307 tbit = (inst.instruction > 0xffff) ? THUMB2_LOAD_BIT : THUMB_LOAD_BIT;
7308 else
7309 tbit = LOAD_BIT;
7310
7311 if ((inst.instruction & tbit) == 0)
7312 {
7313 inst.error = _("invalid pseudo operation");
7314 return TRUE;
7315 }
7316 if (inst.reloc.exp.X_op != O_constant && inst.reloc.exp.X_op != O_symbol)
7317 {
7318 inst.error = _("constant expression expected");
7319 return TRUE;
7320 }
7321 if (inst.reloc.exp.X_op == O_constant)
7322 {
7323 if (thumb_p)
7324 {
7325 if (!unified_syntax && (inst.reloc.exp.X_add_number & ~0xFF) == 0)
7326 {
7327 /* This can be done with a mov(1) instruction. */
7328 inst.instruction = T_OPCODE_MOV_I8 | (inst.operands[i].reg << 8);
7329 inst.instruction |= inst.reloc.exp.X_add_number;
7330 return TRUE;
7331 }
7332 }
7333 else
7334 {
7335 int value = encode_arm_immediate (inst.reloc.exp.X_add_number);
7336 if (value != FAIL)
7337 {
7338 /* This can be done with a mov instruction. */
7339 inst.instruction &= LITERAL_MASK;
7340 inst.instruction |= INST_IMMEDIATE | (OPCODE_MOV << DATA_OP_SHIFT);
7341 inst.instruction |= value & 0xfff;
7342 return TRUE;
7343 }
7344
7345 value = encode_arm_immediate (~inst.reloc.exp.X_add_number);
7346 if (value != FAIL)
7347 {
7348 /* This can be done with a mvn instruction. */
7349 inst.instruction &= LITERAL_MASK;
7350 inst.instruction |= INST_IMMEDIATE | (OPCODE_MVN << DATA_OP_SHIFT);
7351 inst.instruction |= value & 0xfff;
7352 return TRUE;
7353 }
7354 }
7355 }
7356
7357 if (add_to_lit_pool () == FAIL)
7358 {
7359 inst.error = _("literal pool insertion failed");
7360 return TRUE;
7361 }
7362 inst.operands[1].reg = REG_PC;
7363 inst.operands[1].isreg = 1;
7364 inst.operands[1].preind = 1;
7365 inst.reloc.pc_rel = 1;
7366 inst.reloc.type = (thumb_p
7367 ? BFD_RELOC_ARM_THUMB_OFFSET
7368 : (mode_3
7369 ? BFD_RELOC_ARM_HWLITERAL
7370 : BFD_RELOC_ARM_LITERAL));
7371 return FALSE;
7372 }
7373
7374 /* Functions for instruction encoding, sorted by sub-architecture.
7375 First some generics; their names are taken from the conventional
7376 bit positions for register arguments in ARM format instructions. */
7377
7378 static void
7379 do_noargs (void)
7380 {
7381 }
7382
7383 static void
7384 do_rd (void)
7385 {
7386 inst.instruction |= inst.operands[0].reg << 12;
7387 }
7388
7389 static void
7390 do_rd_rm (void)
7391 {
7392 inst.instruction |= inst.operands[0].reg << 12;
7393 inst.instruction |= inst.operands[1].reg;
7394 }
7395
7396 static void
7397 do_rm_rn (void)
7398 {
7399 inst.instruction |= inst.operands[0].reg;
7400 inst.instruction |= inst.operands[1].reg << 16;
7401 }
7402
7403 static void
7404 do_rd_rn (void)
7405 {
7406 inst.instruction |= inst.operands[0].reg << 12;
7407 inst.instruction |= inst.operands[1].reg << 16;
7408 }
7409
7410 static void
7411 do_rn_rd (void)
7412 {
7413 inst.instruction |= inst.operands[0].reg << 16;
7414 inst.instruction |= inst.operands[1].reg << 12;
7415 }
7416
7417 static bfd_boolean
7418 check_obsolete (const arm_feature_set *feature, const char *msg)
7419 {
7420 if (ARM_CPU_IS_ANY (cpu_variant))
7421 {
7422 as_warn ("%s", msg);
7423 return TRUE;
7424 }
7425 else if (ARM_CPU_HAS_FEATURE (cpu_variant, *feature))
7426 {
7427 as_bad ("%s", msg);
7428 return TRUE;
7429 }
7430
7431 return FALSE;
7432 }
7433
7434 static void
7435 do_rd_rm_rn (void)
7436 {
7437 unsigned Rn = inst.operands[2].reg;
7438 /* Enforce restrictions on SWP instruction. */
7439 if ((inst.instruction & 0x0fbfffff) == 0x01000090)
7440 {
7441 constraint (Rn == inst.operands[0].reg || Rn == inst.operands[1].reg,
7442 _("Rn must not overlap other operands"));
7443
7444 /* SWP{b} is obsolete for ARMv8-A, and deprecated for ARMv6* and ARMv7.
7445 */
7446 if (!check_obsolete (&arm_ext_v8,
7447 _("swp{b} use is obsoleted for ARMv8 and later"))
7448 && warn_on_deprecated
7449 && ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v6))
7450 as_warn (_("swp{b} use is deprecated for ARMv6 and ARMv7"));
7451 }
7452
7453 inst.instruction |= inst.operands[0].reg << 12;
7454 inst.instruction |= inst.operands[1].reg;
7455 inst.instruction |= Rn << 16;
7456 }
7457
7458 static void
7459 do_rd_rn_rm (void)
7460 {
7461 inst.instruction |= inst.operands[0].reg << 12;
7462 inst.instruction |= inst.operands[1].reg << 16;
7463 inst.instruction |= inst.operands[2].reg;
7464 }
7465
7466 static void
7467 do_rm_rd_rn (void)
7468 {
7469 constraint ((inst.operands[2].reg == REG_PC), BAD_PC);
7470 constraint (((inst.reloc.exp.X_op != O_constant
7471 && inst.reloc.exp.X_op != O_illegal)
7472 || inst.reloc.exp.X_add_number != 0),
7473 BAD_ADDR_MODE);
7474 inst.instruction |= inst.operands[0].reg;
7475 inst.instruction |= inst.operands[1].reg << 12;
7476 inst.instruction |= inst.operands[2].reg << 16;
7477 }
7478
7479 static void
7480 do_imm0 (void)
7481 {
7482 inst.instruction |= inst.operands[0].imm;
7483 }
7484
7485 static void
7486 do_rd_cpaddr (void)
7487 {
7488 inst.instruction |= inst.operands[0].reg << 12;
7489 encode_arm_cp_address (1, TRUE, TRUE, 0);
7490 }
7491
7492 /* ARM instructions, in alphabetical order by function name (except
7493 that wrapper functions appear immediately after the function they
7494 wrap). */
7495
7496 /* This is a pseudo-op of the form "adr rd, label" to be converted
7497 into a relative address of the form "add rd, pc, #label-.-8". */
7498
7499 static void
7500 do_adr (void)
7501 {
7502 inst.instruction |= (inst.operands[0].reg << 12); /* Rd */
7503
7504 /* Frag hacking will turn this into a sub instruction if the offset turns
7505 out to be negative. */
7506 inst.reloc.type = BFD_RELOC_ARM_IMMEDIATE;
7507 inst.reloc.pc_rel = 1;
7508 inst.reloc.exp.X_add_number -= 8;
7509 }
7510
7511 /* This is a pseudo-op of the form "adrl rd, label" to be converted
7512 into a relative address of the form:
7513 add rd, pc, #low(label-.-8)"
7514 add rd, rd, #high(label-.-8)" */
7515
7516 static void
7517 do_adrl (void)
7518 {
7519 inst.instruction |= (inst.operands[0].reg << 12); /* Rd */
7520
7521 /* Frag hacking will turn this into a sub instruction if the offset turns
7522 out to be negative. */
7523 inst.reloc.type = BFD_RELOC_ARM_ADRL_IMMEDIATE;
7524 inst.reloc.pc_rel = 1;
7525 inst.size = INSN_SIZE * 2;
7526 inst.reloc.exp.X_add_number -= 8;
7527 }
7528
7529 static void
7530 do_arit (void)
7531 {
7532 if (!inst.operands[1].present)
7533 inst.operands[1].reg = inst.operands[0].reg;
7534 inst.instruction |= inst.operands[0].reg << 12;
7535 inst.instruction |= inst.operands[1].reg << 16;
7536 encode_arm_shifter_operand (2);
7537 }
7538
7539 static void
7540 do_barrier (void)
7541 {
7542 if (inst.operands[0].present)
7543 inst.instruction |= inst.operands[0].imm;
7544 else
7545 inst.instruction |= 0xf;
7546 }
7547
7548 static void
7549 do_bfc (void)
7550 {
7551 unsigned int msb = inst.operands[1].imm + inst.operands[2].imm;
7552 constraint (msb > 32, _("bit-field extends past end of register"));
7553 /* The instruction encoding stores the LSB and MSB,
7554 not the LSB and width. */
7555 inst.instruction |= inst.operands[0].reg << 12;
7556 inst.instruction |= inst.operands[1].imm << 7;
7557 inst.instruction |= (msb - 1) << 16;
7558 }
7559
7560 static void
7561 do_bfi (void)
7562 {
7563 unsigned int msb;
7564
7565 /* #0 in second position is alternative syntax for bfc, which is
7566 the same instruction but with REG_PC in the Rm field. */
7567 if (!inst.operands[1].isreg)
7568 inst.operands[1].reg = REG_PC;
7569
7570 msb = inst.operands[2].imm + inst.operands[3].imm;
7571 constraint (msb > 32, _("bit-field extends past end of register"));
7572 /* The instruction encoding stores the LSB and MSB,
7573 not the LSB and width. */
7574 inst.instruction |= inst.operands[0].reg << 12;
7575 inst.instruction |= inst.operands[1].reg;
7576 inst.instruction |= inst.operands[2].imm << 7;
7577 inst.instruction |= (msb - 1) << 16;
7578 }
7579
7580 static void
7581 do_bfx (void)
7582 {
7583 constraint (inst.operands[2].imm + inst.operands[3].imm > 32,
7584 _("bit-field extends past end of register"));
7585 inst.instruction |= inst.operands[0].reg << 12;
7586 inst.instruction |= inst.operands[1].reg;
7587 inst.instruction |= inst.operands[2].imm << 7;
7588 inst.instruction |= (inst.operands[3].imm - 1) << 16;
7589 }
7590
7591 /* ARM V5 breakpoint instruction (argument parse)
7592 BKPT <16 bit unsigned immediate>
7593 Instruction is not conditional.
7594 The bit pattern given in insns[] has the COND_ALWAYS condition,
7595 and it is an error if the caller tried to override that. */
7596
7597 static void
7598 do_bkpt (void)
7599 {
7600 /* Top 12 of 16 bits to bits 19:8. */
7601 inst.instruction |= (inst.operands[0].imm & 0xfff0) << 4;
7602
7603 /* Bottom 4 of 16 bits to bits 3:0. */
7604 inst.instruction |= inst.operands[0].imm & 0xf;
7605 }
7606
7607 static void
7608 encode_branch (int default_reloc)
7609 {
7610 if (inst.operands[0].hasreloc)
7611 {
7612 constraint (inst.operands[0].imm != BFD_RELOC_ARM_PLT32
7613 && inst.operands[0].imm != BFD_RELOC_ARM_TLS_CALL,
7614 _("the only valid suffixes here are '(plt)' and '(tlscall)'"));
7615 inst.reloc.type = inst.operands[0].imm == BFD_RELOC_ARM_PLT32
7616 ? BFD_RELOC_ARM_PLT32
7617 : thumb_mode ? BFD_RELOC_ARM_THM_TLS_CALL : BFD_RELOC_ARM_TLS_CALL;
7618 }
7619 else
7620 inst.reloc.type = (bfd_reloc_code_real_type) default_reloc;
7621 inst.reloc.pc_rel = 1;
7622 }
7623
7624 static void
7625 do_branch (void)
7626 {
7627 #ifdef OBJ_ELF
7628 if (EF_ARM_EABI_VERSION (meabi_flags) >= EF_ARM_EABI_VER4)
7629 encode_branch (BFD_RELOC_ARM_PCREL_JUMP);
7630 else
7631 #endif
7632 encode_branch (BFD_RELOC_ARM_PCREL_BRANCH);
7633 }
7634
7635 static void
7636 do_bl (void)
7637 {
7638 #ifdef OBJ_ELF
7639 if (EF_ARM_EABI_VERSION (meabi_flags) >= EF_ARM_EABI_VER4)
7640 {
7641 if (inst.cond == COND_ALWAYS)
7642 encode_branch (BFD_RELOC_ARM_PCREL_CALL);
7643 else
7644 encode_branch (BFD_RELOC_ARM_PCREL_JUMP);
7645 }
7646 else
7647 #endif
7648 encode_branch (BFD_RELOC_ARM_PCREL_BRANCH);
7649 }
7650
7651 /* ARM V5 branch-link-exchange instruction (argument parse)
7652 BLX <target_addr> ie BLX(1)
7653 BLX{<condition>} <Rm> ie BLX(2)
7654 Unfortunately, there are two different opcodes for this mnemonic.
7655 So, the insns[].value is not used, and the code here zaps values
7656 into inst.instruction.
7657 Also, the <target_addr> can be 25 bits, hence has its own reloc. */
7658
7659 static void
7660 do_blx (void)
7661 {
7662 if (inst.operands[0].isreg)
7663 {
7664 /* Arg is a register; the opcode provided by insns[] is correct.
7665 It is not illegal to do "blx pc", just useless. */
7666 if (inst.operands[0].reg == REG_PC)
7667 as_tsktsk (_("use of r15 in blx in ARM mode is not really useful"));
7668
7669 inst.instruction |= inst.operands[0].reg;
7670 }
7671 else
7672 {
7673 /* Arg is an address; this instruction cannot be executed
7674 conditionally, and the opcode must be adjusted.
7675 We retain the BFD_RELOC_ARM_PCREL_BLX till the very end
7676 where we generate out a BFD_RELOC_ARM_PCREL_CALL instead. */
7677 constraint (inst.cond != COND_ALWAYS, BAD_COND);
7678 inst.instruction = 0xfa000000;
7679 encode_branch (BFD_RELOC_ARM_PCREL_BLX);
7680 }
7681 }
7682
7683 static void
7684 do_bx (void)
7685 {
7686 bfd_boolean want_reloc;
7687
7688 if (inst.operands[0].reg == REG_PC)
7689 as_tsktsk (_("use of r15 in bx in ARM mode is not really useful"));
7690
7691 inst.instruction |= inst.operands[0].reg;
7692 /* Output R_ARM_V4BX relocations if is an EABI object that looks like
7693 it is for ARMv4t or earlier. */
7694 want_reloc = !ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5);
7695 if (object_arch && !ARM_CPU_HAS_FEATURE (*object_arch, arm_ext_v5))
7696 want_reloc = TRUE;
7697
7698 #ifdef OBJ_ELF
7699 if (EF_ARM_EABI_VERSION (meabi_flags) < EF_ARM_EABI_VER4)
7700 #endif
7701 want_reloc = FALSE;
7702
7703 if (want_reloc)
7704 inst.reloc.type = BFD_RELOC_ARM_V4BX;
7705 }
7706
7707
7708 /* ARM v5TEJ. Jump to Jazelle code. */
7709
7710 static void
7711 do_bxj (void)
7712 {
7713 if (inst.operands[0].reg == REG_PC)
7714 as_tsktsk (_("use of r15 in bxj is not really useful"));
7715
7716 inst.instruction |= inst.operands[0].reg;
7717 }
7718
7719 /* Co-processor data operation:
7720 CDP{cond} <coproc>, <opcode_1>, <CRd>, <CRn>, <CRm>{, <opcode_2>}
7721 CDP2 <coproc>, <opcode_1>, <CRd>, <CRn>, <CRm>{, <opcode_2>} */
7722 static void
7723 do_cdp (void)
7724 {
7725 inst.instruction |= inst.operands[0].reg << 8;
7726 inst.instruction |= inst.operands[1].imm << 20;
7727 inst.instruction |= inst.operands[2].reg << 12;
7728 inst.instruction |= inst.operands[3].reg << 16;
7729 inst.instruction |= inst.operands[4].reg;
7730 inst.instruction |= inst.operands[5].imm << 5;
7731 }
7732
7733 static void
7734 do_cmp (void)
7735 {
7736 inst.instruction |= inst.operands[0].reg << 16;
7737 encode_arm_shifter_operand (1);
7738 }
7739
7740 /* Transfer between coprocessor and ARM registers.
7741 MRC{cond} <coproc>, <opcode_1>, <Rd>, <CRn>, <CRm>{, <opcode_2>}
7742 MRC2
7743 MCR{cond}
7744 MCR2
7745
7746 No special properties. */
7747
7748 struct deprecated_coproc_regs_s
7749 {
7750 unsigned cp;
7751 int opc1;
7752 unsigned crn;
7753 unsigned crm;
7754 int opc2;
7755 arm_feature_set deprecated;
7756 arm_feature_set obsoleted;
7757 const char *dep_msg;
7758 const char *obs_msg;
7759 };
7760
7761 #define DEPR_ACCESS_V8 \
7762 N_("This coprocessor register access is deprecated in ARMv8")
7763
7764 /* Table of all deprecated coprocessor registers. */
7765 static struct deprecated_coproc_regs_s deprecated_coproc_regs[] =
7766 {
7767 {15, 0, 7, 10, 5, /* CP15DMB. */
7768 ARM_FEATURE (ARM_EXT_V8, 0), ARM_FEATURE (0, 0),
7769 DEPR_ACCESS_V8, NULL},
7770 {15, 0, 7, 10, 4, /* CP15DSB. */
7771 ARM_FEATURE (ARM_EXT_V8, 0), ARM_FEATURE (0, 0),
7772 DEPR_ACCESS_V8, NULL},
7773 {15, 0, 7, 5, 4, /* CP15ISB. */
7774 ARM_FEATURE (ARM_EXT_V8, 0), ARM_FEATURE (0, 0),
7775 DEPR_ACCESS_V8, NULL},
7776 {14, 6, 1, 0, 0, /* TEEHBR. */
7777 ARM_FEATURE (ARM_EXT_V8, 0), ARM_FEATURE (0, 0),
7778 DEPR_ACCESS_V8, NULL},
7779 {14, 6, 0, 0, 0, /* TEECR. */
7780 ARM_FEATURE (ARM_EXT_V8, 0), ARM_FEATURE (0, 0),
7781 DEPR_ACCESS_V8, NULL},
7782 };
7783
7784 #undef DEPR_ACCESS_V8
7785
7786 static const size_t deprecated_coproc_reg_count =
7787 sizeof (deprecated_coproc_regs) / sizeof (deprecated_coproc_regs[0]);
7788
7789 static void
7790 do_co_reg (void)
7791 {
7792 unsigned Rd;
7793 size_t i;
7794
7795 Rd = inst.operands[2].reg;
7796 if (thumb_mode)
7797 {
7798 if (inst.instruction == 0xee000010
7799 || inst.instruction == 0xfe000010)
7800 /* MCR, MCR2 */
7801 reject_bad_reg (Rd);
7802 else
7803 /* MRC, MRC2 */
7804 constraint (Rd == REG_SP, BAD_SP);
7805 }
7806 else
7807 {
7808 /* MCR */
7809 if (inst.instruction == 0xe000010)
7810 constraint (Rd == REG_PC, BAD_PC);
7811 }
7812
7813 for (i = 0; i < deprecated_coproc_reg_count; ++i)
7814 {
7815 const struct deprecated_coproc_regs_s *r =
7816 deprecated_coproc_regs + i;
7817
7818 if (inst.operands[0].reg == r->cp
7819 && inst.operands[1].imm == r->opc1
7820 && inst.operands[3].reg == r->crn
7821 && inst.operands[4].reg == r->crm
7822 && inst.operands[5].imm == r->opc2)
7823 {
7824 if (! ARM_CPU_IS_ANY (cpu_variant)
7825 && warn_on_deprecated
7826 && ARM_CPU_HAS_FEATURE (cpu_variant, r->deprecated))
7827 as_warn ("%s", r->dep_msg);
7828 }
7829 }
7830
7831 inst.instruction |= inst.operands[0].reg << 8;
7832 inst.instruction |= inst.operands[1].imm << 21;
7833 inst.instruction |= Rd << 12;
7834 inst.instruction |= inst.operands[3].reg << 16;
7835 inst.instruction |= inst.operands[4].reg;
7836 inst.instruction |= inst.operands[5].imm << 5;
7837 }
7838
7839 /* Transfer between coprocessor register and pair of ARM registers.
7840 MCRR{cond} <coproc>, <opcode>, <Rd>, <Rn>, <CRm>.
7841 MCRR2
7842 MRRC{cond}
7843 MRRC2
7844
7845 Two XScale instructions are special cases of these:
7846
7847 MAR{cond} acc0, <RdLo>, <RdHi> == MCRR{cond} p0, #0, <RdLo>, <RdHi>, c0
7848 MRA{cond} acc0, <RdLo>, <RdHi> == MRRC{cond} p0, #0, <RdLo>, <RdHi>, c0
7849
7850 Result unpredictable if Rd or Rn is R15. */
7851
7852 static void
7853 do_co_reg2c (void)
7854 {
7855 unsigned Rd, Rn;
7856
7857 Rd = inst.operands[2].reg;
7858 Rn = inst.operands[3].reg;
7859
7860 if (thumb_mode)
7861 {
7862 reject_bad_reg (Rd);
7863 reject_bad_reg (Rn);
7864 }
7865 else
7866 {
7867 constraint (Rd == REG_PC, BAD_PC);
7868 constraint (Rn == REG_PC, BAD_PC);
7869 }
7870
7871 inst.instruction |= inst.operands[0].reg << 8;
7872 inst.instruction |= inst.operands[1].imm << 4;
7873 inst.instruction |= Rd << 12;
7874 inst.instruction |= Rn << 16;
7875 inst.instruction |= inst.operands[4].reg;
7876 }
7877
7878 static void
7879 do_cpsi (void)
7880 {
7881 inst.instruction |= inst.operands[0].imm << 6;
7882 if (inst.operands[1].present)
7883 {
7884 inst.instruction |= CPSI_MMOD;
7885 inst.instruction |= inst.operands[1].imm;
7886 }
7887 }
7888
7889 static void
7890 do_dbg (void)
7891 {
7892 inst.instruction |= inst.operands[0].imm;
7893 }
7894
7895 static void
7896 do_div (void)
7897 {
7898 unsigned Rd, Rn, Rm;
7899
7900 Rd = inst.operands[0].reg;
7901 Rn = (inst.operands[1].present
7902 ? inst.operands[1].reg : Rd);
7903 Rm = inst.operands[2].reg;
7904
7905 constraint ((Rd == REG_PC), BAD_PC);
7906 constraint ((Rn == REG_PC), BAD_PC);
7907 constraint ((Rm == REG_PC), BAD_PC);
7908
7909 inst.instruction |= Rd << 16;
7910 inst.instruction |= Rn << 0;
7911 inst.instruction |= Rm << 8;
7912 }
7913
7914 static void
7915 do_it (void)
7916 {
7917 /* There is no IT instruction in ARM mode. We
7918 process it to do the validation as if in
7919 thumb mode, just in case the code gets
7920 assembled for thumb using the unified syntax. */
7921
7922 inst.size = 0;
7923 if (unified_syntax)
7924 {
7925 set_it_insn_type (IT_INSN);
7926 now_it.mask = (inst.instruction & 0xf) | 0x10;
7927 now_it.cc = inst.operands[0].imm;
7928 }
7929 }
7930
7931 /* If there is only one register in the register list,
7932 then return its register number. Otherwise return -1. */
7933 static int
7934 only_one_reg_in_list (int range)
7935 {
7936 int i = ffs (range) - 1;
7937 return (i > 15 || range != (1 << i)) ? -1 : i;
7938 }
7939
7940 static void
7941 encode_ldmstm(int from_push_pop_mnem)
7942 {
7943 int base_reg = inst.operands[0].reg;
7944 int range = inst.operands[1].imm;
7945 int one_reg;
7946
7947 inst.instruction |= base_reg << 16;
7948 inst.instruction |= range;
7949
7950 if (inst.operands[1].writeback)
7951 inst.instruction |= LDM_TYPE_2_OR_3;
7952
7953 if (inst.operands[0].writeback)
7954 {
7955 inst.instruction |= WRITE_BACK;
7956 /* Check for unpredictable uses of writeback. */
7957 if (inst.instruction & LOAD_BIT)
7958 {
7959 /* Not allowed in LDM type 2. */
7960 if ((inst.instruction & LDM_TYPE_2_OR_3)
7961 && ((range & (1 << REG_PC)) == 0))
7962 as_warn (_("writeback of base register is UNPREDICTABLE"));
7963 /* Only allowed if base reg not in list for other types. */
7964 else if (range & (1 << base_reg))
7965 as_warn (_("writeback of base register when in register list is UNPREDICTABLE"));
7966 }
7967 else /* STM. */
7968 {
7969 /* Not allowed for type 2. */
7970 if (inst.instruction & LDM_TYPE_2_OR_3)
7971 as_warn (_("writeback of base register is UNPREDICTABLE"));
7972 /* Only allowed if base reg not in list, or first in list. */
7973 else if ((range & (1 << base_reg))
7974 && (range & ((1 << base_reg) - 1)))
7975 as_warn (_("if writeback register is in list, it must be the lowest reg in the list"));
7976 }
7977 }
7978
7979 /* If PUSH/POP has only one register, then use the A2 encoding. */
7980 one_reg = only_one_reg_in_list (range);
7981 if (from_push_pop_mnem && one_reg >= 0)
7982 {
7983 int is_push = (inst.instruction & A_PUSH_POP_OP_MASK) == A1_OPCODE_PUSH;
7984
7985 inst.instruction &= A_COND_MASK;
7986 inst.instruction |= is_push ? A2_OPCODE_PUSH : A2_OPCODE_POP;
7987 inst.instruction |= one_reg << 12;
7988 }
7989 }
7990
7991 static void
7992 do_ldmstm (void)
7993 {
7994 encode_ldmstm (/*from_push_pop_mnem=*/FALSE);
7995 }
7996
7997 /* ARMv5TE load-consecutive (argument parse)
7998 Mode is like LDRH.
7999
8000 LDRccD R, mode
8001 STRccD R, mode. */
8002
8003 static void
8004 do_ldrd (void)
8005 {
8006 constraint (inst.operands[0].reg % 2 != 0,
8007 _("first transfer register must be even"));
8008 constraint (inst.operands[1].present
8009 && inst.operands[1].reg != inst.operands[0].reg + 1,
8010 _("can only transfer two consecutive registers"));
8011 constraint (inst.operands[0].reg == REG_LR, _("r14 not allowed here"));
8012 constraint (!inst.operands[2].isreg, _("'[' expected"));
8013
8014 if (!inst.operands[1].present)
8015 inst.operands[1].reg = inst.operands[0].reg + 1;
8016
8017 /* encode_arm_addr_mode_3 will diagnose overlap between the base
8018 register and the first register written; we have to diagnose
8019 overlap between the base and the second register written here. */
8020
8021 if (inst.operands[2].reg == inst.operands[1].reg
8022 && (inst.operands[2].writeback || inst.operands[2].postind))
8023 as_warn (_("base register written back, and overlaps "
8024 "second transfer register"));
8025
8026 if (!(inst.instruction & V4_STR_BIT))
8027 {
8028 /* For an index-register load, the index register must not overlap the
8029 destination (even if not write-back). */
8030 if (inst.operands[2].immisreg
8031 && ((unsigned) inst.operands[2].imm == inst.operands[0].reg
8032 || (unsigned) inst.operands[2].imm == inst.operands[1].reg))
8033 as_warn (_("index register overlaps transfer register"));
8034 }
8035 inst.instruction |= inst.operands[0].reg << 12;
8036 encode_arm_addr_mode_3 (2, /*is_t=*/FALSE);
8037 }
8038
8039 static void
8040 do_ldrex (void)
8041 {
8042 constraint (!inst.operands[1].isreg || !inst.operands[1].preind
8043 || inst.operands[1].postind || inst.operands[1].writeback
8044 || inst.operands[1].immisreg || inst.operands[1].shifted
8045 || inst.operands[1].negative
8046 /* This can arise if the programmer has written
8047 strex rN, rM, foo
8048 or if they have mistakenly used a register name as the last
8049 operand, eg:
8050 strex rN, rM, rX
8051 It is very difficult to distinguish between these two cases
8052 because "rX" might actually be a label. ie the register
8053 name has been occluded by a symbol of the same name. So we
8054 just generate a general 'bad addressing mode' type error
8055 message and leave it up to the programmer to discover the
8056 true cause and fix their mistake. */
8057 || (inst.operands[1].reg == REG_PC),
8058 BAD_ADDR_MODE);
8059
8060 constraint (inst.reloc.exp.X_op != O_constant
8061 || inst.reloc.exp.X_add_number != 0,
8062 _("offset must be zero in ARM encoding"));
8063
8064 constraint ((inst.operands[1].reg == REG_PC), BAD_PC);
8065
8066 inst.instruction |= inst.operands[0].reg << 12;
8067 inst.instruction |= inst.operands[1].reg << 16;
8068 inst.reloc.type = BFD_RELOC_UNUSED;
8069 }
8070
8071 static void
8072 do_ldrexd (void)
8073 {
8074 constraint (inst.operands[0].reg % 2 != 0,
8075 _("even register required"));
8076 constraint (inst.operands[1].present
8077 && inst.operands[1].reg != inst.operands[0].reg + 1,
8078 _("can only load two consecutive registers"));
8079 /* If op 1 were present and equal to PC, this function wouldn't
8080 have been called in the first place. */
8081 constraint (inst.operands[0].reg == REG_LR, _("r14 not allowed here"));
8082
8083 inst.instruction |= inst.operands[0].reg << 12;
8084 inst.instruction |= inst.operands[2].reg << 16;
8085 }
8086
8087 /* In both ARM and thumb state 'ldr pc, #imm' with an immediate
8088 which is not a multiple of four is UNPREDICTABLE. */
8089 static void
8090 check_ldr_r15_aligned (void)
8091 {
8092 constraint (!(inst.operands[1].immisreg)
8093 && (inst.operands[0].reg == REG_PC
8094 && inst.operands[1].reg == REG_PC
8095 && (inst.reloc.exp.X_add_number & 0x3)),
8096 _("ldr to register 15 must be 4-byte alligned"));
8097 }
8098
8099 static void
8100 do_ldst (void)
8101 {
8102 inst.instruction |= inst.operands[0].reg << 12;
8103 if (!inst.operands[1].isreg)
8104 if (move_or_literal_pool (0, /*thumb_p=*/FALSE, /*mode_3=*/FALSE))
8105 return;
8106 encode_arm_addr_mode_2 (1, /*is_t=*/FALSE);
8107 check_ldr_r15_aligned ();
8108 }
8109
8110 static void
8111 do_ldstt (void)
8112 {
8113 /* ldrt/strt always use post-indexed addressing. Turn [Rn] into [Rn]! and
8114 reject [Rn,...]. */
8115 if (inst.operands[1].preind)
8116 {
8117 constraint (inst.reloc.exp.X_op != O_constant
8118 || inst.reloc.exp.X_add_number != 0,
8119 _("this instruction requires a post-indexed address"));
8120
8121 inst.operands[1].preind = 0;
8122 inst.operands[1].postind = 1;
8123 inst.operands[1].writeback = 1;
8124 }
8125 inst.instruction |= inst.operands[0].reg << 12;
8126 encode_arm_addr_mode_2 (1, /*is_t=*/TRUE);
8127 }
8128
8129 /* Halfword and signed-byte load/store operations. */
8130
8131 static void
8132 do_ldstv4 (void)
8133 {
8134 constraint (inst.operands[0].reg == REG_PC, BAD_PC);
8135 inst.instruction |= inst.operands[0].reg << 12;
8136 if (!inst.operands[1].isreg)
8137 if (move_or_literal_pool (0, /*thumb_p=*/FALSE, /*mode_3=*/TRUE))
8138 return;
8139 encode_arm_addr_mode_3 (1, /*is_t=*/FALSE);
8140 }
8141
8142 static void
8143 do_ldsttv4 (void)
8144 {
8145 /* ldrt/strt always use post-indexed addressing. Turn [Rn] into [Rn]! and
8146 reject [Rn,...]. */
8147 if (inst.operands[1].preind)
8148 {
8149 constraint (inst.reloc.exp.X_op != O_constant
8150 || inst.reloc.exp.X_add_number != 0,
8151 _("this instruction requires a post-indexed address"));
8152
8153 inst.operands[1].preind = 0;
8154 inst.operands[1].postind = 1;
8155 inst.operands[1].writeback = 1;
8156 }
8157 inst.instruction |= inst.operands[0].reg << 12;
8158 encode_arm_addr_mode_3 (1, /*is_t=*/TRUE);
8159 }
8160
8161 /* Co-processor register load/store.
8162 Format: <LDC|STC>{cond}[L] CP#,CRd,<address> */
8163 static void
8164 do_lstc (void)
8165 {
8166 inst.instruction |= inst.operands[0].reg << 8;
8167 inst.instruction |= inst.operands[1].reg << 12;
8168 encode_arm_cp_address (2, TRUE, TRUE, 0);
8169 }
8170
8171 static void
8172 do_mlas (void)
8173 {
8174 /* This restriction does not apply to mls (nor to mla in v6 or later). */
8175 if (inst.operands[0].reg == inst.operands[1].reg
8176 && !ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6)
8177 && !(inst.instruction & 0x00400000))
8178 as_tsktsk (_("Rd and Rm should be different in mla"));
8179
8180 inst.instruction |= inst.operands[0].reg << 16;
8181 inst.instruction |= inst.operands[1].reg;
8182 inst.instruction |= inst.operands[2].reg << 8;
8183 inst.instruction |= inst.operands[3].reg << 12;
8184 }
8185
8186 static void
8187 do_mov (void)
8188 {
8189 inst.instruction |= inst.operands[0].reg << 12;
8190 encode_arm_shifter_operand (1);
8191 }
8192
8193 /* ARM V6T2 16-bit immediate register load: MOV[WT]{cond} Rd, #<imm16>. */
8194 static void
8195 do_mov16 (void)
8196 {
8197 bfd_vma imm;
8198 bfd_boolean top;
8199
8200 top = (inst.instruction & 0x00400000) != 0;
8201 constraint (top && inst.reloc.type == BFD_RELOC_ARM_MOVW,
8202 _(":lower16: not allowed this instruction"));
8203 constraint (!top && inst.reloc.type == BFD_RELOC_ARM_MOVT,
8204 _(":upper16: not allowed instruction"));
8205 inst.instruction |= inst.operands[0].reg << 12;
8206 if (inst.reloc.type == BFD_RELOC_UNUSED)
8207 {
8208 imm = inst.reloc.exp.X_add_number;
8209 /* The value is in two pieces: 0:11, 16:19. */
8210 inst.instruction |= (imm & 0x00000fff);
8211 inst.instruction |= (imm & 0x0000f000) << 4;
8212 }
8213 }
8214
8215 static void do_vfp_nsyn_opcode (const char *);
8216
8217 static int
8218 do_vfp_nsyn_mrs (void)
8219 {
8220 if (inst.operands[0].isvec)
8221 {
8222 if (inst.operands[1].reg != 1)
8223 first_error (_("operand 1 must be FPSCR"));
8224 memset (&inst.operands[0], '\0', sizeof (inst.operands[0]));
8225 memset (&inst.operands[1], '\0', sizeof (inst.operands[1]));
8226 do_vfp_nsyn_opcode ("fmstat");
8227 }
8228 else if (inst.operands[1].isvec)
8229 do_vfp_nsyn_opcode ("fmrx");
8230 else
8231 return FAIL;
8232
8233 return SUCCESS;
8234 }
8235
8236 static int
8237 do_vfp_nsyn_msr (void)
8238 {
8239 if (inst.operands[0].isvec)
8240 do_vfp_nsyn_opcode ("fmxr");
8241 else
8242 return FAIL;
8243
8244 return SUCCESS;
8245 }
8246
8247 static void
8248 do_vmrs (void)
8249 {
8250 unsigned Rt = inst.operands[0].reg;
8251
8252 if (thumb_mode && Rt == REG_SP)
8253 {
8254 inst.error = BAD_SP;
8255 return;
8256 }
8257
8258 /* APSR_ sets isvec. All other refs to PC are illegal. */
8259 if (!inst.operands[0].isvec && Rt == REG_PC)
8260 {
8261 inst.error = BAD_PC;
8262 return;
8263 }
8264
8265 /* If we get through parsing the register name, we just insert the number
8266 generated into the instruction without further validation. */
8267 inst.instruction |= (inst.operands[1].reg << 16);
8268 inst.instruction |= (Rt << 12);
8269 }
8270
8271 static void
8272 do_vmsr (void)
8273 {
8274 unsigned Rt = inst.operands[1].reg;
8275
8276 if (thumb_mode)
8277 reject_bad_reg (Rt);
8278 else if (Rt == REG_PC)
8279 {
8280 inst.error = BAD_PC;
8281 return;
8282 }
8283
8284 /* If we get through parsing the register name, we just insert the number
8285 generated into the instruction without further validation. */
8286 inst.instruction |= (inst.operands[0].reg << 16);
8287 inst.instruction |= (Rt << 12);
8288 }
8289
8290 static void
8291 do_mrs (void)
8292 {
8293 unsigned br;
8294
8295 if (do_vfp_nsyn_mrs () == SUCCESS)
8296 return;
8297
8298 constraint (inst.operands[0].reg == REG_PC, BAD_PC);
8299 inst.instruction |= inst.operands[0].reg << 12;
8300
8301 if (inst.operands[1].isreg)
8302 {
8303 br = inst.operands[1].reg;
8304 if (((br & 0x200) == 0) && ((br & 0xf0000) != 0xf000))
8305 as_bad (_("bad register for mrs"));
8306 }
8307 else
8308 {
8309 /* mrs only accepts CPSR/SPSR/CPSR_all/SPSR_all. */
8310 constraint ((inst.operands[1].imm & (PSR_c|PSR_x|PSR_s|PSR_f))
8311 != (PSR_c|PSR_f),
8312 _("'APSR', 'CPSR' or 'SPSR' expected"));
8313 br = (15<<16) | (inst.operands[1].imm & SPSR_BIT);
8314 }
8315
8316 inst.instruction |= br;
8317 }
8318
8319 /* Two possible forms:
8320 "{C|S}PSR_<field>, Rm",
8321 "{C|S}PSR_f, #expression". */
8322
8323 static void
8324 do_msr (void)
8325 {
8326 if (do_vfp_nsyn_msr () == SUCCESS)
8327 return;
8328
8329 inst.instruction |= inst.operands[0].imm;
8330 if (inst.operands[1].isreg)
8331 inst.instruction |= inst.operands[1].reg;
8332 else
8333 {
8334 inst.instruction |= INST_IMMEDIATE;
8335 inst.reloc.type = BFD_RELOC_ARM_IMMEDIATE;
8336 inst.reloc.pc_rel = 0;
8337 }
8338 }
8339
8340 static void
8341 do_mul (void)
8342 {
8343 constraint (inst.operands[2].reg == REG_PC, BAD_PC);
8344
8345 if (!inst.operands[2].present)
8346 inst.operands[2].reg = inst.operands[0].reg;
8347 inst.instruction |= inst.operands[0].reg << 16;
8348 inst.instruction |= inst.operands[1].reg;
8349 inst.instruction |= inst.operands[2].reg << 8;
8350
8351 if (inst.operands[0].reg == inst.operands[1].reg
8352 && !ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6))
8353 as_tsktsk (_("Rd and Rm should be different in mul"));
8354 }
8355
8356 /* Long Multiply Parser
8357 UMULL RdLo, RdHi, Rm, Rs
8358 SMULL RdLo, RdHi, Rm, Rs
8359 UMLAL RdLo, RdHi, Rm, Rs
8360 SMLAL RdLo, RdHi, Rm, Rs. */
8361
8362 static void
8363 do_mull (void)
8364 {
8365 inst.instruction |= inst.operands[0].reg << 12;
8366 inst.instruction |= inst.operands[1].reg << 16;
8367 inst.instruction |= inst.operands[2].reg;
8368 inst.instruction |= inst.operands[3].reg << 8;
8369
8370 /* rdhi and rdlo must be different. */
8371 if (inst.operands[0].reg == inst.operands[1].reg)
8372 as_tsktsk (_("rdhi and rdlo must be different"));
8373
8374 /* rdhi, rdlo and rm must all be different before armv6. */
8375 if ((inst.operands[0].reg == inst.operands[2].reg
8376 || inst.operands[1].reg == inst.operands[2].reg)
8377 && !ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6))
8378 as_tsktsk (_("rdhi, rdlo and rm must all be different"));
8379 }
8380
8381 static void
8382 do_nop (void)
8383 {
8384 if (inst.operands[0].present
8385 || ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6k))
8386 {
8387 /* Architectural NOP hints are CPSR sets with no bits selected. */
8388 inst.instruction &= 0xf0000000;
8389 inst.instruction |= 0x0320f000;
8390 if (inst.operands[0].present)
8391 inst.instruction |= inst.operands[0].imm;
8392 }
8393 }
8394
8395 /* ARM V6 Pack Halfword Bottom Top instruction (argument parse).
8396 PKHBT {<cond>} <Rd>, <Rn>, <Rm> {, LSL #<shift_imm>}
8397 Condition defaults to COND_ALWAYS.
8398 Error if Rd, Rn or Rm are R15. */
8399
8400 static void
8401 do_pkhbt (void)
8402 {
8403 inst.instruction |= inst.operands[0].reg << 12;
8404 inst.instruction |= inst.operands[1].reg << 16;
8405 inst.instruction |= inst.operands[2].reg;
8406 if (inst.operands[3].present)
8407 encode_arm_shift (3);
8408 }
8409
8410 /* ARM V6 PKHTB (Argument Parse). */
8411
8412 static void
8413 do_pkhtb (void)
8414 {
8415 if (!inst.operands[3].present)
8416 {
8417 /* If the shift specifier is omitted, turn the instruction
8418 into pkhbt rd, rm, rn. */
8419 inst.instruction &= 0xfff00010;
8420 inst.instruction |= inst.operands[0].reg << 12;
8421 inst.instruction |= inst.operands[1].reg;
8422 inst.instruction |= inst.operands[2].reg << 16;
8423 }
8424 else
8425 {
8426 inst.instruction |= inst.operands[0].reg << 12;
8427 inst.instruction |= inst.operands[1].reg << 16;
8428 inst.instruction |= inst.operands[2].reg;
8429 encode_arm_shift (3);
8430 }
8431 }
8432
8433 /* ARMv5TE: Preload-Cache
8434 MP Extensions: Preload for write
8435
8436 PLD(W) <addr_mode>
8437
8438 Syntactically, like LDR with B=1, W=0, L=1. */
8439
8440 static void
8441 do_pld (void)
8442 {
8443 constraint (!inst.operands[0].isreg,
8444 _("'[' expected after PLD mnemonic"));
8445 constraint (inst.operands[0].postind,
8446 _("post-indexed expression used in preload instruction"));
8447 constraint (inst.operands[0].writeback,
8448 _("writeback used in preload instruction"));
8449 constraint (!inst.operands[0].preind,
8450 _("unindexed addressing used in preload instruction"));
8451 encode_arm_addr_mode_2 (0, /*is_t=*/FALSE);
8452 }
8453
8454 /* ARMv7: PLI <addr_mode> */
8455 static void
8456 do_pli (void)
8457 {
8458 constraint (!inst.operands[0].isreg,
8459 _("'[' expected after PLI mnemonic"));
8460 constraint (inst.operands[0].postind,
8461 _("post-indexed expression used in preload instruction"));
8462 constraint (inst.operands[0].writeback,
8463 _("writeback used in preload instruction"));
8464 constraint (!inst.operands[0].preind,
8465 _("unindexed addressing used in preload instruction"));
8466 encode_arm_addr_mode_2 (0, /*is_t=*/FALSE);
8467 inst.instruction &= ~PRE_INDEX;
8468 }
8469
8470 static void
8471 do_push_pop (void)
8472 {
8473 inst.operands[1] = inst.operands[0];
8474 memset (&inst.operands[0], 0, sizeof inst.operands[0]);
8475 inst.operands[0].isreg = 1;
8476 inst.operands[0].writeback = 1;
8477 inst.operands[0].reg = REG_SP;
8478 encode_ldmstm (/*from_push_pop_mnem=*/TRUE);
8479 }
8480
8481 /* ARM V6 RFE (Return from Exception) loads the PC and CPSR from the
8482 word at the specified address and the following word
8483 respectively.
8484 Unconditionally executed.
8485 Error if Rn is R15. */
8486
8487 static void
8488 do_rfe (void)
8489 {
8490 inst.instruction |= inst.operands[0].reg << 16;
8491 if (inst.operands[0].writeback)
8492 inst.instruction |= WRITE_BACK;
8493 }
8494
8495 /* ARM V6 ssat (argument parse). */
8496
8497 static void
8498 do_ssat (void)
8499 {
8500 inst.instruction |= inst.operands[0].reg << 12;
8501 inst.instruction |= (inst.operands[1].imm - 1) << 16;
8502 inst.instruction |= inst.operands[2].reg;
8503
8504 if (inst.operands[3].present)
8505 encode_arm_shift (3);
8506 }
8507
8508 /* ARM V6 usat (argument parse). */
8509
8510 static void
8511 do_usat (void)
8512 {
8513 inst.instruction |= inst.operands[0].reg << 12;
8514 inst.instruction |= inst.operands[1].imm << 16;
8515 inst.instruction |= inst.operands[2].reg;
8516
8517 if (inst.operands[3].present)
8518 encode_arm_shift (3);
8519 }
8520
8521 /* ARM V6 ssat16 (argument parse). */
8522
8523 static void
8524 do_ssat16 (void)
8525 {
8526 inst.instruction |= inst.operands[0].reg << 12;
8527 inst.instruction |= ((inst.operands[1].imm - 1) << 16);
8528 inst.instruction |= inst.operands[2].reg;
8529 }
8530
8531 static void
8532 do_usat16 (void)
8533 {
8534 inst.instruction |= inst.operands[0].reg << 12;
8535 inst.instruction |= inst.operands[1].imm << 16;
8536 inst.instruction |= inst.operands[2].reg;
8537 }
8538
8539 /* ARM V6 SETEND (argument parse). Sets the E bit in the CPSR while
8540 preserving the other bits.
8541
8542 setend <endian_specifier>, where <endian_specifier> is either
8543 BE or LE. */
8544
8545 static void
8546 do_setend (void)
8547 {
8548 if (warn_on_deprecated
8549 && ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v8))
8550 as_warn (_("setend use is deprecated for ARMv8"));
8551
8552 if (inst.operands[0].imm)
8553 inst.instruction |= 0x200;
8554 }
8555
8556 static void
8557 do_shift (void)
8558 {
8559 unsigned int Rm = (inst.operands[1].present
8560 ? inst.operands[1].reg
8561 : inst.operands[0].reg);
8562
8563 inst.instruction |= inst.operands[0].reg << 12;
8564 inst.instruction |= Rm;
8565 if (inst.operands[2].isreg) /* Rd, {Rm,} Rs */
8566 {
8567 inst.instruction |= inst.operands[2].reg << 8;
8568 inst.instruction |= SHIFT_BY_REG;
8569 /* PR 12854: Error on extraneous shifts. */
8570 constraint (inst.operands[2].shifted,
8571 _("extraneous shift as part of operand to shift insn"));
8572 }
8573 else
8574 inst.reloc.type = BFD_RELOC_ARM_SHIFT_IMM;
8575 }
8576
8577 static void
8578 do_smc (void)
8579 {
8580 inst.reloc.type = BFD_RELOC_ARM_SMC;
8581 inst.reloc.pc_rel = 0;
8582 }
8583
8584 static void
8585 do_hvc (void)
8586 {
8587 inst.reloc.type = BFD_RELOC_ARM_HVC;
8588 inst.reloc.pc_rel = 0;
8589 }
8590
8591 static void
8592 do_swi (void)
8593 {
8594 inst.reloc.type = BFD_RELOC_ARM_SWI;
8595 inst.reloc.pc_rel = 0;
8596 }
8597
8598 /* ARM V5E (El Segundo) signed-multiply-accumulate (argument parse)
8599 SMLAxy{cond} Rd,Rm,Rs,Rn
8600 SMLAWy{cond} Rd,Rm,Rs,Rn
8601 Error if any register is R15. */
8602
8603 static void
8604 do_smla (void)
8605 {
8606 inst.instruction |= inst.operands[0].reg << 16;
8607 inst.instruction |= inst.operands[1].reg;
8608 inst.instruction |= inst.operands[2].reg << 8;
8609 inst.instruction |= inst.operands[3].reg << 12;
8610 }
8611
8612 /* ARM V5E (El Segundo) signed-multiply-accumulate-long (argument parse)
8613 SMLALxy{cond} Rdlo,Rdhi,Rm,Rs
8614 Error if any register is R15.
8615 Warning if Rdlo == Rdhi. */
8616
8617 static void
8618 do_smlal (void)
8619 {
8620 inst.instruction |= inst.operands[0].reg << 12;
8621 inst.instruction |= inst.operands[1].reg << 16;
8622 inst.instruction |= inst.operands[2].reg;
8623 inst.instruction |= inst.operands[3].reg << 8;
8624
8625 if (inst.operands[0].reg == inst.operands[1].reg)
8626 as_tsktsk (_("rdhi and rdlo must be different"));
8627 }
8628
8629 /* ARM V5E (El Segundo) signed-multiply (argument parse)
8630 SMULxy{cond} Rd,Rm,Rs
8631 Error if any register is R15. */
8632
8633 static void
8634 do_smul (void)
8635 {
8636 inst.instruction |= inst.operands[0].reg << 16;
8637 inst.instruction |= inst.operands[1].reg;
8638 inst.instruction |= inst.operands[2].reg << 8;
8639 }
8640
8641 /* ARM V6 srs (argument parse). The variable fields in the encoding are
8642 the same for both ARM and Thumb-2. */
8643
8644 static void
8645 do_srs (void)
8646 {
8647 int reg;
8648
8649 if (inst.operands[0].present)
8650 {
8651 reg = inst.operands[0].reg;
8652 constraint (reg != REG_SP, _("SRS base register must be r13"));
8653 }
8654 else
8655 reg = REG_SP;
8656
8657 inst.instruction |= reg << 16;
8658 inst.instruction |= inst.operands[1].imm;
8659 if (inst.operands[0].writeback || inst.operands[1].writeback)
8660 inst.instruction |= WRITE_BACK;
8661 }
8662
8663 /* ARM V6 strex (argument parse). */
8664
8665 static void
8666 do_strex (void)
8667 {
8668 constraint (!inst.operands[2].isreg || !inst.operands[2].preind
8669 || inst.operands[2].postind || inst.operands[2].writeback
8670 || inst.operands[2].immisreg || inst.operands[2].shifted
8671 || inst.operands[2].negative
8672 /* See comment in do_ldrex(). */
8673 || (inst.operands[2].reg == REG_PC),
8674 BAD_ADDR_MODE);
8675
8676 constraint (inst.operands[0].reg == inst.operands[1].reg
8677 || inst.operands[0].reg == inst.operands[2].reg, BAD_OVERLAP);
8678
8679 constraint (inst.reloc.exp.X_op != O_constant
8680 || inst.reloc.exp.X_add_number != 0,
8681 _("offset must be zero in ARM encoding"));
8682
8683 inst.instruction |= inst.operands[0].reg << 12;
8684 inst.instruction |= inst.operands[1].reg;
8685 inst.instruction |= inst.operands[2].reg << 16;
8686 inst.reloc.type = BFD_RELOC_UNUSED;
8687 }
8688
8689 static void
8690 do_t_strexbh (void)
8691 {
8692 constraint (!inst.operands[2].isreg || !inst.operands[2].preind
8693 || inst.operands[2].postind || inst.operands[2].writeback
8694 || inst.operands[2].immisreg || inst.operands[2].shifted
8695 || inst.operands[2].negative,
8696 BAD_ADDR_MODE);
8697
8698 constraint (inst.operands[0].reg == inst.operands[1].reg
8699 || inst.operands[0].reg == inst.operands[2].reg, BAD_OVERLAP);
8700
8701 do_rm_rd_rn ();
8702 }
8703
8704 static void
8705 do_strexd (void)
8706 {
8707 constraint (inst.operands[1].reg % 2 != 0,
8708 _("even register required"));
8709 constraint (inst.operands[2].present
8710 && inst.operands[2].reg != inst.operands[1].reg + 1,
8711 _("can only store two consecutive registers"));
8712 /* If op 2 were present and equal to PC, this function wouldn't
8713 have been called in the first place. */
8714 constraint (inst.operands[1].reg == REG_LR, _("r14 not allowed here"));
8715
8716 constraint (inst.operands[0].reg == inst.operands[1].reg
8717 || inst.operands[0].reg == inst.operands[1].reg + 1
8718 || inst.operands[0].reg == inst.operands[3].reg,
8719 BAD_OVERLAP);
8720
8721 inst.instruction |= inst.operands[0].reg << 12;
8722 inst.instruction |= inst.operands[1].reg;
8723 inst.instruction |= inst.operands[3].reg << 16;
8724 }
8725
8726 /* ARM V8 STRL. */
8727 static void
8728 do_stlex (void)
8729 {
8730 constraint (inst.operands[0].reg == inst.operands[1].reg
8731 || inst.operands[0].reg == inst.operands[2].reg, BAD_OVERLAP);
8732
8733 do_rd_rm_rn ();
8734 }
8735
8736 static void
8737 do_t_stlex (void)
8738 {
8739 constraint (inst.operands[0].reg == inst.operands[1].reg
8740 || inst.operands[0].reg == inst.operands[2].reg, BAD_OVERLAP);
8741
8742 do_rm_rd_rn ();
8743 }
8744
8745 /* ARM V6 SXTAH extracts a 16-bit value from a register, sign
8746 extends it to 32-bits, and adds the result to a value in another
8747 register. You can specify a rotation by 0, 8, 16, or 24 bits
8748 before extracting the 16-bit value.
8749 SXTAH{<cond>} <Rd>, <Rn>, <Rm>{, <rotation>}
8750 Condition defaults to COND_ALWAYS.
8751 Error if any register uses R15. */
8752
8753 static void
8754 do_sxtah (void)
8755 {
8756 inst.instruction |= inst.operands[0].reg << 12;
8757 inst.instruction |= inst.operands[1].reg << 16;
8758 inst.instruction |= inst.operands[2].reg;
8759 inst.instruction |= inst.operands[3].imm << 10;
8760 }
8761
8762 /* ARM V6 SXTH.
8763
8764 SXTH {<cond>} <Rd>, <Rm>{, <rotation>}
8765 Condition defaults to COND_ALWAYS.
8766 Error if any register uses R15. */
8767
8768 static void
8769 do_sxth (void)
8770 {
8771 inst.instruction |= inst.operands[0].reg << 12;
8772 inst.instruction |= inst.operands[1].reg;
8773 inst.instruction |= inst.operands[2].imm << 10;
8774 }
8775 \f
8776 /* VFP instructions. In a logical order: SP variant first, monad
8777 before dyad, arithmetic then move then load/store. */
8778
8779 static void
8780 do_vfp_sp_monadic (void)
8781 {
8782 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
8783 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Sm);
8784 }
8785
8786 static void
8787 do_vfp_sp_dyadic (void)
8788 {
8789 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
8790 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Sn);
8791 encode_arm_vfp_reg (inst.operands[2].reg, VFP_REG_Sm);
8792 }
8793
8794 static void
8795 do_vfp_sp_compare_z (void)
8796 {
8797 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
8798 }
8799
8800 static void
8801 do_vfp_dp_sp_cvt (void)
8802 {
8803 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8804 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Sm);
8805 }
8806
8807 static void
8808 do_vfp_sp_dp_cvt (void)
8809 {
8810 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
8811 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dm);
8812 }
8813
8814 static void
8815 do_vfp_reg_from_sp (void)
8816 {
8817 inst.instruction |= inst.operands[0].reg << 12;
8818 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Sn);
8819 }
8820
8821 static void
8822 do_vfp_reg2_from_sp2 (void)
8823 {
8824 constraint (inst.operands[2].imm != 2,
8825 _("only two consecutive VFP SP registers allowed here"));
8826 inst.instruction |= inst.operands[0].reg << 12;
8827 inst.instruction |= inst.operands[1].reg << 16;
8828 encode_arm_vfp_reg (inst.operands[2].reg, VFP_REG_Sm);
8829 }
8830
8831 static void
8832 do_vfp_sp_from_reg (void)
8833 {
8834 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sn);
8835 inst.instruction |= inst.operands[1].reg << 12;
8836 }
8837
8838 static void
8839 do_vfp_sp2_from_reg2 (void)
8840 {
8841 constraint (inst.operands[0].imm != 2,
8842 _("only two consecutive VFP SP registers allowed here"));
8843 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sm);
8844 inst.instruction |= inst.operands[1].reg << 12;
8845 inst.instruction |= inst.operands[2].reg << 16;
8846 }
8847
8848 static void
8849 do_vfp_sp_ldst (void)
8850 {
8851 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
8852 encode_arm_cp_address (1, FALSE, TRUE, 0);
8853 }
8854
8855 static void
8856 do_vfp_dp_ldst (void)
8857 {
8858 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8859 encode_arm_cp_address (1, FALSE, TRUE, 0);
8860 }
8861
8862
8863 static void
8864 vfp_sp_ldstm (enum vfp_ldstm_type ldstm_type)
8865 {
8866 if (inst.operands[0].writeback)
8867 inst.instruction |= WRITE_BACK;
8868 else
8869 constraint (ldstm_type != VFP_LDSTMIA,
8870 _("this addressing mode requires base-register writeback"));
8871 inst.instruction |= inst.operands[0].reg << 16;
8872 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Sd);
8873 inst.instruction |= inst.operands[1].imm;
8874 }
8875
8876 static void
8877 vfp_dp_ldstm (enum vfp_ldstm_type ldstm_type)
8878 {
8879 int count;
8880
8881 if (inst.operands[0].writeback)
8882 inst.instruction |= WRITE_BACK;
8883 else
8884 constraint (ldstm_type != VFP_LDSTMIA && ldstm_type != VFP_LDSTMIAX,
8885 _("this addressing mode requires base-register writeback"));
8886
8887 inst.instruction |= inst.operands[0].reg << 16;
8888 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dd);
8889
8890 count = inst.operands[1].imm << 1;
8891 if (ldstm_type == VFP_LDSTMIAX || ldstm_type == VFP_LDSTMDBX)
8892 count += 1;
8893
8894 inst.instruction |= count;
8895 }
8896
8897 static void
8898 do_vfp_sp_ldstmia (void)
8899 {
8900 vfp_sp_ldstm (VFP_LDSTMIA);
8901 }
8902
8903 static void
8904 do_vfp_sp_ldstmdb (void)
8905 {
8906 vfp_sp_ldstm (VFP_LDSTMDB);
8907 }
8908
8909 static void
8910 do_vfp_dp_ldstmia (void)
8911 {
8912 vfp_dp_ldstm (VFP_LDSTMIA);
8913 }
8914
8915 static void
8916 do_vfp_dp_ldstmdb (void)
8917 {
8918 vfp_dp_ldstm (VFP_LDSTMDB);
8919 }
8920
8921 static void
8922 do_vfp_xp_ldstmia (void)
8923 {
8924 vfp_dp_ldstm (VFP_LDSTMIAX);
8925 }
8926
8927 static void
8928 do_vfp_xp_ldstmdb (void)
8929 {
8930 vfp_dp_ldstm (VFP_LDSTMDBX);
8931 }
8932
8933 static void
8934 do_vfp_dp_rd_rm (void)
8935 {
8936 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8937 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dm);
8938 }
8939
8940 static void
8941 do_vfp_dp_rn_rd (void)
8942 {
8943 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dn);
8944 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dd);
8945 }
8946
8947 static void
8948 do_vfp_dp_rd_rn (void)
8949 {
8950 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8951 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dn);
8952 }
8953
8954 static void
8955 do_vfp_dp_rd_rn_rm (void)
8956 {
8957 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8958 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dn);
8959 encode_arm_vfp_reg (inst.operands[2].reg, VFP_REG_Dm);
8960 }
8961
8962 static void
8963 do_vfp_dp_rd (void)
8964 {
8965 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8966 }
8967
8968 static void
8969 do_vfp_dp_rm_rd_rn (void)
8970 {
8971 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dm);
8972 encode_arm_vfp_reg (inst.operands[1].reg, VFP_REG_Dd);
8973 encode_arm_vfp_reg (inst.operands[2].reg, VFP_REG_Dn);
8974 }
8975
8976 /* VFPv3 instructions. */
8977 static void
8978 do_vfp_sp_const (void)
8979 {
8980 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
8981 inst.instruction |= (inst.operands[1].imm & 0xf0) << 12;
8982 inst.instruction |= (inst.operands[1].imm & 0x0f);
8983 }
8984
8985 static void
8986 do_vfp_dp_const (void)
8987 {
8988 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
8989 inst.instruction |= (inst.operands[1].imm & 0xf0) << 12;
8990 inst.instruction |= (inst.operands[1].imm & 0x0f);
8991 }
8992
8993 static void
8994 vfp_conv (int srcsize)
8995 {
8996 int immbits = srcsize - inst.operands[1].imm;
8997
8998 if (srcsize == 16 && !(immbits >= 0 && immbits <= srcsize))
8999 {
9000 /* If srcsize is 16, inst.operands[1].imm must be in the range 0-16.
9001 i.e. immbits must be in range 0 - 16. */
9002 inst.error = _("immediate value out of range, expected range [0, 16]");
9003 return;
9004 }
9005 else if (srcsize == 32 && !(immbits >= 0 && immbits < srcsize))
9006 {
9007 /* If srcsize is 32, inst.operands[1].imm must be in the range 1-32.
9008 i.e. immbits must be in range 0 - 31. */
9009 inst.error = _("immediate value out of range, expected range [1, 32]");
9010 return;
9011 }
9012
9013 inst.instruction |= (immbits & 1) << 5;
9014 inst.instruction |= (immbits >> 1);
9015 }
9016
9017 static void
9018 do_vfp_sp_conv_16 (void)
9019 {
9020 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
9021 vfp_conv (16);
9022 }
9023
9024 static void
9025 do_vfp_dp_conv_16 (void)
9026 {
9027 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
9028 vfp_conv (16);
9029 }
9030
9031 static void
9032 do_vfp_sp_conv_32 (void)
9033 {
9034 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
9035 vfp_conv (32);
9036 }
9037
9038 static void
9039 do_vfp_dp_conv_32 (void)
9040 {
9041 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Dd);
9042 vfp_conv (32);
9043 }
9044 \f
9045 /* FPA instructions. Also in a logical order. */
9046
9047 static void
9048 do_fpa_cmp (void)
9049 {
9050 inst.instruction |= inst.operands[0].reg << 16;
9051 inst.instruction |= inst.operands[1].reg;
9052 }
9053
9054 static void
9055 do_fpa_ldmstm (void)
9056 {
9057 inst.instruction |= inst.operands[0].reg << 12;
9058 switch (inst.operands[1].imm)
9059 {
9060 case 1: inst.instruction |= CP_T_X; break;
9061 case 2: inst.instruction |= CP_T_Y; break;
9062 case 3: inst.instruction |= CP_T_Y | CP_T_X; break;
9063 case 4: break;
9064 default: abort ();
9065 }
9066
9067 if (inst.instruction & (PRE_INDEX | INDEX_UP))
9068 {
9069 /* The instruction specified "ea" or "fd", so we can only accept
9070 [Rn]{!}. The instruction does not really support stacking or
9071 unstacking, so we have to emulate these by setting appropriate
9072 bits and offsets. */
9073 constraint (inst.reloc.exp.X_op != O_constant
9074 || inst.reloc.exp.X_add_number != 0,
9075 _("this instruction does not support indexing"));
9076
9077 if ((inst.instruction & PRE_INDEX) || inst.operands[2].writeback)
9078 inst.reloc.exp.X_add_number = 12 * inst.operands[1].imm;
9079
9080 if (!(inst.instruction & INDEX_UP))
9081 inst.reloc.exp.X_add_number = -inst.reloc.exp.X_add_number;
9082
9083 if (!(inst.instruction & PRE_INDEX) && inst.operands[2].writeback)
9084 {
9085 inst.operands[2].preind = 0;
9086 inst.operands[2].postind = 1;
9087 }
9088 }
9089
9090 encode_arm_cp_address (2, TRUE, TRUE, 0);
9091 }
9092 \f
9093 /* iWMMXt instructions: strictly in alphabetical order. */
9094
9095 static void
9096 do_iwmmxt_tandorc (void)
9097 {
9098 constraint (inst.operands[0].reg != REG_PC, _("only r15 allowed here"));
9099 }
9100
9101 static void
9102 do_iwmmxt_textrc (void)
9103 {
9104 inst.instruction |= inst.operands[0].reg << 12;
9105 inst.instruction |= inst.operands[1].imm;
9106 }
9107
9108 static void
9109 do_iwmmxt_textrm (void)
9110 {
9111 inst.instruction |= inst.operands[0].reg << 12;
9112 inst.instruction |= inst.operands[1].reg << 16;
9113 inst.instruction |= inst.operands[2].imm;
9114 }
9115
9116 static void
9117 do_iwmmxt_tinsr (void)
9118 {
9119 inst.instruction |= inst.operands[0].reg << 16;
9120 inst.instruction |= inst.operands[1].reg << 12;
9121 inst.instruction |= inst.operands[2].imm;
9122 }
9123
9124 static void
9125 do_iwmmxt_tmia (void)
9126 {
9127 inst.instruction |= inst.operands[0].reg << 5;
9128 inst.instruction |= inst.operands[1].reg;
9129 inst.instruction |= inst.operands[2].reg << 12;
9130 }
9131
9132 static void
9133 do_iwmmxt_waligni (void)
9134 {
9135 inst.instruction |= inst.operands[0].reg << 12;
9136 inst.instruction |= inst.operands[1].reg << 16;
9137 inst.instruction |= inst.operands[2].reg;
9138 inst.instruction |= inst.operands[3].imm << 20;
9139 }
9140
9141 static void
9142 do_iwmmxt_wmerge (void)
9143 {
9144 inst.instruction |= inst.operands[0].reg << 12;
9145 inst.instruction |= inst.operands[1].reg << 16;
9146 inst.instruction |= inst.operands[2].reg;
9147 inst.instruction |= inst.operands[3].imm << 21;
9148 }
9149
9150 static void
9151 do_iwmmxt_wmov (void)
9152 {
9153 /* WMOV rD, rN is an alias for WOR rD, rN, rN. */
9154 inst.instruction |= inst.operands[0].reg << 12;
9155 inst.instruction |= inst.operands[1].reg << 16;
9156 inst.instruction |= inst.operands[1].reg;
9157 }
9158
9159 static void
9160 do_iwmmxt_wldstbh (void)
9161 {
9162 int reloc;
9163 inst.instruction |= inst.operands[0].reg << 12;
9164 if (thumb_mode)
9165 reloc = BFD_RELOC_ARM_T32_CP_OFF_IMM_S2;
9166 else
9167 reloc = BFD_RELOC_ARM_CP_OFF_IMM_S2;
9168 encode_arm_cp_address (1, TRUE, FALSE, reloc);
9169 }
9170
9171 static void
9172 do_iwmmxt_wldstw (void)
9173 {
9174 /* RIWR_RIWC clears .isreg for a control register. */
9175 if (!inst.operands[0].isreg)
9176 {
9177 constraint (inst.cond != COND_ALWAYS, BAD_COND);
9178 inst.instruction |= 0xf0000000;
9179 }
9180
9181 inst.instruction |= inst.operands[0].reg << 12;
9182 encode_arm_cp_address (1, TRUE, TRUE, 0);
9183 }
9184
9185 static void
9186 do_iwmmxt_wldstd (void)
9187 {
9188 inst.instruction |= inst.operands[0].reg << 12;
9189 if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_cext_iwmmxt2)
9190 && inst.operands[1].immisreg)
9191 {
9192 inst.instruction &= ~0x1a000ff;
9193 inst.instruction |= (0xf << 28);
9194 if (inst.operands[1].preind)
9195 inst.instruction |= PRE_INDEX;
9196 if (!inst.operands[1].negative)
9197 inst.instruction |= INDEX_UP;
9198 if (inst.operands[1].writeback)
9199 inst.instruction |= WRITE_BACK;
9200 inst.instruction |= inst.operands[1].reg << 16;
9201 inst.instruction |= inst.reloc.exp.X_add_number << 4;
9202 inst.instruction |= inst.operands[1].imm;
9203 }
9204 else
9205 encode_arm_cp_address (1, TRUE, FALSE, 0);
9206 }
9207
9208 static void
9209 do_iwmmxt_wshufh (void)
9210 {
9211 inst.instruction |= inst.operands[0].reg << 12;
9212 inst.instruction |= inst.operands[1].reg << 16;
9213 inst.instruction |= ((inst.operands[2].imm & 0xf0) << 16);
9214 inst.instruction |= (inst.operands[2].imm & 0x0f);
9215 }
9216
9217 static void
9218 do_iwmmxt_wzero (void)
9219 {
9220 /* WZERO reg is an alias for WANDN reg, reg, reg. */
9221 inst.instruction |= inst.operands[0].reg;
9222 inst.instruction |= inst.operands[0].reg << 12;
9223 inst.instruction |= inst.operands[0].reg << 16;
9224 }
9225
9226 static void
9227 do_iwmmxt_wrwrwr_or_imm5 (void)
9228 {
9229 if (inst.operands[2].isreg)
9230 do_rd_rn_rm ();
9231 else {
9232 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_cext_iwmmxt2),
9233 _("immediate operand requires iWMMXt2"));
9234 do_rd_rn ();
9235 if (inst.operands[2].imm == 0)
9236 {
9237 switch ((inst.instruction >> 20) & 0xf)
9238 {
9239 case 4:
9240 case 5:
9241 case 6:
9242 case 7:
9243 /* w...h wrd, wrn, #0 -> wrorh wrd, wrn, #16. */
9244 inst.operands[2].imm = 16;
9245 inst.instruction = (inst.instruction & 0xff0fffff) | (0x7 << 20);
9246 break;
9247 case 8:
9248 case 9:
9249 case 10:
9250 case 11:
9251 /* w...w wrd, wrn, #0 -> wrorw wrd, wrn, #32. */
9252 inst.operands[2].imm = 32;
9253 inst.instruction = (inst.instruction & 0xff0fffff) | (0xb << 20);
9254 break;
9255 case 12:
9256 case 13:
9257 case 14:
9258 case 15:
9259 {
9260 /* w...d wrd, wrn, #0 -> wor wrd, wrn, wrn. */
9261 unsigned long wrn;
9262 wrn = (inst.instruction >> 16) & 0xf;
9263 inst.instruction &= 0xff0fff0f;
9264 inst.instruction |= wrn;
9265 /* Bail out here; the instruction is now assembled. */
9266 return;
9267 }
9268 }
9269 }
9270 /* Map 32 -> 0, etc. */
9271 inst.operands[2].imm &= 0x1f;
9272 inst.instruction |= (0xf << 28) | ((inst.operands[2].imm & 0x10) << 4) | (inst.operands[2].imm & 0xf);
9273 }
9274 }
9275 \f
9276 /* Cirrus Maverick instructions. Simple 2-, 3-, and 4-register
9277 operations first, then control, shift, and load/store. */
9278
9279 /* Insns like "foo X,Y,Z". */
9280
9281 static void
9282 do_mav_triple (void)
9283 {
9284 inst.instruction |= inst.operands[0].reg << 16;
9285 inst.instruction |= inst.operands[1].reg;
9286 inst.instruction |= inst.operands[2].reg << 12;
9287 }
9288
9289 /* Insns like "foo W,X,Y,Z".
9290 where W=MVAX[0:3] and X,Y,Z=MVFX[0:15]. */
9291
9292 static void
9293 do_mav_quad (void)
9294 {
9295 inst.instruction |= inst.operands[0].reg << 5;
9296 inst.instruction |= inst.operands[1].reg << 12;
9297 inst.instruction |= inst.operands[2].reg << 16;
9298 inst.instruction |= inst.operands[3].reg;
9299 }
9300
9301 /* cfmvsc32<cond> DSPSC,MVDX[15:0]. */
9302 static void
9303 do_mav_dspsc (void)
9304 {
9305 inst.instruction |= inst.operands[1].reg << 12;
9306 }
9307
9308 /* Maverick shift immediate instructions.
9309 cfsh32<cond> MVFX[15:0],MVFX[15:0],Shift[6:0].
9310 cfsh64<cond> MVDX[15:0],MVDX[15:0],Shift[6:0]. */
9311
9312 static void
9313 do_mav_shift (void)
9314 {
9315 int imm = inst.operands[2].imm;
9316
9317 inst.instruction |= inst.operands[0].reg << 12;
9318 inst.instruction |= inst.operands[1].reg << 16;
9319
9320 /* Bits 0-3 of the insn should have bits 0-3 of the immediate.
9321 Bits 5-7 of the insn should have bits 4-6 of the immediate.
9322 Bit 4 should be 0. */
9323 imm = (imm & 0xf) | ((imm & 0x70) << 1);
9324
9325 inst.instruction |= imm;
9326 }
9327 \f
9328 /* XScale instructions. Also sorted arithmetic before move. */
9329
9330 /* Xscale multiply-accumulate (argument parse)
9331 MIAcc acc0,Rm,Rs
9332 MIAPHcc acc0,Rm,Rs
9333 MIAxycc acc0,Rm,Rs. */
9334
9335 static void
9336 do_xsc_mia (void)
9337 {
9338 inst.instruction |= inst.operands[1].reg;
9339 inst.instruction |= inst.operands[2].reg << 12;
9340 }
9341
9342 /* Xscale move-accumulator-register (argument parse)
9343
9344 MARcc acc0,RdLo,RdHi. */
9345
9346 static void
9347 do_xsc_mar (void)
9348 {
9349 inst.instruction |= inst.operands[1].reg << 12;
9350 inst.instruction |= inst.operands[2].reg << 16;
9351 }
9352
9353 /* Xscale move-register-accumulator (argument parse)
9354
9355 MRAcc RdLo,RdHi,acc0. */
9356
9357 static void
9358 do_xsc_mra (void)
9359 {
9360 constraint (inst.operands[0].reg == inst.operands[1].reg, BAD_OVERLAP);
9361 inst.instruction |= inst.operands[0].reg << 12;
9362 inst.instruction |= inst.operands[1].reg << 16;
9363 }
9364 \f
9365 /* Encoding functions relevant only to Thumb. */
9366
9367 /* inst.operands[i] is a shifted-register operand; encode
9368 it into inst.instruction in the format used by Thumb32. */
9369
9370 static void
9371 encode_thumb32_shifted_operand (int i)
9372 {
9373 unsigned int value = inst.reloc.exp.X_add_number;
9374 unsigned int shift = inst.operands[i].shift_kind;
9375
9376 constraint (inst.operands[i].immisreg,
9377 _("shift by register not allowed in thumb mode"));
9378 inst.instruction |= inst.operands[i].reg;
9379 if (shift == SHIFT_RRX)
9380 inst.instruction |= SHIFT_ROR << 4;
9381 else
9382 {
9383 constraint (inst.reloc.exp.X_op != O_constant,
9384 _("expression too complex"));
9385
9386 constraint (value > 32
9387 || (value == 32 && (shift == SHIFT_LSL
9388 || shift == SHIFT_ROR)),
9389 _("shift expression is too large"));
9390
9391 if (value == 0)
9392 shift = SHIFT_LSL;
9393 else if (value == 32)
9394 value = 0;
9395
9396 inst.instruction |= shift << 4;
9397 inst.instruction |= (value & 0x1c) << 10;
9398 inst.instruction |= (value & 0x03) << 6;
9399 }
9400 }
9401
9402
9403 /* inst.operands[i] was set up by parse_address. Encode it into a
9404 Thumb32 format load or store instruction. Reject forms that cannot
9405 be used with such instructions. If is_t is true, reject forms that
9406 cannot be used with a T instruction; if is_d is true, reject forms
9407 that cannot be used with a D instruction. If it is a store insn,
9408 reject PC in Rn. */
9409
9410 static void
9411 encode_thumb32_addr_mode (int i, bfd_boolean is_t, bfd_boolean is_d)
9412 {
9413 const bfd_boolean is_pc = (inst.operands[i].reg == REG_PC);
9414
9415 constraint (!inst.operands[i].isreg,
9416 _("Instruction does not support =N addresses"));
9417
9418 inst.instruction |= inst.operands[i].reg << 16;
9419 if (inst.operands[i].immisreg)
9420 {
9421 constraint (is_pc, BAD_PC_ADDRESSING);
9422 constraint (is_t || is_d, _("cannot use register index with this instruction"));
9423 constraint (inst.operands[i].negative,
9424 _("Thumb does not support negative register indexing"));
9425 constraint (inst.operands[i].postind,
9426 _("Thumb does not support register post-indexing"));
9427 constraint (inst.operands[i].writeback,
9428 _("Thumb does not support register indexing with writeback"));
9429 constraint (inst.operands[i].shifted && inst.operands[i].shift_kind != SHIFT_LSL,
9430 _("Thumb supports only LSL in shifted register indexing"));
9431
9432 inst.instruction |= inst.operands[i].imm;
9433 if (inst.operands[i].shifted)
9434 {
9435 constraint (inst.reloc.exp.X_op != O_constant,
9436 _("expression too complex"));
9437 constraint (inst.reloc.exp.X_add_number < 0
9438 || inst.reloc.exp.X_add_number > 3,
9439 _("shift out of range"));
9440 inst.instruction |= inst.reloc.exp.X_add_number << 4;
9441 }
9442 inst.reloc.type = BFD_RELOC_UNUSED;
9443 }
9444 else if (inst.operands[i].preind)
9445 {
9446 constraint (is_pc && inst.operands[i].writeback, BAD_PC_WRITEBACK);
9447 constraint (is_t && inst.operands[i].writeback,
9448 _("cannot use writeback with this instruction"));
9449 constraint (is_pc && ((inst.instruction & THUMB2_LOAD_BIT) == 0),
9450 BAD_PC_ADDRESSING);
9451
9452 if (is_d)
9453 {
9454 inst.instruction |= 0x01000000;
9455 if (inst.operands[i].writeback)
9456 inst.instruction |= 0x00200000;
9457 }
9458 else
9459 {
9460 inst.instruction |= 0x00000c00;
9461 if (inst.operands[i].writeback)
9462 inst.instruction |= 0x00000100;
9463 }
9464 inst.reloc.type = BFD_RELOC_ARM_T32_OFFSET_IMM;
9465 }
9466 else if (inst.operands[i].postind)
9467 {
9468 gas_assert (inst.operands[i].writeback);
9469 constraint (is_pc, _("cannot use post-indexing with PC-relative addressing"));
9470 constraint (is_t, _("cannot use post-indexing with this instruction"));
9471
9472 if (is_d)
9473 inst.instruction |= 0x00200000;
9474 else
9475 inst.instruction |= 0x00000900;
9476 inst.reloc.type = BFD_RELOC_ARM_T32_OFFSET_IMM;
9477 }
9478 else /* unindexed - only for coprocessor */
9479 inst.error = _("instruction does not accept unindexed addressing");
9480 }
9481
9482 /* Table of Thumb instructions which exist in both 16- and 32-bit
9483 encodings (the latter only in post-V6T2 cores). The index is the
9484 value used in the insns table below. When there is more than one
9485 possible 16-bit encoding for the instruction, this table always
9486 holds variant (1).
9487 Also contains several pseudo-instructions used during relaxation. */
9488 #define T16_32_TAB \
9489 X(_adc, 4140, eb400000), \
9490 X(_adcs, 4140, eb500000), \
9491 X(_add, 1c00, eb000000), \
9492 X(_adds, 1c00, eb100000), \
9493 X(_addi, 0000, f1000000), \
9494 X(_addis, 0000, f1100000), \
9495 X(_add_pc,000f, f20f0000), \
9496 X(_add_sp,000d, f10d0000), \
9497 X(_adr, 000f, f20f0000), \
9498 X(_and, 4000, ea000000), \
9499 X(_ands, 4000, ea100000), \
9500 X(_asr, 1000, fa40f000), \
9501 X(_asrs, 1000, fa50f000), \
9502 X(_b, e000, f000b000), \
9503 X(_bcond, d000, f0008000), \
9504 X(_bic, 4380, ea200000), \
9505 X(_bics, 4380, ea300000), \
9506 X(_cmn, 42c0, eb100f00), \
9507 X(_cmp, 2800, ebb00f00), \
9508 X(_cpsie, b660, f3af8400), \
9509 X(_cpsid, b670, f3af8600), \
9510 X(_cpy, 4600, ea4f0000), \
9511 X(_dec_sp,80dd, f1ad0d00), \
9512 X(_eor, 4040, ea800000), \
9513 X(_eors, 4040, ea900000), \
9514 X(_inc_sp,00dd, f10d0d00), \
9515 X(_ldmia, c800, e8900000), \
9516 X(_ldr, 6800, f8500000), \
9517 X(_ldrb, 7800, f8100000), \
9518 X(_ldrh, 8800, f8300000), \
9519 X(_ldrsb, 5600, f9100000), \
9520 X(_ldrsh, 5e00, f9300000), \
9521 X(_ldr_pc,4800, f85f0000), \
9522 X(_ldr_pc2,4800, f85f0000), \
9523 X(_ldr_sp,9800, f85d0000), \
9524 X(_lsl, 0000, fa00f000), \
9525 X(_lsls, 0000, fa10f000), \
9526 X(_lsr, 0800, fa20f000), \
9527 X(_lsrs, 0800, fa30f000), \
9528 X(_mov, 2000, ea4f0000), \
9529 X(_movs, 2000, ea5f0000), \
9530 X(_mul, 4340, fb00f000), \
9531 X(_muls, 4340, ffffffff), /* no 32b muls */ \
9532 X(_mvn, 43c0, ea6f0000), \
9533 X(_mvns, 43c0, ea7f0000), \
9534 X(_neg, 4240, f1c00000), /* rsb #0 */ \
9535 X(_negs, 4240, f1d00000), /* rsbs #0 */ \
9536 X(_orr, 4300, ea400000), \
9537 X(_orrs, 4300, ea500000), \
9538 X(_pop, bc00, e8bd0000), /* ldmia sp!,... */ \
9539 X(_push, b400, e92d0000), /* stmdb sp!,... */ \
9540 X(_rev, ba00, fa90f080), \
9541 X(_rev16, ba40, fa90f090), \
9542 X(_revsh, bac0, fa90f0b0), \
9543 X(_ror, 41c0, fa60f000), \
9544 X(_rors, 41c0, fa70f000), \
9545 X(_sbc, 4180, eb600000), \
9546 X(_sbcs, 4180, eb700000), \
9547 X(_stmia, c000, e8800000), \
9548 X(_str, 6000, f8400000), \
9549 X(_strb, 7000, f8000000), \
9550 X(_strh, 8000, f8200000), \
9551 X(_str_sp,9000, f84d0000), \
9552 X(_sub, 1e00, eba00000), \
9553 X(_subs, 1e00, ebb00000), \
9554 X(_subi, 8000, f1a00000), \
9555 X(_subis, 8000, f1b00000), \
9556 X(_sxtb, b240, fa4ff080), \
9557 X(_sxth, b200, fa0ff080), \
9558 X(_tst, 4200, ea100f00), \
9559 X(_uxtb, b2c0, fa5ff080), \
9560 X(_uxth, b280, fa1ff080), \
9561 X(_nop, bf00, f3af8000), \
9562 X(_yield, bf10, f3af8001), \
9563 X(_wfe, bf20, f3af8002), \
9564 X(_wfi, bf30, f3af8003), \
9565 X(_sev, bf40, f3af8004), \
9566 X(_sevl, bf50, f3af8005), \
9567 X(_udf, de00, f7f0a000)
9568
9569 /* To catch errors in encoding functions, the codes are all offset by
9570 0xF800, putting them in one of the 32-bit prefix ranges, ergo undefined
9571 as 16-bit instructions. */
9572 #define X(a,b,c) T_MNEM##a
9573 enum t16_32_codes { T16_32_OFFSET = 0xF7FF, T16_32_TAB };
9574 #undef X
9575
9576 #define X(a,b,c) 0x##b
9577 static const unsigned short thumb_op16[] = { T16_32_TAB };
9578 #define THUMB_OP16(n) (thumb_op16[(n) - (T16_32_OFFSET + 1)])
9579 #undef X
9580
9581 #define X(a,b,c) 0x##c
9582 static const unsigned int thumb_op32[] = { T16_32_TAB };
9583 #define THUMB_OP32(n) (thumb_op32[(n) - (T16_32_OFFSET + 1)])
9584 #define THUMB_SETS_FLAGS(n) (THUMB_OP32 (n) & 0x00100000)
9585 #undef X
9586 #undef T16_32_TAB
9587
9588 /* Thumb instruction encoders, in alphabetical order. */
9589
9590 /* ADDW or SUBW. */
9591
9592 static void
9593 do_t_add_sub_w (void)
9594 {
9595 int Rd, Rn;
9596
9597 Rd = inst.operands[0].reg;
9598 Rn = inst.operands[1].reg;
9599
9600 /* If Rn is REG_PC, this is ADR; if Rn is REG_SP, then this
9601 is the SP-{plus,minus}-immediate form of the instruction. */
9602 if (Rn == REG_SP)
9603 constraint (Rd == REG_PC, BAD_PC);
9604 else
9605 reject_bad_reg (Rd);
9606
9607 inst.instruction |= (Rn << 16) | (Rd << 8);
9608 inst.reloc.type = BFD_RELOC_ARM_T32_IMM12;
9609 }
9610
9611 /* Parse an add or subtract instruction. We get here with inst.instruction
9612 equalling any of THUMB_OPCODE_add, adds, sub, or subs. */
9613
9614 static void
9615 do_t_add_sub (void)
9616 {
9617 int Rd, Rs, Rn;
9618
9619 Rd = inst.operands[0].reg;
9620 Rs = (inst.operands[1].present
9621 ? inst.operands[1].reg /* Rd, Rs, foo */
9622 : inst.operands[0].reg); /* Rd, foo -> Rd, Rd, foo */
9623
9624 if (Rd == REG_PC)
9625 set_it_insn_type_last ();
9626
9627 if (unified_syntax)
9628 {
9629 bfd_boolean flags;
9630 bfd_boolean narrow;
9631 int opcode;
9632
9633 flags = (inst.instruction == T_MNEM_adds
9634 || inst.instruction == T_MNEM_subs);
9635 if (flags)
9636 narrow = !in_it_block ();
9637 else
9638 narrow = in_it_block ();
9639 if (!inst.operands[2].isreg)
9640 {
9641 int add;
9642
9643 constraint (Rd == REG_SP && Rs != REG_SP, BAD_SP);
9644
9645 add = (inst.instruction == T_MNEM_add
9646 || inst.instruction == T_MNEM_adds);
9647 opcode = 0;
9648 if (inst.size_req != 4)
9649 {
9650 /* Attempt to use a narrow opcode, with relaxation if
9651 appropriate. */
9652 if (Rd == REG_SP && Rs == REG_SP && !flags)
9653 opcode = add ? T_MNEM_inc_sp : T_MNEM_dec_sp;
9654 else if (Rd <= 7 && Rs == REG_SP && add && !flags)
9655 opcode = T_MNEM_add_sp;
9656 else if (Rd <= 7 && Rs == REG_PC && add && !flags)
9657 opcode = T_MNEM_add_pc;
9658 else if (Rd <= 7 && Rs <= 7 && narrow)
9659 {
9660 if (flags)
9661 opcode = add ? T_MNEM_addis : T_MNEM_subis;
9662 else
9663 opcode = add ? T_MNEM_addi : T_MNEM_subi;
9664 }
9665 if (opcode)
9666 {
9667 inst.instruction = THUMB_OP16(opcode);
9668 inst.instruction |= (Rd << 4) | Rs;
9669 inst.reloc.type = BFD_RELOC_ARM_THUMB_ADD;
9670 if (inst.size_req != 2)
9671 inst.relax = opcode;
9672 }
9673 else
9674 constraint (inst.size_req == 2, BAD_HIREG);
9675 }
9676 if (inst.size_req == 4
9677 || (inst.size_req != 2 && !opcode))
9678 {
9679 if (Rd == REG_PC)
9680 {
9681 constraint (add, BAD_PC);
9682 constraint (Rs != REG_LR || inst.instruction != T_MNEM_subs,
9683 _("only SUBS PC, LR, #const allowed"));
9684 constraint (inst.reloc.exp.X_op != O_constant,
9685 _("expression too complex"));
9686 constraint (inst.reloc.exp.X_add_number < 0
9687 || inst.reloc.exp.X_add_number > 0xff,
9688 _("immediate value out of range"));
9689 inst.instruction = T2_SUBS_PC_LR
9690 | inst.reloc.exp.X_add_number;
9691 inst.reloc.type = BFD_RELOC_UNUSED;
9692 return;
9693 }
9694 else if (Rs == REG_PC)
9695 {
9696 /* Always use addw/subw. */
9697 inst.instruction = add ? 0xf20f0000 : 0xf2af0000;
9698 inst.reloc.type = BFD_RELOC_ARM_T32_IMM12;
9699 }
9700 else
9701 {
9702 inst.instruction = THUMB_OP32 (inst.instruction);
9703 inst.instruction = (inst.instruction & 0xe1ffffff)
9704 | 0x10000000;
9705 if (flags)
9706 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
9707 else
9708 inst.reloc.type = BFD_RELOC_ARM_T32_ADD_IMM;
9709 }
9710 inst.instruction |= Rd << 8;
9711 inst.instruction |= Rs << 16;
9712 }
9713 }
9714 else
9715 {
9716 unsigned int value = inst.reloc.exp.X_add_number;
9717 unsigned int shift = inst.operands[2].shift_kind;
9718
9719 Rn = inst.operands[2].reg;
9720 /* See if we can do this with a 16-bit instruction. */
9721 if (!inst.operands[2].shifted && inst.size_req != 4)
9722 {
9723 if (Rd > 7 || Rs > 7 || Rn > 7)
9724 narrow = FALSE;
9725
9726 if (narrow)
9727 {
9728 inst.instruction = ((inst.instruction == T_MNEM_adds
9729 || inst.instruction == T_MNEM_add)
9730 ? T_OPCODE_ADD_R3
9731 : T_OPCODE_SUB_R3);
9732 inst.instruction |= Rd | (Rs << 3) | (Rn << 6);
9733 return;
9734 }
9735
9736 if (inst.instruction == T_MNEM_add && (Rd == Rs || Rd == Rn))
9737 {
9738 /* Thumb-1 cores (except v6-M) require at least one high
9739 register in a narrow non flag setting add. */
9740 if (Rd > 7 || Rn > 7
9741 || ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6t2)
9742 || ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_msr))
9743 {
9744 if (Rd == Rn)
9745 {
9746 Rn = Rs;
9747 Rs = Rd;
9748 }
9749 inst.instruction = T_OPCODE_ADD_HI;
9750 inst.instruction |= (Rd & 8) << 4;
9751 inst.instruction |= (Rd & 7);
9752 inst.instruction |= Rn << 3;
9753 return;
9754 }
9755 }
9756 }
9757
9758 constraint (Rd == REG_PC, BAD_PC);
9759 constraint (Rd == REG_SP && Rs != REG_SP, BAD_SP);
9760 constraint (Rs == REG_PC, BAD_PC);
9761 reject_bad_reg (Rn);
9762
9763 /* If we get here, it can't be done in 16 bits. */
9764 constraint (inst.operands[2].shifted && inst.operands[2].immisreg,
9765 _("shift must be constant"));
9766 inst.instruction = THUMB_OP32 (inst.instruction);
9767 inst.instruction |= Rd << 8;
9768 inst.instruction |= Rs << 16;
9769 constraint (Rd == REG_SP && Rs == REG_SP && value > 3,
9770 _("shift value over 3 not allowed in thumb mode"));
9771 constraint (Rd == REG_SP && Rs == REG_SP && shift != SHIFT_LSL,
9772 _("only LSL shift allowed in thumb mode"));
9773 encode_thumb32_shifted_operand (2);
9774 }
9775 }
9776 else
9777 {
9778 constraint (inst.instruction == T_MNEM_adds
9779 || inst.instruction == T_MNEM_subs,
9780 BAD_THUMB32);
9781
9782 if (!inst.operands[2].isreg) /* Rd, Rs, #imm */
9783 {
9784 constraint ((Rd > 7 && (Rd != REG_SP || Rs != REG_SP))
9785 || (Rs > 7 && Rs != REG_SP && Rs != REG_PC),
9786 BAD_HIREG);
9787
9788 inst.instruction = (inst.instruction == T_MNEM_add
9789 ? 0x0000 : 0x8000);
9790 inst.instruction |= (Rd << 4) | Rs;
9791 inst.reloc.type = BFD_RELOC_ARM_THUMB_ADD;
9792 return;
9793 }
9794
9795 Rn = inst.operands[2].reg;
9796 constraint (inst.operands[2].shifted, _("unshifted register required"));
9797
9798 /* We now have Rd, Rs, and Rn set to registers. */
9799 if (Rd > 7 || Rs > 7 || Rn > 7)
9800 {
9801 /* Can't do this for SUB. */
9802 constraint (inst.instruction == T_MNEM_sub, BAD_HIREG);
9803 inst.instruction = T_OPCODE_ADD_HI;
9804 inst.instruction |= (Rd & 8) << 4;
9805 inst.instruction |= (Rd & 7);
9806 if (Rs == Rd)
9807 inst.instruction |= Rn << 3;
9808 else if (Rn == Rd)
9809 inst.instruction |= Rs << 3;
9810 else
9811 constraint (1, _("dest must overlap one source register"));
9812 }
9813 else
9814 {
9815 inst.instruction = (inst.instruction == T_MNEM_add
9816 ? T_OPCODE_ADD_R3 : T_OPCODE_SUB_R3);
9817 inst.instruction |= Rd | (Rs << 3) | (Rn << 6);
9818 }
9819 }
9820 }
9821
9822 static void
9823 do_t_adr (void)
9824 {
9825 unsigned Rd;
9826
9827 Rd = inst.operands[0].reg;
9828 reject_bad_reg (Rd);
9829
9830 if (unified_syntax && inst.size_req == 0 && Rd <= 7)
9831 {
9832 /* Defer to section relaxation. */
9833 inst.relax = inst.instruction;
9834 inst.instruction = THUMB_OP16 (inst.instruction);
9835 inst.instruction |= Rd << 4;
9836 }
9837 else if (unified_syntax && inst.size_req != 2)
9838 {
9839 /* Generate a 32-bit opcode. */
9840 inst.instruction = THUMB_OP32 (inst.instruction);
9841 inst.instruction |= Rd << 8;
9842 inst.reloc.type = BFD_RELOC_ARM_T32_ADD_PC12;
9843 inst.reloc.pc_rel = 1;
9844 }
9845 else
9846 {
9847 /* Generate a 16-bit opcode. */
9848 inst.instruction = THUMB_OP16 (inst.instruction);
9849 inst.reloc.type = BFD_RELOC_ARM_THUMB_ADD;
9850 inst.reloc.exp.X_add_number -= 4; /* PC relative adjust. */
9851 inst.reloc.pc_rel = 1;
9852
9853 inst.instruction |= Rd << 4;
9854 }
9855 }
9856
9857 /* Arithmetic instructions for which there is just one 16-bit
9858 instruction encoding, and it allows only two low registers.
9859 For maximal compatibility with ARM syntax, we allow three register
9860 operands even when Thumb-32 instructions are not available, as long
9861 as the first two are identical. For instance, both "sbc r0,r1" and
9862 "sbc r0,r0,r1" are allowed. */
9863 static void
9864 do_t_arit3 (void)
9865 {
9866 int Rd, Rs, Rn;
9867
9868 Rd = inst.operands[0].reg;
9869 Rs = (inst.operands[1].present
9870 ? inst.operands[1].reg /* Rd, Rs, foo */
9871 : inst.operands[0].reg); /* Rd, foo -> Rd, Rd, foo */
9872 Rn = inst.operands[2].reg;
9873
9874 reject_bad_reg (Rd);
9875 reject_bad_reg (Rs);
9876 if (inst.operands[2].isreg)
9877 reject_bad_reg (Rn);
9878
9879 if (unified_syntax)
9880 {
9881 if (!inst.operands[2].isreg)
9882 {
9883 /* For an immediate, we always generate a 32-bit opcode;
9884 section relaxation will shrink it later if possible. */
9885 inst.instruction = THUMB_OP32 (inst.instruction);
9886 inst.instruction = (inst.instruction & 0xe1ffffff) | 0x10000000;
9887 inst.instruction |= Rd << 8;
9888 inst.instruction |= Rs << 16;
9889 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
9890 }
9891 else
9892 {
9893 bfd_boolean narrow;
9894
9895 /* See if we can do this with a 16-bit instruction. */
9896 if (THUMB_SETS_FLAGS (inst.instruction))
9897 narrow = !in_it_block ();
9898 else
9899 narrow = in_it_block ();
9900
9901 if (Rd > 7 || Rn > 7 || Rs > 7)
9902 narrow = FALSE;
9903 if (inst.operands[2].shifted)
9904 narrow = FALSE;
9905 if (inst.size_req == 4)
9906 narrow = FALSE;
9907
9908 if (narrow
9909 && Rd == Rs)
9910 {
9911 inst.instruction = THUMB_OP16 (inst.instruction);
9912 inst.instruction |= Rd;
9913 inst.instruction |= Rn << 3;
9914 return;
9915 }
9916
9917 /* If we get here, it can't be done in 16 bits. */
9918 constraint (inst.operands[2].shifted
9919 && inst.operands[2].immisreg,
9920 _("shift must be constant"));
9921 inst.instruction = THUMB_OP32 (inst.instruction);
9922 inst.instruction |= Rd << 8;
9923 inst.instruction |= Rs << 16;
9924 encode_thumb32_shifted_operand (2);
9925 }
9926 }
9927 else
9928 {
9929 /* On its face this is a lie - the instruction does set the
9930 flags. However, the only supported mnemonic in this mode
9931 says it doesn't. */
9932 constraint (THUMB_SETS_FLAGS (inst.instruction), BAD_THUMB32);
9933
9934 constraint (!inst.operands[2].isreg || inst.operands[2].shifted,
9935 _("unshifted register required"));
9936 constraint (Rd > 7 || Rs > 7 || Rn > 7, BAD_HIREG);
9937 constraint (Rd != Rs,
9938 _("dest and source1 must be the same register"));
9939
9940 inst.instruction = THUMB_OP16 (inst.instruction);
9941 inst.instruction |= Rd;
9942 inst.instruction |= Rn << 3;
9943 }
9944 }
9945
9946 /* Similarly, but for instructions where the arithmetic operation is
9947 commutative, so we can allow either of them to be different from
9948 the destination operand in a 16-bit instruction. For instance, all
9949 three of "adc r0,r1", "adc r0,r0,r1", and "adc r0,r1,r0" are
9950 accepted. */
9951 static void
9952 do_t_arit3c (void)
9953 {
9954 int Rd, Rs, Rn;
9955
9956 Rd = inst.operands[0].reg;
9957 Rs = (inst.operands[1].present
9958 ? inst.operands[1].reg /* Rd, Rs, foo */
9959 : inst.operands[0].reg); /* Rd, foo -> Rd, Rd, foo */
9960 Rn = inst.operands[2].reg;
9961
9962 reject_bad_reg (Rd);
9963 reject_bad_reg (Rs);
9964 if (inst.operands[2].isreg)
9965 reject_bad_reg (Rn);
9966
9967 if (unified_syntax)
9968 {
9969 if (!inst.operands[2].isreg)
9970 {
9971 /* For an immediate, we always generate a 32-bit opcode;
9972 section relaxation will shrink it later if possible. */
9973 inst.instruction = THUMB_OP32 (inst.instruction);
9974 inst.instruction = (inst.instruction & 0xe1ffffff) | 0x10000000;
9975 inst.instruction |= Rd << 8;
9976 inst.instruction |= Rs << 16;
9977 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
9978 }
9979 else
9980 {
9981 bfd_boolean narrow;
9982
9983 /* See if we can do this with a 16-bit instruction. */
9984 if (THUMB_SETS_FLAGS (inst.instruction))
9985 narrow = !in_it_block ();
9986 else
9987 narrow = in_it_block ();
9988
9989 if (Rd > 7 || Rn > 7 || Rs > 7)
9990 narrow = FALSE;
9991 if (inst.operands[2].shifted)
9992 narrow = FALSE;
9993 if (inst.size_req == 4)
9994 narrow = FALSE;
9995
9996 if (narrow)
9997 {
9998 if (Rd == Rs)
9999 {
10000 inst.instruction = THUMB_OP16 (inst.instruction);
10001 inst.instruction |= Rd;
10002 inst.instruction |= Rn << 3;
10003 return;
10004 }
10005 if (Rd == Rn)
10006 {
10007 inst.instruction = THUMB_OP16 (inst.instruction);
10008 inst.instruction |= Rd;
10009 inst.instruction |= Rs << 3;
10010 return;
10011 }
10012 }
10013
10014 /* If we get here, it can't be done in 16 bits. */
10015 constraint (inst.operands[2].shifted
10016 && inst.operands[2].immisreg,
10017 _("shift must be constant"));
10018 inst.instruction = THUMB_OP32 (inst.instruction);
10019 inst.instruction |= Rd << 8;
10020 inst.instruction |= Rs << 16;
10021 encode_thumb32_shifted_operand (2);
10022 }
10023 }
10024 else
10025 {
10026 /* On its face this is a lie - the instruction does set the
10027 flags. However, the only supported mnemonic in this mode
10028 says it doesn't. */
10029 constraint (THUMB_SETS_FLAGS (inst.instruction), BAD_THUMB32);
10030
10031 constraint (!inst.operands[2].isreg || inst.operands[2].shifted,
10032 _("unshifted register required"));
10033 constraint (Rd > 7 || Rs > 7 || Rn > 7, BAD_HIREG);
10034
10035 inst.instruction = THUMB_OP16 (inst.instruction);
10036 inst.instruction |= Rd;
10037
10038 if (Rd == Rs)
10039 inst.instruction |= Rn << 3;
10040 else if (Rd == Rn)
10041 inst.instruction |= Rs << 3;
10042 else
10043 constraint (1, _("dest must overlap one source register"));
10044 }
10045 }
10046
10047 static void
10048 do_t_bfc (void)
10049 {
10050 unsigned Rd;
10051 unsigned int msb = inst.operands[1].imm + inst.operands[2].imm;
10052 constraint (msb > 32, _("bit-field extends past end of register"));
10053 /* The instruction encoding stores the LSB and MSB,
10054 not the LSB and width. */
10055 Rd = inst.operands[0].reg;
10056 reject_bad_reg (Rd);
10057 inst.instruction |= Rd << 8;
10058 inst.instruction |= (inst.operands[1].imm & 0x1c) << 10;
10059 inst.instruction |= (inst.operands[1].imm & 0x03) << 6;
10060 inst.instruction |= msb - 1;
10061 }
10062
10063 static void
10064 do_t_bfi (void)
10065 {
10066 int Rd, Rn;
10067 unsigned int msb;
10068
10069 Rd = inst.operands[0].reg;
10070 reject_bad_reg (Rd);
10071
10072 /* #0 in second position is alternative syntax for bfc, which is
10073 the same instruction but with REG_PC in the Rm field. */
10074 if (!inst.operands[1].isreg)
10075 Rn = REG_PC;
10076 else
10077 {
10078 Rn = inst.operands[1].reg;
10079 reject_bad_reg (Rn);
10080 }
10081
10082 msb = inst.operands[2].imm + inst.operands[3].imm;
10083 constraint (msb > 32, _("bit-field extends past end of register"));
10084 /* The instruction encoding stores the LSB and MSB,
10085 not the LSB and width. */
10086 inst.instruction |= Rd << 8;
10087 inst.instruction |= Rn << 16;
10088 inst.instruction |= (inst.operands[2].imm & 0x1c) << 10;
10089 inst.instruction |= (inst.operands[2].imm & 0x03) << 6;
10090 inst.instruction |= msb - 1;
10091 }
10092
10093 static void
10094 do_t_bfx (void)
10095 {
10096 unsigned Rd, Rn;
10097
10098 Rd = inst.operands[0].reg;
10099 Rn = inst.operands[1].reg;
10100
10101 reject_bad_reg (Rd);
10102 reject_bad_reg (Rn);
10103
10104 constraint (inst.operands[2].imm + inst.operands[3].imm > 32,
10105 _("bit-field extends past end of register"));
10106 inst.instruction |= Rd << 8;
10107 inst.instruction |= Rn << 16;
10108 inst.instruction |= (inst.operands[2].imm & 0x1c) << 10;
10109 inst.instruction |= (inst.operands[2].imm & 0x03) << 6;
10110 inst.instruction |= inst.operands[3].imm - 1;
10111 }
10112
10113 /* ARM V5 Thumb BLX (argument parse)
10114 BLX <target_addr> which is BLX(1)
10115 BLX <Rm> which is BLX(2)
10116 Unfortunately, there are two different opcodes for this mnemonic.
10117 So, the insns[].value is not used, and the code here zaps values
10118 into inst.instruction.
10119
10120 ??? How to take advantage of the additional two bits of displacement
10121 available in Thumb32 mode? Need new relocation? */
10122
10123 static void
10124 do_t_blx (void)
10125 {
10126 set_it_insn_type_last ();
10127
10128 if (inst.operands[0].isreg)
10129 {
10130 constraint (inst.operands[0].reg == REG_PC, BAD_PC);
10131 /* We have a register, so this is BLX(2). */
10132 inst.instruction |= inst.operands[0].reg << 3;
10133 }
10134 else
10135 {
10136 /* No register. This must be BLX(1). */
10137 inst.instruction = 0xf000e800;
10138 encode_branch (BFD_RELOC_THUMB_PCREL_BLX);
10139 }
10140 }
10141
10142 static void
10143 do_t_branch (void)
10144 {
10145 int opcode;
10146 int cond;
10147 int reloc;
10148
10149 cond = inst.cond;
10150 set_it_insn_type (IF_INSIDE_IT_LAST_INSN);
10151
10152 if (in_it_block ())
10153 {
10154 /* Conditional branches inside IT blocks are encoded as unconditional
10155 branches. */
10156 cond = COND_ALWAYS;
10157 }
10158 else
10159 cond = inst.cond;
10160
10161 if (cond != COND_ALWAYS)
10162 opcode = T_MNEM_bcond;
10163 else
10164 opcode = inst.instruction;
10165
10166 if (unified_syntax
10167 && (inst.size_req == 4
10168 || (inst.size_req != 2
10169 && (inst.operands[0].hasreloc
10170 || inst.reloc.exp.X_op == O_constant))))
10171 {
10172 inst.instruction = THUMB_OP32(opcode);
10173 if (cond == COND_ALWAYS)
10174 reloc = BFD_RELOC_THUMB_PCREL_BRANCH25;
10175 else
10176 {
10177 gas_assert (cond != 0xF);
10178 inst.instruction |= cond << 22;
10179 reloc = BFD_RELOC_THUMB_PCREL_BRANCH20;
10180 }
10181 }
10182 else
10183 {
10184 inst.instruction = THUMB_OP16(opcode);
10185 if (cond == COND_ALWAYS)
10186 reloc = BFD_RELOC_THUMB_PCREL_BRANCH12;
10187 else
10188 {
10189 inst.instruction |= cond << 8;
10190 reloc = BFD_RELOC_THUMB_PCREL_BRANCH9;
10191 }
10192 /* Allow section relaxation. */
10193 if (unified_syntax && inst.size_req != 2)
10194 inst.relax = opcode;
10195 }
10196 inst.reloc.type = reloc;
10197 inst.reloc.pc_rel = 1;
10198 }
10199
10200 /* Actually do the work for Thumb state bkpt and hlt. The only difference
10201 between the two is the maximum immediate allowed - which is passed in
10202 RANGE. */
10203 static void
10204 do_t_bkpt_hlt1 (int range)
10205 {
10206 constraint (inst.cond != COND_ALWAYS,
10207 _("instruction is always unconditional"));
10208 if (inst.operands[0].present)
10209 {
10210 constraint (inst.operands[0].imm > range,
10211 _("immediate value out of range"));
10212 inst.instruction |= inst.operands[0].imm;
10213 }
10214
10215 set_it_insn_type (NEUTRAL_IT_INSN);
10216 }
10217
10218 static void
10219 do_t_hlt (void)
10220 {
10221 do_t_bkpt_hlt1 (63);
10222 }
10223
10224 static void
10225 do_t_bkpt (void)
10226 {
10227 do_t_bkpt_hlt1 (255);
10228 }
10229
10230 static void
10231 do_t_branch23 (void)
10232 {
10233 set_it_insn_type_last ();
10234 encode_branch (BFD_RELOC_THUMB_PCREL_BRANCH23);
10235
10236 /* md_apply_fix blows up with 'bl foo(PLT)' where foo is defined in
10237 this file. We used to simply ignore the PLT reloc type here --
10238 the branch encoding is now needed to deal with TLSCALL relocs.
10239 So if we see a PLT reloc now, put it back to how it used to be to
10240 keep the preexisting behaviour. */
10241 if (inst.reloc.type == BFD_RELOC_ARM_PLT32)
10242 inst.reloc.type = BFD_RELOC_THUMB_PCREL_BRANCH23;
10243
10244 #if defined(OBJ_COFF)
10245 /* If the destination of the branch is a defined symbol which does not have
10246 the THUMB_FUNC attribute, then we must be calling a function which has
10247 the (interfacearm) attribute. We look for the Thumb entry point to that
10248 function and change the branch to refer to that function instead. */
10249 if ( inst.reloc.exp.X_op == O_symbol
10250 && inst.reloc.exp.X_add_symbol != NULL
10251 && S_IS_DEFINED (inst.reloc.exp.X_add_symbol)
10252 && ! THUMB_IS_FUNC (inst.reloc.exp.X_add_symbol))
10253 inst.reloc.exp.X_add_symbol =
10254 find_real_start (inst.reloc.exp.X_add_symbol);
10255 #endif
10256 }
10257
10258 static void
10259 do_t_bx (void)
10260 {
10261 set_it_insn_type_last ();
10262 inst.instruction |= inst.operands[0].reg << 3;
10263 /* ??? FIXME: Should add a hacky reloc here if reg is REG_PC. The reloc
10264 should cause the alignment to be checked once it is known. This is
10265 because BX PC only works if the instruction is word aligned. */
10266 }
10267
10268 static void
10269 do_t_bxj (void)
10270 {
10271 int Rm;
10272
10273 set_it_insn_type_last ();
10274 Rm = inst.operands[0].reg;
10275 reject_bad_reg (Rm);
10276 inst.instruction |= Rm << 16;
10277 }
10278
10279 static void
10280 do_t_clz (void)
10281 {
10282 unsigned Rd;
10283 unsigned Rm;
10284
10285 Rd = inst.operands[0].reg;
10286 Rm = inst.operands[1].reg;
10287
10288 reject_bad_reg (Rd);
10289 reject_bad_reg (Rm);
10290
10291 inst.instruction |= Rd << 8;
10292 inst.instruction |= Rm << 16;
10293 inst.instruction |= Rm;
10294 }
10295
10296 static void
10297 do_t_cps (void)
10298 {
10299 set_it_insn_type (OUTSIDE_IT_INSN);
10300 inst.instruction |= inst.operands[0].imm;
10301 }
10302
10303 static void
10304 do_t_cpsi (void)
10305 {
10306 set_it_insn_type (OUTSIDE_IT_INSN);
10307 if (unified_syntax
10308 && (inst.operands[1].present || inst.size_req == 4)
10309 && ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v6_notm))
10310 {
10311 unsigned int imod = (inst.instruction & 0x0030) >> 4;
10312 inst.instruction = 0xf3af8000;
10313 inst.instruction |= imod << 9;
10314 inst.instruction |= inst.operands[0].imm << 5;
10315 if (inst.operands[1].present)
10316 inst.instruction |= 0x100 | inst.operands[1].imm;
10317 }
10318 else
10319 {
10320 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v1)
10321 && (inst.operands[0].imm & 4),
10322 _("selected processor does not support 'A' form "
10323 "of this instruction"));
10324 constraint (inst.operands[1].present || inst.size_req == 4,
10325 _("Thumb does not support the 2-argument "
10326 "form of this instruction"));
10327 inst.instruction |= inst.operands[0].imm;
10328 }
10329 }
10330
10331 /* THUMB CPY instruction (argument parse). */
10332
10333 static void
10334 do_t_cpy (void)
10335 {
10336 if (inst.size_req == 4)
10337 {
10338 inst.instruction = THUMB_OP32 (T_MNEM_mov);
10339 inst.instruction |= inst.operands[0].reg << 8;
10340 inst.instruction |= inst.operands[1].reg;
10341 }
10342 else
10343 {
10344 inst.instruction |= (inst.operands[0].reg & 0x8) << 4;
10345 inst.instruction |= (inst.operands[0].reg & 0x7);
10346 inst.instruction |= inst.operands[1].reg << 3;
10347 }
10348 }
10349
10350 static void
10351 do_t_cbz (void)
10352 {
10353 set_it_insn_type (OUTSIDE_IT_INSN);
10354 constraint (inst.operands[0].reg > 7, BAD_HIREG);
10355 inst.instruction |= inst.operands[0].reg;
10356 inst.reloc.pc_rel = 1;
10357 inst.reloc.type = BFD_RELOC_THUMB_PCREL_BRANCH7;
10358 }
10359
10360 static void
10361 do_t_dbg (void)
10362 {
10363 inst.instruction |= inst.operands[0].imm;
10364 }
10365
10366 static void
10367 do_t_div (void)
10368 {
10369 unsigned Rd, Rn, Rm;
10370
10371 Rd = inst.operands[0].reg;
10372 Rn = (inst.operands[1].present
10373 ? inst.operands[1].reg : Rd);
10374 Rm = inst.operands[2].reg;
10375
10376 reject_bad_reg (Rd);
10377 reject_bad_reg (Rn);
10378 reject_bad_reg (Rm);
10379
10380 inst.instruction |= Rd << 8;
10381 inst.instruction |= Rn << 16;
10382 inst.instruction |= Rm;
10383 }
10384
10385 static void
10386 do_t_hint (void)
10387 {
10388 if (unified_syntax && inst.size_req == 4)
10389 inst.instruction = THUMB_OP32 (inst.instruction);
10390 else
10391 inst.instruction = THUMB_OP16 (inst.instruction);
10392 }
10393
10394 static void
10395 do_t_it (void)
10396 {
10397 unsigned int cond = inst.operands[0].imm;
10398
10399 set_it_insn_type (IT_INSN);
10400 now_it.mask = (inst.instruction & 0xf) | 0x10;
10401 now_it.cc = cond;
10402 now_it.warn_deprecated = FALSE;
10403
10404 /* If the condition is a negative condition, invert the mask. */
10405 if ((cond & 0x1) == 0x0)
10406 {
10407 unsigned int mask = inst.instruction & 0x000f;
10408
10409 if ((mask & 0x7) == 0)
10410 {
10411 /* No conversion needed. */
10412 now_it.block_length = 1;
10413 }
10414 else if ((mask & 0x3) == 0)
10415 {
10416 mask ^= 0x8;
10417 now_it.block_length = 2;
10418 }
10419 else if ((mask & 0x1) == 0)
10420 {
10421 mask ^= 0xC;
10422 now_it.block_length = 3;
10423 }
10424 else
10425 {
10426 mask ^= 0xE;
10427 now_it.block_length = 4;
10428 }
10429
10430 inst.instruction &= 0xfff0;
10431 inst.instruction |= mask;
10432 }
10433
10434 inst.instruction |= cond << 4;
10435 }
10436
10437 /* Helper function used for both push/pop and ldm/stm. */
10438 static void
10439 encode_thumb2_ldmstm (int base, unsigned mask, bfd_boolean writeback)
10440 {
10441 bfd_boolean load;
10442
10443 load = (inst.instruction & (1 << 20)) != 0;
10444
10445 if (mask & (1 << 13))
10446 inst.error = _("SP not allowed in register list");
10447
10448 if ((mask & (1 << base)) != 0
10449 && writeback)
10450 inst.error = _("having the base register in the register list when "
10451 "using write back is UNPREDICTABLE");
10452
10453 if (load)
10454 {
10455 if (mask & (1 << 15))
10456 {
10457 if (mask & (1 << 14))
10458 inst.error = _("LR and PC should not both be in register list");
10459 else
10460 set_it_insn_type_last ();
10461 }
10462 }
10463 else
10464 {
10465 if (mask & (1 << 15))
10466 inst.error = _("PC not allowed in register list");
10467 }
10468
10469 if ((mask & (mask - 1)) == 0)
10470 {
10471 /* Single register transfers implemented as str/ldr. */
10472 if (writeback)
10473 {
10474 if (inst.instruction & (1 << 23))
10475 inst.instruction = 0x00000b04; /* ia! -> [base], #4 */
10476 else
10477 inst.instruction = 0x00000d04; /* db! -> [base, #-4]! */
10478 }
10479 else
10480 {
10481 if (inst.instruction & (1 << 23))
10482 inst.instruction = 0x00800000; /* ia -> [base] */
10483 else
10484 inst.instruction = 0x00000c04; /* db -> [base, #-4] */
10485 }
10486
10487 inst.instruction |= 0xf8400000;
10488 if (load)
10489 inst.instruction |= 0x00100000;
10490
10491 mask = ffs (mask) - 1;
10492 mask <<= 12;
10493 }
10494 else if (writeback)
10495 inst.instruction |= WRITE_BACK;
10496
10497 inst.instruction |= mask;
10498 inst.instruction |= base << 16;
10499 }
10500
10501 static void
10502 do_t_ldmstm (void)
10503 {
10504 /* This really doesn't seem worth it. */
10505 constraint (inst.reloc.type != BFD_RELOC_UNUSED,
10506 _("expression too complex"));
10507 constraint (inst.operands[1].writeback,
10508 _("Thumb load/store multiple does not support {reglist}^"));
10509
10510 if (unified_syntax)
10511 {
10512 bfd_boolean narrow;
10513 unsigned mask;
10514
10515 narrow = FALSE;
10516 /* See if we can use a 16-bit instruction. */
10517 if (inst.instruction < 0xffff /* not ldmdb/stmdb */
10518 && inst.size_req != 4
10519 && !(inst.operands[1].imm & ~0xff))
10520 {
10521 mask = 1 << inst.operands[0].reg;
10522
10523 if (inst.operands[0].reg <= 7)
10524 {
10525 if (inst.instruction == T_MNEM_stmia
10526 ? inst.operands[0].writeback
10527 : (inst.operands[0].writeback
10528 == !(inst.operands[1].imm & mask)))
10529 {
10530 if (inst.instruction == T_MNEM_stmia
10531 && (inst.operands[1].imm & mask)
10532 && (inst.operands[1].imm & (mask - 1)))
10533 as_warn (_("value stored for r%d is UNKNOWN"),
10534 inst.operands[0].reg);
10535
10536 inst.instruction = THUMB_OP16 (inst.instruction);
10537 inst.instruction |= inst.operands[0].reg << 8;
10538 inst.instruction |= inst.operands[1].imm;
10539 narrow = TRUE;
10540 }
10541 else if ((inst.operands[1].imm & (inst.operands[1].imm-1)) == 0)
10542 {
10543 /* This means 1 register in reg list one of 3 situations:
10544 1. Instruction is stmia, but without writeback.
10545 2. lmdia without writeback, but with Rn not in
10546 reglist.
10547 3. ldmia with writeback, but with Rn in reglist.
10548 Case 3 is UNPREDICTABLE behaviour, so we handle
10549 case 1 and 2 which can be converted into a 16-bit
10550 str or ldr. The SP cases are handled below. */
10551 unsigned long opcode;
10552 /* First, record an error for Case 3. */
10553 if (inst.operands[1].imm & mask
10554 && inst.operands[0].writeback)
10555 inst.error =
10556 _("having the base register in the register list when "
10557 "using write back is UNPREDICTABLE");
10558
10559 opcode = (inst.instruction == T_MNEM_stmia ? T_MNEM_str
10560 : T_MNEM_ldr);
10561 inst.instruction = THUMB_OP16 (opcode);
10562 inst.instruction |= inst.operands[0].reg << 3;
10563 inst.instruction |= (ffs (inst.operands[1].imm)-1);
10564 narrow = TRUE;
10565 }
10566 }
10567 else if (inst.operands[0] .reg == REG_SP)
10568 {
10569 if (inst.operands[0].writeback)
10570 {
10571 inst.instruction =
10572 THUMB_OP16 (inst.instruction == T_MNEM_stmia
10573 ? T_MNEM_push : T_MNEM_pop);
10574 inst.instruction |= inst.operands[1].imm;
10575 narrow = TRUE;
10576 }
10577 else if ((inst.operands[1].imm & (inst.operands[1].imm-1)) == 0)
10578 {
10579 inst.instruction =
10580 THUMB_OP16 (inst.instruction == T_MNEM_stmia
10581 ? T_MNEM_str_sp : T_MNEM_ldr_sp);
10582 inst.instruction |= ((ffs (inst.operands[1].imm)-1) << 8);
10583 narrow = TRUE;
10584 }
10585 }
10586 }
10587
10588 if (!narrow)
10589 {
10590 if (inst.instruction < 0xffff)
10591 inst.instruction = THUMB_OP32 (inst.instruction);
10592
10593 encode_thumb2_ldmstm (inst.operands[0].reg, inst.operands[1].imm,
10594 inst.operands[0].writeback);
10595 }
10596 }
10597 else
10598 {
10599 constraint (inst.operands[0].reg > 7
10600 || (inst.operands[1].imm & ~0xff), BAD_HIREG);
10601 constraint (inst.instruction != T_MNEM_ldmia
10602 && inst.instruction != T_MNEM_stmia,
10603 _("Thumb-2 instruction only valid in unified syntax"));
10604 if (inst.instruction == T_MNEM_stmia)
10605 {
10606 if (!inst.operands[0].writeback)
10607 as_warn (_("this instruction will write back the base register"));
10608 if ((inst.operands[1].imm & (1 << inst.operands[0].reg))
10609 && (inst.operands[1].imm & ((1 << inst.operands[0].reg) - 1)))
10610 as_warn (_("value stored for r%d is UNKNOWN"),
10611 inst.operands[0].reg);
10612 }
10613 else
10614 {
10615 if (!inst.operands[0].writeback
10616 && !(inst.operands[1].imm & (1 << inst.operands[0].reg)))
10617 as_warn (_("this instruction will write back the base register"));
10618 else if (inst.operands[0].writeback
10619 && (inst.operands[1].imm & (1 << inst.operands[0].reg)))
10620 as_warn (_("this instruction will not write back the base register"));
10621 }
10622
10623 inst.instruction = THUMB_OP16 (inst.instruction);
10624 inst.instruction |= inst.operands[0].reg << 8;
10625 inst.instruction |= inst.operands[1].imm;
10626 }
10627 }
10628
10629 static void
10630 do_t_ldrex (void)
10631 {
10632 constraint (!inst.operands[1].isreg || !inst.operands[1].preind
10633 || inst.operands[1].postind || inst.operands[1].writeback
10634 || inst.operands[1].immisreg || inst.operands[1].shifted
10635 || inst.operands[1].negative,
10636 BAD_ADDR_MODE);
10637
10638 constraint ((inst.operands[1].reg == REG_PC), BAD_PC);
10639
10640 inst.instruction |= inst.operands[0].reg << 12;
10641 inst.instruction |= inst.operands[1].reg << 16;
10642 inst.reloc.type = BFD_RELOC_ARM_T32_OFFSET_U8;
10643 }
10644
10645 static void
10646 do_t_ldrexd (void)
10647 {
10648 if (!inst.operands[1].present)
10649 {
10650 constraint (inst.operands[0].reg == REG_LR,
10651 _("r14 not allowed as first register "
10652 "when second register is omitted"));
10653 inst.operands[1].reg = inst.operands[0].reg + 1;
10654 }
10655 constraint (inst.operands[0].reg == inst.operands[1].reg,
10656 BAD_OVERLAP);
10657
10658 inst.instruction |= inst.operands[0].reg << 12;
10659 inst.instruction |= inst.operands[1].reg << 8;
10660 inst.instruction |= inst.operands[2].reg << 16;
10661 }
10662
10663 static void
10664 do_t_ldst (void)
10665 {
10666 unsigned long opcode;
10667 int Rn;
10668
10669 if (inst.operands[0].isreg
10670 && !inst.operands[0].preind
10671 && inst.operands[0].reg == REG_PC)
10672 set_it_insn_type_last ();
10673
10674 opcode = inst.instruction;
10675 if (unified_syntax)
10676 {
10677 if (!inst.operands[1].isreg)
10678 {
10679 if (opcode <= 0xffff)
10680 inst.instruction = THUMB_OP32 (opcode);
10681 if (move_or_literal_pool (0, /*thumb_p=*/TRUE, /*mode_3=*/FALSE))
10682 return;
10683 }
10684 if (inst.operands[1].isreg
10685 && !inst.operands[1].writeback
10686 && !inst.operands[1].shifted && !inst.operands[1].postind
10687 && !inst.operands[1].negative && inst.operands[0].reg <= 7
10688 && opcode <= 0xffff
10689 && inst.size_req != 4)
10690 {
10691 /* Insn may have a 16-bit form. */
10692 Rn = inst.operands[1].reg;
10693 if (inst.operands[1].immisreg)
10694 {
10695 inst.instruction = THUMB_OP16 (opcode);
10696 /* [Rn, Rik] */
10697 if (Rn <= 7 && inst.operands[1].imm <= 7)
10698 goto op16;
10699 else if (opcode != T_MNEM_ldr && opcode != T_MNEM_str)
10700 reject_bad_reg (inst.operands[1].imm);
10701 }
10702 else if ((Rn <= 7 && opcode != T_MNEM_ldrsh
10703 && opcode != T_MNEM_ldrsb)
10704 || ((Rn == REG_PC || Rn == REG_SP) && opcode == T_MNEM_ldr)
10705 || (Rn == REG_SP && opcode == T_MNEM_str))
10706 {
10707 /* [Rn, #const] */
10708 if (Rn > 7)
10709 {
10710 if (Rn == REG_PC)
10711 {
10712 if (inst.reloc.pc_rel)
10713 opcode = T_MNEM_ldr_pc2;
10714 else
10715 opcode = T_MNEM_ldr_pc;
10716 }
10717 else
10718 {
10719 if (opcode == T_MNEM_ldr)
10720 opcode = T_MNEM_ldr_sp;
10721 else
10722 opcode = T_MNEM_str_sp;
10723 }
10724 inst.instruction = inst.operands[0].reg << 8;
10725 }
10726 else
10727 {
10728 inst.instruction = inst.operands[0].reg;
10729 inst.instruction |= inst.operands[1].reg << 3;
10730 }
10731 inst.instruction |= THUMB_OP16 (opcode);
10732 if (inst.size_req == 2)
10733 inst.reloc.type = BFD_RELOC_ARM_THUMB_OFFSET;
10734 else
10735 inst.relax = opcode;
10736 return;
10737 }
10738 }
10739 /* Definitely a 32-bit variant. */
10740
10741 /* Warning for Erratum 752419. */
10742 if (opcode == T_MNEM_ldr
10743 && inst.operands[0].reg == REG_SP
10744 && inst.operands[1].writeback == 1
10745 && !inst.operands[1].immisreg)
10746 {
10747 if (no_cpu_selected ()
10748 || (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v7)
10749 && !ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v7a)
10750 && !ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v7r)))
10751 as_warn (_("This instruction may be unpredictable "
10752 "if executed on M-profile cores "
10753 "with interrupts enabled."));
10754 }
10755
10756 /* Do some validations regarding addressing modes. */
10757 if (inst.operands[1].immisreg)
10758 reject_bad_reg (inst.operands[1].imm);
10759
10760 constraint (inst.operands[1].writeback == 1
10761 && inst.operands[0].reg == inst.operands[1].reg,
10762 BAD_OVERLAP);
10763
10764 inst.instruction = THUMB_OP32 (opcode);
10765 inst.instruction |= inst.operands[0].reg << 12;
10766 encode_thumb32_addr_mode (1, /*is_t=*/FALSE, /*is_d=*/FALSE);
10767 check_ldr_r15_aligned ();
10768 return;
10769 }
10770
10771 constraint (inst.operands[0].reg > 7, BAD_HIREG);
10772
10773 if (inst.instruction == T_MNEM_ldrsh || inst.instruction == T_MNEM_ldrsb)
10774 {
10775 /* Only [Rn,Rm] is acceptable. */
10776 constraint (inst.operands[1].reg > 7 || inst.operands[1].imm > 7, BAD_HIREG);
10777 constraint (!inst.operands[1].isreg || !inst.operands[1].immisreg
10778 || inst.operands[1].postind || inst.operands[1].shifted
10779 || inst.operands[1].negative,
10780 _("Thumb does not support this addressing mode"));
10781 inst.instruction = THUMB_OP16 (inst.instruction);
10782 goto op16;
10783 }
10784
10785 inst.instruction = THUMB_OP16 (inst.instruction);
10786 if (!inst.operands[1].isreg)
10787 if (move_or_literal_pool (0, /*thumb_p=*/TRUE, /*mode_3=*/FALSE))
10788 return;
10789
10790 constraint (!inst.operands[1].preind
10791 || inst.operands[1].shifted
10792 || inst.operands[1].writeback,
10793 _("Thumb does not support this addressing mode"));
10794 if (inst.operands[1].reg == REG_PC || inst.operands[1].reg == REG_SP)
10795 {
10796 constraint (inst.instruction & 0x0600,
10797 _("byte or halfword not valid for base register"));
10798 constraint (inst.operands[1].reg == REG_PC
10799 && !(inst.instruction & THUMB_LOAD_BIT),
10800 _("r15 based store not allowed"));
10801 constraint (inst.operands[1].immisreg,
10802 _("invalid base register for register offset"));
10803
10804 if (inst.operands[1].reg == REG_PC)
10805 inst.instruction = T_OPCODE_LDR_PC;
10806 else if (inst.instruction & THUMB_LOAD_BIT)
10807 inst.instruction = T_OPCODE_LDR_SP;
10808 else
10809 inst.instruction = T_OPCODE_STR_SP;
10810
10811 inst.instruction |= inst.operands[0].reg << 8;
10812 inst.reloc.type = BFD_RELOC_ARM_THUMB_OFFSET;
10813 return;
10814 }
10815
10816 constraint (inst.operands[1].reg > 7, BAD_HIREG);
10817 if (!inst.operands[1].immisreg)
10818 {
10819 /* Immediate offset. */
10820 inst.instruction |= inst.operands[0].reg;
10821 inst.instruction |= inst.operands[1].reg << 3;
10822 inst.reloc.type = BFD_RELOC_ARM_THUMB_OFFSET;
10823 return;
10824 }
10825
10826 /* Register offset. */
10827 constraint (inst.operands[1].imm > 7, BAD_HIREG);
10828 constraint (inst.operands[1].negative,
10829 _("Thumb does not support this addressing mode"));
10830
10831 op16:
10832 switch (inst.instruction)
10833 {
10834 case T_OPCODE_STR_IW: inst.instruction = T_OPCODE_STR_RW; break;
10835 case T_OPCODE_STR_IH: inst.instruction = T_OPCODE_STR_RH; break;
10836 case T_OPCODE_STR_IB: inst.instruction = T_OPCODE_STR_RB; break;
10837 case T_OPCODE_LDR_IW: inst.instruction = T_OPCODE_LDR_RW; break;
10838 case T_OPCODE_LDR_IH: inst.instruction = T_OPCODE_LDR_RH; break;
10839 case T_OPCODE_LDR_IB: inst.instruction = T_OPCODE_LDR_RB; break;
10840 case 0x5600 /* ldrsb */:
10841 case 0x5e00 /* ldrsh */: break;
10842 default: abort ();
10843 }
10844
10845 inst.instruction |= inst.operands[0].reg;
10846 inst.instruction |= inst.operands[1].reg << 3;
10847 inst.instruction |= inst.operands[1].imm << 6;
10848 }
10849
10850 static void
10851 do_t_ldstd (void)
10852 {
10853 if (!inst.operands[1].present)
10854 {
10855 inst.operands[1].reg = inst.operands[0].reg + 1;
10856 constraint (inst.operands[0].reg == REG_LR,
10857 _("r14 not allowed here"));
10858 constraint (inst.operands[0].reg == REG_R12,
10859 _("r12 not allowed here"));
10860 }
10861
10862 if (inst.operands[2].writeback
10863 && (inst.operands[0].reg == inst.operands[2].reg
10864 || inst.operands[1].reg == inst.operands[2].reg))
10865 as_warn (_("base register written back, and overlaps "
10866 "one of transfer registers"));
10867
10868 inst.instruction |= inst.operands[0].reg << 12;
10869 inst.instruction |= inst.operands[1].reg << 8;
10870 encode_thumb32_addr_mode (2, /*is_t=*/FALSE, /*is_d=*/TRUE);
10871 }
10872
10873 static void
10874 do_t_ldstt (void)
10875 {
10876 inst.instruction |= inst.operands[0].reg << 12;
10877 encode_thumb32_addr_mode (1, /*is_t=*/TRUE, /*is_d=*/FALSE);
10878 }
10879
10880 static void
10881 do_t_mla (void)
10882 {
10883 unsigned Rd, Rn, Rm, Ra;
10884
10885 Rd = inst.operands[0].reg;
10886 Rn = inst.operands[1].reg;
10887 Rm = inst.operands[2].reg;
10888 Ra = inst.operands[3].reg;
10889
10890 reject_bad_reg (Rd);
10891 reject_bad_reg (Rn);
10892 reject_bad_reg (Rm);
10893 reject_bad_reg (Ra);
10894
10895 inst.instruction |= Rd << 8;
10896 inst.instruction |= Rn << 16;
10897 inst.instruction |= Rm;
10898 inst.instruction |= Ra << 12;
10899 }
10900
10901 static void
10902 do_t_mlal (void)
10903 {
10904 unsigned RdLo, RdHi, Rn, Rm;
10905
10906 RdLo = inst.operands[0].reg;
10907 RdHi = inst.operands[1].reg;
10908 Rn = inst.operands[2].reg;
10909 Rm = inst.operands[3].reg;
10910
10911 reject_bad_reg (RdLo);
10912 reject_bad_reg (RdHi);
10913 reject_bad_reg (Rn);
10914 reject_bad_reg (Rm);
10915
10916 inst.instruction |= RdLo << 12;
10917 inst.instruction |= RdHi << 8;
10918 inst.instruction |= Rn << 16;
10919 inst.instruction |= Rm;
10920 }
10921
10922 static void
10923 do_t_mov_cmp (void)
10924 {
10925 unsigned Rn, Rm;
10926
10927 Rn = inst.operands[0].reg;
10928 Rm = inst.operands[1].reg;
10929
10930 if (Rn == REG_PC)
10931 set_it_insn_type_last ();
10932
10933 if (unified_syntax)
10934 {
10935 int r0off = (inst.instruction == T_MNEM_mov
10936 || inst.instruction == T_MNEM_movs) ? 8 : 16;
10937 unsigned long opcode;
10938 bfd_boolean narrow;
10939 bfd_boolean low_regs;
10940
10941 low_regs = (Rn <= 7 && Rm <= 7);
10942 opcode = inst.instruction;
10943 if (in_it_block ())
10944 narrow = opcode != T_MNEM_movs;
10945 else
10946 narrow = opcode != T_MNEM_movs || low_regs;
10947 if (inst.size_req == 4
10948 || inst.operands[1].shifted)
10949 narrow = FALSE;
10950
10951 /* MOVS PC, LR is encoded as SUBS PC, LR, #0. */
10952 if (opcode == T_MNEM_movs && inst.operands[1].isreg
10953 && !inst.operands[1].shifted
10954 && Rn == REG_PC
10955 && Rm == REG_LR)
10956 {
10957 inst.instruction = T2_SUBS_PC_LR;
10958 return;
10959 }
10960
10961 if (opcode == T_MNEM_cmp)
10962 {
10963 constraint (Rn == REG_PC, BAD_PC);
10964 if (narrow)
10965 {
10966 /* In the Thumb-2 ISA, use of R13 as Rm is deprecated,
10967 but valid. */
10968 warn_deprecated_sp (Rm);
10969 /* R15 was documented as a valid choice for Rm in ARMv6,
10970 but as UNPREDICTABLE in ARMv7. ARM's proprietary
10971 tools reject R15, so we do too. */
10972 constraint (Rm == REG_PC, BAD_PC);
10973 }
10974 else
10975 reject_bad_reg (Rm);
10976 }
10977 else if (opcode == T_MNEM_mov
10978 || opcode == T_MNEM_movs)
10979 {
10980 if (inst.operands[1].isreg)
10981 {
10982 if (opcode == T_MNEM_movs)
10983 {
10984 reject_bad_reg (Rn);
10985 reject_bad_reg (Rm);
10986 }
10987 else if (narrow)
10988 {
10989 /* This is mov.n. */
10990 if ((Rn == REG_SP || Rn == REG_PC)
10991 && (Rm == REG_SP || Rm == REG_PC))
10992 {
10993 as_warn (_("Use of r%u as a source register is "
10994 "deprecated when r%u is the destination "
10995 "register."), Rm, Rn);
10996 }
10997 }
10998 else
10999 {
11000 /* This is mov.w. */
11001 constraint (Rn == REG_PC, BAD_PC);
11002 constraint (Rm == REG_PC, BAD_PC);
11003 constraint (Rn == REG_SP && Rm == REG_SP, BAD_SP);
11004 }
11005 }
11006 else
11007 reject_bad_reg (Rn);
11008 }
11009
11010 if (!inst.operands[1].isreg)
11011 {
11012 /* Immediate operand. */
11013 if (!in_it_block () && opcode == T_MNEM_mov)
11014 narrow = 0;
11015 if (low_regs && narrow)
11016 {
11017 inst.instruction = THUMB_OP16 (opcode);
11018 inst.instruction |= Rn << 8;
11019 if (inst.size_req == 2)
11020 inst.reloc.type = BFD_RELOC_ARM_THUMB_IMM;
11021 else
11022 inst.relax = opcode;
11023 }
11024 else
11025 {
11026 inst.instruction = THUMB_OP32 (inst.instruction);
11027 inst.instruction = (inst.instruction & 0xe1ffffff) | 0x10000000;
11028 inst.instruction |= Rn << r0off;
11029 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
11030 }
11031 }
11032 else if (inst.operands[1].shifted && inst.operands[1].immisreg
11033 && (inst.instruction == T_MNEM_mov
11034 || inst.instruction == T_MNEM_movs))
11035 {
11036 /* Register shifts are encoded as separate shift instructions. */
11037 bfd_boolean flags = (inst.instruction == T_MNEM_movs);
11038
11039 if (in_it_block ())
11040 narrow = !flags;
11041 else
11042 narrow = flags;
11043
11044 if (inst.size_req == 4)
11045 narrow = FALSE;
11046
11047 if (!low_regs || inst.operands[1].imm > 7)
11048 narrow = FALSE;
11049
11050 if (Rn != Rm)
11051 narrow = FALSE;
11052
11053 switch (inst.operands[1].shift_kind)
11054 {
11055 case SHIFT_LSL:
11056 opcode = narrow ? T_OPCODE_LSL_R : THUMB_OP32 (T_MNEM_lsl);
11057 break;
11058 case SHIFT_ASR:
11059 opcode = narrow ? T_OPCODE_ASR_R : THUMB_OP32 (T_MNEM_asr);
11060 break;
11061 case SHIFT_LSR:
11062 opcode = narrow ? T_OPCODE_LSR_R : THUMB_OP32 (T_MNEM_lsr);
11063 break;
11064 case SHIFT_ROR:
11065 opcode = narrow ? T_OPCODE_ROR_R : THUMB_OP32 (T_MNEM_ror);
11066 break;
11067 default:
11068 abort ();
11069 }
11070
11071 inst.instruction = opcode;
11072 if (narrow)
11073 {
11074 inst.instruction |= Rn;
11075 inst.instruction |= inst.operands[1].imm << 3;
11076 }
11077 else
11078 {
11079 if (flags)
11080 inst.instruction |= CONDS_BIT;
11081
11082 inst.instruction |= Rn << 8;
11083 inst.instruction |= Rm << 16;
11084 inst.instruction |= inst.operands[1].imm;
11085 }
11086 }
11087 else if (!narrow)
11088 {
11089 /* Some mov with immediate shift have narrow variants.
11090 Register shifts are handled above. */
11091 if (low_regs && inst.operands[1].shifted
11092 && (inst.instruction == T_MNEM_mov
11093 || inst.instruction == T_MNEM_movs))
11094 {
11095 if (in_it_block ())
11096 narrow = (inst.instruction == T_MNEM_mov);
11097 else
11098 narrow = (inst.instruction == T_MNEM_movs);
11099 }
11100
11101 if (narrow)
11102 {
11103 switch (inst.operands[1].shift_kind)
11104 {
11105 case SHIFT_LSL: inst.instruction = T_OPCODE_LSL_I; break;
11106 case SHIFT_LSR: inst.instruction = T_OPCODE_LSR_I; break;
11107 case SHIFT_ASR: inst.instruction = T_OPCODE_ASR_I; break;
11108 default: narrow = FALSE; break;
11109 }
11110 }
11111
11112 if (narrow)
11113 {
11114 inst.instruction |= Rn;
11115 inst.instruction |= Rm << 3;
11116 inst.reloc.type = BFD_RELOC_ARM_THUMB_SHIFT;
11117 }
11118 else
11119 {
11120 inst.instruction = THUMB_OP32 (inst.instruction);
11121 inst.instruction |= Rn << r0off;
11122 encode_thumb32_shifted_operand (1);
11123 }
11124 }
11125 else
11126 switch (inst.instruction)
11127 {
11128 case T_MNEM_mov:
11129 /* In v4t or v5t a move of two lowregs produces unpredictable
11130 results. Don't allow this. */
11131 if (low_regs)
11132 {
11133 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v6),
11134 "MOV Rd, Rs with two low registers is not "
11135 "permitted on this architecture");
11136 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used,
11137 arm_ext_v6);
11138 }
11139
11140 inst.instruction = T_OPCODE_MOV_HR;
11141 inst.instruction |= (Rn & 0x8) << 4;
11142 inst.instruction |= (Rn & 0x7);
11143 inst.instruction |= Rm << 3;
11144 break;
11145
11146 case T_MNEM_movs:
11147 /* We know we have low registers at this point.
11148 Generate LSLS Rd, Rs, #0. */
11149 inst.instruction = T_OPCODE_LSL_I;
11150 inst.instruction |= Rn;
11151 inst.instruction |= Rm << 3;
11152 break;
11153
11154 case T_MNEM_cmp:
11155 if (low_regs)
11156 {
11157 inst.instruction = T_OPCODE_CMP_LR;
11158 inst.instruction |= Rn;
11159 inst.instruction |= Rm << 3;
11160 }
11161 else
11162 {
11163 inst.instruction = T_OPCODE_CMP_HR;
11164 inst.instruction |= (Rn & 0x8) << 4;
11165 inst.instruction |= (Rn & 0x7);
11166 inst.instruction |= Rm << 3;
11167 }
11168 break;
11169 }
11170 return;
11171 }
11172
11173 inst.instruction = THUMB_OP16 (inst.instruction);
11174
11175 /* PR 10443: Do not silently ignore shifted operands. */
11176 constraint (inst.operands[1].shifted,
11177 _("shifts in CMP/MOV instructions are only supported in unified syntax"));
11178
11179 if (inst.operands[1].isreg)
11180 {
11181 if (Rn < 8 && Rm < 8)
11182 {
11183 /* A move of two lowregs is encoded as ADD Rd, Rs, #0
11184 since a MOV instruction produces unpredictable results. */
11185 if (inst.instruction == T_OPCODE_MOV_I8)
11186 inst.instruction = T_OPCODE_ADD_I3;
11187 else
11188 inst.instruction = T_OPCODE_CMP_LR;
11189
11190 inst.instruction |= Rn;
11191 inst.instruction |= Rm << 3;
11192 }
11193 else
11194 {
11195 if (inst.instruction == T_OPCODE_MOV_I8)
11196 inst.instruction = T_OPCODE_MOV_HR;
11197 else
11198 inst.instruction = T_OPCODE_CMP_HR;
11199 do_t_cpy ();
11200 }
11201 }
11202 else
11203 {
11204 constraint (Rn > 7,
11205 _("only lo regs allowed with immediate"));
11206 inst.instruction |= Rn << 8;
11207 inst.reloc.type = BFD_RELOC_ARM_THUMB_IMM;
11208 }
11209 }
11210
11211 static void
11212 do_t_mov16 (void)
11213 {
11214 unsigned Rd;
11215 bfd_vma imm;
11216 bfd_boolean top;
11217
11218 top = (inst.instruction & 0x00800000) != 0;
11219 if (inst.reloc.type == BFD_RELOC_ARM_MOVW)
11220 {
11221 constraint (top, _(":lower16: not allowed this instruction"));
11222 inst.reloc.type = BFD_RELOC_ARM_THUMB_MOVW;
11223 }
11224 else if (inst.reloc.type == BFD_RELOC_ARM_MOVT)
11225 {
11226 constraint (!top, _(":upper16: not allowed this instruction"));
11227 inst.reloc.type = BFD_RELOC_ARM_THUMB_MOVT;
11228 }
11229
11230 Rd = inst.operands[0].reg;
11231 reject_bad_reg (Rd);
11232
11233 inst.instruction |= Rd << 8;
11234 if (inst.reloc.type == BFD_RELOC_UNUSED)
11235 {
11236 imm = inst.reloc.exp.X_add_number;
11237 inst.instruction |= (imm & 0xf000) << 4;
11238 inst.instruction |= (imm & 0x0800) << 15;
11239 inst.instruction |= (imm & 0x0700) << 4;
11240 inst.instruction |= (imm & 0x00ff);
11241 }
11242 }
11243
11244 static void
11245 do_t_mvn_tst (void)
11246 {
11247 unsigned Rn, Rm;
11248
11249 Rn = inst.operands[0].reg;
11250 Rm = inst.operands[1].reg;
11251
11252 if (inst.instruction == T_MNEM_cmp
11253 || inst.instruction == T_MNEM_cmn)
11254 constraint (Rn == REG_PC, BAD_PC);
11255 else
11256 reject_bad_reg (Rn);
11257 reject_bad_reg (Rm);
11258
11259 if (unified_syntax)
11260 {
11261 int r0off = (inst.instruction == T_MNEM_mvn
11262 || inst.instruction == T_MNEM_mvns) ? 8 : 16;
11263 bfd_boolean narrow;
11264
11265 if (inst.size_req == 4
11266 || inst.instruction > 0xffff
11267 || inst.operands[1].shifted
11268 || Rn > 7 || Rm > 7)
11269 narrow = FALSE;
11270 else if (inst.instruction == T_MNEM_cmn
11271 || inst.instruction == T_MNEM_tst)
11272 narrow = TRUE;
11273 else if (THUMB_SETS_FLAGS (inst.instruction))
11274 narrow = !in_it_block ();
11275 else
11276 narrow = in_it_block ();
11277
11278 if (!inst.operands[1].isreg)
11279 {
11280 /* For an immediate, we always generate a 32-bit opcode;
11281 section relaxation will shrink it later if possible. */
11282 if (inst.instruction < 0xffff)
11283 inst.instruction = THUMB_OP32 (inst.instruction);
11284 inst.instruction = (inst.instruction & 0xe1ffffff) | 0x10000000;
11285 inst.instruction |= Rn << r0off;
11286 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
11287 }
11288 else
11289 {
11290 /* See if we can do this with a 16-bit instruction. */
11291 if (narrow)
11292 {
11293 inst.instruction = THUMB_OP16 (inst.instruction);
11294 inst.instruction |= Rn;
11295 inst.instruction |= Rm << 3;
11296 }
11297 else
11298 {
11299 constraint (inst.operands[1].shifted
11300 && inst.operands[1].immisreg,
11301 _("shift must be constant"));
11302 if (inst.instruction < 0xffff)
11303 inst.instruction = THUMB_OP32 (inst.instruction);
11304 inst.instruction |= Rn << r0off;
11305 encode_thumb32_shifted_operand (1);
11306 }
11307 }
11308 }
11309 else
11310 {
11311 constraint (inst.instruction > 0xffff
11312 || inst.instruction == T_MNEM_mvns, BAD_THUMB32);
11313 constraint (!inst.operands[1].isreg || inst.operands[1].shifted,
11314 _("unshifted register required"));
11315 constraint (Rn > 7 || Rm > 7,
11316 BAD_HIREG);
11317
11318 inst.instruction = THUMB_OP16 (inst.instruction);
11319 inst.instruction |= Rn;
11320 inst.instruction |= Rm << 3;
11321 }
11322 }
11323
11324 static void
11325 do_t_mrs (void)
11326 {
11327 unsigned Rd;
11328
11329 if (do_vfp_nsyn_mrs () == SUCCESS)
11330 return;
11331
11332 Rd = inst.operands[0].reg;
11333 reject_bad_reg (Rd);
11334 inst.instruction |= Rd << 8;
11335
11336 if (inst.operands[1].isreg)
11337 {
11338 unsigned br = inst.operands[1].reg;
11339 if (((br & 0x200) == 0) && ((br & 0xf000) != 0xf000))
11340 as_bad (_("bad register for mrs"));
11341
11342 inst.instruction |= br & (0xf << 16);
11343 inst.instruction |= (br & 0x300) >> 4;
11344 inst.instruction |= (br & SPSR_BIT) >> 2;
11345 }
11346 else
11347 {
11348 int flags = inst.operands[1].imm & (PSR_c|PSR_x|PSR_s|PSR_f|SPSR_BIT);
11349
11350 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_m))
11351 {
11352 /* PR gas/12698: The constraint is only applied for m_profile.
11353 If the user has specified -march=all, we want to ignore it as
11354 we are building for any CPU type, including non-m variants. */
11355 bfd_boolean m_profile = selected_cpu.core != arm_arch_any.core;
11356 constraint ((flags != 0) && m_profile, _("selected processor does "
11357 "not support requested special purpose register"));
11358 }
11359 else
11360 /* mrs only accepts APSR/CPSR/SPSR/CPSR_all/SPSR_all (for non-M profile
11361 devices). */
11362 constraint ((flags & ~SPSR_BIT) != (PSR_c|PSR_f),
11363 _("'APSR', 'CPSR' or 'SPSR' expected"));
11364
11365 inst.instruction |= (flags & SPSR_BIT) >> 2;
11366 inst.instruction |= inst.operands[1].imm & 0xff;
11367 inst.instruction |= 0xf0000;
11368 }
11369 }
11370
11371 static void
11372 do_t_msr (void)
11373 {
11374 int flags;
11375 unsigned Rn;
11376
11377 if (do_vfp_nsyn_msr () == SUCCESS)
11378 return;
11379
11380 constraint (!inst.operands[1].isreg,
11381 _("Thumb encoding does not support an immediate here"));
11382
11383 if (inst.operands[0].isreg)
11384 flags = (int)(inst.operands[0].reg);
11385 else
11386 flags = inst.operands[0].imm;
11387
11388 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_m))
11389 {
11390 int bits = inst.operands[0].imm & (PSR_c|PSR_x|PSR_s|PSR_f|SPSR_BIT);
11391
11392 /* PR gas/12698: The constraint is only applied for m_profile.
11393 If the user has specified -march=all, we want to ignore it as
11394 we are building for any CPU type, including non-m variants. */
11395 bfd_boolean m_profile = selected_cpu.core != arm_arch_any.core;
11396 constraint (((ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6_dsp)
11397 && (bits & ~(PSR_s | PSR_f)) != 0)
11398 || (!ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6_dsp)
11399 && bits != PSR_f)) && m_profile,
11400 _("selected processor does not support requested special "
11401 "purpose register"));
11402 }
11403 else
11404 constraint ((flags & 0xff) != 0, _("selected processor does not support "
11405 "requested special purpose register"));
11406
11407 Rn = inst.operands[1].reg;
11408 reject_bad_reg (Rn);
11409
11410 inst.instruction |= (flags & SPSR_BIT) >> 2;
11411 inst.instruction |= (flags & 0xf0000) >> 8;
11412 inst.instruction |= (flags & 0x300) >> 4;
11413 inst.instruction |= (flags & 0xff);
11414 inst.instruction |= Rn << 16;
11415 }
11416
11417 static void
11418 do_t_mul (void)
11419 {
11420 bfd_boolean narrow;
11421 unsigned Rd, Rn, Rm;
11422
11423 if (!inst.operands[2].present)
11424 inst.operands[2].reg = inst.operands[0].reg;
11425
11426 Rd = inst.operands[0].reg;
11427 Rn = inst.operands[1].reg;
11428 Rm = inst.operands[2].reg;
11429
11430 if (unified_syntax)
11431 {
11432 if (inst.size_req == 4
11433 || (Rd != Rn
11434 && Rd != Rm)
11435 || Rn > 7
11436 || Rm > 7)
11437 narrow = FALSE;
11438 else if (inst.instruction == T_MNEM_muls)
11439 narrow = !in_it_block ();
11440 else
11441 narrow = in_it_block ();
11442 }
11443 else
11444 {
11445 constraint (inst.instruction == T_MNEM_muls, BAD_THUMB32);
11446 constraint (Rn > 7 || Rm > 7,
11447 BAD_HIREG);
11448 narrow = TRUE;
11449 }
11450
11451 if (narrow)
11452 {
11453 /* 16-bit MULS/Conditional MUL. */
11454 inst.instruction = THUMB_OP16 (inst.instruction);
11455 inst.instruction |= Rd;
11456
11457 if (Rd == Rn)
11458 inst.instruction |= Rm << 3;
11459 else if (Rd == Rm)
11460 inst.instruction |= Rn << 3;
11461 else
11462 constraint (1, _("dest must overlap one source register"));
11463 }
11464 else
11465 {
11466 constraint (inst.instruction != T_MNEM_mul,
11467 _("Thumb-2 MUL must not set flags"));
11468 /* 32-bit MUL. */
11469 inst.instruction = THUMB_OP32 (inst.instruction);
11470 inst.instruction |= Rd << 8;
11471 inst.instruction |= Rn << 16;
11472 inst.instruction |= Rm << 0;
11473
11474 reject_bad_reg (Rd);
11475 reject_bad_reg (Rn);
11476 reject_bad_reg (Rm);
11477 }
11478 }
11479
11480 static void
11481 do_t_mull (void)
11482 {
11483 unsigned RdLo, RdHi, Rn, Rm;
11484
11485 RdLo = inst.operands[0].reg;
11486 RdHi = inst.operands[1].reg;
11487 Rn = inst.operands[2].reg;
11488 Rm = inst.operands[3].reg;
11489
11490 reject_bad_reg (RdLo);
11491 reject_bad_reg (RdHi);
11492 reject_bad_reg (Rn);
11493 reject_bad_reg (Rm);
11494
11495 inst.instruction |= RdLo << 12;
11496 inst.instruction |= RdHi << 8;
11497 inst.instruction |= Rn << 16;
11498 inst.instruction |= Rm;
11499
11500 if (RdLo == RdHi)
11501 as_tsktsk (_("rdhi and rdlo must be different"));
11502 }
11503
11504 static void
11505 do_t_nop (void)
11506 {
11507 set_it_insn_type (NEUTRAL_IT_INSN);
11508
11509 if (unified_syntax)
11510 {
11511 if (inst.size_req == 4 || inst.operands[0].imm > 15)
11512 {
11513 inst.instruction = THUMB_OP32 (inst.instruction);
11514 inst.instruction |= inst.operands[0].imm;
11515 }
11516 else
11517 {
11518 /* PR9722: Check for Thumb2 availability before
11519 generating a thumb2 nop instruction. */
11520 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6t2))
11521 {
11522 inst.instruction = THUMB_OP16 (inst.instruction);
11523 inst.instruction |= inst.operands[0].imm << 4;
11524 }
11525 else
11526 inst.instruction = 0x46c0;
11527 }
11528 }
11529 else
11530 {
11531 constraint (inst.operands[0].present,
11532 _("Thumb does not support NOP with hints"));
11533 inst.instruction = 0x46c0;
11534 }
11535 }
11536
11537 static void
11538 do_t_neg (void)
11539 {
11540 if (unified_syntax)
11541 {
11542 bfd_boolean narrow;
11543
11544 if (THUMB_SETS_FLAGS (inst.instruction))
11545 narrow = !in_it_block ();
11546 else
11547 narrow = in_it_block ();
11548 if (inst.operands[0].reg > 7 || inst.operands[1].reg > 7)
11549 narrow = FALSE;
11550 if (inst.size_req == 4)
11551 narrow = FALSE;
11552
11553 if (!narrow)
11554 {
11555 inst.instruction = THUMB_OP32 (inst.instruction);
11556 inst.instruction |= inst.operands[0].reg << 8;
11557 inst.instruction |= inst.operands[1].reg << 16;
11558 }
11559 else
11560 {
11561 inst.instruction = THUMB_OP16 (inst.instruction);
11562 inst.instruction |= inst.operands[0].reg;
11563 inst.instruction |= inst.operands[1].reg << 3;
11564 }
11565 }
11566 else
11567 {
11568 constraint (inst.operands[0].reg > 7 || inst.operands[1].reg > 7,
11569 BAD_HIREG);
11570 constraint (THUMB_SETS_FLAGS (inst.instruction), BAD_THUMB32);
11571
11572 inst.instruction = THUMB_OP16 (inst.instruction);
11573 inst.instruction |= inst.operands[0].reg;
11574 inst.instruction |= inst.operands[1].reg << 3;
11575 }
11576 }
11577
11578 static void
11579 do_t_orn (void)
11580 {
11581 unsigned Rd, Rn;
11582
11583 Rd = inst.operands[0].reg;
11584 Rn = inst.operands[1].present ? inst.operands[1].reg : Rd;
11585
11586 reject_bad_reg (Rd);
11587 /* Rn == REG_SP is unpredictable; Rn == REG_PC is MVN. */
11588 reject_bad_reg (Rn);
11589
11590 inst.instruction |= Rd << 8;
11591 inst.instruction |= Rn << 16;
11592
11593 if (!inst.operands[2].isreg)
11594 {
11595 inst.instruction = (inst.instruction & 0xe1ffffff) | 0x10000000;
11596 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
11597 }
11598 else
11599 {
11600 unsigned Rm;
11601
11602 Rm = inst.operands[2].reg;
11603 reject_bad_reg (Rm);
11604
11605 constraint (inst.operands[2].shifted
11606 && inst.operands[2].immisreg,
11607 _("shift must be constant"));
11608 encode_thumb32_shifted_operand (2);
11609 }
11610 }
11611
11612 static void
11613 do_t_pkhbt (void)
11614 {
11615 unsigned Rd, Rn, Rm;
11616
11617 Rd = inst.operands[0].reg;
11618 Rn = inst.operands[1].reg;
11619 Rm = inst.operands[2].reg;
11620
11621 reject_bad_reg (Rd);
11622 reject_bad_reg (Rn);
11623 reject_bad_reg (Rm);
11624
11625 inst.instruction |= Rd << 8;
11626 inst.instruction |= Rn << 16;
11627 inst.instruction |= Rm;
11628 if (inst.operands[3].present)
11629 {
11630 unsigned int val = inst.reloc.exp.X_add_number;
11631 constraint (inst.reloc.exp.X_op != O_constant,
11632 _("expression too complex"));
11633 inst.instruction |= (val & 0x1c) << 10;
11634 inst.instruction |= (val & 0x03) << 6;
11635 }
11636 }
11637
11638 static void
11639 do_t_pkhtb (void)
11640 {
11641 if (!inst.operands[3].present)
11642 {
11643 unsigned Rtmp;
11644
11645 inst.instruction &= ~0x00000020;
11646
11647 /* PR 10168. Swap the Rm and Rn registers. */
11648 Rtmp = inst.operands[1].reg;
11649 inst.operands[1].reg = inst.operands[2].reg;
11650 inst.operands[2].reg = Rtmp;
11651 }
11652 do_t_pkhbt ();
11653 }
11654
11655 static void
11656 do_t_pld (void)
11657 {
11658 if (inst.operands[0].immisreg)
11659 reject_bad_reg (inst.operands[0].imm);
11660
11661 encode_thumb32_addr_mode (0, /*is_t=*/FALSE, /*is_d=*/FALSE);
11662 }
11663
11664 static void
11665 do_t_push_pop (void)
11666 {
11667 unsigned mask;
11668
11669 constraint (inst.operands[0].writeback,
11670 _("push/pop do not support {reglist}^"));
11671 constraint (inst.reloc.type != BFD_RELOC_UNUSED,
11672 _("expression too complex"));
11673
11674 mask = inst.operands[0].imm;
11675 if (inst.size_req != 4 && (mask & ~0xff) == 0)
11676 inst.instruction = THUMB_OP16 (inst.instruction) | mask;
11677 else if (inst.size_req != 4
11678 && (mask & ~0xff) == (1 << (inst.instruction == T_MNEM_push
11679 ? REG_LR : REG_PC)))
11680 {
11681 inst.instruction = THUMB_OP16 (inst.instruction);
11682 inst.instruction |= THUMB_PP_PC_LR;
11683 inst.instruction |= mask & 0xff;
11684 }
11685 else if (unified_syntax)
11686 {
11687 inst.instruction = THUMB_OP32 (inst.instruction);
11688 encode_thumb2_ldmstm (13, mask, TRUE);
11689 }
11690 else
11691 {
11692 inst.error = _("invalid register list to push/pop instruction");
11693 return;
11694 }
11695 }
11696
11697 static void
11698 do_t_rbit (void)
11699 {
11700 unsigned Rd, Rm;
11701
11702 Rd = inst.operands[0].reg;
11703 Rm = inst.operands[1].reg;
11704
11705 reject_bad_reg (Rd);
11706 reject_bad_reg (Rm);
11707
11708 inst.instruction |= Rd << 8;
11709 inst.instruction |= Rm << 16;
11710 inst.instruction |= Rm;
11711 }
11712
11713 static void
11714 do_t_rev (void)
11715 {
11716 unsigned Rd, Rm;
11717
11718 Rd = inst.operands[0].reg;
11719 Rm = inst.operands[1].reg;
11720
11721 reject_bad_reg (Rd);
11722 reject_bad_reg (Rm);
11723
11724 if (Rd <= 7 && Rm <= 7
11725 && inst.size_req != 4)
11726 {
11727 inst.instruction = THUMB_OP16 (inst.instruction);
11728 inst.instruction |= Rd;
11729 inst.instruction |= Rm << 3;
11730 }
11731 else if (unified_syntax)
11732 {
11733 inst.instruction = THUMB_OP32 (inst.instruction);
11734 inst.instruction |= Rd << 8;
11735 inst.instruction |= Rm << 16;
11736 inst.instruction |= Rm;
11737 }
11738 else
11739 inst.error = BAD_HIREG;
11740 }
11741
11742 static void
11743 do_t_rrx (void)
11744 {
11745 unsigned Rd, Rm;
11746
11747 Rd = inst.operands[0].reg;
11748 Rm = inst.operands[1].reg;
11749
11750 reject_bad_reg (Rd);
11751 reject_bad_reg (Rm);
11752
11753 inst.instruction |= Rd << 8;
11754 inst.instruction |= Rm;
11755 }
11756
11757 static void
11758 do_t_rsb (void)
11759 {
11760 unsigned Rd, Rs;
11761
11762 Rd = inst.operands[0].reg;
11763 Rs = (inst.operands[1].present
11764 ? inst.operands[1].reg /* Rd, Rs, foo */
11765 : inst.operands[0].reg); /* Rd, foo -> Rd, Rd, foo */
11766
11767 reject_bad_reg (Rd);
11768 reject_bad_reg (Rs);
11769 if (inst.operands[2].isreg)
11770 reject_bad_reg (inst.operands[2].reg);
11771
11772 inst.instruction |= Rd << 8;
11773 inst.instruction |= Rs << 16;
11774 if (!inst.operands[2].isreg)
11775 {
11776 bfd_boolean narrow;
11777
11778 if ((inst.instruction & 0x00100000) != 0)
11779 narrow = !in_it_block ();
11780 else
11781 narrow = in_it_block ();
11782
11783 if (Rd > 7 || Rs > 7)
11784 narrow = FALSE;
11785
11786 if (inst.size_req == 4 || !unified_syntax)
11787 narrow = FALSE;
11788
11789 if (inst.reloc.exp.X_op != O_constant
11790 || inst.reloc.exp.X_add_number != 0)
11791 narrow = FALSE;
11792
11793 /* Turn rsb #0 into 16-bit neg. We should probably do this via
11794 relaxation, but it doesn't seem worth the hassle. */
11795 if (narrow)
11796 {
11797 inst.reloc.type = BFD_RELOC_UNUSED;
11798 inst.instruction = THUMB_OP16 (T_MNEM_negs);
11799 inst.instruction |= Rs << 3;
11800 inst.instruction |= Rd;
11801 }
11802 else
11803 {
11804 inst.instruction = (inst.instruction & 0xe1ffffff) | 0x10000000;
11805 inst.reloc.type = BFD_RELOC_ARM_T32_IMMEDIATE;
11806 }
11807 }
11808 else
11809 encode_thumb32_shifted_operand (2);
11810 }
11811
11812 static void
11813 do_t_setend (void)
11814 {
11815 if (warn_on_deprecated
11816 && ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v8))
11817 as_warn (_("setend use is deprecated for ARMv8"));
11818
11819 set_it_insn_type (OUTSIDE_IT_INSN);
11820 if (inst.operands[0].imm)
11821 inst.instruction |= 0x8;
11822 }
11823
11824 static void
11825 do_t_shift (void)
11826 {
11827 if (!inst.operands[1].present)
11828 inst.operands[1].reg = inst.operands[0].reg;
11829
11830 if (unified_syntax)
11831 {
11832 bfd_boolean narrow;
11833 int shift_kind;
11834
11835 switch (inst.instruction)
11836 {
11837 case T_MNEM_asr:
11838 case T_MNEM_asrs: shift_kind = SHIFT_ASR; break;
11839 case T_MNEM_lsl:
11840 case T_MNEM_lsls: shift_kind = SHIFT_LSL; break;
11841 case T_MNEM_lsr:
11842 case T_MNEM_lsrs: shift_kind = SHIFT_LSR; break;
11843 case T_MNEM_ror:
11844 case T_MNEM_rors: shift_kind = SHIFT_ROR; break;
11845 default: abort ();
11846 }
11847
11848 if (THUMB_SETS_FLAGS (inst.instruction))
11849 narrow = !in_it_block ();
11850 else
11851 narrow = in_it_block ();
11852 if (inst.operands[0].reg > 7 || inst.operands[1].reg > 7)
11853 narrow = FALSE;
11854 if (!inst.operands[2].isreg && shift_kind == SHIFT_ROR)
11855 narrow = FALSE;
11856 if (inst.operands[2].isreg
11857 && (inst.operands[1].reg != inst.operands[0].reg
11858 || inst.operands[2].reg > 7))
11859 narrow = FALSE;
11860 if (inst.size_req == 4)
11861 narrow = FALSE;
11862
11863 reject_bad_reg (inst.operands[0].reg);
11864 reject_bad_reg (inst.operands[1].reg);
11865
11866 if (!narrow)
11867 {
11868 if (inst.operands[2].isreg)
11869 {
11870 reject_bad_reg (inst.operands[2].reg);
11871 inst.instruction = THUMB_OP32 (inst.instruction);
11872 inst.instruction |= inst.operands[0].reg << 8;
11873 inst.instruction |= inst.operands[1].reg << 16;
11874 inst.instruction |= inst.operands[2].reg;
11875
11876 /* PR 12854: Error on extraneous shifts. */
11877 constraint (inst.operands[2].shifted,
11878 _("extraneous shift as part of operand to shift insn"));
11879 }
11880 else
11881 {
11882 inst.operands[1].shifted = 1;
11883 inst.operands[1].shift_kind = shift_kind;
11884 inst.instruction = THUMB_OP32 (THUMB_SETS_FLAGS (inst.instruction)
11885 ? T_MNEM_movs : T_MNEM_mov);
11886 inst.instruction |= inst.operands[0].reg << 8;
11887 encode_thumb32_shifted_operand (1);
11888 /* Prevent the incorrect generation of an ARM_IMMEDIATE fixup. */
11889 inst.reloc.type = BFD_RELOC_UNUSED;
11890 }
11891 }
11892 else
11893 {
11894 if (inst.operands[2].isreg)
11895 {
11896 switch (shift_kind)
11897 {
11898 case SHIFT_ASR: inst.instruction = T_OPCODE_ASR_R; break;
11899 case SHIFT_LSL: inst.instruction = T_OPCODE_LSL_R; break;
11900 case SHIFT_LSR: inst.instruction = T_OPCODE_LSR_R; break;
11901 case SHIFT_ROR: inst.instruction = T_OPCODE_ROR_R; break;
11902 default: abort ();
11903 }
11904
11905 inst.instruction |= inst.operands[0].reg;
11906 inst.instruction |= inst.operands[2].reg << 3;
11907
11908 /* PR 12854: Error on extraneous shifts. */
11909 constraint (inst.operands[2].shifted,
11910 _("extraneous shift as part of operand to shift insn"));
11911 }
11912 else
11913 {
11914 switch (shift_kind)
11915 {
11916 case SHIFT_ASR: inst.instruction = T_OPCODE_ASR_I; break;
11917 case SHIFT_LSL: inst.instruction = T_OPCODE_LSL_I; break;
11918 case SHIFT_LSR: inst.instruction = T_OPCODE_LSR_I; break;
11919 default: abort ();
11920 }
11921 inst.reloc.type = BFD_RELOC_ARM_THUMB_SHIFT;
11922 inst.instruction |= inst.operands[0].reg;
11923 inst.instruction |= inst.operands[1].reg << 3;
11924 }
11925 }
11926 }
11927 else
11928 {
11929 constraint (inst.operands[0].reg > 7
11930 || inst.operands[1].reg > 7, BAD_HIREG);
11931 constraint (THUMB_SETS_FLAGS (inst.instruction), BAD_THUMB32);
11932
11933 if (inst.operands[2].isreg) /* Rd, {Rs,} Rn */
11934 {
11935 constraint (inst.operands[2].reg > 7, BAD_HIREG);
11936 constraint (inst.operands[0].reg != inst.operands[1].reg,
11937 _("source1 and dest must be same register"));
11938
11939 switch (inst.instruction)
11940 {
11941 case T_MNEM_asr: inst.instruction = T_OPCODE_ASR_R; break;
11942 case T_MNEM_lsl: inst.instruction = T_OPCODE_LSL_R; break;
11943 case T_MNEM_lsr: inst.instruction = T_OPCODE_LSR_R; break;
11944 case T_MNEM_ror: inst.instruction = T_OPCODE_ROR_R; break;
11945 default: abort ();
11946 }
11947
11948 inst.instruction |= inst.operands[0].reg;
11949 inst.instruction |= inst.operands[2].reg << 3;
11950
11951 /* PR 12854: Error on extraneous shifts. */
11952 constraint (inst.operands[2].shifted,
11953 _("extraneous shift as part of operand to shift insn"));
11954 }
11955 else
11956 {
11957 switch (inst.instruction)
11958 {
11959 case T_MNEM_asr: inst.instruction = T_OPCODE_ASR_I; break;
11960 case T_MNEM_lsl: inst.instruction = T_OPCODE_LSL_I; break;
11961 case T_MNEM_lsr: inst.instruction = T_OPCODE_LSR_I; break;
11962 case T_MNEM_ror: inst.error = _("ror #imm not supported"); return;
11963 default: abort ();
11964 }
11965 inst.reloc.type = BFD_RELOC_ARM_THUMB_SHIFT;
11966 inst.instruction |= inst.operands[0].reg;
11967 inst.instruction |= inst.operands[1].reg << 3;
11968 }
11969 }
11970 }
11971
11972 static void
11973 do_t_simd (void)
11974 {
11975 unsigned Rd, Rn, Rm;
11976
11977 Rd = inst.operands[0].reg;
11978 Rn = inst.operands[1].reg;
11979 Rm = inst.operands[2].reg;
11980
11981 reject_bad_reg (Rd);
11982 reject_bad_reg (Rn);
11983 reject_bad_reg (Rm);
11984
11985 inst.instruction |= Rd << 8;
11986 inst.instruction |= Rn << 16;
11987 inst.instruction |= Rm;
11988 }
11989
11990 static void
11991 do_t_simd2 (void)
11992 {
11993 unsigned Rd, Rn, Rm;
11994
11995 Rd = inst.operands[0].reg;
11996 Rm = inst.operands[1].reg;
11997 Rn = inst.operands[2].reg;
11998
11999 reject_bad_reg (Rd);
12000 reject_bad_reg (Rn);
12001 reject_bad_reg (Rm);
12002
12003 inst.instruction |= Rd << 8;
12004 inst.instruction |= Rn << 16;
12005 inst.instruction |= Rm;
12006 }
12007
12008 static void
12009 do_t_smc (void)
12010 {
12011 unsigned int value = inst.reloc.exp.X_add_number;
12012 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v7a),
12013 _("SMC is not permitted on this architecture"));
12014 constraint (inst.reloc.exp.X_op != O_constant,
12015 _("expression too complex"));
12016 inst.reloc.type = BFD_RELOC_UNUSED;
12017 inst.instruction |= (value & 0xf000) >> 12;
12018 inst.instruction |= (value & 0x0ff0);
12019 inst.instruction |= (value & 0x000f) << 16;
12020 /* PR gas/15623: SMC instructions must be last in an IT block. */
12021 set_it_insn_type_last ();
12022 }
12023
12024 static void
12025 do_t_hvc (void)
12026 {
12027 unsigned int value = inst.reloc.exp.X_add_number;
12028
12029 inst.reloc.type = BFD_RELOC_UNUSED;
12030 inst.instruction |= (value & 0x0fff);
12031 inst.instruction |= (value & 0xf000) << 4;
12032 }
12033
12034 static void
12035 do_t_ssat_usat (int bias)
12036 {
12037 unsigned Rd, Rn;
12038
12039 Rd = inst.operands[0].reg;
12040 Rn = inst.operands[2].reg;
12041
12042 reject_bad_reg (Rd);
12043 reject_bad_reg (Rn);
12044
12045 inst.instruction |= Rd << 8;
12046 inst.instruction |= inst.operands[1].imm - bias;
12047 inst.instruction |= Rn << 16;
12048
12049 if (inst.operands[3].present)
12050 {
12051 offsetT shift_amount = inst.reloc.exp.X_add_number;
12052
12053 inst.reloc.type = BFD_RELOC_UNUSED;
12054
12055 constraint (inst.reloc.exp.X_op != O_constant,
12056 _("expression too complex"));
12057
12058 if (shift_amount != 0)
12059 {
12060 constraint (shift_amount > 31,
12061 _("shift expression is too large"));
12062
12063 if (inst.operands[3].shift_kind == SHIFT_ASR)
12064 inst.instruction |= 0x00200000; /* sh bit. */
12065
12066 inst.instruction |= (shift_amount & 0x1c) << 10;
12067 inst.instruction |= (shift_amount & 0x03) << 6;
12068 }
12069 }
12070 }
12071
12072 static void
12073 do_t_ssat (void)
12074 {
12075 do_t_ssat_usat (1);
12076 }
12077
12078 static void
12079 do_t_ssat16 (void)
12080 {
12081 unsigned Rd, Rn;
12082
12083 Rd = inst.operands[0].reg;
12084 Rn = inst.operands[2].reg;
12085
12086 reject_bad_reg (Rd);
12087 reject_bad_reg (Rn);
12088
12089 inst.instruction |= Rd << 8;
12090 inst.instruction |= inst.operands[1].imm - 1;
12091 inst.instruction |= Rn << 16;
12092 }
12093
12094 static void
12095 do_t_strex (void)
12096 {
12097 constraint (!inst.operands[2].isreg || !inst.operands[2].preind
12098 || inst.operands[2].postind || inst.operands[2].writeback
12099 || inst.operands[2].immisreg || inst.operands[2].shifted
12100 || inst.operands[2].negative,
12101 BAD_ADDR_MODE);
12102
12103 constraint (inst.operands[2].reg == REG_PC, BAD_PC);
12104
12105 inst.instruction |= inst.operands[0].reg << 8;
12106 inst.instruction |= inst.operands[1].reg << 12;
12107 inst.instruction |= inst.operands[2].reg << 16;
12108 inst.reloc.type = BFD_RELOC_ARM_T32_OFFSET_U8;
12109 }
12110
12111 static void
12112 do_t_strexd (void)
12113 {
12114 if (!inst.operands[2].present)
12115 inst.operands[2].reg = inst.operands[1].reg + 1;
12116
12117 constraint (inst.operands[0].reg == inst.operands[1].reg
12118 || inst.operands[0].reg == inst.operands[2].reg
12119 || inst.operands[0].reg == inst.operands[3].reg,
12120 BAD_OVERLAP);
12121
12122 inst.instruction |= inst.operands[0].reg;
12123 inst.instruction |= inst.operands[1].reg << 12;
12124 inst.instruction |= inst.operands[2].reg << 8;
12125 inst.instruction |= inst.operands[3].reg << 16;
12126 }
12127
12128 static void
12129 do_t_sxtah (void)
12130 {
12131 unsigned Rd, Rn, Rm;
12132
12133 Rd = inst.operands[0].reg;
12134 Rn = inst.operands[1].reg;
12135 Rm = inst.operands[2].reg;
12136
12137 reject_bad_reg (Rd);
12138 reject_bad_reg (Rn);
12139 reject_bad_reg (Rm);
12140
12141 inst.instruction |= Rd << 8;
12142 inst.instruction |= Rn << 16;
12143 inst.instruction |= Rm;
12144 inst.instruction |= inst.operands[3].imm << 4;
12145 }
12146
12147 static void
12148 do_t_sxth (void)
12149 {
12150 unsigned Rd, Rm;
12151
12152 Rd = inst.operands[0].reg;
12153 Rm = inst.operands[1].reg;
12154
12155 reject_bad_reg (Rd);
12156 reject_bad_reg (Rm);
12157
12158 if (inst.instruction <= 0xffff
12159 && inst.size_req != 4
12160 && Rd <= 7 && Rm <= 7
12161 && (!inst.operands[2].present || inst.operands[2].imm == 0))
12162 {
12163 inst.instruction = THUMB_OP16 (inst.instruction);
12164 inst.instruction |= Rd;
12165 inst.instruction |= Rm << 3;
12166 }
12167 else if (unified_syntax)
12168 {
12169 if (inst.instruction <= 0xffff)
12170 inst.instruction = THUMB_OP32 (inst.instruction);
12171 inst.instruction |= Rd << 8;
12172 inst.instruction |= Rm;
12173 inst.instruction |= inst.operands[2].imm << 4;
12174 }
12175 else
12176 {
12177 constraint (inst.operands[2].present && inst.operands[2].imm != 0,
12178 _("Thumb encoding does not support rotation"));
12179 constraint (1, BAD_HIREG);
12180 }
12181 }
12182
12183 static void
12184 do_t_swi (void)
12185 {
12186 /* We have to do the following check manually as ARM_EXT_OS only applies
12187 to ARM_EXT_V6M. */
12188 if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v6m))
12189 {
12190 if (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_os)
12191 /* This only applies to the v6m howver, not later architectures. */
12192 && ! ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v7))
12193 as_bad (_("SVC is not permitted on this architecture"));
12194 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used, arm_ext_os);
12195 }
12196
12197 inst.reloc.type = BFD_RELOC_ARM_SWI;
12198 }
12199
12200 static void
12201 do_t_tb (void)
12202 {
12203 unsigned Rn, Rm;
12204 int half;
12205
12206 half = (inst.instruction & 0x10) != 0;
12207 set_it_insn_type_last ();
12208 constraint (inst.operands[0].immisreg,
12209 _("instruction requires register index"));
12210
12211 Rn = inst.operands[0].reg;
12212 Rm = inst.operands[0].imm;
12213
12214 constraint (Rn == REG_SP, BAD_SP);
12215 reject_bad_reg (Rm);
12216
12217 constraint (!half && inst.operands[0].shifted,
12218 _("instruction does not allow shifted index"));
12219 inst.instruction |= (Rn << 16) | Rm;
12220 }
12221
12222 static void
12223 do_t_udf (void)
12224 {
12225 if (!inst.operands[0].present)
12226 inst.operands[0].imm = 0;
12227
12228 if ((unsigned int) inst.operands[0].imm > 255 || inst.size_req == 4)
12229 {
12230 constraint (inst.size_req == 2,
12231 _("immediate value out of range"));
12232 inst.instruction = THUMB_OP32 (inst.instruction);
12233 inst.instruction |= (inst.operands[0].imm & 0xf000u) << 4;
12234 inst.instruction |= (inst.operands[0].imm & 0x0fffu) << 0;
12235 }
12236 else
12237 {
12238 inst.instruction = THUMB_OP16 (inst.instruction);
12239 inst.instruction |= inst.operands[0].imm;
12240 }
12241
12242 set_it_insn_type (NEUTRAL_IT_INSN);
12243 }
12244
12245
12246 static void
12247 do_t_usat (void)
12248 {
12249 do_t_ssat_usat (0);
12250 }
12251
12252 static void
12253 do_t_usat16 (void)
12254 {
12255 unsigned Rd, Rn;
12256
12257 Rd = inst.operands[0].reg;
12258 Rn = inst.operands[2].reg;
12259
12260 reject_bad_reg (Rd);
12261 reject_bad_reg (Rn);
12262
12263 inst.instruction |= Rd << 8;
12264 inst.instruction |= inst.operands[1].imm;
12265 inst.instruction |= Rn << 16;
12266 }
12267
12268 /* Neon instruction encoder helpers. */
12269
12270 /* Encodings for the different types for various Neon opcodes. */
12271
12272 /* An "invalid" code for the following tables. */
12273 #define N_INV -1u
12274
12275 struct neon_tab_entry
12276 {
12277 unsigned integer;
12278 unsigned float_or_poly;
12279 unsigned scalar_or_imm;
12280 };
12281
12282 /* Map overloaded Neon opcodes to their respective encodings. */
12283 #define NEON_ENC_TAB \
12284 X(vabd, 0x0000700, 0x1200d00, N_INV), \
12285 X(vmax, 0x0000600, 0x0000f00, N_INV), \
12286 X(vmin, 0x0000610, 0x0200f00, N_INV), \
12287 X(vpadd, 0x0000b10, 0x1000d00, N_INV), \
12288 X(vpmax, 0x0000a00, 0x1000f00, N_INV), \
12289 X(vpmin, 0x0000a10, 0x1200f00, N_INV), \
12290 X(vadd, 0x0000800, 0x0000d00, N_INV), \
12291 X(vsub, 0x1000800, 0x0200d00, N_INV), \
12292 X(vceq, 0x1000810, 0x0000e00, 0x1b10100), \
12293 X(vcge, 0x0000310, 0x1000e00, 0x1b10080), \
12294 X(vcgt, 0x0000300, 0x1200e00, 0x1b10000), \
12295 /* Register variants of the following two instructions are encoded as
12296 vcge / vcgt with the operands reversed. */ \
12297 X(vclt, 0x0000300, 0x1200e00, 0x1b10200), \
12298 X(vcle, 0x0000310, 0x1000e00, 0x1b10180), \
12299 X(vfma, N_INV, 0x0000c10, N_INV), \
12300 X(vfms, N_INV, 0x0200c10, N_INV), \
12301 X(vmla, 0x0000900, 0x0000d10, 0x0800040), \
12302 X(vmls, 0x1000900, 0x0200d10, 0x0800440), \
12303 X(vmul, 0x0000910, 0x1000d10, 0x0800840), \
12304 X(vmull, 0x0800c00, 0x0800e00, 0x0800a40), /* polynomial not float. */ \
12305 X(vmlal, 0x0800800, N_INV, 0x0800240), \
12306 X(vmlsl, 0x0800a00, N_INV, 0x0800640), \
12307 X(vqdmlal, 0x0800900, N_INV, 0x0800340), \
12308 X(vqdmlsl, 0x0800b00, N_INV, 0x0800740), \
12309 X(vqdmull, 0x0800d00, N_INV, 0x0800b40), \
12310 X(vqdmulh, 0x0000b00, N_INV, 0x0800c40), \
12311 X(vqrdmulh, 0x1000b00, N_INV, 0x0800d40), \
12312 X(vshl, 0x0000400, N_INV, 0x0800510), \
12313 X(vqshl, 0x0000410, N_INV, 0x0800710), \
12314 X(vand, 0x0000110, N_INV, 0x0800030), \
12315 X(vbic, 0x0100110, N_INV, 0x0800030), \
12316 X(veor, 0x1000110, N_INV, N_INV), \
12317 X(vorn, 0x0300110, N_INV, 0x0800010), \
12318 X(vorr, 0x0200110, N_INV, 0x0800010), \
12319 X(vmvn, 0x1b00580, N_INV, 0x0800030), \
12320 X(vshll, 0x1b20300, N_INV, 0x0800a10), /* max shift, immediate. */ \
12321 X(vcvt, 0x1b30600, N_INV, 0x0800e10), /* integer, fixed-point. */ \
12322 X(vdup, 0xe800b10, N_INV, 0x1b00c00), /* arm, scalar. */ \
12323 X(vld1, 0x0200000, 0x0a00000, 0x0a00c00), /* interlv, lane, dup. */ \
12324 X(vst1, 0x0000000, 0x0800000, N_INV), \
12325 X(vld2, 0x0200100, 0x0a00100, 0x0a00d00), \
12326 X(vst2, 0x0000100, 0x0800100, N_INV), \
12327 X(vld3, 0x0200200, 0x0a00200, 0x0a00e00), \
12328 X(vst3, 0x0000200, 0x0800200, N_INV), \
12329 X(vld4, 0x0200300, 0x0a00300, 0x0a00f00), \
12330 X(vst4, 0x0000300, 0x0800300, N_INV), \
12331 X(vmovn, 0x1b20200, N_INV, N_INV), \
12332 X(vtrn, 0x1b20080, N_INV, N_INV), \
12333 X(vqmovn, 0x1b20200, N_INV, N_INV), \
12334 X(vqmovun, 0x1b20240, N_INV, N_INV), \
12335 X(vnmul, 0xe200a40, 0xe200b40, N_INV), \
12336 X(vnmla, 0xe100a40, 0xe100b40, N_INV), \
12337 X(vnmls, 0xe100a00, 0xe100b00, N_INV), \
12338 X(vfnma, 0xe900a40, 0xe900b40, N_INV), \
12339 X(vfnms, 0xe900a00, 0xe900b00, N_INV), \
12340 X(vcmp, 0xeb40a40, 0xeb40b40, N_INV), \
12341 X(vcmpz, 0xeb50a40, 0xeb50b40, N_INV), \
12342 X(vcmpe, 0xeb40ac0, 0xeb40bc0, N_INV), \
12343 X(vcmpez, 0xeb50ac0, 0xeb50bc0, N_INV), \
12344 X(vseleq, 0xe000a00, N_INV, N_INV), \
12345 X(vselvs, 0xe100a00, N_INV, N_INV), \
12346 X(vselge, 0xe200a00, N_INV, N_INV), \
12347 X(vselgt, 0xe300a00, N_INV, N_INV), \
12348 X(vmaxnm, 0xe800a00, 0x3000f10, N_INV), \
12349 X(vminnm, 0xe800a40, 0x3200f10, N_INV), \
12350 X(vcvta, 0xebc0a40, 0x3bb0000, N_INV), \
12351 X(vrintr, 0xeb60a40, 0x3ba0400, N_INV), \
12352 X(vrinta, 0xeb80a40, 0x3ba0400, N_INV), \
12353 X(aes, 0x3b00300, N_INV, N_INV), \
12354 X(sha3op, 0x2000c00, N_INV, N_INV), \
12355 X(sha1h, 0x3b902c0, N_INV, N_INV), \
12356 X(sha2op, 0x3ba0380, N_INV, N_INV)
12357
12358 enum neon_opc
12359 {
12360 #define X(OPC,I,F,S) N_MNEM_##OPC
12361 NEON_ENC_TAB
12362 #undef X
12363 };
12364
12365 static const struct neon_tab_entry neon_enc_tab[] =
12366 {
12367 #define X(OPC,I,F,S) { (I), (F), (S) }
12368 NEON_ENC_TAB
12369 #undef X
12370 };
12371
12372 /* Do not use these macros; instead, use NEON_ENCODE defined below. */
12373 #define NEON_ENC_INTEGER_(X) (neon_enc_tab[(X) & 0x0fffffff].integer)
12374 #define NEON_ENC_ARMREG_(X) (neon_enc_tab[(X) & 0x0fffffff].integer)
12375 #define NEON_ENC_POLY_(X) (neon_enc_tab[(X) & 0x0fffffff].float_or_poly)
12376 #define NEON_ENC_FLOAT_(X) (neon_enc_tab[(X) & 0x0fffffff].float_or_poly)
12377 #define NEON_ENC_SCALAR_(X) (neon_enc_tab[(X) & 0x0fffffff].scalar_or_imm)
12378 #define NEON_ENC_IMMED_(X) (neon_enc_tab[(X) & 0x0fffffff].scalar_or_imm)
12379 #define NEON_ENC_INTERLV_(X) (neon_enc_tab[(X) & 0x0fffffff].integer)
12380 #define NEON_ENC_LANE_(X) (neon_enc_tab[(X) & 0x0fffffff].float_or_poly)
12381 #define NEON_ENC_DUP_(X) (neon_enc_tab[(X) & 0x0fffffff].scalar_or_imm)
12382 #define NEON_ENC_SINGLE_(X) \
12383 ((neon_enc_tab[(X) & 0x0fffffff].integer) | ((X) & 0xf0000000))
12384 #define NEON_ENC_DOUBLE_(X) \
12385 ((neon_enc_tab[(X) & 0x0fffffff].float_or_poly) | ((X) & 0xf0000000))
12386 #define NEON_ENC_FPV8_(X) \
12387 ((neon_enc_tab[(X) & 0x0fffffff].integer) | ((X) & 0xf000000))
12388
12389 #define NEON_ENCODE(type, inst) \
12390 do \
12391 { \
12392 inst.instruction = NEON_ENC_##type##_ (inst.instruction); \
12393 inst.is_neon = 1; \
12394 } \
12395 while (0)
12396
12397 #define check_neon_suffixes \
12398 do \
12399 { \
12400 if (!inst.error && inst.vectype.elems > 0 && !inst.is_neon) \
12401 { \
12402 as_bad (_("invalid neon suffix for non neon instruction")); \
12403 return; \
12404 } \
12405 } \
12406 while (0)
12407
12408 /* Define shapes for instruction operands. The following mnemonic characters
12409 are used in this table:
12410
12411 F - VFP S<n> register
12412 D - Neon D<n> register
12413 Q - Neon Q<n> register
12414 I - Immediate
12415 S - Scalar
12416 R - ARM register
12417 L - D<n> register list
12418
12419 This table is used to generate various data:
12420 - enumerations of the form NS_DDR to be used as arguments to
12421 neon_select_shape.
12422 - a table classifying shapes into single, double, quad, mixed.
12423 - a table used to drive neon_select_shape. */
12424
12425 #define NEON_SHAPE_DEF \
12426 X(3, (D, D, D), DOUBLE), \
12427 X(3, (Q, Q, Q), QUAD), \
12428 X(3, (D, D, I), DOUBLE), \
12429 X(3, (Q, Q, I), QUAD), \
12430 X(3, (D, D, S), DOUBLE), \
12431 X(3, (Q, Q, S), QUAD), \
12432 X(2, (D, D), DOUBLE), \
12433 X(2, (Q, Q), QUAD), \
12434 X(2, (D, S), DOUBLE), \
12435 X(2, (Q, S), QUAD), \
12436 X(2, (D, R), DOUBLE), \
12437 X(2, (Q, R), QUAD), \
12438 X(2, (D, I), DOUBLE), \
12439 X(2, (Q, I), QUAD), \
12440 X(3, (D, L, D), DOUBLE), \
12441 X(2, (D, Q), MIXED), \
12442 X(2, (Q, D), MIXED), \
12443 X(3, (D, Q, I), MIXED), \
12444 X(3, (Q, D, I), MIXED), \
12445 X(3, (Q, D, D), MIXED), \
12446 X(3, (D, Q, Q), MIXED), \
12447 X(3, (Q, Q, D), MIXED), \
12448 X(3, (Q, D, S), MIXED), \
12449 X(3, (D, Q, S), MIXED), \
12450 X(4, (D, D, D, I), DOUBLE), \
12451 X(4, (Q, Q, Q, I), QUAD), \
12452 X(2, (F, F), SINGLE), \
12453 X(3, (F, F, F), SINGLE), \
12454 X(2, (F, I), SINGLE), \
12455 X(2, (F, D), MIXED), \
12456 X(2, (D, F), MIXED), \
12457 X(3, (F, F, I), MIXED), \
12458 X(4, (R, R, F, F), SINGLE), \
12459 X(4, (F, F, R, R), SINGLE), \
12460 X(3, (D, R, R), DOUBLE), \
12461 X(3, (R, R, D), DOUBLE), \
12462 X(2, (S, R), SINGLE), \
12463 X(2, (R, S), SINGLE), \
12464 X(2, (F, R), SINGLE), \
12465 X(2, (R, F), SINGLE)
12466
12467 #define S2(A,B) NS_##A##B
12468 #define S3(A,B,C) NS_##A##B##C
12469 #define S4(A,B,C,D) NS_##A##B##C##D
12470
12471 #define X(N, L, C) S##N L
12472
12473 enum neon_shape
12474 {
12475 NEON_SHAPE_DEF,
12476 NS_NULL
12477 };
12478
12479 #undef X
12480 #undef S2
12481 #undef S3
12482 #undef S4
12483
12484 enum neon_shape_class
12485 {
12486 SC_SINGLE,
12487 SC_DOUBLE,
12488 SC_QUAD,
12489 SC_MIXED
12490 };
12491
12492 #define X(N, L, C) SC_##C
12493
12494 static enum neon_shape_class neon_shape_class[] =
12495 {
12496 NEON_SHAPE_DEF
12497 };
12498
12499 #undef X
12500
12501 enum neon_shape_el
12502 {
12503 SE_F,
12504 SE_D,
12505 SE_Q,
12506 SE_I,
12507 SE_S,
12508 SE_R,
12509 SE_L
12510 };
12511
12512 /* Register widths of above. */
12513 static unsigned neon_shape_el_size[] =
12514 {
12515 32,
12516 64,
12517 128,
12518 0,
12519 32,
12520 32,
12521 0
12522 };
12523
12524 struct neon_shape_info
12525 {
12526 unsigned els;
12527 enum neon_shape_el el[NEON_MAX_TYPE_ELS];
12528 };
12529
12530 #define S2(A,B) { SE_##A, SE_##B }
12531 #define S3(A,B,C) { SE_##A, SE_##B, SE_##C }
12532 #define S4(A,B,C,D) { SE_##A, SE_##B, SE_##C, SE_##D }
12533
12534 #define X(N, L, C) { N, S##N L }
12535
12536 static struct neon_shape_info neon_shape_tab[] =
12537 {
12538 NEON_SHAPE_DEF
12539 };
12540
12541 #undef X
12542 #undef S2
12543 #undef S3
12544 #undef S4
12545
12546 /* Bit masks used in type checking given instructions.
12547 'N_EQK' means the type must be the same as (or based on in some way) the key
12548 type, which itself is marked with the 'N_KEY' bit. If the 'N_EQK' bit is
12549 set, various other bits can be set as well in order to modify the meaning of
12550 the type constraint. */
12551
12552 enum neon_type_mask
12553 {
12554 N_S8 = 0x0000001,
12555 N_S16 = 0x0000002,
12556 N_S32 = 0x0000004,
12557 N_S64 = 0x0000008,
12558 N_U8 = 0x0000010,
12559 N_U16 = 0x0000020,
12560 N_U32 = 0x0000040,
12561 N_U64 = 0x0000080,
12562 N_I8 = 0x0000100,
12563 N_I16 = 0x0000200,
12564 N_I32 = 0x0000400,
12565 N_I64 = 0x0000800,
12566 N_8 = 0x0001000,
12567 N_16 = 0x0002000,
12568 N_32 = 0x0004000,
12569 N_64 = 0x0008000,
12570 N_P8 = 0x0010000,
12571 N_P16 = 0x0020000,
12572 N_F16 = 0x0040000,
12573 N_F32 = 0x0080000,
12574 N_F64 = 0x0100000,
12575 N_P64 = 0x0200000,
12576 N_KEY = 0x1000000, /* Key element (main type specifier). */
12577 N_EQK = 0x2000000, /* Given operand has the same type & size as the key. */
12578 N_VFP = 0x4000000, /* VFP mode: operand size must match register width. */
12579 N_UNT = 0x8000000, /* Must be explicitly untyped. */
12580 N_DBL = 0x0000001, /* If N_EQK, this operand is twice the size. */
12581 N_HLF = 0x0000002, /* If N_EQK, this operand is half the size. */
12582 N_SGN = 0x0000004, /* If N_EQK, this operand is forced to be signed. */
12583 N_UNS = 0x0000008, /* If N_EQK, this operand is forced to be unsigned. */
12584 N_INT = 0x0000010, /* If N_EQK, this operand is forced to be integer. */
12585 N_FLT = 0x0000020, /* If N_EQK, this operand is forced to be float. */
12586 N_SIZ = 0x0000040, /* If N_EQK, this operand is forced to be size-only. */
12587 N_UTYP = 0,
12588 N_MAX_NONSPECIAL = N_P64
12589 };
12590
12591 #define N_ALLMODS (N_DBL | N_HLF | N_SGN | N_UNS | N_INT | N_FLT | N_SIZ)
12592
12593 #define N_SU_ALL (N_S8 | N_S16 | N_S32 | N_S64 | N_U8 | N_U16 | N_U32 | N_U64)
12594 #define N_SU_32 (N_S8 | N_S16 | N_S32 | N_U8 | N_U16 | N_U32)
12595 #define N_SU_16_64 (N_S16 | N_S32 | N_S64 | N_U16 | N_U32 | N_U64)
12596 #define N_SUF_32 (N_SU_32 | N_F32)
12597 #define N_I_ALL (N_I8 | N_I16 | N_I32 | N_I64)
12598 #define N_IF_32 (N_I8 | N_I16 | N_I32 | N_F32)
12599
12600 /* Pass this as the first type argument to neon_check_type to ignore types
12601 altogether. */
12602 #define N_IGNORE_TYPE (N_KEY | N_EQK)
12603
12604 /* Select a "shape" for the current instruction (describing register types or
12605 sizes) from a list of alternatives. Return NS_NULL if the current instruction
12606 doesn't fit. For non-polymorphic shapes, checking is usually done as a
12607 function of operand parsing, so this function doesn't need to be called.
12608 Shapes should be listed in order of decreasing length. */
12609
12610 static enum neon_shape
12611 neon_select_shape (enum neon_shape shape, ...)
12612 {
12613 va_list ap;
12614 enum neon_shape first_shape = shape;
12615
12616 /* Fix missing optional operands. FIXME: we don't know at this point how
12617 many arguments we should have, so this makes the assumption that we have
12618 > 1. This is true of all current Neon opcodes, I think, but may not be
12619 true in the future. */
12620 if (!inst.operands[1].present)
12621 inst.operands[1] = inst.operands[0];
12622
12623 va_start (ap, shape);
12624
12625 for (; shape != NS_NULL; shape = (enum neon_shape) va_arg (ap, int))
12626 {
12627 unsigned j;
12628 int matches = 1;
12629
12630 for (j = 0; j < neon_shape_tab[shape].els; j++)
12631 {
12632 if (!inst.operands[j].present)
12633 {
12634 matches = 0;
12635 break;
12636 }
12637
12638 switch (neon_shape_tab[shape].el[j])
12639 {
12640 case SE_F:
12641 if (!(inst.operands[j].isreg
12642 && inst.operands[j].isvec
12643 && inst.operands[j].issingle
12644 && !inst.operands[j].isquad))
12645 matches = 0;
12646 break;
12647
12648 case SE_D:
12649 if (!(inst.operands[j].isreg
12650 && inst.operands[j].isvec
12651 && !inst.operands[j].isquad
12652 && !inst.operands[j].issingle))
12653 matches = 0;
12654 break;
12655
12656 case SE_R:
12657 if (!(inst.operands[j].isreg
12658 && !inst.operands[j].isvec))
12659 matches = 0;
12660 break;
12661
12662 case SE_Q:
12663 if (!(inst.operands[j].isreg
12664 && inst.operands[j].isvec
12665 && inst.operands[j].isquad
12666 && !inst.operands[j].issingle))
12667 matches = 0;
12668 break;
12669
12670 case SE_I:
12671 if (!(!inst.operands[j].isreg
12672 && !inst.operands[j].isscalar))
12673 matches = 0;
12674 break;
12675
12676 case SE_S:
12677 if (!(!inst.operands[j].isreg
12678 && inst.operands[j].isscalar))
12679 matches = 0;
12680 break;
12681
12682 case SE_L:
12683 break;
12684 }
12685 if (!matches)
12686 break;
12687 }
12688 if (matches && (j >= ARM_IT_MAX_OPERANDS || !inst.operands[j].present))
12689 /* We've matched all the entries in the shape table, and we don't
12690 have any left over operands which have not been matched. */
12691 break;
12692 }
12693
12694 va_end (ap);
12695
12696 if (shape == NS_NULL && first_shape != NS_NULL)
12697 first_error (_("invalid instruction shape"));
12698
12699 return shape;
12700 }
12701
12702 /* True if SHAPE is predominantly a quadword operation (most of the time, this
12703 means the Q bit should be set). */
12704
12705 static int
12706 neon_quad (enum neon_shape shape)
12707 {
12708 return neon_shape_class[shape] == SC_QUAD;
12709 }
12710
12711 static void
12712 neon_modify_type_size (unsigned typebits, enum neon_el_type *g_type,
12713 unsigned *g_size)
12714 {
12715 /* Allow modification to be made to types which are constrained to be
12716 based on the key element, based on bits set alongside N_EQK. */
12717 if ((typebits & N_EQK) != 0)
12718 {
12719 if ((typebits & N_HLF) != 0)
12720 *g_size /= 2;
12721 else if ((typebits & N_DBL) != 0)
12722 *g_size *= 2;
12723 if ((typebits & N_SGN) != 0)
12724 *g_type = NT_signed;
12725 else if ((typebits & N_UNS) != 0)
12726 *g_type = NT_unsigned;
12727 else if ((typebits & N_INT) != 0)
12728 *g_type = NT_integer;
12729 else if ((typebits & N_FLT) != 0)
12730 *g_type = NT_float;
12731 else if ((typebits & N_SIZ) != 0)
12732 *g_type = NT_untyped;
12733 }
12734 }
12735
12736 /* Return operand OPNO promoted by bits set in THISARG. KEY should be the "key"
12737 operand type, i.e. the single type specified in a Neon instruction when it
12738 is the only one given. */
12739
12740 static struct neon_type_el
12741 neon_type_promote (struct neon_type_el *key, unsigned thisarg)
12742 {
12743 struct neon_type_el dest = *key;
12744
12745 gas_assert ((thisarg & N_EQK) != 0);
12746
12747 neon_modify_type_size (thisarg, &dest.type, &dest.size);
12748
12749 return dest;
12750 }
12751
12752 /* Convert Neon type and size into compact bitmask representation. */
12753
12754 static enum neon_type_mask
12755 type_chk_of_el_type (enum neon_el_type type, unsigned size)
12756 {
12757 switch (type)
12758 {
12759 case NT_untyped:
12760 switch (size)
12761 {
12762 case 8: return N_8;
12763 case 16: return N_16;
12764 case 32: return N_32;
12765 case 64: return N_64;
12766 default: ;
12767 }
12768 break;
12769
12770 case NT_integer:
12771 switch (size)
12772 {
12773 case 8: return N_I8;
12774 case 16: return N_I16;
12775 case 32: return N_I32;
12776 case 64: return N_I64;
12777 default: ;
12778 }
12779 break;
12780
12781 case NT_float:
12782 switch (size)
12783 {
12784 case 16: return N_F16;
12785 case 32: return N_F32;
12786 case 64: return N_F64;
12787 default: ;
12788 }
12789 break;
12790
12791 case NT_poly:
12792 switch (size)
12793 {
12794 case 8: return N_P8;
12795 case 16: return N_P16;
12796 case 64: return N_P64;
12797 default: ;
12798 }
12799 break;
12800
12801 case NT_signed:
12802 switch (size)
12803 {
12804 case 8: return N_S8;
12805 case 16: return N_S16;
12806 case 32: return N_S32;
12807 case 64: return N_S64;
12808 default: ;
12809 }
12810 break;
12811
12812 case NT_unsigned:
12813 switch (size)
12814 {
12815 case 8: return N_U8;
12816 case 16: return N_U16;
12817 case 32: return N_U32;
12818 case 64: return N_U64;
12819 default: ;
12820 }
12821 break;
12822
12823 default: ;
12824 }
12825
12826 return N_UTYP;
12827 }
12828
12829 /* Convert compact Neon bitmask type representation to a type and size. Only
12830 handles the case where a single bit is set in the mask. */
12831
12832 static int
12833 el_type_of_type_chk (enum neon_el_type *type, unsigned *size,
12834 enum neon_type_mask mask)
12835 {
12836 if ((mask & N_EQK) != 0)
12837 return FAIL;
12838
12839 if ((mask & (N_S8 | N_U8 | N_I8 | N_8 | N_P8)) != 0)
12840 *size = 8;
12841 else if ((mask & (N_S16 | N_U16 | N_I16 | N_16 | N_F16 | N_P16)) != 0)
12842 *size = 16;
12843 else if ((mask & (N_S32 | N_U32 | N_I32 | N_32 | N_F32)) != 0)
12844 *size = 32;
12845 else if ((mask & (N_S64 | N_U64 | N_I64 | N_64 | N_F64 | N_P64)) != 0)
12846 *size = 64;
12847 else
12848 return FAIL;
12849
12850 if ((mask & (N_S8 | N_S16 | N_S32 | N_S64)) != 0)
12851 *type = NT_signed;
12852 else if ((mask & (N_U8 | N_U16 | N_U32 | N_U64)) != 0)
12853 *type = NT_unsigned;
12854 else if ((mask & (N_I8 | N_I16 | N_I32 | N_I64)) != 0)
12855 *type = NT_integer;
12856 else if ((mask & (N_8 | N_16 | N_32 | N_64)) != 0)
12857 *type = NT_untyped;
12858 else if ((mask & (N_P8 | N_P16 | N_P64)) != 0)
12859 *type = NT_poly;
12860 else if ((mask & (N_F16 | N_F32 | N_F64)) != 0)
12861 *type = NT_float;
12862 else
12863 return FAIL;
12864
12865 return SUCCESS;
12866 }
12867
12868 /* Modify a bitmask of allowed types. This is only needed for type
12869 relaxation. */
12870
12871 static unsigned
12872 modify_types_allowed (unsigned allowed, unsigned mods)
12873 {
12874 unsigned size;
12875 enum neon_el_type type;
12876 unsigned destmask;
12877 int i;
12878
12879 destmask = 0;
12880
12881 for (i = 1; i <= N_MAX_NONSPECIAL; i <<= 1)
12882 {
12883 if (el_type_of_type_chk (&type, &size,
12884 (enum neon_type_mask) (allowed & i)) == SUCCESS)
12885 {
12886 neon_modify_type_size (mods, &type, &size);
12887 destmask |= type_chk_of_el_type (type, size);
12888 }
12889 }
12890
12891 return destmask;
12892 }
12893
12894 /* Check type and return type classification.
12895 The manual states (paraphrase): If one datatype is given, it indicates the
12896 type given in:
12897 - the second operand, if there is one
12898 - the operand, if there is no second operand
12899 - the result, if there are no operands.
12900 This isn't quite good enough though, so we use a concept of a "key" datatype
12901 which is set on a per-instruction basis, which is the one which matters when
12902 only one data type is written.
12903 Note: this function has side-effects (e.g. filling in missing operands). All
12904 Neon instructions should call it before performing bit encoding. */
12905
12906 static struct neon_type_el
12907 neon_check_type (unsigned els, enum neon_shape ns, ...)
12908 {
12909 va_list ap;
12910 unsigned i, pass, key_el = 0;
12911 unsigned types[NEON_MAX_TYPE_ELS];
12912 enum neon_el_type k_type = NT_invtype;
12913 unsigned k_size = -1u;
12914 struct neon_type_el badtype = {NT_invtype, -1};
12915 unsigned key_allowed = 0;
12916
12917 /* Optional registers in Neon instructions are always (not) in operand 1.
12918 Fill in the missing operand here, if it was omitted. */
12919 if (els > 1 && !inst.operands[1].present)
12920 inst.operands[1] = inst.operands[0];
12921
12922 /* Suck up all the varargs. */
12923 va_start (ap, ns);
12924 for (i = 0; i < els; i++)
12925 {
12926 unsigned thisarg = va_arg (ap, unsigned);
12927 if (thisarg == N_IGNORE_TYPE)
12928 {
12929 va_end (ap);
12930 return badtype;
12931 }
12932 types[i] = thisarg;
12933 if ((thisarg & N_KEY) != 0)
12934 key_el = i;
12935 }
12936 va_end (ap);
12937
12938 if (inst.vectype.elems > 0)
12939 for (i = 0; i < els; i++)
12940 if (inst.operands[i].vectype.type != NT_invtype)
12941 {
12942 first_error (_("types specified in both the mnemonic and operands"));
12943 return badtype;
12944 }
12945
12946 /* Duplicate inst.vectype elements here as necessary.
12947 FIXME: No idea if this is exactly the same as the ARM assembler,
12948 particularly when an insn takes one register and one non-register
12949 operand. */
12950 if (inst.vectype.elems == 1 && els > 1)
12951 {
12952 unsigned j;
12953 inst.vectype.elems = els;
12954 inst.vectype.el[key_el] = inst.vectype.el[0];
12955 for (j = 0; j < els; j++)
12956 if (j != key_el)
12957 inst.vectype.el[j] = neon_type_promote (&inst.vectype.el[key_el],
12958 types[j]);
12959 }
12960 else if (inst.vectype.elems == 0 && els > 0)
12961 {
12962 unsigned j;
12963 /* No types were given after the mnemonic, so look for types specified
12964 after each operand. We allow some flexibility here; as long as the
12965 "key" operand has a type, we can infer the others. */
12966 for (j = 0; j < els; j++)
12967 if (inst.operands[j].vectype.type != NT_invtype)
12968 inst.vectype.el[j] = inst.operands[j].vectype;
12969
12970 if (inst.operands[key_el].vectype.type != NT_invtype)
12971 {
12972 for (j = 0; j < els; j++)
12973 if (inst.operands[j].vectype.type == NT_invtype)
12974 inst.vectype.el[j] = neon_type_promote (&inst.vectype.el[key_el],
12975 types[j]);
12976 }
12977 else
12978 {
12979 first_error (_("operand types can't be inferred"));
12980 return badtype;
12981 }
12982 }
12983 else if (inst.vectype.elems != els)
12984 {
12985 first_error (_("type specifier has the wrong number of parts"));
12986 return badtype;
12987 }
12988
12989 for (pass = 0; pass < 2; pass++)
12990 {
12991 for (i = 0; i < els; i++)
12992 {
12993 unsigned thisarg = types[i];
12994 unsigned types_allowed = ((thisarg & N_EQK) != 0 && pass != 0)
12995 ? modify_types_allowed (key_allowed, thisarg) : thisarg;
12996 enum neon_el_type g_type = inst.vectype.el[i].type;
12997 unsigned g_size = inst.vectype.el[i].size;
12998
12999 /* Decay more-specific signed & unsigned types to sign-insensitive
13000 integer types if sign-specific variants are unavailable. */
13001 if ((g_type == NT_signed || g_type == NT_unsigned)
13002 && (types_allowed & N_SU_ALL) == 0)
13003 g_type = NT_integer;
13004
13005 /* If only untyped args are allowed, decay any more specific types to
13006 them. Some instructions only care about signs for some element
13007 sizes, so handle that properly. */
13008 if (((types_allowed & N_UNT) == 0)
13009 && ((g_size == 8 && (types_allowed & N_8) != 0)
13010 || (g_size == 16 && (types_allowed & N_16) != 0)
13011 || (g_size == 32 && (types_allowed & N_32) != 0)
13012 || (g_size == 64 && (types_allowed & N_64) != 0)))
13013 g_type = NT_untyped;
13014
13015 if (pass == 0)
13016 {
13017 if ((thisarg & N_KEY) != 0)
13018 {
13019 k_type = g_type;
13020 k_size = g_size;
13021 key_allowed = thisarg & ~N_KEY;
13022 }
13023 }
13024 else
13025 {
13026 if ((thisarg & N_VFP) != 0)
13027 {
13028 enum neon_shape_el regshape;
13029 unsigned regwidth, match;
13030
13031 /* PR 11136: Catch the case where we are passed a shape of NS_NULL. */
13032 if (ns == NS_NULL)
13033 {
13034 first_error (_("invalid instruction shape"));
13035 return badtype;
13036 }
13037 regshape = neon_shape_tab[ns].el[i];
13038 regwidth = neon_shape_el_size[regshape];
13039
13040 /* In VFP mode, operands must match register widths. If we
13041 have a key operand, use its width, else use the width of
13042 the current operand. */
13043 if (k_size != -1u)
13044 match = k_size;
13045 else
13046 match = g_size;
13047
13048 if (regwidth != match)
13049 {
13050 first_error (_("operand size must match register width"));
13051 return badtype;
13052 }
13053 }
13054
13055 if ((thisarg & N_EQK) == 0)
13056 {
13057 unsigned given_type = type_chk_of_el_type (g_type, g_size);
13058
13059 if ((given_type & types_allowed) == 0)
13060 {
13061 first_error (_("bad type in Neon instruction"));
13062 return badtype;
13063 }
13064 }
13065 else
13066 {
13067 enum neon_el_type mod_k_type = k_type;
13068 unsigned mod_k_size = k_size;
13069 neon_modify_type_size (thisarg, &mod_k_type, &mod_k_size);
13070 if (g_type != mod_k_type || g_size != mod_k_size)
13071 {
13072 first_error (_("inconsistent types in Neon instruction"));
13073 return badtype;
13074 }
13075 }
13076 }
13077 }
13078 }
13079
13080 return inst.vectype.el[key_el];
13081 }
13082
13083 /* Neon-style VFP instruction forwarding. */
13084
13085 /* Thumb VFP instructions have 0xE in the condition field. */
13086
13087 static void
13088 do_vfp_cond_or_thumb (void)
13089 {
13090 inst.is_neon = 1;
13091
13092 if (thumb_mode)
13093 inst.instruction |= 0xe0000000;
13094 else
13095 inst.instruction |= inst.cond << 28;
13096 }
13097
13098 /* Look up and encode a simple mnemonic, for use as a helper function for the
13099 Neon-style VFP syntax. This avoids duplication of bits of the insns table,
13100 etc. It is assumed that operand parsing has already been done, and that the
13101 operands are in the form expected by the given opcode (this isn't necessarily
13102 the same as the form in which they were parsed, hence some massaging must
13103 take place before this function is called).
13104 Checks current arch version against that in the looked-up opcode. */
13105
13106 static void
13107 do_vfp_nsyn_opcode (const char *opname)
13108 {
13109 const struct asm_opcode *opcode;
13110
13111 opcode = (const struct asm_opcode *) hash_find (arm_ops_hsh, opname);
13112
13113 if (!opcode)
13114 abort ();
13115
13116 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant,
13117 thumb_mode ? *opcode->tvariant : *opcode->avariant),
13118 _(BAD_FPU));
13119
13120 inst.is_neon = 1;
13121
13122 if (thumb_mode)
13123 {
13124 inst.instruction = opcode->tvalue;
13125 opcode->tencode ();
13126 }
13127 else
13128 {
13129 inst.instruction = (inst.cond << 28) | opcode->avalue;
13130 opcode->aencode ();
13131 }
13132 }
13133
13134 static void
13135 do_vfp_nsyn_add_sub (enum neon_shape rs)
13136 {
13137 int is_add = (inst.instruction & 0x0fffffff) == N_MNEM_vadd;
13138
13139 if (rs == NS_FFF)
13140 {
13141 if (is_add)
13142 do_vfp_nsyn_opcode ("fadds");
13143 else
13144 do_vfp_nsyn_opcode ("fsubs");
13145 }
13146 else
13147 {
13148 if (is_add)
13149 do_vfp_nsyn_opcode ("faddd");
13150 else
13151 do_vfp_nsyn_opcode ("fsubd");
13152 }
13153 }
13154
13155 /* Check operand types to see if this is a VFP instruction, and if so call
13156 PFN (). */
13157
13158 static int
13159 try_vfp_nsyn (int args, void (*pfn) (enum neon_shape))
13160 {
13161 enum neon_shape rs;
13162 struct neon_type_el et;
13163
13164 switch (args)
13165 {
13166 case 2:
13167 rs = neon_select_shape (NS_FF, NS_DD, NS_NULL);
13168 et = neon_check_type (2, rs,
13169 N_EQK | N_VFP, N_F32 | N_F64 | N_KEY | N_VFP);
13170 break;
13171
13172 case 3:
13173 rs = neon_select_shape (NS_FFF, NS_DDD, NS_NULL);
13174 et = neon_check_type (3, rs,
13175 N_EQK | N_VFP, N_EQK | N_VFP, N_F32 | N_F64 | N_KEY | N_VFP);
13176 break;
13177
13178 default:
13179 abort ();
13180 }
13181
13182 if (et.type != NT_invtype)
13183 {
13184 pfn (rs);
13185 return SUCCESS;
13186 }
13187
13188 inst.error = NULL;
13189 return FAIL;
13190 }
13191
13192 static void
13193 do_vfp_nsyn_mla_mls (enum neon_shape rs)
13194 {
13195 int is_mla = (inst.instruction & 0x0fffffff) == N_MNEM_vmla;
13196
13197 if (rs == NS_FFF)
13198 {
13199 if (is_mla)
13200 do_vfp_nsyn_opcode ("fmacs");
13201 else
13202 do_vfp_nsyn_opcode ("fnmacs");
13203 }
13204 else
13205 {
13206 if (is_mla)
13207 do_vfp_nsyn_opcode ("fmacd");
13208 else
13209 do_vfp_nsyn_opcode ("fnmacd");
13210 }
13211 }
13212
13213 static void
13214 do_vfp_nsyn_fma_fms (enum neon_shape rs)
13215 {
13216 int is_fma = (inst.instruction & 0x0fffffff) == N_MNEM_vfma;
13217
13218 if (rs == NS_FFF)
13219 {
13220 if (is_fma)
13221 do_vfp_nsyn_opcode ("ffmas");
13222 else
13223 do_vfp_nsyn_opcode ("ffnmas");
13224 }
13225 else
13226 {
13227 if (is_fma)
13228 do_vfp_nsyn_opcode ("ffmad");
13229 else
13230 do_vfp_nsyn_opcode ("ffnmad");
13231 }
13232 }
13233
13234 static void
13235 do_vfp_nsyn_mul (enum neon_shape rs)
13236 {
13237 if (rs == NS_FFF)
13238 do_vfp_nsyn_opcode ("fmuls");
13239 else
13240 do_vfp_nsyn_opcode ("fmuld");
13241 }
13242
13243 static void
13244 do_vfp_nsyn_abs_neg (enum neon_shape rs)
13245 {
13246 int is_neg = (inst.instruction & 0x80) != 0;
13247 neon_check_type (2, rs, N_EQK | N_VFP, N_F32 | N_F64 | N_VFP | N_KEY);
13248
13249 if (rs == NS_FF)
13250 {
13251 if (is_neg)
13252 do_vfp_nsyn_opcode ("fnegs");
13253 else
13254 do_vfp_nsyn_opcode ("fabss");
13255 }
13256 else
13257 {
13258 if (is_neg)
13259 do_vfp_nsyn_opcode ("fnegd");
13260 else
13261 do_vfp_nsyn_opcode ("fabsd");
13262 }
13263 }
13264
13265 /* Encode single-precision (only!) VFP fldm/fstm instructions. Double precision
13266 insns belong to Neon, and are handled elsewhere. */
13267
13268 static void
13269 do_vfp_nsyn_ldm_stm (int is_dbmode)
13270 {
13271 int is_ldm = (inst.instruction & (1 << 20)) != 0;
13272 if (is_ldm)
13273 {
13274 if (is_dbmode)
13275 do_vfp_nsyn_opcode ("fldmdbs");
13276 else
13277 do_vfp_nsyn_opcode ("fldmias");
13278 }
13279 else
13280 {
13281 if (is_dbmode)
13282 do_vfp_nsyn_opcode ("fstmdbs");
13283 else
13284 do_vfp_nsyn_opcode ("fstmias");
13285 }
13286 }
13287
13288 static void
13289 do_vfp_nsyn_sqrt (void)
13290 {
13291 enum neon_shape rs = neon_select_shape (NS_FF, NS_DD, NS_NULL);
13292 neon_check_type (2, rs, N_EQK | N_VFP, N_F32 | N_F64 | N_KEY | N_VFP);
13293
13294 if (rs == NS_FF)
13295 do_vfp_nsyn_opcode ("fsqrts");
13296 else
13297 do_vfp_nsyn_opcode ("fsqrtd");
13298 }
13299
13300 static void
13301 do_vfp_nsyn_div (void)
13302 {
13303 enum neon_shape rs = neon_select_shape (NS_FFF, NS_DDD, NS_NULL);
13304 neon_check_type (3, rs, N_EQK | N_VFP, N_EQK | N_VFP,
13305 N_F32 | N_F64 | N_KEY | N_VFP);
13306
13307 if (rs == NS_FFF)
13308 do_vfp_nsyn_opcode ("fdivs");
13309 else
13310 do_vfp_nsyn_opcode ("fdivd");
13311 }
13312
13313 static void
13314 do_vfp_nsyn_nmul (void)
13315 {
13316 enum neon_shape rs = neon_select_shape (NS_FFF, NS_DDD, NS_NULL);
13317 neon_check_type (3, rs, N_EQK | N_VFP, N_EQK | N_VFP,
13318 N_F32 | N_F64 | N_KEY | N_VFP);
13319
13320 if (rs == NS_FFF)
13321 {
13322 NEON_ENCODE (SINGLE, inst);
13323 do_vfp_sp_dyadic ();
13324 }
13325 else
13326 {
13327 NEON_ENCODE (DOUBLE, inst);
13328 do_vfp_dp_rd_rn_rm ();
13329 }
13330 do_vfp_cond_or_thumb ();
13331 }
13332
13333 static void
13334 do_vfp_nsyn_cmp (void)
13335 {
13336 if (inst.operands[1].isreg)
13337 {
13338 enum neon_shape rs = neon_select_shape (NS_FF, NS_DD, NS_NULL);
13339 neon_check_type (2, rs, N_EQK | N_VFP, N_F32 | N_F64 | N_KEY | N_VFP);
13340
13341 if (rs == NS_FF)
13342 {
13343 NEON_ENCODE (SINGLE, inst);
13344 do_vfp_sp_monadic ();
13345 }
13346 else
13347 {
13348 NEON_ENCODE (DOUBLE, inst);
13349 do_vfp_dp_rd_rm ();
13350 }
13351 }
13352 else
13353 {
13354 enum neon_shape rs = neon_select_shape (NS_FI, NS_DI, NS_NULL);
13355 neon_check_type (2, rs, N_F32 | N_F64 | N_KEY | N_VFP, N_EQK);
13356
13357 switch (inst.instruction & 0x0fffffff)
13358 {
13359 case N_MNEM_vcmp:
13360 inst.instruction += N_MNEM_vcmpz - N_MNEM_vcmp;
13361 break;
13362 case N_MNEM_vcmpe:
13363 inst.instruction += N_MNEM_vcmpez - N_MNEM_vcmpe;
13364 break;
13365 default:
13366 abort ();
13367 }
13368
13369 if (rs == NS_FI)
13370 {
13371 NEON_ENCODE (SINGLE, inst);
13372 do_vfp_sp_compare_z ();
13373 }
13374 else
13375 {
13376 NEON_ENCODE (DOUBLE, inst);
13377 do_vfp_dp_rd ();
13378 }
13379 }
13380 do_vfp_cond_or_thumb ();
13381 }
13382
13383 static void
13384 nsyn_insert_sp (void)
13385 {
13386 inst.operands[1] = inst.operands[0];
13387 memset (&inst.operands[0], '\0', sizeof (inst.operands[0]));
13388 inst.operands[0].reg = REG_SP;
13389 inst.operands[0].isreg = 1;
13390 inst.operands[0].writeback = 1;
13391 inst.operands[0].present = 1;
13392 }
13393
13394 static void
13395 do_vfp_nsyn_push (void)
13396 {
13397 nsyn_insert_sp ();
13398 if (inst.operands[1].issingle)
13399 do_vfp_nsyn_opcode ("fstmdbs");
13400 else
13401 do_vfp_nsyn_opcode ("fstmdbd");
13402 }
13403
13404 static void
13405 do_vfp_nsyn_pop (void)
13406 {
13407 nsyn_insert_sp ();
13408 if (inst.operands[1].issingle)
13409 do_vfp_nsyn_opcode ("fldmias");
13410 else
13411 do_vfp_nsyn_opcode ("fldmiad");
13412 }
13413
13414 /* Fix up Neon data-processing instructions, ORing in the correct bits for
13415 ARM mode or Thumb mode and moving the encoded bit 24 to bit 28. */
13416
13417 static void
13418 neon_dp_fixup (struct arm_it* insn)
13419 {
13420 unsigned int i = insn->instruction;
13421 insn->is_neon = 1;
13422
13423 if (thumb_mode)
13424 {
13425 /* The U bit is at bit 24 by default. Move to bit 28 in Thumb mode. */
13426 if (i & (1 << 24))
13427 i |= 1 << 28;
13428
13429 i &= ~(1 << 24);
13430
13431 i |= 0xef000000;
13432 }
13433 else
13434 i |= 0xf2000000;
13435
13436 insn->instruction = i;
13437 }
13438
13439 /* Turn a size (8, 16, 32, 64) into the respective bit number minus 3
13440 (0, 1, 2, 3). */
13441
13442 static unsigned
13443 neon_logbits (unsigned x)
13444 {
13445 return ffs (x) - 4;
13446 }
13447
13448 #define LOW4(R) ((R) & 0xf)
13449 #define HI1(R) (((R) >> 4) & 1)
13450
13451 /* Encode insns with bit pattern:
13452
13453 |28/24|23|22 |21 20|19 16|15 12|11 8|7|6|5|4|3 0|
13454 | U |x |D |size | Rn | Rd |x x x x|N|Q|M|x| Rm |
13455
13456 SIZE is passed in bits. -1 means size field isn't changed, in case it has a
13457 different meaning for some instruction. */
13458
13459 static void
13460 neon_three_same (int isquad, int ubit, int size)
13461 {
13462 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
13463 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
13464 inst.instruction |= LOW4 (inst.operands[1].reg) << 16;
13465 inst.instruction |= HI1 (inst.operands[1].reg) << 7;
13466 inst.instruction |= LOW4 (inst.operands[2].reg);
13467 inst.instruction |= HI1 (inst.operands[2].reg) << 5;
13468 inst.instruction |= (isquad != 0) << 6;
13469 inst.instruction |= (ubit != 0) << 24;
13470 if (size != -1)
13471 inst.instruction |= neon_logbits (size) << 20;
13472
13473 neon_dp_fixup (&inst);
13474 }
13475
13476 /* Encode instructions of the form:
13477
13478 |28/24|23|22|21 20|19 18|17 16|15 12|11 7|6|5|4|3 0|
13479 | U |x |D |x x |size |x x | Rd |x x x x x|Q|M|x| Rm |
13480
13481 Don't write size if SIZE == -1. */
13482
13483 static void
13484 neon_two_same (int qbit, int ubit, int size)
13485 {
13486 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
13487 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
13488 inst.instruction |= LOW4 (inst.operands[1].reg);
13489 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
13490 inst.instruction |= (qbit != 0) << 6;
13491 inst.instruction |= (ubit != 0) << 24;
13492
13493 if (size != -1)
13494 inst.instruction |= neon_logbits (size) << 18;
13495
13496 neon_dp_fixup (&inst);
13497 }
13498
13499 /* Neon instruction encoders, in approximate order of appearance. */
13500
13501 static void
13502 do_neon_dyadic_i_su (void)
13503 {
13504 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13505 struct neon_type_el et = neon_check_type (3, rs,
13506 N_EQK, N_EQK, N_SU_32 | N_KEY);
13507 neon_three_same (neon_quad (rs), et.type == NT_unsigned, et.size);
13508 }
13509
13510 static void
13511 do_neon_dyadic_i64_su (void)
13512 {
13513 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13514 struct neon_type_el et = neon_check_type (3, rs,
13515 N_EQK, N_EQK, N_SU_ALL | N_KEY);
13516 neon_three_same (neon_quad (rs), et.type == NT_unsigned, et.size);
13517 }
13518
13519 static void
13520 neon_imm_shift (int write_ubit, int uval, int isquad, struct neon_type_el et,
13521 unsigned immbits)
13522 {
13523 unsigned size = et.size >> 3;
13524 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
13525 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
13526 inst.instruction |= LOW4 (inst.operands[1].reg);
13527 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
13528 inst.instruction |= (isquad != 0) << 6;
13529 inst.instruction |= immbits << 16;
13530 inst.instruction |= (size >> 3) << 7;
13531 inst.instruction |= (size & 0x7) << 19;
13532 if (write_ubit)
13533 inst.instruction |= (uval != 0) << 24;
13534
13535 neon_dp_fixup (&inst);
13536 }
13537
13538 static void
13539 do_neon_shl_imm (void)
13540 {
13541 if (!inst.operands[2].isreg)
13542 {
13543 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
13544 struct neon_type_el et = neon_check_type (2, rs, N_EQK, N_KEY | N_I_ALL);
13545 NEON_ENCODE (IMMED, inst);
13546 neon_imm_shift (FALSE, 0, neon_quad (rs), et, inst.operands[2].imm);
13547 }
13548 else
13549 {
13550 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13551 struct neon_type_el et = neon_check_type (3, rs,
13552 N_EQK, N_SU_ALL | N_KEY, N_EQK | N_SGN);
13553 unsigned int tmp;
13554
13555 /* VSHL/VQSHL 3-register variants have syntax such as:
13556 vshl.xx Dd, Dm, Dn
13557 whereas other 3-register operations encoded by neon_three_same have
13558 syntax like:
13559 vadd.xx Dd, Dn, Dm
13560 (i.e. with Dn & Dm reversed). Swap operands[1].reg and operands[2].reg
13561 here. */
13562 tmp = inst.operands[2].reg;
13563 inst.operands[2].reg = inst.operands[1].reg;
13564 inst.operands[1].reg = tmp;
13565 NEON_ENCODE (INTEGER, inst);
13566 neon_three_same (neon_quad (rs), et.type == NT_unsigned, et.size);
13567 }
13568 }
13569
13570 static void
13571 do_neon_qshl_imm (void)
13572 {
13573 if (!inst.operands[2].isreg)
13574 {
13575 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
13576 struct neon_type_el et = neon_check_type (2, rs, N_EQK, N_SU_ALL | N_KEY);
13577
13578 NEON_ENCODE (IMMED, inst);
13579 neon_imm_shift (TRUE, et.type == NT_unsigned, neon_quad (rs), et,
13580 inst.operands[2].imm);
13581 }
13582 else
13583 {
13584 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13585 struct neon_type_el et = neon_check_type (3, rs,
13586 N_EQK, N_SU_ALL | N_KEY, N_EQK | N_SGN);
13587 unsigned int tmp;
13588
13589 /* See note in do_neon_shl_imm. */
13590 tmp = inst.operands[2].reg;
13591 inst.operands[2].reg = inst.operands[1].reg;
13592 inst.operands[1].reg = tmp;
13593 NEON_ENCODE (INTEGER, inst);
13594 neon_three_same (neon_quad (rs), et.type == NT_unsigned, et.size);
13595 }
13596 }
13597
13598 static void
13599 do_neon_rshl (void)
13600 {
13601 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13602 struct neon_type_el et = neon_check_type (3, rs,
13603 N_EQK, N_EQK, N_SU_ALL | N_KEY);
13604 unsigned int tmp;
13605
13606 tmp = inst.operands[2].reg;
13607 inst.operands[2].reg = inst.operands[1].reg;
13608 inst.operands[1].reg = tmp;
13609 neon_three_same (neon_quad (rs), et.type == NT_unsigned, et.size);
13610 }
13611
13612 static int
13613 neon_cmode_for_logic_imm (unsigned immediate, unsigned *immbits, int size)
13614 {
13615 /* Handle .I8 pseudo-instructions. */
13616 if (size == 8)
13617 {
13618 /* Unfortunately, this will make everything apart from zero out-of-range.
13619 FIXME is this the intended semantics? There doesn't seem much point in
13620 accepting .I8 if so. */
13621 immediate |= immediate << 8;
13622 size = 16;
13623 }
13624
13625 if (size >= 32)
13626 {
13627 if (immediate == (immediate & 0x000000ff))
13628 {
13629 *immbits = immediate;
13630 return 0x1;
13631 }
13632 else if (immediate == (immediate & 0x0000ff00))
13633 {
13634 *immbits = immediate >> 8;
13635 return 0x3;
13636 }
13637 else if (immediate == (immediate & 0x00ff0000))
13638 {
13639 *immbits = immediate >> 16;
13640 return 0x5;
13641 }
13642 else if (immediate == (immediate & 0xff000000))
13643 {
13644 *immbits = immediate >> 24;
13645 return 0x7;
13646 }
13647 if ((immediate & 0xffff) != (immediate >> 16))
13648 goto bad_immediate;
13649 immediate &= 0xffff;
13650 }
13651
13652 if (immediate == (immediate & 0x000000ff))
13653 {
13654 *immbits = immediate;
13655 return 0x9;
13656 }
13657 else if (immediate == (immediate & 0x0000ff00))
13658 {
13659 *immbits = immediate >> 8;
13660 return 0xb;
13661 }
13662
13663 bad_immediate:
13664 first_error (_("immediate value out of range"));
13665 return FAIL;
13666 }
13667
13668 /* True if IMM has form 0bAAAAAAAABBBBBBBBCCCCCCCCDDDDDDDD for bits
13669 A, B, C, D. */
13670
13671 static int
13672 neon_bits_same_in_bytes (unsigned imm)
13673 {
13674 return ((imm & 0x000000ff) == 0 || (imm & 0x000000ff) == 0x000000ff)
13675 && ((imm & 0x0000ff00) == 0 || (imm & 0x0000ff00) == 0x0000ff00)
13676 && ((imm & 0x00ff0000) == 0 || (imm & 0x00ff0000) == 0x00ff0000)
13677 && ((imm & 0xff000000) == 0 || (imm & 0xff000000) == 0xff000000);
13678 }
13679
13680 /* For immediate of above form, return 0bABCD. */
13681
13682 static unsigned
13683 neon_squash_bits (unsigned imm)
13684 {
13685 return (imm & 0x01) | ((imm & 0x0100) >> 7) | ((imm & 0x010000) >> 14)
13686 | ((imm & 0x01000000) >> 21);
13687 }
13688
13689 /* Compress quarter-float representation to 0b...000 abcdefgh. */
13690
13691 static unsigned
13692 neon_qfloat_bits (unsigned imm)
13693 {
13694 return ((imm >> 19) & 0x7f) | ((imm >> 24) & 0x80);
13695 }
13696
13697 /* Returns CMODE. IMMBITS [7:0] is set to bits suitable for inserting into
13698 the instruction. *OP is passed as the initial value of the op field, and
13699 may be set to a different value depending on the constant (i.e.
13700 "MOV I64, 0bAAAAAAAABBBB..." which uses OP = 1 despite being MOV not
13701 MVN). If the immediate looks like a repeated pattern then also
13702 try smaller element sizes. */
13703
13704 static int
13705 neon_cmode_for_move_imm (unsigned immlo, unsigned immhi, int float_p,
13706 unsigned *immbits, int *op, int size,
13707 enum neon_el_type type)
13708 {
13709 /* Only permit float immediates (including 0.0/-0.0) if the operand type is
13710 float. */
13711 if (type == NT_float && !float_p)
13712 return FAIL;
13713
13714 if (type == NT_float && is_quarter_float (immlo) && immhi == 0)
13715 {
13716 if (size != 32 || *op == 1)
13717 return FAIL;
13718 *immbits = neon_qfloat_bits (immlo);
13719 return 0xf;
13720 }
13721
13722 if (size == 64)
13723 {
13724 if (neon_bits_same_in_bytes (immhi)
13725 && neon_bits_same_in_bytes (immlo))
13726 {
13727 if (*op == 1)
13728 return FAIL;
13729 *immbits = (neon_squash_bits (immhi) << 4)
13730 | neon_squash_bits (immlo);
13731 *op = 1;
13732 return 0xe;
13733 }
13734
13735 if (immhi != immlo)
13736 return FAIL;
13737 }
13738
13739 if (size >= 32)
13740 {
13741 if (immlo == (immlo & 0x000000ff))
13742 {
13743 *immbits = immlo;
13744 return 0x0;
13745 }
13746 else if (immlo == (immlo & 0x0000ff00))
13747 {
13748 *immbits = immlo >> 8;
13749 return 0x2;
13750 }
13751 else if (immlo == (immlo & 0x00ff0000))
13752 {
13753 *immbits = immlo >> 16;
13754 return 0x4;
13755 }
13756 else if (immlo == (immlo & 0xff000000))
13757 {
13758 *immbits = immlo >> 24;
13759 return 0x6;
13760 }
13761 else if (immlo == ((immlo & 0x0000ff00) | 0x000000ff))
13762 {
13763 *immbits = (immlo >> 8) & 0xff;
13764 return 0xc;
13765 }
13766 else if (immlo == ((immlo & 0x00ff0000) | 0x0000ffff))
13767 {
13768 *immbits = (immlo >> 16) & 0xff;
13769 return 0xd;
13770 }
13771
13772 if ((immlo & 0xffff) != (immlo >> 16))
13773 return FAIL;
13774 immlo &= 0xffff;
13775 }
13776
13777 if (size >= 16)
13778 {
13779 if (immlo == (immlo & 0x000000ff))
13780 {
13781 *immbits = immlo;
13782 return 0x8;
13783 }
13784 else if (immlo == (immlo & 0x0000ff00))
13785 {
13786 *immbits = immlo >> 8;
13787 return 0xa;
13788 }
13789
13790 if ((immlo & 0xff) != (immlo >> 8))
13791 return FAIL;
13792 immlo &= 0xff;
13793 }
13794
13795 if (immlo == (immlo & 0x000000ff))
13796 {
13797 /* Don't allow MVN with 8-bit immediate. */
13798 if (*op == 1)
13799 return FAIL;
13800 *immbits = immlo;
13801 return 0xe;
13802 }
13803
13804 return FAIL;
13805 }
13806
13807 /* Write immediate bits [7:0] to the following locations:
13808
13809 |28/24|23 19|18 16|15 4|3 0|
13810 | a |x x x x x|b c d|x x x x x x x x x x x x|e f g h|
13811
13812 This function is used by VMOV/VMVN/VORR/VBIC. */
13813
13814 static void
13815 neon_write_immbits (unsigned immbits)
13816 {
13817 inst.instruction |= immbits & 0xf;
13818 inst.instruction |= ((immbits >> 4) & 0x7) << 16;
13819 inst.instruction |= ((immbits >> 7) & 0x1) << 24;
13820 }
13821
13822 /* Invert low-order SIZE bits of XHI:XLO. */
13823
13824 static void
13825 neon_invert_size (unsigned *xlo, unsigned *xhi, int size)
13826 {
13827 unsigned immlo = xlo ? *xlo : 0;
13828 unsigned immhi = xhi ? *xhi : 0;
13829
13830 switch (size)
13831 {
13832 case 8:
13833 immlo = (~immlo) & 0xff;
13834 break;
13835
13836 case 16:
13837 immlo = (~immlo) & 0xffff;
13838 break;
13839
13840 case 64:
13841 immhi = (~immhi) & 0xffffffff;
13842 /* fall through. */
13843
13844 case 32:
13845 immlo = (~immlo) & 0xffffffff;
13846 break;
13847
13848 default:
13849 abort ();
13850 }
13851
13852 if (xlo)
13853 *xlo = immlo;
13854
13855 if (xhi)
13856 *xhi = immhi;
13857 }
13858
13859 static void
13860 do_neon_logic (void)
13861 {
13862 if (inst.operands[2].present && inst.operands[2].isreg)
13863 {
13864 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13865 neon_check_type (3, rs, N_IGNORE_TYPE);
13866 /* U bit and size field were set as part of the bitmask. */
13867 NEON_ENCODE (INTEGER, inst);
13868 neon_three_same (neon_quad (rs), 0, -1);
13869 }
13870 else
13871 {
13872 const int three_ops_form = (inst.operands[2].present
13873 && !inst.operands[2].isreg);
13874 const int immoperand = (three_ops_form ? 2 : 1);
13875 enum neon_shape rs = (three_ops_form
13876 ? neon_select_shape (NS_DDI, NS_QQI, NS_NULL)
13877 : neon_select_shape (NS_DI, NS_QI, NS_NULL));
13878 struct neon_type_el et = neon_check_type (2, rs,
13879 N_I8 | N_I16 | N_I32 | N_I64 | N_F32 | N_KEY, N_EQK);
13880 enum neon_opc opcode = (enum neon_opc) inst.instruction & 0x0fffffff;
13881 unsigned immbits;
13882 int cmode;
13883
13884 if (et.type == NT_invtype)
13885 return;
13886
13887 if (three_ops_form)
13888 constraint (inst.operands[0].reg != inst.operands[1].reg,
13889 _("first and second operands shall be the same register"));
13890
13891 NEON_ENCODE (IMMED, inst);
13892
13893 immbits = inst.operands[immoperand].imm;
13894 if (et.size == 64)
13895 {
13896 /* .i64 is a pseudo-op, so the immediate must be a repeating
13897 pattern. */
13898 if (immbits != (inst.operands[immoperand].regisimm ?
13899 inst.operands[immoperand].reg : 0))
13900 {
13901 /* Set immbits to an invalid constant. */
13902 immbits = 0xdeadbeef;
13903 }
13904 }
13905
13906 switch (opcode)
13907 {
13908 case N_MNEM_vbic:
13909 cmode = neon_cmode_for_logic_imm (immbits, &immbits, et.size);
13910 break;
13911
13912 case N_MNEM_vorr:
13913 cmode = neon_cmode_for_logic_imm (immbits, &immbits, et.size);
13914 break;
13915
13916 case N_MNEM_vand:
13917 /* Pseudo-instruction for VBIC. */
13918 neon_invert_size (&immbits, 0, et.size);
13919 cmode = neon_cmode_for_logic_imm (immbits, &immbits, et.size);
13920 break;
13921
13922 case N_MNEM_vorn:
13923 /* Pseudo-instruction for VORR. */
13924 neon_invert_size (&immbits, 0, et.size);
13925 cmode = neon_cmode_for_logic_imm (immbits, &immbits, et.size);
13926 break;
13927
13928 default:
13929 abort ();
13930 }
13931
13932 if (cmode == FAIL)
13933 return;
13934
13935 inst.instruction |= neon_quad (rs) << 6;
13936 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
13937 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
13938 inst.instruction |= cmode << 8;
13939 neon_write_immbits (immbits);
13940
13941 neon_dp_fixup (&inst);
13942 }
13943 }
13944
13945 static void
13946 do_neon_bitfield (void)
13947 {
13948 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13949 neon_check_type (3, rs, N_IGNORE_TYPE);
13950 neon_three_same (neon_quad (rs), 0, -1);
13951 }
13952
13953 static void
13954 neon_dyadic_misc (enum neon_el_type ubit_meaning, unsigned types,
13955 unsigned destbits)
13956 {
13957 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
13958 struct neon_type_el et = neon_check_type (3, rs, N_EQK | destbits, N_EQK,
13959 types | N_KEY);
13960 if (et.type == NT_float)
13961 {
13962 NEON_ENCODE (FLOAT, inst);
13963 neon_three_same (neon_quad (rs), 0, -1);
13964 }
13965 else
13966 {
13967 NEON_ENCODE (INTEGER, inst);
13968 neon_three_same (neon_quad (rs), et.type == ubit_meaning, et.size);
13969 }
13970 }
13971
13972 static void
13973 do_neon_dyadic_if_su (void)
13974 {
13975 neon_dyadic_misc (NT_unsigned, N_SUF_32, 0);
13976 }
13977
13978 static void
13979 do_neon_dyadic_if_su_d (void)
13980 {
13981 /* This version only allow D registers, but that constraint is enforced during
13982 operand parsing so we don't need to do anything extra here. */
13983 neon_dyadic_misc (NT_unsigned, N_SUF_32, 0);
13984 }
13985
13986 static void
13987 do_neon_dyadic_if_i_d (void)
13988 {
13989 /* The "untyped" case can't happen. Do this to stop the "U" bit being
13990 affected if we specify unsigned args. */
13991 neon_dyadic_misc (NT_untyped, N_IF_32, 0);
13992 }
13993
13994 enum vfp_or_neon_is_neon_bits
13995 {
13996 NEON_CHECK_CC = 1,
13997 NEON_CHECK_ARCH = 2,
13998 NEON_CHECK_ARCH8 = 4
13999 };
14000
14001 /* Call this function if an instruction which may have belonged to the VFP or
14002 Neon instruction sets, but turned out to be a Neon instruction (due to the
14003 operand types involved, etc.). We have to check and/or fix-up a couple of
14004 things:
14005
14006 - Make sure the user hasn't attempted to make a Neon instruction
14007 conditional.
14008 - Alter the value in the condition code field if necessary.
14009 - Make sure that the arch supports Neon instructions.
14010
14011 Which of these operations take place depends on bits from enum
14012 vfp_or_neon_is_neon_bits.
14013
14014 WARNING: This function has side effects! If NEON_CHECK_CC is used and the
14015 current instruction's condition is COND_ALWAYS, the condition field is
14016 changed to inst.uncond_value. This is necessary because instructions shared
14017 between VFP and Neon may be conditional for the VFP variants only, and the
14018 unconditional Neon version must have, e.g., 0xF in the condition field. */
14019
14020 static int
14021 vfp_or_neon_is_neon (unsigned check)
14022 {
14023 /* Conditions are always legal in Thumb mode (IT blocks). */
14024 if (!thumb_mode && (check & NEON_CHECK_CC))
14025 {
14026 if (inst.cond != COND_ALWAYS)
14027 {
14028 first_error (_(BAD_COND));
14029 return FAIL;
14030 }
14031 if (inst.uncond_value != -1)
14032 inst.instruction |= inst.uncond_value << 28;
14033 }
14034
14035 if ((check & NEON_CHECK_ARCH)
14036 && !mark_feature_used (&fpu_neon_ext_v1))
14037 {
14038 first_error (_(BAD_FPU));
14039 return FAIL;
14040 }
14041
14042 if ((check & NEON_CHECK_ARCH8)
14043 && !mark_feature_used (&fpu_neon_ext_armv8))
14044 {
14045 first_error (_(BAD_FPU));
14046 return FAIL;
14047 }
14048
14049 return SUCCESS;
14050 }
14051
14052 static void
14053 do_neon_addsub_if_i (void)
14054 {
14055 if (try_vfp_nsyn (3, do_vfp_nsyn_add_sub) == SUCCESS)
14056 return;
14057
14058 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14059 return;
14060
14061 /* The "untyped" case can't happen. Do this to stop the "U" bit being
14062 affected if we specify unsigned args. */
14063 neon_dyadic_misc (NT_untyped, N_IF_32 | N_I64, 0);
14064 }
14065
14066 /* Swaps operands 1 and 2. If operand 1 (optional arg) was omitted, we want the
14067 result to be:
14068 V<op> A,B (A is operand 0, B is operand 2)
14069 to mean:
14070 V<op> A,B,A
14071 not:
14072 V<op> A,B,B
14073 so handle that case specially. */
14074
14075 static void
14076 neon_exchange_operands (void)
14077 {
14078 void *scratch = alloca (sizeof (inst.operands[0]));
14079 if (inst.operands[1].present)
14080 {
14081 /* Swap operands[1] and operands[2]. */
14082 memcpy (scratch, &inst.operands[1], sizeof (inst.operands[0]));
14083 inst.operands[1] = inst.operands[2];
14084 memcpy (&inst.operands[2], scratch, sizeof (inst.operands[0]));
14085 }
14086 else
14087 {
14088 inst.operands[1] = inst.operands[2];
14089 inst.operands[2] = inst.operands[0];
14090 }
14091 }
14092
14093 static void
14094 neon_compare (unsigned regtypes, unsigned immtypes, int invert)
14095 {
14096 if (inst.operands[2].isreg)
14097 {
14098 if (invert)
14099 neon_exchange_operands ();
14100 neon_dyadic_misc (NT_unsigned, regtypes, N_SIZ);
14101 }
14102 else
14103 {
14104 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
14105 struct neon_type_el et = neon_check_type (2, rs,
14106 N_EQK | N_SIZ, immtypes | N_KEY);
14107
14108 NEON_ENCODE (IMMED, inst);
14109 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14110 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14111 inst.instruction |= LOW4 (inst.operands[1].reg);
14112 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14113 inst.instruction |= neon_quad (rs) << 6;
14114 inst.instruction |= (et.type == NT_float) << 10;
14115 inst.instruction |= neon_logbits (et.size) << 18;
14116
14117 neon_dp_fixup (&inst);
14118 }
14119 }
14120
14121 static void
14122 do_neon_cmp (void)
14123 {
14124 neon_compare (N_SUF_32, N_S8 | N_S16 | N_S32 | N_F32, FALSE);
14125 }
14126
14127 static void
14128 do_neon_cmp_inv (void)
14129 {
14130 neon_compare (N_SUF_32, N_S8 | N_S16 | N_S32 | N_F32, TRUE);
14131 }
14132
14133 static void
14134 do_neon_ceq (void)
14135 {
14136 neon_compare (N_IF_32, N_IF_32, FALSE);
14137 }
14138
14139 /* For multiply instructions, we have the possibility of 16-bit or 32-bit
14140 scalars, which are encoded in 5 bits, M : Rm.
14141 For 16-bit scalars, the register is encoded in Rm[2:0] and the index in
14142 M:Rm[3], and for 32-bit scalars, the register is encoded in Rm[3:0] and the
14143 index in M. */
14144
14145 static unsigned
14146 neon_scalar_for_mul (unsigned scalar, unsigned elsize)
14147 {
14148 unsigned regno = NEON_SCALAR_REG (scalar);
14149 unsigned elno = NEON_SCALAR_INDEX (scalar);
14150
14151 switch (elsize)
14152 {
14153 case 16:
14154 if (regno > 7 || elno > 3)
14155 goto bad_scalar;
14156 return regno | (elno << 3);
14157
14158 case 32:
14159 if (regno > 15 || elno > 1)
14160 goto bad_scalar;
14161 return regno | (elno << 4);
14162
14163 default:
14164 bad_scalar:
14165 first_error (_("scalar out of range for multiply instruction"));
14166 }
14167
14168 return 0;
14169 }
14170
14171 /* Encode multiply / multiply-accumulate scalar instructions. */
14172
14173 static void
14174 neon_mul_mac (struct neon_type_el et, int ubit)
14175 {
14176 unsigned scalar;
14177
14178 /* Give a more helpful error message if we have an invalid type. */
14179 if (et.type == NT_invtype)
14180 return;
14181
14182 scalar = neon_scalar_for_mul (inst.operands[2].reg, et.size);
14183 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14184 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14185 inst.instruction |= LOW4 (inst.operands[1].reg) << 16;
14186 inst.instruction |= HI1 (inst.operands[1].reg) << 7;
14187 inst.instruction |= LOW4 (scalar);
14188 inst.instruction |= HI1 (scalar) << 5;
14189 inst.instruction |= (et.type == NT_float) << 8;
14190 inst.instruction |= neon_logbits (et.size) << 20;
14191 inst.instruction |= (ubit != 0) << 24;
14192
14193 neon_dp_fixup (&inst);
14194 }
14195
14196 static void
14197 do_neon_mac_maybe_scalar (void)
14198 {
14199 if (try_vfp_nsyn (3, do_vfp_nsyn_mla_mls) == SUCCESS)
14200 return;
14201
14202 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14203 return;
14204
14205 if (inst.operands[2].isscalar)
14206 {
14207 enum neon_shape rs = neon_select_shape (NS_DDS, NS_QQS, NS_NULL);
14208 struct neon_type_el et = neon_check_type (3, rs,
14209 N_EQK, N_EQK, N_I16 | N_I32 | N_F32 | N_KEY);
14210 NEON_ENCODE (SCALAR, inst);
14211 neon_mul_mac (et, neon_quad (rs));
14212 }
14213 else
14214 {
14215 /* The "untyped" case can't happen. Do this to stop the "U" bit being
14216 affected if we specify unsigned args. */
14217 neon_dyadic_misc (NT_untyped, N_IF_32, 0);
14218 }
14219 }
14220
14221 static void
14222 do_neon_fmac (void)
14223 {
14224 if (try_vfp_nsyn (3, do_vfp_nsyn_fma_fms) == SUCCESS)
14225 return;
14226
14227 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14228 return;
14229
14230 neon_dyadic_misc (NT_untyped, N_IF_32, 0);
14231 }
14232
14233 static void
14234 do_neon_tst (void)
14235 {
14236 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
14237 struct neon_type_el et = neon_check_type (3, rs,
14238 N_EQK, N_EQK, N_8 | N_16 | N_32 | N_KEY);
14239 neon_three_same (neon_quad (rs), 0, et.size);
14240 }
14241
14242 /* VMUL with 3 registers allows the P8 type. The scalar version supports the
14243 same types as the MAC equivalents. The polynomial type for this instruction
14244 is encoded the same as the integer type. */
14245
14246 static void
14247 do_neon_mul (void)
14248 {
14249 if (try_vfp_nsyn (3, do_vfp_nsyn_mul) == SUCCESS)
14250 return;
14251
14252 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14253 return;
14254
14255 if (inst.operands[2].isscalar)
14256 do_neon_mac_maybe_scalar ();
14257 else
14258 neon_dyadic_misc (NT_poly, N_I8 | N_I16 | N_I32 | N_F32 | N_P8, 0);
14259 }
14260
14261 static void
14262 do_neon_qdmulh (void)
14263 {
14264 if (inst.operands[2].isscalar)
14265 {
14266 enum neon_shape rs = neon_select_shape (NS_DDS, NS_QQS, NS_NULL);
14267 struct neon_type_el et = neon_check_type (3, rs,
14268 N_EQK, N_EQK, N_S16 | N_S32 | N_KEY);
14269 NEON_ENCODE (SCALAR, inst);
14270 neon_mul_mac (et, neon_quad (rs));
14271 }
14272 else
14273 {
14274 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
14275 struct neon_type_el et = neon_check_type (3, rs,
14276 N_EQK, N_EQK, N_S16 | N_S32 | N_KEY);
14277 NEON_ENCODE (INTEGER, inst);
14278 /* The U bit (rounding) comes from bit mask. */
14279 neon_three_same (neon_quad (rs), 0, et.size);
14280 }
14281 }
14282
14283 static void
14284 do_neon_fcmp_absolute (void)
14285 {
14286 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
14287 neon_check_type (3, rs, N_EQK, N_EQK, N_F32 | N_KEY);
14288 /* Size field comes from bit mask. */
14289 neon_three_same (neon_quad (rs), 1, -1);
14290 }
14291
14292 static void
14293 do_neon_fcmp_absolute_inv (void)
14294 {
14295 neon_exchange_operands ();
14296 do_neon_fcmp_absolute ();
14297 }
14298
14299 static void
14300 do_neon_step (void)
14301 {
14302 enum neon_shape rs = neon_select_shape (NS_DDD, NS_QQQ, NS_NULL);
14303 neon_check_type (3, rs, N_EQK, N_EQK, N_F32 | N_KEY);
14304 neon_three_same (neon_quad (rs), 0, -1);
14305 }
14306
14307 static void
14308 do_neon_abs_neg (void)
14309 {
14310 enum neon_shape rs;
14311 struct neon_type_el et;
14312
14313 if (try_vfp_nsyn (2, do_vfp_nsyn_abs_neg) == SUCCESS)
14314 return;
14315
14316 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14317 return;
14318
14319 rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
14320 et = neon_check_type (2, rs, N_EQK, N_S8 | N_S16 | N_S32 | N_F32 | N_KEY);
14321
14322 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14323 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14324 inst.instruction |= LOW4 (inst.operands[1].reg);
14325 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14326 inst.instruction |= neon_quad (rs) << 6;
14327 inst.instruction |= (et.type == NT_float) << 10;
14328 inst.instruction |= neon_logbits (et.size) << 18;
14329
14330 neon_dp_fixup (&inst);
14331 }
14332
14333 static void
14334 do_neon_sli (void)
14335 {
14336 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
14337 struct neon_type_el et = neon_check_type (2, rs,
14338 N_EQK, N_8 | N_16 | N_32 | N_64 | N_KEY);
14339 int imm = inst.operands[2].imm;
14340 constraint (imm < 0 || (unsigned)imm >= et.size,
14341 _("immediate out of range for insert"));
14342 neon_imm_shift (FALSE, 0, neon_quad (rs), et, imm);
14343 }
14344
14345 static void
14346 do_neon_sri (void)
14347 {
14348 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
14349 struct neon_type_el et = neon_check_type (2, rs,
14350 N_EQK, N_8 | N_16 | N_32 | N_64 | N_KEY);
14351 int imm = inst.operands[2].imm;
14352 constraint (imm < 1 || (unsigned)imm > et.size,
14353 _("immediate out of range for insert"));
14354 neon_imm_shift (FALSE, 0, neon_quad (rs), et, et.size - imm);
14355 }
14356
14357 static void
14358 do_neon_qshlu_imm (void)
14359 {
14360 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
14361 struct neon_type_el et = neon_check_type (2, rs,
14362 N_EQK | N_UNS, N_S8 | N_S16 | N_S32 | N_S64 | N_KEY);
14363 int imm = inst.operands[2].imm;
14364 constraint (imm < 0 || (unsigned)imm >= et.size,
14365 _("immediate out of range for shift"));
14366 /* Only encodes the 'U present' variant of the instruction.
14367 In this case, signed types have OP (bit 8) set to 0.
14368 Unsigned types have OP set to 1. */
14369 inst.instruction |= (et.type == NT_unsigned) << 8;
14370 /* The rest of the bits are the same as other immediate shifts. */
14371 neon_imm_shift (FALSE, 0, neon_quad (rs), et, imm);
14372 }
14373
14374 static void
14375 do_neon_qmovn (void)
14376 {
14377 struct neon_type_el et = neon_check_type (2, NS_DQ,
14378 N_EQK | N_HLF, N_SU_16_64 | N_KEY);
14379 /* Saturating move where operands can be signed or unsigned, and the
14380 destination has the same signedness. */
14381 NEON_ENCODE (INTEGER, inst);
14382 if (et.type == NT_unsigned)
14383 inst.instruction |= 0xc0;
14384 else
14385 inst.instruction |= 0x80;
14386 neon_two_same (0, 1, et.size / 2);
14387 }
14388
14389 static void
14390 do_neon_qmovun (void)
14391 {
14392 struct neon_type_el et = neon_check_type (2, NS_DQ,
14393 N_EQK | N_HLF | N_UNS, N_S16 | N_S32 | N_S64 | N_KEY);
14394 /* Saturating move with unsigned results. Operands must be signed. */
14395 NEON_ENCODE (INTEGER, inst);
14396 neon_two_same (0, 1, et.size / 2);
14397 }
14398
14399 static void
14400 do_neon_rshift_sat_narrow (void)
14401 {
14402 /* FIXME: Types for narrowing. If operands are signed, results can be signed
14403 or unsigned. If operands are unsigned, results must also be unsigned. */
14404 struct neon_type_el et = neon_check_type (2, NS_DQI,
14405 N_EQK | N_HLF, N_SU_16_64 | N_KEY);
14406 int imm = inst.operands[2].imm;
14407 /* This gets the bounds check, size encoding and immediate bits calculation
14408 right. */
14409 et.size /= 2;
14410
14411 /* VQ{R}SHRN.I<size> <Dd>, <Qm>, #0 is a synonym for
14412 VQMOVN.I<size> <Dd>, <Qm>. */
14413 if (imm == 0)
14414 {
14415 inst.operands[2].present = 0;
14416 inst.instruction = N_MNEM_vqmovn;
14417 do_neon_qmovn ();
14418 return;
14419 }
14420
14421 constraint (imm < 1 || (unsigned)imm > et.size,
14422 _("immediate out of range"));
14423 neon_imm_shift (TRUE, et.type == NT_unsigned, 0, et, et.size - imm);
14424 }
14425
14426 static void
14427 do_neon_rshift_sat_narrow_u (void)
14428 {
14429 /* FIXME: Types for narrowing. If operands are signed, results can be signed
14430 or unsigned. If operands are unsigned, results must also be unsigned. */
14431 struct neon_type_el et = neon_check_type (2, NS_DQI,
14432 N_EQK | N_HLF | N_UNS, N_S16 | N_S32 | N_S64 | N_KEY);
14433 int imm = inst.operands[2].imm;
14434 /* This gets the bounds check, size encoding and immediate bits calculation
14435 right. */
14436 et.size /= 2;
14437
14438 /* VQSHRUN.I<size> <Dd>, <Qm>, #0 is a synonym for
14439 VQMOVUN.I<size> <Dd>, <Qm>. */
14440 if (imm == 0)
14441 {
14442 inst.operands[2].present = 0;
14443 inst.instruction = N_MNEM_vqmovun;
14444 do_neon_qmovun ();
14445 return;
14446 }
14447
14448 constraint (imm < 1 || (unsigned)imm > et.size,
14449 _("immediate out of range"));
14450 /* FIXME: The manual is kind of unclear about what value U should have in
14451 VQ{R}SHRUN instructions, but U=0, op=0 definitely encodes VRSHR, so it
14452 must be 1. */
14453 neon_imm_shift (TRUE, 1, 0, et, et.size - imm);
14454 }
14455
14456 static void
14457 do_neon_movn (void)
14458 {
14459 struct neon_type_el et = neon_check_type (2, NS_DQ,
14460 N_EQK | N_HLF, N_I16 | N_I32 | N_I64 | N_KEY);
14461 NEON_ENCODE (INTEGER, inst);
14462 neon_two_same (0, 1, et.size / 2);
14463 }
14464
14465 static void
14466 do_neon_rshift_narrow (void)
14467 {
14468 struct neon_type_el et = neon_check_type (2, NS_DQI,
14469 N_EQK | N_HLF, N_I16 | N_I32 | N_I64 | N_KEY);
14470 int imm = inst.operands[2].imm;
14471 /* This gets the bounds check, size encoding and immediate bits calculation
14472 right. */
14473 et.size /= 2;
14474
14475 /* If immediate is zero then we are a pseudo-instruction for
14476 VMOVN.I<size> <Dd>, <Qm> */
14477 if (imm == 0)
14478 {
14479 inst.operands[2].present = 0;
14480 inst.instruction = N_MNEM_vmovn;
14481 do_neon_movn ();
14482 return;
14483 }
14484
14485 constraint (imm < 1 || (unsigned)imm > et.size,
14486 _("immediate out of range for narrowing operation"));
14487 neon_imm_shift (FALSE, 0, 0, et, et.size - imm);
14488 }
14489
14490 static void
14491 do_neon_shll (void)
14492 {
14493 /* FIXME: Type checking when lengthening. */
14494 struct neon_type_el et = neon_check_type (2, NS_QDI,
14495 N_EQK | N_DBL, N_I8 | N_I16 | N_I32 | N_KEY);
14496 unsigned imm = inst.operands[2].imm;
14497
14498 if (imm == et.size)
14499 {
14500 /* Maximum shift variant. */
14501 NEON_ENCODE (INTEGER, inst);
14502 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14503 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14504 inst.instruction |= LOW4 (inst.operands[1].reg);
14505 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14506 inst.instruction |= neon_logbits (et.size) << 18;
14507
14508 neon_dp_fixup (&inst);
14509 }
14510 else
14511 {
14512 /* A more-specific type check for non-max versions. */
14513 et = neon_check_type (2, NS_QDI,
14514 N_EQK | N_DBL, N_SU_32 | N_KEY);
14515 NEON_ENCODE (IMMED, inst);
14516 neon_imm_shift (TRUE, et.type == NT_unsigned, 0, et, imm);
14517 }
14518 }
14519
14520 /* Check the various types for the VCVT instruction, and return which version
14521 the current instruction is. */
14522
14523 #define CVT_FLAVOUR_VAR \
14524 CVT_VAR (s32_f32, N_S32, N_F32, whole_reg, "ftosls", "ftosis", "ftosizs") \
14525 CVT_VAR (u32_f32, N_U32, N_F32, whole_reg, "ftouls", "ftouis", "ftouizs") \
14526 CVT_VAR (f32_s32, N_F32, N_S32, whole_reg, "fsltos", "fsitos", NULL) \
14527 CVT_VAR (f32_u32, N_F32, N_U32, whole_reg, "fultos", "fuitos", NULL) \
14528 /* Half-precision conversions. */ \
14529 CVT_VAR (f32_f16, N_F32, N_F16, whole_reg, NULL, NULL, NULL) \
14530 CVT_VAR (f16_f32, N_F16, N_F32, whole_reg, NULL, NULL, NULL) \
14531 /* VFP instructions. */ \
14532 CVT_VAR (f32_f64, N_F32, N_F64, N_VFP, NULL, "fcvtsd", NULL) \
14533 CVT_VAR (f64_f32, N_F64, N_F32, N_VFP, NULL, "fcvtds", NULL) \
14534 CVT_VAR (s32_f64, N_S32, N_F64 | key, N_VFP, "ftosld", "ftosid", "ftosizd") \
14535 CVT_VAR (u32_f64, N_U32, N_F64 | key, N_VFP, "ftould", "ftouid", "ftouizd") \
14536 CVT_VAR (f64_s32, N_F64 | key, N_S32, N_VFP, "fsltod", "fsitod", NULL) \
14537 CVT_VAR (f64_u32, N_F64 | key, N_U32, N_VFP, "fultod", "fuitod", NULL) \
14538 /* VFP instructions with bitshift. */ \
14539 CVT_VAR (f32_s16, N_F32 | key, N_S16, N_VFP, "fshtos", NULL, NULL) \
14540 CVT_VAR (f32_u16, N_F32 | key, N_U16, N_VFP, "fuhtos", NULL, NULL) \
14541 CVT_VAR (f64_s16, N_F64 | key, N_S16, N_VFP, "fshtod", NULL, NULL) \
14542 CVT_VAR (f64_u16, N_F64 | key, N_U16, N_VFP, "fuhtod", NULL, NULL) \
14543 CVT_VAR (s16_f32, N_S16, N_F32 | key, N_VFP, "ftoshs", NULL, NULL) \
14544 CVT_VAR (u16_f32, N_U16, N_F32 | key, N_VFP, "ftouhs", NULL, NULL) \
14545 CVT_VAR (s16_f64, N_S16, N_F64 | key, N_VFP, "ftoshd", NULL, NULL) \
14546 CVT_VAR (u16_f64, N_U16, N_F64 | key, N_VFP, "ftouhd", NULL, NULL)
14547
14548 #define CVT_VAR(C, X, Y, R, BSN, CN, ZN) \
14549 neon_cvt_flavour_##C,
14550
14551 /* The different types of conversions we can do. */
14552 enum neon_cvt_flavour
14553 {
14554 CVT_FLAVOUR_VAR
14555 neon_cvt_flavour_invalid,
14556 neon_cvt_flavour_first_fp = neon_cvt_flavour_f32_f64
14557 };
14558
14559 #undef CVT_VAR
14560
14561 static enum neon_cvt_flavour
14562 get_neon_cvt_flavour (enum neon_shape rs)
14563 {
14564 #define CVT_VAR(C,X,Y,R,BSN,CN,ZN) \
14565 et = neon_check_type (2, rs, (R) | (X), (R) | (Y)); \
14566 if (et.type != NT_invtype) \
14567 { \
14568 inst.error = NULL; \
14569 return (neon_cvt_flavour_##C); \
14570 }
14571
14572 struct neon_type_el et;
14573 unsigned whole_reg = (rs == NS_FFI || rs == NS_FD || rs == NS_DF
14574 || rs == NS_FF) ? N_VFP : 0;
14575 /* The instruction versions which take an immediate take one register
14576 argument, which is extended to the width of the full register. Thus the
14577 "source" and "destination" registers must have the same width. Hack that
14578 here by making the size equal to the key (wider, in this case) operand. */
14579 unsigned key = (rs == NS_QQI || rs == NS_DDI || rs == NS_FFI) ? N_KEY : 0;
14580
14581 CVT_FLAVOUR_VAR;
14582
14583 return neon_cvt_flavour_invalid;
14584 #undef CVT_VAR
14585 }
14586
14587 enum neon_cvt_mode
14588 {
14589 neon_cvt_mode_a,
14590 neon_cvt_mode_n,
14591 neon_cvt_mode_p,
14592 neon_cvt_mode_m,
14593 neon_cvt_mode_z,
14594 neon_cvt_mode_x,
14595 neon_cvt_mode_r
14596 };
14597
14598 /* Neon-syntax VFP conversions. */
14599
14600 static void
14601 do_vfp_nsyn_cvt (enum neon_shape rs, enum neon_cvt_flavour flavour)
14602 {
14603 const char *opname = 0;
14604
14605 if (rs == NS_DDI || rs == NS_QQI || rs == NS_FFI)
14606 {
14607 /* Conversions with immediate bitshift. */
14608 const char *enc[] =
14609 {
14610 #define CVT_VAR(C,A,B,R,BSN,CN,ZN) BSN,
14611 CVT_FLAVOUR_VAR
14612 NULL
14613 #undef CVT_VAR
14614 };
14615
14616 if (flavour < (int) ARRAY_SIZE (enc))
14617 {
14618 opname = enc[flavour];
14619 constraint (inst.operands[0].reg != inst.operands[1].reg,
14620 _("operands 0 and 1 must be the same register"));
14621 inst.operands[1] = inst.operands[2];
14622 memset (&inst.operands[2], '\0', sizeof (inst.operands[2]));
14623 }
14624 }
14625 else
14626 {
14627 /* Conversions without bitshift. */
14628 const char *enc[] =
14629 {
14630 #define CVT_VAR(C,A,B,R,BSN,CN,ZN) CN,
14631 CVT_FLAVOUR_VAR
14632 NULL
14633 #undef CVT_VAR
14634 };
14635
14636 if (flavour < (int) ARRAY_SIZE (enc))
14637 opname = enc[flavour];
14638 }
14639
14640 if (opname)
14641 do_vfp_nsyn_opcode (opname);
14642 }
14643
14644 static void
14645 do_vfp_nsyn_cvtz (void)
14646 {
14647 enum neon_shape rs = neon_select_shape (NS_FF, NS_FD, NS_NULL);
14648 enum neon_cvt_flavour flavour = get_neon_cvt_flavour (rs);
14649 const char *enc[] =
14650 {
14651 #define CVT_VAR(C,A,B,R,BSN,CN,ZN) ZN,
14652 CVT_FLAVOUR_VAR
14653 NULL
14654 #undef CVT_VAR
14655 };
14656
14657 if (flavour < (int) ARRAY_SIZE (enc) && enc[flavour])
14658 do_vfp_nsyn_opcode (enc[flavour]);
14659 }
14660
14661 static void
14662 do_vfp_nsyn_cvt_fpv8 (enum neon_cvt_flavour flavour,
14663 enum neon_cvt_mode mode)
14664 {
14665 int sz, op;
14666 int rm;
14667
14668 set_it_insn_type (OUTSIDE_IT_INSN);
14669
14670 switch (flavour)
14671 {
14672 case neon_cvt_flavour_s32_f64:
14673 sz = 1;
14674 op = 1;
14675 break;
14676 case neon_cvt_flavour_s32_f32:
14677 sz = 0;
14678 op = 1;
14679 break;
14680 case neon_cvt_flavour_u32_f64:
14681 sz = 1;
14682 op = 0;
14683 break;
14684 case neon_cvt_flavour_u32_f32:
14685 sz = 0;
14686 op = 0;
14687 break;
14688 default:
14689 first_error (_("invalid instruction shape"));
14690 return;
14691 }
14692
14693 switch (mode)
14694 {
14695 case neon_cvt_mode_a: rm = 0; break;
14696 case neon_cvt_mode_n: rm = 1; break;
14697 case neon_cvt_mode_p: rm = 2; break;
14698 case neon_cvt_mode_m: rm = 3; break;
14699 default: first_error (_("invalid rounding mode")); return;
14700 }
14701
14702 NEON_ENCODE (FPV8, inst);
14703 encode_arm_vfp_reg (inst.operands[0].reg, VFP_REG_Sd);
14704 encode_arm_vfp_reg (inst.operands[1].reg, sz == 1 ? VFP_REG_Dm : VFP_REG_Sm);
14705 inst.instruction |= sz << 8;
14706 inst.instruction |= op << 7;
14707 inst.instruction |= rm << 16;
14708 inst.instruction |= 0xf0000000;
14709 inst.is_neon = TRUE;
14710 }
14711
14712 static void
14713 do_neon_cvt_1 (enum neon_cvt_mode mode)
14714 {
14715 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_FFI, NS_DD, NS_QQ,
14716 NS_FD, NS_DF, NS_FF, NS_QD, NS_DQ, NS_NULL);
14717 enum neon_cvt_flavour flavour = get_neon_cvt_flavour (rs);
14718
14719 /* PR11109: Handle round-to-zero for VCVT conversions. */
14720 if (mode == neon_cvt_mode_z
14721 && ARM_CPU_HAS_FEATURE (cpu_variant, fpu_arch_vfp_v2)
14722 && (flavour == neon_cvt_flavour_s32_f32
14723 || flavour == neon_cvt_flavour_u32_f32
14724 || flavour == neon_cvt_flavour_s32_f64
14725 || flavour == neon_cvt_flavour_u32_f64)
14726 && (rs == NS_FD || rs == NS_FF))
14727 {
14728 do_vfp_nsyn_cvtz ();
14729 return;
14730 }
14731
14732 /* VFP rather than Neon conversions. */
14733 if (flavour >= neon_cvt_flavour_first_fp)
14734 {
14735 if (mode == neon_cvt_mode_x || mode == neon_cvt_mode_z)
14736 do_vfp_nsyn_cvt (rs, flavour);
14737 else
14738 do_vfp_nsyn_cvt_fpv8 (flavour, mode);
14739
14740 return;
14741 }
14742
14743 switch (rs)
14744 {
14745 case NS_DDI:
14746 case NS_QQI:
14747 {
14748 unsigned immbits;
14749 unsigned enctab[] = { 0x0000100, 0x1000100, 0x0, 0x1000000 };
14750
14751 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14752 return;
14753
14754 /* Fixed-point conversion with #0 immediate is encoded as an
14755 integer conversion. */
14756 if (inst.operands[2].present && inst.operands[2].imm == 0)
14757 goto int_encode;
14758 immbits = 32 - inst.operands[2].imm;
14759 NEON_ENCODE (IMMED, inst);
14760 if (flavour != neon_cvt_flavour_invalid)
14761 inst.instruction |= enctab[flavour];
14762 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14763 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14764 inst.instruction |= LOW4 (inst.operands[1].reg);
14765 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14766 inst.instruction |= neon_quad (rs) << 6;
14767 inst.instruction |= 1 << 21;
14768 inst.instruction |= immbits << 16;
14769
14770 neon_dp_fixup (&inst);
14771 }
14772 break;
14773
14774 case NS_DD:
14775 case NS_QQ:
14776 if (mode != neon_cvt_mode_x && mode != neon_cvt_mode_z)
14777 {
14778 NEON_ENCODE (FLOAT, inst);
14779 set_it_insn_type (OUTSIDE_IT_INSN);
14780
14781 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH8) == FAIL)
14782 return;
14783
14784 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14785 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14786 inst.instruction |= LOW4 (inst.operands[1].reg);
14787 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14788 inst.instruction |= neon_quad (rs) << 6;
14789 inst.instruction |= (flavour == neon_cvt_flavour_u32_f32) << 7;
14790 inst.instruction |= mode << 8;
14791 if (thumb_mode)
14792 inst.instruction |= 0xfc000000;
14793 else
14794 inst.instruction |= 0xf0000000;
14795 }
14796 else
14797 {
14798 int_encode:
14799 {
14800 unsigned enctab[] = { 0x100, 0x180, 0x0, 0x080 };
14801
14802 NEON_ENCODE (INTEGER, inst);
14803
14804 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
14805 return;
14806
14807 if (flavour != neon_cvt_flavour_invalid)
14808 inst.instruction |= enctab[flavour];
14809
14810 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14811 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14812 inst.instruction |= LOW4 (inst.operands[1].reg);
14813 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14814 inst.instruction |= neon_quad (rs) << 6;
14815 inst.instruction |= 2 << 18;
14816
14817 neon_dp_fixup (&inst);
14818 }
14819 }
14820 break;
14821
14822 /* Half-precision conversions for Advanced SIMD -- neon. */
14823 case NS_QD:
14824 case NS_DQ:
14825
14826 if ((rs == NS_DQ)
14827 && (inst.vectype.el[0].size != 16 || inst.vectype.el[1].size != 32))
14828 {
14829 as_bad (_("operand size must match register width"));
14830 break;
14831 }
14832
14833 if ((rs == NS_QD)
14834 && ((inst.vectype.el[0].size != 32 || inst.vectype.el[1].size != 16)))
14835 {
14836 as_bad (_("operand size must match register width"));
14837 break;
14838 }
14839
14840 if (rs == NS_DQ)
14841 inst.instruction = 0x3b60600;
14842 else
14843 inst.instruction = 0x3b60700;
14844
14845 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
14846 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
14847 inst.instruction |= LOW4 (inst.operands[1].reg);
14848 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
14849 neon_dp_fixup (&inst);
14850 break;
14851
14852 default:
14853 /* Some VFP conversions go here (s32 <-> f32, u32 <-> f32). */
14854 if (mode == neon_cvt_mode_x || mode == neon_cvt_mode_z)
14855 do_vfp_nsyn_cvt (rs, flavour);
14856 else
14857 do_vfp_nsyn_cvt_fpv8 (flavour, mode);
14858 }
14859 }
14860
14861 static void
14862 do_neon_cvtr (void)
14863 {
14864 do_neon_cvt_1 (neon_cvt_mode_x);
14865 }
14866
14867 static void
14868 do_neon_cvt (void)
14869 {
14870 do_neon_cvt_1 (neon_cvt_mode_z);
14871 }
14872
14873 static void
14874 do_neon_cvta (void)
14875 {
14876 do_neon_cvt_1 (neon_cvt_mode_a);
14877 }
14878
14879 static void
14880 do_neon_cvtn (void)
14881 {
14882 do_neon_cvt_1 (neon_cvt_mode_n);
14883 }
14884
14885 static void
14886 do_neon_cvtp (void)
14887 {
14888 do_neon_cvt_1 (neon_cvt_mode_p);
14889 }
14890
14891 static void
14892 do_neon_cvtm (void)
14893 {
14894 do_neon_cvt_1 (neon_cvt_mode_m);
14895 }
14896
14897 static void
14898 do_neon_cvttb_2 (bfd_boolean t, bfd_boolean to, bfd_boolean is_double)
14899 {
14900 if (is_double)
14901 mark_feature_used (&fpu_vfp_ext_armv8);
14902
14903 encode_arm_vfp_reg (inst.operands[0].reg,
14904 (is_double && !to) ? VFP_REG_Dd : VFP_REG_Sd);
14905 encode_arm_vfp_reg (inst.operands[1].reg,
14906 (is_double && to) ? VFP_REG_Dm : VFP_REG_Sm);
14907 inst.instruction |= to ? 0x10000 : 0;
14908 inst.instruction |= t ? 0x80 : 0;
14909 inst.instruction |= is_double ? 0x100 : 0;
14910 do_vfp_cond_or_thumb ();
14911 }
14912
14913 static void
14914 do_neon_cvttb_1 (bfd_boolean t)
14915 {
14916 enum neon_shape rs = neon_select_shape (NS_FF, NS_FD, NS_DF, NS_NULL);
14917
14918 if (rs == NS_NULL)
14919 return;
14920 else if (neon_check_type (2, rs, N_F16, N_F32 | N_VFP).type != NT_invtype)
14921 {
14922 inst.error = NULL;
14923 do_neon_cvttb_2 (t, /*to=*/TRUE, /*is_double=*/FALSE);
14924 }
14925 else if (neon_check_type (2, rs, N_F32 | N_VFP, N_F16).type != NT_invtype)
14926 {
14927 inst.error = NULL;
14928 do_neon_cvttb_2 (t, /*to=*/FALSE, /*is_double=*/FALSE);
14929 }
14930 else if (neon_check_type (2, rs, N_F16, N_F64 | N_VFP).type != NT_invtype)
14931 {
14932 inst.error = NULL;
14933 do_neon_cvttb_2 (t, /*to=*/TRUE, /*is_double=*/TRUE);
14934 }
14935 else if (neon_check_type (2, rs, N_F64 | N_VFP, N_F16).type != NT_invtype)
14936 {
14937 inst.error = NULL;
14938 do_neon_cvttb_2 (t, /*to=*/FALSE, /*is_double=*/TRUE);
14939 }
14940 else
14941 return;
14942 }
14943
14944 static void
14945 do_neon_cvtb (void)
14946 {
14947 do_neon_cvttb_1 (FALSE);
14948 }
14949
14950
14951 static void
14952 do_neon_cvtt (void)
14953 {
14954 do_neon_cvttb_1 (TRUE);
14955 }
14956
14957 static void
14958 neon_move_immediate (void)
14959 {
14960 enum neon_shape rs = neon_select_shape (NS_DI, NS_QI, NS_NULL);
14961 struct neon_type_el et = neon_check_type (2, rs,
14962 N_I8 | N_I16 | N_I32 | N_I64 | N_F32 | N_KEY, N_EQK);
14963 unsigned immlo, immhi = 0, immbits;
14964 int op, cmode, float_p;
14965
14966 constraint (et.type == NT_invtype,
14967 _("operand size must be specified for immediate VMOV"));
14968
14969 /* We start out as an MVN instruction if OP = 1, MOV otherwise. */
14970 op = (inst.instruction & (1 << 5)) != 0;
14971
14972 immlo = inst.operands[1].imm;
14973 if (inst.operands[1].regisimm)
14974 immhi = inst.operands[1].reg;
14975
14976 constraint (et.size < 32 && (immlo & ~((1 << et.size) - 1)) != 0,
14977 _("immediate has bits set outside the operand size"));
14978
14979 float_p = inst.operands[1].immisfloat;
14980
14981 if ((cmode = neon_cmode_for_move_imm (immlo, immhi, float_p, &immbits, &op,
14982 et.size, et.type)) == FAIL)
14983 {
14984 /* Invert relevant bits only. */
14985 neon_invert_size (&immlo, &immhi, et.size);
14986 /* Flip from VMOV/VMVN to VMVN/VMOV. Some immediate types are unavailable
14987 with one or the other; those cases are caught by
14988 neon_cmode_for_move_imm. */
14989 op = !op;
14990 if ((cmode = neon_cmode_for_move_imm (immlo, immhi, float_p, &immbits,
14991 &op, et.size, et.type)) == FAIL)
14992 {
14993 first_error (_("immediate out of range"));
14994 return;
14995 }
14996 }
14997
14998 inst.instruction &= ~(1 << 5);
14999 inst.instruction |= op << 5;
15000
15001 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15002 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15003 inst.instruction |= neon_quad (rs) << 6;
15004 inst.instruction |= cmode << 8;
15005
15006 neon_write_immbits (immbits);
15007 }
15008
15009 static void
15010 do_neon_mvn (void)
15011 {
15012 if (inst.operands[1].isreg)
15013 {
15014 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15015
15016 NEON_ENCODE (INTEGER, inst);
15017 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15018 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15019 inst.instruction |= LOW4 (inst.operands[1].reg);
15020 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
15021 inst.instruction |= neon_quad (rs) << 6;
15022 }
15023 else
15024 {
15025 NEON_ENCODE (IMMED, inst);
15026 neon_move_immediate ();
15027 }
15028
15029 neon_dp_fixup (&inst);
15030 }
15031
15032 /* Encode instructions of form:
15033
15034 |28/24|23|22|21 20|19 16|15 12|11 8|7|6|5|4|3 0|
15035 | U |x |D |size | Rn | Rd |x x x x|N|x|M|x| Rm | */
15036
15037 static void
15038 neon_mixed_length (struct neon_type_el et, unsigned size)
15039 {
15040 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15041 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15042 inst.instruction |= LOW4 (inst.operands[1].reg) << 16;
15043 inst.instruction |= HI1 (inst.operands[1].reg) << 7;
15044 inst.instruction |= LOW4 (inst.operands[2].reg);
15045 inst.instruction |= HI1 (inst.operands[2].reg) << 5;
15046 inst.instruction |= (et.type == NT_unsigned) << 24;
15047 inst.instruction |= neon_logbits (size) << 20;
15048
15049 neon_dp_fixup (&inst);
15050 }
15051
15052 static void
15053 do_neon_dyadic_long (void)
15054 {
15055 /* FIXME: Type checking for lengthening op. */
15056 struct neon_type_el et = neon_check_type (3, NS_QDD,
15057 N_EQK | N_DBL, N_EQK, N_SU_32 | N_KEY);
15058 neon_mixed_length (et, et.size);
15059 }
15060
15061 static void
15062 do_neon_abal (void)
15063 {
15064 struct neon_type_el et = neon_check_type (3, NS_QDD,
15065 N_EQK | N_INT | N_DBL, N_EQK, N_SU_32 | N_KEY);
15066 neon_mixed_length (et, et.size);
15067 }
15068
15069 static void
15070 neon_mac_reg_scalar_long (unsigned regtypes, unsigned scalartypes)
15071 {
15072 if (inst.operands[2].isscalar)
15073 {
15074 struct neon_type_el et = neon_check_type (3, NS_QDS,
15075 N_EQK | N_DBL, N_EQK, regtypes | N_KEY);
15076 NEON_ENCODE (SCALAR, inst);
15077 neon_mul_mac (et, et.type == NT_unsigned);
15078 }
15079 else
15080 {
15081 struct neon_type_el et = neon_check_type (3, NS_QDD,
15082 N_EQK | N_DBL, N_EQK, scalartypes | N_KEY);
15083 NEON_ENCODE (INTEGER, inst);
15084 neon_mixed_length (et, et.size);
15085 }
15086 }
15087
15088 static void
15089 do_neon_mac_maybe_scalar_long (void)
15090 {
15091 neon_mac_reg_scalar_long (N_S16 | N_S32 | N_U16 | N_U32, N_SU_32);
15092 }
15093
15094 static void
15095 do_neon_dyadic_wide (void)
15096 {
15097 struct neon_type_el et = neon_check_type (3, NS_QQD,
15098 N_EQK | N_DBL, N_EQK | N_DBL, N_SU_32 | N_KEY);
15099 neon_mixed_length (et, et.size);
15100 }
15101
15102 static void
15103 do_neon_dyadic_narrow (void)
15104 {
15105 struct neon_type_el et = neon_check_type (3, NS_QDD,
15106 N_EQK | N_DBL, N_EQK, N_I16 | N_I32 | N_I64 | N_KEY);
15107 /* Operand sign is unimportant, and the U bit is part of the opcode,
15108 so force the operand type to integer. */
15109 et.type = NT_integer;
15110 neon_mixed_length (et, et.size / 2);
15111 }
15112
15113 static void
15114 do_neon_mul_sat_scalar_long (void)
15115 {
15116 neon_mac_reg_scalar_long (N_S16 | N_S32, N_S16 | N_S32);
15117 }
15118
15119 static void
15120 do_neon_vmull (void)
15121 {
15122 if (inst.operands[2].isscalar)
15123 do_neon_mac_maybe_scalar_long ();
15124 else
15125 {
15126 struct neon_type_el et = neon_check_type (3, NS_QDD,
15127 N_EQK | N_DBL, N_EQK, N_SU_32 | N_P8 | N_P64 | N_KEY);
15128
15129 if (et.type == NT_poly)
15130 NEON_ENCODE (POLY, inst);
15131 else
15132 NEON_ENCODE (INTEGER, inst);
15133
15134 /* For polynomial encoding the U bit must be zero, and the size must
15135 be 8 (encoded as 0b00) or, on ARMv8 or later 64 (encoded, non
15136 obviously, as 0b10). */
15137 if (et.size == 64)
15138 {
15139 /* Check we're on the correct architecture. */
15140 if (!mark_feature_used (&fpu_crypto_ext_armv8))
15141 inst.error =
15142 _("Instruction form not available on this architecture.");
15143
15144 et.size = 32;
15145 }
15146
15147 neon_mixed_length (et, et.size);
15148 }
15149 }
15150
15151 static void
15152 do_neon_ext (void)
15153 {
15154 enum neon_shape rs = neon_select_shape (NS_DDDI, NS_QQQI, NS_NULL);
15155 struct neon_type_el et = neon_check_type (3, rs,
15156 N_EQK, N_EQK, N_8 | N_16 | N_32 | N_64 | N_KEY);
15157 unsigned imm = (inst.operands[3].imm * et.size) / 8;
15158
15159 constraint (imm >= (unsigned) (neon_quad (rs) ? 16 : 8),
15160 _("shift out of range"));
15161 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15162 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15163 inst.instruction |= LOW4 (inst.operands[1].reg) << 16;
15164 inst.instruction |= HI1 (inst.operands[1].reg) << 7;
15165 inst.instruction |= LOW4 (inst.operands[2].reg);
15166 inst.instruction |= HI1 (inst.operands[2].reg) << 5;
15167 inst.instruction |= neon_quad (rs) << 6;
15168 inst.instruction |= imm << 8;
15169
15170 neon_dp_fixup (&inst);
15171 }
15172
15173 static void
15174 do_neon_rev (void)
15175 {
15176 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15177 struct neon_type_el et = neon_check_type (2, rs,
15178 N_EQK, N_8 | N_16 | N_32 | N_KEY);
15179 unsigned op = (inst.instruction >> 7) & 3;
15180 /* N (width of reversed regions) is encoded as part of the bitmask. We
15181 extract it here to check the elements to be reversed are smaller.
15182 Otherwise we'd get a reserved instruction. */
15183 unsigned elsize = (op == 2) ? 16 : (op == 1) ? 32 : (op == 0) ? 64 : 0;
15184 gas_assert (elsize != 0);
15185 constraint (et.size >= elsize,
15186 _("elements must be smaller than reversal region"));
15187 neon_two_same (neon_quad (rs), 1, et.size);
15188 }
15189
15190 static void
15191 do_neon_dup (void)
15192 {
15193 if (inst.operands[1].isscalar)
15194 {
15195 enum neon_shape rs = neon_select_shape (NS_DS, NS_QS, NS_NULL);
15196 struct neon_type_el et = neon_check_type (2, rs,
15197 N_EQK, N_8 | N_16 | N_32 | N_KEY);
15198 unsigned sizebits = et.size >> 3;
15199 unsigned dm = NEON_SCALAR_REG (inst.operands[1].reg);
15200 int logsize = neon_logbits (et.size);
15201 unsigned x = NEON_SCALAR_INDEX (inst.operands[1].reg) << logsize;
15202
15203 if (vfp_or_neon_is_neon (NEON_CHECK_CC) == FAIL)
15204 return;
15205
15206 NEON_ENCODE (SCALAR, inst);
15207 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15208 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15209 inst.instruction |= LOW4 (dm);
15210 inst.instruction |= HI1 (dm) << 5;
15211 inst.instruction |= neon_quad (rs) << 6;
15212 inst.instruction |= x << 17;
15213 inst.instruction |= sizebits << 16;
15214
15215 neon_dp_fixup (&inst);
15216 }
15217 else
15218 {
15219 enum neon_shape rs = neon_select_shape (NS_DR, NS_QR, NS_NULL);
15220 struct neon_type_el et = neon_check_type (2, rs,
15221 N_8 | N_16 | N_32 | N_KEY, N_EQK);
15222 /* Duplicate ARM register to lanes of vector. */
15223 NEON_ENCODE (ARMREG, inst);
15224 switch (et.size)
15225 {
15226 case 8: inst.instruction |= 0x400000; break;
15227 case 16: inst.instruction |= 0x000020; break;
15228 case 32: inst.instruction |= 0x000000; break;
15229 default: break;
15230 }
15231 inst.instruction |= LOW4 (inst.operands[1].reg) << 12;
15232 inst.instruction |= LOW4 (inst.operands[0].reg) << 16;
15233 inst.instruction |= HI1 (inst.operands[0].reg) << 7;
15234 inst.instruction |= neon_quad (rs) << 21;
15235 /* The encoding for this instruction is identical for the ARM and Thumb
15236 variants, except for the condition field. */
15237 do_vfp_cond_or_thumb ();
15238 }
15239 }
15240
15241 /* VMOV has particularly many variations. It can be one of:
15242 0. VMOV<c><q> <Qd>, <Qm>
15243 1. VMOV<c><q> <Dd>, <Dm>
15244 (Register operations, which are VORR with Rm = Rn.)
15245 2. VMOV<c><q>.<dt> <Qd>, #<imm>
15246 3. VMOV<c><q>.<dt> <Dd>, #<imm>
15247 (Immediate loads.)
15248 4. VMOV<c><q>.<size> <Dn[x]>, <Rd>
15249 (ARM register to scalar.)
15250 5. VMOV<c><q> <Dm>, <Rd>, <Rn>
15251 (Two ARM registers to vector.)
15252 6. VMOV<c><q>.<dt> <Rd>, <Dn[x]>
15253 (Scalar to ARM register.)
15254 7. VMOV<c><q> <Rd>, <Rn>, <Dm>
15255 (Vector to two ARM registers.)
15256 8. VMOV.F32 <Sd>, <Sm>
15257 9. VMOV.F64 <Dd>, <Dm>
15258 (VFP register moves.)
15259 10. VMOV.F32 <Sd>, #imm
15260 11. VMOV.F64 <Dd>, #imm
15261 (VFP float immediate load.)
15262 12. VMOV <Rd>, <Sm>
15263 (VFP single to ARM reg.)
15264 13. VMOV <Sd>, <Rm>
15265 (ARM reg to VFP single.)
15266 14. VMOV <Rd>, <Re>, <Sn>, <Sm>
15267 (Two ARM regs to two VFP singles.)
15268 15. VMOV <Sd>, <Se>, <Rn>, <Rm>
15269 (Two VFP singles to two ARM regs.)
15270
15271 These cases can be disambiguated using neon_select_shape, except cases 1/9
15272 and 3/11 which depend on the operand type too.
15273
15274 All the encoded bits are hardcoded by this function.
15275
15276 Cases 4, 6 may be used with VFPv1 and above (only 32-bit transfers!).
15277 Cases 5, 7 may be used with VFPv2 and above.
15278
15279 FIXME: Some of the checking may be a bit sloppy (in a couple of cases you
15280 can specify a type where it doesn't make sense to, and is ignored). */
15281
15282 static void
15283 do_neon_mov (void)
15284 {
15285 enum neon_shape rs = neon_select_shape (NS_RRFF, NS_FFRR, NS_DRR, NS_RRD,
15286 NS_QQ, NS_DD, NS_QI, NS_DI, NS_SR, NS_RS, NS_FF, NS_FI, NS_RF, NS_FR,
15287 NS_NULL);
15288 struct neon_type_el et;
15289 const char *ldconst = 0;
15290
15291 switch (rs)
15292 {
15293 case NS_DD: /* case 1/9. */
15294 et = neon_check_type (2, rs, N_EQK, N_F64 | N_KEY);
15295 /* It is not an error here if no type is given. */
15296 inst.error = NULL;
15297 if (et.type == NT_float && et.size == 64)
15298 {
15299 do_vfp_nsyn_opcode ("fcpyd");
15300 break;
15301 }
15302 /* fall through. */
15303
15304 case NS_QQ: /* case 0/1. */
15305 {
15306 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
15307 return;
15308 /* The architecture manual I have doesn't explicitly state which
15309 value the U bit should have for register->register moves, but
15310 the equivalent VORR instruction has U = 0, so do that. */
15311 inst.instruction = 0x0200110;
15312 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15313 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15314 inst.instruction |= LOW4 (inst.operands[1].reg);
15315 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
15316 inst.instruction |= LOW4 (inst.operands[1].reg) << 16;
15317 inst.instruction |= HI1 (inst.operands[1].reg) << 7;
15318 inst.instruction |= neon_quad (rs) << 6;
15319
15320 neon_dp_fixup (&inst);
15321 }
15322 break;
15323
15324 case NS_DI: /* case 3/11. */
15325 et = neon_check_type (2, rs, N_EQK, N_F64 | N_KEY);
15326 inst.error = NULL;
15327 if (et.type == NT_float && et.size == 64)
15328 {
15329 /* case 11 (fconstd). */
15330 ldconst = "fconstd";
15331 goto encode_fconstd;
15332 }
15333 /* fall through. */
15334
15335 case NS_QI: /* case 2/3. */
15336 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH) == FAIL)
15337 return;
15338 inst.instruction = 0x0800010;
15339 neon_move_immediate ();
15340 neon_dp_fixup (&inst);
15341 break;
15342
15343 case NS_SR: /* case 4. */
15344 {
15345 unsigned bcdebits = 0;
15346 int logsize;
15347 unsigned dn = NEON_SCALAR_REG (inst.operands[0].reg);
15348 unsigned x = NEON_SCALAR_INDEX (inst.operands[0].reg);
15349
15350 /* .<size> is optional here, defaulting to .32. */
15351 if (inst.vectype.elems == 0
15352 && inst.operands[0].vectype.type == NT_invtype
15353 && inst.operands[1].vectype.type == NT_invtype)
15354 {
15355 inst.vectype.el[0].type = NT_untyped;
15356 inst.vectype.el[0].size = 32;
15357 inst.vectype.elems = 1;
15358 }
15359
15360 et = neon_check_type (2, NS_NULL, N_8 | N_16 | N_32 | N_KEY, N_EQK);
15361 logsize = neon_logbits (et.size);
15362
15363 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_vfp_ext_v1),
15364 _(BAD_FPU));
15365 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_neon_ext_v1)
15366 && et.size != 32, _(BAD_FPU));
15367 constraint (et.type == NT_invtype, _("bad type for scalar"));
15368 constraint (x >= 64 / et.size, _("scalar index out of range"));
15369
15370 switch (et.size)
15371 {
15372 case 8: bcdebits = 0x8; break;
15373 case 16: bcdebits = 0x1; break;
15374 case 32: bcdebits = 0x0; break;
15375 default: ;
15376 }
15377
15378 bcdebits |= x << logsize;
15379
15380 inst.instruction = 0xe000b10;
15381 do_vfp_cond_or_thumb ();
15382 inst.instruction |= LOW4 (dn) << 16;
15383 inst.instruction |= HI1 (dn) << 7;
15384 inst.instruction |= inst.operands[1].reg << 12;
15385 inst.instruction |= (bcdebits & 3) << 5;
15386 inst.instruction |= (bcdebits >> 2) << 21;
15387 }
15388 break;
15389
15390 case NS_DRR: /* case 5 (fmdrr). */
15391 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_vfp_ext_v2),
15392 _(BAD_FPU));
15393
15394 inst.instruction = 0xc400b10;
15395 do_vfp_cond_or_thumb ();
15396 inst.instruction |= LOW4 (inst.operands[0].reg);
15397 inst.instruction |= HI1 (inst.operands[0].reg) << 5;
15398 inst.instruction |= inst.operands[1].reg << 12;
15399 inst.instruction |= inst.operands[2].reg << 16;
15400 break;
15401
15402 case NS_RS: /* case 6. */
15403 {
15404 unsigned logsize;
15405 unsigned dn = NEON_SCALAR_REG (inst.operands[1].reg);
15406 unsigned x = NEON_SCALAR_INDEX (inst.operands[1].reg);
15407 unsigned abcdebits = 0;
15408
15409 /* .<dt> is optional here, defaulting to .32. */
15410 if (inst.vectype.elems == 0
15411 && inst.operands[0].vectype.type == NT_invtype
15412 && inst.operands[1].vectype.type == NT_invtype)
15413 {
15414 inst.vectype.el[0].type = NT_untyped;
15415 inst.vectype.el[0].size = 32;
15416 inst.vectype.elems = 1;
15417 }
15418
15419 et = neon_check_type (2, NS_NULL,
15420 N_EQK, N_S8 | N_S16 | N_U8 | N_U16 | N_32 | N_KEY);
15421 logsize = neon_logbits (et.size);
15422
15423 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_vfp_ext_v1),
15424 _(BAD_FPU));
15425 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_neon_ext_v1)
15426 && et.size != 32, _(BAD_FPU));
15427 constraint (et.type == NT_invtype, _("bad type for scalar"));
15428 constraint (x >= 64 / et.size, _("scalar index out of range"));
15429
15430 switch (et.size)
15431 {
15432 case 8: abcdebits = (et.type == NT_signed) ? 0x08 : 0x18; break;
15433 case 16: abcdebits = (et.type == NT_signed) ? 0x01 : 0x11; break;
15434 case 32: abcdebits = 0x00; break;
15435 default: ;
15436 }
15437
15438 abcdebits |= x << logsize;
15439 inst.instruction = 0xe100b10;
15440 do_vfp_cond_or_thumb ();
15441 inst.instruction |= LOW4 (dn) << 16;
15442 inst.instruction |= HI1 (dn) << 7;
15443 inst.instruction |= inst.operands[0].reg << 12;
15444 inst.instruction |= (abcdebits & 3) << 5;
15445 inst.instruction |= (abcdebits >> 2) << 21;
15446 }
15447 break;
15448
15449 case NS_RRD: /* case 7 (fmrrd). */
15450 constraint (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_vfp_ext_v2),
15451 _(BAD_FPU));
15452
15453 inst.instruction = 0xc500b10;
15454 do_vfp_cond_or_thumb ();
15455 inst.instruction |= inst.operands[0].reg << 12;
15456 inst.instruction |= inst.operands[1].reg << 16;
15457 inst.instruction |= LOW4 (inst.operands[2].reg);
15458 inst.instruction |= HI1 (inst.operands[2].reg) << 5;
15459 break;
15460
15461 case NS_FF: /* case 8 (fcpys). */
15462 do_vfp_nsyn_opcode ("fcpys");
15463 break;
15464
15465 case NS_FI: /* case 10 (fconsts). */
15466 ldconst = "fconsts";
15467 encode_fconstd:
15468 if (is_quarter_float (inst.operands[1].imm))
15469 {
15470 inst.operands[1].imm = neon_qfloat_bits (inst.operands[1].imm);
15471 do_vfp_nsyn_opcode (ldconst);
15472 }
15473 else
15474 first_error (_("immediate out of range"));
15475 break;
15476
15477 case NS_RF: /* case 12 (fmrs). */
15478 do_vfp_nsyn_opcode ("fmrs");
15479 break;
15480
15481 case NS_FR: /* case 13 (fmsr). */
15482 do_vfp_nsyn_opcode ("fmsr");
15483 break;
15484
15485 /* The encoders for the fmrrs and fmsrr instructions expect three operands
15486 (one of which is a list), but we have parsed four. Do some fiddling to
15487 make the operands what do_vfp_reg2_from_sp2 and do_vfp_sp2_from_reg2
15488 expect. */
15489 case NS_RRFF: /* case 14 (fmrrs). */
15490 constraint (inst.operands[3].reg != inst.operands[2].reg + 1,
15491 _("VFP registers must be adjacent"));
15492 inst.operands[2].imm = 2;
15493 memset (&inst.operands[3], '\0', sizeof (inst.operands[3]));
15494 do_vfp_nsyn_opcode ("fmrrs");
15495 break;
15496
15497 case NS_FFRR: /* case 15 (fmsrr). */
15498 constraint (inst.operands[1].reg != inst.operands[0].reg + 1,
15499 _("VFP registers must be adjacent"));
15500 inst.operands[1] = inst.operands[2];
15501 inst.operands[2] = inst.operands[3];
15502 inst.operands[0].imm = 2;
15503 memset (&inst.operands[3], '\0', sizeof (inst.operands[3]));
15504 do_vfp_nsyn_opcode ("fmsrr");
15505 break;
15506
15507 case NS_NULL:
15508 /* neon_select_shape has determined that the instruction
15509 shape is wrong and has already set the error message. */
15510 break;
15511
15512 default:
15513 abort ();
15514 }
15515 }
15516
15517 static void
15518 do_neon_rshift_round_imm (void)
15519 {
15520 enum neon_shape rs = neon_select_shape (NS_DDI, NS_QQI, NS_NULL);
15521 struct neon_type_el et = neon_check_type (2, rs, N_EQK, N_SU_ALL | N_KEY);
15522 int imm = inst.operands[2].imm;
15523
15524 /* imm == 0 case is encoded as VMOV for V{R}SHR. */
15525 if (imm == 0)
15526 {
15527 inst.operands[2].present = 0;
15528 do_neon_mov ();
15529 return;
15530 }
15531
15532 constraint (imm < 1 || (unsigned)imm > et.size,
15533 _("immediate out of range for shift"));
15534 neon_imm_shift (TRUE, et.type == NT_unsigned, neon_quad (rs), et,
15535 et.size - imm);
15536 }
15537
15538 static void
15539 do_neon_movl (void)
15540 {
15541 struct neon_type_el et = neon_check_type (2, NS_QD,
15542 N_EQK | N_DBL, N_SU_32 | N_KEY);
15543 unsigned sizebits = et.size >> 3;
15544 inst.instruction |= sizebits << 19;
15545 neon_two_same (0, et.type == NT_unsigned, -1);
15546 }
15547
15548 static void
15549 do_neon_trn (void)
15550 {
15551 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15552 struct neon_type_el et = neon_check_type (2, rs,
15553 N_EQK, N_8 | N_16 | N_32 | N_KEY);
15554 NEON_ENCODE (INTEGER, inst);
15555 neon_two_same (neon_quad (rs), 1, et.size);
15556 }
15557
15558 static void
15559 do_neon_zip_uzp (void)
15560 {
15561 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15562 struct neon_type_el et = neon_check_type (2, rs,
15563 N_EQK, N_8 | N_16 | N_32 | N_KEY);
15564 if (rs == NS_DD && et.size == 32)
15565 {
15566 /* Special case: encode as VTRN.32 <Dd>, <Dm>. */
15567 inst.instruction = N_MNEM_vtrn;
15568 do_neon_trn ();
15569 return;
15570 }
15571 neon_two_same (neon_quad (rs), 1, et.size);
15572 }
15573
15574 static void
15575 do_neon_sat_abs_neg (void)
15576 {
15577 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15578 struct neon_type_el et = neon_check_type (2, rs,
15579 N_EQK, N_S8 | N_S16 | N_S32 | N_KEY);
15580 neon_two_same (neon_quad (rs), 1, et.size);
15581 }
15582
15583 static void
15584 do_neon_pair_long (void)
15585 {
15586 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15587 struct neon_type_el et = neon_check_type (2, rs, N_EQK, N_SU_32 | N_KEY);
15588 /* Unsigned is encoded in OP field (bit 7) for these instruction. */
15589 inst.instruction |= (et.type == NT_unsigned) << 7;
15590 neon_two_same (neon_quad (rs), 1, et.size);
15591 }
15592
15593 static void
15594 do_neon_recip_est (void)
15595 {
15596 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15597 struct neon_type_el et = neon_check_type (2, rs,
15598 N_EQK | N_FLT, N_F32 | N_U32 | N_KEY);
15599 inst.instruction |= (et.type == NT_float) << 8;
15600 neon_two_same (neon_quad (rs), 1, et.size);
15601 }
15602
15603 static void
15604 do_neon_cls (void)
15605 {
15606 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15607 struct neon_type_el et = neon_check_type (2, rs,
15608 N_EQK, N_S8 | N_S16 | N_S32 | N_KEY);
15609 neon_two_same (neon_quad (rs), 1, et.size);
15610 }
15611
15612 static void
15613 do_neon_clz (void)
15614 {
15615 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15616 struct neon_type_el et = neon_check_type (2, rs,
15617 N_EQK, N_I8 | N_I16 | N_I32 | N_KEY);
15618 neon_two_same (neon_quad (rs), 1, et.size);
15619 }
15620
15621 static void
15622 do_neon_cnt (void)
15623 {
15624 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15625 struct neon_type_el et = neon_check_type (2, rs,
15626 N_EQK | N_INT, N_8 | N_KEY);
15627 neon_two_same (neon_quad (rs), 1, et.size);
15628 }
15629
15630 static void
15631 do_neon_swp (void)
15632 {
15633 enum neon_shape rs = neon_select_shape (NS_DD, NS_QQ, NS_NULL);
15634 neon_two_same (neon_quad (rs), 1, -1);
15635 }
15636
15637 static void
15638 do_neon_tbl_tbx (void)
15639 {
15640 unsigned listlenbits;
15641 neon_check_type (3, NS_DLD, N_EQK, N_EQK, N_8 | N_KEY);
15642
15643 if (inst.operands[1].imm < 1 || inst.operands[1].imm > 4)
15644 {
15645 first_error (_("bad list length for table lookup"));
15646 return;
15647 }
15648
15649 listlenbits = inst.operands[1].imm - 1;
15650 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
15651 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
15652 inst.instruction |= LOW4 (inst.operands[1].reg) << 16;
15653 inst.instruction |= HI1 (inst.operands[1].reg) << 7;
15654 inst.instruction |= LOW4 (inst.operands[2].reg);
15655 inst.instruction |= HI1 (inst.operands[2].reg) << 5;
15656 inst.instruction |= listlenbits << 8;
15657
15658 neon_dp_fixup (&inst);
15659 }
15660
15661 static void
15662 do_neon_ldm_stm (void)
15663 {
15664 /* P, U and L bits are part of bitmask. */
15665 int is_dbmode = (inst.instruction & (1 << 24)) != 0;
15666 unsigned offsetbits = inst.operands[1].imm * 2;
15667
15668 if (inst.operands[1].issingle)
15669 {
15670 do_vfp_nsyn_ldm_stm (is_dbmode);
15671 return;
15672 }
15673
15674 constraint (is_dbmode && !inst.operands[0].writeback,
15675 _("writeback (!) must be used for VLDMDB and VSTMDB"));
15676
15677 constraint (inst.operands[1].imm < 1 || inst.operands[1].imm > 16,
15678 _("register list must contain at least 1 and at most 16 "
15679 "registers"));
15680
15681 inst.instruction |= inst.operands[0].reg << 16;
15682 inst.instruction |= inst.operands[0].writeback << 21;
15683 inst.instruction |= LOW4 (inst.operands[1].reg) << 12;
15684 inst.instruction |= HI1 (inst.operands[1].reg) << 22;
15685
15686 inst.instruction |= offsetbits;
15687
15688 do_vfp_cond_or_thumb ();
15689 }
15690
15691 static void
15692 do_neon_ldr_str (void)
15693 {
15694 int is_ldr = (inst.instruction & (1 << 20)) != 0;
15695
15696 /* Use of PC in vstr in ARM mode is deprecated in ARMv7.
15697 And is UNPREDICTABLE in thumb mode. */
15698 if (!is_ldr
15699 && inst.operands[1].reg == REG_PC
15700 && (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v7) || thumb_mode))
15701 {
15702 if (thumb_mode)
15703 inst.error = _("Use of PC here is UNPREDICTABLE");
15704 else if (warn_on_deprecated)
15705 as_warn (_("Use of PC here is deprecated"));
15706 }
15707
15708 if (inst.operands[0].issingle)
15709 {
15710 if (is_ldr)
15711 do_vfp_nsyn_opcode ("flds");
15712 else
15713 do_vfp_nsyn_opcode ("fsts");
15714 }
15715 else
15716 {
15717 if (is_ldr)
15718 do_vfp_nsyn_opcode ("fldd");
15719 else
15720 do_vfp_nsyn_opcode ("fstd");
15721 }
15722 }
15723
15724 /* "interleave" version also handles non-interleaving register VLD1/VST1
15725 instructions. */
15726
15727 static void
15728 do_neon_ld_st_interleave (void)
15729 {
15730 struct neon_type_el et = neon_check_type (1, NS_NULL,
15731 N_8 | N_16 | N_32 | N_64);
15732 unsigned alignbits = 0;
15733 unsigned idx;
15734 /* The bits in this table go:
15735 0: register stride of one (0) or two (1)
15736 1,2: register list length, minus one (1, 2, 3, 4).
15737 3,4: <n> in instruction type, minus one (VLD<n> / VST<n>).
15738 We use -1 for invalid entries. */
15739 const int typetable[] =
15740 {
15741 0x7, -1, 0xa, -1, 0x6, -1, 0x2, -1, /* VLD1 / VST1. */
15742 -1, -1, 0x8, 0x9, -1, -1, 0x3, -1, /* VLD2 / VST2. */
15743 -1, -1, -1, -1, 0x4, 0x5, -1, -1, /* VLD3 / VST3. */
15744 -1, -1, -1, -1, -1, -1, 0x0, 0x1 /* VLD4 / VST4. */
15745 };
15746 int typebits;
15747
15748 if (et.type == NT_invtype)
15749 return;
15750
15751 if (inst.operands[1].immisalign)
15752 switch (inst.operands[1].imm >> 8)
15753 {
15754 case 64: alignbits = 1; break;
15755 case 128:
15756 if (NEON_REGLIST_LENGTH (inst.operands[0].imm) != 2
15757 && NEON_REGLIST_LENGTH (inst.operands[0].imm) != 4)
15758 goto bad_alignment;
15759 alignbits = 2;
15760 break;
15761 case 256:
15762 if (NEON_REGLIST_LENGTH (inst.operands[0].imm) != 4)
15763 goto bad_alignment;
15764 alignbits = 3;
15765 break;
15766 default:
15767 bad_alignment:
15768 first_error (_("bad alignment"));
15769 return;
15770 }
15771
15772 inst.instruction |= alignbits << 4;
15773 inst.instruction |= neon_logbits (et.size) << 6;
15774
15775 /* Bits [4:6] of the immediate in a list specifier encode register stride
15776 (minus 1) in bit 4, and list length in bits [5:6]. We put the <n> of
15777 VLD<n>/VST<n> in bits [9:8] of the initial bitmask. Suck it out here, look
15778 up the right value for "type" in a table based on this value and the given
15779 list style, then stick it back. */
15780 idx = ((inst.operands[0].imm >> 4) & 7)
15781 | (((inst.instruction >> 8) & 3) << 3);
15782
15783 typebits = typetable[idx];
15784
15785 constraint (typebits == -1, _("bad list type for instruction"));
15786 constraint (((inst.instruction >> 8) & 3) && et.size == 64,
15787 _("bad element type for instruction"));
15788
15789 inst.instruction &= ~0xf00;
15790 inst.instruction |= typebits << 8;
15791 }
15792
15793 /* Check alignment is valid for do_neon_ld_st_lane and do_neon_ld_dup.
15794 *DO_ALIGN is set to 1 if the relevant alignment bit should be set, 0
15795 otherwise. The variable arguments are a list of pairs of legal (size, align)
15796 values, terminated with -1. */
15797
15798 static int
15799 neon_alignment_bit (int size, int align, int *do_align, ...)
15800 {
15801 va_list ap;
15802 int result = FAIL, thissize, thisalign;
15803
15804 if (!inst.operands[1].immisalign)
15805 {
15806 *do_align = 0;
15807 return SUCCESS;
15808 }
15809
15810 va_start (ap, do_align);
15811
15812 do
15813 {
15814 thissize = va_arg (ap, int);
15815 if (thissize == -1)
15816 break;
15817 thisalign = va_arg (ap, int);
15818
15819 if (size == thissize && align == thisalign)
15820 result = SUCCESS;
15821 }
15822 while (result != SUCCESS);
15823
15824 va_end (ap);
15825
15826 if (result == SUCCESS)
15827 *do_align = 1;
15828 else
15829 first_error (_("unsupported alignment for instruction"));
15830
15831 return result;
15832 }
15833
15834 static void
15835 do_neon_ld_st_lane (void)
15836 {
15837 struct neon_type_el et = neon_check_type (1, NS_NULL, N_8 | N_16 | N_32);
15838 int align_good, do_align = 0;
15839 int logsize = neon_logbits (et.size);
15840 int align = inst.operands[1].imm >> 8;
15841 int n = (inst.instruction >> 8) & 3;
15842 int max_el = 64 / et.size;
15843
15844 if (et.type == NT_invtype)
15845 return;
15846
15847 constraint (NEON_REGLIST_LENGTH (inst.operands[0].imm) != n + 1,
15848 _("bad list length"));
15849 constraint (NEON_LANE (inst.operands[0].imm) >= max_el,
15850 _("scalar index out of range"));
15851 constraint (n != 0 && NEON_REG_STRIDE (inst.operands[0].imm) == 2
15852 && et.size == 8,
15853 _("stride of 2 unavailable when element size is 8"));
15854
15855 switch (n)
15856 {
15857 case 0: /* VLD1 / VST1. */
15858 align_good = neon_alignment_bit (et.size, align, &do_align, 16, 16,
15859 32, 32, -1);
15860 if (align_good == FAIL)
15861 return;
15862 if (do_align)
15863 {
15864 unsigned alignbits = 0;
15865 switch (et.size)
15866 {
15867 case 16: alignbits = 0x1; break;
15868 case 32: alignbits = 0x3; break;
15869 default: ;
15870 }
15871 inst.instruction |= alignbits << 4;
15872 }
15873 break;
15874
15875 case 1: /* VLD2 / VST2. */
15876 align_good = neon_alignment_bit (et.size, align, &do_align, 8, 16, 16, 32,
15877 32, 64, -1);
15878 if (align_good == FAIL)
15879 return;
15880 if (do_align)
15881 inst.instruction |= 1 << 4;
15882 break;
15883
15884 case 2: /* VLD3 / VST3. */
15885 constraint (inst.operands[1].immisalign,
15886 _("can't use alignment with this instruction"));
15887 break;
15888
15889 case 3: /* VLD4 / VST4. */
15890 align_good = neon_alignment_bit (et.size, align, &do_align, 8, 32,
15891 16, 64, 32, 64, 32, 128, -1);
15892 if (align_good == FAIL)
15893 return;
15894 if (do_align)
15895 {
15896 unsigned alignbits = 0;
15897 switch (et.size)
15898 {
15899 case 8: alignbits = 0x1; break;
15900 case 16: alignbits = 0x1; break;
15901 case 32: alignbits = (align == 64) ? 0x1 : 0x2; break;
15902 default: ;
15903 }
15904 inst.instruction |= alignbits << 4;
15905 }
15906 break;
15907
15908 default: ;
15909 }
15910
15911 /* Reg stride of 2 is encoded in bit 5 when size==16, bit 6 when size==32. */
15912 if (n != 0 && NEON_REG_STRIDE (inst.operands[0].imm) == 2)
15913 inst.instruction |= 1 << (4 + logsize);
15914
15915 inst.instruction |= NEON_LANE (inst.operands[0].imm) << (logsize + 5);
15916 inst.instruction |= logsize << 10;
15917 }
15918
15919 /* Encode single n-element structure to all lanes VLD<n> instructions. */
15920
15921 static void
15922 do_neon_ld_dup (void)
15923 {
15924 struct neon_type_el et = neon_check_type (1, NS_NULL, N_8 | N_16 | N_32);
15925 int align_good, do_align = 0;
15926
15927 if (et.type == NT_invtype)
15928 return;
15929
15930 switch ((inst.instruction >> 8) & 3)
15931 {
15932 case 0: /* VLD1. */
15933 gas_assert (NEON_REG_STRIDE (inst.operands[0].imm) != 2);
15934 align_good = neon_alignment_bit (et.size, inst.operands[1].imm >> 8,
15935 &do_align, 16, 16, 32, 32, -1);
15936 if (align_good == FAIL)
15937 return;
15938 switch (NEON_REGLIST_LENGTH (inst.operands[0].imm))
15939 {
15940 case 1: break;
15941 case 2: inst.instruction |= 1 << 5; break;
15942 default: first_error (_("bad list length")); return;
15943 }
15944 inst.instruction |= neon_logbits (et.size) << 6;
15945 break;
15946
15947 case 1: /* VLD2. */
15948 align_good = neon_alignment_bit (et.size, inst.operands[1].imm >> 8,
15949 &do_align, 8, 16, 16, 32, 32, 64, -1);
15950 if (align_good == FAIL)
15951 return;
15952 constraint (NEON_REGLIST_LENGTH (inst.operands[0].imm) != 2,
15953 _("bad list length"));
15954 if (NEON_REG_STRIDE (inst.operands[0].imm) == 2)
15955 inst.instruction |= 1 << 5;
15956 inst.instruction |= neon_logbits (et.size) << 6;
15957 break;
15958
15959 case 2: /* VLD3. */
15960 constraint (inst.operands[1].immisalign,
15961 _("can't use alignment with this instruction"));
15962 constraint (NEON_REGLIST_LENGTH (inst.operands[0].imm) != 3,
15963 _("bad list length"));
15964 if (NEON_REG_STRIDE (inst.operands[0].imm) == 2)
15965 inst.instruction |= 1 << 5;
15966 inst.instruction |= neon_logbits (et.size) << 6;
15967 break;
15968
15969 case 3: /* VLD4. */
15970 {
15971 int align = inst.operands[1].imm >> 8;
15972 align_good = neon_alignment_bit (et.size, align, &do_align, 8, 32,
15973 16, 64, 32, 64, 32, 128, -1);
15974 if (align_good == FAIL)
15975 return;
15976 constraint (NEON_REGLIST_LENGTH (inst.operands[0].imm) != 4,
15977 _("bad list length"));
15978 if (NEON_REG_STRIDE (inst.operands[0].imm) == 2)
15979 inst.instruction |= 1 << 5;
15980 if (et.size == 32 && align == 128)
15981 inst.instruction |= 0x3 << 6;
15982 else
15983 inst.instruction |= neon_logbits (et.size) << 6;
15984 }
15985 break;
15986
15987 default: ;
15988 }
15989
15990 inst.instruction |= do_align << 4;
15991 }
15992
15993 /* Disambiguate VLD<n> and VST<n> instructions, and fill in common bits (those
15994 apart from bits [11:4]. */
15995
15996 static void
15997 do_neon_ldx_stx (void)
15998 {
15999 if (inst.operands[1].isreg)
16000 constraint (inst.operands[1].reg == REG_PC, BAD_PC);
16001
16002 switch (NEON_LANE (inst.operands[0].imm))
16003 {
16004 case NEON_INTERLEAVE_LANES:
16005 NEON_ENCODE (INTERLV, inst);
16006 do_neon_ld_st_interleave ();
16007 break;
16008
16009 case NEON_ALL_LANES:
16010 NEON_ENCODE (DUP, inst);
16011 if (inst.instruction == N_INV)
16012 {
16013 first_error ("only loads support such operands");
16014 break;
16015 }
16016 do_neon_ld_dup ();
16017 break;
16018
16019 default:
16020 NEON_ENCODE (LANE, inst);
16021 do_neon_ld_st_lane ();
16022 }
16023
16024 /* L bit comes from bit mask. */
16025 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
16026 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
16027 inst.instruction |= inst.operands[1].reg << 16;
16028
16029 if (inst.operands[1].postind)
16030 {
16031 int postreg = inst.operands[1].imm & 0xf;
16032 constraint (!inst.operands[1].immisreg,
16033 _("post-index must be a register"));
16034 constraint (postreg == 0xd || postreg == 0xf,
16035 _("bad register for post-index"));
16036 inst.instruction |= postreg;
16037 }
16038 else
16039 {
16040 constraint (inst.operands[1].immisreg, BAD_ADDR_MODE);
16041 constraint (inst.reloc.exp.X_op != O_constant
16042 || inst.reloc.exp.X_add_number != 0,
16043 BAD_ADDR_MODE);
16044
16045 if (inst.operands[1].writeback)
16046 {
16047 inst.instruction |= 0xd;
16048 }
16049 else
16050 inst.instruction |= 0xf;
16051 }
16052
16053 if (thumb_mode)
16054 inst.instruction |= 0xf9000000;
16055 else
16056 inst.instruction |= 0xf4000000;
16057 }
16058
16059 /* FP v8. */
16060 static void
16061 do_vfp_nsyn_fpv8 (enum neon_shape rs)
16062 {
16063 NEON_ENCODE (FPV8, inst);
16064
16065 if (rs == NS_FFF)
16066 do_vfp_sp_dyadic ();
16067 else
16068 do_vfp_dp_rd_rn_rm ();
16069
16070 if (rs == NS_DDD)
16071 inst.instruction |= 0x100;
16072
16073 inst.instruction |= 0xf0000000;
16074 }
16075
16076 static void
16077 do_vsel (void)
16078 {
16079 set_it_insn_type (OUTSIDE_IT_INSN);
16080
16081 if (try_vfp_nsyn (3, do_vfp_nsyn_fpv8) != SUCCESS)
16082 first_error (_("invalid instruction shape"));
16083 }
16084
16085 static void
16086 do_vmaxnm (void)
16087 {
16088 set_it_insn_type (OUTSIDE_IT_INSN);
16089
16090 if (try_vfp_nsyn (3, do_vfp_nsyn_fpv8) == SUCCESS)
16091 return;
16092
16093 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH8) == FAIL)
16094 return;
16095
16096 neon_dyadic_misc (NT_untyped, N_F32, 0);
16097 }
16098
16099 static void
16100 do_vrint_1 (enum neon_cvt_mode mode)
16101 {
16102 enum neon_shape rs = neon_select_shape (NS_FF, NS_DD, NS_QQ, NS_NULL);
16103 struct neon_type_el et;
16104
16105 if (rs == NS_NULL)
16106 return;
16107
16108 et = neon_check_type (2, rs, N_EQK | N_VFP, N_F32 | N_F64 | N_KEY | N_VFP);
16109 if (et.type != NT_invtype)
16110 {
16111 /* VFP encodings. */
16112 if (mode == neon_cvt_mode_a || mode == neon_cvt_mode_n
16113 || mode == neon_cvt_mode_p || mode == neon_cvt_mode_m)
16114 set_it_insn_type (OUTSIDE_IT_INSN);
16115
16116 NEON_ENCODE (FPV8, inst);
16117 if (rs == NS_FF)
16118 do_vfp_sp_monadic ();
16119 else
16120 do_vfp_dp_rd_rm ();
16121
16122 switch (mode)
16123 {
16124 case neon_cvt_mode_r: inst.instruction |= 0x00000000; break;
16125 case neon_cvt_mode_z: inst.instruction |= 0x00000080; break;
16126 case neon_cvt_mode_x: inst.instruction |= 0x00010000; break;
16127 case neon_cvt_mode_a: inst.instruction |= 0xf0000000; break;
16128 case neon_cvt_mode_n: inst.instruction |= 0xf0010000; break;
16129 case neon_cvt_mode_p: inst.instruction |= 0xf0020000; break;
16130 case neon_cvt_mode_m: inst.instruction |= 0xf0030000; break;
16131 default: abort ();
16132 }
16133
16134 inst.instruction |= (rs == NS_DD) << 8;
16135 do_vfp_cond_or_thumb ();
16136 }
16137 else
16138 {
16139 /* Neon encodings (or something broken...). */
16140 inst.error = NULL;
16141 et = neon_check_type (2, rs, N_EQK, N_F32 | N_KEY);
16142
16143 if (et.type == NT_invtype)
16144 return;
16145
16146 set_it_insn_type (OUTSIDE_IT_INSN);
16147 NEON_ENCODE (FLOAT, inst);
16148
16149 if (vfp_or_neon_is_neon (NEON_CHECK_CC | NEON_CHECK_ARCH8) == FAIL)
16150 return;
16151
16152 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
16153 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
16154 inst.instruction |= LOW4 (inst.operands[1].reg);
16155 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
16156 inst.instruction |= neon_quad (rs) << 6;
16157 switch (mode)
16158 {
16159 case neon_cvt_mode_z: inst.instruction |= 3 << 7; break;
16160 case neon_cvt_mode_x: inst.instruction |= 1 << 7; break;
16161 case neon_cvt_mode_a: inst.instruction |= 2 << 7; break;
16162 case neon_cvt_mode_n: inst.instruction |= 0 << 7; break;
16163 case neon_cvt_mode_p: inst.instruction |= 7 << 7; break;
16164 case neon_cvt_mode_m: inst.instruction |= 5 << 7; break;
16165 case neon_cvt_mode_r: inst.error = _("invalid rounding mode"); break;
16166 default: abort ();
16167 }
16168
16169 if (thumb_mode)
16170 inst.instruction |= 0xfc000000;
16171 else
16172 inst.instruction |= 0xf0000000;
16173 }
16174 }
16175
16176 static void
16177 do_vrintx (void)
16178 {
16179 do_vrint_1 (neon_cvt_mode_x);
16180 }
16181
16182 static void
16183 do_vrintz (void)
16184 {
16185 do_vrint_1 (neon_cvt_mode_z);
16186 }
16187
16188 static void
16189 do_vrintr (void)
16190 {
16191 do_vrint_1 (neon_cvt_mode_r);
16192 }
16193
16194 static void
16195 do_vrinta (void)
16196 {
16197 do_vrint_1 (neon_cvt_mode_a);
16198 }
16199
16200 static void
16201 do_vrintn (void)
16202 {
16203 do_vrint_1 (neon_cvt_mode_n);
16204 }
16205
16206 static void
16207 do_vrintp (void)
16208 {
16209 do_vrint_1 (neon_cvt_mode_p);
16210 }
16211
16212 static void
16213 do_vrintm (void)
16214 {
16215 do_vrint_1 (neon_cvt_mode_m);
16216 }
16217
16218 /* Crypto v1 instructions. */
16219 static void
16220 do_crypto_2op_1 (unsigned elttype, int op)
16221 {
16222 set_it_insn_type (OUTSIDE_IT_INSN);
16223
16224 if (neon_check_type (2, NS_QQ, N_EQK | N_UNT, elttype | N_UNT | N_KEY).type
16225 == NT_invtype)
16226 return;
16227
16228 inst.error = NULL;
16229
16230 NEON_ENCODE (INTEGER, inst);
16231 inst.instruction |= LOW4 (inst.operands[0].reg) << 12;
16232 inst.instruction |= HI1 (inst.operands[0].reg) << 22;
16233 inst.instruction |= LOW4 (inst.operands[1].reg);
16234 inst.instruction |= HI1 (inst.operands[1].reg) << 5;
16235 if (op != -1)
16236 inst.instruction |= op << 6;
16237
16238 if (thumb_mode)
16239 inst.instruction |= 0xfc000000;
16240 else
16241 inst.instruction |= 0xf0000000;
16242 }
16243
16244 static void
16245 do_crypto_3op_1 (int u, int op)
16246 {
16247 set_it_insn_type (OUTSIDE_IT_INSN);
16248
16249 if (neon_check_type (3, NS_QQQ, N_EQK | N_UNT, N_EQK | N_UNT,
16250 N_32 | N_UNT | N_KEY).type == NT_invtype)
16251 return;
16252
16253 inst.error = NULL;
16254
16255 NEON_ENCODE (INTEGER, inst);
16256 neon_three_same (1, u, 8 << op);
16257 }
16258
16259 static void
16260 do_aese (void)
16261 {
16262 do_crypto_2op_1 (N_8, 0);
16263 }
16264
16265 static void
16266 do_aesd (void)
16267 {
16268 do_crypto_2op_1 (N_8, 1);
16269 }
16270
16271 static void
16272 do_aesmc (void)
16273 {
16274 do_crypto_2op_1 (N_8, 2);
16275 }
16276
16277 static void
16278 do_aesimc (void)
16279 {
16280 do_crypto_2op_1 (N_8, 3);
16281 }
16282
16283 static void
16284 do_sha1c (void)
16285 {
16286 do_crypto_3op_1 (0, 0);
16287 }
16288
16289 static void
16290 do_sha1p (void)
16291 {
16292 do_crypto_3op_1 (0, 1);
16293 }
16294
16295 static void
16296 do_sha1m (void)
16297 {
16298 do_crypto_3op_1 (0, 2);
16299 }
16300
16301 static void
16302 do_sha1su0 (void)
16303 {
16304 do_crypto_3op_1 (0, 3);
16305 }
16306
16307 static void
16308 do_sha256h (void)
16309 {
16310 do_crypto_3op_1 (1, 0);
16311 }
16312
16313 static void
16314 do_sha256h2 (void)
16315 {
16316 do_crypto_3op_1 (1, 1);
16317 }
16318
16319 static void
16320 do_sha256su1 (void)
16321 {
16322 do_crypto_3op_1 (1, 2);
16323 }
16324
16325 static void
16326 do_sha1h (void)
16327 {
16328 do_crypto_2op_1 (N_32, -1);
16329 }
16330
16331 static void
16332 do_sha1su1 (void)
16333 {
16334 do_crypto_2op_1 (N_32, 0);
16335 }
16336
16337 static void
16338 do_sha256su0 (void)
16339 {
16340 do_crypto_2op_1 (N_32, 1);
16341 }
16342
16343 static void
16344 do_crc32_1 (unsigned int poly, unsigned int sz)
16345 {
16346 unsigned int Rd = inst.operands[0].reg;
16347 unsigned int Rn = inst.operands[1].reg;
16348 unsigned int Rm = inst.operands[2].reg;
16349
16350 set_it_insn_type (OUTSIDE_IT_INSN);
16351 inst.instruction |= LOW4 (Rd) << (thumb_mode ? 8 : 12);
16352 inst.instruction |= LOW4 (Rn) << 16;
16353 inst.instruction |= LOW4 (Rm);
16354 inst.instruction |= sz << (thumb_mode ? 4 : 21);
16355 inst.instruction |= poly << (thumb_mode ? 20 : 9);
16356
16357 if (Rd == REG_PC || Rn == REG_PC || Rm == REG_PC)
16358 as_warn (UNPRED_REG ("r15"));
16359 if (thumb_mode && (Rd == REG_SP || Rn == REG_SP || Rm == REG_SP))
16360 as_warn (UNPRED_REG ("r13"));
16361 }
16362
16363 static void
16364 do_crc32b (void)
16365 {
16366 do_crc32_1 (0, 0);
16367 }
16368
16369 static void
16370 do_crc32h (void)
16371 {
16372 do_crc32_1 (0, 1);
16373 }
16374
16375 static void
16376 do_crc32w (void)
16377 {
16378 do_crc32_1 (0, 2);
16379 }
16380
16381 static void
16382 do_crc32cb (void)
16383 {
16384 do_crc32_1 (1, 0);
16385 }
16386
16387 static void
16388 do_crc32ch (void)
16389 {
16390 do_crc32_1 (1, 1);
16391 }
16392
16393 static void
16394 do_crc32cw (void)
16395 {
16396 do_crc32_1 (1, 2);
16397 }
16398
16399 \f
16400 /* Overall per-instruction processing. */
16401
16402 /* We need to be able to fix up arbitrary expressions in some statements.
16403 This is so that we can handle symbols that are an arbitrary distance from
16404 the pc. The most common cases are of the form ((+/-sym -/+ . - 8) & mask),
16405 which returns part of an address in a form which will be valid for
16406 a data instruction. We do this by pushing the expression into a symbol
16407 in the expr_section, and creating a fix for that. */
16408
16409 static void
16410 fix_new_arm (fragS * frag,
16411 int where,
16412 short int size,
16413 expressionS * exp,
16414 int pc_rel,
16415 int reloc)
16416 {
16417 fixS * new_fix;
16418
16419 switch (exp->X_op)
16420 {
16421 case O_constant:
16422 if (pc_rel)
16423 {
16424 /* Create an absolute valued symbol, so we have something to
16425 refer to in the object file. Unfortunately for us, gas's
16426 generic expression parsing will already have folded out
16427 any use of .set foo/.type foo %function that may have
16428 been used to set type information of the target location,
16429 that's being specified symbolically. We have to presume
16430 the user knows what they are doing. */
16431 char name[16 + 8];
16432 symbolS *symbol;
16433
16434 sprintf (name, "*ABS*0x%lx", (unsigned long)exp->X_add_number);
16435
16436 symbol = symbol_find_or_make (name);
16437 S_SET_SEGMENT (symbol, absolute_section);
16438 symbol_set_frag (symbol, &zero_address_frag);
16439 S_SET_VALUE (symbol, exp->X_add_number);
16440 exp->X_op = O_symbol;
16441 exp->X_add_symbol = symbol;
16442 exp->X_add_number = 0;
16443 }
16444 /* FALLTHROUGH */
16445 case O_symbol:
16446 case O_add:
16447 case O_subtract:
16448 new_fix = fix_new_exp (frag, where, size, exp, pc_rel,
16449 (enum bfd_reloc_code_real) reloc);
16450 break;
16451
16452 default:
16453 new_fix = (fixS *) fix_new (frag, where, size, make_expr_symbol (exp), 0,
16454 pc_rel, (enum bfd_reloc_code_real) reloc);
16455 break;
16456 }
16457
16458 /* Mark whether the fix is to a THUMB instruction, or an ARM
16459 instruction. */
16460 new_fix->tc_fix_data = thumb_mode;
16461 }
16462
16463 /* Create a frg for an instruction requiring relaxation. */
16464 static void
16465 output_relax_insn (void)
16466 {
16467 char * to;
16468 symbolS *sym;
16469 int offset;
16470
16471 /* The size of the instruction is unknown, so tie the debug info to the
16472 start of the instruction. */
16473 dwarf2_emit_insn (0);
16474
16475 switch (inst.reloc.exp.X_op)
16476 {
16477 case O_symbol:
16478 sym = inst.reloc.exp.X_add_symbol;
16479 offset = inst.reloc.exp.X_add_number;
16480 break;
16481 case O_constant:
16482 sym = NULL;
16483 offset = inst.reloc.exp.X_add_number;
16484 break;
16485 default:
16486 sym = make_expr_symbol (&inst.reloc.exp);
16487 offset = 0;
16488 break;
16489 }
16490 to = frag_var (rs_machine_dependent, INSN_SIZE, THUMB_SIZE,
16491 inst.relax, sym, offset, NULL/*offset, opcode*/);
16492 md_number_to_chars (to, inst.instruction, THUMB_SIZE);
16493 }
16494
16495 /* Write a 32-bit thumb instruction to buf. */
16496 static void
16497 put_thumb32_insn (char * buf, unsigned long insn)
16498 {
16499 md_number_to_chars (buf, insn >> 16, THUMB_SIZE);
16500 md_number_to_chars (buf + THUMB_SIZE, insn, THUMB_SIZE);
16501 }
16502
16503 static void
16504 output_inst (const char * str)
16505 {
16506 char * to = NULL;
16507
16508 if (inst.error)
16509 {
16510 as_bad ("%s -- `%s'", inst.error, str);
16511 return;
16512 }
16513 if (inst.relax)
16514 {
16515 output_relax_insn ();
16516 return;
16517 }
16518 if (inst.size == 0)
16519 return;
16520
16521 to = frag_more (inst.size);
16522 /* PR 9814: Record the thumb mode into the current frag so that we know
16523 what type of NOP padding to use, if necessary. We override any previous
16524 setting so that if the mode has changed then the NOPS that we use will
16525 match the encoding of the last instruction in the frag. */
16526 frag_now->tc_frag_data.thumb_mode = thumb_mode | MODE_RECORDED;
16527
16528 if (thumb_mode && (inst.size > THUMB_SIZE))
16529 {
16530 gas_assert (inst.size == (2 * THUMB_SIZE));
16531 put_thumb32_insn (to, inst.instruction);
16532 }
16533 else if (inst.size > INSN_SIZE)
16534 {
16535 gas_assert (inst.size == (2 * INSN_SIZE));
16536 md_number_to_chars (to, inst.instruction, INSN_SIZE);
16537 md_number_to_chars (to + INSN_SIZE, inst.instruction, INSN_SIZE);
16538 }
16539 else
16540 md_number_to_chars (to, inst.instruction, inst.size);
16541
16542 if (inst.reloc.type != BFD_RELOC_UNUSED)
16543 fix_new_arm (frag_now, to - frag_now->fr_literal,
16544 inst.size, & inst.reloc.exp, inst.reloc.pc_rel,
16545 inst.reloc.type);
16546
16547 dwarf2_emit_insn (inst.size);
16548 }
16549
16550 static char *
16551 output_it_inst (int cond, int mask, char * to)
16552 {
16553 unsigned long instruction = 0xbf00;
16554
16555 mask &= 0xf;
16556 instruction |= mask;
16557 instruction |= cond << 4;
16558
16559 if (to == NULL)
16560 {
16561 to = frag_more (2);
16562 #ifdef OBJ_ELF
16563 dwarf2_emit_insn (2);
16564 #endif
16565 }
16566
16567 md_number_to_chars (to, instruction, 2);
16568
16569 return to;
16570 }
16571
16572 /* Tag values used in struct asm_opcode's tag field. */
16573 enum opcode_tag
16574 {
16575 OT_unconditional, /* Instruction cannot be conditionalized.
16576 The ARM condition field is still 0xE. */
16577 OT_unconditionalF, /* Instruction cannot be conditionalized
16578 and carries 0xF in its ARM condition field. */
16579 OT_csuffix, /* Instruction takes a conditional suffix. */
16580 OT_csuffixF, /* Some forms of the instruction take a conditional
16581 suffix, others place 0xF where the condition field
16582 would be. */
16583 OT_cinfix3, /* Instruction takes a conditional infix,
16584 beginning at character index 3. (In
16585 unified mode, it becomes a suffix.) */
16586 OT_cinfix3_deprecated, /* The same as OT_cinfix3. This is used for
16587 tsts, cmps, cmns, and teqs. */
16588 OT_cinfix3_legacy, /* Legacy instruction takes a conditional infix at
16589 character index 3, even in unified mode. Used for
16590 legacy instructions where suffix and infix forms
16591 may be ambiguous. */
16592 OT_csuf_or_in3, /* Instruction takes either a conditional
16593 suffix or an infix at character index 3. */
16594 OT_odd_infix_unc, /* This is the unconditional variant of an
16595 instruction that takes a conditional infix
16596 at an unusual position. In unified mode,
16597 this variant will accept a suffix. */
16598 OT_odd_infix_0 /* Values greater than or equal to OT_odd_infix_0
16599 are the conditional variants of instructions that
16600 take conditional infixes in unusual positions.
16601 The infix appears at character index
16602 (tag - OT_odd_infix_0). These are not accepted
16603 in unified mode. */
16604 };
16605
16606 /* Subroutine of md_assemble, responsible for looking up the primary
16607 opcode from the mnemonic the user wrote. STR points to the
16608 beginning of the mnemonic.
16609
16610 This is not simply a hash table lookup, because of conditional
16611 variants. Most instructions have conditional variants, which are
16612 expressed with a _conditional affix_ to the mnemonic. If we were
16613 to encode each conditional variant as a literal string in the opcode
16614 table, it would have approximately 20,000 entries.
16615
16616 Most mnemonics take this affix as a suffix, and in unified syntax,
16617 'most' is upgraded to 'all'. However, in the divided syntax, some
16618 instructions take the affix as an infix, notably the s-variants of
16619 the arithmetic instructions. Of those instructions, all but six
16620 have the infix appear after the third character of the mnemonic.
16621
16622 Accordingly, the algorithm for looking up primary opcodes given
16623 an identifier is:
16624
16625 1. Look up the identifier in the opcode table.
16626 If we find a match, go to step U.
16627
16628 2. Look up the last two characters of the identifier in the
16629 conditions table. If we find a match, look up the first N-2
16630 characters of the identifier in the opcode table. If we
16631 find a match, go to step CE.
16632
16633 3. Look up the fourth and fifth characters of the identifier in
16634 the conditions table. If we find a match, extract those
16635 characters from the identifier, and look up the remaining
16636 characters in the opcode table. If we find a match, go
16637 to step CM.
16638
16639 4. Fail.
16640
16641 U. Examine the tag field of the opcode structure, in case this is
16642 one of the six instructions with its conditional infix in an
16643 unusual place. If it is, the tag tells us where to find the
16644 infix; look it up in the conditions table and set inst.cond
16645 accordingly. Otherwise, this is an unconditional instruction.
16646 Again set inst.cond accordingly. Return the opcode structure.
16647
16648 CE. Examine the tag field to make sure this is an instruction that
16649 should receive a conditional suffix. If it is not, fail.
16650 Otherwise, set inst.cond from the suffix we already looked up,
16651 and return the opcode structure.
16652
16653 CM. Examine the tag field to make sure this is an instruction that
16654 should receive a conditional infix after the third character.
16655 If it is not, fail. Otherwise, undo the edits to the current
16656 line of input and proceed as for case CE. */
16657
16658 static const struct asm_opcode *
16659 opcode_lookup (char **str)
16660 {
16661 char *end, *base;
16662 char *affix;
16663 const struct asm_opcode *opcode;
16664 const struct asm_cond *cond;
16665 char save[2];
16666
16667 /* Scan up to the end of the mnemonic, which must end in white space,
16668 '.' (in unified mode, or for Neon/VFP instructions), or end of string. */
16669 for (base = end = *str; *end != '\0'; end++)
16670 if (*end == ' ' || *end == '.')
16671 break;
16672
16673 if (end == base)
16674 return NULL;
16675
16676 /* Handle a possible width suffix and/or Neon type suffix. */
16677 if (end[0] == '.')
16678 {
16679 int offset = 2;
16680
16681 /* The .w and .n suffixes are only valid if the unified syntax is in
16682 use. */
16683 if (unified_syntax && end[1] == 'w')
16684 inst.size_req = 4;
16685 else if (unified_syntax && end[1] == 'n')
16686 inst.size_req = 2;
16687 else
16688 offset = 0;
16689
16690 inst.vectype.elems = 0;
16691
16692 *str = end + offset;
16693
16694 if (end[offset] == '.')
16695 {
16696 /* See if we have a Neon type suffix (possible in either unified or
16697 non-unified ARM syntax mode). */
16698 if (parse_neon_type (&inst.vectype, str) == FAIL)
16699 return NULL;
16700 }
16701 else if (end[offset] != '\0' && end[offset] != ' ')
16702 return NULL;
16703 }
16704 else
16705 *str = end;
16706
16707 /* Look for unaffixed or special-case affixed mnemonic. */
16708 opcode = (const struct asm_opcode *) hash_find_n (arm_ops_hsh, base,
16709 end - base);
16710 if (opcode)
16711 {
16712 /* step U */
16713 if (opcode->tag < OT_odd_infix_0)
16714 {
16715 inst.cond = COND_ALWAYS;
16716 return opcode;
16717 }
16718
16719 if (warn_on_deprecated && unified_syntax)
16720 as_warn (_("conditional infixes are deprecated in unified syntax"));
16721 affix = base + (opcode->tag - OT_odd_infix_0);
16722 cond = (const struct asm_cond *) hash_find_n (arm_cond_hsh, affix, 2);
16723 gas_assert (cond);
16724
16725 inst.cond = cond->value;
16726 return opcode;
16727 }
16728
16729 /* Cannot have a conditional suffix on a mnemonic of less than two
16730 characters. */
16731 if (end - base < 3)
16732 return NULL;
16733
16734 /* Look for suffixed mnemonic. */
16735 affix = end - 2;
16736 cond = (const struct asm_cond *) hash_find_n (arm_cond_hsh, affix, 2);
16737 opcode = (const struct asm_opcode *) hash_find_n (arm_ops_hsh, base,
16738 affix - base);
16739 if (opcode && cond)
16740 {
16741 /* step CE */
16742 switch (opcode->tag)
16743 {
16744 case OT_cinfix3_legacy:
16745 /* Ignore conditional suffixes matched on infix only mnemonics. */
16746 break;
16747
16748 case OT_cinfix3:
16749 case OT_cinfix3_deprecated:
16750 case OT_odd_infix_unc:
16751 if (!unified_syntax)
16752 return 0;
16753 /* else fall through */
16754
16755 case OT_csuffix:
16756 case OT_csuffixF:
16757 case OT_csuf_or_in3:
16758 inst.cond = cond->value;
16759 return opcode;
16760
16761 case OT_unconditional:
16762 case OT_unconditionalF:
16763 if (thumb_mode)
16764 inst.cond = cond->value;
16765 else
16766 {
16767 /* Delayed diagnostic. */
16768 inst.error = BAD_COND;
16769 inst.cond = COND_ALWAYS;
16770 }
16771 return opcode;
16772
16773 default:
16774 return NULL;
16775 }
16776 }
16777
16778 /* Cannot have a usual-position infix on a mnemonic of less than
16779 six characters (five would be a suffix). */
16780 if (end - base < 6)
16781 return NULL;
16782
16783 /* Look for infixed mnemonic in the usual position. */
16784 affix = base + 3;
16785 cond = (const struct asm_cond *) hash_find_n (arm_cond_hsh, affix, 2);
16786 if (!cond)
16787 return NULL;
16788
16789 memcpy (save, affix, 2);
16790 memmove (affix, affix + 2, (end - affix) - 2);
16791 opcode = (const struct asm_opcode *) hash_find_n (arm_ops_hsh, base,
16792 (end - base) - 2);
16793 memmove (affix + 2, affix, (end - affix) - 2);
16794 memcpy (affix, save, 2);
16795
16796 if (opcode
16797 && (opcode->tag == OT_cinfix3
16798 || opcode->tag == OT_cinfix3_deprecated
16799 || opcode->tag == OT_csuf_or_in3
16800 || opcode->tag == OT_cinfix3_legacy))
16801 {
16802 /* Step CM. */
16803 if (warn_on_deprecated && unified_syntax
16804 && (opcode->tag == OT_cinfix3
16805 || opcode->tag == OT_cinfix3_deprecated))
16806 as_warn (_("conditional infixes are deprecated in unified syntax"));
16807
16808 inst.cond = cond->value;
16809 return opcode;
16810 }
16811
16812 return NULL;
16813 }
16814
16815 /* This function generates an initial IT instruction, leaving its block
16816 virtually open for the new instructions. Eventually,
16817 the mask will be updated by now_it_add_mask () each time
16818 a new instruction needs to be included in the IT block.
16819 Finally, the block is closed with close_automatic_it_block ().
16820 The block closure can be requested either from md_assemble (),
16821 a tencode (), or due to a label hook. */
16822
16823 static void
16824 new_automatic_it_block (int cond)
16825 {
16826 now_it.state = AUTOMATIC_IT_BLOCK;
16827 now_it.mask = 0x18;
16828 now_it.cc = cond;
16829 now_it.block_length = 1;
16830 mapping_state (MAP_THUMB);
16831 now_it.insn = output_it_inst (cond, now_it.mask, NULL);
16832 now_it.warn_deprecated = FALSE;
16833 now_it.insn_cond = TRUE;
16834 }
16835
16836 /* Close an automatic IT block.
16837 See comments in new_automatic_it_block (). */
16838
16839 static void
16840 close_automatic_it_block (void)
16841 {
16842 now_it.mask = 0x10;
16843 now_it.block_length = 0;
16844 }
16845
16846 /* Update the mask of the current automatically-generated IT
16847 instruction. See comments in new_automatic_it_block (). */
16848
16849 static void
16850 now_it_add_mask (int cond)
16851 {
16852 #define CLEAR_BIT(value, nbit) ((value) & ~(1 << (nbit)))
16853 #define SET_BIT_VALUE(value, bitvalue, nbit) (CLEAR_BIT (value, nbit) \
16854 | ((bitvalue) << (nbit)))
16855 const int resulting_bit = (cond & 1);
16856
16857 now_it.mask &= 0xf;
16858 now_it.mask = SET_BIT_VALUE (now_it.mask,
16859 resulting_bit,
16860 (5 - now_it.block_length));
16861 now_it.mask = SET_BIT_VALUE (now_it.mask,
16862 1,
16863 ((5 - now_it.block_length) - 1) );
16864 output_it_inst (now_it.cc, now_it.mask, now_it.insn);
16865
16866 #undef CLEAR_BIT
16867 #undef SET_BIT_VALUE
16868 }
16869
16870 /* The IT blocks handling machinery is accessed through the these functions:
16871 it_fsm_pre_encode () from md_assemble ()
16872 set_it_insn_type () optional, from the tencode functions
16873 set_it_insn_type_last () ditto
16874 in_it_block () ditto
16875 it_fsm_post_encode () from md_assemble ()
16876 force_automatic_it_block_close () from label habdling functions
16877
16878 Rationale:
16879 1) md_assemble () calls it_fsm_pre_encode () before calling tencode (),
16880 initializing the IT insn type with a generic initial value depending
16881 on the inst.condition.
16882 2) During the tencode function, two things may happen:
16883 a) The tencode function overrides the IT insn type by
16884 calling either set_it_insn_type (type) or set_it_insn_type_last ().
16885 b) The tencode function queries the IT block state by
16886 calling in_it_block () (i.e. to determine narrow/not narrow mode).
16887
16888 Both set_it_insn_type and in_it_block run the internal FSM state
16889 handling function (handle_it_state), because: a) setting the IT insn
16890 type may incur in an invalid state (exiting the function),
16891 and b) querying the state requires the FSM to be updated.
16892 Specifically we want to avoid creating an IT block for conditional
16893 branches, so it_fsm_pre_encode is actually a guess and we can't
16894 determine whether an IT block is required until the tencode () routine
16895 has decided what type of instruction this actually it.
16896 Because of this, if set_it_insn_type and in_it_block have to be used,
16897 set_it_insn_type has to be called first.
16898
16899 set_it_insn_type_last () is a wrapper of set_it_insn_type (type), that
16900 determines the insn IT type depending on the inst.cond code.
16901 When a tencode () routine encodes an instruction that can be
16902 either outside an IT block, or, in the case of being inside, has to be
16903 the last one, set_it_insn_type_last () will determine the proper
16904 IT instruction type based on the inst.cond code. Otherwise,
16905 set_it_insn_type can be called for overriding that logic or
16906 for covering other cases.
16907
16908 Calling handle_it_state () may not transition the IT block state to
16909 OUTSIDE_IT_BLOCK immediatelly, since the (current) state could be
16910 still queried. Instead, if the FSM determines that the state should
16911 be transitioned to OUTSIDE_IT_BLOCK, a flag is marked to be closed
16912 after the tencode () function: that's what it_fsm_post_encode () does.
16913
16914 Since in_it_block () calls the state handling function to get an
16915 updated state, an error may occur (due to invalid insns combination).
16916 In that case, inst.error is set.
16917 Therefore, inst.error has to be checked after the execution of
16918 the tencode () routine.
16919
16920 3) Back in md_assemble(), it_fsm_post_encode () is called to commit
16921 any pending state change (if any) that didn't take place in
16922 handle_it_state () as explained above. */
16923
16924 static void
16925 it_fsm_pre_encode (void)
16926 {
16927 if (inst.cond != COND_ALWAYS)
16928 inst.it_insn_type = INSIDE_IT_INSN;
16929 else
16930 inst.it_insn_type = OUTSIDE_IT_INSN;
16931
16932 now_it.state_handled = 0;
16933 }
16934
16935 /* IT state FSM handling function. */
16936
16937 static int
16938 handle_it_state (void)
16939 {
16940 now_it.state_handled = 1;
16941 now_it.insn_cond = FALSE;
16942
16943 switch (now_it.state)
16944 {
16945 case OUTSIDE_IT_BLOCK:
16946 switch (inst.it_insn_type)
16947 {
16948 case OUTSIDE_IT_INSN:
16949 break;
16950
16951 case INSIDE_IT_INSN:
16952 case INSIDE_IT_LAST_INSN:
16953 if (thumb_mode == 0)
16954 {
16955 if (unified_syntax
16956 && !(implicit_it_mode & IMPLICIT_IT_MODE_ARM))
16957 as_tsktsk (_("Warning: conditional outside an IT block"\
16958 " for Thumb."));
16959 }
16960 else
16961 {
16962 if ((implicit_it_mode & IMPLICIT_IT_MODE_THUMB)
16963 && ARM_CPU_HAS_FEATURE (cpu_variant, arm_arch_t2))
16964 {
16965 /* Automatically generate the IT instruction. */
16966 new_automatic_it_block (inst.cond);
16967 if (inst.it_insn_type == INSIDE_IT_LAST_INSN)
16968 close_automatic_it_block ();
16969 }
16970 else
16971 {
16972 inst.error = BAD_OUT_IT;
16973 return FAIL;
16974 }
16975 }
16976 break;
16977
16978 case IF_INSIDE_IT_LAST_INSN:
16979 case NEUTRAL_IT_INSN:
16980 break;
16981
16982 case IT_INSN:
16983 now_it.state = MANUAL_IT_BLOCK;
16984 now_it.block_length = 0;
16985 break;
16986 }
16987 break;
16988
16989 case AUTOMATIC_IT_BLOCK:
16990 /* Three things may happen now:
16991 a) We should increment current it block size;
16992 b) We should close current it block (closing insn or 4 insns);
16993 c) We should close current it block and start a new one (due
16994 to incompatible conditions or
16995 4 insns-length block reached). */
16996
16997 switch (inst.it_insn_type)
16998 {
16999 case OUTSIDE_IT_INSN:
17000 /* The closure of the block shall happen immediatelly,
17001 so any in_it_block () call reports the block as closed. */
17002 force_automatic_it_block_close ();
17003 break;
17004
17005 case INSIDE_IT_INSN:
17006 case INSIDE_IT_LAST_INSN:
17007 case IF_INSIDE_IT_LAST_INSN:
17008 now_it.block_length++;
17009
17010 if (now_it.block_length > 4
17011 || !now_it_compatible (inst.cond))
17012 {
17013 force_automatic_it_block_close ();
17014 if (inst.it_insn_type != IF_INSIDE_IT_LAST_INSN)
17015 new_automatic_it_block (inst.cond);
17016 }
17017 else
17018 {
17019 now_it.insn_cond = TRUE;
17020 now_it_add_mask (inst.cond);
17021 }
17022
17023 if (now_it.state == AUTOMATIC_IT_BLOCK
17024 && (inst.it_insn_type == INSIDE_IT_LAST_INSN
17025 || inst.it_insn_type == IF_INSIDE_IT_LAST_INSN))
17026 close_automatic_it_block ();
17027 break;
17028
17029 case NEUTRAL_IT_INSN:
17030 now_it.block_length++;
17031 now_it.insn_cond = TRUE;
17032
17033 if (now_it.block_length > 4)
17034 force_automatic_it_block_close ();
17035 else
17036 now_it_add_mask (now_it.cc & 1);
17037 break;
17038
17039 case IT_INSN:
17040 close_automatic_it_block ();
17041 now_it.state = MANUAL_IT_BLOCK;
17042 break;
17043 }
17044 break;
17045
17046 case MANUAL_IT_BLOCK:
17047 {
17048 /* Check conditional suffixes. */
17049 const int cond = now_it.cc ^ ((now_it.mask >> 4) & 1) ^ 1;
17050 int is_last;
17051 now_it.mask <<= 1;
17052 now_it.mask &= 0x1f;
17053 is_last = (now_it.mask == 0x10);
17054 now_it.insn_cond = TRUE;
17055
17056 switch (inst.it_insn_type)
17057 {
17058 case OUTSIDE_IT_INSN:
17059 inst.error = BAD_NOT_IT;
17060 return FAIL;
17061
17062 case INSIDE_IT_INSN:
17063 if (cond != inst.cond)
17064 {
17065 inst.error = BAD_IT_COND;
17066 return FAIL;
17067 }
17068 break;
17069
17070 case INSIDE_IT_LAST_INSN:
17071 case IF_INSIDE_IT_LAST_INSN:
17072 if (cond != inst.cond)
17073 {
17074 inst.error = BAD_IT_COND;
17075 return FAIL;
17076 }
17077 if (!is_last)
17078 {
17079 inst.error = BAD_BRANCH;
17080 return FAIL;
17081 }
17082 break;
17083
17084 case NEUTRAL_IT_INSN:
17085 /* The BKPT instruction is unconditional even in an IT block. */
17086 break;
17087
17088 case IT_INSN:
17089 inst.error = BAD_IT_IT;
17090 return FAIL;
17091 }
17092 }
17093 break;
17094 }
17095
17096 return SUCCESS;
17097 }
17098
17099 struct depr_insn_mask
17100 {
17101 unsigned long pattern;
17102 unsigned long mask;
17103 const char* description;
17104 };
17105
17106 /* List of 16-bit instruction patterns deprecated in an IT block in
17107 ARMv8. */
17108 static const struct depr_insn_mask depr_it_insns[] = {
17109 { 0xc000, 0xc000, N_("Short branches, Undefined, SVC, LDM/STM") },
17110 { 0xb000, 0xb000, N_("Miscellaneous 16-bit instructions") },
17111 { 0xa000, 0xb800, N_("ADR") },
17112 { 0x4800, 0xf800, N_("Literal loads") },
17113 { 0x4478, 0xf478, N_("Hi-register ADD, MOV, CMP, BX, BLX using pc") },
17114 { 0x4487, 0xfc87, N_("Hi-register ADD, MOV, CMP using pc") },
17115 { 0, 0, NULL }
17116 };
17117
17118 static void
17119 it_fsm_post_encode (void)
17120 {
17121 int is_last;
17122
17123 if (!now_it.state_handled)
17124 handle_it_state ();
17125
17126 if (now_it.insn_cond
17127 && !now_it.warn_deprecated
17128 && warn_on_deprecated
17129 && ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v8))
17130 {
17131 if (inst.instruction >= 0x10000)
17132 {
17133 as_warn (_("IT blocks containing 32-bit Thumb instructions are "
17134 "deprecated in ARMv8"));
17135 now_it.warn_deprecated = TRUE;
17136 }
17137 else
17138 {
17139 const struct depr_insn_mask *p = depr_it_insns;
17140
17141 while (p->mask != 0)
17142 {
17143 if ((inst.instruction & p->mask) == p->pattern)
17144 {
17145 as_warn (_("IT blocks containing 16-bit Thumb instructions "
17146 "of the following class are deprecated in ARMv8: "
17147 "%s"), p->description);
17148 now_it.warn_deprecated = TRUE;
17149 break;
17150 }
17151
17152 ++p;
17153 }
17154 }
17155
17156 if (now_it.block_length > 1)
17157 {
17158 as_warn (_("IT blocks containing more than one conditional "
17159 "instruction are deprecated in ARMv8"));
17160 now_it.warn_deprecated = TRUE;
17161 }
17162 }
17163
17164 is_last = (now_it.mask == 0x10);
17165 if (is_last)
17166 {
17167 now_it.state = OUTSIDE_IT_BLOCK;
17168 now_it.mask = 0;
17169 }
17170 }
17171
17172 static void
17173 force_automatic_it_block_close (void)
17174 {
17175 if (now_it.state == AUTOMATIC_IT_BLOCK)
17176 {
17177 close_automatic_it_block ();
17178 now_it.state = OUTSIDE_IT_BLOCK;
17179 now_it.mask = 0;
17180 }
17181 }
17182
17183 static int
17184 in_it_block (void)
17185 {
17186 if (!now_it.state_handled)
17187 handle_it_state ();
17188
17189 return now_it.state != OUTSIDE_IT_BLOCK;
17190 }
17191
17192 void
17193 md_assemble (char *str)
17194 {
17195 char *p = str;
17196 const struct asm_opcode * opcode;
17197
17198 /* Align the previous label if needed. */
17199 if (last_label_seen != NULL)
17200 {
17201 symbol_set_frag (last_label_seen, frag_now);
17202 S_SET_VALUE (last_label_seen, (valueT) frag_now_fix ());
17203 S_SET_SEGMENT (last_label_seen, now_seg);
17204 }
17205
17206 memset (&inst, '\0', sizeof (inst));
17207 inst.reloc.type = BFD_RELOC_UNUSED;
17208
17209 opcode = opcode_lookup (&p);
17210 if (!opcode)
17211 {
17212 /* It wasn't an instruction, but it might be a register alias of
17213 the form alias .req reg, or a Neon .dn/.qn directive. */
17214 if (! create_register_alias (str, p)
17215 && ! create_neon_reg_alias (str, p))
17216 as_bad (_("bad instruction `%s'"), str);
17217
17218 return;
17219 }
17220
17221 if (warn_on_deprecated && opcode->tag == OT_cinfix3_deprecated)
17222 as_warn (_("s suffix on comparison instruction is deprecated"));
17223
17224 /* The value which unconditional instructions should have in place of the
17225 condition field. */
17226 inst.uncond_value = (opcode->tag == OT_csuffixF) ? 0xf : -1;
17227
17228 if (thumb_mode)
17229 {
17230 arm_feature_set variant;
17231
17232 variant = cpu_variant;
17233 /* Only allow coprocessor instructions on Thumb-2 capable devices. */
17234 if (!ARM_CPU_HAS_FEATURE (variant, arm_arch_t2))
17235 ARM_CLEAR_FEATURE (variant, variant, fpu_any_hard);
17236 /* Check that this instruction is supported for this CPU. */
17237 if (!opcode->tvariant
17238 || (thumb_mode == 1
17239 && !ARM_CPU_HAS_FEATURE (variant, *opcode->tvariant)))
17240 {
17241 as_bad (_("selected processor does not support Thumb mode `%s'"), str);
17242 return;
17243 }
17244 if (inst.cond != COND_ALWAYS && !unified_syntax
17245 && opcode->tencode != do_t_branch)
17246 {
17247 as_bad (_("Thumb does not support conditional execution"));
17248 return;
17249 }
17250
17251 if (!ARM_CPU_HAS_FEATURE (variant, arm_ext_v6t2))
17252 {
17253 if (opcode->tencode != do_t_blx && opcode->tencode != do_t_branch23
17254 && !(ARM_CPU_HAS_FEATURE(*opcode->tvariant, arm_ext_msr)
17255 || ARM_CPU_HAS_FEATURE(*opcode->tvariant, arm_ext_barrier)))
17256 {
17257 /* Two things are addressed here.
17258 1) Implicit require narrow instructions on Thumb-1.
17259 This avoids relaxation accidentally introducing Thumb-2
17260 instructions.
17261 2) Reject wide instructions in non Thumb-2 cores. */
17262 if (inst.size_req == 0)
17263 inst.size_req = 2;
17264 else if (inst.size_req == 4)
17265 {
17266 as_bad (_("selected processor does not support Thumb-2 mode `%s'"), str);
17267 return;
17268 }
17269 }
17270 }
17271
17272 inst.instruction = opcode->tvalue;
17273
17274 if (!parse_operands (p, opcode->operands, /*thumb=*/TRUE))
17275 {
17276 /* Prepare the it_insn_type for those encodings that don't set
17277 it. */
17278 it_fsm_pre_encode ();
17279
17280 opcode->tencode ();
17281
17282 it_fsm_post_encode ();
17283 }
17284
17285 if (!(inst.error || inst.relax))
17286 {
17287 gas_assert (inst.instruction < 0xe800 || inst.instruction > 0xffff);
17288 inst.size = (inst.instruction > 0xffff ? 4 : 2);
17289 if (inst.size_req && inst.size_req != inst.size)
17290 {
17291 as_bad (_("cannot honor width suffix -- `%s'"), str);
17292 return;
17293 }
17294 }
17295
17296 /* Something has gone badly wrong if we try to relax a fixed size
17297 instruction. */
17298 gas_assert (inst.size_req == 0 || !inst.relax);
17299
17300 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used,
17301 *opcode->tvariant);
17302 /* Many Thumb-2 instructions also have Thumb-1 variants, so explicitly
17303 set those bits when Thumb-2 32-bit instructions are seen. ie.
17304 anything other than bl/blx and v6-M instructions.
17305 This is overly pessimistic for relaxable instructions. */
17306 if (((inst.size == 4 && (inst.instruction & 0xf800e800) != 0xf000e800)
17307 || inst.relax)
17308 && !(ARM_CPU_HAS_FEATURE (*opcode->tvariant, arm_ext_msr)
17309 || ARM_CPU_HAS_FEATURE (*opcode->tvariant, arm_ext_barrier)))
17310 ARM_MERGE_FEATURE_SETS (thumb_arch_used, thumb_arch_used,
17311 arm_ext_v6t2);
17312
17313 check_neon_suffixes;
17314
17315 if (!inst.error)
17316 {
17317 mapping_state (MAP_THUMB);
17318 }
17319 }
17320 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v1))
17321 {
17322 bfd_boolean is_bx;
17323
17324 /* bx is allowed on v5 cores, and sometimes on v4 cores. */
17325 is_bx = (opcode->aencode == do_bx);
17326
17327 /* Check that this instruction is supported for this CPU. */
17328 if (!(is_bx && fix_v4bx)
17329 && !(opcode->avariant &&
17330 ARM_CPU_HAS_FEATURE (cpu_variant, *opcode->avariant)))
17331 {
17332 as_bad (_("selected processor does not support ARM mode `%s'"), str);
17333 return;
17334 }
17335 if (inst.size_req)
17336 {
17337 as_bad (_("width suffixes are invalid in ARM mode -- `%s'"), str);
17338 return;
17339 }
17340
17341 inst.instruction = opcode->avalue;
17342 if (opcode->tag == OT_unconditionalF)
17343 inst.instruction |= 0xF << 28;
17344 else
17345 inst.instruction |= inst.cond << 28;
17346 inst.size = INSN_SIZE;
17347 if (!parse_operands (p, opcode->operands, /*thumb=*/FALSE))
17348 {
17349 it_fsm_pre_encode ();
17350 opcode->aencode ();
17351 it_fsm_post_encode ();
17352 }
17353 /* Arm mode bx is marked as both v4T and v5 because it's still required
17354 on a hypothetical non-thumb v5 core. */
17355 if (is_bx)
17356 ARM_MERGE_FEATURE_SETS (arm_arch_used, arm_arch_used, arm_ext_v4t);
17357 else
17358 ARM_MERGE_FEATURE_SETS (arm_arch_used, arm_arch_used,
17359 *opcode->avariant);
17360
17361 check_neon_suffixes;
17362
17363 if (!inst.error)
17364 {
17365 mapping_state (MAP_ARM);
17366 }
17367 }
17368 else
17369 {
17370 as_bad (_("attempt to use an ARM instruction on a Thumb-only processor "
17371 "-- `%s'"), str);
17372 return;
17373 }
17374 output_inst (str);
17375 }
17376
17377 static void
17378 check_it_blocks_finished (void)
17379 {
17380 #ifdef OBJ_ELF
17381 asection *sect;
17382
17383 for (sect = stdoutput->sections; sect != NULL; sect = sect->next)
17384 if (seg_info (sect)->tc_segment_info_data.current_it.state
17385 == MANUAL_IT_BLOCK)
17386 {
17387 as_warn (_("section '%s' finished with an open IT block."),
17388 sect->name);
17389 }
17390 #else
17391 if (now_it.state == MANUAL_IT_BLOCK)
17392 as_warn (_("file finished with an open IT block."));
17393 #endif
17394 }
17395
17396 /* Various frobbings of labels and their addresses. */
17397
17398 void
17399 arm_start_line_hook (void)
17400 {
17401 last_label_seen = NULL;
17402 }
17403
17404 void
17405 arm_frob_label (symbolS * sym)
17406 {
17407 last_label_seen = sym;
17408
17409 ARM_SET_THUMB (sym, thumb_mode);
17410
17411 #if defined OBJ_COFF || defined OBJ_ELF
17412 ARM_SET_INTERWORK (sym, support_interwork);
17413 #endif
17414
17415 force_automatic_it_block_close ();
17416
17417 /* Note - do not allow local symbols (.Lxxx) to be labelled
17418 as Thumb functions. This is because these labels, whilst
17419 they exist inside Thumb code, are not the entry points for
17420 possible ARM->Thumb calls. Also, these labels can be used
17421 as part of a computed goto or switch statement. eg gcc
17422 can generate code that looks like this:
17423
17424 ldr r2, [pc, .Laaa]
17425 lsl r3, r3, #2
17426 ldr r2, [r3, r2]
17427 mov pc, r2
17428
17429 .Lbbb: .word .Lxxx
17430 .Lccc: .word .Lyyy
17431 ..etc...
17432 .Laaa: .word Lbbb
17433
17434 The first instruction loads the address of the jump table.
17435 The second instruction converts a table index into a byte offset.
17436 The third instruction gets the jump address out of the table.
17437 The fourth instruction performs the jump.
17438
17439 If the address stored at .Laaa is that of a symbol which has the
17440 Thumb_Func bit set, then the linker will arrange for this address
17441 to have the bottom bit set, which in turn would mean that the
17442 address computation performed by the third instruction would end
17443 up with the bottom bit set. Since the ARM is capable of unaligned
17444 word loads, the instruction would then load the incorrect address
17445 out of the jump table, and chaos would ensue. */
17446 if (label_is_thumb_function_name
17447 && (S_GET_NAME (sym)[0] != '.' || S_GET_NAME (sym)[1] != 'L')
17448 && (bfd_get_section_flags (stdoutput, now_seg) & SEC_CODE) != 0)
17449 {
17450 /* When the address of a Thumb function is taken the bottom
17451 bit of that address should be set. This will allow
17452 interworking between Arm and Thumb functions to work
17453 correctly. */
17454
17455 THUMB_SET_FUNC (sym, 1);
17456
17457 label_is_thumb_function_name = FALSE;
17458 }
17459
17460 dwarf2_emit_label (sym);
17461 }
17462
17463 bfd_boolean
17464 arm_data_in_code (void)
17465 {
17466 if (thumb_mode && ! strncmp (input_line_pointer + 1, "data:", 5))
17467 {
17468 *input_line_pointer = '/';
17469 input_line_pointer += 5;
17470 *input_line_pointer = 0;
17471 return TRUE;
17472 }
17473
17474 return FALSE;
17475 }
17476
17477 char *
17478 arm_canonicalize_symbol_name (char * name)
17479 {
17480 int len;
17481
17482 if (thumb_mode && (len = strlen (name)) > 5
17483 && streq (name + len - 5, "/data"))
17484 *(name + len - 5) = 0;
17485
17486 return name;
17487 }
17488 \f
17489 /* Table of all register names defined by default. The user can
17490 define additional names with .req. Note that all register names
17491 should appear in both upper and lowercase variants. Some registers
17492 also have mixed-case names. */
17493
17494 #define REGDEF(s,n,t) { #s, n, REG_TYPE_##t, TRUE, 0 }
17495 #define REGNUM(p,n,t) REGDEF(p##n, n, t)
17496 #define REGNUM2(p,n,t) REGDEF(p##n, 2 * n, t)
17497 #define REGSET(p,t) \
17498 REGNUM(p, 0,t), REGNUM(p, 1,t), REGNUM(p, 2,t), REGNUM(p, 3,t), \
17499 REGNUM(p, 4,t), REGNUM(p, 5,t), REGNUM(p, 6,t), REGNUM(p, 7,t), \
17500 REGNUM(p, 8,t), REGNUM(p, 9,t), REGNUM(p,10,t), REGNUM(p,11,t), \
17501 REGNUM(p,12,t), REGNUM(p,13,t), REGNUM(p,14,t), REGNUM(p,15,t)
17502 #define REGSETH(p,t) \
17503 REGNUM(p,16,t), REGNUM(p,17,t), REGNUM(p,18,t), REGNUM(p,19,t), \
17504 REGNUM(p,20,t), REGNUM(p,21,t), REGNUM(p,22,t), REGNUM(p,23,t), \
17505 REGNUM(p,24,t), REGNUM(p,25,t), REGNUM(p,26,t), REGNUM(p,27,t), \
17506 REGNUM(p,28,t), REGNUM(p,29,t), REGNUM(p,30,t), REGNUM(p,31,t)
17507 #define REGSET2(p,t) \
17508 REGNUM2(p, 0,t), REGNUM2(p, 1,t), REGNUM2(p, 2,t), REGNUM2(p, 3,t), \
17509 REGNUM2(p, 4,t), REGNUM2(p, 5,t), REGNUM2(p, 6,t), REGNUM2(p, 7,t), \
17510 REGNUM2(p, 8,t), REGNUM2(p, 9,t), REGNUM2(p,10,t), REGNUM2(p,11,t), \
17511 REGNUM2(p,12,t), REGNUM2(p,13,t), REGNUM2(p,14,t), REGNUM2(p,15,t)
17512 #define SPLRBANK(base,bank,t) \
17513 REGDEF(lr_##bank, 768|((base+0)<<16), t), \
17514 REGDEF(sp_##bank, 768|((base+1)<<16), t), \
17515 REGDEF(spsr_##bank, 768|(base<<16)|SPSR_BIT, t), \
17516 REGDEF(LR_##bank, 768|((base+0)<<16), t), \
17517 REGDEF(SP_##bank, 768|((base+1)<<16), t), \
17518 REGDEF(SPSR_##bank, 768|(base<<16)|SPSR_BIT, t)
17519
17520 static const struct reg_entry reg_names[] =
17521 {
17522 /* ARM integer registers. */
17523 REGSET(r, RN), REGSET(R, RN),
17524
17525 /* ATPCS synonyms. */
17526 REGDEF(a1,0,RN), REGDEF(a2,1,RN), REGDEF(a3, 2,RN), REGDEF(a4, 3,RN),
17527 REGDEF(v1,4,RN), REGDEF(v2,5,RN), REGDEF(v3, 6,RN), REGDEF(v4, 7,RN),
17528 REGDEF(v5,8,RN), REGDEF(v6,9,RN), REGDEF(v7,10,RN), REGDEF(v8,11,RN),
17529
17530 REGDEF(A1,0,RN), REGDEF(A2,1,RN), REGDEF(A3, 2,RN), REGDEF(A4, 3,RN),
17531 REGDEF(V1,4,RN), REGDEF(V2,5,RN), REGDEF(V3, 6,RN), REGDEF(V4, 7,RN),
17532 REGDEF(V5,8,RN), REGDEF(V6,9,RN), REGDEF(V7,10,RN), REGDEF(V8,11,RN),
17533
17534 /* Well-known aliases. */
17535 REGDEF(wr, 7,RN), REGDEF(sb, 9,RN), REGDEF(sl,10,RN), REGDEF(fp,11,RN),
17536 REGDEF(ip,12,RN), REGDEF(sp,13,RN), REGDEF(lr,14,RN), REGDEF(pc,15,RN),
17537
17538 REGDEF(WR, 7,RN), REGDEF(SB, 9,RN), REGDEF(SL,10,RN), REGDEF(FP,11,RN),
17539 REGDEF(IP,12,RN), REGDEF(SP,13,RN), REGDEF(LR,14,RN), REGDEF(PC,15,RN),
17540
17541 /* Coprocessor numbers. */
17542 REGSET(p, CP), REGSET(P, CP),
17543
17544 /* Coprocessor register numbers. The "cr" variants are for backward
17545 compatibility. */
17546 REGSET(c, CN), REGSET(C, CN),
17547 REGSET(cr, CN), REGSET(CR, CN),
17548
17549 /* ARM banked registers. */
17550 REGDEF(R8_usr,512|(0<<16),RNB), REGDEF(r8_usr,512|(0<<16),RNB),
17551 REGDEF(R9_usr,512|(1<<16),RNB), REGDEF(r9_usr,512|(1<<16),RNB),
17552 REGDEF(R10_usr,512|(2<<16),RNB), REGDEF(r10_usr,512|(2<<16),RNB),
17553 REGDEF(R11_usr,512|(3<<16),RNB), REGDEF(r11_usr,512|(3<<16),RNB),
17554 REGDEF(R12_usr,512|(4<<16),RNB), REGDEF(r12_usr,512|(4<<16),RNB),
17555 REGDEF(SP_usr,512|(5<<16),RNB), REGDEF(sp_usr,512|(5<<16),RNB),
17556 REGDEF(LR_usr,512|(6<<16),RNB), REGDEF(lr_usr,512|(6<<16),RNB),
17557
17558 REGDEF(R8_fiq,512|(8<<16),RNB), REGDEF(r8_fiq,512|(8<<16),RNB),
17559 REGDEF(R9_fiq,512|(9<<16),RNB), REGDEF(r9_fiq,512|(9<<16),RNB),
17560 REGDEF(R10_fiq,512|(10<<16),RNB), REGDEF(r10_fiq,512|(10<<16),RNB),
17561 REGDEF(R11_fiq,512|(11<<16),RNB), REGDEF(r11_fiq,512|(11<<16),RNB),
17562 REGDEF(R12_fiq,512|(12<<16),RNB), REGDEF(r12_fiq,512|(12<<16),RNB),
17563 REGDEF(SP_fiq,512|(13<<16),RNB), REGDEF(sp_fiq,512|(13<<16),RNB),
17564 REGDEF(LR_fiq,512|(14<<16),RNB), REGDEF(lr_fiq,512|(14<<16),RNB),
17565 REGDEF(SPSR_fiq,512|(14<<16)|SPSR_BIT,RNB), REGDEF(spsr_fiq,512|(14<<16)|SPSR_BIT,RNB),
17566
17567 SPLRBANK(0,IRQ,RNB), SPLRBANK(0,irq,RNB),
17568 SPLRBANK(2,SVC,RNB), SPLRBANK(2,svc,RNB),
17569 SPLRBANK(4,ABT,RNB), SPLRBANK(4,abt,RNB),
17570 SPLRBANK(6,UND,RNB), SPLRBANK(6,und,RNB),
17571 SPLRBANK(12,MON,RNB), SPLRBANK(12,mon,RNB),
17572 REGDEF(elr_hyp,768|(14<<16),RNB), REGDEF(ELR_hyp,768|(14<<16),RNB),
17573 REGDEF(sp_hyp,768|(15<<16),RNB), REGDEF(SP_hyp,768|(15<<16),RNB),
17574 REGDEF(spsr_hyp,768|(14<<16)|SPSR_BIT,RNB),
17575 REGDEF(SPSR_hyp,768|(14<<16)|SPSR_BIT,RNB),
17576
17577 /* FPA registers. */
17578 REGNUM(f,0,FN), REGNUM(f,1,FN), REGNUM(f,2,FN), REGNUM(f,3,FN),
17579 REGNUM(f,4,FN), REGNUM(f,5,FN), REGNUM(f,6,FN), REGNUM(f,7, FN),
17580
17581 REGNUM(F,0,FN), REGNUM(F,1,FN), REGNUM(F,2,FN), REGNUM(F,3,FN),
17582 REGNUM(F,4,FN), REGNUM(F,5,FN), REGNUM(F,6,FN), REGNUM(F,7, FN),
17583
17584 /* VFP SP registers. */
17585 REGSET(s,VFS), REGSET(S,VFS),
17586 REGSETH(s,VFS), REGSETH(S,VFS),
17587
17588 /* VFP DP Registers. */
17589 REGSET(d,VFD), REGSET(D,VFD),
17590 /* Extra Neon DP registers. */
17591 REGSETH(d,VFD), REGSETH(D,VFD),
17592
17593 /* Neon QP registers. */
17594 REGSET2(q,NQ), REGSET2(Q,NQ),
17595
17596 /* VFP control registers. */
17597 REGDEF(fpsid,0,VFC), REGDEF(fpscr,1,VFC), REGDEF(fpexc,8,VFC),
17598 REGDEF(FPSID,0,VFC), REGDEF(FPSCR,1,VFC), REGDEF(FPEXC,8,VFC),
17599 REGDEF(fpinst,9,VFC), REGDEF(fpinst2,10,VFC),
17600 REGDEF(FPINST,9,VFC), REGDEF(FPINST2,10,VFC),
17601 REGDEF(mvfr0,7,VFC), REGDEF(mvfr1,6,VFC),
17602 REGDEF(MVFR0,7,VFC), REGDEF(MVFR1,6,VFC),
17603
17604 /* Maverick DSP coprocessor registers. */
17605 REGSET(mvf,MVF), REGSET(mvd,MVD), REGSET(mvfx,MVFX), REGSET(mvdx,MVDX),
17606 REGSET(MVF,MVF), REGSET(MVD,MVD), REGSET(MVFX,MVFX), REGSET(MVDX,MVDX),
17607
17608 REGNUM(mvax,0,MVAX), REGNUM(mvax,1,MVAX),
17609 REGNUM(mvax,2,MVAX), REGNUM(mvax,3,MVAX),
17610 REGDEF(dspsc,0,DSPSC),
17611
17612 REGNUM(MVAX,0,MVAX), REGNUM(MVAX,1,MVAX),
17613 REGNUM(MVAX,2,MVAX), REGNUM(MVAX,3,MVAX),
17614 REGDEF(DSPSC,0,DSPSC),
17615
17616 /* iWMMXt data registers - p0, c0-15. */
17617 REGSET(wr,MMXWR), REGSET(wR,MMXWR), REGSET(WR, MMXWR),
17618
17619 /* iWMMXt control registers - p1, c0-3. */
17620 REGDEF(wcid, 0,MMXWC), REGDEF(wCID, 0,MMXWC), REGDEF(WCID, 0,MMXWC),
17621 REGDEF(wcon, 1,MMXWC), REGDEF(wCon, 1,MMXWC), REGDEF(WCON, 1,MMXWC),
17622 REGDEF(wcssf, 2,MMXWC), REGDEF(wCSSF, 2,MMXWC), REGDEF(WCSSF, 2,MMXWC),
17623 REGDEF(wcasf, 3,MMXWC), REGDEF(wCASF, 3,MMXWC), REGDEF(WCASF, 3,MMXWC),
17624
17625 /* iWMMXt scalar (constant/offset) registers - p1, c8-11. */
17626 REGDEF(wcgr0, 8,MMXWCG), REGDEF(wCGR0, 8,MMXWCG), REGDEF(WCGR0, 8,MMXWCG),
17627 REGDEF(wcgr1, 9,MMXWCG), REGDEF(wCGR1, 9,MMXWCG), REGDEF(WCGR1, 9,MMXWCG),
17628 REGDEF(wcgr2,10,MMXWCG), REGDEF(wCGR2,10,MMXWCG), REGDEF(WCGR2,10,MMXWCG),
17629 REGDEF(wcgr3,11,MMXWCG), REGDEF(wCGR3,11,MMXWCG), REGDEF(WCGR3,11,MMXWCG),
17630
17631 /* XScale accumulator registers. */
17632 REGNUM(acc,0,XSCALE), REGNUM(ACC,0,XSCALE),
17633 };
17634 #undef REGDEF
17635 #undef REGNUM
17636 #undef REGSET
17637
17638 /* Table of all PSR suffixes. Bare "CPSR" and "SPSR" are handled
17639 within psr_required_here. */
17640 static const struct asm_psr psrs[] =
17641 {
17642 /* Backward compatibility notation. Note that "all" is no longer
17643 truly all possible PSR bits. */
17644 {"all", PSR_c | PSR_f},
17645 {"flg", PSR_f},
17646 {"ctl", PSR_c},
17647
17648 /* Individual flags. */
17649 {"f", PSR_f},
17650 {"c", PSR_c},
17651 {"x", PSR_x},
17652 {"s", PSR_s},
17653
17654 /* Combinations of flags. */
17655 {"fs", PSR_f | PSR_s},
17656 {"fx", PSR_f | PSR_x},
17657 {"fc", PSR_f | PSR_c},
17658 {"sf", PSR_s | PSR_f},
17659 {"sx", PSR_s | PSR_x},
17660 {"sc", PSR_s | PSR_c},
17661 {"xf", PSR_x | PSR_f},
17662 {"xs", PSR_x | PSR_s},
17663 {"xc", PSR_x | PSR_c},
17664 {"cf", PSR_c | PSR_f},
17665 {"cs", PSR_c | PSR_s},
17666 {"cx", PSR_c | PSR_x},
17667 {"fsx", PSR_f | PSR_s | PSR_x},
17668 {"fsc", PSR_f | PSR_s | PSR_c},
17669 {"fxs", PSR_f | PSR_x | PSR_s},
17670 {"fxc", PSR_f | PSR_x | PSR_c},
17671 {"fcs", PSR_f | PSR_c | PSR_s},
17672 {"fcx", PSR_f | PSR_c | PSR_x},
17673 {"sfx", PSR_s | PSR_f | PSR_x},
17674 {"sfc", PSR_s | PSR_f | PSR_c},
17675 {"sxf", PSR_s | PSR_x | PSR_f},
17676 {"sxc", PSR_s | PSR_x | PSR_c},
17677 {"scf", PSR_s | PSR_c | PSR_f},
17678 {"scx", PSR_s | PSR_c | PSR_x},
17679 {"xfs", PSR_x | PSR_f | PSR_s},
17680 {"xfc", PSR_x | PSR_f | PSR_c},
17681 {"xsf", PSR_x | PSR_s | PSR_f},
17682 {"xsc", PSR_x | PSR_s | PSR_c},
17683 {"xcf", PSR_x | PSR_c | PSR_f},
17684 {"xcs", PSR_x | PSR_c | PSR_s},
17685 {"cfs", PSR_c | PSR_f | PSR_s},
17686 {"cfx", PSR_c | PSR_f | PSR_x},
17687 {"csf", PSR_c | PSR_s | PSR_f},
17688 {"csx", PSR_c | PSR_s | PSR_x},
17689 {"cxf", PSR_c | PSR_x | PSR_f},
17690 {"cxs", PSR_c | PSR_x | PSR_s},
17691 {"fsxc", PSR_f | PSR_s | PSR_x | PSR_c},
17692 {"fscx", PSR_f | PSR_s | PSR_c | PSR_x},
17693 {"fxsc", PSR_f | PSR_x | PSR_s | PSR_c},
17694 {"fxcs", PSR_f | PSR_x | PSR_c | PSR_s},
17695 {"fcsx", PSR_f | PSR_c | PSR_s | PSR_x},
17696 {"fcxs", PSR_f | PSR_c | PSR_x | PSR_s},
17697 {"sfxc", PSR_s | PSR_f | PSR_x | PSR_c},
17698 {"sfcx", PSR_s | PSR_f | PSR_c | PSR_x},
17699 {"sxfc", PSR_s | PSR_x | PSR_f | PSR_c},
17700 {"sxcf", PSR_s | PSR_x | PSR_c | PSR_f},
17701 {"scfx", PSR_s | PSR_c | PSR_f | PSR_x},
17702 {"scxf", PSR_s | PSR_c | PSR_x | PSR_f},
17703 {"xfsc", PSR_x | PSR_f | PSR_s | PSR_c},
17704 {"xfcs", PSR_x | PSR_f | PSR_c | PSR_s},
17705 {"xsfc", PSR_x | PSR_s | PSR_f | PSR_c},
17706 {"xscf", PSR_x | PSR_s | PSR_c | PSR_f},
17707 {"xcfs", PSR_x | PSR_c | PSR_f | PSR_s},
17708 {"xcsf", PSR_x | PSR_c | PSR_s | PSR_f},
17709 {"cfsx", PSR_c | PSR_f | PSR_s | PSR_x},
17710 {"cfxs", PSR_c | PSR_f | PSR_x | PSR_s},
17711 {"csfx", PSR_c | PSR_s | PSR_f | PSR_x},
17712 {"csxf", PSR_c | PSR_s | PSR_x | PSR_f},
17713 {"cxfs", PSR_c | PSR_x | PSR_f | PSR_s},
17714 {"cxsf", PSR_c | PSR_x | PSR_s | PSR_f},
17715 };
17716
17717 /* Table of V7M psr names. */
17718 static const struct asm_psr v7m_psrs[] =
17719 {
17720 {"apsr", 0 }, {"APSR", 0 },
17721 {"iapsr", 1 }, {"IAPSR", 1 },
17722 {"eapsr", 2 }, {"EAPSR", 2 },
17723 {"psr", 3 }, {"PSR", 3 },
17724 {"xpsr", 3 }, {"XPSR", 3 }, {"xPSR", 3 },
17725 {"ipsr", 5 }, {"IPSR", 5 },
17726 {"epsr", 6 }, {"EPSR", 6 },
17727 {"iepsr", 7 }, {"IEPSR", 7 },
17728 {"msp", 8 }, {"MSP", 8 },
17729 {"psp", 9 }, {"PSP", 9 },
17730 {"primask", 16}, {"PRIMASK", 16},
17731 {"basepri", 17}, {"BASEPRI", 17},
17732 {"basepri_max", 18}, {"BASEPRI_MAX", 18},
17733 {"basepri_max", 18}, {"BASEPRI_MASK", 18}, /* Typo, preserved for backwards compatibility. */
17734 {"faultmask", 19}, {"FAULTMASK", 19},
17735 {"control", 20}, {"CONTROL", 20}
17736 };
17737
17738 /* Table of all shift-in-operand names. */
17739 static const struct asm_shift_name shift_names [] =
17740 {
17741 { "asl", SHIFT_LSL }, { "ASL", SHIFT_LSL },
17742 { "lsl", SHIFT_LSL }, { "LSL", SHIFT_LSL },
17743 { "lsr", SHIFT_LSR }, { "LSR", SHIFT_LSR },
17744 { "asr", SHIFT_ASR }, { "ASR", SHIFT_ASR },
17745 { "ror", SHIFT_ROR }, { "ROR", SHIFT_ROR },
17746 { "rrx", SHIFT_RRX }, { "RRX", SHIFT_RRX }
17747 };
17748
17749 /* Table of all explicit relocation names. */
17750 #ifdef OBJ_ELF
17751 static struct reloc_entry reloc_names[] =
17752 {
17753 { "got", BFD_RELOC_ARM_GOT32 }, { "GOT", BFD_RELOC_ARM_GOT32 },
17754 { "gotoff", BFD_RELOC_ARM_GOTOFF }, { "GOTOFF", BFD_RELOC_ARM_GOTOFF },
17755 { "plt", BFD_RELOC_ARM_PLT32 }, { "PLT", BFD_RELOC_ARM_PLT32 },
17756 { "target1", BFD_RELOC_ARM_TARGET1 }, { "TARGET1", BFD_RELOC_ARM_TARGET1 },
17757 { "target2", BFD_RELOC_ARM_TARGET2 }, { "TARGET2", BFD_RELOC_ARM_TARGET2 },
17758 { "sbrel", BFD_RELOC_ARM_SBREL32 }, { "SBREL", BFD_RELOC_ARM_SBREL32 },
17759 { "tlsgd", BFD_RELOC_ARM_TLS_GD32}, { "TLSGD", BFD_RELOC_ARM_TLS_GD32},
17760 { "tlsldm", BFD_RELOC_ARM_TLS_LDM32}, { "TLSLDM", BFD_RELOC_ARM_TLS_LDM32},
17761 { "tlsldo", BFD_RELOC_ARM_TLS_LDO32}, { "TLSLDO", BFD_RELOC_ARM_TLS_LDO32},
17762 { "gottpoff",BFD_RELOC_ARM_TLS_IE32}, { "GOTTPOFF",BFD_RELOC_ARM_TLS_IE32},
17763 { "tpoff", BFD_RELOC_ARM_TLS_LE32}, { "TPOFF", BFD_RELOC_ARM_TLS_LE32},
17764 { "got_prel", BFD_RELOC_ARM_GOT_PREL}, { "GOT_PREL", BFD_RELOC_ARM_GOT_PREL},
17765 { "tlsdesc", BFD_RELOC_ARM_TLS_GOTDESC},
17766 { "TLSDESC", BFD_RELOC_ARM_TLS_GOTDESC},
17767 { "tlscall", BFD_RELOC_ARM_TLS_CALL},
17768 { "TLSCALL", BFD_RELOC_ARM_TLS_CALL},
17769 { "tlsdescseq", BFD_RELOC_ARM_TLS_DESCSEQ},
17770 { "TLSDESCSEQ", BFD_RELOC_ARM_TLS_DESCSEQ}
17771 };
17772 #endif
17773
17774 /* Table of all conditional affixes. 0xF is not defined as a condition code. */
17775 static const struct asm_cond conds[] =
17776 {
17777 {"eq", 0x0},
17778 {"ne", 0x1},
17779 {"cs", 0x2}, {"hs", 0x2},
17780 {"cc", 0x3}, {"ul", 0x3}, {"lo", 0x3},
17781 {"mi", 0x4},
17782 {"pl", 0x5},
17783 {"vs", 0x6},
17784 {"vc", 0x7},
17785 {"hi", 0x8},
17786 {"ls", 0x9},
17787 {"ge", 0xa},
17788 {"lt", 0xb},
17789 {"gt", 0xc},
17790 {"le", 0xd},
17791 {"al", 0xe}
17792 };
17793
17794 #define UL_BARRIER(L,U,CODE,FEAT) \
17795 { L, CODE, ARM_FEATURE (FEAT, 0) }, \
17796 { U, CODE, ARM_FEATURE (FEAT, 0) }
17797
17798 static struct asm_barrier_opt barrier_opt_names[] =
17799 {
17800 UL_BARRIER ("sy", "SY", 0xf, ARM_EXT_BARRIER),
17801 UL_BARRIER ("st", "ST", 0xe, ARM_EXT_BARRIER),
17802 UL_BARRIER ("ld", "LD", 0xd, ARM_EXT_V8),
17803 UL_BARRIER ("ish", "ISH", 0xb, ARM_EXT_BARRIER),
17804 UL_BARRIER ("sh", "SH", 0xb, ARM_EXT_BARRIER),
17805 UL_BARRIER ("ishst", "ISHST", 0xa, ARM_EXT_BARRIER),
17806 UL_BARRIER ("shst", "SHST", 0xa, ARM_EXT_BARRIER),
17807 UL_BARRIER ("ishld", "ISHLD", 0x9, ARM_EXT_V8),
17808 UL_BARRIER ("un", "UN", 0x7, ARM_EXT_BARRIER),
17809 UL_BARRIER ("nsh", "NSH", 0x7, ARM_EXT_BARRIER),
17810 UL_BARRIER ("unst", "UNST", 0x6, ARM_EXT_BARRIER),
17811 UL_BARRIER ("nshst", "NSHST", 0x6, ARM_EXT_BARRIER),
17812 UL_BARRIER ("nshld", "NSHLD", 0x5, ARM_EXT_V8),
17813 UL_BARRIER ("osh", "OSH", 0x3, ARM_EXT_BARRIER),
17814 UL_BARRIER ("oshst", "OSHST", 0x2, ARM_EXT_BARRIER),
17815 UL_BARRIER ("oshld", "OSHLD", 0x1, ARM_EXT_V8)
17816 };
17817
17818 #undef UL_BARRIER
17819
17820 /* Table of ARM-format instructions. */
17821
17822 /* Macros for gluing together operand strings. N.B. In all cases
17823 other than OPS0, the trailing OP_stop comes from default
17824 zero-initialization of the unspecified elements of the array. */
17825 #define OPS0() { OP_stop, }
17826 #define OPS1(a) { OP_##a, }
17827 #define OPS2(a,b) { OP_##a,OP_##b, }
17828 #define OPS3(a,b,c) { OP_##a,OP_##b,OP_##c, }
17829 #define OPS4(a,b,c,d) { OP_##a,OP_##b,OP_##c,OP_##d, }
17830 #define OPS5(a,b,c,d,e) { OP_##a,OP_##b,OP_##c,OP_##d,OP_##e, }
17831 #define OPS6(a,b,c,d,e,f) { OP_##a,OP_##b,OP_##c,OP_##d,OP_##e,OP_##f, }
17832
17833 /* These macros are similar to the OPSn, but do not prepend the OP_ prefix.
17834 This is useful when mixing operands for ARM and THUMB, i.e. using the
17835 MIX_ARM_THUMB_OPERANDS macro.
17836 In order to use these macros, prefix the number of operands with _
17837 e.g. _3. */
17838 #define OPS_1(a) { a, }
17839 #define OPS_2(a,b) { a,b, }
17840 #define OPS_3(a,b,c) { a,b,c, }
17841 #define OPS_4(a,b,c,d) { a,b,c,d, }
17842 #define OPS_5(a,b,c,d,e) { a,b,c,d,e, }
17843 #define OPS_6(a,b,c,d,e,f) { a,b,c,d,e,f, }
17844
17845 /* These macros abstract out the exact format of the mnemonic table and
17846 save some repeated characters. */
17847
17848 /* The normal sort of mnemonic; has a Thumb variant; takes a conditional suffix. */
17849 #define TxCE(mnem, op, top, nops, ops, ae, te) \
17850 { mnem, OPS##nops ops, OT_csuffix, 0x##op, top, ARM_VARIANT, \
17851 THUMB_VARIANT, do_##ae, do_##te }
17852
17853 /* Two variants of the above - TCE for a numeric Thumb opcode, tCE for
17854 a T_MNEM_xyz enumerator. */
17855 #define TCE(mnem, aop, top, nops, ops, ae, te) \
17856 TxCE (mnem, aop, 0x##top, nops, ops, ae, te)
17857 #define tCE(mnem, aop, top, nops, ops, ae, te) \
17858 TxCE (mnem, aop, T_MNEM##top, nops, ops, ae, te)
17859
17860 /* Second most common sort of mnemonic: has a Thumb variant, takes a conditional
17861 infix after the third character. */
17862 #define TxC3(mnem, op, top, nops, ops, ae, te) \
17863 { mnem, OPS##nops ops, OT_cinfix3, 0x##op, top, ARM_VARIANT, \
17864 THUMB_VARIANT, do_##ae, do_##te }
17865 #define TxC3w(mnem, op, top, nops, ops, ae, te) \
17866 { mnem, OPS##nops ops, OT_cinfix3_deprecated, 0x##op, top, ARM_VARIANT, \
17867 THUMB_VARIANT, do_##ae, do_##te }
17868 #define TC3(mnem, aop, top, nops, ops, ae, te) \
17869 TxC3 (mnem, aop, 0x##top, nops, ops, ae, te)
17870 #define TC3w(mnem, aop, top, nops, ops, ae, te) \
17871 TxC3w (mnem, aop, 0x##top, nops, ops, ae, te)
17872 #define tC3(mnem, aop, top, nops, ops, ae, te) \
17873 TxC3 (mnem, aop, T_MNEM##top, nops, ops, ae, te)
17874 #define tC3w(mnem, aop, top, nops, ops, ae, te) \
17875 TxC3w (mnem, aop, T_MNEM##top, nops, ops, ae, te)
17876
17877 /* Mnemonic that cannot be conditionalized. The ARM condition-code
17878 field is still 0xE. Many of the Thumb variants can be executed
17879 conditionally, so this is checked separately. */
17880 #define TUE(mnem, op, top, nops, ops, ae, te) \
17881 { mnem, OPS##nops ops, OT_unconditional, 0x##op, 0x##top, ARM_VARIANT, \
17882 THUMB_VARIANT, do_##ae, do_##te }
17883
17884 /* Same as TUE but the encoding function for ARM and Thumb modes is the same.
17885 Used by mnemonics that have very minimal differences in the encoding for
17886 ARM and Thumb variants and can be handled in a common function. */
17887 #define TUEc(mnem, op, top, nops, ops, en) \
17888 { mnem, OPS##nops ops, OT_unconditional, 0x##op, 0x##top, ARM_VARIANT, \
17889 THUMB_VARIANT, do_##en, do_##en }
17890
17891 /* Mnemonic that cannot be conditionalized, and bears 0xF in its ARM
17892 condition code field. */
17893 #define TUF(mnem, op, top, nops, ops, ae, te) \
17894 { mnem, OPS##nops ops, OT_unconditionalF, 0x##op, 0x##top, ARM_VARIANT, \
17895 THUMB_VARIANT, do_##ae, do_##te }
17896
17897 /* ARM-only variants of all the above. */
17898 #define CE(mnem, op, nops, ops, ae) \
17899 { mnem, OPS##nops ops, OT_csuffix, 0x##op, 0x0, ARM_VARIANT, 0, do_##ae, NULL }
17900
17901 #define C3(mnem, op, nops, ops, ae) \
17902 { #mnem, OPS##nops ops, OT_cinfix3, 0x##op, 0x0, ARM_VARIANT, 0, do_##ae, NULL }
17903
17904 /* Legacy mnemonics that always have conditional infix after the third
17905 character. */
17906 #define CL(mnem, op, nops, ops, ae) \
17907 { mnem, OPS##nops ops, OT_cinfix3_legacy, \
17908 0x##op, 0x0, ARM_VARIANT, 0, do_##ae, NULL }
17909
17910 /* Coprocessor instructions. Isomorphic between Arm and Thumb-2. */
17911 #define cCE(mnem, op, nops, ops, ae) \
17912 { mnem, OPS##nops ops, OT_csuffix, 0x##op, 0xe##op, ARM_VARIANT, ARM_VARIANT, do_##ae, do_##ae }
17913
17914 /* Legacy coprocessor instructions where conditional infix and conditional
17915 suffix are ambiguous. For consistency this includes all FPA instructions,
17916 not just the potentially ambiguous ones. */
17917 #define cCL(mnem, op, nops, ops, ae) \
17918 { mnem, OPS##nops ops, OT_cinfix3_legacy, \
17919 0x##op, 0xe##op, ARM_VARIANT, ARM_VARIANT, do_##ae, do_##ae }
17920
17921 /* Coprocessor, takes either a suffix or a position-3 infix
17922 (for an FPA corner case). */
17923 #define C3E(mnem, op, nops, ops, ae) \
17924 { mnem, OPS##nops ops, OT_csuf_or_in3, \
17925 0x##op, 0xe##op, ARM_VARIANT, ARM_VARIANT, do_##ae, do_##ae }
17926
17927 #define xCM_(m1, m2, m3, op, nops, ops, ae) \
17928 { m1 #m2 m3, OPS##nops ops, \
17929 sizeof (#m2) == 1 ? OT_odd_infix_unc : OT_odd_infix_0 + sizeof (m1) - 1, \
17930 0x##op, 0x0, ARM_VARIANT, 0, do_##ae, NULL }
17931
17932 #define CM(m1, m2, op, nops, ops, ae) \
17933 xCM_ (m1, , m2, op, nops, ops, ae), \
17934 xCM_ (m1, eq, m2, op, nops, ops, ae), \
17935 xCM_ (m1, ne, m2, op, nops, ops, ae), \
17936 xCM_ (m1, cs, m2, op, nops, ops, ae), \
17937 xCM_ (m1, hs, m2, op, nops, ops, ae), \
17938 xCM_ (m1, cc, m2, op, nops, ops, ae), \
17939 xCM_ (m1, ul, m2, op, nops, ops, ae), \
17940 xCM_ (m1, lo, m2, op, nops, ops, ae), \
17941 xCM_ (m1, mi, m2, op, nops, ops, ae), \
17942 xCM_ (m1, pl, m2, op, nops, ops, ae), \
17943 xCM_ (m1, vs, m2, op, nops, ops, ae), \
17944 xCM_ (m1, vc, m2, op, nops, ops, ae), \
17945 xCM_ (m1, hi, m2, op, nops, ops, ae), \
17946 xCM_ (m1, ls, m2, op, nops, ops, ae), \
17947 xCM_ (m1, ge, m2, op, nops, ops, ae), \
17948 xCM_ (m1, lt, m2, op, nops, ops, ae), \
17949 xCM_ (m1, gt, m2, op, nops, ops, ae), \
17950 xCM_ (m1, le, m2, op, nops, ops, ae), \
17951 xCM_ (m1, al, m2, op, nops, ops, ae)
17952
17953 #define UE(mnem, op, nops, ops, ae) \
17954 { #mnem, OPS##nops ops, OT_unconditional, 0x##op, 0, ARM_VARIANT, 0, do_##ae, NULL }
17955
17956 #define UF(mnem, op, nops, ops, ae) \
17957 { #mnem, OPS##nops ops, OT_unconditionalF, 0x##op, 0, ARM_VARIANT, 0, do_##ae, NULL }
17958
17959 /* Neon data-processing. ARM versions are unconditional with cond=0xf.
17960 The Thumb and ARM variants are mostly the same (bits 0-23 and 24/28), so we
17961 use the same encoding function for each. */
17962 #define NUF(mnem, op, nops, ops, enc) \
17963 { #mnem, OPS##nops ops, OT_unconditionalF, 0x##op, 0x##op, \
17964 ARM_VARIANT, THUMB_VARIANT, do_##enc, do_##enc }
17965
17966 /* Neon data processing, version which indirects through neon_enc_tab for
17967 the various overloaded versions of opcodes. */
17968 #define nUF(mnem, op, nops, ops, enc) \
17969 { #mnem, OPS##nops ops, OT_unconditionalF, N_MNEM##op, N_MNEM##op, \
17970 ARM_VARIANT, THUMB_VARIANT, do_##enc, do_##enc }
17971
17972 /* Neon insn with conditional suffix for the ARM version, non-overloaded
17973 version. */
17974 #define NCE_tag(mnem, op, nops, ops, enc, tag) \
17975 { #mnem, OPS##nops ops, tag, 0x##op, 0x##op, ARM_VARIANT, \
17976 THUMB_VARIANT, do_##enc, do_##enc }
17977
17978 #define NCE(mnem, op, nops, ops, enc) \
17979 NCE_tag (mnem, op, nops, ops, enc, OT_csuffix)
17980
17981 #define NCEF(mnem, op, nops, ops, enc) \
17982 NCE_tag (mnem, op, nops, ops, enc, OT_csuffixF)
17983
17984 /* Neon insn with conditional suffix for the ARM version, overloaded types. */
17985 #define nCE_tag(mnem, op, nops, ops, enc, tag) \
17986 { #mnem, OPS##nops ops, tag, N_MNEM##op, N_MNEM##op, \
17987 ARM_VARIANT, THUMB_VARIANT, do_##enc, do_##enc }
17988
17989 #define nCE(mnem, op, nops, ops, enc) \
17990 nCE_tag (mnem, op, nops, ops, enc, OT_csuffix)
17991
17992 #define nCEF(mnem, op, nops, ops, enc) \
17993 nCE_tag (mnem, op, nops, ops, enc, OT_csuffixF)
17994
17995 #define do_0 0
17996
17997 static const struct asm_opcode insns[] =
17998 {
17999 #define ARM_VARIANT & arm_ext_v1 /* Core ARM Instructions. */
18000 #define THUMB_VARIANT & arm_ext_v4t
18001 tCE("and", 0000000, _and, 3, (RR, oRR, SH), arit, t_arit3c),
18002 tC3("ands", 0100000, _ands, 3, (RR, oRR, SH), arit, t_arit3c),
18003 tCE("eor", 0200000, _eor, 3, (RR, oRR, SH), arit, t_arit3c),
18004 tC3("eors", 0300000, _eors, 3, (RR, oRR, SH), arit, t_arit3c),
18005 tCE("sub", 0400000, _sub, 3, (RR, oRR, SH), arit, t_add_sub),
18006 tC3("subs", 0500000, _subs, 3, (RR, oRR, SH), arit, t_add_sub),
18007 tCE("add", 0800000, _add, 3, (RR, oRR, SHG), arit, t_add_sub),
18008 tC3("adds", 0900000, _adds, 3, (RR, oRR, SHG), arit, t_add_sub),
18009 tCE("adc", 0a00000, _adc, 3, (RR, oRR, SH), arit, t_arit3c),
18010 tC3("adcs", 0b00000, _adcs, 3, (RR, oRR, SH), arit, t_arit3c),
18011 tCE("sbc", 0c00000, _sbc, 3, (RR, oRR, SH), arit, t_arit3),
18012 tC3("sbcs", 0d00000, _sbcs, 3, (RR, oRR, SH), arit, t_arit3),
18013 tCE("orr", 1800000, _orr, 3, (RR, oRR, SH), arit, t_arit3c),
18014 tC3("orrs", 1900000, _orrs, 3, (RR, oRR, SH), arit, t_arit3c),
18015 tCE("bic", 1c00000, _bic, 3, (RR, oRR, SH), arit, t_arit3),
18016 tC3("bics", 1d00000, _bics, 3, (RR, oRR, SH), arit, t_arit3),
18017
18018 /* The p-variants of tst/cmp/cmn/teq (below) are the pre-V6 mechanism
18019 for setting PSR flag bits. They are obsolete in V6 and do not
18020 have Thumb equivalents. */
18021 tCE("tst", 1100000, _tst, 2, (RR, SH), cmp, t_mvn_tst),
18022 tC3w("tsts", 1100000, _tst, 2, (RR, SH), cmp, t_mvn_tst),
18023 CL("tstp", 110f000, 2, (RR, SH), cmp),
18024 tCE("cmp", 1500000, _cmp, 2, (RR, SH), cmp, t_mov_cmp),
18025 tC3w("cmps", 1500000, _cmp, 2, (RR, SH), cmp, t_mov_cmp),
18026 CL("cmpp", 150f000, 2, (RR, SH), cmp),
18027 tCE("cmn", 1700000, _cmn, 2, (RR, SH), cmp, t_mvn_tst),
18028 tC3w("cmns", 1700000, _cmn, 2, (RR, SH), cmp, t_mvn_tst),
18029 CL("cmnp", 170f000, 2, (RR, SH), cmp),
18030
18031 tCE("mov", 1a00000, _mov, 2, (RR, SH), mov, t_mov_cmp),
18032 tC3("movs", 1b00000, _movs, 2, (RR, SH), mov, t_mov_cmp),
18033 tCE("mvn", 1e00000, _mvn, 2, (RR, SH), mov, t_mvn_tst),
18034 tC3("mvns", 1f00000, _mvns, 2, (RR, SH), mov, t_mvn_tst),
18035
18036 tCE("ldr", 4100000, _ldr, 2, (RR, ADDRGLDR),ldst, t_ldst),
18037 tC3("ldrb", 4500000, _ldrb, 2, (RRnpc_npcsp, ADDRGLDR),ldst, t_ldst),
18038 tCE("str", 4000000, _str, _2, (MIX_ARM_THUMB_OPERANDS (OP_RR,
18039 OP_RRnpc),
18040 OP_ADDRGLDR),ldst, t_ldst),
18041 tC3("strb", 4400000, _strb, 2, (RRnpc_npcsp, ADDRGLDR),ldst, t_ldst),
18042
18043 tCE("stm", 8800000, _stmia, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18044 tC3("stmia", 8800000, _stmia, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18045 tC3("stmea", 8800000, _stmia, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18046 tCE("ldm", 8900000, _ldmia, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18047 tC3("ldmia", 8900000, _ldmia, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18048 tC3("ldmfd", 8900000, _ldmia, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18049
18050 TCE("swi", f000000, df00, 1, (EXPi), swi, t_swi),
18051 TCE("svc", f000000, df00, 1, (EXPi), swi, t_swi),
18052 tCE("b", a000000, _b, 1, (EXPr), branch, t_branch),
18053 TCE("bl", b000000, f000f800, 1, (EXPr), bl, t_branch23),
18054
18055 /* Pseudo ops. */
18056 tCE("adr", 28f0000, _adr, 2, (RR, EXP), adr, t_adr),
18057 C3(adrl, 28f0000, 2, (RR, EXP), adrl),
18058 tCE("nop", 1a00000, _nop, 1, (oI255c), nop, t_nop),
18059 tCE("udf", 7f000f0, _udf, 1, (oIffffb), bkpt, t_udf),
18060
18061 /* Thumb-compatibility pseudo ops. */
18062 tCE("lsl", 1a00000, _lsl, 3, (RR, oRR, SH), shift, t_shift),
18063 tC3("lsls", 1b00000, _lsls, 3, (RR, oRR, SH), shift, t_shift),
18064 tCE("lsr", 1a00020, _lsr, 3, (RR, oRR, SH), shift, t_shift),
18065 tC3("lsrs", 1b00020, _lsrs, 3, (RR, oRR, SH), shift, t_shift),
18066 tCE("asr", 1a00040, _asr, 3, (RR, oRR, SH), shift, t_shift),
18067 tC3("asrs", 1b00040, _asrs, 3, (RR, oRR, SH), shift, t_shift),
18068 tCE("ror", 1a00060, _ror, 3, (RR, oRR, SH), shift, t_shift),
18069 tC3("rors", 1b00060, _rors, 3, (RR, oRR, SH), shift, t_shift),
18070 tCE("neg", 2600000, _neg, 2, (RR, RR), rd_rn, t_neg),
18071 tC3("negs", 2700000, _negs, 2, (RR, RR), rd_rn, t_neg),
18072 tCE("push", 92d0000, _push, 1, (REGLST), push_pop, t_push_pop),
18073 tCE("pop", 8bd0000, _pop, 1, (REGLST), push_pop, t_push_pop),
18074
18075 /* These may simplify to neg. */
18076 TCE("rsb", 0600000, ebc00000, 3, (RR, oRR, SH), arit, t_rsb),
18077 TC3("rsbs", 0700000, ebd00000, 3, (RR, oRR, SH), arit, t_rsb),
18078
18079 #undef THUMB_VARIANT
18080 #define THUMB_VARIANT & arm_ext_v6
18081
18082 TCE("cpy", 1a00000, 4600, 2, (RR, RR), rd_rm, t_cpy),
18083
18084 /* V1 instructions with no Thumb analogue prior to V6T2. */
18085 #undef THUMB_VARIANT
18086 #define THUMB_VARIANT & arm_ext_v6t2
18087
18088 TCE("teq", 1300000, ea900f00, 2, (RR, SH), cmp, t_mvn_tst),
18089 TC3w("teqs", 1300000, ea900f00, 2, (RR, SH), cmp, t_mvn_tst),
18090 CL("teqp", 130f000, 2, (RR, SH), cmp),
18091
18092 TC3("ldrt", 4300000, f8500e00, 2, (RRnpc_npcsp, ADDR),ldstt, t_ldstt),
18093 TC3("ldrbt", 4700000, f8100e00, 2, (RRnpc_npcsp, ADDR),ldstt, t_ldstt),
18094 TC3("strt", 4200000, f8400e00, 2, (RR_npcsp, ADDR), ldstt, t_ldstt),
18095 TC3("strbt", 4600000, f8000e00, 2, (RRnpc_npcsp, ADDR),ldstt, t_ldstt),
18096
18097 TC3("stmdb", 9000000, e9000000, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18098 TC3("stmfd", 9000000, e9000000, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18099
18100 TC3("ldmdb", 9100000, e9100000, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18101 TC3("ldmea", 9100000, e9100000, 2, (RRw, REGLST), ldmstm, t_ldmstm),
18102
18103 /* V1 instructions with no Thumb analogue at all. */
18104 CE("rsc", 0e00000, 3, (RR, oRR, SH), arit),
18105 C3(rscs, 0f00000, 3, (RR, oRR, SH), arit),
18106
18107 C3(stmib, 9800000, 2, (RRw, REGLST), ldmstm),
18108 C3(stmfa, 9800000, 2, (RRw, REGLST), ldmstm),
18109 C3(stmda, 8000000, 2, (RRw, REGLST), ldmstm),
18110 C3(stmed, 8000000, 2, (RRw, REGLST), ldmstm),
18111 C3(ldmib, 9900000, 2, (RRw, REGLST), ldmstm),
18112 C3(ldmed, 9900000, 2, (RRw, REGLST), ldmstm),
18113 C3(ldmda, 8100000, 2, (RRw, REGLST), ldmstm),
18114 C3(ldmfa, 8100000, 2, (RRw, REGLST), ldmstm),
18115
18116 #undef ARM_VARIANT
18117 #define ARM_VARIANT & arm_ext_v2 /* ARM 2 - multiplies. */
18118 #undef THUMB_VARIANT
18119 #define THUMB_VARIANT & arm_ext_v4t
18120
18121 tCE("mul", 0000090, _mul, 3, (RRnpc, RRnpc, oRR), mul, t_mul),
18122 tC3("muls", 0100090, _muls, 3, (RRnpc, RRnpc, oRR), mul, t_mul),
18123
18124 #undef THUMB_VARIANT
18125 #define THUMB_VARIANT & arm_ext_v6t2
18126
18127 TCE("mla", 0200090, fb000000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mlas, t_mla),
18128 C3(mlas, 0300090, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mlas),
18129
18130 /* Generic coprocessor instructions. */
18131 TCE("cdp", e000000, ee000000, 6, (RCP, I15b, RCN, RCN, RCN, oI7b), cdp, cdp),
18132 TCE("ldc", c100000, ec100000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18133 TC3("ldcl", c500000, ec500000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18134 TCE("stc", c000000, ec000000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18135 TC3("stcl", c400000, ec400000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18136 TCE("mcr", e000010, ee000010, 6, (RCP, I7b, RR, RCN, RCN, oI7b), co_reg, co_reg),
18137 TCE("mrc", e100010, ee100010, 6, (RCP, I7b, APSR_RR, RCN, RCN, oI7b), co_reg, co_reg),
18138
18139 #undef ARM_VARIANT
18140 #define ARM_VARIANT & arm_ext_v2s /* ARM 3 - swp instructions. */
18141
18142 CE("swp", 1000090, 3, (RRnpc, RRnpc, RRnpcb), rd_rm_rn),
18143 C3(swpb, 1400090, 3, (RRnpc, RRnpc, RRnpcb), rd_rm_rn),
18144
18145 #undef ARM_VARIANT
18146 #define ARM_VARIANT & arm_ext_v3 /* ARM 6 Status register instructions. */
18147 #undef THUMB_VARIANT
18148 #define THUMB_VARIANT & arm_ext_msr
18149
18150 TCE("mrs", 1000000, f3e08000, 2, (RRnpc, rPSR), mrs, t_mrs),
18151 TCE("msr", 120f000, f3808000, 2, (wPSR, RR_EXi), msr, t_msr),
18152
18153 #undef ARM_VARIANT
18154 #define ARM_VARIANT & arm_ext_v3m /* ARM 7M long multiplies. */
18155 #undef THUMB_VARIANT
18156 #define THUMB_VARIANT & arm_ext_v6t2
18157
18158 TCE("smull", 0c00090, fb800000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull, t_mull),
18159 CM("smull","s", 0d00090, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull),
18160 TCE("umull", 0800090, fba00000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull, t_mull),
18161 CM("umull","s", 0900090, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull),
18162 TCE("smlal", 0e00090, fbc00000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull, t_mull),
18163 CM("smlal","s", 0f00090, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull),
18164 TCE("umlal", 0a00090, fbe00000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull, t_mull),
18165 CM("umlal","s", 0b00090, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mull),
18166
18167 #undef ARM_VARIANT
18168 #define ARM_VARIANT & arm_ext_v4 /* ARM Architecture 4. */
18169 #undef THUMB_VARIANT
18170 #define THUMB_VARIANT & arm_ext_v4t
18171
18172 tC3("ldrh", 01000b0, _ldrh, 2, (RRnpc_npcsp, ADDRGLDRS), ldstv4, t_ldst),
18173 tC3("strh", 00000b0, _strh, 2, (RRnpc_npcsp, ADDRGLDRS), ldstv4, t_ldst),
18174 tC3("ldrsh", 01000f0, _ldrsh, 2, (RRnpc_npcsp, ADDRGLDRS), ldstv4, t_ldst),
18175 tC3("ldrsb", 01000d0, _ldrsb, 2, (RRnpc_npcsp, ADDRGLDRS), ldstv4, t_ldst),
18176 tC3("ldsh", 01000f0, _ldrsh, 2, (RRnpc_npcsp, ADDRGLDRS), ldstv4, t_ldst),
18177 tC3("ldsb", 01000d0, _ldrsb, 2, (RRnpc_npcsp, ADDRGLDRS), ldstv4, t_ldst),
18178
18179 #undef ARM_VARIANT
18180 #define ARM_VARIANT & arm_ext_v4t_5
18181
18182 /* ARM Architecture 4T. */
18183 /* Note: bx (and blx) are required on V5, even if the processor does
18184 not support Thumb. */
18185 TCE("bx", 12fff10, 4700, 1, (RR), bx, t_bx),
18186
18187 #undef ARM_VARIANT
18188 #define ARM_VARIANT & arm_ext_v5 /* ARM Architecture 5T. */
18189 #undef THUMB_VARIANT
18190 #define THUMB_VARIANT & arm_ext_v5t
18191
18192 /* Note: blx has 2 variants; the .value coded here is for
18193 BLX(2). Only this variant has conditional execution. */
18194 TCE("blx", 12fff30, 4780, 1, (RR_EXr), blx, t_blx),
18195 TUE("bkpt", 1200070, be00, 1, (oIffffb), bkpt, t_bkpt),
18196
18197 #undef THUMB_VARIANT
18198 #define THUMB_VARIANT & arm_ext_v6t2
18199
18200 TCE("clz", 16f0f10, fab0f080, 2, (RRnpc, RRnpc), rd_rm, t_clz),
18201 TUF("ldc2", c100000, fc100000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18202 TUF("ldc2l", c500000, fc500000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18203 TUF("stc2", c000000, fc000000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18204 TUF("stc2l", c400000, fc400000, 3, (RCP, RCN, ADDRGLDC), lstc, lstc),
18205 TUF("cdp2", e000000, fe000000, 6, (RCP, I15b, RCN, RCN, RCN, oI7b), cdp, cdp),
18206 TUF("mcr2", e000010, fe000010, 6, (RCP, I7b, RR, RCN, RCN, oI7b), co_reg, co_reg),
18207 TUF("mrc2", e100010, fe100010, 6, (RCP, I7b, RR, RCN, RCN, oI7b), co_reg, co_reg),
18208
18209 #undef ARM_VARIANT
18210 #define ARM_VARIANT & arm_ext_v5exp /* ARM Architecture 5TExP. */
18211 #undef THUMB_VARIANT
18212 #define THUMB_VARIANT & arm_ext_v5exp
18213
18214 TCE("smlabb", 1000080, fb100000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smla, t_mla),
18215 TCE("smlatb", 10000a0, fb100020, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smla, t_mla),
18216 TCE("smlabt", 10000c0, fb100010, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smla, t_mla),
18217 TCE("smlatt", 10000e0, fb100030, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smla, t_mla),
18218
18219 TCE("smlawb", 1200080, fb300000, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smla, t_mla),
18220 TCE("smlawt", 12000c0, fb300010, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smla, t_mla),
18221
18222 TCE("smlalbb", 1400080, fbc00080, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smlal, t_mlal),
18223 TCE("smlaltb", 14000a0, fbc000a0, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smlal, t_mlal),
18224 TCE("smlalbt", 14000c0, fbc00090, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smlal, t_mlal),
18225 TCE("smlaltt", 14000e0, fbc000b0, 4, (RRnpc, RRnpc, RRnpc, RRnpc), smlal, t_mlal),
18226
18227 TCE("smulbb", 1600080, fb10f000, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18228 TCE("smultb", 16000a0, fb10f020, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18229 TCE("smulbt", 16000c0, fb10f010, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18230 TCE("smultt", 16000e0, fb10f030, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18231
18232 TCE("smulwb", 12000a0, fb30f000, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18233 TCE("smulwt", 12000e0, fb30f010, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18234
18235 TCE("qadd", 1000050, fa80f080, 3, (RRnpc, RRnpc, RRnpc), rd_rm_rn, t_simd2),
18236 TCE("qdadd", 1400050, fa80f090, 3, (RRnpc, RRnpc, RRnpc), rd_rm_rn, t_simd2),
18237 TCE("qsub", 1200050, fa80f0a0, 3, (RRnpc, RRnpc, RRnpc), rd_rm_rn, t_simd2),
18238 TCE("qdsub", 1600050, fa80f0b0, 3, (RRnpc, RRnpc, RRnpc), rd_rm_rn, t_simd2),
18239
18240 #undef ARM_VARIANT
18241 #define ARM_VARIANT & arm_ext_v5e /* ARM Architecture 5TE. */
18242 #undef THUMB_VARIANT
18243 #define THUMB_VARIANT & arm_ext_v6t2
18244
18245 TUF("pld", 450f000, f810f000, 1, (ADDR), pld, t_pld),
18246 TC3("ldrd", 00000d0, e8500000, 3, (RRnpc_npcsp, oRRnpc_npcsp, ADDRGLDRS),
18247 ldrd, t_ldstd),
18248 TC3("strd", 00000f0, e8400000, 3, (RRnpc_npcsp, oRRnpc_npcsp,
18249 ADDRGLDRS), ldrd, t_ldstd),
18250
18251 TCE("mcrr", c400000, ec400000, 5, (RCP, I15b, RRnpc, RRnpc, RCN), co_reg2c, co_reg2c),
18252 TCE("mrrc", c500000, ec500000, 5, (RCP, I15b, RRnpc, RRnpc, RCN), co_reg2c, co_reg2c),
18253
18254 #undef ARM_VARIANT
18255 #define ARM_VARIANT & arm_ext_v5j /* ARM Architecture 5TEJ. */
18256
18257 TCE("bxj", 12fff20, f3c08f00, 1, (RR), bxj, t_bxj),
18258
18259 #undef ARM_VARIANT
18260 #define ARM_VARIANT & arm_ext_v6 /* ARM V6. */
18261 #undef THUMB_VARIANT
18262 #define THUMB_VARIANT & arm_ext_v6
18263
18264 TUF("cpsie", 1080000, b660, 2, (CPSF, oI31b), cpsi, t_cpsi),
18265 TUF("cpsid", 10c0000, b670, 2, (CPSF, oI31b), cpsi, t_cpsi),
18266 tCE("rev", 6bf0f30, _rev, 2, (RRnpc, RRnpc), rd_rm, t_rev),
18267 tCE("rev16", 6bf0fb0, _rev16, 2, (RRnpc, RRnpc), rd_rm, t_rev),
18268 tCE("revsh", 6ff0fb0, _revsh, 2, (RRnpc, RRnpc), rd_rm, t_rev),
18269 tCE("sxth", 6bf0070, _sxth, 3, (RRnpc, RRnpc, oROR), sxth, t_sxth),
18270 tCE("uxth", 6ff0070, _uxth, 3, (RRnpc, RRnpc, oROR), sxth, t_sxth),
18271 tCE("sxtb", 6af0070, _sxtb, 3, (RRnpc, RRnpc, oROR), sxth, t_sxth),
18272 tCE("uxtb", 6ef0070, _uxtb, 3, (RRnpc, RRnpc, oROR), sxth, t_sxth),
18273 TUF("setend", 1010000, b650, 1, (ENDI), setend, t_setend),
18274
18275 #undef THUMB_VARIANT
18276 #define THUMB_VARIANT & arm_ext_v6t2
18277
18278 TCE("ldrex", 1900f9f, e8500f00, 2, (RRnpc_npcsp, ADDR), ldrex, t_ldrex),
18279 TCE("strex", 1800f90, e8400000, 3, (RRnpc_npcsp, RRnpc_npcsp, ADDR),
18280 strex, t_strex),
18281 TUF("mcrr2", c400000, fc400000, 5, (RCP, I15b, RRnpc, RRnpc, RCN), co_reg2c, co_reg2c),
18282 TUF("mrrc2", c500000, fc500000, 5, (RCP, I15b, RRnpc, RRnpc, RCN), co_reg2c, co_reg2c),
18283
18284 TCE("ssat", 6a00010, f3000000, 4, (RRnpc, I32, RRnpc, oSHllar),ssat, t_ssat),
18285 TCE("usat", 6e00010, f3800000, 4, (RRnpc, I31, RRnpc, oSHllar),usat, t_usat),
18286
18287 /* ARM V6 not included in V7M. */
18288 #undef THUMB_VARIANT
18289 #define THUMB_VARIANT & arm_ext_v6_notm
18290 TUF("rfeia", 8900a00, e990c000, 1, (RRw), rfe, rfe),
18291 TUF("rfe", 8900a00, e990c000, 1, (RRw), rfe, rfe),
18292 UF(rfeib, 9900a00, 1, (RRw), rfe),
18293 UF(rfeda, 8100a00, 1, (RRw), rfe),
18294 TUF("rfedb", 9100a00, e810c000, 1, (RRw), rfe, rfe),
18295 TUF("rfefd", 8900a00, e990c000, 1, (RRw), rfe, rfe),
18296 UF(rfefa, 8100a00, 1, (RRw), rfe),
18297 TUF("rfeea", 9100a00, e810c000, 1, (RRw), rfe, rfe),
18298 UF(rfeed, 9900a00, 1, (RRw), rfe),
18299 TUF("srsia", 8c00500, e980c000, 2, (oRRw, I31w), srs, srs),
18300 TUF("srs", 8c00500, e980c000, 2, (oRRw, I31w), srs, srs),
18301 TUF("srsea", 8c00500, e980c000, 2, (oRRw, I31w), srs, srs),
18302 UF(srsib, 9c00500, 2, (oRRw, I31w), srs),
18303 UF(srsfa, 9c00500, 2, (oRRw, I31w), srs),
18304 UF(srsda, 8400500, 2, (oRRw, I31w), srs),
18305 UF(srsed, 8400500, 2, (oRRw, I31w), srs),
18306 TUF("srsdb", 9400500, e800c000, 2, (oRRw, I31w), srs, srs),
18307 TUF("srsfd", 9400500, e800c000, 2, (oRRw, I31w), srs, srs),
18308
18309 /* ARM V6 not included in V7M (eg. integer SIMD). */
18310 #undef THUMB_VARIANT
18311 #define THUMB_VARIANT & arm_ext_v6_dsp
18312 TUF("cps", 1020000, f3af8100, 1, (I31b), imm0, t_cps),
18313 TCE("pkhbt", 6800010, eac00000, 4, (RRnpc, RRnpc, RRnpc, oSHll), pkhbt, t_pkhbt),
18314 TCE("pkhtb", 6800050, eac00020, 4, (RRnpc, RRnpc, RRnpc, oSHar), pkhtb, t_pkhtb),
18315 TCE("qadd16", 6200f10, fa90f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18316 TCE("qadd8", 6200f90, fa80f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18317 TCE("qasx", 6200f30, faa0f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18318 /* Old name for QASX. */
18319 TCE("qaddsubx",6200f30, faa0f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18320 TCE("qsax", 6200f50, fae0f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18321 /* Old name for QSAX. */
18322 TCE("qsubaddx",6200f50, fae0f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18323 TCE("qsub16", 6200f70, fad0f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18324 TCE("qsub8", 6200ff0, fac0f010, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18325 TCE("sadd16", 6100f10, fa90f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18326 TCE("sadd8", 6100f90, fa80f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18327 TCE("sasx", 6100f30, faa0f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18328 /* Old name for SASX. */
18329 TCE("saddsubx",6100f30, faa0f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18330 TCE("shadd16", 6300f10, fa90f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18331 TCE("shadd8", 6300f90, fa80f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18332 TCE("shasx", 6300f30, faa0f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18333 /* Old name for SHASX. */
18334 TCE("shaddsubx", 6300f30, faa0f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18335 TCE("shsax", 6300f50, fae0f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18336 /* Old name for SHSAX. */
18337 TCE("shsubaddx", 6300f50, fae0f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18338 TCE("shsub16", 6300f70, fad0f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18339 TCE("shsub8", 6300ff0, fac0f020, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18340 TCE("ssax", 6100f50, fae0f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18341 /* Old name for SSAX. */
18342 TCE("ssubaddx",6100f50, fae0f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18343 TCE("ssub16", 6100f70, fad0f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18344 TCE("ssub8", 6100ff0, fac0f000, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18345 TCE("uadd16", 6500f10, fa90f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18346 TCE("uadd8", 6500f90, fa80f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18347 TCE("uasx", 6500f30, faa0f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18348 /* Old name for UASX. */
18349 TCE("uaddsubx",6500f30, faa0f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18350 TCE("uhadd16", 6700f10, fa90f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18351 TCE("uhadd8", 6700f90, fa80f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18352 TCE("uhasx", 6700f30, faa0f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18353 /* Old name for UHASX. */
18354 TCE("uhaddsubx", 6700f30, faa0f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18355 TCE("uhsax", 6700f50, fae0f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18356 /* Old name for UHSAX. */
18357 TCE("uhsubaddx", 6700f50, fae0f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18358 TCE("uhsub16", 6700f70, fad0f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18359 TCE("uhsub8", 6700ff0, fac0f060, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18360 TCE("uqadd16", 6600f10, fa90f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18361 TCE("uqadd8", 6600f90, fa80f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18362 TCE("uqasx", 6600f30, faa0f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18363 /* Old name for UQASX. */
18364 TCE("uqaddsubx", 6600f30, faa0f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18365 TCE("uqsax", 6600f50, fae0f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18366 /* Old name for UQSAX. */
18367 TCE("uqsubaddx", 6600f50, fae0f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18368 TCE("uqsub16", 6600f70, fad0f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18369 TCE("uqsub8", 6600ff0, fac0f050, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18370 TCE("usub16", 6500f70, fad0f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18371 TCE("usax", 6500f50, fae0f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18372 /* Old name for USAX. */
18373 TCE("usubaddx",6500f50, fae0f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18374 TCE("usub8", 6500ff0, fac0f040, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18375 TCE("sxtah", 6b00070, fa00f080, 4, (RRnpc, RRnpc, RRnpc, oROR), sxtah, t_sxtah),
18376 TCE("sxtab16", 6800070, fa20f080, 4, (RRnpc, RRnpc, RRnpc, oROR), sxtah, t_sxtah),
18377 TCE("sxtab", 6a00070, fa40f080, 4, (RRnpc, RRnpc, RRnpc, oROR), sxtah, t_sxtah),
18378 TCE("sxtb16", 68f0070, fa2ff080, 3, (RRnpc, RRnpc, oROR), sxth, t_sxth),
18379 TCE("uxtah", 6f00070, fa10f080, 4, (RRnpc, RRnpc, RRnpc, oROR), sxtah, t_sxtah),
18380 TCE("uxtab16", 6c00070, fa30f080, 4, (RRnpc, RRnpc, RRnpc, oROR), sxtah, t_sxtah),
18381 TCE("uxtab", 6e00070, fa50f080, 4, (RRnpc, RRnpc, RRnpc, oROR), sxtah, t_sxtah),
18382 TCE("uxtb16", 6cf0070, fa3ff080, 3, (RRnpc, RRnpc, oROR), sxth, t_sxth),
18383 TCE("sel", 6800fb0, faa0f080, 3, (RRnpc, RRnpc, RRnpc), rd_rn_rm, t_simd),
18384 TCE("smlad", 7000010, fb200000, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18385 TCE("smladx", 7000030, fb200010, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18386 TCE("smlald", 7400010, fbc000c0, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smlal,t_mlal),
18387 TCE("smlaldx", 7400030, fbc000d0, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smlal,t_mlal),
18388 TCE("smlsd", 7000050, fb400000, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18389 TCE("smlsdx", 7000070, fb400010, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18390 TCE("smlsld", 7400050, fbd000c0, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smlal,t_mlal),
18391 TCE("smlsldx", 7400070, fbd000d0, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smlal,t_mlal),
18392 TCE("smmla", 7500010, fb500000, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18393 TCE("smmlar", 7500030, fb500010, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18394 TCE("smmls", 75000d0, fb600000, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18395 TCE("smmlsr", 75000f0, fb600010, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18396 TCE("smmul", 750f010, fb50f000, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18397 TCE("smmulr", 750f030, fb50f010, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18398 TCE("smuad", 700f010, fb20f000, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18399 TCE("smuadx", 700f030, fb20f010, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18400 TCE("smusd", 700f050, fb40f000, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18401 TCE("smusdx", 700f070, fb40f010, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18402 TCE("ssat16", 6a00f30, f3200000, 3, (RRnpc, I16, RRnpc), ssat16, t_ssat16),
18403 TCE("umaal", 0400090, fbe00060, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smlal, t_mlal),
18404 TCE("usad8", 780f010, fb70f000, 3, (RRnpc, RRnpc, RRnpc), smul, t_simd),
18405 TCE("usada8", 7800010, fb700000, 4, (RRnpc, RRnpc, RRnpc, RRnpc),smla, t_mla),
18406 TCE("usat16", 6e00f30, f3a00000, 3, (RRnpc, I15, RRnpc), usat16, t_usat16),
18407
18408 #undef ARM_VARIANT
18409 #define ARM_VARIANT & arm_ext_v6k
18410 #undef THUMB_VARIANT
18411 #define THUMB_VARIANT & arm_ext_v6k
18412
18413 tCE("yield", 320f001, _yield, 0, (), noargs, t_hint),
18414 tCE("wfe", 320f002, _wfe, 0, (), noargs, t_hint),
18415 tCE("wfi", 320f003, _wfi, 0, (), noargs, t_hint),
18416 tCE("sev", 320f004, _sev, 0, (), noargs, t_hint),
18417
18418 #undef THUMB_VARIANT
18419 #define THUMB_VARIANT & arm_ext_v6_notm
18420 TCE("ldrexd", 1b00f9f, e8d0007f, 3, (RRnpc_npcsp, oRRnpc_npcsp, RRnpcb),
18421 ldrexd, t_ldrexd),
18422 TCE("strexd", 1a00f90, e8c00070, 4, (RRnpc_npcsp, RRnpc_npcsp, oRRnpc_npcsp,
18423 RRnpcb), strexd, t_strexd),
18424
18425 #undef THUMB_VARIANT
18426 #define THUMB_VARIANT & arm_ext_v6t2
18427 TCE("ldrexb", 1d00f9f, e8d00f4f, 2, (RRnpc_npcsp,RRnpcb),
18428 rd_rn, rd_rn),
18429 TCE("ldrexh", 1f00f9f, e8d00f5f, 2, (RRnpc_npcsp, RRnpcb),
18430 rd_rn, rd_rn),
18431 TCE("strexb", 1c00f90, e8c00f40, 3, (RRnpc_npcsp, RRnpc_npcsp, ADDR),
18432 strex, t_strexbh),
18433 TCE("strexh", 1e00f90, e8c00f50, 3, (RRnpc_npcsp, RRnpc_npcsp, ADDR),
18434 strex, t_strexbh),
18435 TUF("clrex", 57ff01f, f3bf8f2f, 0, (), noargs, noargs),
18436
18437 #undef ARM_VARIANT
18438 #define ARM_VARIANT & arm_ext_sec
18439 #undef THUMB_VARIANT
18440 #define THUMB_VARIANT & arm_ext_sec
18441
18442 TCE("smc", 1600070, f7f08000, 1, (EXPi), smc, t_smc),
18443
18444 #undef ARM_VARIANT
18445 #define ARM_VARIANT & arm_ext_virt
18446 #undef THUMB_VARIANT
18447 #define THUMB_VARIANT & arm_ext_virt
18448
18449 TCE("hvc", 1400070, f7e08000, 1, (EXPi), hvc, t_hvc),
18450 TCE("eret", 160006e, f3de8f00, 0, (), noargs, noargs),
18451
18452 #undef ARM_VARIANT
18453 #define ARM_VARIANT & arm_ext_v6t2
18454 #undef THUMB_VARIANT
18455 #define THUMB_VARIANT & arm_ext_v6t2
18456
18457 TCE("bfc", 7c0001f, f36f0000, 3, (RRnpc, I31, I32), bfc, t_bfc),
18458 TCE("bfi", 7c00010, f3600000, 4, (RRnpc, RRnpc_I0, I31, I32), bfi, t_bfi),
18459 TCE("sbfx", 7a00050, f3400000, 4, (RR, RR, I31, I32), bfx, t_bfx),
18460 TCE("ubfx", 7e00050, f3c00000, 4, (RR, RR, I31, I32), bfx, t_bfx),
18461
18462 TCE("mls", 0600090, fb000010, 4, (RRnpc, RRnpc, RRnpc, RRnpc), mlas, t_mla),
18463 TCE("movw", 3000000, f2400000, 2, (RRnpc, HALF), mov16, t_mov16),
18464 TCE("movt", 3400000, f2c00000, 2, (RRnpc, HALF), mov16, t_mov16),
18465 TCE("rbit", 6ff0f30, fa90f0a0, 2, (RR, RR), rd_rm, t_rbit),
18466
18467 TC3("ldrht", 03000b0, f8300e00, 2, (RRnpc_npcsp, ADDR), ldsttv4, t_ldstt),
18468 TC3("ldrsht", 03000f0, f9300e00, 2, (RRnpc_npcsp, ADDR), ldsttv4, t_ldstt),
18469 TC3("ldrsbt", 03000d0, f9100e00, 2, (RRnpc_npcsp, ADDR), ldsttv4, t_ldstt),
18470 TC3("strht", 02000b0, f8200e00, 2, (RRnpc_npcsp, ADDR), ldsttv4, t_ldstt),
18471
18472 /* Thumb-only instructions. */
18473 #undef ARM_VARIANT
18474 #define ARM_VARIANT NULL
18475 TUE("cbnz", 0, b900, 2, (RR, EXP), 0, t_cbz),
18476 TUE("cbz", 0, b100, 2, (RR, EXP), 0, t_cbz),
18477
18478 /* ARM does not really have an IT instruction, so always allow it.
18479 The opcode is copied from Thumb in order to allow warnings in
18480 -mimplicit-it=[never | arm] modes. */
18481 #undef ARM_VARIANT
18482 #define ARM_VARIANT & arm_ext_v1
18483
18484 TUE("it", bf08, bf08, 1, (COND), it, t_it),
18485 TUE("itt", bf0c, bf0c, 1, (COND), it, t_it),
18486 TUE("ite", bf04, bf04, 1, (COND), it, t_it),
18487 TUE("ittt", bf0e, bf0e, 1, (COND), it, t_it),
18488 TUE("itet", bf06, bf06, 1, (COND), it, t_it),
18489 TUE("itte", bf0a, bf0a, 1, (COND), it, t_it),
18490 TUE("itee", bf02, bf02, 1, (COND), it, t_it),
18491 TUE("itttt", bf0f, bf0f, 1, (COND), it, t_it),
18492 TUE("itett", bf07, bf07, 1, (COND), it, t_it),
18493 TUE("ittet", bf0b, bf0b, 1, (COND), it, t_it),
18494 TUE("iteet", bf03, bf03, 1, (COND), it, t_it),
18495 TUE("ittte", bf0d, bf0d, 1, (COND), it, t_it),
18496 TUE("itete", bf05, bf05, 1, (COND), it, t_it),
18497 TUE("ittee", bf09, bf09, 1, (COND), it, t_it),
18498 TUE("iteee", bf01, bf01, 1, (COND), it, t_it),
18499 /* ARM/Thumb-2 instructions with no Thumb-1 equivalent. */
18500 TC3("rrx", 01a00060, ea4f0030, 2, (RR, RR), rd_rm, t_rrx),
18501 TC3("rrxs", 01b00060, ea5f0030, 2, (RR, RR), rd_rm, t_rrx),
18502
18503 /* Thumb2 only instructions. */
18504 #undef ARM_VARIANT
18505 #define ARM_VARIANT NULL
18506
18507 TCE("addw", 0, f2000000, 3, (RR, RR, EXPi), 0, t_add_sub_w),
18508 TCE("subw", 0, f2a00000, 3, (RR, RR, EXPi), 0, t_add_sub_w),
18509 TCE("orn", 0, ea600000, 3, (RR, oRR, SH), 0, t_orn),
18510 TCE("orns", 0, ea700000, 3, (RR, oRR, SH), 0, t_orn),
18511 TCE("tbb", 0, e8d0f000, 1, (TB), 0, t_tb),
18512 TCE("tbh", 0, e8d0f010, 1, (TB), 0, t_tb),
18513
18514 /* Hardware division instructions. */
18515 #undef ARM_VARIANT
18516 #define ARM_VARIANT & arm_ext_adiv
18517 #undef THUMB_VARIANT
18518 #define THUMB_VARIANT & arm_ext_div
18519
18520 TCE("sdiv", 710f010, fb90f0f0, 3, (RR, oRR, RR), div, t_div),
18521 TCE("udiv", 730f010, fbb0f0f0, 3, (RR, oRR, RR), div, t_div),
18522
18523 /* ARM V6M/V7 instructions. */
18524 #undef ARM_VARIANT
18525 #define ARM_VARIANT & arm_ext_barrier
18526 #undef THUMB_VARIANT
18527 #define THUMB_VARIANT & arm_ext_barrier
18528
18529 TUF("dmb", 57ff050, f3bf8f50, 1, (oBARRIER_I15), barrier, barrier),
18530 TUF("dsb", 57ff040, f3bf8f40, 1, (oBARRIER_I15), barrier, barrier),
18531 TUF("isb", 57ff060, f3bf8f60, 1, (oBARRIER_I15), barrier, barrier),
18532
18533 /* ARM V7 instructions. */
18534 #undef ARM_VARIANT
18535 #define ARM_VARIANT & arm_ext_v7
18536 #undef THUMB_VARIANT
18537 #define THUMB_VARIANT & arm_ext_v7
18538
18539 TUF("pli", 450f000, f910f000, 1, (ADDR), pli, t_pld),
18540 TCE("dbg", 320f0f0, f3af80f0, 1, (I15), dbg, t_dbg),
18541
18542 #undef ARM_VARIANT
18543 #define ARM_VARIANT & arm_ext_mp
18544 #undef THUMB_VARIANT
18545 #define THUMB_VARIANT & arm_ext_mp
18546
18547 TUF("pldw", 410f000, f830f000, 1, (ADDR), pld, t_pld),
18548
18549 /* AArchv8 instructions. */
18550 #undef ARM_VARIANT
18551 #define ARM_VARIANT & arm_ext_v8
18552 #undef THUMB_VARIANT
18553 #define THUMB_VARIANT & arm_ext_v8
18554
18555 tCE("sevl", 320f005, _sevl, 0, (), noargs, t_hint),
18556 TUE("hlt", 1000070, ba80, 1, (oIffffb), bkpt, t_hlt),
18557 TCE("ldaex", 1900e9f, e8d00fef, 2, (RRnpc, RRnpcb), rd_rn, rd_rn),
18558 TCE("ldaexd", 1b00e9f, e8d000ff, 3, (RRnpc, oRRnpc, RRnpcb),
18559 ldrexd, t_ldrexd),
18560 TCE("ldaexb", 1d00e9f, e8d00fcf, 2, (RRnpc,RRnpcb), rd_rn, rd_rn),
18561 TCE("ldaexh", 1f00e9f, e8d00fdf, 2, (RRnpc, RRnpcb), rd_rn, rd_rn),
18562 TCE("stlex", 1800e90, e8c00fe0, 3, (RRnpc, RRnpc, RRnpcb),
18563 stlex, t_stlex),
18564 TCE("stlexd", 1a00e90, e8c000f0, 4, (RRnpc, RRnpc, oRRnpc, RRnpcb),
18565 strexd, t_strexd),
18566 TCE("stlexb", 1c00e90, e8c00fc0, 3, (RRnpc, RRnpc, RRnpcb),
18567 stlex, t_stlex),
18568 TCE("stlexh", 1e00e90, e8c00fd0, 3, (RRnpc, RRnpc, RRnpcb),
18569 stlex, t_stlex),
18570 TCE("lda", 1900c9f, e8d00faf, 2, (RRnpc, RRnpcb), rd_rn, rd_rn),
18571 TCE("ldab", 1d00c9f, e8d00f8f, 2, (RRnpc, RRnpcb), rd_rn, rd_rn),
18572 TCE("ldah", 1f00c9f, e8d00f9f, 2, (RRnpc, RRnpcb), rd_rn, rd_rn),
18573 TCE("stl", 180fc90, e8c00faf, 2, (RRnpc, RRnpcb), rm_rn, rd_rn),
18574 TCE("stlb", 1c0fc90, e8c00f8f, 2, (RRnpc, RRnpcb), rm_rn, rd_rn),
18575 TCE("stlh", 1e0fc90, e8c00f9f, 2, (RRnpc, RRnpcb), rm_rn, rd_rn),
18576
18577 /* ARMv8 T32 only. */
18578 #undef ARM_VARIANT
18579 #define ARM_VARIANT NULL
18580 TUF("dcps1", 0, f78f8001, 0, (), noargs, noargs),
18581 TUF("dcps2", 0, f78f8002, 0, (), noargs, noargs),
18582 TUF("dcps3", 0, f78f8003, 0, (), noargs, noargs),
18583
18584 /* FP for ARMv8. */
18585 #undef ARM_VARIANT
18586 #define ARM_VARIANT & fpu_vfp_ext_armv8
18587 #undef THUMB_VARIANT
18588 #define THUMB_VARIANT & fpu_vfp_ext_armv8
18589
18590 nUF(vseleq, _vseleq, 3, (RVSD, RVSD, RVSD), vsel),
18591 nUF(vselvs, _vselvs, 3, (RVSD, RVSD, RVSD), vsel),
18592 nUF(vselge, _vselge, 3, (RVSD, RVSD, RVSD), vsel),
18593 nUF(vselgt, _vselgt, 3, (RVSD, RVSD, RVSD), vsel),
18594 nUF(vmaxnm, _vmaxnm, 3, (RNSDQ, oRNSDQ, RNSDQ), vmaxnm),
18595 nUF(vminnm, _vminnm, 3, (RNSDQ, oRNSDQ, RNSDQ), vmaxnm),
18596 nUF(vcvta, _vcvta, 2, (RNSDQ, oRNSDQ), neon_cvta),
18597 nUF(vcvtn, _vcvta, 2, (RNSDQ, oRNSDQ), neon_cvtn),
18598 nUF(vcvtp, _vcvta, 2, (RNSDQ, oRNSDQ), neon_cvtp),
18599 nUF(vcvtm, _vcvta, 2, (RNSDQ, oRNSDQ), neon_cvtm),
18600 nCE(vrintr, _vrintr, 2, (RNSDQ, oRNSDQ), vrintr),
18601 nCE(vrintz, _vrintr, 2, (RNSDQ, oRNSDQ), vrintz),
18602 nCE(vrintx, _vrintr, 2, (RNSDQ, oRNSDQ), vrintx),
18603 nUF(vrinta, _vrinta, 2, (RNSDQ, oRNSDQ), vrinta),
18604 nUF(vrintn, _vrinta, 2, (RNSDQ, oRNSDQ), vrintn),
18605 nUF(vrintp, _vrinta, 2, (RNSDQ, oRNSDQ), vrintp),
18606 nUF(vrintm, _vrinta, 2, (RNSDQ, oRNSDQ), vrintm),
18607
18608 /* Crypto v1 extensions. */
18609 #undef ARM_VARIANT
18610 #define ARM_VARIANT & fpu_crypto_ext_armv8
18611 #undef THUMB_VARIANT
18612 #define THUMB_VARIANT & fpu_crypto_ext_armv8
18613
18614 nUF(aese, _aes, 2, (RNQ, RNQ), aese),
18615 nUF(aesd, _aes, 2, (RNQ, RNQ), aesd),
18616 nUF(aesmc, _aes, 2, (RNQ, RNQ), aesmc),
18617 nUF(aesimc, _aes, 2, (RNQ, RNQ), aesimc),
18618 nUF(sha1c, _sha3op, 3, (RNQ, RNQ, RNQ), sha1c),
18619 nUF(sha1p, _sha3op, 3, (RNQ, RNQ, RNQ), sha1p),
18620 nUF(sha1m, _sha3op, 3, (RNQ, RNQ, RNQ), sha1m),
18621 nUF(sha1su0, _sha3op, 3, (RNQ, RNQ, RNQ), sha1su0),
18622 nUF(sha256h, _sha3op, 3, (RNQ, RNQ, RNQ), sha256h),
18623 nUF(sha256h2, _sha3op, 3, (RNQ, RNQ, RNQ), sha256h2),
18624 nUF(sha256su1, _sha3op, 3, (RNQ, RNQ, RNQ), sha256su1),
18625 nUF(sha1h, _sha1h, 2, (RNQ, RNQ), sha1h),
18626 nUF(sha1su1, _sha2op, 2, (RNQ, RNQ), sha1su1),
18627 nUF(sha256su0, _sha2op, 2, (RNQ, RNQ), sha256su0),
18628
18629 #undef ARM_VARIANT
18630 #define ARM_VARIANT & crc_ext_armv8
18631 #undef THUMB_VARIANT
18632 #define THUMB_VARIANT & crc_ext_armv8
18633 TUEc("crc32b", 1000040, fac0f080, 3, (RR, oRR, RR), crc32b),
18634 TUEc("crc32h", 1200040, fac0f090, 3, (RR, oRR, RR), crc32h),
18635 TUEc("crc32w", 1400040, fac0f0a0, 3, (RR, oRR, RR), crc32w),
18636 TUEc("crc32cb",1000240, fad0f080, 3, (RR, oRR, RR), crc32cb),
18637 TUEc("crc32ch",1200240, fad0f090, 3, (RR, oRR, RR), crc32ch),
18638 TUEc("crc32cw",1400240, fad0f0a0, 3, (RR, oRR, RR), crc32cw),
18639
18640 #undef ARM_VARIANT
18641 #define ARM_VARIANT & fpu_fpa_ext_v1 /* Core FPA instruction set (V1). */
18642 #undef THUMB_VARIANT
18643 #define THUMB_VARIANT NULL
18644
18645 cCE("wfs", e200110, 1, (RR), rd),
18646 cCE("rfs", e300110, 1, (RR), rd),
18647 cCE("wfc", e400110, 1, (RR), rd),
18648 cCE("rfc", e500110, 1, (RR), rd),
18649
18650 cCL("ldfs", c100100, 2, (RF, ADDRGLDC), rd_cpaddr),
18651 cCL("ldfd", c108100, 2, (RF, ADDRGLDC), rd_cpaddr),
18652 cCL("ldfe", c500100, 2, (RF, ADDRGLDC), rd_cpaddr),
18653 cCL("ldfp", c508100, 2, (RF, ADDRGLDC), rd_cpaddr),
18654
18655 cCL("stfs", c000100, 2, (RF, ADDRGLDC), rd_cpaddr),
18656 cCL("stfd", c008100, 2, (RF, ADDRGLDC), rd_cpaddr),
18657 cCL("stfe", c400100, 2, (RF, ADDRGLDC), rd_cpaddr),
18658 cCL("stfp", c408100, 2, (RF, ADDRGLDC), rd_cpaddr),
18659
18660 cCL("mvfs", e008100, 2, (RF, RF_IF), rd_rm),
18661 cCL("mvfsp", e008120, 2, (RF, RF_IF), rd_rm),
18662 cCL("mvfsm", e008140, 2, (RF, RF_IF), rd_rm),
18663 cCL("mvfsz", e008160, 2, (RF, RF_IF), rd_rm),
18664 cCL("mvfd", e008180, 2, (RF, RF_IF), rd_rm),
18665 cCL("mvfdp", e0081a0, 2, (RF, RF_IF), rd_rm),
18666 cCL("mvfdm", e0081c0, 2, (RF, RF_IF), rd_rm),
18667 cCL("mvfdz", e0081e0, 2, (RF, RF_IF), rd_rm),
18668 cCL("mvfe", e088100, 2, (RF, RF_IF), rd_rm),
18669 cCL("mvfep", e088120, 2, (RF, RF_IF), rd_rm),
18670 cCL("mvfem", e088140, 2, (RF, RF_IF), rd_rm),
18671 cCL("mvfez", e088160, 2, (RF, RF_IF), rd_rm),
18672
18673 cCL("mnfs", e108100, 2, (RF, RF_IF), rd_rm),
18674 cCL("mnfsp", e108120, 2, (RF, RF_IF), rd_rm),
18675 cCL("mnfsm", e108140, 2, (RF, RF_IF), rd_rm),
18676 cCL("mnfsz", e108160, 2, (RF, RF_IF), rd_rm),
18677 cCL("mnfd", e108180, 2, (RF, RF_IF), rd_rm),
18678 cCL("mnfdp", e1081a0, 2, (RF, RF_IF), rd_rm),
18679 cCL("mnfdm", e1081c0, 2, (RF, RF_IF), rd_rm),
18680 cCL("mnfdz", e1081e0, 2, (RF, RF_IF), rd_rm),
18681 cCL("mnfe", e188100, 2, (RF, RF_IF), rd_rm),
18682 cCL("mnfep", e188120, 2, (RF, RF_IF), rd_rm),
18683 cCL("mnfem", e188140, 2, (RF, RF_IF), rd_rm),
18684 cCL("mnfez", e188160, 2, (RF, RF_IF), rd_rm),
18685
18686 cCL("abss", e208100, 2, (RF, RF_IF), rd_rm),
18687 cCL("abssp", e208120, 2, (RF, RF_IF), rd_rm),
18688 cCL("abssm", e208140, 2, (RF, RF_IF), rd_rm),
18689 cCL("abssz", e208160, 2, (RF, RF_IF), rd_rm),
18690 cCL("absd", e208180, 2, (RF, RF_IF), rd_rm),
18691 cCL("absdp", e2081a0, 2, (RF, RF_IF), rd_rm),
18692 cCL("absdm", e2081c0, 2, (RF, RF_IF), rd_rm),
18693 cCL("absdz", e2081e0, 2, (RF, RF_IF), rd_rm),
18694 cCL("abse", e288100, 2, (RF, RF_IF), rd_rm),
18695 cCL("absep", e288120, 2, (RF, RF_IF), rd_rm),
18696 cCL("absem", e288140, 2, (RF, RF_IF), rd_rm),
18697 cCL("absez", e288160, 2, (RF, RF_IF), rd_rm),
18698
18699 cCL("rnds", e308100, 2, (RF, RF_IF), rd_rm),
18700 cCL("rndsp", e308120, 2, (RF, RF_IF), rd_rm),
18701 cCL("rndsm", e308140, 2, (RF, RF_IF), rd_rm),
18702 cCL("rndsz", e308160, 2, (RF, RF_IF), rd_rm),
18703 cCL("rndd", e308180, 2, (RF, RF_IF), rd_rm),
18704 cCL("rnddp", e3081a0, 2, (RF, RF_IF), rd_rm),
18705 cCL("rnddm", e3081c0, 2, (RF, RF_IF), rd_rm),
18706 cCL("rnddz", e3081e0, 2, (RF, RF_IF), rd_rm),
18707 cCL("rnde", e388100, 2, (RF, RF_IF), rd_rm),
18708 cCL("rndep", e388120, 2, (RF, RF_IF), rd_rm),
18709 cCL("rndem", e388140, 2, (RF, RF_IF), rd_rm),
18710 cCL("rndez", e388160, 2, (RF, RF_IF), rd_rm),
18711
18712 cCL("sqts", e408100, 2, (RF, RF_IF), rd_rm),
18713 cCL("sqtsp", e408120, 2, (RF, RF_IF), rd_rm),
18714 cCL("sqtsm", e408140, 2, (RF, RF_IF), rd_rm),
18715 cCL("sqtsz", e408160, 2, (RF, RF_IF), rd_rm),
18716 cCL("sqtd", e408180, 2, (RF, RF_IF), rd_rm),
18717 cCL("sqtdp", e4081a0, 2, (RF, RF_IF), rd_rm),
18718 cCL("sqtdm", e4081c0, 2, (RF, RF_IF), rd_rm),
18719 cCL("sqtdz", e4081e0, 2, (RF, RF_IF), rd_rm),
18720 cCL("sqte", e488100, 2, (RF, RF_IF), rd_rm),
18721 cCL("sqtep", e488120, 2, (RF, RF_IF), rd_rm),
18722 cCL("sqtem", e488140, 2, (RF, RF_IF), rd_rm),
18723 cCL("sqtez", e488160, 2, (RF, RF_IF), rd_rm),
18724
18725 cCL("logs", e508100, 2, (RF, RF_IF), rd_rm),
18726 cCL("logsp", e508120, 2, (RF, RF_IF), rd_rm),
18727 cCL("logsm", e508140, 2, (RF, RF_IF), rd_rm),
18728 cCL("logsz", e508160, 2, (RF, RF_IF), rd_rm),
18729 cCL("logd", e508180, 2, (RF, RF_IF), rd_rm),
18730 cCL("logdp", e5081a0, 2, (RF, RF_IF), rd_rm),
18731 cCL("logdm", e5081c0, 2, (RF, RF_IF), rd_rm),
18732 cCL("logdz", e5081e0, 2, (RF, RF_IF), rd_rm),
18733 cCL("loge", e588100, 2, (RF, RF_IF), rd_rm),
18734 cCL("logep", e588120, 2, (RF, RF_IF), rd_rm),
18735 cCL("logem", e588140, 2, (RF, RF_IF), rd_rm),
18736 cCL("logez", e588160, 2, (RF, RF_IF), rd_rm),
18737
18738 cCL("lgns", e608100, 2, (RF, RF_IF), rd_rm),
18739 cCL("lgnsp", e608120, 2, (RF, RF_IF), rd_rm),
18740 cCL("lgnsm", e608140, 2, (RF, RF_IF), rd_rm),
18741 cCL("lgnsz", e608160, 2, (RF, RF_IF), rd_rm),
18742 cCL("lgnd", e608180, 2, (RF, RF_IF), rd_rm),
18743 cCL("lgndp", e6081a0, 2, (RF, RF_IF), rd_rm),
18744 cCL("lgndm", e6081c0, 2, (RF, RF_IF), rd_rm),
18745 cCL("lgndz", e6081e0, 2, (RF, RF_IF), rd_rm),
18746 cCL("lgne", e688100, 2, (RF, RF_IF), rd_rm),
18747 cCL("lgnep", e688120, 2, (RF, RF_IF), rd_rm),
18748 cCL("lgnem", e688140, 2, (RF, RF_IF), rd_rm),
18749 cCL("lgnez", e688160, 2, (RF, RF_IF), rd_rm),
18750
18751 cCL("exps", e708100, 2, (RF, RF_IF), rd_rm),
18752 cCL("expsp", e708120, 2, (RF, RF_IF), rd_rm),
18753 cCL("expsm", e708140, 2, (RF, RF_IF), rd_rm),
18754 cCL("expsz", e708160, 2, (RF, RF_IF), rd_rm),
18755 cCL("expd", e708180, 2, (RF, RF_IF), rd_rm),
18756 cCL("expdp", e7081a0, 2, (RF, RF_IF), rd_rm),
18757 cCL("expdm", e7081c0, 2, (RF, RF_IF), rd_rm),
18758 cCL("expdz", e7081e0, 2, (RF, RF_IF), rd_rm),
18759 cCL("expe", e788100, 2, (RF, RF_IF), rd_rm),
18760 cCL("expep", e788120, 2, (RF, RF_IF), rd_rm),
18761 cCL("expem", e788140, 2, (RF, RF_IF), rd_rm),
18762 cCL("expdz", e788160, 2, (RF, RF_IF), rd_rm),
18763
18764 cCL("sins", e808100, 2, (RF, RF_IF), rd_rm),
18765 cCL("sinsp", e808120, 2, (RF, RF_IF), rd_rm),
18766 cCL("sinsm", e808140, 2, (RF, RF_IF), rd_rm),
18767 cCL("sinsz", e808160, 2, (RF, RF_IF), rd_rm),
18768 cCL("sind", e808180, 2, (RF, RF_IF), rd_rm),
18769 cCL("sindp", e8081a0, 2, (RF, RF_IF), rd_rm),
18770 cCL("sindm", e8081c0, 2, (RF, RF_IF), rd_rm),
18771 cCL("sindz", e8081e0, 2, (RF, RF_IF), rd_rm),
18772 cCL("sine", e888100, 2, (RF, RF_IF), rd_rm),
18773 cCL("sinep", e888120, 2, (RF, RF_IF), rd_rm),
18774 cCL("sinem", e888140, 2, (RF, RF_IF), rd_rm),
18775 cCL("sinez", e888160, 2, (RF, RF_IF), rd_rm),
18776
18777 cCL("coss", e908100, 2, (RF, RF_IF), rd_rm),
18778 cCL("cossp", e908120, 2, (RF, RF_IF), rd_rm),
18779 cCL("cossm", e908140, 2, (RF, RF_IF), rd_rm),
18780 cCL("cossz", e908160, 2, (RF, RF_IF), rd_rm),
18781 cCL("cosd", e908180, 2, (RF, RF_IF), rd_rm),
18782 cCL("cosdp", e9081a0, 2, (RF, RF_IF), rd_rm),
18783 cCL("cosdm", e9081c0, 2, (RF, RF_IF), rd_rm),
18784 cCL("cosdz", e9081e0, 2, (RF, RF_IF), rd_rm),
18785 cCL("cose", e988100, 2, (RF, RF_IF), rd_rm),
18786 cCL("cosep", e988120, 2, (RF, RF_IF), rd_rm),
18787 cCL("cosem", e988140, 2, (RF, RF_IF), rd_rm),
18788 cCL("cosez", e988160, 2, (RF, RF_IF), rd_rm),
18789
18790 cCL("tans", ea08100, 2, (RF, RF_IF), rd_rm),
18791 cCL("tansp", ea08120, 2, (RF, RF_IF), rd_rm),
18792 cCL("tansm", ea08140, 2, (RF, RF_IF), rd_rm),
18793 cCL("tansz", ea08160, 2, (RF, RF_IF), rd_rm),
18794 cCL("tand", ea08180, 2, (RF, RF_IF), rd_rm),
18795 cCL("tandp", ea081a0, 2, (RF, RF_IF), rd_rm),
18796 cCL("tandm", ea081c0, 2, (RF, RF_IF), rd_rm),
18797 cCL("tandz", ea081e0, 2, (RF, RF_IF), rd_rm),
18798 cCL("tane", ea88100, 2, (RF, RF_IF), rd_rm),
18799 cCL("tanep", ea88120, 2, (RF, RF_IF), rd_rm),
18800 cCL("tanem", ea88140, 2, (RF, RF_IF), rd_rm),
18801 cCL("tanez", ea88160, 2, (RF, RF_IF), rd_rm),
18802
18803 cCL("asns", eb08100, 2, (RF, RF_IF), rd_rm),
18804 cCL("asnsp", eb08120, 2, (RF, RF_IF), rd_rm),
18805 cCL("asnsm", eb08140, 2, (RF, RF_IF), rd_rm),
18806 cCL("asnsz", eb08160, 2, (RF, RF_IF), rd_rm),
18807 cCL("asnd", eb08180, 2, (RF, RF_IF), rd_rm),
18808 cCL("asndp", eb081a0, 2, (RF, RF_IF), rd_rm),
18809 cCL("asndm", eb081c0, 2, (RF, RF_IF), rd_rm),
18810 cCL("asndz", eb081e0, 2, (RF, RF_IF), rd_rm),
18811 cCL("asne", eb88100, 2, (RF, RF_IF), rd_rm),
18812 cCL("asnep", eb88120, 2, (RF, RF_IF), rd_rm),
18813 cCL("asnem", eb88140, 2, (RF, RF_IF), rd_rm),
18814 cCL("asnez", eb88160, 2, (RF, RF_IF), rd_rm),
18815
18816 cCL("acss", ec08100, 2, (RF, RF_IF), rd_rm),
18817 cCL("acssp", ec08120, 2, (RF, RF_IF), rd_rm),
18818 cCL("acssm", ec08140, 2, (RF, RF_IF), rd_rm),
18819 cCL("acssz", ec08160, 2, (RF, RF_IF), rd_rm),
18820 cCL("acsd", ec08180, 2, (RF, RF_IF), rd_rm),
18821 cCL("acsdp", ec081a0, 2, (RF, RF_IF), rd_rm),
18822 cCL("acsdm", ec081c0, 2, (RF, RF_IF), rd_rm),
18823 cCL("acsdz", ec081e0, 2, (RF, RF_IF), rd_rm),
18824 cCL("acse", ec88100, 2, (RF, RF_IF), rd_rm),
18825 cCL("acsep", ec88120, 2, (RF, RF_IF), rd_rm),
18826 cCL("acsem", ec88140, 2, (RF, RF_IF), rd_rm),
18827 cCL("acsez", ec88160, 2, (RF, RF_IF), rd_rm),
18828
18829 cCL("atns", ed08100, 2, (RF, RF_IF), rd_rm),
18830 cCL("atnsp", ed08120, 2, (RF, RF_IF), rd_rm),
18831 cCL("atnsm", ed08140, 2, (RF, RF_IF), rd_rm),
18832 cCL("atnsz", ed08160, 2, (RF, RF_IF), rd_rm),
18833 cCL("atnd", ed08180, 2, (RF, RF_IF), rd_rm),
18834 cCL("atndp", ed081a0, 2, (RF, RF_IF), rd_rm),
18835 cCL("atndm", ed081c0, 2, (RF, RF_IF), rd_rm),
18836 cCL("atndz", ed081e0, 2, (RF, RF_IF), rd_rm),
18837 cCL("atne", ed88100, 2, (RF, RF_IF), rd_rm),
18838 cCL("atnep", ed88120, 2, (RF, RF_IF), rd_rm),
18839 cCL("atnem", ed88140, 2, (RF, RF_IF), rd_rm),
18840 cCL("atnez", ed88160, 2, (RF, RF_IF), rd_rm),
18841
18842 cCL("urds", ee08100, 2, (RF, RF_IF), rd_rm),
18843 cCL("urdsp", ee08120, 2, (RF, RF_IF), rd_rm),
18844 cCL("urdsm", ee08140, 2, (RF, RF_IF), rd_rm),
18845 cCL("urdsz", ee08160, 2, (RF, RF_IF), rd_rm),
18846 cCL("urdd", ee08180, 2, (RF, RF_IF), rd_rm),
18847 cCL("urddp", ee081a0, 2, (RF, RF_IF), rd_rm),
18848 cCL("urddm", ee081c0, 2, (RF, RF_IF), rd_rm),
18849 cCL("urddz", ee081e0, 2, (RF, RF_IF), rd_rm),
18850 cCL("urde", ee88100, 2, (RF, RF_IF), rd_rm),
18851 cCL("urdep", ee88120, 2, (RF, RF_IF), rd_rm),
18852 cCL("urdem", ee88140, 2, (RF, RF_IF), rd_rm),
18853 cCL("urdez", ee88160, 2, (RF, RF_IF), rd_rm),
18854
18855 cCL("nrms", ef08100, 2, (RF, RF_IF), rd_rm),
18856 cCL("nrmsp", ef08120, 2, (RF, RF_IF), rd_rm),
18857 cCL("nrmsm", ef08140, 2, (RF, RF_IF), rd_rm),
18858 cCL("nrmsz", ef08160, 2, (RF, RF_IF), rd_rm),
18859 cCL("nrmd", ef08180, 2, (RF, RF_IF), rd_rm),
18860 cCL("nrmdp", ef081a0, 2, (RF, RF_IF), rd_rm),
18861 cCL("nrmdm", ef081c0, 2, (RF, RF_IF), rd_rm),
18862 cCL("nrmdz", ef081e0, 2, (RF, RF_IF), rd_rm),
18863 cCL("nrme", ef88100, 2, (RF, RF_IF), rd_rm),
18864 cCL("nrmep", ef88120, 2, (RF, RF_IF), rd_rm),
18865 cCL("nrmem", ef88140, 2, (RF, RF_IF), rd_rm),
18866 cCL("nrmez", ef88160, 2, (RF, RF_IF), rd_rm),
18867
18868 cCL("adfs", e000100, 3, (RF, RF, RF_IF), rd_rn_rm),
18869 cCL("adfsp", e000120, 3, (RF, RF, RF_IF), rd_rn_rm),
18870 cCL("adfsm", e000140, 3, (RF, RF, RF_IF), rd_rn_rm),
18871 cCL("adfsz", e000160, 3, (RF, RF, RF_IF), rd_rn_rm),
18872 cCL("adfd", e000180, 3, (RF, RF, RF_IF), rd_rn_rm),
18873 cCL("adfdp", e0001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18874 cCL("adfdm", e0001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18875 cCL("adfdz", e0001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18876 cCL("adfe", e080100, 3, (RF, RF, RF_IF), rd_rn_rm),
18877 cCL("adfep", e080120, 3, (RF, RF, RF_IF), rd_rn_rm),
18878 cCL("adfem", e080140, 3, (RF, RF, RF_IF), rd_rn_rm),
18879 cCL("adfez", e080160, 3, (RF, RF, RF_IF), rd_rn_rm),
18880
18881 cCL("sufs", e200100, 3, (RF, RF, RF_IF), rd_rn_rm),
18882 cCL("sufsp", e200120, 3, (RF, RF, RF_IF), rd_rn_rm),
18883 cCL("sufsm", e200140, 3, (RF, RF, RF_IF), rd_rn_rm),
18884 cCL("sufsz", e200160, 3, (RF, RF, RF_IF), rd_rn_rm),
18885 cCL("sufd", e200180, 3, (RF, RF, RF_IF), rd_rn_rm),
18886 cCL("sufdp", e2001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18887 cCL("sufdm", e2001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18888 cCL("sufdz", e2001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18889 cCL("sufe", e280100, 3, (RF, RF, RF_IF), rd_rn_rm),
18890 cCL("sufep", e280120, 3, (RF, RF, RF_IF), rd_rn_rm),
18891 cCL("sufem", e280140, 3, (RF, RF, RF_IF), rd_rn_rm),
18892 cCL("sufez", e280160, 3, (RF, RF, RF_IF), rd_rn_rm),
18893
18894 cCL("rsfs", e300100, 3, (RF, RF, RF_IF), rd_rn_rm),
18895 cCL("rsfsp", e300120, 3, (RF, RF, RF_IF), rd_rn_rm),
18896 cCL("rsfsm", e300140, 3, (RF, RF, RF_IF), rd_rn_rm),
18897 cCL("rsfsz", e300160, 3, (RF, RF, RF_IF), rd_rn_rm),
18898 cCL("rsfd", e300180, 3, (RF, RF, RF_IF), rd_rn_rm),
18899 cCL("rsfdp", e3001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18900 cCL("rsfdm", e3001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18901 cCL("rsfdz", e3001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18902 cCL("rsfe", e380100, 3, (RF, RF, RF_IF), rd_rn_rm),
18903 cCL("rsfep", e380120, 3, (RF, RF, RF_IF), rd_rn_rm),
18904 cCL("rsfem", e380140, 3, (RF, RF, RF_IF), rd_rn_rm),
18905 cCL("rsfez", e380160, 3, (RF, RF, RF_IF), rd_rn_rm),
18906
18907 cCL("mufs", e100100, 3, (RF, RF, RF_IF), rd_rn_rm),
18908 cCL("mufsp", e100120, 3, (RF, RF, RF_IF), rd_rn_rm),
18909 cCL("mufsm", e100140, 3, (RF, RF, RF_IF), rd_rn_rm),
18910 cCL("mufsz", e100160, 3, (RF, RF, RF_IF), rd_rn_rm),
18911 cCL("mufd", e100180, 3, (RF, RF, RF_IF), rd_rn_rm),
18912 cCL("mufdp", e1001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18913 cCL("mufdm", e1001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18914 cCL("mufdz", e1001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18915 cCL("mufe", e180100, 3, (RF, RF, RF_IF), rd_rn_rm),
18916 cCL("mufep", e180120, 3, (RF, RF, RF_IF), rd_rn_rm),
18917 cCL("mufem", e180140, 3, (RF, RF, RF_IF), rd_rn_rm),
18918 cCL("mufez", e180160, 3, (RF, RF, RF_IF), rd_rn_rm),
18919
18920 cCL("dvfs", e400100, 3, (RF, RF, RF_IF), rd_rn_rm),
18921 cCL("dvfsp", e400120, 3, (RF, RF, RF_IF), rd_rn_rm),
18922 cCL("dvfsm", e400140, 3, (RF, RF, RF_IF), rd_rn_rm),
18923 cCL("dvfsz", e400160, 3, (RF, RF, RF_IF), rd_rn_rm),
18924 cCL("dvfd", e400180, 3, (RF, RF, RF_IF), rd_rn_rm),
18925 cCL("dvfdp", e4001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18926 cCL("dvfdm", e4001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18927 cCL("dvfdz", e4001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18928 cCL("dvfe", e480100, 3, (RF, RF, RF_IF), rd_rn_rm),
18929 cCL("dvfep", e480120, 3, (RF, RF, RF_IF), rd_rn_rm),
18930 cCL("dvfem", e480140, 3, (RF, RF, RF_IF), rd_rn_rm),
18931 cCL("dvfez", e480160, 3, (RF, RF, RF_IF), rd_rn_rm),
18932
18933 cCL("rdfs", e500100, 3, (RF, RF, RF_IF), rd_rn_rm),
18934 cCL("rdfsp", e500120, 3, (RF, RF, RF_IF), rd_rn_rm),
18935 cCL("rdfsm", e500140, 3, (RF, RF, RF_IF), rd_rn_rm),
18936 cCL("rdfsz", e500160, 3, (RF, RF, RF_IF), rd_rn_rm),
18937 cCL("rdfd", e500180, 3, (RF, RF, RF_IF), rd_rn_rm),
18938 cCL("rdfdp", e5001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18939 cCL("rdfdm", e5001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18940 cCL("rdfdz", e5001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18941 cCL("rdfe", e580100, 3, (RF, RF, RF_IF), rd_rn_rm),
18942 cCL("rdfep", e580120, 3, (RF, RF, RF_IF), rd_rn_rm),
18943 cCL("rdfem", e580140, 3, (RF, RF, RF_IF), rd_rn_rm),
18944 cCL("rdfez", e580160, 3, (RF, RF, RF_IF), rd_rn_rm),
18945
18946 cCL("pows", e600100, 3, (RF, RF, RF_IF), rd_rn_rm),
18947 cCL("powsp", e600120, 3, (RF, RF, RF_IF), rd_rn_rm),
18948 cCL("powsm", e600140, 3, (RF, RF, RF_IF), rd_rn_rm),
18949 cCL("powsz", e600160, 3, (RF, RF, RF_IF), rd_rn_rm),
18950 cCL("powd", e600180, 3, (RF, RF, RF_IF), rd_rn_rm),
18951 cCL("powdp", e6001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18952 cCL("powdm", e6001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18953 cCL("powdz", e6001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18954 cCL("powe", e680100, 3, (RF, RF, RF_IF), rd_rn_rm),
18955 cCL("powep", e680120, 3, (RF, RF, RF_IF), rd_rn_rm),
18956 cCL("powem", e680140, 3, (RF, RF, RF_IF), rd_rn_rm),
18957 cCL("powez", e680160, 3, (RF, RF, RF_IF), rd_rn_rm),
18958
18959 cCL("rpws", e700100, 3, (RF, RF, RF_IF), rd_rn_rm),
18960 cCL("rpwsp", e700120, 3, (RF, RF, RF_IF), rd_rn_rm),
18961 cCL("rpwsm", e700140, 3, (RF, RF, RF_IF), rd_rn_rm),
18962 cCL("rpwsz", e700160, 3, (RF, RF, RF_IF), rd_rn_rm),
18963 cCL("rpwd", e700180, 3, (RF, RF, RF_IF), rd_rn_rm),
18964 cCL("rpwdp", e7001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18965 cCL("rpwdm", e7001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18966 cCL("rpwdz", e7001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18967 cCL("rpwe", e780100, 3, (RF, RF, RF_IF), rd_rn_rm),
18968 cCL("rpwep", e780120, 3, (RF, RF, RF_IF), rd_rn_rm),
18969 cCL("rpwem", e780140, 3, (RF, RF, RF_IF), rd_rn_rm),
18970 cCL("rpwez", e780160, 3, (RF, RF, RF_IF), rd_rn_rm),
18971
18972 cCL("rmfs", e800100, 3, (RF, RF, RF_IF), rd_rn_rm),
18973 cCL("rmfsp", e800120, 3, (RF, RF, RF_IF), rd_rn_rm),
18974 cCL("rmfsm", e800140, 3, (RF, RF, RF_IF), rd_rn_rm),
18975 cCL("rmfsz", e800160, 3, (RF, RF, RF_IF), rd_rn_rm),
18976 cCL("rmfd", e800180, 3, (RF, RF, RF_IF), rd_rn_rm),
18977 cCL("rmfdp", e8001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18978 cCL("rmfdm", e8001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18979 cCL("rmfdz", e8001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18980 cCL("rmfe", e880100, 3, (RF, RF, RF_IF), rd_rn_rm),
18981 cCL("rmfep", e880120, 3, (RF, RF, RF_IF), rd_rn_rm),
18982 cCL("rmfem", e880140, 3, (RF, RF, RF_IF), rd_rn_rm),
18983 cCL("rmfez", e880160, 3, (RF, RF, RF_IF), rd_rn_rm),
18984
18985 cCL("fmls", e900100, 3, (RF, RF, RF_IF), rd_rn_rm),
18986 cCL("fmlsp", e900120, 3, (RF, RF, RF_IF), rd_rn_rm),
18987 cCL("fmlsm", e900140, 3, (RF, RF, RF_IF), rd_rn_rm),
18988 cCL("fmlsz", e900160, 3, (RF, RF, RF_IF), rd_rn_rm),
18989 cCL("fmld", e900180, 3, (RF, RF, RF_IF), rd_rn_rm),
18990 cCL("fmldp", e9001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
18991 cCL("fmldm", e9001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
18992 cCL("fmldz", e9001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
18993 cCL("fmle", e980100, 3, (RF, RF, RF_IF), rd_rn_rm),
18994 cCL("fmlep", e980120, 3, (RF, RF, RF_IF), rd_rn_rm),
18995 cCL("fmlem", e980140, 3, (RF, RF, RF_IF), rd_rn_rm),
18996 cCL("fmlez", e980160, 3, (RF, RF, RF_IF), rd_rn_rm),
18997
18998 cCL("fdvs", ea00100, 3, (RF, RF, RF_IF), rd_rn_rm),
18999 cCL("fdvsp", ea00120, 3, (RF, RF, RF_IF), rd_rn_rm),
19000 cCL("fdvsm", ea00140, 3, (RF, RF, RF_IF), rd_rn_rm),
19001 cCL("fdvsz", ea00160, 3, (RF, RF, RF_IF), rd_rn_rm),
19002 cCL("fdvd", ea00180, 3, (RF, RF, RF_IF), rd_rn_rm),
19003 cCL("fdvdp", ea001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
19004 cCL("fdvdm", ea001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
19005 cCL("fdvdz", ea001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
19006 cCL("fdve", ea80100, 3, (RF, RF, RF_IF), rd_rn_rm),
19007 cCL("fdvep", ea80120, 3, (RF, RF, RF_IF), rd_rn_rm),
19008 cCL("fdvem", ea80140, 3, (RF, RF, RF_IF), rd_rn_rm),
19009 cCL("fdvez", ea80160, 3, (RF, RF, RF_IF), rd_rn_rm),
19010
19011 cCL("frds", eb00100, 3, (RF, RF, RF_IF), rd_rn_rm),
19012 cCL("frdsp", eb00120, 3, (RF, RF, RF_IF), rd_rn_rm),
19013 cCL("frdsm", eb00140, 3, (RF, RF, RF_IF), rd_rn_rm),
19014 cCL("frdsz", eb00160, 3, (RF, RF, RF_IF), rd_rn_rm),
19015 cCL("frdd", eb00180, 3, (RF, RF, RF_IF), rd_rn_rm),
19016 cCL("frddp", eb001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
19017 cCL("frddm", eb001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
19018 cCL("frddz", eb001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
19019 cCL("frde", eb80100, 3, (RF, RF, RF_IF), rd_rn_rm),
19020 cCL("frdep", eb80120, 3, (RF, RF, RF_IF), rd_rn_rm),
19021 cCL("frdem", eb80140, 3, (RF, RF, RF_IF), rd_rn_rm),
19022 cCL("frdez", eb80160, 3, (RF, RF, RF_IF), rd_rn_rm),
19023
19024 cCL("pols", ec00100, 3, (RF, RF, RF_IF), rd_rn_rm),
19025 cCL("polsp", ec00120, 3, (RF, RF, RF_IF), rd_rn_rm),
19026 cCL("polsm", ec00140, 3, (RF, RF, RF_IF), rd_rn_rm),
19027 cCL("polsz", ec00160, 3, (RF, RF, RF_IF), rd_rn_rm),
19028 cCL("pold", ec00180, 3, (RF, RF, RF_IF), rd_rn_rm),
19029 cCL("poldp", ec001a0, 3, (RF, RF, RF_IF), rd_rn_rm),
19030 cCL("poldm", ec001c0, 3, (RF, RF, RF_IF), rd_rn_rm),
19031 cCL("poldz", ec001e0, 3, (RF, RF, RF_IF), rd_rn_rm),
19032 cCL("pole", ec80100, 3, (RF, RF, RF_IF), rd_rn_rm),
19033 cCL("polep", ec80120, 3, (RF, RF, RF_IF), rd_rn_rm),
19034 cCL("polem", ec80140, 3, (RF, RF, RF_IF), rd_rn_rm),
19035 cCL("polez", ec80160, 3, (RF, RF, RF_IF), rd_rn_rm),
19036
19037 cCE("cmf", e90f110, 2, (RF, RF_IF), fpa_cmp),
19038 C3E("cmfe", ed0f110, 2, (RF, RF_IF), fpa_cmp),
19039 cCE("cnf", eb0f110, 2, (RF, RF_IF), fpa_cmp),
19040 C3E("cnfe", ef0f110, 2, (RF, RF_IF), fpa_cmp),
19041
19042 cCL("flts", e000110, 2, (RF, RR), rn_rd),
19043 cCL("fltsp", e000130, 2, (RF, RR), rn_rd),
19044 cCL("fltsm", e000150, 2, (RF, RR), rn_rd),
19045 cCL("fltsz", e000170, 2, (RF, RR), rn_rd),
19046 cCL("fltd", e000190, 2, (RF, RR), rn_rd),
19047 cCL("fltdp", e0001b0, 2, (RF, RR), rn_rd),
19048 cCL("fltdm", e0001d0, 2, (RF, RR), rn_rd),
19049 cCL("fltdz", e0001f0, 2, (RF, RR), rn_rd),
19050 cCL("flte", e080110, 2, (RF, RR), rn_rd),
19051 cCL("fltep", e080130, 2, (RF, RR), rn_rd),
19052 cCL("fltem", e080150, 2, (RF, RR), rn_rd),
19053 cCL("fltez", e080170, 2, (RF, RR), rn_rd),
19054
19055 /* The implementation of the FIX instruction is broken on some
19056 assemblers, in that it accepts a precision specifier as well as a
19057 rounding specifier, despite the fact that this is meaningless.
19058 To be more compatible, we accept it as well, though of course it
19059 does not set any bits. */
19060 cCE("fix", e100110, 2, (RR, RF), rd_rm),
19061 cCL("fixp", e100130, 2, (RR, RF), rd_rm),
19062 cCL("fixm", e100150, 2, (RR, RF), rd_rm),
19063 cCL("fixz", e100170, 2, (RR, RF), rd_rm),
19064 cCL("fixsp", e100130, 2, (RR, RF), rd_rm),
19065 cCL("fixsm", e100150, 2, (RR, RF), rd_rm),
19066 cCL("fixsz", e100170, 2, (RR, RF), rd_rm),
19067 cCL("fixdp", e100130, 2, (RR, RF), rd_rm),
19068 cCL("fixdm", e100150, 2, (RR, RF), rd_rm),
19069 cCL("fixdz", e100170, 2, (RR, RF), rd_rm),
19070 cCL("fixep", e100130, 2, (RR, RF), rd_rm),
19071 cCL("fixem", e100150, 2, (RR, RF), rd_rm),
19072 cCL("fixez", e100170, 2, (RR, RF), rd_rm),
19073
19074 /* Instructions that were new with the real FPA, call them V2. */
19075 #undef ARM_VARIANT
19076 #define ARM_VARIANT & fpu_fpa_ext_v2
19077
19078 cCE("lfm", c100200, 3, (RF, I4b, ADDR), fpa_ldmstm),
19079 cCL("lfmfd", c900200, 3, (RF, I4b, ADDR), fpa_ldmstm),
19080 cCL("lfmea", d100200, 3, (RF, I4b, ADDR), fpa_ldmstm),
19081 cCE("sfm", c000200, 3, (RF, I4b, ADDR), fpa_ldmstm),
19082 cCL("sfmfd", d000200, 3, (RF, I4b, ADDR), fpa_ldmstm),
19083 cCL("sfmea", c800200, 3, (RF, I4b, ADDR), fpa_ldmstm),
19084
19085 #undef ARM_VARIANT
19086 #define ARM_VARIANT & fpu_vfp_ext_v1xd /* VFP V1xD (single precision). */
19087
19088 /* Moves and type conversions. */
19089 cCE("fcpys", eb00a40, 2, (RVS, RVS), vfp_sp_monadic),
19090 cCE("fmrs", e100a10, 2, (RR, RVS), vfp_reg_from_sp),
19091 cCE("fmsr", e000a10, 2, (RVS, RR), vfp_sp_from_reg),
19092 cCE("fmstat", ef1fa10, 0, (), noargs),
19093 cCE("vmrs", ef00a10, 2, (APSR_RR, RVC), vmrs),
19094 cCE("vmsr", ee00a10, 2, (RVC, RR), vmsr),
19095 cCE("fsitos", eb80ac0, 2, (RVS, RVS), vfp_sp_monadic),
19096 cCE("fuitos", eb80a40, 2, (RVS, RVS), vfp_sp_monadic),
19097 cCE("ftosis", ebd0a40, 2, (RVS, RVS), vfp_sp_monadic),
19098 cCE("ftosizs", ebd0ac0, 2, (RVS, RVS), vfp_sp_monadic),
19099 cCE("ftouis", ebc0a40, 2, (RVS, RVS), vfp_sp_monadic),
19100 cCE("ftouizs", ebc0ac0, 2, (RVS, RVS), vfp_sp_monadic),
19101 cCE("fmrx", ef00a10, 2, (RR, RVC), rd_rn),
19102 cCE("fmxr", ee00a10, 2, (RVC, RR), rn_rd),
19103
19104 /* Memory operations. */
19105 cCE("flds", d100a00, 2, (RVS, ADDRGLDC), vfp_sp_ldst),
19106 cCE("fsts", d000a00, 2, (RVS, ADDRGLDC), vfp_sp_ldst),
19107 cCE("fldmias", c900a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmia),
19108 cCE("fldmfds", c900a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmia),
19109 cCE("fldmdbs", d300a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmdb),
19110 cCE("fldmeas", d300a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmdb),
19111 cCE("fldmiax", c900b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmia),
19112 cCE("fldmfdx", c900b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmia),
19113 cCE("fldmdbx", d300b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmdb),
19114 cCE("fldmeax", d300b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmdb),
19115 cCE("fstmias", c800a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmia),
19116 cCE("fstmeas", c800a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmia),
19117 cCE("fstmdbs", d200a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmdb),
19118 cCE("fstmfds", d200a00, 2, (RRnpctw, VRSLST), vfp_sp_ldstmdb),
19119 cCE("fstmiax", c800b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmia),
19120 cCE("fstmeax", c800b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmia),
19121 cCE("fstmdbx", d200b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmdb),
19122 cCE("fstmfdx", d200b00, 2, (RRnpctw, VRDLST), vfp_xp_ldstmdb),
19123
19124 /* Monadic operations. */
19125 cCE("fabss", eb00ac0, 2, (RVS, RVS), vfp_sp_monadic),
19126 cCE("fnegs", eb10a40, 2, (RVS, RVS), vfp_sp_monadic),
19127 cCE("fsqrts", eb10ac0, 2, (RVS, RVS), vfp_sp_monadic),
19128
19129 /* Dyadic operations. */
19130 cCE("fadds", e300a00, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19131 cCE("fsubs", e300a40, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19132 cCE("fmuls", e200a00, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19133 cCE("fdivs", e800a00, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19134 cCE("fmacs", e000a00, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19135 cCE("fmscs", e100a00, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19136 cCE("fnmuls", e200a40, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19137 cCE("fnmacs", e000a40, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19138 cCE("fnmscs", e100a40, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19139
19140 /* Comparisons. */
19141 cCE("fcmps", eb40a40, 2, (RVS, RVS), vfp_sp_monadic),
19142 cCE("fcmpzs", eb50a40, 1, (RVS), vfp_sp_compare_z),
19143 cCE("fcmpes", eb40ac0, 2, (RVS, RVS), vfp_sp_monadic),
19144 cCE("fcmpezs", eb50ac0, 1, (RVS), vfp_sp_compare_z),
19145
19146 /* Double precision load/store are still present on single precision
19147 implementations. */
19148 cCE("fldd", d100b00, 2, (RVD, ADDRGLDC), vfp_dp_ldst),
19149 cCE("fstd", d000b00, 2, (RVD, ADDRGLDC), vfp_dp_ldst),
19150 cCE("fldmiad", c900b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmia),
19151 cCE("fldmfdd", c900b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmia),
19152 cCE("fldmdbd", d300b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmdb),
19153 cCE("fldmead", d300b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmdb),
19154 cCE("fstmiad", c800b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmia),
19155 cCE("fstmead", c800b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmia),
19156 cCE("fstmdbd", d200b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmdb),
19157 cCE("fstmfdd", d200b00, 2, (RRnpctw, VRDLST), vfp_dp_ldstmdb),
19158
19159 #undef ARM_VARIANT
19160 #define ARM_VARIANT & fpu_vfp_ext_v1 /* VFP V1 (Double precision). */
19161
19162 /* Moves and type conversions. */
19163 cCE("fcpyd", eb00b40, 2, (RVD, RVD), vfp_dp_rd_rm),
19164 cCE("fcvtds", eb70ac0, 2, (RVD, RVS), vfp_dp_sp_cvt),
19165 cCE("fcvtsd", eb70bc0, 2, (RVS, RVD), vfp_sp_dp_cvt),
19166 cCE("fmdhr", e200b10, 2, (RVD, RR), vfp_dp_rn_rd),
19167 cCE("fmdlr", e000b10, 2, (RVD, RR), vfp_dp_rn_rd),
19168 cCE("fmrdh", e300b10, 2, (RR, RVD), vfp_dp_rd_rn),
19169 cCE("fmrdl", e100b10, 2, (RR, RVD), vfp_dp_rd_rn),
19170 cCE("fsitod", eb80bc0, 2, (RVD, RVS), vfp_dp_sp_cvt),
19171 cCE("fuitod", eb80b40, 2, (RVD, RVS), vfp_dp_sp_cvt),
19172 cCE("ftosid", ebd0b40, 2, (RVS, RVD), vfp_sp_dp_cvt),
19173 cCE("ftosizd", ebd0bc0, 2, (RVS, RVD), vfp_sp_dp_cvt),
19174 cCE("ftouid", ebc0b40, 2, (RVS, RVD), vfp_sp_dp_cvt),
19175 cCE("ftouizd", ebc0bc0, 2, (RVS, RVD), vfp_sp_dp_cvt),
19176
19177 /* Monadic operations. */
19178 cCE("fabsd", eb00bc0, 2, (RVD, RVD), vfp_dp_rd_rm),
19179 cCE("fnegd", eb10b40, 2, (RVD, RVD), vfp_dp_rd_rm),
19180 cCE("fsqrtd", eb10bc0, 2, (RVD, RVD), vfp_dp_rd_rm),
19181
19182 /* Dyadic operations. */
19183 cCE("faddd", e300b00, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19184 cCE("fsubd", e300b40, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19185 cCE("fmuld", e200b00, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19186 cCE("fdivd", e800b00, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19187 cCE("fmacd", e000b00, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19188 cCE("fmscd", e100b00, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19189 cCE("fnmuld", e200b40, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19190 cCE("fnmacd", e000b40, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19191 cCE("fnmscd", e100b40, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19192
19193 /* Comparisons. */
19194 cCE("fcmpd", eb40b40, 2, (RVD, RVD), vfp_dp_rd_rm),
19195 cCE("fcmpzd", eb50b40, 1, (RVD), vfp_dp_rd),
19196 cCE("fcmped", eb40bc0, 2, (RVD, RVD), vfp_dp_rd_rm),
19197 cCE("fcmpezd", eb50bc0, 1, (RVD), vfp_dp_rd),
19198
19199 #undef ARM_VARIANT
19200 #define ARM_VARIANT & fpu_vfp_ext_v2
19201
19202 cCE("fmsrr", c400a10, 3, (VRSLST, RR, RR), vfp_sp2_from_reg2),
19203 cCE("fmrrs", c500a10, 3, (RR, RR, VRSLST), vfp_reg2_from_sp2),
19204 cCE("fmdrr", c400b10, 3, (RVD, RR, RR), vfp_dp_rm_rd_rn),
19205 cCE("fmrrd", c500b10, 3, (RR, RR, RVD), vfp_dp_rd_rn_rm),
19206
19207 /* Instructions which may belong to either the Neon or VFP instruction sets.
19208 Individual encoder functions perform additional architecture checks. */
19209 #undef ARM_VARIANT
19210 #define ARM_VARIANT & fpu_vfp_ext_v1xd
19211 #undef THUMB_VARIANT
19212 #define THUMB_VARIANT & fpu_vfp_ext_v1xd
19213
19214 /* These mnemonics are unique to VFP. */
19215 NCE(vsqrt, 0, 2, (RVSD, RVSD), vfp_nsyn_sqrt),
19216 NCE(vdiv, 0, 3, (RVSD, RVSD, RVSD), vfp_nsyn_div),
19217 nCE(vnmul, _vnmul, 3, (RVSD, RVSD, RVSD), vfp_nsyn_nmul),
19218 nCE(vnmla, _vnmla, 3, (RVSD, RVSD, RVSD), vfp_nsyn_nmul),
19219 nCE(vnmls, _vnmls, 3, (RVSD, RVSD, RVSD), vfp_nsyn_nmul),
19220 nCE(vcmp, _vcmp, 2, (RVSD, RVSD_I0), vfp_nsyn_cmp),
19221 nCE(vcmpe, _vcmpe, 2, (RVSD, RVSD_I0), vfp_nsyn_cmp),
19222 NCE(vpush, 0, 1, (VRSDLST), vfp_nsyn_push),
19223 NCE(vpop, 0, 1, (VRSDLST), vfp_nsyn_pop),
19224 NCE(vcvtz, 0, 2, (RVSD, RVSD), vfp_nsyn_cvtz),
19225
19226 /* Mnemonics shared by Neon and VFP. */
19227 nCEF(vmul, _vmul, 3, (RNSDQ, oRNSDQ, RNSDQ_RNSC), neon_mul),
19228 nCEF(vmla, _vmla, 3, (RNSDQ, oRNSDQ, RNSDQ_RNSC), neon_mac_maybe_scalar),
19229 nCEF(vmls, _vmls, 3, (RNSDQ, oRNSDQ, RNSDQ_RNSC), neon_mac_maybe_scalar),
19230
19231 nCEF(vadd, _vadd, 3, (RNSDQ, oRNSDQ, RNSDQ), neon_addsub_if_i),
19232 nCEF(vsub, _vsub, 3, (RNSDQ, oRNSDQ, RNSDQ), neon_addsub_if_i),
19233
19234 NCEF(vabs, 1b10300, 2, (RNSDQ, RNSDQ), neon_abs_neg),
19235 NCEF(vneg, 1b10380, 2, (RNSDQ, RNSDQ), neon_abs_neg),
19236
19237 NCE(vldm, c900b00, 2, (RRnpctw, VRSDLST), neon_ldm_stm),
19238 NCE(vldmia, c900b00, 2, (RRnpctw, VRSDLST), neon_ldm_stm),
19239 NCE(vldmdb, d100b00, 2, (RRnpctw, VRSDLST), neon_ldm_stm),
19240 NCE(vstm, c800b00, 2, (RRnpctw, VRSDLST), neon_ldm_stm),
19241 NCE(vstmia, c800b00, 2, (RRnpctw, VRSDLST), neon_ldm_stm),
19242 NCE(vstmdb, d000b00, 2, (RRnpctw, VRSDLST), neon_ldm_stm),
19243 NCE(vldr, d100b00, 2, (RVSD, ADDRGLDC), neon_ldr_str),
19244 NCE(vstr, d000b00, 2, (RVSD, ADDRGLDC), neon_ldr_str),
19245
19246 nCEF(vcvt, _vcvt, 3, (RNSDQ, RNSDQ, oI32z), neon_cvt),
19247 nCEF(vcvtr, _vcvt, 2, (RNSDQ, RNSDQ), neon_cvtr),
19248 NCEF(vcvtb, eb20a40, 2, (RVSD, RVSD), neon_cvtb),
19249 NCEF(vcvtt, eb20a40, 2, (RVSD, RVSD), neon_cvtt),
19250
19251
19252 /* NOTE: All VMOV encoding is special-cased! */
19253 NCE(vmov, 0, 1, (VMOV), neon_mov),
19254 NCE(vmovq, 0, 1, (VMOV), neon_mov),
19255
19256 #undef THUMB_VARIANT
19257 #define THUMB_VARIANT & fpu_neon_ext_v1
19258 #undef ARM_VARIANT
19259 #define ARM_VARIANT & fpu_neon_ext_v1
19260
19261 /* Data processing with three registers of the same length. */
19262 /* integer ops, valid types S8 S16 S32 U8 U16 U32. */
19263 NUF(vaba, 0000710, 3, (RNDQ, RNDQ, RNDQ), neon_dyadic_i_su),
19264 NUF(vabaq, 0000710, 3, (RNQ, RNQ, RNQ), neon_dyadic_i_su),
19265 NUF(vhadd, 0000000, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_i_su),
19266 NUF(vhaddq, 0000000, 3, (RNQ, oRNQ, RNQ), neon_dyadic_i_su),
19267 NUF(vrhadd, 0000100, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_i_su),
19268 NUF(vrhaddq, 0000100, 3, (RNQ, oRNQ, RNQ), neon_dyadic_i_su),
19269 NUF(vhsub, 0000200, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_i_su),
19270 NUF(vhsubq, 0000200, 3, (RNQ, oRNQ, RNQ), neon_dyadic_i_su),
19271 /* integer ops, valid types S8 S16 S32 S64 U8 U16 U32 U64. */
19272 NUF(vqadd, 0000010, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_i64_su),
19273 NUF(vqaddq, 0000010, 3, (RNQ, oRNQ, RNQ), neon_dyadic_i64_su),
19274 NUF(vqsub, 0000210, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_i64_su),
19275 NUF(vqsubq, 0000210, 3, (RNQ, oRNQ, RNQ), neon_dyadic_i64_su),
19276 NUF(vrshl, 0000500, 3, (RNDQ, oRNDQ, RNDQ), neon_rshl),
19277 NUF(vrshlq, 0000500, 3, (RNQ, oRNQ, RNQ), neon_rshl),
19278 NUF(vqrshl, 0000510, 3, (RNDQ, oRNDQ, RNDQ), neon_rshl),
19279 NUF(vqrshlq, 0000510, 3, (RNQ, oRNQ, RNQ), neon_rshl),
19280 /* If not immediate, fall back to neon_dyadic_i64_su.
19281 shl_imm should accept I8 I16 I32 I64,
19282 qshl_imm should accept S8 S16 S32 S64 U8 U16 U32 U64. */
19283 nUF(vshl, _vshl, 3, (RNDQ, oRNDQ, RNDQ_I63b), neon_shl_imm),
19284 nUF(vshlq, _vshl, 3, (RNQ, oRNQ, RNDQ_I63b), neon_shl_imm),
19285 nUF(vqshl, _vqshl, 3, (RNDQ, oRNDQ, RNDQ_I63b), neon_qshl_imm),
19286 nUF(vqshlq, _vqshl, 3, (RNQ, oRNQ, RNDQ_I63b), neon_qshl_imm),
19287 /* Logic ops, types optional & ignored. */
19288 nUF(vand, _vand, 3, (RNDQ, oRNDQ, RNDQ_Ibig), neon_logic),
19289 nUF(vandq, _vand, 3, (RNQ, oRNQ, RNDQ_Ibig), neon_logic),
19290 nUF(vbic, _vbic, 3, (RNDQ, oRNDQ, RNDQ_Ibig), neon_logic),
19291 nUF(vbicq, _vbic, 3, (RNQ, oRNQ, RNDQ_Ibig), neon_logic),
19292 nUF(vorr, _vorr, 3, (RNDQ, oRNDQ, RNDQ_Ibig), neon_logic),
19293 nUF(vorrq, _vorr, 3, (RNQ, oRNQ, RNDQ_Ibig), neon_logic),
19294 nUF(vorn, _vorn, 3, (RNDQ, oRNDQ, RNDQ_Ibig), neon_logic),
19295 nUF(vornq, _vorn, 3, (RNQ, oRNQ, RNDQ_Ibig), neon_logic),
19296 nUF(veor, _veor, 3, (RNDQ, oRNDQ, RNDQ), neon_logic),
19297 nUF(veorq, _veor, 3, (RNQ, oRNQ, RNQ), neon_logic),
19298 /* Bitfield ops, untyped. */
19299 NUF(vbsl, 1100110, 3, (RNDQ, RNDQ, RNDQ), neon_bitfield),
19300 NUF(vbslq, 1100110, 3, (RNQ, RNQ, RNQ), neon_bitfield),
19301 NUF(vbit, 1200110, 3, (RNDQ, RNDQ, RNDQ), neon_bitfield),
19302 NUF(vbitq, 1200110, 3, (RNQ, RNQ, RNQ), neon_bitfield),
19303 NUF(vbif, 1300110, 3, (RNDQ, RNDQ, RNDQ), neon_bitfield),
19304 NUF(vbifq, 1300110, 3, (RNQ, RNQ, RNQ), neon_bitfield),
19305 /* Int and float variants, types S8 S16 S32 U8 U16 U32 F32. */
19306 nUF(vabd, _vabd, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_if_su),
19307 nUF(vabdq, _vabd, 3, (RNQ, oRNQ, RNQ), neon_dyadic_if_su),
19308 nUF(vmax, _vmax, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_if_su),
19309 nUF(vmaxq, _vmax, 3, (RNQ, oRNQ, RNQ), neon_dyadic_if_su),
19310 nUF(vmin, _vmin, 3, (RNDQ, oRNDQ, RNDQ), neon_dyadic_if_su),
19311 nUF(vminq, _vmin, 3, (RNQ, oRNQ, RNQ), neon_dyadic_if_su),
19312 /* Comparisons. Types S8 S16 S32 U8 U16 U32 F32. Non-immediate versions fall
19313 back to neon_dyadic_if_su. */
19314 nUF(vcge, _vcge, 3, (RNDQ, oRNDQ, RNDQ_I0), neon_cmp),
19315 nUF(vcgeq, _vcge, 3, (RNQ, oRNQ, RNDQ_I0), neon_cmp),
19316 nUF(vcgt, _vcgt, 3, (RNDQ, oRNDQ, RNDQ_I0), neon_cmp),
19317 nUF(vcgtq, _vcgt, 3, (RNQ, oRNQ, RNDQ_I0), neon_cmp),
19318 nUF(vclt, _vclt, 3, (RNDQ, oRNDQ, RNDQ_I0), neon_cmp_inv),
19319 nUF(vcltq, _vclt, 3, (RNQ, oRNQ, RNDQ_I0), neon_cmp_inv),
19320 nUF(vcle, _vcle, 3, (RNDQ, oRNDQ, RNDQ_I0), neon_cmp_inv),
19321 nUF(vcleq, _vcle, 3, (RNQ, oRNQ, RNDQ_I0), neon_cmp_inv),
19322 /* Comparison. Type I8 I16 I32 F32. */
19323 nUF(vceq, _vceq, 3, (RNDQ, oRNDQ, RNDQ_I0), neon_ceq),
19324 nUF(vceqq, _vceq, 3, (RNQ, oRNQ, RNDQ_I0), neon_ceq),
19325 /* As above, D registers only. */
19326 nUF(vpmax, _vpmax, 3, (RND, oRND, RND), neon_dyadic_if_su_d),
19327 nUF(vpmin, _vpmin, 3, (RND, oRND, RND), neon_dyadic_if_su_d),
19328 /* Int and float variants, signedness unimportant. */
19329 nUF(vmlaq, _vmla, 3, (RNQ, oRNQ, RNDQ_RNSC), neon_mac_maybe_scalar),
19330 nUF(vmlsq, _vmls, 3, (RNQ, oRNQ, RNDQ_RNSC), neon_mac_maybe_scalar),
19331 nUF(vpadd, _vpadd, 3, (RND, oRND, RND), neon_dyadic_if_i_d),
19332 /* Add/sub take types I8 I16 I32 I64 F32. */
19333 nUF(vaddq, _vadd, 3, (RNQ, oRNQ, RNQ), neon_addsub_if_i),
19334 nUF(vsubq, _vsub, 3, (RNQ, oRNQ, RNQ), neon_addsub_if_i),
19335 /* vtst takes sizes 8, 16, 32. */
19336 NUF(vtst, 0000810, 3, (RNDQ, oRNDQ, RNDQ), neon_tst),
19337 NUF(vtstq, 0000810, 3, (RNQ, oRNQ, RNQ), neon_tst),
19338 /* VMUL takes I8 I16 I32 F32 P8. */
19339 nUF(vmulq, _vmul, 3, (RNQ, oRNQ, RNDQ_RNSC), neon_mul),
19340 /* VQD{R}MULH takes S16 S32. */
19341 nUF(vqdmulh, _vqdmulh, 3, (RNDQ, oRNDQ, RNDQ_RNSC), neon_qdmulh),
19342 nUF(vqdmulhq, _vqdmulh, 3, (RNQ, oRNQ, RNDQ_RNSC), neon_qdmulh),
19343 nUF(vqrdmulh, _vqrdmulh, 3, (RNDQ, oRNDQ, RNDQ_RNSC), neon_qdmulh),
19344 nUF(vqrdmulhq, _vqrdmulh, 3, (RNQ, oRNQ, RNDQ_RNSC), neon_qdmulh),
19345 NUF(vacge, 0000e10, 3, (RNDQ, oRNDQ, RNDQ), neon_fcmp_absolute),
19346 NUF(vacgeq, 0000e10, 3, (RNQ, oRNQ, RNQ), neon_fcmp_absolute),
19347 NUF(vacgt, 0200e10, 3, (RNDQ, oRNDQ, RNDQ), neon_fcmp_absolute),
19348 NUF(vacgtq, 0200e10, 3, (RNQ, oRNQ, RNQ), neon_fcmp_absolute),
19349 NUF(vaclt, 0200e10, 3, (RNDQ, oRNDQ, RNDQ), neon_fcmp_absolute_inv),
19350 NUF(vacltq, 0200e10, 3, (RNQ, oRNQ, RNQ), neon_fcmp_absolute_inv),
19351 NUF(vacle, 0000e10, 3, (RNDQ, oRNDQ, RNDQ), neon_fcmp_absolute_inv),
19352 NUF(vacleq, 0000e10, 3, (RNQ, oRNQ, RNQ), neon_fcmp_absolute_inv),
19353 NUF(vrecps, 0000f10, 3, (RNDQ, oRNDQ, RNDQ), neon_step),
19354 NUF(vrecpsq, 0000f10, 3, (RNQ, oRNQ, RNQ), neon_step),
19355 NUF(vrsqrts, 0200f10, 3, (RNDQ, oRNDQ, RNDQ), neon_step),
19356 NUF(vrsqrtsq, 0200f10, 3, (RNQ, oRNQ, RNQ), neon_step),
19357
19358 /* Two address, int/float. Types S8 S16 S32 F32. */
19359 NUF(vabsq, 1b10300, 2, (RNQ, RNQ), neon_abs_neg),
19360 NUF(vnegq, 1b10380, 2, (RNQ, RNQ), neon_abs_neg),
19361
19362 /* Data processing with two registers and a shift amount. */
19363 /* Right shifts, and variants with rounding.
19364 Types accepted S8 S16 S32 S64 U8 U16 U32 U64. */
19365 NUF(vshr, 0800010, 3, (RNDQ, oRNDQ, I64z), neon_rshift_round_imm),
19366 NUF(vshrq, 0800010, 3, (RNQ, oRNQ, I64z), neon_rshift_round_imm),
19367 NUF(vrshr, 0800210, 3, (RNDQ, oRNDQ, I64z), neon_rshift_round_imm),
19368 NUF(vrshrq, 0800210, 3, (RNQ, oRNQ, I64z), neon_rshift_round_imm),
19369 NUF(vsra, 0800110, 3, (RNDQ, oRNDQ, I64), neon_rshift_round_imm),
19370 NUF(vsraq, 0800110, 3, (RNQ, oRNQ, I64), neon_rshift_round_imm),
19371 NUF(vrsra, 0800310, 3, (RNDQ, oRNDQ, I64), neon_rshift_round_imm),
19372 NUF(vrsraq, 0800310, 3, (RNQ, oRNQ, I64), neon_rshift_round_imm),
19373 /* Shift and insert. Sizes accepted 8 16 32 64. */
19374 NUF(vsli, 1800510, 3, (RNDQ, oRNDQ, I63), neon_sli),
19375 NUF(vsliq, 1800510, 3, (RNQ, oRNQ, I63), neon_sli),
19376 NUF(vsri, 1800410, 3, (RNDQ, oRNDQ, I64), neon_sri),
19377 NUF(vsriq, 1800410, 3, (RNQ, oRNQ, I64), neon_sri),
19378 /* QSHL{U} immediate accepts S8 S16 S32 S64 U8 U16 U32 U64. */
19379 NUF(vqshlu, 1800610, 3, (RNDQ, oRNDQ, I63), neon_qshlu_imm),
19380 NUF(vqshluq, 1800610, 3, (RNQ, oRNQ, I63), neon_qshlu_imm),
19381 /* Right shift immediate, saturating & narrowing, with rounding variants.
19382 Types accepted S16 S32 S64 U16 U32 U64. */
19383 NUF(vqshrn, 0800910, 3, (RND, RNQ, I32z), neon_rshift_sat_narrow),
19384 NUF(vqrshrn, 0800950, 3, (RND, RNQ, I32z), neon_rshift_sat_narrow),
19385 /* As above, unsigned. Types accepted S16 S32 S64. */
19386 NUF(vqshrun, 0800810, 3, (RND, RNQ, I32z), neon_rshift_sat_narrow_u),
19387 NUF(vqrshrun, 0800850, 3, (RND, RNQ, I32z), neon_rshift_sat_narrow_u),
19388 /* Right shift narrowing. Types accepted I16 I32 I64. */
19389 NUF(vshrn, 0800810, 3, (RND, RNQ, I32z), neon_rshift_narrow),
19390 NUF(vrshrn, 0800850, 3, (RND, RNQ, I32z), neon_rshift_narrow),
19391 /* Special case. Types S8 S16 S32 U8 U16 U32. Handles max shift variant. */
19392 nUF(vshll, _vshll, 3, (RNQ, RND, I32), neon_shll),
19393 /* CVT with optional immediate for fixed-point variant. */
19394 nUF(vcvtq, _vcvt, 3, (RNQ, RNQ, oI32b), neon_cvt),
19395
19396 nUF(vmvn, _vmvn, 2, (RNDQ, RNDQ_Ibig), neon_mvn),
19397 nUF(vmvnq, _vmvn, 2, (RNQ, RNDQ_Ibig), neon_mvn),
19398
19399 /* Data processing, three registers of different lengths. */
19400 /* Dyadic, long insns. Types S8 S16 S32 U8 U16 U32. */
19401 NUF(vabal, 0800500, 3, (RNQ, RND, RND), neon_abal),
19402 NUF(vabdl, 0800700, 3, (RNQ, RND, RND), neon_dyadic_long),
19403 NUF(vaddl, 0800000, 3, (RNQ, RND, RND), neon_dyadic_long),
19404 NUF(vsubl, 0800200, 3, (RNQ, RND, RND), neon_dyadic_long),
19405 /* If not scalar, fall back to neon_dyadic_long.
19406 Vector types as above, scalar types S16 S32 U16 U32. */
19407 nUF(vmlal, _vmlal, 3, (RNQ, RND, RND_RNSC), neon_mac_maybe_scalar_long),
19408 nUF(vmlsl, _vmlsl, 3, (RNQ, RND, RND_RNSC), neon_mac_maybe_scalar_long),
19409 /* Dyadic, widening insns. Types S8 S16 S32 U8 U16 U32. */
19410 NUF(vaddw, 0800100, 3, (RNQ, oRNQ, RND), neon_dyadic_wide),
19411 NUF(vsubw, 0800300, 3, (RNQ, oRNQ, RND), neon_dyadic_wide),
19412 /* Dyadic, narrowing insns. Types I16 I32 I64. */
19413 NUF(vaddhn, 0800400, 3, (RND, RNQ, RNQ), neon_dyadic_narrow),
19414 NUF(vraddhn, 1800400, 3, (RND, RNQ, RNQ), neon_dyadic_narrow),
19415 NUF(vsubhn, 0800600, 3, (RND, RNQ, RNQ), neon_dyadic_narrow),
19416 NUF(vrsubhn, 1800600, 3, (RND, RNQ, RNQ), neon_dyadic_narrow),
19417 /* Saturating doubling multiplies. Types S16 S32. */
19418 nUF(vqdmlal, _vqdmlal, 3, (RNQ, RND, RND_RNSC), neon_mul_sat_scalar_long),
19419 nUF(vqdmlsl, _vqdmlsl, 3, (RNQ, RND, RND_RNSC), neon_mul_sat_scalar_long),
19420 nUF(vqdmull, _vqdmull, 3, (RNQ, RND, RND_RNSC), neon_mul_sat_scalar_long),
19421 /* VMULL. Vector types S8 S16 S32 U8 U16 U32 P8, scalar types
19422 S16 S32 U16 U32. */
19423 nUF(vmull, _vmull, 3, (RNQ, RND, RND_RNSC), neon_vmull),
19424
19425 /* Extract. Size 8. */
19426 NUF(vext, 0b00000, 4, (RNDQ, oRNDQ, RNDQ, I15), neon_ext),
19427 NUF(vextq, 0b00000, 4, (RNQ, oRNQ, RNQ, I15), neon_ext),
19428
19429 /* Two registers, miscellaneous. */
19430 /* Reverse. Sizes 8 16 32 (must be < size in opcode). */
19431 NUF(vrev64, 1b00000, 2, (RNDQ, RNDQ), neon_rev),
19432 NUF(vrev64q, 1b00000, 2, (RNQ, RNQ), neon_rev),
19433 NUF(vrev32, 1b00080, 2, (RNDQ, RNDQ), neon_rev),
19434 NUF(vrev32q, 1b00080, 2, (RNQ, RNQ), neon_rev),
19435 NUF(vrev16, 1b00100, 2, (RNDQ, RNDQ), neon_rev),
19436 NUF(vrev16q, 1b00100, 2, (RNQ, RNQ), neon_rev),
19437 /* Vector replicate. Sizes 8 16 32. */
19438 nCE(vdup, _vdup, 2, (RNDQ, RR_RNSC), neon_dup),
19439 nCE(vdupq, _vdup, 2, (RNQ, RR_RNSC), neon_dup),
19440 /* VMOVL. Types S8 S16 S32 U8 U16 U32. */
19441 NUF(vmovl, 0800a10, 2, (RNQ, RND), neon_movl),
19442 /* VMOVN. Types I16 I32 I64. */
19443 nUF(vmovn, _vmovn, 2, (RND, RNQ), neon_movn),
19444 /* VQMOVN. Types S16 S32 S64 U16 U32 U64. */
19445 nUF(vqmovn, _vqmovn, 2, (RND, RNQ), neon_qmovn),
19446 /* VQMOVUN. Types S16 S32 S64. */
19447 nUF(vqmovun, _vqmovun, 2, (RND, RNQ), neon_qmovun),
19448 /* VZIP / VUZP. Sizes 8 16 32. */
19449 NUF(vzip, 1b20180, 2, (RNDQ, RNDQ), neon_zip_uzp),
19450 NUF(vzipq, 1b20180, 2, (RNQ, RNQ), neon_zip_uzp),
19451 NUF(vuzp, 1b20100, 2, (RNDQ, RNDQ), neon_zip_uzp),
19452 NUF(vuzpq, 1b20100, 2, (RNQ, RNQ), neon_zip_uzp),
19453 /* VQABS / VQNEG. Types S8 S16 S32. */
19454 NUF(vqabs, 1b00700, 2, (RNDQ, RNDQ), neon_sat_abs_neg),
19455 NUF(vqabsq, 1b00700, 2, (RNQ, RNQ), neon_sat_abs_neg),
19456 NUF(vqneg, 1b00780, 2, (RNDQ, RNDQ), neon_sat_abs_neg),
19457 NUF(vqnegq, 1b00780, 2, (RNQ, RNQ), neon_sat_abs_neg),
19458 /* Pairwise, lengthening. Types S8 S16 S32 U8 U16 U32. */
19459 NUF(vpadal, 1b00600, 2, (RNDQ, RNDQ), neon_pair_long),
19460 NUF(vpadalq, 1b00600, 2, (RNQ, RNQ), neon_pair_long),
19461 NUF(vpaddl, 1b00200, 2, (RNDQ, RNDQ), neon_pair_long),
19462 NUF(vpaddlq, 1b00200, 2, (RNQ, RNQ), neon_pair_long),
19463 /* Reciprocal estimates. Types U32 F32. */
19464 NUF(vrecpe, 1b30400, 2, (RNDQ, RNDQ), neon_recip_est),
19465 NUF(vrecpeq, 1b30400, 2, (RNQ, RNQ), neon_recip_est),
19466 NUF(vrsqrte, 1b30480, 2, (RNDQ, RNDQ), neon_recip_est),
19467 NUF(vrsqrteq, 1b30480, 2, (RNQ, RNQ), neon_recip_est),
19468 /* VCLS. Types S8 S16 S32. */
19469 NUF(vcls, 1b00400, 2, (RNDQ, RNDQ), neon_cls),
19470 NUF(vclsq, 1b00400, 2, (RNQ, RNQ), neon_cls),
19471 /* VCLZ. Types I8 I16 I32. */
19472 NUF(vclz, 1b00480, 2, (RNDQ, RNDQ), neon_clz),
19473 NUF(vclzq, 1b00480, 2, (RNQ, RNQ), neon_clz),
19474 /* VCNT. Size 8. */
19475 NUF(vcnt, 1b00500, 2, (RNDQ, RNDQ), neon_cnt),
19476 NUF(vcntq, 1b00500, 2, (RNQ, RNQ), neon_cnt),
19477 /* Two address, untyped. */
19478 NUF(vswp, 1b20000, 2, (RNDQ, RNDQ), neon_swp),
19479 NUF(vswpq, 1b20000, 2, (RNQ, RNQ), neon_swp),
19480 /* VTRN. Sizes 8 16 32. */
19481 nUF(vtrn, _vtrn, 2, (RNDQ, RNDQ), neon_trn),
19482 nUF(vtrnq, _vtrn, 2, (RNQ, RNQ), neon_trn),
19483
19484 /* Table lookup. Size 8. */
19485 NUF(vtbl, 1b00800, 3, (RND, NRDLST, RND), neon_tbl_tbx),
19486 NUF(vtbx, 1b00840, 3, (RND, NRDLST, RND), neon_tbl_tbx),
19487
19488 #undef THUMB_VARIANT
19489 #define THUMB_VARIANT & fpu_vfp_v3_or_neon_ext
19490 #undef ARM_VARIANT
19491 #define ARM_VARIANT & fpu_vfp_v3_or_neon_ext
19492
19493 /* Neon element/structure load/store. */
19494 nUF(vld1, _vld1, 2, (NSTRLST, ADDR), neon_ldx_stx),
19495 nUF(vst1, _vst1, 2, (NSTRLST, ADDR), neon_ldx_stx),
19496 nUF(vld2, _vld2, 2, (NSTRLST, ADDR), neon_ldx_stx),
19497 nUF(vst2, _vst2, 2, (NSTRLST, ADDR), neon_ldx_stx),
19498 nUF(vld3, _vld3, 2, (NSTRLST, ADDR), neon_ldx_stx),
19499 nUF(vst3, _vst3, 2, (NSTRLST, ADDR), neon_ldx_stx),
19500 nUF(vld4, _vld4, 2, (NSTRLST, ADDR), neon_ldx_stx),
19501 nUF(vst4, _vst4, 2, (NSTRLST, ADDR), neon_ldx_stx),
19502
19503 #undef THUMB_VARIANT
19504 #define THUMB_VARIANT & fpu_vfp_ext_v3xd
19505 #undef ARM_VARIANT
19506 #define ARM_VARIANT & fpu_vfp_ext_v3xd
19507 cCE("fconsts", eb00a00, 2, (RVS, I255), vfp_sp_const),
19508 cCE("fshtos", eba0a40, 2, (RVS, I16z), vfp_sp_conv_16),
19509 cCE("fsltos", eba0ac0, 2, (RVS, I32), vfp_sp_conv_32),
19510 cCE("fuhtos", ebb0a40, 2, (RVS, I16z), vfp_sp_conv_16),
19511 cCE("fultos", ebb0ac0, 2, (RVS, I32), vfp_sp_conv_32),
19512 cCE("ftoshs", ebe0a40, 2, (RVS, I16z), vfp_sp_conv_16),
19513 cCE("ftosls", ebe0ac0, 2, (RVS, I32), vfp_sp_conv_32),
19514 cCE("ftouhs", ebf0a40, 2, (RVS, I16z), vfp_sp_conv_16),
19515 cCE("ftouls", ebf0ac0, 2, (RVS, I32), vfp_sp_conv_32),
19516
19517 #undef THUMB_VARIANT
19518 #define THUMB_VARIANT & fpu_vfp_ext_v3
19519 #undef ARM_VARIANT
19520 #define ARM_VARIANT & fpu_vfp_ext_v3
19521
19522 cCE("fconstd", eb00b00, 2, (RVD, I255), vfp_dp_const),
19523 cCE("fshtod", eba0b40, 2, (RVD, I16z), vfp_dp_conv_16),
19524 cCE("fsltod", eba0bc0, 2, (RVD, I32), vfp_dp_conv_32),
19525 cCE("fuhtod", ebb0b40, 2, (RVD, I16z), vfp_dp_conv_16),
19526 cCE("fultod", ebb0bc0, 2, (RVD, I32), vfp_dp_conv_32),
19527 cCE("ftoshd", ebe0b40, 2, (RVD, I16z), vfp_dp_conv_16),
19528 cCE("ftosld", ebe0bc0, 2, (RVD, I32), vfp_dp_conv_32),
19529 cCE("ftouhd", ebf0b40, 2, (RVD, I16z), vfp_dp_conv_16),
19530 cCE("ftould", ebf0bc0, 2, (RVD, I32), vfp_dp_conv_32),
19531
19532 #undef ARM_VARIANT
19533 #define ARM_VARIANT & fpu_vfp_ext_fma
19534 #undef THUMB_VARIANT
19535 #define THUMB_VARIANT & fpu_vfp_ext_fma
19536 /* Mnemonics shared by Neon and VFP. These are included in the
19537 VFP FMA variant; NEON and VFP FMA always includes the NEON
19538 FMA instructions. */
19539 nCEF(vfma, _vfma, 3, (RNSDQ, oRNSDQ, RNSDQ), neon_fmac),
19540 nCEF(vfms, _vfms, 3, (RNSDQ, oRNSDQ, RNSDQ), neon_fmac),
19541 /* ffmas/ffmad/ffmss/ffmsd are dummy mnemonics to satisfy gas;
19542 the v form should always be used. */
19543 cCE("ffmas", ea00a00, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19544 cCE("ffnmas", ea00a40, 3, (RVS, RVS, RVS), vfp_sp_dyadic),
19545 cCE("ffmad", ea00b00, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19546 cCE("ffnmad", ea00b40, 3, (RVD, RVD, RVD), vfp_dp_rd_rn_rm),
19547 nCE(vfnma, _vfnma, 3, (RVSD, RVSD, RVSD), vfp_nsyn_nmul),
19548 nCE(vfnms, _vfnms, 3, (RVSD, RVSD, RVSD), vfp_nsyn_nmul),
19549
19550 #undef THUMB_VARIANT
19551 #undef ARM_VARIANT
19552 #define ARM_VARIANT & arm_cext_xscale /* Intel XScale extensions. */
19553
19554 cCE("mia", e200010, 3, (RXA, RRnpc, RRnpc), xsc_mia),
19555 cCE("miaph", e280010, 3, (RXA, RRnpc, RRnpc), xsc_mia),
19556 cCE("miabb", e2c0010, 3, (RXA, RRnpc, RRnpc), xsc_mia),
19557 cCE("miabt", e2d0010, 3, (RXA, RRnpc, RRnpc), xsc_mia),
19558 cCE("miatb", e2e0010, 3, (RXA, RRnpc, RRnpc), xsc_mia),
19559 cCE("miatt", e2f0010, 3, (RXA, RRnpc, RRnpc), xsc_mia),
19560 cCE("mar", c400000, 3, (RXA, RRnpc, RRnpc), xsc_mar),
19561 cCE("mra", c500000, 3, (RRnpc, RRnpc, RXA), xsc_mra),
19562
19563 #undef ARM_VARIANT
19564 #define ARM_VARIANT & arm_cext_iwmmxt /* Intel Wireless MMX technology. */
19565
19566 cCE("tandcb", e13f130, 1, (RR), iwmmxt_tandorc),
19567 cCE("tandch", e53f130, 1, (RR), iwmmxt_tandorc),
19568 cCE("tandcw", e93f130, 1, (RR), iwmmxt_tandorc),
19569 cCE("tbcstb", e400010, 2, (RIWR, RR), rn_rd),
19570 cCE("tbcsth", e400050, 2, (RIWR, RR), rn_rd),
19571 cCE("tbcstw", e400090, 2, (RIWR, RR), rn_rd),
19572 cCE("textrcb", e130170, 2, (RR, I7), iwmmxt_textrc),
19573 cCE("textrch", e530170, 2, (RR, I7), iwmmxt_textrc),
19574 cCE("textrcw", e930170, 2, (RR, I7), iwmmxt_textrc),
19575 cCE("textrmub",e100070, 3, (RR, RIWR, I7), iwmmxt_textrm),
19576 cCE("textrmuh",e500070, 3, (RR, RIWR, I7), iwmmxt_textrm),
19577 cCE("textrmuw",e900070, 3, (RR, RIWR, I7), iwmmxt_textrm),
19578 cCE("textrmsb",e100078, 3, (RR, RIWR, I7), iwmmxt_textrm),
19579 cCE("textrmsh",e500078, 3, (RR, RIWR, I7), iwmmxt_textrm),
19580 cCE("textrmsw",e900078, 3, (RR, RIWR, I7), iwmmxt_textrm),
19581 cCE("tinsrb", e600010, 3, (RIWR, RR, I7), iwmmxt_tinsr),
19582 cCE("tinsrh", e600050, 3, (RIWR, RR, I7), iwmmxt_tinsr),
19583 cCE("tinsrw", e600090, 3, (RIWR, RR, I7), iwmmxt_tinsr),
19584 cCE("tmcr", e000110, 2, (RIWC_RIWG, RR), rn_rd),
19585 cCE("tmcrr", c400000, 3, (RIWR, RR, RR), rm_rd_rn),
19586 cCE("tmia", e200010, 3, (RIWR, RR, RR), iwmmxt_tmia),
19587 cCE("tmiaph", e280010, 3, (RIWR, RR, RR), iwmmxt_tmia),
19588 cCE("tmiabb", e2c0010, 3, (RIWR, RR, RR), iwmmxt_tmia),
19589 cCE("tmiabt", e2d0010, 3, (RIWR, RR, RR), iwmmxt_tmia),
19590 cCE("tmiatb", e2e0010, 3, (RIWR, RR, RR), iwmmxt_tmia),
19591 cCE("tmiatt", e2f0010, 3, (RIWR, RR, RR), iwmmxt_tmia),
19592 cCE("tmovmskb",e100030, 2, (RR, RIWR), rd_rn),
19593 cCE("tmovmskh",e500030, 2, (RR, RIWR), rd_rn),
19594 cCE("tmovmskw",e900030, 2, (RR, RIWR), rd_rn),
19595 cCE("tmrc", e100110, 2, (RR, RIWC_RIWG), rd_rn),
19596 cCE("tmrrc", c500000, 3, (RR, RR, RIWR), rd_rn_rm),
19597 cCE("torcb", e13f150, 1, (RR), iwmmxt_tandorc),
19598 cCE("torch", e53f150, 1, (RR), iwmmxt_tandorc),
19599 cCE("torcw", e93f150, 1, (RR), iwmmxt_tandorc),
19600 cCE("waccb", e0001c0, 2, (RIWR, RIWR), rd_rn),
19601 cCE("wacch", e4001c0, 2, (RIWR, RIWR), rd_rn),
19602 cCE("waccw", e8001c0, 2, (RIWR, RIWR), rd_rn),
19603 cCE("waddbss", e300180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19604 cCE("waddb", e000180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19605 cCE("waddbus", e100180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19606 cCE("waddhss", e700180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19607 cCE("waddh", e400180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19608 cCE("waddhus", e500180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19609 cCE("waddwss", eb00180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19610 cCE("waddw", e800180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19611 cCE("waddwus", e900180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19612 cCE("waligni", e000020, 4, (RIWR, RIWR, RIWR, I7), iwmmxt_waligni),
19613 cCE("walignr0",e800020, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19614 cCE("walignr1",e900020, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19615 cCE("walignr2",ea00020, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19616 cCE("walignr3",eb00020, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19617 cCE("wand", e200000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19618 cCE("wandn", e300000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19619 cCE("wavg2b", e800000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19620 cCE("wavg2br", e900000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19621 cCE("wavg2h", ec00000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19622 cCE("wavg2hr", ed00000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19623 cCE("wcmpeqb", e000060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19624 cCE("wcmpeqh", e400060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19625 cCE("wcmpeqw", e800060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19626 cCE("wcmpgtub",e100060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19627 cCE("wcmpgtuh",e500060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19628 cCE("wcmpgtuw",e900060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19629 cCE("wcmpgtsb",e300060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19630 cCE("wcmpgtsh",e700060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19631 cCE("wcmpgtsw",eb00060, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19632 cCE("wldrb", c100000, 2, (RIWR, ADDR), iwmmxt_wldstbh),
19633 cCE("wldrh", c500000, 2, (RIWR, ADDR), iwmmxt_wldstbh),
19634 cCE("wldrw", c100100, 2, (RIWR_RIWC, ADDR), iwmmxt_wldstw),
19635 cCE("wldrd", c500100, 2, (RIWR, ADDR), iwmmxt_wldstd),
19636 cCE("wmacs", e600100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19637 cCE("wmacsz", e700100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19638 cCE("wmacu", e400100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19639 cCE("wmacuz", e500100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19640 cCE("wmadds", ea00100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19641 cCE("wmaddu", e800100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19642 cCE("wmaxsb", e200160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19643 cCE("wmaxsh", e600160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19644 cCE("wmaxsw", ea00160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19645 cCE("wmaxub", e000160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19646 cCE("wmaxuh", e400160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19647 cCE("wmaxuw", e800160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19648 cCE("wminsb", e300160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19649 cCE("wminsh", e700160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19650 cCE("wminsw", eb00160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19651 cCE("wminub", e100160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19652 cCE("wminuh", e500160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19653 cCE("wminuw", e900160, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19654 cCE("wmov", e000000, 2, (RIWR, RIWR), iwmmxt_wmov),
19655 cCE("wmulsm", e300100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19656 cCE("wmulsl", e200100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19657 cCE("wmulum", e100100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19658 cCE("wmulul", e000100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19659 cCE("wor", e000000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19660 cCE("wpackhss",e700080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19661 cCE("wpackhus",e500080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19662 cCE("wpackwss",eb00080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19663 cCE("wpackwus",e900080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19664 cCE("wpackdss",ef00080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19665 cCE("wpackdus",ed00080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19666 cCE("wrorh", e700040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19667 cCE("wrorhg", e700148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19668 cCE("wrorw", eb00040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19669 cCE("wrorwg", eb00148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19670 cCE("wrord", ef00040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19671 cCE("wrordg", ef00148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19672 cCE("wsadb", e000120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19673 cCE("wsadbz", e100120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19674 cCE("wsadh", e400120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19675 cCE("wsadhz", e500120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19676 cCE("wshufh", e0001e0, 3, (RIWR, RIWR, I255), iwmmxt_wshufh),
19677 cCE("wsllh", e500040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19678 cCE("wsllhg", e500148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19679 cCE("wsllw", e900040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19680 cCE("wsllwg", e900148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19681 cCE("wslld", ed00040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19682 cCE("wslldg", ed00148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19683 cCE("wsrah", e400040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19684 cCE("wsrahg", e400148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19685 cCE("wsraw", e800040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19686 cCE("wsrawg", e800148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19687 cCE("wsrad", ec00040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19688 cCE("wsradg", ec00148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19689 cCE("wsrlh", e600040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19690 cCE("wsrlhg", e600148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19691 cCE("wsrlw", ea00040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19692 cCE("wsrlwg", ea00148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19693 cCE("wsrld", ee00040, 3, (RIWR, RIWR, RIWR_I32z),iwmmxt_wrwrwr_or_imm5),
19694 cCE("wsrldg", ee00148, 3, (RIWR, RIWR, RIWG), rd_rn_rm),
19695 cCE("wstrb", c000000, 2, (RIWR, ADDR), iwmmxt_wldstbh),
19696 cCE("wstrh", c400000, 2, (RIWR, ADDR), iwmmxt_wldstbh),
19697 cCE("wstrw", c000100, 2, (RIWR_RIWC, ADDR), iwmmxt_wldstw),
19698 cCE("wstrd", c400100, 2, (RIWR, ADDR), iwmmxt_wldstd),
19699 cCE("wsubbss", e3001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19700 cCE("wsubb", e0001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19701 cCE("wsubbus", e1001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19702 cCE("wsubhss", e7001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19703 cCE("wsubh", e4001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19704 cCE("wsubhus", e5001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19705 cCE("wsubwss", eb001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19706 cCE("wsubw", e8001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19707 cCE("wsubwus", e9001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19708 cCE("wunpckehub",e0000c0, 2, (RIWR, RIWR), rd_rn),
19709 cCE("wunpckehuh",e4000c0, 2, (RIWR, RIWR), rd_rn),
19710 cCE("wunpckehuw",e8000c0, 2, (RIWR, RIWR), rd_rn),
19711 cCE("wunpckehsb",e2000c0, 2, (RIWR, RIWR), rd_rn),
19712 cCE("wunpckehsh",e6000c0, 2, (RIWR, RIWR), rd_rn),
19713 cCE("wunpckehsw",ea000c0, 2, (RIWR, RIWR), rd_rn),
19714 cCE("wunpckihb", e1000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19715 cCE("wunpckihh", e5000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19716 cCE("wunpckihw", e9000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19717 cCE("wunpckelub",e0000e0, 2, (RIWR, RIWR), rd_rn),
19718 cCE("wunpckeluh",e4000e0, 2, (RIWR, RIWR), rd_rn),
19719 cCE("wunpckeluw",e8000e0, 2, (RIWR, RIWR), rd_rn),
19720 cCE("wunpckelsb",e2000e0, 2, (RIWR, RIWR), rd_rn),
19721 cCE("wunpckelsh",e6000e0, 2, (RIWR, RIWR), rd_rn),
19722 cCE("wunpckelsw",ea000e0, 2, (RIWR, RIWR), rd_rn),
19723 cCE("wunpckilb", e1000e0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19724 cCE("wunpckilh", e5000e0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19725 cCE("wunpckilw", e9000e0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19726 cCE("wxor", e100000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19727 cCE("wzero", e300000, 1, (RIWR), iwmmxt_wzero),
19728
19729 #undef ARM_VARIANT
19730 #define ARM_VARIANT & arm_cext_iwmmxt2 /* Intel Wireless MMX technology, version 2. */
19731
19732 cCE("torvscb", e12f190, 1, (RR), iwmmxt_tandorc),
19733 cCE("torvsch", e52f190, 1, (RR), iwmmxt_tandorc),
19734 cCE("torvscw", e92f190, 1, (RR), iwmmxt_tandorc),
19735 cCE("wabsb", e2001c0, 2, (RIWR, RIWR), rd_rn),
19736 cCE("wabsh", e6001c0, 2, (RIWR, RIWR), rd_rn),
19737 cCE("wabsw", ea001c0, 2, (RIWR, RIWR), rd_rn),
19738 cCE("wabsdiffb", e1001c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19739 cCE("wabsdiffh", e5001c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19740 cCE("wabsdiffw", e9001c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19741 cCE("waddbhusl", e2001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19742 cCE("waddbhusm", e6001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19743 cCE("waddhc", e600180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19744 cCE("waddwc", ea00180, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19745 cCE("waddsubhx", ea001a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19746 cCE("wavg4", e400000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19747 cCE("wavg4r", e500000, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19748 cCE("wmaddsn", ee00100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19749 cCE("wmaddsx", eb00100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19750 cCE("wmaddun", ec00100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19751 cCE("wmaddux", e900100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19752 cCE("wmerge", e000080, 4, (RIWR, RIWR, RIWR, I7), iwmmxt_wmerge),
19753 cCE("wmiabb", e0000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19754 cCE("wmiabt", e1000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19755 cCE("wmiatb", e2000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19756 cCE("wmiatt", e3000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19757 cCE("wmiabbn", e4000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19758 cCE("wmiabtn", e5000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19759 cCE("wmiatbn", e6000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19760 cCE("wmiattn", e7000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19761 cCE("wmiawbb", e800120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19762 cCE("wmiawbt", e900120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19763 cCE("wmiawtb", ea00120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19764 cCE("wmiawtt", eb00120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19765 cCE("wmiawbbn", ec00120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19766 cCE("wmiawbtn", ed00120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19767 cCE("wmiawtbn", ee00120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19768 cCE("wmiawttn", ef00120, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19769 cCE("wmulsmr", ef00100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19770 cCE("wmulumr", ed00100, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19771 cCE("wmulwumr", ec000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19772 cCE("wmulwsmr", ee000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19773 cCE("wmulwum", ed000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19774 cCE("wmulwsm", ef000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19775 cCE("wmulwl", eb000c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19776 cCE("wqmiabb", e8000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19777 cCE("wqmiabt", e9000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19778 cCE("wqmiatb", ea000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19779 cCE("wqmiatt", eb000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19780 cCE("wqmiabbn", ec000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19781 cCE("wqmiabtn", ed000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19782 cCE("wqmiatbn", ee000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19783 cCE("wqmiattn", ef000a0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19784 cCE("wqmulm", e100080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19785 cCE("wqmulmr", e300080, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19786 cCE("wqmulwm", ec000e0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19787 cCE("wqmulwmr", ee000e0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19788 cCE("wsubaddhx", ed001c0, 3, (RIWR, RIWR, RIWR), rd_rn_rm),
19789
19790 #undef ARM_VARIANT
19791 #define ARM_VARIANT & arm_cext_maverick /* Cirrus Maverick instructions. */
19792
19793 cCE("cfldrs", c100400, 2, (RMF, ADDRGLDC), rd_cpaddr),
19794 cCE("cfldrd", c500400, 2, (RMD, ADDRGLDC), rd_cpaddr),
19795 cCE("cfldr32", c100500, 2, (RMFX, ADDRGLDC), rd_cpaddr),
19796 cCE("cfldr64", c500500, 2, (RMDX, ADDRGLDC), rd_cpaddr),
19797 cCE("cfstrs", c000400, 2, (RMF, ADDRGLDC), rd_cpaddr),
19798 cCE("cfstrd", c400400, 2, (RMD, ADDRGLDC), rd_cpaddr),
19799 cCE("cfstr32", c000500, 2, (RMFX, ADDRGLDC), rd_cpaddr),
19800 cCE("cfstr64", c400500, 2, (RMDX, ADDRGLDC), rd_cpaddr),
19801 cCE("cfmvsr", e000450, 2, (RMF, RR), rn_rd),
19802 cCE("cfmvrs", e100450, 2, (RR, RMF), rd_rn),
19803 cCE("cfmvdlr", e000410, 2, (RMD, RR), rn_rd),
19804 cCE("cfmvrdl", e100410, 2, (RR, RMD), rd_rn),
19805 cCE("cfmvdhr", e000430, 2, (RMD, RR), rn_rd),
19806 cCE("cfmvrdh", e100430, 2, (RR, RMD), rd_rn),
19807 cCE("cfmv64lr",e000510, 2, (RMDX, RR), rn_rd),
19808 cCE("cfmvr64l",e100510, 2, (RR, RMDX), rd_rn),
19809 cCE("cfmv64hr",e000530, 2, (RMDX, RR), rn_rd),
19810 cCE("cfmvr64h",e100530, 2, (RR, RMDX), rd_rn),
19811 cCE("cfmval32",e200440, 2, (RMAX, RMFX), rd_rn),
19812 cCE("cfmv32al",e100440, 2, (RMFX, RMAX), rd_rn),
19813 cCE("cfmvam32",e200460, 2, (RMAX, RMFX), rd_rn),
19814 cCE("cfmv32am",e100460, 2, (RMFX, RMAX), rd_rn),
19815 cCE("cfmvah32",e200480, 2, (RMAX, RMFX), rd_rn),
19816 cCE("cfmv32ah",e100480, 2, (RMFX, RMAX), rd_rn),
19817 cCE("cfmva32", e2004a0, 2, (RMAX, RMFX), rd_rn),
19818 cCE("cfmv32a", e1004a0, 2, (RMFX, RMAX), rd_rn),
19819 cCE("cfmva64", e2004c0, 2, (RMAX, RMDX), rd_rn),
19820 cCE("cfmv64a", e1004c0, 2, (RMDX, RMAX), rd_rn),
19821 cCE("cfmvsc32",e2004e0, 2, (RMDS, RMDX), mav_dspsc),
19822 cCE("cfmv32sc",e1004e0, 2, (RMDX, RMDS), rd),
19823 cCE("cfcpys", e000400, 2, (RMF, RMF), rd_rn),
19824 cCE("cfcpyd", e000420, 2, (RMD, RMD), rd_rn),
19825 cCE("cfcvtsd", e000460, 2, (RMD, RMF), rd_rn),
19826 cCE("cfcvtds", e000440, 2, (RMF, RMD), rd_rn),
19827 cCE("cfcvt32s",e000480, 2, (RMF, RMFX), rd_rn),
19828 cCE("cfcvt32d",e0004a0, 2, (RMD, RMFX), rd_rn),
19829 cCE("cfcvt64s",e0004c0, 2, (RMF, RMDX), rd_rn),
19830 cCE("cfcvt64d",e0004e0, 2, (RMD, RMDX), rd_rn),
19831 cCE("cfcvts32",e100580, 2, (RMFX, RMF), rd_rn),
19832 cCE("cfcvtd32",e1005a0, 2, (RMFX, RMD), rd_rn),
19833 cCE("cftruncs32",e1005c0, 2, (RMFX, RMF), rd_rn),
19834 cCE("cftruncd32",e1005e0, 2, (RMFX, RMD), rd_rn),
19835 cCE("cfrshl32",e000550, 3, (RMFX, RMFX, RR), mav_triple),
19836 cCE("cfrshl64",e000570, 3, (RMDX, RMDX, RR), mav_triple),
19837 cCE("cfsh32", e000500, 3, (RMFX, RMFX, I63s), mav_shift),
19838 cCE("cfsh64", e200500, 3, (RMDX, RMDX, I63s), mav_shift),
19839 cCE("cfcmps", e100490, 3, (RR, RMF, RMF), rd_rn_rm),
19840 cCE("cfcmpd", e1004b0, 3, (RR, RMD, RMD), rd_rn_rm),
19841 cCE("cfcmp32", e100590, 3, (RR, RMFX, RMFX), rd_rn_rm),
19842 cCE("cfcmp64", e1005b0, 3, (RR, RMDX, RMDX), rd_rn_rm),
19843 cCE("cfabss", e300400, 2, (RMF, RMF), rd_rn),
19844 cCE("cfabsd", e300420, 2, (RMD, RMD), rd_rn),
19845 cCE("cfnegs", e300440, 2, (RMF, RMF), rd_rn),
19846 cCE("cfnegd", e300460, 2, (RMD, RMD), rd_rn),
19847 cCE("cfadds", e300480, 3, (RMF, RMF, RMF), rd_rn_rm),
19848 cCE("cfaddd", e3004a0, 3, (RMD, RMD, RMD), rd_rn_rm),
19849 cCE("cfsubs", e3004c0, 3, (RMF, RMF, RMF), rd_rn_rm),
19850 cCE("cfsubd", e3004e0, 3, (RMD, RMD, RMD), rd_rn_rm),
19851 cCE("cfmuls", e100400, 3, (RMF, RMF, RMF), rd_rn_rm),
19852 cCE("cfmuld", e100420, 3, (RMD, RMD, RMD), rd_rn_rm),
19853 cCE("cfabs32", e300500, 2, (RMFX, RMFX), rd_rn),
19854 cCE("cfabs64", e300520, 2, (RMDX, RMDX), rd_rn),
19855 cCE("cfneg32", e300540, 2, (RMFX, RMFX), rd_rn),
19856 cCE("cfneg64", e300560, 2, (RMDX, RMDX), rd_rn),
19857 cCE("cfadd32", e300580, 3, (RMFX, RMFX, RMFX), rd_rn_rm),
19858 cCE("cfadd64", e3005a0, 3, (RMDX, RMDX, RMDX), rd_rn_rm),
19859 cCE("cfsub32", e3005c0, 3, (RMFX, RMFX, RMFX), rd_rn_rm),
19860 cCE("cfsub64", e3005e0, 3, (RMDX, RMDX, RMDX), rd_rn_rm),
19861 cCE("cfmul32", e100500, 3, (RMFX, RMFX, RMFX), rd_rn_rm),
19862 cCE("cfmul64", e100520, 3, (RMDX, RMDX, RMDX), rd_rn_rm),
19863 cCE("cfmac32", e100540, 3, (RMFX, RMFX, RMFX), rd_rn_rm),
19864 cCE("cfmsc32", e100560, 3, (RMFX, RMFX, RMFX), rd_rn_rm),
19865 cCE("cfmadd32",e000600, 4, (RMAX, RMFX, RMFX, RMFX), mav_quad),
19866 cCE("cfmsub32",e100600, 4, (RMAX, RMFX, RMFX, RMFX), mav_quad),
19867 cCE("cfmadda32", e200600, 4, (RMAX, RMAX, RMFX, RMFX), mav_quad),
19868 cCE("cfmsuba32", e300600, 4, (RMAX, RMAX, RMFX, RMFX), mav_quad),
19869 };
19870 #undef ARM_VARIANT
19871 #undef THUMB_VARIANT
19872 #undef TCE
19873 #undef TUE
19874 #undef TUF
19875 #undef TCC
19876 #undef cCE
19877 #undef cCL
19878 #undef C3E
19879 #undef CE
19880 #undef CM
19881 #undef UE
19882 #undef UF
19883 #undef UT
19884 #undef NUF
19885 #undef nUF
19886 #undef NCE
19887 #undef nCE
19888 #undef OPS0
19889 #undef OPS1
19890 #undef OPS2
19891 #undef OPS3
19892 #undef OPS4
19893 #undef OPS5
19894 #undef OPS6
19895 #undef do_0
19896 \f
19897 /* MD interface: bits in the object file. */
19898
19899 /* Turn an integer of n bytes (in val) into a stream of bytes appropriate
19900 for use in the a.out file, and stores them in the array pointed to by buf.
19901 This knows about the endian-ness of the target machine and does
19902 THE RIGHT THING, whatever it is. Possible values for n are 1 (byte)
19903 2 (short) and 4 (long) Floating numbers are put out as a series of
19904 LITTLENUMS (shorts, here at least). */
19905
19906 void
19907 md_number_to_chars (char * buf, valueT val, int n)
19908 {
19909 if (target_big_endian)
19910 number_to_chars_bigendian (buf, val, n);
19911 else
19912 number_to_chars_littleendian (buf, val, n);
19913 }
19914
19915 static valueT
19916 md_chars_to_number (char * buf, int n)
19917 {
19918 valueT result = 0;
19919 unsigned char * where = (unsigned char *) buf;
19920
19921 if (target_big_endian)
19922 {
19923 while (n--)
19924 {
19925 result <<= 8;
19926 result |= (*where++ & 255);
19927 }
19928 }
19929 else
19930 {
19931 while (n--)
19932 {
19933 result <<= 8;
19934 result |= (where[n] & 255);
19935 }
19936 }
19937
19938 return result;
19939 }
19940
19941 /* MD interface: Sections. */
19942
19943 /* Calculate the maximum variable size (i.e., excluding fr_fix)
19944 that an rs_machine_dependent frag may reach. */
19945
19946 unsigned int
19947 arm_frag_max_var (fragS *fragp)
19948 {
19949 /* We only use rs_machine_dependent for variable-size Thumb instructions,
19950 which are either THUMB_SIZE (2) or INSN_SIZE (4).
19951
19952 Note that we generate relaxable instructions even for cases that don't
19953 really need it, like an immediate that's a trivial constant. So we're
19954 overestimating the instruction size for some of those cases. Rather
19955 than putting more intelligence here, it would probably be better to
19956 avoid generating a relaxation frag in the first place when it can be
19957 determined up front that a short instruction will suffice. */
19958
19959 gas_assert (fragp->fr_type == rs_machine_dependent);
19960 return INSN_SIZE;
19961 }
19962
19963 /* Estimate the size of a frag before relaxing. Assume everything fits in
19964 2 bytes. */
19965
19966 int
19967 md_estimate_size_before_relax (fragS * fragp,
19968 segT segtype ATTRIBUTE_UNUSED)
19969 {
19970 fragp->fr_var = 2;
19971 return 2;
19972 }
19973
19974 /* Convert a machine dependent frag. */
19975
19976 void
19977 md_convert_frag (bfd *abfd, segT asec ATTRIBUTE_UNUSED, fragS *fragp)
19978 {
19979 unsigned long insn;
19980 unsigned long old_op;
19981 char *buf;
19982 expressionS exp;
19983 fixS *fixp;
19984 int reloc_type;
19985 int pc_rel;
19986 int opcode;
19987
19988 buf = fragp->fr_literal + fragp->fr_fix;
19989
19990 old_op = bfd_get_16(abfd, buf);
19991 if (fragp->fr_symbol)
19992 {
19993 exp.X_op = O_symbol;
19994 exp.X_add_symbol = fragp->fr_symbol;
19995 }
19996 else
19997 {
19998 exp.X_op = O_constant;
19999 }
20000 exp.X_add_number = fragp->fr_offset;
20001 opcode = fragp->fr_subtype;
20002 switch (opcode)
20003 {
20004 case T_MNEM_ldr_pc:
20005 case T_MNEM_ldr_pc2:
20006 case T_MNEM_ldr_sp:
20007 case T_MNEM_str_sp:
20008 case T_MNEM_ldr:
20009 case T_MNEM_ldrb:
20010 case T_MNEM_ldrh:
20011 case T_MNEM_str:
20012 case T_MNEM_strb:
20013 case T_MNEM_strh:
20014 if (fragp->fr_var == 4)
20015 {
20016 insn = THUMB_OP32 (opcode);
20017 if ((old_op >> 12) == 4 || (old_op >> 12) == 9)
20018 {
20019 insn |= (old_op & 0x700) << 4;
20020 }
20021 else
20022 {
20023 insn |= (old_op & 7) << 12;
20024 insn |= (old_op & 0x38) << 13;
20025 }
20026 insn |= 0x00000c00;
20027 put_thumb32_insn (buf, insn);
20028 reloc_type = BFD_RELOC_ARM_T32_OFFSET_IMM;
20029 }
20030 else
20031 {
20032 reloc_type = BFD_RELOC_ARM_THUMB_OFFSET;
20033 }
20034 pc_rel = (opcode == T_MNEM_ldr_pc2);
20035 break;
20036 case T_MNEM_adr:
20037 if (fragp->fr_var == 4)
20038 {
20039 insn = THUMB_OP32 (opcode);
20040 insn |= (old_op & 0xf0) << 4;
20041 put_thumb32_insn (buf, insn);
20042 reloc_type = BFD_RELOC_ARM_T32_ADD_PC12;
20043 }
20044 else
20045 {
20046 reloc_type = BFD_RELOC_ARM_THUMB_ADD;
20047 exp.X_add_number -= 4;
20048 }
20049 pc_rel = 1;
20050 break;
20051 case T_MNEM_mov:
20052 case T_MNEM_movs:
20053 case T_MNEM_cmp:
20054 case T_MNEM_cmn:
20055 if (fragp->fr_var == 4)
20056 {
20057 int r0off = (opcode == T_MNEM_mov
20058 || opcode == T_MNEM_movs) ? 0 : 8;
20059 insn = THUMB_OP32 (opcode);
20060 insn = (insn & 0xe1ffffff) | 0x10000000;
20061 insn |= (old_op & 0x700) << r0off;
20062 put_thumb32_insn (buf, insn);
20063 reloc_type = BFD_RELOC_ARM_T32_IMMEDIATE;
20064 }
20065 else
20066 {
20067 reloc_type = BFD_RELOC_ARM_THUMB_IMM;
20068 }
20069 pc_rel = 0;
20070 break;
20071 case T_MNEM_b:
20072 if (fragp->fr_var == 4)
20073 {
20074 insn = THUMB_OP32(opcode);
20075 put_thumb32_insn (buf, insn);
20076 reloc_type = BFD_RELOC_THUMB_PCREL_BRANCH25;
20077 }
20078 else
20079 reloc_type = BFD_RELOC_THUMB_PCREL_BRANCH12;
20080 pc_rel = 1;
20081 break;
20082 case T_MNEM_bcond:
20083 if (fragp->fr_var == 4)
20084 {
20085 insn = THUMB_OP32(opcode);
20086 insn |= (old_op & 0xf00) << 14;
20087 put_thumb32_insn (buf, insn);
20088 reloc_type = BFD_RELOC_THUMB_PCREL_BRANCH20;
20089 }
20090 else
20091 reloc_type = BFD_RELOC_THUMB_PCREL_BRANCH9;
20092 pc_rel = 1;
20093 break;
20094 case T_MNEM_add_sp:
20095 case T_MNEM_add_pc:
20096 case T_MNEM_inc_sp:
20097 case T_MNEM_dec_sp:
20098 if (fragp->fr_var == 4)
20099 {
20100 /* ??? Choose between add and addw. */
20101 insn = THUMB_OP32 (opcode);
20102 insn |= (old_op & 0xf0) << 4;
20103 put_thumb32_insn (buf, insn);
20104 if (opcode == T_MNEM_add_pc)
20105 reloc_type = BFD_RELOC_ARM_T32_IMM12;
20106 else
20107 reloc_type = BFD_RELOC_ARM_T32_ADD_IMM;
20108 }
20109 else
20110 reloc_type = BFD_RELOC_ARM_THUMB_ADD;
20111 pc_rel = 0;
20112 break;
20113
20114 case T_MNEM_addi:
20115 case T_MNEM_addis:
20116 case T_MNEM_subi:
20117 case T_MNEM_subis:
20118 if (fragp->fr_var == 4)
20119 {
20120 insn = THUMB_OP32 (opcode);
20121 insn |= (old_op & 0xf0) << 4;
20122 insn |= (old_op & 0xf) << 16;
20123 put_thumb32_insn (buf, insn);
20124 if (insn & (1 << 20))
20125 reloc_type = BFD_RELOC_ARM_T32_ADD_IMM;
20126 else
20127 reloc_type = BFD_RELOC_ARM_T32_IMMEDIATE;
20128 }
20129 else
20130 reloc_type = BFD_RELOC_ARM_THUMB_ADD;
20131 pc_rel = 0;
20132 break;
20133 default:
20134 abort ();
20135 }
20136 fixp = fix_new_exp (fragp, fragp->fr_fix, fragp->fr_var, &exp, pc_rel,
20137 (enum bfd_reloc_code_real) reloc_type);
20138 fixp->fx_file = fragp->fr_file;
20139 fixp->fx_line = fragp->fr_line;
20140 fragp->fr_fix += fragp->fr_var;
20141 }
20142
20143 /* Return the size of a relaxable immediate operand instruction.
20144 SHIFT and SIZE specify the form of the allowable immediate. */
20145 static int
20146 relax_immediate (fragS *fragp, int size, int shift)
20147 {
20148 offsetT offset;
20149 offsetT mask;
20150 offsetT low;
20151
20152 /* ??? Should be able to do better than this. */
20153 if (fragp->fr_symbol)
20154 return 4;
20155
20156 low = (1 << shift) - 1;
20157 mask = (1 << (shift + size)) - (1 << shift);
20158 offset = fragp->fr_offset;
20159 /* Force misaligned offsets to 32-bit variant. */
20160 if (offset & low)
20161 return 4;
20162 if (offset & ~mask)
20163 return 4;
20164 return 2;
20165 }
20166
20167 /* Get the address of a symbol during relaxation. */
20168 static addressT
20169 relaxed_symbol_addr (fragS *fragp, long stretch)
20170 {
20171 fragS *sym_frag;
20172 addressT addr;
20173 symbolS *sym;
20174
20175 sym = fragp->fr_symbol;
20176 sym_frag = symbol_get_frag (sym);
20177 know (S_GET_SEGMENT (sym) != absolute_section
20178 || sym_frag == &zero_address_frag);
20179 addr = S_GET_VALUE (sym) + fragp->fr_offset;
20180
20181 /* If frag has yet to be reached on this pass, assume it will
20182 move by STRETCH just as we did. If this is not so, it will
20183 be because some frag between grows, and that will force
20184 another pass. */
20185
20186 if (stretch != 0
20187 && sym_frag->relax_marker != fragp->relax_marker)
20188 {
20189 fragS *f;
20190
20191 /* Adjust stretch for any alignment frag. Note that if have
20192 been expanding the earlier code, the symbol may be
20193 defined in what appears to be an earlier frag. FIXME:
20194 This doesn't handle the fr_subtype field, which specifies
20195 a maximum number of bytes to skip when doing an
20196 alignment. */
20197 for (f = fragp; f != NULL && f != sym_frag; f = f->fr_next)
20198 {
20199 if (f->fr_type == rs_align || f->fr_type == rs_align_code)
20200 {
20201 if (stretch < 0)
20202 stretch = - ((- stretch)
20203 & ~ ((1 << (int) f->fr_offset) - 1));
20204 else
20205 stretch &= ~ ((1 << (int) f->fr_offset) - 1);
20206 if (stretch == 0)
20207 break;
20208 }
20209 }
20210 if (f != NULL)
20211 addr += stretch;
20212 }
20213
20214 return addr;
20215 }
20216
20217 /* Return the size of a relaxable adr pseudo-instruction or PC-relative
20218 load. */
20219 static int
20220 relax_adr (fragS *fragp, asection *sec, long stretch)
20221 {
20222 addressT addr;
20223 offsetT val;
20224
20225 /* Assume worst case for symbols not known to be in the same section. */
20226 if (fragp->fr_symbol == NULL
20227 || !S_IS_DEFINED (fragp->fr_symbol)
20228 || sec != S_GET_SEGMENT (fragp->fr_symbol)
20229 || S_IS_WEAK (fragp->fr_symbol))
20230 return 4;
20231
20232 val = relaxed_symbol_addr (fragp, stretch);
20233 addr = fragp->fr_address + fragp->fr_fix;
20234 addr = (addr + 4) & ~3;
20235 /* Force misaligned targets to 32-bit variant. */
20236 if (val & 3)
20237 return 4;
20238 val -= addr;
20239 if (val < 0 || val > 1020)
20240 return 4;
20241 return 2;
20242 }
20243
20244 /* Return the size of a relaxable add/sub immediate instruction. */
20245 static int
20246 relax_addsub (fragS *fragp, asection *sec)
20247 {
20248 char *buf;
20249 int op;
20250
20251 buf = fragp->fr_literal + fragp->fr_fix;
20252 op = bfd_get_16(sec->owner, buf);
20253 if ((op & 0xf) == ((op >> 4) & 0xf))
20254 return relax_immediate (fragp, 8, 0);
20255 else
20256 return relax_immediate (fragp, 3, 0);
20257 }
20258
20259 /* Return TRUE iff the definition of symbol S could be pre-empted
20260 (overridden) at link or load time. */
20261 static bfd_boolean
20262 symbol_preemptible (symbolS *s)
20263 {
20264 /* Weak symbols can always be pre-empted. */
20265 if (S_IS_WEAK (s))
20266 return TRUE;
20267
20268 /* Non-global symbols cannot be pre-empted. */
20269 if (! S_IS_EXTERNAL (s))
20270 return FALSE;
20271
20272 #ifdef OBJ_ELF
20273 /* In ELF, a global symbol can be marked protected, or private. In that
20274 case it can't be pre-empted (other definitions in the same link unit
20275 would violate the ODR). */
20276 if (ELF_ST_VISIBILITY (S_GET_OTHER (s)) > STV_DEFAULT)
20277 return FALSE;
20278 #endif
20279
20280 /* Other global symbols might be pre-empted. */
20281 return TRUE;
20282 }
20283
20284 /* Return the size of a relaxable branch instruction. BITS is the
20285 size of the offset field in the narrow instruction. */
20286
20287 static int
20288 relax_branch (fragS *fragp, asection *sec, int bits, long stretch)
20289 {
20290 addressT addr;
20291 offsetT val;
20292 offsetT limit;
20293
20294 /* Assume worst case for symbols not known to be in the same section. */
20295 if (!S_IS_DEFINED (fragp->fr_symbol)
20296 || sec != S_GET_SEGMENT (fragp->fr_symbol)
20297 || S_IS_WEAK (fragp->fr_symbol))
20298 return 4;
20299
20300 #ifdef OBJ_ELF
20301 /* A branch to a function in ARM state will require interworking. */
20302 if (S_IS_DEFINED (fragp->fr_symbol)
20303 && ARM_IS_FUNC (fragp->fr_symbol))
20304 return 4;
20305 #endif
20306
20307 if (symbol_preemptible (fragp->fr_symbol))
20308 return 4;
20309
20310 val = relaxed_symbol_addr (fragp, stretch);
20311 addr = fragp->fr_address + fragp->fr_fix + 4;
20312 val -= addr;
20313
20314 /* Offset is a signed value *2 */
20315 limit = 1 << bits;
20316 if (val >= limit || val < -limit)
20317 return 4;
20318 return 2;
20319 }
20320
20321
20322 /* Relax a machine dependent frag. This returns the amount by which
20323 the current size of the frag should change. */
20324
20325 int
20326 arm_relax_frag (asection *sec, fragS *fragp, long stretch)
20327 {
20328 int oldsize;
20329 int newsize;
20330
20331 oldsize = fragp->fr_var;
20332 switch (fragp->fr_subtype)
20333 {
20334 case T_MNEM_ldr_pc2:
20335 newsize = relax_adr (fragp, sec, stretch);
20336 break;
20337 case T_MNEM_ldr_pc:
20338 case T_MNEM_ldr_sp:
20339 case T_MNEM_str_sp:
20340 newsize = relax_immediate (fragp, 8, 2);
20341 break;
20342 case T_MNEM_ldr:
20343 case T_MNEM_str:
20344 newsize = relax_immediate (fragp, 5, 2);
20345 break;
20346 case T_MNEM_ldrh:
20347 case T_MNEM_strh:
20348 newsize = relax_immediate (fragp, 5, 1);
20349 break;
20350 case T_MNEM_ldrb:
20351 case T_MNEM_strb:
20352 newsize = relax_immediate (fragp, 5, 0);
20353 break;
20354 case T_MNEM_adr:
20355 newsize = relax_adr (fragp, sec, stretch);
20356 break;
20357 case T_MNEM_mov:
20358 case T_MNEM_movs:
20359 case T_MNEM_cmp:
20360 case T_MNEM_cmn:
20361 newsize = relax_immediate (fragp, 8, 0);
20362 break;
20363 case T_MNEM_b:
20364 newsize = relax_branch (fragp, sec, 11, stretch);
20365 break;
20366 case T_MNEM_bcond:
20367 newsize = relax_branch (fragp, sec, 8, stretch);
20368 break;
20369 case T_MNEM_add_sp:
20370 case T_MNEM_add_pc:
20371 newsize = relax_immediate (fragp, 8, 2);
20372 break;
20373 case T_MNEM_inc_sp:
20374 case T_MNEM_dec_sp:
20375 newsize = relax_immediate (fragp, 7, 2);
20376 break;
20377 case T_MNEM_addi:
20378 case T_MNEM_addis:
20379 case T_MNEM_subi:
20380 case T_MNEM_subis:
20381 newsize = relax_addsub (fragp, sec);
20382 break;
20383 default:
20384 abort ();
20385 }
20386
20387 fragp->fr_var = newsize;
20388 /* Freeze wide instructions that are at or before the same location as
20389 in the previous pass. This avoids infinite loops.
20390 Don't freeze them unconditionally because targets may be artificially
20391 misaligned by the expansion of preceding frags. */
20392 if (stretch <= 0 && newsize > 2)
20393 {
20394 md_convert_frag (sec->owner, sec, fragp);
20395 frag_wane (fragp);
20396 }
20397
20398 return newsize - oldsize;
20399 }
20400
20401 /* Round up a section size to the appropriate boundary. */
20402
20403 valueT
20404 md_section_align (segT segment ATTRIBUTE_UNUSED,
20405 valueT size)
20406 {
20407 #if (defined (OBJ_AOUT) || defined (OBJ_MAYBE_AOUT))
20408 if (OUTPUT_FLAVOR == bfd_target_aout_flavour)
20409 {
20410 /* For a.out, force the section size to be aligned. If we don't do
20411 this, BFD will align it for us, but it will not write out the
20412 final bytes of the section. This may be a bug in BFD, but it is
20413 easier to fix it here since that is how the other a.out targets
20414 work. */
20415 int align;
20416
20417 align = bfd_get_section_alignment (stdoutput, segment);
20418 size = ((size + (1 << align) - 1) & ((valueT) -1 << align));
20419 }
20420 #endif
20421
20422 return size;
20423 }
20424
20425 /* This is called from HANDLE_ALIGN in write.c. Fill in the contents
20426 of an rs_align_code fragment. */
20427
20428 void
20429 arm_handle_align (fragS * fragP)
20430 {
20431 static char const arm_noop[2][2][4] =
20432 {
20433 { /* ARMv1 */
20434 {0x00, 0x00, 0xa0, 0xe1}, /* LE */
20435 {0xe1, 0xa0, 0x00, 0x00}, /* BE */
20436 },
20437 { /* ARMv6k */
20438 {0x00, 0xf0, 0x20, 0xe3}, /* LE */
20439 {0xe3, 0x20, 0xf0, 0x00}, /* BE */
20440 },
20441 };
20442 static char const thumb_noop[2][2][2] =
20443 {
20444 { /* Thumb-1 */
20445 {0xc0, 0x46}, /* LE */
20446 {0x46, 0xc0}, /* BE */
20447 },
20448 { /* Thumb-2 */
20449 {0x00, 0xbf}, /* LE */
20450 {0xbf, 0x00} /* BE */
20451 }
20452 };
20453 static char const wide_thumb_noop[2][4] =
20454 { /* Wide Thumb-2 */
20455 {0xaf, 0xf3, 0x00, 0x80}, /* LE */
20456 {0xf3, 0xaf, 0x80, 0x00}, /* BE */
20457 };
20458
20459 unsigned bytes, fix, noop_size;
20460 char * p;
20461 const char * noop;
20462 const char *narrow_noop = NULL;
20463 #ifdef OBJ_ELF
20464 enum mstate state;
20465 #endif
20466
20467 if (fragP->fr_type != rs_align_code)
20468 return;
20469
20470 bytes = fragP->fr_next->fr_address - fragP->fr_address - fragP->fr_fix;
20471 p = fragP->fr_literal + fragP->fr_fix;
20472 fix = 0;
20473
20474 if (bytes > MAX_MEM_FOR_RS_ALIGN_CODE)
20475 bytes &= MAX_MEM_FOR_RS_ALIGN_CODE;
20476
20477 gas_assert ((fragP->tc_frag_data.thumb_mode & MODE_RECORDED) != 0);
20478
20479 if (fragP->tc_frag_data.thumb_mode & (~ MODE_RECORDED))
20480 {
20481 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6t2))
20482 {
20483 narrow_noop = thumb_noop[1][target_big_endian];
20484 noop = wide_thumb_noop[target_big_endian];
20485 }
20486 else
20487 noop = thumb_noop[0][target_big_endian];
20488 noop_size = 2;
20489 #ifdef OBJ_ELF
20490 state = MAP_THUMB;
20491 #endif
20492 }
20493 else
20494 {
20495 noop = arm_noop[ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v6k) != 0]
20496 [target_big_endian];
20497 noop_size = 4;
20498 #ifdef OBJ_ELF
20499 state = MAP_ARM;
20500 #endif
20501 }
20502
20503 fragP->fr_var = noop_size;
20504
20505 if (bytes & (noop_size - 1))
20506 {
20507 fix = bytes & (noop_size - 1);
20508 #ifdef OBJ_ELF
20509 insert_data_mapping_symbol (state, fragP->fr_fix, fragP, fix);
20510 #endif
20511 memset (p, 0, fix);
20512 p += fix;
20513 bytes -= fix;
20514 }
20515
20516 if (narrow_noop)
20517 {
20518 if (bytes & noop_size)
20519 {
20520 /* Insert a narrow noop. */
20521 memcpy (p, narrow_noop, noop_size);
20522 p += noop_size;
20523 bytes -= noop_size;
20524 fix += noop_size;
20525 }
20526
20527 /* Use wide noops for the remainder */
20528 noop_size = 4;
20529 }
20530
20531 while (bytes >= noop_size)
20532 {
20533 memcpy (p, noop, noop_size);
20534 p += noop_size;
20535 bytes -= noop_size;
20536 fix += noop_size;
20537 }
20538
20539 fragP->fr_fix += fix;
20540 }
20541
20542 /* Called from md_do_align. Used to create an alignment
20543 frag in a code section. */
20544
20545 void
20546 arm_frag_align_code (int n, int max)
20547 {
20548 char * p;
20549
20550 /* We assume that there will never be a requirement
20551 to support alignments greater than MAX_MEM_FOR_RS_ALIGN_CODE bytes. */
20552 if (max > MAX_MEM_FOR_RS_ALIGN_CODE)
20553 {
20554 char err_msg[128];
20555
20556 sprintf (err_msg,
20557 _("alignments greater than %d bytes not supported in .text sections."),
20558 MAX_MEM_FOR_RS_ALIGN_CODE + 1);
20559 as_fatal ("%s", err_msg);
20560 }
20561
20562 p = frag_var (rs_align_code,
20563 MAX_MEM_FOR_RS_ALIGN_CODE,
20564 1,
20565 (relax_substateT) max,
20566 (symbolS *) NULL,
20567 (offsetT) n,
20568 (char *) NULL);
20569 *p = 0;
20570 }
20571
20572 /* Perform target specific initialisation of a frag.
20573 Note - despite the name this initialisation is not done when the frag
20574 is created, but only when its type is assigned. A frag can be created
20575 and used a long time before its type is set, so beware of assuming that
20576 this initialisationis performed first. */
20577
20578 #ifndef OBJ_ELF
20579 void
20580 arm_init_frag (fragS * fragP, int max_chars ATTRIBUTE_UNUSED)
20581 {
20582 /* Record whether this frag is in an ARM or a THUMB area. */
20583 fragP->tc_frag_data.thumb_mode = thumb_mode | MODE_RECORDED;
20584 }
20585
20586 #else /* OBJ_ELF is defined. */
20587 void
20588 arm_init_frag (fragS * fragP, int max_chars)
20589 {
20590 /* If the current ARM vs THUMB mode has not already
20591 been recorded into this frag then do so now. */
20592 if ((fragP->tc_frag_data.thumb_mode & MODE_RECORDED) == 0)
20593 {
20594 fragP->tc_frag_data.thumb_mode = thumb_mode | MODE_RECORDED;
20595
20596 /* Record a mapping symbol for alignment frags. We will delete this
20597 later if the alignment ends up empty. */
20598 switch (fragP->fr_type)
20599 {
20600 case rs_align:
20601 case rs_align_test:
20602 case rs_fill:
20603 mapping_state_2 (MAP_DATA, max_chars);
20604 break;
20605 case rs_align_code:
20606 mapping_state_2 (thumb_mode ? MAP_THUMB : MAP_ARM, max_chars);
20607 break;
20608 default:
20609 break;
20610 }
20611 }
20612 }
20613
20614 /* When we change sections we need to issue a new mapping symbol. */
20615
20616 void
20617 arm_elf_change_section (void)
20618 {
20619 /* Link an unlinked unwind index table section to the .text section. */
20620 if (elf_section_type (now_seg) == SHT_ARM_EXIDX
20621 && elf_linked_to_section (now_seg) == NULL)
20622 elf_linked_to_section (now_seg) = text_section;
20623 }
20624
20625 int
20626 arm_elf_section_type (const char * str, size_t len)
20627 {
20628 if (len == 5 && strncmp (str, "exidx", 5) == 0)
20629 return SHT_ARM_EXIDX;
20630
20631 return -1;
20632 }
20633 \f
20634 /* Code to deal with unwinding tables. */
20635
20636 static void add_unwind_adjustsp (offsetT);
20637
20638 /* Generate any deferred unwind frame offset. */
20639
20640 static void
20641 flush_pending_unwind (void)
20642 {
20643 offsetT offset;
20644
20645 offset = unwind.pending_offset;
20646 unwind.pending_offset = 0;
20647 if (offset != 0)
20648 add_unwind_adjustsp (offset);
20649 }
20650
20651 /* Add an opcode to this list for this function. Two-byte opcodes should
20652 be passed as op[0] << 8 | op[1]. The list of opcodes is built in reverse
20653 order. */
20654
20655 static void
20656 add_unwind_opcode (valueT op, int length)
20657 {
20658 /* Add any deferred stack adjustment. */
20659 if (unwind.pending_offset)
20660 flush_pending_unwind ();
20661
20662 unwind.sp_restored = 0;
20663
20664 if (unwind.opcode_count + length > unwind.opcode_alloc)
20665 {
20666 unwind.opcode_alloc += ARM_OPCODE_CHUNK_SIZE;
20667 if (unwind.opcodes)
20668 unwind.opcodes = (unsigned char *) xrealloc (unwind.opcodes,
20669 unwind.opcode_alloc);
20670 else
20671 unwind.opcodes = (unsigned char *) xmalloc (unwind.opcode_alloc);
20672 }
20673 while (length > 0)
20674 {
20675 length--;
20676 unwind.opcodes[unwind.opcode_count] = op & 0xff;
20677 op >>= 8;
20678 unwind.opcode_count++;
20679 }
20680 }
20681
20682 /* Add unwind opcodes to adjust the stack pointer. */
20683
20684 static void
20685 add_unwind_adjustsp (offsetT offset)
20686 {
20687 valueT op;
20688
20689 if (offset > 0x200)
20690 {
20691 /* We need at most 5 bytes to hold a 32-bit value in a uleb128. */
20692 char bytes[5];
20693 int n;
20694 valueT o;
20695
20696 /* Long form: 0xb2, uleb128. */
20697 /* This might not fit in a word so add the individual bytes,
20698 remembering the list is built in reverse order. */
20699 o = (valueT) ((offset - 0x204) >> 2);
20700 if (o == 0)
20701 add_unwind_opcode (0, 1);
20702
20703 /* Calculate the uleb128 encoding of the offset. */
20704 n = 0;
20705 while (o)
20706 {
20707 bytes[n] = o & 0x7f;
20708 o >>= 7;
20709 if (o)
20710 bytes[n] |= 0x80;
20711 n++;
20712 }
20713 /* Add the insn. */
20714 for (; n; n--)
20715 add_unwind_opcode (bytes[n - 1], 1);
20716 add_unwind_opcode (0xb2, 1);
20717 }
20718 else if (offset > 0x100)
20719 {
20720 /* Two short opcodes. */
20721 add_unwind_opcode (0x3f, 1);
20722 op = (offset - 0x104) >> 2;
20723 add_unwind_opcode (op, 1);
20724 }
20725 else if (offset > 0)
20726 {
20727 /* Short opcode. */
20728 op = (offset - 4) >> 2;
20729 add_unwind_opcode (op, 1);
20730 }
20731 else if (offset < 0)
20732 {
20733 offset = -offset;
20734 while (offset > 0x100)
20735 {
20736 add_unwind_opcode (0x7f, 1);
20737 offset -= 0x100;
20738 }
20739 op = ((offset - 4) >> 2) | 0x40;
20740 add_unwind_opcode (op, 1);
20741 }
20742 }
20743
20744 /* Finish the list of unwind opcodes for this function. */
20745 static void
20746 finish_unwind_opcodes (void)
20747 {
20748 valueT op;
20749
20750 if (unwind.fp_used)
20751 {
20752 /* Adjust sp as necessary. */
20753 unwind.pending_offset += unwind.fp_offset - unwind.frame_size;
20754 flush_pending_unwind ();
20755
20756 /* After restoring sp from the frame pointer. */
20757 op = 0x90 | unwind.fp_reg;
20758 add_unwind_opcode (op, 1);
20759 }
20760 else
20761 flush_pending_unwind ();
20762 }
20763
20764
20765 /* Start an exception table entry. If idx is nonzero this is an index table
20766 entry. */
20767
20768 static void
20769 start_unwind_section (const segT text_seg, int idx)
20770 {
20771 const char * text_name;
20772 const char * prefix;
20773 const char * prefix_once;
20774 const char * group_name;
20775 size_t prefix_len;
20776 size_t text_len;
20777 char * sec_name;
20778 size_t sec_name_len;
20779 int type;
20780 int flags;
20781 int linkonce;
20782
20783 if (idx)
20784 {
20785 prefix = ELF_STRING_ARM_unwind;
20786 prefix_once = ELF_STRING_ARM_unwind_once;
20787 type = SHT_ARM_EXIDX;
20788 }
20789 else
20790 {
20791 prefix = ELF_STRING_ARM_unwind_info;
20792 prefix_once = ELF_STRING_ARM_unwind_info_once;
20793 type = SHT_PROGBITS;
20794 }
20795
20796 text_name = segment_name (text_seg);
20797 if (streq (text_name, ".text"))
20798 text_name = "";
20799
20800 if (strncmp (text_name, ".gnu.linkonce.t.",
20801 strlen (".gnu.linkonce.t.")) == 0)
20802 {
20803 prefix = prefix_once;
20804 text_name += strlen (".gnu.linkonce.t.");
20805 }
20806
20807 prefix_len = strlen (prefix);
20808 text_len = strlen (text_name);
20809 sec_name_len = prefix_len + text_len;
20810 sec_name = (char *) xmalloc (sec_name_len + 1);
20811 memcpy (sec_name, prefix, prefix_len);
20812 memcpy (sec_name + prefix_len, text_name, text_len);
20813 sec_name[prefix_len + text_len] = '\0';
20814
20815 flags = SHF_ALLOC;
20816 linkonce = 0;
20817 group_name = 0;
20818
20819 /* Handle COMDAT group. */
20820 if (prefix != prefix_once && (text_seg->flags & SEC_LINK_ONCE) != 0)
20821 {
20822 group_name = elf_group_name (text_seg);
20823 if (group_name == NULL)
20824 {
20825 as_bad (_("Group section `%s' has no group signature"),
20826 segment_name (text_seg));
20827 ignore_rest_of_line ();
20828 return;
20829 }
20830 flags |= SHF_GROUP;
20831 linkonce = 1;
20832 }
20833
20834 obj_elf_change_section (sec_name, type, flags, 0, group_name, linkonce, 0);
20835
20836 /* Set the section link for index tables. */
20837 if (idx)
20838 elf_linked_to_section (now_seg) = text_seg;
20839 }
20840
20841
20842 /* Start an unwind table entry. HAVE_DATA is nonzero if we have additional
20843 personality routine data. Returns zero, or the index table value for
20844 and inline entry. */
20845
20846 static valueT
20847 create_unwind_entry (int have_data)
20848 {
20849 int size;
20850 addressT where;
20851 char *ptr;
20852 /* The current word of data. */
20853 valueT data;
20854 /* The number of bytes left in this word. */
20855 int n;
20856
20857 finish_unwind_opcodes ();
20858
20859 /* Remember the current text section. */
20860 unwind.saved_seg = now_seg;
20861 unwind.saved_subseg = now_subseg;
20862
20863 start_unwind_section (now_seg, 0);
20864
20865 if (unwind.personality_routine == NULL)
20866 {
20867 if (unwind.personality_index == -2)
20868 {
20869 if (have_data)
20870 as_bad (_("handlerdata in cantunwind frame"));
20871 return 1; /* EXIDX_CANTUNWIND. */
20872 }
20873
20874 /* Use a default personality routine if none is specified. */
20875 if (unwind.personality_index == -1)
20876 {
20877 if (unwind.opcode_count > 3)
20878 unwind.personality_index = 1;
20879 else
20880 unwind.personality_index = 0;
20881 }
20882
20883 /* Space for the personality routine entry. */
20884 if (unwind.personality_index == 0)
20885 {
20886 if (unwind.opcode_count > 3)
20887 as_bad (_("too many unwind opcodes for personality routine 0"));
20888
20889 if (!have_data)
20890 {
20891 /* All the data is inline in the index table. */
20892 data = 0x80;
20893 n = 3;
20894 while (unwind.opcode_count > 0)
20895 {
20896 unwind.opcode_count--;
20897 data = (data << 8) | unwind.opcodes[unwind.opcode_count];
20898 n--;
20899 }
20900
20901 /* Pad with "finish" opcodes. */
20902 while (n--)
20903 data = (data << 8) | 0xb0;
20904
20905 return data;
20906 }
20907 size = 0;
20908 }
20909 else
20910 /* We get two opcodes "free" in the first word. */
20911 size = unwind.opcode_count - 2;
20912 }
20913 else
20914 {
20915 gas_assert (unwind.personality_index == -1);
20916
20917 /* An extra byte is required for the opcode count. */
20918 size = unwind.opcode_count + 1;
20919 }
20920
20921 size = (size + 3) >> 2;
20922 if (size > 0xff)
20923 as_bad (_("too many unwind opcodes"));
20924
20925 frag_align (2, 0, 0);
20926 record_alignment (now_seg, 2);
20927 unwind.table_entry = expr_build_dot ();
20928
20929 /* Allocate the table entry. */
20930 ptr = frag_more ((size << 2) + 4);
20931 /* PR 13449: Zero the table entries in case some of them are not used. */
20932 memset (ptr, 0, (size << 2) + 4);
20933 where = frag_now_fix () - ((size << 2) + 4);
20934
20935 switch (unwind.personality_index)
20936 {
20937 case -1:
20938 /* ??? Should this be a PLT generating relocation? */
20939 /* Custom personality routine. */
20940 fix_new (frag_now, where, 4, unwind.personality_routine, 0, 1,
20941 BFD_RELOC_ARM_PREL31);
20942
20943 where += 4;
20944 ptr += 4;
20945
20946 /* Set the first byte to the number of additional words. */
20947 data = size > 0 ? size - 1 : 0;
20948 n = 3;
20949 break;
20950
20951 /* ABI defined personality routines. */
20952 case 0:
20953 /* Three opcodes bytes are packed into the first word. */
20954 data = 0x80;
20955 n = 3;
20956 break;
20957
20958 case 1:
20959 case 2:
20960 /* The size and first two opcode bytes go in the first word. */
20961 data = ((0x80 + unwind.personality_index) << 8) | size;
20962 n = 2;
20963 break;
20964
20965 default:
20966 /* Should never happen. */
20967 abort ();
20968 }
20969
20970 /* Pack the opcodes into words (MSB first), reversing the list at the same
20971 time. */
20972 while (unwind.opcode_count > 0)
20973 {
20974 if (n == 0)
20975 {
20976 md_number_to_chars (ptr, data, 4);
20977 ptr += 4;
20978 n = 4;
20979 data = 0;
20980 }
20981 unwind.opcode_count--;
20982 n--;
20983 data = (data << 8) | unwind.opcodes[unwind.opcode_count];
20984 }
20985
20986 /* Finish off the last word. */
20987 if (n < 4)
20988 {
20989 /* Pad with "finish" opcodes. */
20990 while (n--)
20991 data = (data << 8) | 0xb0;
20992
20993 md_number_to_chars (ptr, data, 4);
20994 }
20995
20996 if (!have_data)
20997 {
20998 /* Add an empty descriptor if there is no user-specified data. */
20999 ptr = frag_more (4);
21000 md_number_to_chars (ptr, 0, 4);
21001 }
21002
21003 return 0;
21004 }
21005
21006
21007 /* Initialize the DWARF-2 unwind information for this procedure. */
21008
21009 void
21010 tc_arm_frame_initial_instructions (void)
21011 {
21012 cfi_add_CFA_def_cfa (REG_SP, 0);
21013 }
21014 #endif /* OBJ_ELF */
21015
21016 /* Convert REGNAME to a DWARF-2 register number. */
21017
21018 int
21019 tc_arm_regname_to_dw2regnum (char *regname)
21020 {
21021 int reg = arm_reg_parse (&regname, REG_TYPE_RN);
21022
21023 if (reg == FAIL)
21024 return -1;
21025
21026 return reg;
21027 }
21028
21029 #ifdef TE_PE
21030 void
21031 tc_pe_dwarf2_emit_offset (symbolS *symbol, unsigned int size)
21032 {
21033 expressionS exp;
21034
21035 exp.X_op = O_secrel;
21036 exp.X_add_symbol = symbol;
21037 exp.X_add_number = 0;
21038 emit_expr (&exp, size);
21039 }
21040 #endif
21041
21042 /* MD interface: Symbol and relocation handling. */
21043
21044 /* Return the address within the segment that a PC-relative fixup is
21045 relative to. For ARM, PC-relative fixups applied to instructions
21046 are generally relative to the location of the fixup plus 8 bytes.
21047 Thumb branches are offset by 4, and Thumb loads relative to PC
21048 require special handling. */
21049
21050 long
21051 md_pcrel_from_section (fixS * fixP, segT seg)
21052 {
21053 offsetT base = fixP->fx_where + fixP->fx_frag->fr_address;
21054
21055 /* If this is pc-relative and we are going to emit a relocation
21056 then we just want to put out any pipeline compensation that the linker
21057 will need. Otherwise we want to use the calculated base.
21058 For WinCE we skip the bias for externals as well, since this
21059 is how the MS ARM-CE assembler behaves and we want to be compatible. */
21060 if (fixP->fx_pcrel
21061 && ((fixP->fx_addsy && S_GET_SEGMENT (fixP->fx_addsy) != seg)
21062 || (arm_force_relocation (fixP)
21063 #ifdef TE_WINCE
21064 && !S_IS_EXTERNAL (fixP->fx_addsy)
21065 #endif
21066 )))
21067 base = 0;
21068
21069
21070 switch (fixP->fx_r_type)
21071 {
21072 /* PC relative addressing on the Thumb is slightly odd as the
21073 bottom two bits of the PC are forced to zero for the
21074 calculation. This happens *after* application of the
21075 pipeline offset. However, Thumb adrl already adjusts for
21076 this, so we need not do it again. */
21077 case BFD_RELOC_ARM_THUMB_ADD:
21078 return base & ~3;
21079
21080 case BFD_RELOC_ARM_THUMB_OFFSET:
21081 case BFD_RELOC_ARM_T32_OFFSET_IMM:
21082 case BFD_RELOC_ARM_T32_ADD_PC12:
21083 case BFD_RELOC_ARM_T32_CP_OFF_IMM:
21084 return (base + 4) & ~3;
21085
21086 /* Thumb branches are simply offset by +4. */
21087 case BFD_RELOC_THUMB_PCREL_BRANCH7:
21088 case BFD_RELOC_THUMB_PCREL_BRANCH9:
21089 case BFD_RELOC_THUMB_PCREL_BRANCH12:
21090 case BFD_RELOC_THUMB_PCREL_BRANCH20:
21091 case BFD_RELOC_THUMB_PCREL_BRANCH25:
21092 return base + 4;
21093
21094 case BFD_RELOC_THUMB_PCREL_BRANCH23:
21095 if (fixP->fx_addsy
21096 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21097 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
21098 && ARM_IS_FUNC (fixP->fx_addsy)
21099 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t))
21100 base = fixP->fx_where + fixP->fx_frag->fr_address;
21101 return base + 4;
21102
21103 /* BLX is like branches above, but forces the low two bits of PC to
21104 zero. */
21105 case BFD_RELOC_THUMB_PCREL_BLX:
21106 if (fixP->fx_addsy
21107 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21108 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
21109 && THUMB_IS_FUNC (fixP->fx_addsy)
21110 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t))
21111 base = fixP->fx_where + fixP->fx_frag->fr_address;
21112 return (base + 4) & ~3;
21113
21114 /* ARM mode branches are offset by +8. However, the Windows CE
21115 loader expects the relocation not to take this into account. */
21116 case BFD_RELOC_ARM_PCREL_BLX:
21117 if (fixP->fx_addsy
21118 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21119 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
21120 && ARM_IS_FUNC (fixP->fx_addsy)
21121 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t))
21122 base = fixP->fx_where + fixP->fx_frag->fr_address;
21123 return base + 8;
21124
21125 case BFD_RELOC_ARM_PCREL_CALL:
21126 if (fixP->fx_addsy
21127 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21128 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
21129 && THUMB_IS_FUNC (fixP->fx_addsy)
21130 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t))
21131 base = fixP->fx_where + fixP->fx_frag->fr_address;
21132 return base + 8;
21133
21134 case BFD_RELOC_ARM_PCREL_BRANCH:
21135 case BFD_RELOC_ARM_PCREL_JUMP:
21136 case BFD_RELOC_ARM_PLT32:
21137 #ifdef TE_WINCE
21138 /* When handling fixups immediately, because we have already
21139 discovered the value of a symbol, or the address of the frag involved
21140 we must account for the offset by +8, as the OS loader will never see the reloc.
21141 see fixup_segment() in write.c
21142 The S_IS_EXTERNAL test handles the case of global symbols.
21143 Those need the calculated base, not just the pipe compensation the linker will need. */
21144 if (fixP->fx_pcrel
21145 && fixP->fx_addsy != NULL
21146 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21147 && (S_IS_EXTERNAL (fixP->fx_addsy) || !arm_force_relocation (fixP)))
21148 return base + 8;
21149 return base;
21150 #else
21151 return base + 8;
21152 #endif
21153
21154
21155 /* ARM mode loads relative to PC are also offset by +8. Unlike
21156 branches, the Windows CE loader *does* expect the relocation
21157 to take this into account. */
21158 case BFD_RELOC_ARM_OFFSET_IMM:
21159 case BFD_RELOC_ARM_OFFSET_IMM8:
21160 case BFD_RELOC_ARM_HWLITERAL:
21161 case BFD_RELOC_ARM_LITERAL:
21162 case BFD_RELOC_ARM_CP_OFF_IMM:
21163 return base + 8;
21164
21165
21166 /* Other PC-relative relocations are un-offset. */
21167 default:
21168 return base;
21169 }
21170 }
21171
21172 /* Under ELF we need to default _GLOBAL_OFFSET_TABLE.
21173 Otherwise we have no need to default values of symbols. */
21174
21175 symbolS *
21176 md_undefined_symbol (char * name ATTRIBUTE_UNUSED)
21177 {
21178 #ifdef OBJ_ELF
21179 if (name[0] == '_' && name[1] == 'G'
21180 && streq (name, GLOBAL_OFFSET_TABLE_NAME))
21181 {
21182 if (!GOT_symbol)
21183 {
21184 if (symbol_find (name))
21185 as_bad (_("GOT already in the symbol table"));
21186
21187 GOT_symbol = symbol_new (name, undefined_section,
21188 (valueT) 0, & zero_address_frag);
21189 }
21190
21191 return GOT_symbol;
21192 }
21193 #endif
21194
21195 return NULL;
21196 }
21197
21198 /* Subroutine of md_apply_fix. Check to see if an immediate can be
21199 computed as two separate immediate values, added together. We
21200 already know that this value cannot be computed by just one ARM
21201 instruction. */
21202
21203 static unsigned int
21204 validate_immediate_twopart (unsigned int val,
21205 unsigned int * highpart)
21206 {
21207 unsigned int a;
21208 unsigned int i;
21209
21210 for (i = 0; i < 32; i += 2)
21211 if (((a = rotate_left (val, i)) & 0xff) != 0)
21212 {
21213 if (a & 0xff00)
21214 {
21215 if (a & ~ 0xffff)
21216 continue;
21217 * highpart = (a >> 8) | ((i + 24) << 7);
21218 }
21219 else if (a & 0xff0000)
21220 {
21221 if (a & 0xff000000)
21222 continue;
21223 * highpart = (a >> 16) | ((i + 16) << 7);
21224 }
21225 else
21226 {
21227 gas_assert (a & 0xff000000);
21228 * highpart = (a >> 24) | ((i + 8) << 7);
21229 }
21230
21231 return (a & 0xff) | (i << 7);
21232 }
21233
21234 return FAIL;
21235 }
21236
21237 static int
21238 validate_offset_imm (unsigned int val, int hwse)
21239 {
21240 if ((hwse && val > 255) || val > 4095)
21241 return FAIL;
21242 return val;
21243 }
21244
21245 /* Subroutine of md_apply_fix. Do those data_ops which can take a
21246 negative immediate constant by altering the instruction. A bit of
21247 a hack really.
21248 MOV <-> MVN
21249 AND <-> BIC
21250 ADC <-> SBC
21251 by inverting the second operand, and
21252 ADD <-> SUB
21253 CMP <-> CMN
21254 by negating the second operand. */
21255
21256 static int
21257 negate_data_op (unsigned long * instruction,
21258 unsigned long value)
21259 {
21260 int op, new_inst;
21261 unsigned long negated, inverted;
21262
21263 negated = encode_arm_immediate (-value);
21264 inverted = encode_arm_immediate (~value);
21265
21266 op = (*instruction >> DATA_OP_SHIFT) & 0xf;
21267 switch (op)
21268 {
21269 /* First negates. */
21270 case OPCODE_SUB: /* ADD <-> SUB */
21271 new_inst = OPCODE_ADD;
21272 value = negated;
21273 break;
21274
21275 case OPCODE_ADD:
21276 new_inst = OPCODE_SUB;
21277 value = negated;
21278 break;
21279
21280 case OPCODE_CMP: /* CMP <-> CMN */
21281 new_inst = OPCODE_CMN;
21282 value = negated;
21283 break;
21284
21285 case OPCODE_CMN:
21286 new_inst = OPCODE_CMP;
21287 value = negated;
21288 break;
21289
21290 /* Now Inverted ops. */
21291 case OPCODE_MOV: /* MOV <-> MVN */
21292 new_inst = OPCODE_MVN;
21293 value = inverted;
21294 break;
21295
21296 case OPCODE_MVN:
21297 new_inst = OPCODE_MOV;
21298 value = inverted;
21299 break;
21300
21301 case OPCODE_AND: /* AND <-> BIC */
21302 new_inst = OPCODE_BIC;
21303 value = inverted;
21304 break;
21305
21306 case OPCODE_BIC:
21307 new_inst = OPCODE_AND;
21308 value = inverted;
21309 break;
21310
21311 case OPCODE_ADC: /* ADC <-> SBC */
21312 new_inst = OPCODE_SBC;
21313 value = inverted;
21314 break;
21315
21316 case OPCODE_SBC:
21317 new_inst = OPCODE_ADC;
21318 value = inverted;
21319 break;
21320
21321 /* We cannot do anything. */
21322 default:
21323 return FAIL;
21324 }
21325
21326 if (value == (unsigned) FAIL)
21327 return FAIL;
21328
21329 *instruction &= OPCODE_MASK;
21330 *instruction |= new_inst << DATA_OP_SHIFT;
21331 return value;
21332 }
21333
21334 /* Like negate_data_op, but for Thumb-2. */
21335
21336 static unsigned int
21337 thumb32_negate_data_op (offsetT *instruction, unsigned int value)
21338 {
21339 int op, new_inst;
21340 int rd;
21341 unsigned int negated, inverted;
21342
21343 negated = encode_thumb32_immediate (-value);
21344 inverted = encode_thumb32_immediate (~value);
21345
21346 rd = (*instruction >> 8) & 0xf;
21347 op = (*instruction >> T2_DATA_OP_SHIFT) & 0xf;
21348 switch (op)
21349 {
21350 /* ADD <-> SUB. Includes CMP <-> CMN. */
21351 case T2_OPCODE_SUB:
21352 new_inst = T2_OPCODE_ADD;
21353 value = negated;
21354 break;
21355
21356 case T2_OPCODE_ADD:
21357 new_inst = T2_OPCODE_SUB;
21358 value = negated;
21359 break;
21360
21361 /* ORR <-> ORN. Includes MOV <-> MVN. */
21362 case T2_OPCODE_ORR:
21363 new_inst = T2_OPCODE_ORN;
21364 value = inverted;
21365 break;
21366
21367 case T2_OPCODE_ORN:
21368 new_inst = T2_OPCODE_ORR;
21369 value = inverted;
21370 break;
21371
21372 /* AND <-> BIC. TST has no inverted equivalent. */
21373 case T2_OPCODE_AND:
21374 new_inst = T2_OPCODE_BIC;
21375 if (rd == 15)
21376 value = FAIL;
21377 else
21378 value = inverted;
21379 break;
21380
21381 case T2_OPCODE_BIC:
21382 new_inst = T2_OPCODE_AND;
21383 value = inverted;
21384 break;
21385
21386 /* ADC <-> SBC */
21387 case T2_OPCODE_ADC:
21388 new_inst = T2_OPCODE_SBC;
21389 value = inverted;
21390 break;
21391
21392 case T2_OPCODE_SBC:
21393 new_inst = T2_OPCODE_ADC;
21394 value = inverted;
21395 break;
21396
21397 /* We cannot do anything. */
21398 default:
21399 return FAIL;
21400 }
21401
21402 if (value == (unsigned int)FAIL)
21403 return FAIL;
21404
21405 *instruction &= T2_OPCODE_MASK;
21406 *instruction |= new_inst << T2_DATA_OP_SHIFT;
21407 return value;
21408 }
21409
21410 /* Read a 32-bit thumb instruction from buf. */
21411 static unsigned long
21412 get_thumb32_insn (char * buf)
21413 {
21414 unsigned long insn;
21415 insn = md_chars_to_number (buf, THUMB_SIZE) << 16;
21416 insn |= md_chars_to_number (buf + THUMB_SIZE, THUMB_SIZE);
21417
21418 return insn;
21419 }
21420
21421
21422 /* We usually want to set the low bit on the address of thumb function
21423 symbols. In particular .word foo - . should have the low bit set.
21424 Generic code tries to fold the difference of two symbols to
21425 a constant. Prevent this and force a relocation when the first symbols
21426 is a thumb function. */
21427
21428 bfd_boolean
21429 arm_optimize_expr (expressionS *l, operatorT op, expressionS *r)
21430 {
21431 if (op == O_subtract
21432 && l->X_op == O_symbol
21433 && r->X_op == O_symbol
21434 && THUMB_IS_FUNC (l->X_add_symbol))
21435 {
21436 l->X_op = O_subtract;
21437 l->X_op_symbol = r->X_add_symbol;
21438 l->X_add_number -= r->X_add_number;
21439 return TRUE;
21440 }
21441
21442 /* Process as normal. */
21443 return FALSE;
21444 }
21445
21446 /* Encode Thumb2 unconditional branches and calls. The encoding
21447 for the 2 are identical for the immediate values. */
21448
21449 static void
21450 encode_thumb2_b_bl_offset (char * buf, offsetT value)
21451 {
21452 #define T2I1I2MASK ((1 << 13) | (1 << 11))
21453 offsetT newval;
21454 offsetT newval2;
21455 addressT S, I1, I2, lo, hi;
21456
21457 S = (value >> 24) & 0x01;
21458 I1 = (value >> 23) & 0x01;
21459 I2 = (value >> 22) & 0x01;
21460 hi = (value >> 12) & 0x3ff;
21461 lo = (value >> 1) & 0x7ff;
21462 newval = md_chars_to_number (buf, THUMB_SIZE);
21463 newval2 = md_chars_to_number (buf + THUMB_SIZE, THUMB_SIZE);
21464 newval |= (S << 10) | hi;
21465 newval2 &= ~T2I1I2MASK;
21466 newval2 |= (((I1 ^ S) << 13) | ((I2 ^ S) << 11) | lo) ^ T2I1I2MASK;
21467 md_number_to_chars (buf, newval, THUMB_SIZE);
21468 md_number_to_chars (buf + THUMB_SIZE, newval2, THUMB_SIZE);
21469 }
21470
21471 void
21472 md_apply_fix (fixS * fixP,
21473 valueT * valP,
21474 segT seg)
21475 {
21476 offsetT value = * valP;
21477 offsetT newval;
21478 unsigned int newimm;
21479 unsigned long temp;
21480 int sign;
21481 char * buf = fixP->fx_where + fixP->fx_frag->fr_literal;
21482
21483 gas_assert (fixP->fx_r_type <= BFD_RELOC_UNUSED);
21484
21485 /* Note whether this will delete the relocation. */
21486
21487 if (fixP->fx_addsy == 0 && !fixP->fx_pcrel)
21488 fixP->fx_done = 1;
21489
21490 /* On a 64-bit host, silently truncate 'value' to 32 bits for
21491 consistency with the behaviour on 32-bit hosts. Remember value
21492 for emit_reloc. */
21493 value &= 0xffffffff;
21494 value ^= 0x80000000;
21495 value -= 0x80000000;
21496
21497 *valP = value;
21498 fixP->fx_addnumber = value;
21499
21500 /* Same treatment for fixP->fx_offset. */
21501 fixP->fx_offset &= 0xffffffff;
21502 fixP->fx_offset ^= 0x80000000;
21503 fixP->fx_offset -= 0x80000000;
21504
21505 switch (fixP->fx_r_type)
21506 {
21507 case BFD_RELOC_NONE:
21508 /* This will need to go in the object file. */
21509 fixP->fx_done = 0;
21510 break;
21511
21512 case BFD_RELOC_ARM_IMMEDIATE:
21513 /* We claim that this fixup has been processed here,
21514 even if in fact we generate an error because we do
21515 not have a reloc for it, so tc_gen_reloc will reject it. */
21516 fixP->fx_done = 1;
21517
21518 if (fixP->fx_addsy)
21519 {
21520 const char *msg = 0;
21521
21522 if (! S_IS_DEFINED (fixP->fx_addsy))
21523 msg = _("undefined symbol %s used as an immediate value");
21524 else if (S_GET_SEGMENT (fixP->fx_addsy) != seg)
21525 msg = _("symbol %s is in a different section");
21526 else if (S_IS_WEAK (fixP->fx_addsy))
21527 msg = _("symbol %s is weak and may be overridden later");
21528
21529 if (msg)
21530 {
21531 as_bad_where (fixP->fx_file, fixP->fx_line,
21532 msg, S_GET_NAME (fixP->fx_addsy));
21533 break;
21534 }
21535 }
21536
21537 temp = md_chars_to_number (buf, INSN_SIZE);
21538
21539 /* If the offset is negative, we should use encoding A2 for ADR. */
21540 if ((temp & 0xfff0000) == 0x28f0000 && value < 0)
21541 newimm = negate_data_op (&temp, value);
21542 else
21543 {
21544 newimm = encode_arm_immediate (value);
21545
21546 /* If the instruction will fail, see if we can fix things up by
21547 changing the opcode. */
21548 if (newimm == (unsigned int) FAIL)
21549 newimm = negate_data_op (&temp, value);
21550 }
21551
21552 if (newimm == (unsigned int) FAIL)
21553 {
21554 as_bad_where (fixP->fx_file, fixP->fx_line,
21555 _("invalid constant (%lx) after fixup"),
21556 (unsigned long) value);
21557 break;
21558 }
21559
21560 newimm |= (temp & 0xfffff000);
21561 md_number_to_chars (buf, (valueT) newimm, INSN_SIZE);
21562 break;
21563
21564 case BFD_RELOC_ARM_ADRL_IMMEDIATE:
21565 {
21566 unsigned int highpart = 0;
21567 unsigned int newinsn = 0xe1a00000; /* nop. */
21568
21569 if (fixP->fx_addsy)
21570 {
21571 const char *msg = 0;
21572
21573 if (! S_IS_DEFINED (fixP->fx_addsy))
21574 msg = _("undefined symbol %s used as an immediate value");
21575 else if (S_GET_SEGMENT (fixP->fx_addsy) != seg)
21576 msg = _("symbol %s is in a different section");
21577 else if (S_IS_WEAK (fixP->fx_addsy))
21578 msg = _("symbol %s is weak and may be overridden later");
21579
21580 if (msg)
21581 {
21582 as_bad_where (fixP->fx_file, fixP->fx_line,
21583 msg, S_GET_NAME (fixP->fx_addsy));
21584 break;
21585 }
21586 }
21587
21588 newimm = encode_arm_immediate (value);
21589 temp = md_chars_to_number (buf, INSN_SIZE);
21590
21591 /* If the instruction will fail, see if we can fix things up by
21592 changing the opcode. */
21593 if (newimm == (unsigned int) FAIL
21594 && (newimm = negate_data_op (& temp, value)) == (unsigned int) FAIL)
21595 {
21596 /* No ? OK - try using two ADD instructions to generate
21597 the value. */
21598 newimm = validate_immediate_twopart (value, & highpart);
21599
21600 /* Yes - then make sure that the second instruction is
21601 also an add. */
21602 if (newimm != (unsigned int) FAIL)
21603 newinsn = temp;
21604 /* Still No ? Try using a negated value. */
21605 else if ((newimm = validate_immediate_twopart (- value, & highpart)) != (unsigned int) FAIL)
21606 temp = newinsn = (temp & OPCODE_MASK) | OPCODE_SUB << DATA_OP_SHIFT;
21607 /* Otherwise - give up. */
21608 else
21609 {
21610 as_bad_where (fixP->fx_file, fixP->fx_line,
21611 _("unable to compute ADRL instructions for PC offset of 0x%lx"),
21612 (long) value);
21613 break;
21614 }
21615
21616 /* Replace the first operand in the 2nd instruction (which
21617 is the PC) with the destination register. We have
21618 already added in the PC in the first instruction and we
21619 do not want to do it again. */
21620 newinsn &= ~ 0xf0000;
21621 newinsn |= ((newinsn & 0x0f000) << 4);
21622 }
21623
21624 newimm |= (temp & 0xfffff000);
21625 md_number_to_chars (buf, (valueT) newimm, INSN_SIZE);
21626
21627 highpart |= (newinsn & 0xfffff000);
21628 md_number_to_chars (buf + INSN_SIZE, (valueT) highpart, INSN_SIZE);
21629 }
21630 break;
21631
21632 case BFD_RELOC_ARM_OFFSET_IMM:
21633 if (!fixP->fx_done && seg->use_rela_p)
21634 value = 0;
21635
21636 case BFD_RELOC_ARM_LITERAL:
21637 sign = value > 0;
21638
21639 if (value < 0)
21640 value = - value;
21641
21642 if (validate_offset_imm (value, 0) == FAIL)
21643 {
21644 if (fixP->fx_r_type == BFD_RELOC_ARM_LITERAL)
21645 as_bad_where (fixP->fx_file, fixP->fx_line,
21646 _("invalid literal constant: pool needs to be closer"));
21647 else
21648 as_bad_where (fixP->fx_file, fixP->fx_line,
21649 _("bad immediate value for offset (%ld)"),
21650 (long) value);
21651 break;
21652 }
21653
21654 newval = md_chars_to_number (buf, INSN_SIZE);
21655 if (value == 0)
21656 newval &= 0xfffff000;
21657 else
21658 {
21659 newval &= 0xff7ff000;
21660 newval |= value | (sign ? INDEX_UP : 0);
21661 }
21662 md_number_to_chars (buf, newval, INSN_SIZE);
21663 break;
21664
21665 case BFD_RELOC_ARM_OFFSET_IMM8:
21666 case BFD_RELOC_ARM_HWLITERAL:
21667 sign = value > 0;
21668
21669 if (value < 0)
21670 value = - value;
21671
21672 if (validate_offset_imm (value, 1) == FAIL)
21673 {
21674 if (fixP->fx_r_type == BFD_RELOC_ARM_HWLITERAL)
21675 as_bad_where (fixP->fx_file, fixP->fx_line,
21676 _("invalid literal constant: pool needs to be closer"));
21677 else
21678 as_bad_where (fixP->fx_file, fixP->fx_line,
21679 _("bad immediate value for 8-bit offset (%ld)"),
21680 (long) value);
21681 break;
21682 }
21683
21684 newval = md_chars_to_number (buf, INSN_SIZE);
21685 if (value == 0)
21686 newval &= 0xfffff0f0;
21687 else
21688 {
21689 newval &= 0xff7ff0f0;
21690 newval |= ((value >> 4) << 8) | (value & 0xf) | (sign ? INDEX_UP : 0);
21691 }
21692 md_number_to_chars (buf, newval, INSN_SIZE);
21693 break;
21694
21695 case BFD_RELOC_ARM_T32_OFFSET_U8:
21696 if (value < 0 || value > 1020 || value % 4 != 0)
21697 as_bad_where (fixP->fx_file, fixP->fx_line,
21698 _("bad immediate value for offset (%ld)"), (long) value);
21699 value /= 4;
21700
21701 newval = md_chars_to_number (buf+2, THUMB_SIZE);
21702 newval |= value;
21703 md_number_to_chars (buf+2, newval, THUMB_SIZE);
21704 break;
21705
21706 case BFD_RELOC_ARM_T32_OFFSET_IMM:
21707 /* This is a complicated relocation used for all varieties of Thumb32
21708 load/store instruction with immediate offset:
21709
21710 1110 100P u1WL NNNN XXXX YYYY iiii iiii - +/-(U) pre/post(P) 8-bit,
21711 *4, optional writeback(W)
21712 (doubleword load/store)
21713
21714 1111 100S uTTL 1111 XXXX iiii iiii iiii - +/-(U) 12-bit PC-rel
21715 1111 100S 0TTL NNNN XXXX 1Pu1 iiii iiii - +/-(U) pre/post(P) 8-bit
21716 1111 100S 0TTL NNNN XXXX 1110 iiii iiii - positive 8-bit (T instruction)
21717 1111 100S 1TTL NNNN XXXX iiii iiii iiii - positive 12-bit
21718 1111 100S 0TTL NNNN XXXX 1100 iiii iiii - negative 8-bit
21719
21720 Uppercase letters indicate bits that are already encoded at
21721 this point. Lowercase letters are our problem. For the
21722 second block of instructions, the secondary opcode nybble
21723 (bits 8..11) is present, and bit 23 is zero, even if this is
21724 a PC-relative operation. */
21725 newval = md_chars_to_number (buf, THUMB_SIZE);
21726 newval <<= 16;
21727 newval |= md_chars_to_number (buf+THUMB_SIZE, THUMB_SIZE);
21728
21729 if ((newval & 0xf0000000) == 0xe0000000)
21730 {
21731 /* Doubleword load/store: 8-bit offset, scaled by 4. */
21732 if (value >= 0)
21733 newval |= (1 << 23);
21734 else
21735 value = -value;
21736 if (value % 4 != 0)
21737 {
21738 as_bad_where (fixP->fx_file, fixP->fx_line,
21739 _("offset not a multiple of 4"));
21740 break;
21741 }
21742 value /= 4;
21743 if (value > 0xff)
21744 {
21745 as_bad_where (fixP->fx_file, fixP->fx_line,
21746 _("offset out of range"));
21747 break;
21748 }
21749 newval &= ~0xff;
21750 }
21751 else if ((newval & 0x000f0000) == 0x000f0000)
21752 {
21753 /* PC-relative, 12-bit offset. */
21754 if (value >= 0)
21755 newval |= (1 << 23);
21756 else
21757 value = -value;
21758 if (value > 0xfff)
21759 {
21760 as_bad_where (fixP->fx_file, fixP->fx_line,
21761 _("offset out of range"));
21762 break;
21763 }
21764 newval &= ~0xfff;
21765 }
21766 else if ((newval & 0x00000100) == 0x00000100)
21767 {
21768 /* Writeback: 8-bit, +/- offset. */
21769 if (value >= 0)
21770 newval |= (1 << 9);
21771 else
21772 value = -value;
21773 if (value > 0xff)
21774 {
21775 as_bad_where (fixP->fx_file, fixP->fx_line,
21776 _("offset out of range"));
21777 break;
21778 }
21779 newval &= ~0xff;
21780 }
21781 else if ((newval & 0x00000f00) == 0x00000e00)
21782 {
21783 /* T-instruction: positive 8-bit offset. */
21784 if (value < 0 || value > 0xff)
21785 {
21786 as_bad_where (fixP->fx_file, fixP->fx_line,
21787 _("offset out of range"));
21788 break;
21789 }
21790 newval &= ~0xff;
21791 newval |= value;
21792 }
21793 else
21794 {
21795 /* Positive 12-bit or negative 8-bit offset. */
21796 int limit;
21797 if (value >= 0)
21798 {
21799 newval |= (1 << 23);
21800 limit = 0xfff;
21801 }
21802 else
21803 {
21804 value = -value;
21805 limit = 0xff;
21806 }
21807 if (value > limit)
21808 {
21809 as_bad_where (fixP->fx_file, fixP->fx_line,
21810 _("offset out of range"));
21811 break;
21812 }
21813 newval &= ~limit;
21814 }
21815
21816 newval |= value;
21817 md_number_to_chars (buf, (newval >> 16) & 0xffff, THUMB_SIZE);
21818 md_number_to_chars (buf + THUMB_SIZE, newval & 0xffff, THUMB_SIZE);
21819 break;
21820
21821 case BFD_RELOC_ARM_SHIFT_IMM:
21822 newval = md_chars_to_number (buf, INSN_SIZE);
21823 if (((unsigned long) value) > 32
21824 || (value == 32
21825 && (((newval & 0x60) == 0) || (newval & 0x60) == 0x60)))
21826 {
21827 as_bad_where (fixP->fx_file, fixP->fx_line,
21828 _("shift expression is too large"));
21829 break;
21830 }
21831
21832 if (value == 0)
21833 /* Shifts of zero must be done as lsl. */
21834 newval &= ~0x60;
21835 else if (value == 32)
21836 value = 0;
21837 newval &= 0xfffff07f;
21838 newval |= (value & 0x1f) << 7;
21839 md_number_to_chars (buf, newval, INSN_SIZE);
21840 break;
21841
21842 case BFD_RELOC_ARM_T32_IMMEDIATE:
21843 case BFD_RELOC_ARM_T32_ADD_IMM:
21844 case BFD_RELOC_ARM_T32_IMM12:
21845 case BFD_RELOC_ARM_T32_ADD_PC12:
21846 /* We claim that this fixup has been processed here,
21847 even if in fact we generate an error because we do
21848 not have a reloc for it, so tc_gen_reloc will reject it. */
21849 fixP->fx_done = 1;
21850
21851 if (fixP->fx_addsy
21852 && ! S_IS_DEFINED (fixP->fx_addsy))
21853 {
21854 as_bad_where (fixP->fx_file, fixP->fx_line,
21855 _("undefined symbol %s used as an immediate value"),
21856 S_GET_NAME (fixP->fx_addsy));
21857 break;
21858 }
21859
21860 newval = md_chars_to_number (buf, THUMB_SIZE);
21861 newval <<= 16;
21862 newval |= md_chars_to_number (buf+2, THUMB_SIZE);
21863
21864 newimm = FAIL;
21865 if (fixP->fx_r_type == BFD_RELOC_ARM_T32_IMMEDIATE
21866 || fixP->fx_r_type == BFD_RELOC_ARM_T32_ADD_IMM)
21867 {
21868 newimm = encode_thumb32_immediate (value);
21869 if (newimm == (unsigned int) FAIL)
21870 newimm = thumb32_negate_data_op (&newval, value);
21871 }
21872 if (fixP->fx_r_type != BFD_RELOC_ARM_T32_IMMEDIATE
21873 && newimm == (unsigned int) FAIL)
21874 {
21875 /* Turn add/sum into addw/subw. */
21876 if (fixP->fx_r_type == BFD_RELOC_ARM_T32_ADD_IMM)
21877 newval = (newval & 0xfeffffff) | 0x02000000;
21878 /* No flat 12-bit imm encoding for addsw/subsw. */
21879 if ((newval & 0x00100000) == 0)
21880 {
21881 /* 12 bit immediate for addw/subw. */
21882 if (value < 0)
21883 {
21884 value = -value;
21885 newval ^= 0x00a00000;
21886 }
21887 if (value > 0xfff)
21888 newimm = (unsigned int) FAIL;
21889 else
21890 newimm = value;
21891 }
21892 }
21893
21894 if (newimm == (unsigned int)FAIL)
21895 {
21896 as_bad_where (fixP->fx_file, fixP->fx_line,
21897 _("invalid constant (%lx) after fixup"),
21898 (unsigned long) value);
21899 break;
21900 }
21901
21902 newval |= (newimm & 0x800) << 15;
21903 newval |= (newimm & 0x700) << 4;
21904 newval |= (newimm & 0x0ff);
21905
21906 md_number_to_chars (buf, (valueT) ((newval >> 16) & 0xffff), THUMB_SIZE);
21907 md_number_to_chars (buf+2, (valueT) (newval & 0xffff), THUMB_SIZE);
21908 break;
21909
21910 case BFD_RELOC_ARM_SMC:
21911 if (((unsigned long) value) > 0xffff)
21912 as_bad_where (fixP->fx_file, fixP->fx_line,
21913 _("invalid smc expression"));
21914 newval = md_chars_to_number (buf, INSN_SIZE);
21915 newval |= (value & 0xf) | ((value & 0xfff0) << 4);
21916 md_number_to_chars (buf, newval, INSN_SIZE);
21917 break;
21918
21919 case BFD_RELOC_ARM_HVC:
21920 if (((unsigned long) value) > 0xffff)
21921 as_bad_where (fixP->fx_file, fixP->fx_line,
21922 _("invalid hvc expression"));
21923 newval = md_chars_to_number (buf, INSN_SIZE);
21924 newval |= (value & 0xf) | ((value & 0xfff0) << 4);
21925 md_number_to_chars (buf, newval, INSN_SIZE);
21926 break;
21927
21928 case BFD_RELOC_ARM_SWI:
21929 if (fixP->tc_fix_data != 0)
21930 {
21931 if (((unsigned long) value) > 0xff)
21932 as_bad_where (fixP->fx_file, fixP->fx_line,
21933 _("invalid swi expression"));
21934 newval = md_chars_to_number (buf, THUMB_SIZE);
21935 newval |= value;
21936 md_number_to_chars (buf, newval, THUMB_SIZE);
21937 }
21938 else
21939 {
21940 if (((unsigned long) value) > 0x00ffffff)
21941 as_bad_where (fixP->fx_file, fixP->fx_line,
21942 _("invalid swi expression"));
21943 newval = md_chars_to_number (buf, INSN_SIZE);
21944 newval |= value;
21945 md_number_to_chars (buf, newval, INSN_SIZE);
21946 }
21947 break;
21948
21949 case BFD_RELOC_ARM_MULTI:
21950 if (((unsigned long) value) > 0xffff)
21951 as_bad_where (fixP->fx_file, fixP->fx_line,
21952 _("invalid expression in load/store multiple"));
21953 newval = value | md_chars_to_number (buf, INSN_SIZE);
21954 md_number_to_chars (buf, newval, INSN_SIZE);
21955 break;
21956
21957 #ifdef OBJ_ELF
21958 case BFD_RELOC_ARM_PCREL_CALL:
21959
21960 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t)
21961 && fixP->fx_addsy
21962 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
21963 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21964 && THUMB_IS_FUNC (fixP->fx_addsy))
21965 /* Flip the bl to blx. This is a simple flip
21966 bit here because we generate PCREL_CALL for
21967 unconditional bls. */
21968 {
21969 newval = md_chars_to_number (buf, INSN_SIZE);
21970 newval = newval | 0x10000000;
21971 md_number_to_chars (buf, newval, INSN_SIZE);
21972 temp = 1;
21973 fixP->fx_done = 1;
21974 }
21975 else
21976 temp = 3;
21977 goto arm_branch_common;
21978
21979 case BFD_RELOC_ARM_PCREL_JUMP:
21980 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t)
21981 && fixP->fx_addsy
21982 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
21983 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
21984 && THUMB_IS_FUNC (fixP->fx_addsy))
21985 {
21986 /* This would map to a bl<cond>, b<cond>,
21987 b<always> to a Thumb function. We
21988 need to force a relocation for this particular
21989 case. */
21990 newval = md_chars_to_number (buf, INSN_SIZE);
21991 fixP->fx_done = 0;
21992 }
21993
21994 case BFD_RELOC_ARM_PLT32:
21995 #endif
21996 case BFD_RELOC_ARM_PCREL_BRANCH:
21997 temp = 3;
21998 goto arm_branch_common;
21999
22000 case BFD_RELOC_ARM_PCREL_BLX:
22001
22002 temp = 1;
22003 if (ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t)
22004 && fixP->fx_addsy
22005 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
22006 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
22007 && ARM_IS_FUNC (fixP->fx_addsy))
22008 {
22009 /* Flip the blx to a bl and warn. */
22010 const char *name = S_GET_NAME (fixP->fx_addsy);
22011 newval = 0xeb000000;
22012 as_warn_where (fixP->fx_file, fixP->fx_line,
22013 _("blx to '%s' an ARM ISA state function changed to bl"),
22014 name);
22015 md_number_to_chars (buf, newval, INSN_SIZE);
22016 temp = 3;
22017 fixP->fx_done = 1;
22018 }
22019
22020 #ifdef OBJ_ELF
22021 if (EF_ARM_EABI_VERSION (meabi_flags) >= EF_ARM_EABI_VER4)
22022 fixP->fx_r_type = BFD_RELOC_ARM_PCREL_CALL;
22023 #endif
22024
22025 arm_branch_common:
22026 /* We are going to store value (shifted right by two) in the
22027 instruction, in a 24 bit, signed field. Bits 26 through 32 either
22028 all clear or all set and bit 0 must be clear. For B/BL bit 1 must
22029 also be be clear. */
22030 if (value & temp)
22031 as_bad_where (fixP->fx_file, fixP->fx_line,
22032 _("misaligned branch destination"));
22033 if ((value & (offsetT)0xfe000000) != (offsetT)0
22034 && (value & (offsetT)0xfe000000) != (offsetT)0xfe000000)
22035 as_bad_where (fixP->fx_file, fixP->fx_line, BAD_RANGE);
22036
22037 if (fixP->fx_done || !seg->use_rela_p)
22038 {
22039 newval = md_chars_to_number (buf, INSN_SIZE);
22040 newval |= (value >> 2) & 0x00ffffff;
22041 /* Set the H bit on BLX instructions. */
22042 if (temp == 1)
22043 {
22044 if (value & 2)
22045 newval |= 0x01000000;
22046 else
22047 newval &= ~0x01000000;
22048 }
22049 md_number_to_chars (buf, newval, INSN_SIZE);
22050 }
22051 break;
22052
22053 case BFD_RELOC_THUMB_PCREL_BRANCH7: /* CBZ */
22054 /* CBZ can only branch forward. */
22055
22056 /* Attempts to use CBZ to branch to the next instruction
22057 (which, strictly speaking, are prohibited) will be turned into
22058 no-ops.
22059
22060 FIXME: It may be better to remove the instruction completely and
22061 perform relaxation. */
22062 if (value == -2)
22063 {
22064 newval = md_chars_to_number (buf, THUMB_SIZE);
22065 newval = 0xbf00; /* NOP encoding T1 */
22066 md_number_to_chars (buf, newval, THUMB_SIZE);
22067 }
22068 else
22069 {
22070 if (value & ~0x7e)
22071 as_bad_where (fixP->fx_file, fixP->fx_line, BAD_RANGE);
22072
22073 if (fixP->fx_done || !seg->use_rela_p)
22074 {
22075 newval = md_chars_to_number (buf, THUMB_SIZE);
22076 newval |= ((value & 0x3e) << 2) | ((value & 0x40) << 3);
22077 md_number_to_chars (buf, newval, THUMB_SIZE);
22078 }
22079 }
22080 break;
22081
22082 case BFD_RELOC_THUMB_PCREL_BRANCH9: /* Conditional branch. */
22083 if ((value & ~0xff) && ((value & ~0xff) != ~0xff))
22084 as_bad_where (fixP->fx_file, fixP->fx_line, BAD_RANGE);
22085
22086 if (fixP->fx_done || !seg->use_rela_p)
22087 {
22088 newval = md_chars_to_number (buf, THUMB_SIZE);
22089 newval |= (value & 0x1ff) >> 1;
22090 md_number_to_chars (buf, newval, THUMB_SIZE);
22091 }
22092 break;
22093
22094 case BFD_RELOC_THUMB_PCREL_BRANCH12: /* Unconditional branch. */
22095 if ((value & ~0x7ff) && ((value & ~0x7ff) != ~0x7ff))
22096 as_bad_where (fixP->fx_file, fixP->fx_line, BAD_RANGE);
22097
22098 if (fixP->fx_done || !seg->use_rela_p)
22099 {
22100 newval = md_chars_to_number (buf, THUMB_SIZE);
22101 newval |= (value & 0xfff) >> 1;
22102 md_number_to_chars (buf, newval, THUMB_SIZE);
22103 }
22104 break;
22105
22106 case BFD_RELOC_THUMB_PCREL_BRANCH20:
22107 if (fixP->fx_addsy
22108 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
22109 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
22110 && ARM_IS_FUNC (fixP->fx_addsy)
22111 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t))
22112 {
22113 /* Force a relocation for a branch 20 bits wide. */
22114 fixP->fx_done = 0;
22115 }
22116 if ((value & ~0x1fffff) && ((value & ~0x0fffff) != ~0x0fffff))
22117 as_bad_where (fixP->fx_file, fixP->fx_line,
22118 _("conditional branch out of range"));
22119
22120 if (fixP->fx_done || !seg->use_rela_p)
22121 {
22122 offsetT newval2;
22123 addressT S, J1, J2, lo, hi;
22124
22125 S = (value & 0x00100000) >> 20;
22126 J2 = (value & 0x00080000) >> 19;
22127 J1 = (value & 0x00040000) >> 18;
22128 hi = (value & 0x0003f000) >> 12;
22129 lo = (value & 0x00000ffe) >> 1;
22130
22131 newval = md_chars_to_number (buf, THUMB_SIZE);
22132 newval2 = md_chars_to_number (buf + THUMB_SIZE, THUMB_SIZE);
22133 newval |= (S << 10) | hi;
22134 newval2 |= (J1 << 13) | (J2 << 11) | lo;
22135 md_number_to_chars (buf, newval, THUMB_SIZE);
22136 md_number_to_chars (buf + THUMB_SIZE, newval2, THUMB_SIZE);
22137 }
22138 break;
22139
22140 case BFD_RELOC_THUMB_PCREL_BLX:
22141 /* If there is a blx from a thumb state function to
22142 another thumb function flip this to a bl and warn
22143 about it. */
22144
22145 if (fixP->fx_addsy
22146 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
22147 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
22148 && THUMB_IS_FUNC (fixP->fx_addsy))
22149 {
22150 const char *name = S_GET_NAME (fixP->fx_addsy);
22151 as_warn_where (fixP->fx_file, fixP->fx_line,
22152 _("blx to Thumb func '%s' from Thumb ISA state changed to bl"),
22153 name);
22154 newval = md_chars_to_number (buf + THUMB_SIZE, THUMB_SIZE);
22155 newval = newval | 0x1000;
22156 md_number_to_chars (buf+THUMB_SIZE, newval, THUMB_SIZE);
22157 fixP->fx_r_type = BFD_RELOC_THUMB_PCREL_BRANCH23;
22158 fixP->fx_done = 1;
22159 }
22160
22161
22162 goto thumb_bl_common;
22163
22164 case BFD_RELOC_THUMB_PCREL_BRANCH23:
22165 /* A bl from Thumb state ISA to an internal ARM state function
22166 is converted to a blx. */
22167 if (fixP->fx_addsy
22168 && (S_GET_SEGMENT (fixP->fx_addsy) == seg)
22169 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE)
22170 && ARM_IS_FUNC (fixP->fx_addsy)
22171 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t))
22172 {
22173 newval = md_chars_to_number (buf + THUMB_SIZE, THUMB_SIZE);
22174 newval = newval & ~0x1000;
22175 md_number_to_chars (buf+THUMB_SIZE, newval, THUMB_SIZE);
22176 fixP->fx_r_type = BFD_RELOC_THUMB_PCREL_BLX;
22177 fixP->fx_done = 1;
22178 }
22179
22180 thumb_bl_common:
22181
22182 if (fixP->fx_r_type == BFD_RELOC_THUMB_PCREL_BLX)
22183 /* For a BLX instruction, make sure that the relocation is rounded up
22184 to a word boundary. This follows the semantics of the instruction
22185 which specifies that bit 1 of the target address will come from bit
22186 1 of the base address. */
22187 value = (value + 3) & ~ 3;
22188
22189 #ifdef OBJ_ELF
22190 if (EF_ARM_EABI_VERSION (meabi_flags) >= EF_ARM_EABI_VER4
22191 && fixP->fx_r_type == BFD_RELOC_THUMB_PCREL_BLX)
22192 fixP->fx_r_type = BFD_RELOC_THUMB_PCREL_BRANCH23;
22193 #endif
22194
22195 if ((value & ~0x3fffff) && ((value & ~0x3fffff) != ~0x3fffff))
22196 {
22197 if (!(ARM_CPU_HAS_FEATURE (cpu_variant, arm_arch_t2)))
22198 as_bad_where (fixP->fx_file, fixP->fx_line, BAD_RANGE);
22199 else if ((value & ~0x1ffffff)
22200 && ((value & ~0x1ffffff) != ~0x1ffffff))
22201 as_bad_where (fixP->fx_file, fixP->fx_line,
22202 _("Thumb2 branch out of range"));
22203 }
22204
22205 if (fixP->fx_done || !seg->use_rela_p)
22206 encode_thumb2_b_bl_offset (buf, value);
22207
22208 break;
22209
22210 case BFD_RELOC_THUMB_PCREL_BRANCH25:
22211 if ((value & ~0x0ffffff) && ((value & ~0x0ffffff) != ~0x0ffffff))
22212 as_bad_where (fixP->fx_file, fixP->fx_line, BAD_RANGE);
22213
22214 if (fixP->fx_done || !seg->use_rela_p)
22215 encode_thumb2_b_bl_offset (buf, value);
22216
22217 break;
22218
22219 case BFD_RELOC_8:
22220 if (fixP->fx_done || !seg->use_rela_p)
22221 md_number_to_chars (buf, value, 1);
22222 break;
22223
22224 case BFD_RELOC_16:
22225 if (fixP->fx_done || !seg->use_rela_p)
22226 md_number_to_chars (buf, value, 2);
22227 break;
22228
22229 #ifdef OBJ_ELF
22230 case BFD_RELOC_ARM_TLS_CALL:
22231 case BFD_RELOC_ARM_THM_TLS_CALL:
22232 case BFD_RELOC_ARM_TLS_DESCSEQ:
22233 case BFD_RELOC_ARM_THM_TLS_DESCSEQ:
22234 S_SET_THREAD_LOCAL (fixP->fx_addsy);
22235 break;
22236
22237 case BFD_RELOC_ARM_TLS_GOTDESC:
22238 case BFD_RELOC_ARM_TLS_GD32:
22239 case BFD_RELOC_ARM_TLS_LE32:
22240 case BFD_RELOC_ARM_TLS_IE32:
22241 case BFD_RELOC_ARM_TLS_LDM32:
22242 case BFD_RELOC_ARM_TLS_LDO32:
22243 S_SET_THREAD_LOCAL (fixP->fx_addsy);
22244 /* fall through */
22245
22246 case BFD_RELOC_ARM_GOT32:
22247 case BFD_RELOC_ARM_GOTOFF:
22248 if (fixP->fx_done || !seg->use_rela_p)
22249 md_number_to_chars (buf, 0, 4);
22250 break;
22251
22252 case BFD_RELOC_ARM_GOT_PREL:
22253 if (fixP->fx_done || !seg->use_rela_p)
22254 md_number_to_chars (buf, value, 4);
22255 break;
22256
22257 case BFD_RELOC_ARM_TARGET2:
22258 /* TARGET2 is not partial-inplace, so we need to write the
22259 addend here for REL targets, because it won't be written out
22260 during reloc processing later. */
22261 if (fixP->fx_done || !seg->use_rela_p)
22262 md_number_to_chars (buf, fixP->fx_offset, 4);
22263 break;
22264 #endif
22265
22266 case BFD_RELOC_RVA:
22267 case BFD_RELOC_32:
22268 case BFD_RELOC_ARM_TARGET1:
22269 case BFD_RELOC_ARM_ROSEGREL32:
22270 case BFD_RELOC_ARM_SBREL32:
22271 case BFD_RELOC_32_PCREL:
22272 #ifdef TE_PE
22273 case BFD_RELOC_32_SECREL:
22274 #endif
22275 if (fixP->fx_done || !seg->use_rela_p)
22276 #ifdef TE_WINCE
22277 /* For WinCE we only do this for pcrel fixups. */
22278 if (fixP->fx_done || fixP->fx_pcrel)
22279 #endif
22280 md_number_to_chars (buf, value, 4);
22281 break;
22282
22283 #ifdef OBJ_ELF
22284 case BFD_RELOC_ARM_PREL31:
22285 if (fixP->fx_done || !seg->use_rela_p)
22286 {
22287 newval = md_chars_to_number (buf, 4) & 0x80000000;
22288 if ((value ^ (value >> 1)) & 0x40000000)
22289 {
22290 as_bad_where (fixP->fx_file, fixP->fx_line,
22291 _("rel31 relocation overflow"));
22292 }
22293 newval |= value & 0x7fffffff;
22294 md_number_to_chars (buf, newval, 4);
22295 }
22296 break;
22297 #endif
22298
22299 case BFD_RELOC_ARM_CP_OFF_IMM:
22300 case BFD_RELOC_ARM_T32_CP_OFF_IMM:
22301 if (value < -1023 || value > 1023 || (value & 3))
22302 as_bad_where (fixP->fx_file, fixP->fx_line,
22303 _("co-processor offset out of range"));
22304 cp_off_common:
22305 sign = value > 0;
22306 if (value < 0)
22307 value = -value;
22308 if (fixP->fx_r_type == BFD_RELOC_ARM_CP_OFF_IMM
22309 || fixP->fx_r_type == BFD_RELOC_ARM_CP_OFF_IMM_S2)
22310 newval = md_chars_to_number (buf, INSN_SIZE);
22311 else
22312 newval = get_thumb32_insn (buf);
22313 if (value == 0)
22314 newval &= 0xffffff00;
22315 else
22316 {
22317 newval &= 0xff7fff00;
22318 newval |= (value >> 2) | (sign ? INDEX_UP : 0);
22319 }
22320 if (fixP->fx_r_type == BFD_RELOC_ARM_CP_OFF_IMM
22321 || fixP->fx_r_type == BFD_RELOC_ARM_CP_OFF_IMM_S2)
22322 md_number_to_chars (buf, newval, INSN_SIZE);
22323 else
22324 put_thumb32_insn (buf, newval);
22325 break;
22326
22327 case BFD_RELOC_ARM_CP_OFF_IMM_S2:
22328 case BFD_RELOC_ARM_T32_CP_OFF_IMM_S2:
22329 if (value < -255 || value > 255)
22330 as_bad_where (fixP->fx_file, fixP->fx_line,
22331 _("co-processor offset out of range"));
22332 value *= 4;
22333 goto cp_off_common;
22334
22335 case BFD_RELOC_ARM_THUMB_OFFSET:
22336 newval = md_chars_to_number (buf, THUMB_SIZE);
22337 /* Exactly what ranges, and where the offset is inserted depends
22338 on the type of instruction, we can establish this from the
22339 top 4 bits. */
22340 switch (newval >> 12)
22341 {
22342 case 4: /* PC load. */
22343 /* Thumb PC loads are somewhat odd, bit 1 of the PC is
22344 forced to zero for these loads; md_pcrel_from has already
22345 compensated for this. */
22346 if (value & 3)
22347 as_bad_where (fixP->fx_file, fixP->fx_line,
22348 _("invalid offset, target not word aligned (0x%08lX)"),
22349 (((unsigned long) fixP->fx_frag->fr_address
22350 + (unsigned long) fixP->fx_where) & ~3)
22351 + (unsigned long) value);
22352
22353 if (value & ~0x3fc)
22354 as_bad_where (fixP->fx_file, fixP->fx_line,
22355 _("invalid offset, value too big (0x%08lX)"),
22356 (long) value);
22357
22358 newval |= value >> 2;
22359 break;
22360
22361 case 9: /* SP load/store. */
22362 if (value & ~0x3fc)
22363 as_bad_where (fixP->fx_file, fixP->fx_line,
22364 _("invalid offset, value too big (0x%08lX)"),
22365 (long) value);
22366 newval |= value >> 2;
22367 break;
22368
22369 case 6: /* Word load/store. */
22370 if (value & ~0x7c)
22371 as_bad_where (fixP->fx_file, fixP->fx_line,
22372 _("invalid offset, value too big (0x%08lX)"),
22373 (long) value);
22374 newval |= value << 4; /* 6 - 2. */
22375 break;
22376
22377 case 7: /* Byte load/store. */
22378 if (value & ~0x1f)
22379 as_bad_where (fixP->fx_file, fixP->fx_line,
22380 _("invalid offset, value too big (0x%08lX)"),
22381 (long) value);
22382 newval |= value << 6;
22383 break;
22384
22385 case 8: /* Halfword load/store. */
22386 if (value & ~0x3e)
22387 as_bad_where (fixP->fx_file, fixP->fx_line,
22388 _("invalid offset, value too big (0x%08lX)"),
22389 (long) value);
22390 newval |= value << 5; /* 6 - 1. */
22391 break;
22392
22393 default:
22394 as_bad_where (fixP->fx_file, fixP->fx_line,
22395 "Unable to process relocation for thumb opcode: %lx",
22396 (unsigned long) newval);
22397 break;
22398 }
22399 md_number_to_chars (buf, newval, THUMB_SIZE);
22400 break;
22401
22402 case BFD_RELOC_ARM_THUMB_ADD:
22403 /* This is a complicated relocation, since we use it for all of
22404 the following immediate relocations:
22405
22406 3bit ADD/SUB
22407 8bit ADD/SUB
22408 9bit ADD/SUB SP word-aligned
22409 10bit ADD PC/SP word-aligned
22410
22411 The type of instruction being processed is encoded in the
22412 instruction field:
22413
22414 0x8000 SUB
22415 0x00F0 Rd
22416 0x000F Rs
22417 */
22418 newval = md_chars_to_number (buf, THUMB_SIZE);
22419 {
22420 int rd = (newval >> 4) & 0xf;
22421 int rs = newval & 0xf;
22422 int subtract = !!(newval & 0x8000);
22423
22424 /* Check for HI regs, only very restricted cases allowed:
22425 Adjusting SP, and using PC or SP to get an address. */
22426 if ((rd > 7 && (rd != REG_SP || rs != REG_SP))
22427 || (rs > 7 && rs != REG_SP && rs != REG_PC))
22428 as_bad_where (fixP->fx_file, fixP->fx_line,
22429 _("invalid Hi register with immediate"));
22430
22431 /* If value is negative, choose the opposite instruction. */
22432 if (value < 0)
22433 {
22434 value = -value;
22435 subtract = !subtract;
22436 if (value < 0)
22437 as_bad_where (fixP->fx_file, fixP->fx_line,
22438 _("immediate value out of range"));
22439 }
22440
22441 if (rd == REG_SP)
22442 {
22443 if (value & ~0x1fc)
22444 as_bad_where (fixP->fx_file, fixP->fx_line,
22445 _("invalid immediate for stack address calculation"));
22446 newval = subtract ? T_OPCODE_SUB_ST : T_OPCODE_ADD_ST;
22447 newval |= value >> 2;
22448 }
22449 else if (rs == REG_PC || rs == REG_SP)
22450 {
22451 if (subtract || value & ~0x3fc)
22452 as_bad_where (fixP->fx_file, fixP->fx_line,
22453 _("invalid immediate for address calculation (value = 0x%08lX)"),
22454 (unsigned long) value);
22455 newval = (rs == REG_PC ? T_OPCODE_ADD_PC : T_OPCODE_ADD_SP);
22456 newval |= rd << 8;
22457 newval |= value >> 2;
22458 }
22459 else if (rs == rd)
22460 {
22461 if (value & ~0xff)
22462 as_bad_where (fixP->fx_file, fixP->fx_line,
22463 _("immediate value out of range"));
22464 newval = subtract ? T_OPCODE_SUB_I8 : T_OPCODE_ADD_I8;
22465 newval |= (rd << 8) | value;
22466 }
22467 else
22468 {
22469 if (value & ~0x7)
22470 as_bad_where (fixP->fx_file, fixP->fx_line,
22471 _("immediate value out of range"));
22472 newval = subtract ? T_OPCODE_SUB_I3 : T_OPCODE_ADD_I3;
22473 newval |= rd | (rs << 3) | (value << 6);
22474 }
22475 }
22476 md_number_to_chars (buf, newval, THUMB_SIZE);
22477 break;
22478
22479 case BFD_RELOC_ARM_THUMB_IMM:
22480 newval = md_chars_to_number (buf, THUMB_SIZE);
22481 if (value < 0 || value > 255)
22482 as_bad_where (fixP->fx_file, fixP->fx_line,
22483 _("invalid immediate: %ld is out of range"),
22484 (long) value);
22485 newval |= value;
22486 md_number_to_chars (buf, newval, THUMB_SIZE);
22487 break;
22488
22489 case BFD_RELOC_ARM_THUMB_SHIFT:
22490 /* 5bit shift value (0..32). LSL cannot take 32. */
22491 newval = md_chars_to_number (buf, THUMB_SIZE) & 0xf83f;
22492 temp = newval & 0xf800;
22493 if (value < 0 || value > 32 || (value == 32 && temp == T_OPCODE_LSL_I))
22494 as_bad_where (fixP->fx_file, fixP->fx_line,
22495 _("invalid shift value: %ld"), (long) value);
22496 /* Shifts of zero must be encoded as LSL. */
22497 if (value == 0)
22498 newval = (newval & 0x003f) | T_OPCODE_LSL_I;
22499 /* Shifts of 32 are encoded as zero. */
22500 else if (value == 32)
22501 value = 0;
22502 newval |= value << 6;
22503 md_number_to_chars (buf, newval, THUMB_SIZE);
22504 break;
22505
22506 case BFD_RELOC_VTABLE_INHERIT:
22507 case BFD_RELOC_VTABLE_ENTRY:
22508 fixP->fx_done = 0;
22509 return;
22510
22511 case BFD_RELOC_ARM_MOVW:
22512 case BFD_RELOC_ARM_MOVT:
22513 case BFD_RELOC_ARM_THUMB_MOVW:
22514 case BFD_RELOC_ARM_THUMB_MOVT:
22515 if (fixP->fx_done || !seg->use_rela_p)
22516 {
22517 /* REL format relocations are limited to a 16-bit addend. */
22518 if (!fixP->fx_done)
22519 {
22520 if (value < -0x8000 || value > 0x7fff)
22521 as_bad_where (fixP->fx_file, fixP->fx_line,
22522 _("offset out of range"));
22523 }
22524 else if (fixP->fx_r_type == BFD_RELOC_ARM_MOVT
22525 || fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVT)
22526 {
22527 value >>= 16;
22528 }
22529
22530 if (fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVW
22531 || fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVT)
22532 {
22533 newval = get_thumb32_insn (buf);
22534 newval &= 0xfbf08f00;
22535 newval |= (value & 0xf000) << 4;
22536 newval |= (value & 0x0800) << 15;
22537 newval |= (value & 0x0700) << 4;
22538 newval |= (value & 0x00ff);
22539 put_thumb32_insn (buf, newval);
22540 }
22541 else
22542 {
22543 newval = md_chars_to_number (buf, 4);
22544 newval &= 0xfff0f000;
22545 newval |= value & 0x0fff;
22546 newval |= (value & 0xf000) << 4;
22547 md_number_to_chars (buf, newval, 4);
22548 }
22549 }
22550 return;
22551
22552 case BFD_RELOC_ARM_ALU_PC_G0_NC:
22553 case BFD_RELOC_ARM_ALU_PC_G0:
22554 case BFD_RELOC_ARM_ALU_PC_G1_NC:
22555 case BFD_RELOC_ARM_ALU_PC_G1:
22556 case BFD_RELOC_ARM_ALU_PC_G2:
22557 case BFD_RELOC_ARM_ALU_SB_G0_NC:
22558 case BFD_RELOC_ARM_ALU_SB_G0:
22559 case BFD_RELOC_ARM_ALU_SB_G1_NC:
22560 case BFD_RELOC_ARM_ALU_SB_G1:
22561 case BFD_RELOC_ARM_ALU_SB_G2:
22562 gas_assert (!fixP->fx_done);
22563 if (!seg->use_rela_p)
22564 {
22565 bfd_vma insn;
22566 bfd_vma encoded_addend;
22567 bfd_vma addend_abs = abs (value);
22568
22569 /* Check that the absolute value of the addend can be
22570 expressed as an 8-bit constant plus a rotation. */
22571 encoded_addend = encode_arm_immediate (addend_abs);
22572 if (encoded_addend == (unsigned int) FAIL)
22573 as_bad_where (fixP->fx_file, fixP->fx_line,
22574 _("the offset 0x%08lX is not representable"),
22575 (unsigned long) addend_abs);
22576
22577 /* Extract the instruction. */
22578 insn = md_chars_to_number (buf, INSN_SIZE);
22579
22580 /* If the addend is positive, use an ADD instruction.
22581 Otherwise use a SUB. Take care not to destroy the S bit. */
22582 insn &= 0xff1fffff;
22583 if (value < 0)
22584 insn |= 1 << 22;
22585 else
22586 insn |= 1 << 23;
22587
22588 /* Place the encoded addend into the first 12 bits of the
22589 instruction. */
22590 insn &= 0xfffff000;
22591 insn |= encoded_addend;
22592
22593 /* Update the instruction. */
22594 md_number_to_chars (buf, insn, INSN_SIZE);
22595 }
22596 break;
22597
22598 case BFD_RELOC_ARM_LDR_PC_G0:
22599 case BFD_RELOC_ARM_LDR_PC_G1:
22600 case BFD_RELOC_ARM_LDR_PC_G2:
22601 case BFD_RELOC_ARM_LDR_SB_G0:
22602 case BFD_RELOC_ARM_LDR_SB_G1:
22603 case BFD_RELOC_ARM_LDR_SB_G2:
22604 gas_assert (!fixP->fx_done);
22605 if (!seg->use_rela_p)
22606 {
22607 bfd_vma insn;
22608 bfd_vma addend_abs = abs (value);
22609
22610 /* Check that the absolute value of the addend can be
22611 encoded in 12 bits. */
22612 if (addend_abs >= 0x1000)
22613 as_bad_where (fixP->fx_file, fixP->fx_line,
22614 _("bad offset 0x%08lX (only 12 bits available for the magnitude)"),
22615 (unsigned long) addend_abs);
22616
22617 /* Extract the instruction. */
22618 insn = md_chars_to_number (buf, INSN_SIZE);
22619
22620 /* If the addend is negative, clear bit 23 of the instruction.
22621 Otherwise set it. */
22622 if (value < 0)
22623 insn &= ~(1 << 23);
22624 else
22625 insn |= 1 << 23;
22626
22627 /* Place the absolute value of the addend into the first 12 bits
22628 of the instruction. */
22629 insn &= 0xfffff000;
22630 insn |= addend_abs;
22631
22632 /* Update the instruction. */
22633 md_number_to_chars (buf, insn, INSN_SIZE);
22634 }
22635 break;
22636
22637 case BFD_RELOC_ARM_LDRS_PC_G0:
22638 case BFD_RELOC_ARM_LDRS_PC_G1:
22639 case BFD_RELOC_ARM_LDRS_PC_G2:
22640 case BFD_RELOC_ARM_LDRS_SB_G0:
22641 case BFD_RELOC_ARM_LDRS_SB_G1:
22642 case BFD_RELOC_ARM_LDRS_SB_G2:
22643 gas_assert (!fixP->fx_done);
22644 if (!seg->use_rela_p)
22645 {
22646 bfd_vma insn;
22647 bfd_vma addend_abs = abs (value);
22648
22649 /* Check that the absolute value of the addend can be
22650 encoded in 8 bits. */
22651 if (addend_abs >= 0x100)
22652 as_bad_where (fixP->fx_file, fixP->fx_line,
22653 _("bad offset 0x%08lX (only 8 bits available for the magnitude)"),
22654 (unsigned long) addend_abs);
22655
22656 /* Extract the instruction. */
22657 insn = md_chars_to_number (buf, INSN_SIZE);
22658
22659 /* If the addend is negative, clear bit 23 of the instruction.
22660 Otherwise set it. */
22661 if (value < 0)
22662 insn &= ~(1 << 23);
22663 else
22664 insn |= 1 << 23;
22665
22666 /* Place the first four bits of the absolute value of the addend
22667 into the first 4 bits of the instruction, and the remaining
22668 four into bits 8 .. 11. */
22669 insn &= 0xfffff0f0;
22670 insn |= (addend_abs & 0xf) | ((addend_abs & 0xf0) << 4);
22671
22672 /* Update the instruction. */
22673 md_number_to_chars (buf, insn, INSN_SIZE);
22674 }
22675 break;
22676
22677 case BFD_RELOC_ARM_LDC_PC_G0:
22678 case BFD_RELOC_ARM_LDC_PC_G1:
22679 case BFD_RELOC_ARM_LDC_PC_G2:
22680 case BFD_RELOC_ARM_LDC_SB_G0:
22681 case BFD_RELOC_ARM_LDC_SB_G1:
22682 case BFD_RELOC_ARM_LDC_SB_G2:
22683 gas_assert (!fixP->fx_done);
22684 if (!seg->use_rela_p)
22685 {
22686 bfd_vma insn;
22687 bfd_vma addend_abs = abs (value);
22688
22689 /* Check that the absolute value of the addend is a multiple of
22690 four and, when divided by four, fits in 8 bits. */
22691 if (addend_abs & 0x3)
22692 as_bad_where (fixP->fx_file, fixP->fx_line,
22693 _("bad offset 0x%08lX (must be word-aligned)"),
22694 (unsigned long) addend_abs);
22695
22696 if ((addend_abs >> 2) > 0xff)
22697 as_bad_where (fixP->fx_file, fixP->fx_line,
22698 _("bad offset 0x%08lX (must be an 8-bit number of words)"),
22699 (unsigned long) addend_abs);
22700
22701 /* Extract the instruction. */
22702 insn = md_chars_to_number (buf, INSN_SIZE);
22703
22704 /* If the addend is negative, clear bit 23 of the instruction.
22705 Otherwise set it. */
22706 if (value < 0)
22707 insn &= ~(1 << 23);
22708 else
22709 insn |= 1 << 23;
22710
22711 /* Place the addend (divided by four) into the first eight
22712 bits of the instruction. */
22713 insn &= 0xfffffff0;
22714 insn |= addend_abs >> 2;
22715
22716 /* Update the instruction. */
22717 md_number_to_chars (buf, insn, INSN_SIZE);
22718 }
22719 break;
22720
22721 case BFD_RELOC_ARM_V4BX:
22722 /* This will need to go in the object file. */
22723 fixP->fx_done = 0;
22724 break;
22725
22726 case BFD_RELOC_UNUSED:
22727 default:
22728 as_bad_where (fixP->fx_file, fixP->fx_line,
22729 _("bad relocation fixup type (%d)"), fixP->fx_r_type);
22730 }
22731 }
22732
22733 /* Translate internal representation of relocation info to BFD target
22734 format. */
22735
22736 arelent *
22737 tc_gen_reloc (asection *section, fixS *fixp)
22738 {
22739 arelent * reloc;
22740 bfd_reloc_code_real_type code;
22741
22742 reloc = (arelent *) xmalloc (sizeof (arelent));
22743
22744 reloc->sym_ptr_ptr = (asymbol **) xmalloc (sizeof (asymbol *));
22745 *reloc->sym_ptr_ptr = symbol_get_bfdsym (fixp->fx_addsy);
22746 reloc->address = fixp->fx_frag->fr_address + fixp->fx_where;
22747
22748 if (fixp->fx_pcrel)
22749 {
22750 if (section->use_rela_p)
22751 fixp->fx_offset -= md_pcrel_from_section (fixp, section);
22752 else
22753 fixp->fx_offset = reloc->address;
22754 }
22755 reloc->addend = fixp->fx_offset;
22756
22757 switch (fixp->fx_r_type)
22758 {
22759 case BFD_RELOC_8:
22760 if (fixp->fx_pcrel)
22761 {
22762 code = BFD_RELOC_8_PCREL;
22763 break;
22764 }
22765
22766 case BFD_RELOC_16:
22767 if (fixp->fx_pcrel)
22768 {
22769 code = BFD_RELOC_16_PCREL;
22770 break;
22771 }
22772
22773 case BFD_RELOC_32:
22774 if (fixp->fx_pcrel)
22775 {
22776 code = BFD_RELOC_32_PCREL;
22777 break;
22778 }
22779
22780 case BFD_RELOC_ARM_MOVW:
22781 if (fixp->fx_pcrel)
22782 {
22783 code = BFD_RELOC_ARM_MOVW_PCREL;
22784 break;
22785 }
22786
22787 case BFD_RELOC_ARM_MOVT:
22788 if (fixp->fx_pcrel)
22789 {
22790 code = BFD_RELOC_ARM_MOVT_PCREL;
22791 break;
22792 }
22793
22794 case BFD_RELOC_ARM_THUMB_MOVW:
22795 if (fixp->fx_pcrel)
22796 {
22797 code = BFD_RELOC_ARM_THUMB_MOVW_PCREL;
22798 break;
22799 }
22800
22801 case BFD_RELOC_ARM_THUMB_MOVT:
22802 if (fixp->fx_pcrel)
22803 {
22804 code = BFD_RELOC_ARM_THUMB_MOVT_PCREL;
22805 break;
22806 }
22807
22808 case BFD_RELOC_NONE:
22809 case BFD_RELOC_ARM_PCREL_BRANCH:
22810 case BFD_RELOC_ARM_PCREL_BLX:
22811 case BFD_RELOC_RVA:
22812 case BFD_RELOC_THUMB_PCREL_BRANCH7:
22813 case BFD_RELOC_THUMB_PCREL_BRANCH9:
22814 case BFD_RELOC_THUMB_PCREL_BRANCH12:
22815 case BFD_RELOC_THUMB_PCREL_BRANCH20:
22816 case BFD_RELOC_THUMB_PCREL_BRANCH23:
22817 case BFD_RELOC_THUMB_PCREL_BRANCH25:
22818 case BFD_RELOC_VTABLE_ENTRY:
22819 case BFD_RELOC_VTABLE_INHERIT:
22820 #ifdef TE_PE
22821 case BFD_RELOC_32_SECREL:
22822 #endif
22823 code = fixp->fx_r_type;
22824 break;
22825
22826 case BFD_RELOC_THUMB_PCREL_BLX:
22827 #ifdef OBJ_ELF
22828 if (EF_ARM_EABI_VERSION (meabi_flags) >= EF_ARM_EABI_VER4)
22829 code = BFD_RELOC_THUMB_PCREL_BRANCH23;
22830 else
22831 #endif
22832 code = BFD_RELOC_THUMB_PCREL_BLX;
22833 break;
22834
22835 case BFD_RELOC_ARM_LITERAL:
22836 case BFD_RELOC_ARM_HWLITERAL:
22837 /* If this is called then the a literal has
22838 been referenced across a section boundary. */
22839 as_bad_where (fixp->fx_file, fixp->fx_line,
22840 _("literal referenced across section boundary"));
22841 return NULL;
22842
22843 #ifdef OBJ_ELF
22844 case BFD_RELOC_ARM_TLS_CALL:
22845 case BFD_RELOC_ARM_THM_TLS_CALL:
22846 case BFD_RELOC_ARM_TLS_DESCSEQ:
22847 case BFD_RELOC_ARM_THM_TLS_DESCSEQ:
22848 case BFD_RELOC_ARM_GOT32:
22849 case BFD_RELOC_ARM_GOTOFF:
22850 case BFD_RELOC_ARM_GOT_PREL:
22851 case BFD_RELOC_ARM_PLT32:
22852 case BFD_RELOC_ARM_TARGET1:
22853 case BFD_RELOC_ARM_ROSEGREL32:
22854 case BFD_RELOC_ARM_SBREL32:
22855 case BFD_RELOC_ARM_PREL31:
22856 case BFD_RELOC_ARM_TARGET2:
22857 case BFD_RELOC_ARM_TLS_LE32:
22858 case BFD_RELOC_ARM_TLS_LDO32:
22859 case BFD_RELOC_ARM_PCREL_CALL:
22860 case BFD_RELOC_ARM_PCREL_JUMP:
22861 case BFD_RELOC_ARM_ALU_PC_G0_NC:
22862 case BFD_RELOC_ARM_ALU_PC_G0:
22863 case BFD_RELOC_ARM_ALU_PC_G1_NC:
22864 case BFD_RELOC_ARM_ALU_PC_G1:
22865 case BFD_RELOC_ARM_ALU_PC_G2:
22866 case BFD_RELOC_ARM_LDR_PC_G0:
22867 case BFD_RELOC_ARM_LDR_PC_G1:
22868 case BFD_RELOC_ARM_LDR_PC_G2:
22869 case BFD_RELOC_ARM_LDRS_PC_G0:
22870 case BFD_RELOC_ARM_LDRS_PC_G1:
22871 case BFD_RELOC_ARM_LDRS_PC_G2:
22872 case BFD_RELOC_ARM_LDC_PC_G0:
22873 case BFD_RELOC_ARM_LDC_PC_G1:
22874 case BFD_RELOC_ARM_LDC_PC_G2:
22875 case BFD_RELOC_ARM_ALU_SB_G0_NC:
22876 case BFD_RELOC_ARM_ALU_SB_G0:
22877 case BFD_RELOC_ARM_ALU_SB_G1_NC:
22878 case BFD_RELOC_ARM_ALU_SB_G1:
22879 case BFD_RELOC_ARM_ALU_SB_G2:
22880 case BFD_RELOC_ARM_LDR_SB_G0:
22881 case BFD_RELOC_ARM_LDR_SB_G1:
22882 case BFD_RELOC_ARM_LDR_SB_G2:
22883 case BFD_RELOC_ARM_LDRS_SB_G0:
22884 case BFD_RELOC_ARM_LDRS_SB_G1:
22885 case BFD_RELOC_ARM_LDRS_SB_G2:
22886 case BFD_RELOC_ARM_LDC_SB_G0:
22887 case BFD_RELOC_ARM_LDC_SB_G1:
22888 case BFD_RELOC_ARM_LDC_SB_G2:
22889 case BFD_RELOC_ARM_V4BX:
22890 code = fixp->fx_r_type;
22891 break;
22892
22893 case BFD_RELOC_ARM_TLS_GOTDESC:
22894 case BFD_RELOC_ARM_TLS_GD32:
22895 case BFD_RELOC_ARM_TLS_IE32:
22896 case BFD_RELOC_ARM_TLS_LDM32:
22897 /* BFD will include the symbol's address in the addend.
22898 But we don't want that, so subtract it out again here. */
22899 if (!S_IS_COMMON (fixp->fx_addsy))
22900 reloc->addend -= (*reloc->sym_ptr_ptr)->value;
22901 code = fixp->fx_r_type;
22902 break;
22903 #endif
22904
22905 case BFD_RELOC_ARM_IMMEDIATE:
22906 as_bad_where (fixp->fx_file, fixp->fx_line,
22907 _("internal relocation (type: IMMEDIATE) not fixed up"));
22908 return NULL;
22909
22910 case BFD_RELOC_ARM_ADRL_IMMEDIATE:
22911 as_bad_where (fixp->fx_file, fixp->fx_line,
22912 _("ADRL used for a symbol not defined in the same file"));
22913 return NULL;
22914
22915 case BFD_RELOC_ARM_OFFSET_IMM:
22916 if (section->use_rela_p)
22917 {
22918 code = fixp->fx_r_type;
22919 break;
22920 }
22921
22922 if (fixp->fx_addsy != NULL
22923 && !S_IS_DEFINED (fixp->fx_addsy)
22924 && S_IS_LOCAL (fixp->fx_addsy))
22925 {
22926 as_bad_where (fixp->fx_file, fixp->fx_line,
22927 _("undefined local label `%s'"),
22928 S_GET_NAME (fixp->fx_addsy));
22929 return NULL;
22930 }
22931
22932 as_bad_where (fixp->fx_file, fixp->fx_line,
22933 _("internal_relocation (type: OFFSET_IMM) not fixed up"));
22934 return NULL;
22935
22936 default:
22937 {
22938 char * type;
22939
22940 switch (fixp->fx_r_type)
22941 {
22942 case BFD_RELOC_NONE: type = "NONE"; break;
22943 case BFD_RELOC_ARM_OFFSET_IMM8: type = "OFFSET_IMM8"; break;
22944 case BFD_RELOC_ARM_SHIFT_IMM: type = "SHIFT_IMM"; break;
22945 case BFD_RELOC_ARM_SMC: type = "SMC"; break;
22946 case BFD_RELOC_ARM_SWI: type = "SWI"; break;
22947 case BFD_RELOC_ARM_MULTI: type = "MULTI"; break;
22948 case BFD_RELOC_ARM_CP_OFF_IMM: type = "CP_OFF_IMM"; break;
22949 case BFD_RELOC_ARM_T32_OFFSET_IMM: type = "T32_OFFSET_IMM"; break;
22950 case BFD_RELOC_ARM_T32_CP_OFF_IMM: type = "T32_CP_OFF_IMM"; break;
22951 case BFD_RELOC_ARM_THUMB_ADD: type = "THUMB_ADD"; break;
22952 case BFD_RELOC_ARM_THUMB_SHIFT: type = "THUMB_SHIFT"; break;
22953 case BFD_RELOC_ARM_THUMB_IMM: type = "THUMB_IMM"; break;
22954 case BFD_RELOC_ARM_THUMB_OFFSET: type = "THUMB_OFFSET"; break;
22955 default: type = _("<unknown>"); break;
22956 }
22957 as_bad_where (fixp->fx_file, fixp->fx_line,
22958 _("cannot represent %s relocation in this object file format"),
22959 type);
22960 return NULL;
22961 }
22962 }
22963
22964 #ifdef OBJ_ELF
22965 if ((code == BFD_RELOC_32_PCREL || code == BFD_RELOC_32)
22966 && GOT_symbol
22967 && fixp->fx_addsy == GOT_symbol)
22968 {
22969 code = BFD_RELOC_ARM_GOTPC;
22970 reloc->addend = fixp->fx_offset = reloc->address;
22971 }
22972 #endif
22973
22974 reloc->howto = bfd_reloc_type_lookup (stdoutput, code);
22975
22976 if (reloc->howto == NULL)
22977 {
22978 as_bad_where (fixp->fx_file, fixp->fx_line,
22979 _("cannot represent %s relocation in this object file format"),
22980 bfd_get_reloc_code_name (code));
22981 return NULL;
22982 }
22983
22984 /* HACK: Since arm ELF uses Rel instead of Rela, encode the
22985 vtable entry to be used in the relocation's section offset. */
22986 if (fixp->fx_r_type == BFD_RELOC_VTABLE_ENTRY)
22987 reloc->address = fixp->fx_offset;
22988
22989 return reloc;
22990 }
22991
22992 /* This fix_new is called by cons via TC_CONS_FIX_NEW. */
22993
22994 void
22995 cons_fix_new_arm (fragS * frag,
22996 int where,
22997 int size,
22998 expressionS * exp)
22999 {
23000 bfd_reloc_code_real_type type;
23001 int pcrel = 0;
23002
23003 /* Pick a reloc.
23004 FIXME: @@ Should look at CPU word size. */
23005 switch (size)
23006 {
23007 case 1:
23008 type = BFD_RELOC_8;
23009 break;
23010 case 2:
23011 type = BFD_RELOC_16;
23012 break;
23013 case 4:
23014 default:
23015 type = BFD_RELOC_32;
23016 break;
23017 case 8:
23018 type = BFD_RELOC_64;
23019 break;
23020 }
23021
23022 #ifdef TE_PE
23023 if (exp->X_op == O_secrel)
23024 {
23025 exp->X_op = O_symbol;
23026 type = BFD_RELOC_32_SECREL;
23027 }
23028 #endif
23029
23030 fix_new_exp (frag, where, (int) size, exp, pcrel, type);
23031 }
23032
23033 #if defined (OBJ_COFF)
23034 void
23035 arm_validate_fix (fixS * fixP)
23036 {
23037 /* If the destination of the branch is a defined symbol which does not have
23038 the THUMB_FUNC attribute, then we must be calling a function which has
23039 the (interfacearm) attribute. We look for the Thumb entry point to that
23040 function and change the branch to refer to that function instead. */
23041 if (fixP->fx_r_type == BFD_RELOC_THUMB_PCREL_BRANCH23
23042 && fixP->fx_addsy != NULL
23043 && S_IS_DEFINED (fixP->fx_addsy)
23044 && ! THUMB_IS_FUNC (fixP->fx_addsy))
23045 {
23046 fixP->fx_addsy = find_real_start (fixP->fx_addsy);
23047 }
23048 }
23049 #endif
23050
23051
23052 int
23053 arm_force_relocation (struct fix * fixp)
23054 {
23055 #if defined (OBJ_COFF) && defined (TE_PE)
23056 if (fixp->fx_r_type == BFD_RELOC_RVA)
23057 return 1;
23058 #endif
23059
23060 /* In case we have a call or a branch to a function in ARM ISA mode from
23061 a thumb function or vice-versa force the relocation. These relocations
23062 are cleared off for some cores that might have blx and simple transformations
23063 are possible. */
23064
23065 #ifdef OBJ_ELF
23066 switch (fixp->fx_r_type)
23067 {
23068 case BFD_RELOC_ARM_PCREL_JUMP:
23069 case BFD_RELOC_ARM_PCREL_CALL:
23070 case BFD_RELOC_THUMB_PCREL_BLX:
23071 if (THUMB_IS_FUNC (fixp->fx_addsy))
23072 return 1;
23073 break;
23074
23075 case BFD_RELOC_ARM_PCREL_BLX:
23076 case BFD_RELOC_THUMB_PCREL_BRANCH25:
23077 case BFD_RELOC_THUMB_PCREL_BRANCH20:
23078 case BFD_RELOC_THUMB_PCREL_BRANCH23:
23079 if (ARM_IS_FUNC (fixp->fx_addsy))
23080 return 1;
23081 break;
23082
23083 default:
23084 break;
23085 }
23086 #endif
23087
23088 /* Resolve these relocations even if the symbol is extern or weak.
23089 Technically this is probably wrong due to symbol preemption.
23090 In practice these relocations do not have enough range to be useful
23091 at dynamic link time, and some code (e.g. in the Linux kernel)
23092 expects these references to be resolved. */
23093 if (fixp->fx_r_type == BFD_RELOC_ARM_IMMEDIATE
23094 || fixp->fx_r_type == BFD_RELOC_ARM_OFFSET_IMM
23095 || fixp->fx_r_type == BFD_RELOC_ARM_OFFSET_IMM8
23096 || fixp->fx_r_type == BFD_RELOC_ARM_ADRL_IMMEDIATE
23097 || fixp->fx_r_type == BFD_RELOC_ARM_CP_OFF_IMM
23098 || fixp->fx_r_type == BFD_RELOC_ARM_CP_OFF_IMM_S2
23099 || fixp->fx_r_type == BFD_RELOC_ARM_THUMB_OFFSET
23100 || fixp->fx_r_type == BFD_RELOC_ARM_T32_ADD_IMM
23101 || fixp->fx_r_type == BFD_RELOC_ARM_T32_IMMEDIATE
23102 || fixp->fx_r_type == BFD_RELOC_ARM_T32_IMM12
23103 || fixp->fx_r_type == BFD_RELOC_ARM_T32_OFFSET_IMM
23104 || fixp->fx_r_type == BFD_RELOC_ARM_T32_ADD_PC12
23105 || fixp->fx_r_type == BFD_RELOC_ARM_T32_CP_OFF_IMM
23106 || fixp->fx_r_type == BFD_RELOC_ARM_T32_CP_OFF_IMM_S2)
23107 return 0;
23108
23109 /* Always leave these relocations for the linker. */
23110 if ((fixp->fx_r_type >= BFD_RELOC_ARM_ALU_PC_G0_NC
23111 && fixp->fx_r_type <= BFD_RELOC_ARM_LDC_SB_G2)
23112 || fixp->fx_r_type == BFD_RELOC_ARM_LDR_PC_G0)
23113 return 1;
23114
23115 /* Always generate relocations against function symbols. */
23116 if (fixp->fx_r_type == BFD_RELOC_32
23117 && fixp->fx_addsy
23118 && (symbol_get_bfdsym (fixp->fx_addsy)->flags & BSF_FUNCTION))
23119 return 1;
23120
23121 return generic_force_reloc (fixp);
23122 }
23123
23124 #if defined (OBJ_ELF) || defined (OBJ_COFF)
23125 /* Relocations against function names must be left unadjusted,
23126 so that the linker can use this information to generate interworking
23127 stubs. The MIPS version of this function
23128 also prevents relocations that are mips-16 specific, but I do not
23129 know why it does this.
23130
23131 FIXME:
23132 There is one other problem that ought to be addressed here, but
23133 which currently is not: Taking the address of a label (rather
23134 than a function) and then later jumping to that address. Such
23135 addresses also ought to have their bottom bit set (assuming that
23136 they reside in Thumb code), but at the moment they will not. */
23137
23138 bfd_boolean
23139 arm_fix_adjustable (fixS * fixP)
23140 {
23141 if (fixP->fx_addsy == NULL)
23142 return 1;
23143
23144 /* Preserve relocations against symbols with function type. */
23145 if (symbol_get_bfdsym (fixP->fx_addsy)->flags & BSF_FUNCTION)
23146 return FALSE;
23147
23148 if (THUMB_IS_FUNC (fixP->fx_addsy)
23149 && fixP->fx_subsy == NULL)
23150 return FALSE;
23151
23152 /* We need the symbol name for the VTABLE entries. */
23153 if ( fixP->fx_r_type == BFD_RELOC_VTABLE_INHERIT
23154 || fixP->fx_r_type == BFD_RELOC_VTABLE_ENTRY)
23155 return FALSE;
23156
23157 /* Don't allow symbols to be discarded on GOT related relocs. */
23158 if (fixP->fx_r_type == BFD_RELOC_ARM_PLT32
23159 || fixP->fx_r_type == BFD_RELOC_ARM_GOT32
23160 || fixP->fx_r_type == BFD_RELOC_ARM_GOTOFF
23161 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_GD32
23162 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_LE32
23163 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_IE32
23164 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_LDM32
23165 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_LDO32
23166 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_GOTDESC
23167 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_CALL
23168 || fixP->fx_r_type == BFD_RELOC_ARM_THM_TLS_CALL
23169 || fixP->fx_r_type == BFD_RELOC_ARM_TLS_DESCSEQ
23170 || fixP->fx_r_type == BFD_RELOC_ARM_THM_TLS_DESCSEQ
23171 || fixP->fx_r_type == BFD_RELOC_ARM_TARGET2)
23172 return FALSE;
23173
23174 /* Similarly for group relocations. */
23175 if ((fixP->fx_r_type >= BFD_RELOC_ARM_ALU_PC_G0_NC
23176 && fixP->fx_r_type <= BFD_RELOC_ARM_LDC_SB_G2)
23177 || fixP->fx_r_type == BFD_RELOC_ARM_LDR_PC_G0)
23178 return FALSE;
23179
23180 /* MOVW/MOVT REL relocations have limited offsets, so keep the symbols. */
23181 if (fixP->fx_r_type == BFD_RELOC_ARM_MOVW
23182 || fixP->fx_r_type == BFD_RELOC_ARM_MOVT
23183 || fixP->fx_r_type == BFD_RELOC_ARM_MOVW_PCREL
23184 || fixP->fx_r_type == BFD_RELOC_ARM_MOVT_PCREL
23185 || fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVW
23186 || fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVT
23187 || fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVW_PCREL
23188 || fixP->fx_r_type == BFD_RELOC_ARM_THUMB_MOVT_PCREL)
23189 return FALSE;
23190
23191 return TRUE;
23192 }
23193 #endif /* defined (OBJ_ELF) || defined (OBJ_COFF) */
23194
23195 #ifdef OBJ_ELF
23196
23197 const char *
23198 elf32_arm_target_format (void)
23199 {
23200 #ifdef TE_SYMBIAN
23201 return (target_big_endian
23202 ? "elf32-bigarm-symbian"
23203 : "elf32-littlearm-symbian");
23204 #elif defined (TE_VXWORKS)
23205 return (target_big_endian
23206 ? "elf32-bigarm-vxworks"
23207 : "elf32-littlearm-vxworks");
23208 #elif defined (TE_NACL)
23209 return (target_big_endian
23210 ? "elf32-bigarm-nacl"
23211 : "elf32-littlearm-nacl");
23212 #else
23213 if (target_big_endian)
23214 return "elf32-bigarm";
23215 else
23216 return "elf32-littlearm";
23217 #endif
23218 }
23219
23220 void
23221 armelf_frob_symbol (symbolS * symp,
23222 int * puntp)
23223 {
23224 elf_frob_symbol (symp, puntp);
23225 }
23226 #endif
23227
23228 /* MD interface: Finalization. */
23229
23230 void
23231 arm_cleanup (void)
23232 {
23233 literal_pool * pool;
23234
23235 /* Ensure that all the IT blocks are properly closed. */
23236 check_it_blocks_finished ();
23237
23238 for (pool = list_of_pools; pool; pool = pool->next)
23239 {
23240 /* Put it at the end of the relevant section. */
23241 subseg_set (pool->section, pool->sub_section);
23242 #ifdef OBJ_ELF
23243 arm_elf_change_section ();
23244 #endif
23245 s_ltorg (0);
23246 }
23247 }
23248
23249 #ifdef OBJ_ELF
23250 /* Remove any excess mapping symbols generated for alignment frags in
23251 SEC. We may have created a mapping symbol before a zero byte
23252 alignment; remove it if there's a mapping symbol after the
23253 alignment. */
23254 static void
23255 check_mapping_symbols (bfd *abfd ATTRIBUTE_UNUSED, asection *sec,
23256 void *dummy ATTRIBUTE_UNUSED)
23257 {
23258 segment_info_type *seginfo = seg_info (sec);
23259 fragS *fragp;
23260
23261 if (seginfo == NULL || seginfo->frchainP == NULL)
23262 return;
23263
23264 for (fragp = seginfo->frchainP->frch_root;
23265 fragp != NULL;
23266 fragp = fragp->fr_next)
23267 {
23268 symbolS *sym = fragp->tc_frag_data.last_map;
23269 fragS *next = fragp->fr_next;
23270
23271 /* Variable-sized frags have been converted to fixed size by
23272 this point. But if this was variable-sized to start with,
23273 there will be a fixed-size frag after it. So don't handle
23274 next == NULL. */
23275 if (sym == NULL || next == NULL)
23276 continue;
23277
23278 if (S_GET_VALUE (sym) < next->fr_address)
23279 /* Not at the end of this frag. */
23280 continue;
23281 know (S_GET_VALUE (sym) == next->fr_address);
23282
23283 do
23284 {
23285 if (next->tc_frag_data.first_map != NULL)
23286 {
23287 /* Next frag starts with a mapping symbol. Discard this
23288 one. */
23289 symbol_remove (sym, &symbol_rootP, &symbol_lastP);
23290 break;
23291 }
23292
23293 if (next->fr_next == NULL)
23294 {
23295 /* This mapping symbol is at the end of the section. Discard
23296 it. */
23297 know (next->fr_fix == 0 && next->fr_var == 0);
23298 symbol_remove (sym, &symbol_rootP, &symbol_lastP);
23299 break;
23300 }
23301
23302 /* As long as we have empty frags without any mapping symbols,
23303 keep looking. */
23304 /* If the next frag is non-empty and does not start with a
23305 mapping symbol, then this mapping symbol is required. */
23306 if (next->fr_address != next->fr_next->fr_address)
23307 break;
23308
23309 next = next->fr_next;
23310 }
23311 while (next != NULL);
23312 }
23313 }
23314 #endif
23315
23316 /* Adjust the symbol table. This marks Thumb symbols as distinct from
23317 ARM ones. */
23318
23319 void
23320 arm_adjust_symtab (void)
23321 {
23322 #ifdef OBJ_COFF
23323 symbolS * sym;
23324
23325 for (sym = symbol_rootP; sym != NULL; sym = symbol_next (sym))
23326 {
23327 if (ARM_IS_THUMB (sym))
23328 {
23329 if (THUMB_IS_FUNC (sym))
23330 {
23331 /* Mark the symbol as a Thumb function. */
23332 if ( S_GET_STORAGE_CLASS (sym) == C_STAT
23333 || S_GET_STORAGE_CLASS (sym) == C_LABEL) /* This can happen! */
23334 S_SET_STORAGE_CLASS (sym, C_THUMBSTATFUNC);
23335
23336 else if (S_GET_STORAGE_CLASS (sym) == C_EXT)
23337 S_SET_STORAGE_CLASS (sym, C_THUMBEXTFUNC);
23338 else
23339 as_bad (_("%s: unexpected function type: %d"),
23340 S_GET_NAME (sym), S_GET_STORAGE_CLASS (sym));
23341 }
23342 else switch (S_GET_STORAGE_CLASS (sym))
23343 {
23344 case C_EXT:
23345 S_SET_STORAGE_CLASS (sym, C_THUMBEXT);
23346 break;
23347 case C_STAT:
23348 S_SET_STORAGE_CLASS (sym, C_THUMBSTAT);
23349 break;
23350 case C_LABEL:
23351 S_SET_STORAGE_CLASS (sym, C_THUMBLABEL);
23352 break;
23353 default:
23354 /* Do nothing. */
23355 break;
23356 }
23357 }
23358
23359 if (ARM_IS_INTERWORK (sym))
23360 coffsymbol (symbol_get_bfdsym (sym))->native->u.syment.n_flags = 0xFF;
23361 }
23362 #endif
23363 #ifdef OBJ_ELF
23364 symbolS * sym;
23365 char bind;
23366
23367 for (sym = symbol_rootP; sym != NULL; sym = symbol_next (sym))
23368 {
23369 if (ARM_IS_THUMB (sym))
23370 {
23371 elf_symbol_type * elf_sym;
23372
23373 elf_sym = elf_symbol (symbol_get_bfdsym (sym));
23374 bind = ELF_ST_BIND (elf_sym->internal_elf_sym.st_info);
23375
23376 if (! bfd_is_arm_special_symbol_name (elf_sym->symbol.name,
23377 BFD_ARM_SPECIAL_SYM_TYPE_ANY))
23378 {
23379 /* If it's a .thumb_func, declare it as so,
23380 otherwise tag label as .code 16. */
23381 if (THUMB_IS_FUNC (sym))
23382 elf_sym->internal_elf_sym.st_target_internal
23383 = ST_BRANCH_TO_THUMB;
23384 else if (EF_ARM_EABI_VERSION (meabi_flags) < EF_ARM_EABI_VER4)
23385 elf_sym->internal_elf_sym.st_info =
23386 ELF_ST_INFO (bind, STT_ARM_16BIT);
23387 }
23388 }
23389 }
23390
23391 /* Remove any overlapping mapping symbols generated by alignment frags. */
23392 bfd_map_over_sections (stdoutput, check_mapping_symbols, (char *) 0);
23393 /* Now do generic ELF adjustments. */
23394 elf_adjust_symtab ();
23395 #endif
23396 }
23397
23398 /* MD interface: Initialization. */
23399
23400 static void
23401 set_constant_flonums (void)
23402 {
23403 int i;
23404
23405 for (i = 0; i < NUM_FLOAT_VALS; i++)
23406 if (atof_ieee ((char *) fp_const[i], 'x', fp_values[i]) == NULL)
23407 abort ();
23408 }
23409
23410 /* Auto-select Thumb mode if it's the only available instruction set for the
23411 given architecture. */
23412
23413 static void
23414 autoselect_thumb_from_cpu_variant (void)
23415 {
23416 if (!ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v1))
23417 opcode_select (16);
23418 }
23419
23420 void
23421 md_begin (void)
23422 {
23423 unsigned mach;
23424 unsigned int i;
23425
23426 if ( (arm_ops_hsh = hash_new ()) == NULL
23427 || (arm_cond_hsh = hash_new ()) == NULL
23428 || (arm_shift_hsh = hash_new ()) == NULL
23429 || (arm_psr_hsh = hash_new ()) == NULL
23430 || (arm_v7m_psr_hsh = hash_new ()) == NULL
23431 || (arm_reg_hsh = hash_new ()) == NULL
23432 || (arm_reloc_hsh = hash_new ()) == NULL
23433 || (arm_barrier_opt_hsh = hash_new ()) == NULL)
23434 as_fatal (_("virtual memory exhausted"));
23435
23436 for (i = 0; i < sizeof (insns) / sizeof (struct asm_opcode); i++)
23437 hash_insert (arm_ops_hsh, insns[i].template_name, (void *) (insns + i));
23438 for (i = 0; i < sizeof (conds) / sizeof (struct asm_cond); i++)
23439 hash_insert (arm_cond_hsh, conds[i].template_name, (void *) (conds + i));
23440 for (i = 0; i < sizeof (shift_names) / sizeof (struct asm_shift_name); i++)
23441 hash_insert (arm_shift_hsh, shift_names[i].name, (void *) (shift_names + i));
23442 for (i = 0; i < sizeof (psrs) / sizeof (struct asm_psr); i++)
23443 hash_insert (arm_psr_hsh, psrs[i].template_name, (void *) (psrs + i));
23444 for (i = 0; i < sizeof (v7m_psrs) / sizeof (struct asm_psr); i++)
23445 hash_insert (arm_v7m_psr_hsh, v7m_psrs[i].template_name,
23446 (void *) (v7m_psrs + i));
23447 for (i = 0; i < sizeof (reg_names) / sizeof (struct reg_entry); i++)
23448 hash_insert (arm_reg_hsh, reg_names[i].name, (void *) (reg_names + i));
23449 for (i = 0;
23450 i < sizeof (barrier_opt_names) / sizeof (struct asm_barrier_opt);
23451 i++)
23452 hash_insert (arm_barrier_opt_hsh, barrier_opt_names[i].template_name,
23453 (void *) (barrier_opt_names + i));
23454 #ifdef OBJ_ELF
23455 for (i = 0; i < ARRAY_SIZE (reloc_names); i++)
23456 {
23457 struct reloc_entry * entry = reloc_names + i;
23458
23459 if (arm_is_eabi() && entry->reloc == BFD_RELOC_ARM_PLT32)
23460 /* This makes encode_branch() use the EABI versions of this relocation. */
23461 entry->reloc = BFD_RELOC_UNUSED;
23462
23463 hash_insert (arm_reloc_hsh, entry->name, (void *) entry);
23464 }
23465 #endif
23466
23467 set_constant_flonums ();
23468
23469 /* Set the cpu variant based on the command-line options. We prefer
23470 -mcpu= over -march= if both are set (as for GCC); and we prefer
23471 -mfpu= over any other way of setting the floating point unit.
23472 Use of legacy options with new options are faulted. */
23473 if (legacy_cpu)
23474 {
23475 if (mcpu_cpu_opt || march_cpu_opt)
23476 as_bad (_("use of old and new-style options to set CPU type"));
23477
23478 mcpu_cpu_opt = legacy_cpu;
23479 }
23480 else if (!mcpu_cpu_opt)
23481 mcpu_cpu_opt = march_cpu_opt;
23482
23483 if (legacy_fpu)
23484 {
23485 if (mfpu_opt)
23486 as_bad (_("use of old and new-style options to set FPU type"));
23487
23488 mfpu_opt = legacy_fpu;
23489 }
23490 else if (!mfpu_opt)
23491 {
23492 #if !(defined (EABI_DEFAULT) || defined (TE_LINUX) \
23493 || defined (TE_NetBSD) || defined (TE_VXWORKS))
23494 /* Some environments specify a default FPU. If they don't, infer it
23495 from the processor. */
23496 if (mcpu_fpu_opt)
23497 mfpu_opt = mcpu_fpu_opt;
23498 else
23499 mfpu_opt = march_fpu_opt;
23500 #else
23501 mfpu_opt = &fpu_default;
23502 #endif
23503 }
23504
23505 if (!mfpu_opt)
23506 {
23507 if (mcpu_cpu_opt != NULL)
23508 mfpu_opt = &fpu_default;
23509 else if (mcpu_fpu_opt != NULL && ARM_CPU_HAS_FEATURE (*mcpu_fpu_opt, arm_ext_v5))
23510 mfpu_opt = &fpu_arch_vfp_v2;
23511 else
23512 mfpu_opt = &fpu_arch_fpa;
23513 }
23514
23515 #ifdef CPU_DEFAULT
23516 if (!mcpu_cpu_opt)
23517 {
23518 mcpu_cpu_opt = &cpu_default;
23519 selected_cpu = cpu_default;
23520 }
23521 #else
23522 if (mcpu_cpu_opt)
23523 selected_cpu = *mcpu_cpu_opt;
23524 else
23525 mcpu_cpu_opt = &arm_arch_any;
23526 #endif
23527
23528 ARM_MERGE_FEATURE_SETS (cpu_variant, *mcpu_cpu_opt, *mfpu_opt);
23529
23530 autoselect_thumb_from_cpu_variant ();
23531
23532 arm_arch_used = thumb_arch_used = arm_arch_none;
23533
23534 #if defined OBJ_COFF || defined OBJ_ELF
23535 {
23536 unsigned int flags = 0;
23537
23538 #if defined OBJ_ELF
23539 flags = meabi_flags;
23540
23541 switch (meabi_flags)
23542 {
23543 case EF_ARM_EABI_UNKNOWN:
23544 #endif
23545 /* Set the flags in the private structure. */
23546 if (uses_apcs_26) flags |= F_APCS26;
23547 if (support_interwork) flags |= F_INTERWORK;
23548 if (uses_apcs_float) flags |= F_APCS_FLOAT;
23549 if (pic_code) flags |= F_PIC;
23550 if (!ARM_CPU_HAS_FEATURE (cpu_variant, fpu_any_hard))
23551 flags |= F_SOFT_FLOAT;
23552
23553 switch (mfloat_abi_opt)
23554 {
23555 case ARM_FLOAT_ABI_SOFT:
23556 case ARM_FLOAT_ABI_SOFTFP:
23557 flags |= F_SOFT_FLOAT;
23558 break;
23559
23560 case ARM_FLOAT_ABI_HARD:
23561 if (flags & F_SOFT_FLOAT)
23562 as_bad (_("hard-float conflicts with specified fpu"));
23563 break;
23564 }
23565
23566 /* Using pure-endian doubles (even if soft-float). */
23567 if (ARM_CPU_HAS_FEATURE (cpu_variant, fpu_endian_pure))
23568 flags |= F_VFP_FLOAT;
23569
23570 #if defined OBJ_ELF
23571 if (ARM_CPU_HAS_FEATURE (cpu_variant, fpu_arch_maverick))
23572 flags |= EF_ARM_MAVERICK_FLOAT;
23573 break;
23574
23575 case EF_ARM_EABI_VER4:
23576 case EF_ARM_EABI_VER5:
23577 /* No additional flags to set. */
23578 break;
23579
23580 default:
23581 abort ();
23582 }
23583 #endif
23584 bfd_set_private_flags (stdoutput, flags);
23585
23586 /* We have run out flags in the COFF header to encode the
23587 status of ATPCS support, so instead we create a dummy,
23588 empty, debug section called .arm.atpcs. */
23589 if (atpcs)
23590 {
23591 asection * sec;
23592
23593 sec = bfd_make_section (stdoutput, ".arm.atpcs");
23594
23595 if (sec != NULL)
23596 {
23597 bfd_set_section_flags
23598 (stdoutput, sec, SEC_READONLY | SEC_DEBUGGING /* | SEC_HAS_CONTENTS */);
23599 bfd_set_section_size (stdoutput, sec, 0);
23600 bfd_set_section_contents (stdoutput, sec, NULL, 0, 0);
23601 }
23602 }
23603 }
23604 #endif
23605
23606 /* Record the CPU type as well. */
23607 if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_cext_iwmmxt2))
23608 mach = bfd_mach_arm_iWMMXt2;
23609 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_cext_iwmmxt))
23610 mach = bfd_mach_arm_iWMMXt;
23611 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_cext_xscale))
23612 mach = bfd_mach_arm_XScale;
23613 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_cext_maverick))
23614 mach = bfd_mach_arm_ep9312;
23615 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v5e))
23616 mach = bfd_mach_arm_5TE;
23617 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v5))
23618 {
23619 if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v4t))
23620 mach = bfd_mach_arm_5T;
23621 else
23622 mach = bfd_mach_arm_5;
23623 }
23624 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v4))
23625 {
23626 if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v4t))
23627 mach = bfd_mach_arm_4T;
23628 else
23629 mach = bfd_mach_arm_4;
23630 }
23631 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v3m))
23632 mach = bfd_mach_arm_3M;
23633 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v3))
23634 mach = bfd_mach_arm_3;
23635 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v2s))
23636 mach = bfd_mach_arm_2a;
23637 else if (ARM_CPU_HAS_FEATURE (cpu_variant, arm_ext_v2))
23638 mach = bfd_mach_arm_2;
23639 else
23640 mach = bfd_mach_arm_unknown;
23641
23642 bfd_set_arch_mach (stdoutput, TARGET_ARCH, mach);
23643 }
23644
23645 /* Command line processing. */
23646
23647 /* md_parse_option
23648 Invocation line includes a switch not recognized by the base assembler.
23649 See if it's a processor-specific option.
23650
23651 This routine is somewhat complicated by the need for backwards
23652 compatibility (since older releases of gcc can't be changed).
23653 The new options try to make the interface as compatible as
23654 possible with GCC.
23655
23656 New options (supported) are:
23657
23658 -mcpu=<cpu name> Assemble for selected processor
23659 -march=<architecture name> Assemble for selected architecture
23660 -mfpu=<fpu architecture> Assemble for selected FPU.
23661 -EB/-mbig-endian Big-endian
23662 -EL/-mlittle-endian Little-endian
23663 -k Generate PIC code
23664 -mthumb Start in Thumb mode
23665 -mthumb-interwork Code supports ARM/Thumb interworking
23666
23667 -m[no-]warn-deprecated Warn about deprecated features
23668
23669 For now we will also provide support for:
23670
23671 -mapcs-32 32-bit Program counter
23672 -mapcs-26 26-bit Program counter
23673 -macps-float Floats passed in FP registers
23674 -mapcs-reentrant Reentrant code
23675 -matpcs
23676 (sometime these will probably be replaced with -mapcs=<list of options>
23677 and -matpcs=<list of options>)
23678
23679 The remaining options are only supported for back-wards compatibility.
23680 Cpu variants, the arm part is optional:
23681 -m[arm]1 Currently not supported.
23682 -m[arm]2, -m[arm]250 Arm 2 and Arm 250 processor
23683 -m[arm]3 Arm 3 processor
23684 -m[arm]6[xx], Arm 6 processors
23685 -m[arm]7[xx][t][[d]m] Arm 7 processors
23686 -m[arm]8[10] Arm 8 processors
23687 -m[arm]9[20][tdmi] Arm 9 processors
23688 -mstrongarm[110[0]] StrongARM processors
23689 -mxscale XScale processors
23690 -m[arm]v[2345[t[e]]] Arm architectures
23691 -mall All (except the ARM1)
23692 FP variants:
23693 -mfpa10, -mfpa11 FPA10 and 11 co-processor instructions
23694 -mfpe-old (No float load/store multiples)
23695 -mvfpxd VFP Single precision
23696 -mvfp All VFP
23697 -mno-fpu Disable all floating point instructions
23698
23699 The following CPU names are recognized:
23700 arm1, arm2, arm250, arm3, arm6, arm600, arm610, arm620,
23701 arm7, arm7m, arm7d, arm7dm, arm7di, arm7dmi, arm70, arm700,
23702 arm700i, arm710 arm710t, arm720, arm720t, arm740t, arm710c,
23703 arm7100, arm7500, arm7500fe, arm7tdmi, arm8, arm810, arm9,
23704 arm920, arm920t, arm940t, arm946, arm966, arm9tdmi, arm9e,
23705 arm10t arm10e, arm1020t, arm1020e, arm10200e,
23706 strongarm, strongarm110, strongarm1100, strongarm1110, xscale.
23707
23708 */
23709
23710 const char * md_shortopts = "m:k";
23711
23712 #ifdef ARM_BI_ENDIAN
23713 #define OPTION_EB (OPTION_MD_BASE + 0)
23714 #define OPTION_EL (OPTION_MD_BASE + 1)
23715 #else
23716 #if TARGET_BYTES_BIG_ENDIAN
23717 #define OPTION_EB (OPTION_MD_BASE + 0)
23718 #else
23719 #define OPTION_EL (OPTION_MD_BASE + 1)
23720 #endif
23721 #endif
23722 #define OPTION_FIX_V4BX (OPTION_MD_BASE + 2)
23723
23724 struct option md_longopts[] =
23725 {
23726 #ifdef OPTION_EB
23727 {"EB", no_argument, NULL, OPTION_EB},
23728 #endif
23729 #ifdef OPTION_EL
23730 {"EL", no_argument, NULL, OPTION_EL},
23731 #endif
23732 {"fix-v4bx", no_argument, NULL, OPTION_FIX_V4BX},
23733 {NULL, no_argument, NULL, 0}
23734 };
23735
23736 size_t md_longopts_size = sizeof (md_longopts);
23737
23738 struct arm_option_table
23739 {
23740 char *option; /* Option name to match. */
23741 char *help; /* Help information. */
23742 int *var; /* Variable to change. */
23743 int value; /* What to change it to. */
23744 char *deprecated; /* If non-null, print this message. */
23745 };
23746
23747 struct arm_option_table arm_opts[] =
23748 {
23749 {"k", N_("generate PIC code"), &pic_code, 1, NULL},
23750 {"mthumb", N_("assemble Thumb code"), &thumb_mode, 1, NULL},
23751 {"mthumb-interwork", N_("support ARM/Thumb interworking"),
23752 &support_interwork, 1, NULL},
23753 {"mapcs-32", N_("code uses 32-bit program counter"), &uses_apcs_26, 0, NULL},
23754 {"mapcs-26", N_("code uses 26-bit program counter"), &uses_apcs_26, 1, NULL},
23755 {"mapcs-float", N_("floating point args are in fp regs"), &uses_apcs_float,
23756 1, NULL},
23757 {"mapcs-reentrant", N_("re-entrant code"), &pic_code, 1, NULL},
23758 {"matpcs", N_("code is ATPCS conformant"), &atpcs, 1, NULL},
23759 {"mbig-endian", N_("assemble for big-endian"), &target_big_endian, 1, NULL},
23760 {"mlittle-endian", N_("assemble for little-endian"), &target_big_endian, 0,
23761 NULL},
23762
23763 /* These are recognized by the assembler, but have no affect on code. */
23764 {"mapcs-frame", N_("use frame pointer"), NULL, 0, NULL},
23765 {"mapcs-stack-check", N_("use stack size checking"), NULL, 0, NULL},
23766
23767 {"mwarn-deprecated", NULL, &warn_on_deprecated, 1, NULL},
23768 {"mno-warn-deprecated", N_("do not warn on use of deprecated feature"),
23769 &warn_on_deprecated, 0, NULL},
23770 {NULL, NULL, NULL, 0, NULL}
23771 };
23772
23773 struct arm_legacy_option_table
23774 {
23775 char *option; /* Option name to match. */
23776 const arm_feature_set **var; /* Variable to change. */
23777 const arm_feature_set value; /* What to change it to. */
23778 char *deprecated; /* If non-null, print this message. */
23779 };
23780
23781 const struct arm_legacy_option_table arm_legacy_opts[] =
23782 {
23783 /* DON'T add any new processors to this list -- we want the whole list
23784 to go away... Add them to the processors table instead. */
23785 {"marm1", &legacy_cpu, ARM_ARCH_V1, N_("use -mcpu=arm1")},
23786 {"m1", &legacy_cpu, ARM_ARCH_V1, N_("use -mcpu=arm1")},
23787 {"marm2", &legacy_cpu, ARM_ARCH_V2, N_("use -mcpu=arm2")},
23788 {"m2", &legacy_cpu, ARM_ARCH_V2, N_("use -mcpu=arm2")},
23789 {"marm250", &legacy_cpu, ARM_ARCH_V2S, N_("use -mcpu=arm250")},
23790 {"m250", &legacy_cpu, ARM_ARCH_V2S, N_("use -mcpu=arm250")},
23791 {"marm3", &legacy_cpu, ARM_ARCH_V2S, N_("use -mcpu=arm3")},
23792 {"m3", &legacy_cpu, ARM_ARCH_V2S, N_("use -mcpu=arm3")},
23793 {"marm6", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm6")},
23794 {"m6", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm6")},
23795 {"marm600", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm600")},
23796 {"m600", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm600")},
23797 {"marm610", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm610")},
23798 {"m610", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm610")},
23799 {"marm620", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm620")},
23800 {"m620", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm620")},
23801 {"marm7", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7")},
23802 {"m7", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7")},
23803 {"marm70", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm70")},
23804 {"m70", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm70")},
23805 {"marm700", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm700")},
23806 {"m700", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm700")},
23807 {"marm700i", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm700i")},
23808 {"m700i", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm700i")},
23809 {"marm710", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm710")},
23810 {"m710", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm710")},
23811 {"marm710c", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm710c")},
23812 {"m710c", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm710c")},
23813 {"marm720", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm720")},
23814 {"m720", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm720")},
23815 {"marm7d", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7d")},
23816 {"m7d", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7d")},
23817 {"marm7di", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7di")},
23818 {"m7di", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7di")},
23819 {"marm7m", &legacy_cpu, ARM_ARCH_V3M, N_("use -mcpu=arm7m")},
23820 {"m7m", &legacy_cpu, ARM_ARCH_V3M, N_("use -mcpu=arm7m")},
23821 {"marm7dm", &legacy_cpu, ARM_ARCH_V3M, N_("use -mcpu=arm7dm")},
23822 {"m7dm", &legacy_cpu, ARM_ARCH_V3M, N_("use -mcpu=arm7dm")},
23823 {"marm7dmi", &legacy_cpu, ARM_ARCH_V3M, N_("use -mcpu=arm7dmi")},
23824 {"m7dmi", &legacy_cpu, ARM_ARCH_V3M, N_("use -mcpu=arm7dmi")},
23825 {"marm7100", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7100")},
23826 {"m7100", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7100")},
23827 {"marm7500", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7500")},
23828 {"m7500", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7500")},
23829 {"marm7500fe", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7500fe")},
23830 {"m7500fe", &legacy_cpu, ARM_ARCH_V3, N_("use -mcpu=arm7500fe")},
23831 {"marm7t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm7tdmi")},
23832 {"m7t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm7tdmi")},
23833 {"marm7tdmi", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm7tdmi")},
23834 {"m7tdmi", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm7tdmi")},
23835 {"marm710t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm710t")},
23836 {"m710t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm710t")},
23837 {"marm720t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm720t")},
23838 {"m720t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm720t")},
23839 {"marm740t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm740t")},
23840 {"m740t", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm740t")},
23841 {"marm8", &legacy_cpu, ARM_ARCH_V4, N_("use -mcpu=arm8")},
23842 {"m8", &legacy_cpu, ARM_ARCH_V4, N_("use -mcpu=arm8")},
23843 {"marm810", &legacy_cpu, ARM_ARCH_V4, N_("use -mcpu=arm810")},
23844 {"m810", &legacy_cpu, ARM_ARCH_V4, N_("use -mcpu=arm810")},
23845 {"marm9", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm9")},
23846 {"m9", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm9")},
23847 {"marm9tdmi", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm9tdmi")},
23848 {"m9tdmi", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm9tdmi")},
23849 {"marm920", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm920")},
23850 {"m920", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm920")},
23851 {"marm940", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm940")},
23852 {"m940", &legacy_cpu, ARM_ARCH_V4T, N_("use -mcpu=arm940")},
23853 {"mstrongarm", &legacy_cpu, ARM_ARCH_V4, N_("use -mcpu=strongarm")},
23854 {"mstrongarm110", &legacy_cpu, ARM_ARCH_V4,
23855 N_("use -mcpu=strongarm110")},
23856 {"mstrongarm1100", &legacy_cpu, ARM_ARCH_V4,
23857 N_("use -mcpu=strongarm1100")},
23858 {"mstrongarm1110", &legacy_cpu, ARM_ARCH_V4,
23859 N_("use -mcpu=strongarm1110")},
23860 {"mxscale", &legacy_cpu, ARM_ARCH_XSCALE, N_("use -mcpu=xscale")},
23861 {"miwmmxt", &legacy_cpu, ARM_ARCH_IWMMXT, N_("use -mcpu=iwmmxt")},
23862 {"mall", &legacy_cpu, ARM_ANY, N_("use -mcpu=all")},
23863
23864 /* Architecture variants -- don't add any more to this list either. */
23865 {"mv2", &legacy_cpu, ARM_ARCH_V2, N_("use -march=armv2")},
23866 {"marmv2", &legacy_cpu, ARM_ARCH_V2, N_("use -march=armv2")},
23867 {"mv2a", &legacy_cpu, ARM_ARCH_V2S, N_("use -march=armv2a")},
23868 {"marmv2a", &legacy_cpu, ARM_ARCH_V2S, N_("use -march=armv2a")},
23869 {"mv3", &legacy_cpu, ARM_ARCH_V3, N_("use -march=armv3")},
23870 {"marmv3", &legacy_cpu, ARM_ARCH_V3, N_("use -march=armv3")},
23871 {"mv3m", &legacy_cpu, ARM_ARCH_V3M, N_("use -march=armv3m")},
23872 {"marmv3m", &legacy_cpu, ARM_ARCH_V3M, N_("use -march=armv3m")},
23873 {"mv4", &legacy_cpu, ARM_ARCH_V4, N_("use -march=armv4")},
23874 {"marmv4", &legacy_cpu, ARM_ARCH_V4, N_("use -march=armv4")},
23875 {"mv4t", &legacy_cpu, ARM_ARCH_V4T, N_("use -march=armv4t")},
23876 {"marmv4t", &legacy_cpu, ARM_ARCH_V4T, N_("use -march=armv4t")},
23877 {"mv5", &legacy_cpu, ARM_ARCH_V5, N_("use -march=armv5")},
23878 {"marmv5", &legacy_cpu, ARM_ARCH_V5, N_("use -march=armv5")},
23879 {"mv5t", &legacy_cpu, ARM_ARCH_V5T, N_("use -march=armv5t")},
23880 {"marmv5t", &legacy_cpu, ARM_ARCH_V5T, N_("use -march=armv5t")},
23881 {"mv5e", &legacy_cpu, ARM_ARCH_V5TE, N_("use -march=armv5te")},
23882 {"marmv5e", &legacy_cpu, ARM_ARCH_V5TE, N_("use -march=armv5te")},
23883
23884 /* Floating point variants -- don't add any more to this list either. */
23885 {"mfpe-old", &legacy_fpu, FPU_ARCH_FPE, N_("use -mfpu=fpe")},
23886 {"mfpa10", &legacy_fpu, FPU_ARCH_FPA, N_("use -mfpu=fpa10")},
23887 {"mfpa11", &legacy_fpu, FPU_ARCH_FPA, N_("use -mfpu=fpa11")},
23888 {"mno-fpu", &legacy_fpu, ARM_ARCH_NONE,
23889 N_("use either -mfpu=softfpa or -mfpu=softvfp")},
23890
23891 {NULL, NULL, ARM_ARCH_NONE, NULL}
23892 };
23893
23894 struct arm_cpu_option_table
23895 {
23896 char *name;
23897 size_t name_len;
23898 const arm_feature_set value;
23899 /* For some CPUs we assume an FPU unless the user explicitly sets
23900 -mfpu=... */
23901 const arm_feature_set default_fpu;
23902 /* The canonical name of the CPU, or NULL to use NAME converted to upper
23903 case. */
23904 const char *canonical_name;
23905 };
23906
23907 /* This list should, at a minimum, contain all the cpu names
23908 recognized by GCC. */
23909 #define ARM_CPU_OPT(N, V, DF, CN) { N, sizeof (N) - 1, V, DF, CN }
23910 static const struct arm_cpu_option_table arm_cpus[] =
23911 {
23912 ARM_CPU_OPT ("all", ARM_ANY, FPU_ARCH_FPA, NULL),
23913 ARM_CPU_OPT ("arm1", ARM_ARCH_V1, FPU_ARCH_FPA, NULL),
23914 ARM_CPU_OPT ("arm2", ARM_ARCH_V2, FPU_ARCH_FPA, NULL),
23915 ARM_CPU_OPT ("arm250", ARM_ARCH_V2S, FPU_ARCH_FPA, NULL),
23916 ARM_CPU_OPT ("arm3", ARM_ARCH_V2S, FPU_ARCH_FPA, NULL),
23917 ARM_CPU_OPT ("arm6", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23918 ARM_CPU_OPT ("arm60", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23919 ARM_CPU_OPT ("arm600", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23920 ARM_CPU_OPT ("arm610", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23921 ARM_CPU_OPT ("arm620", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23922 ARM_CPU_OPT ("arm7", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23923 ARM_CPU_OPT ("arm7m", ARM_ARCH_V3M, FPU_ARCH_FPA, NULL),
23924 ARM_CPU_OPT ("arm7d", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23925 ARM_CPU_OPT ("arm7dm", ARM_ARCH_V3M, FPU_ARCH_FPA, NULL),
23926 ARM_CPU_OPT ("arm7di", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23927 ARM_CPU_OPT ("arm7dmi", ARM_ARCH_V3M, FPU_ARCH_FPA, NULL),
23928 ARM_CPU_OPT ("arm70", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23929 ARM_CPU_OPT ("arm700", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23930 ARM_CPU_OPT ("arm700i", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23931 ARM_CPU_OPT ("arm710", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23932 ARM_CPU_OPT ("arm710t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23933 ARM_CPU_OPT ("arm720", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23934 ARM_CPU_OPT ("arm720t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23935 ARM_CPU_OPT ("arm740t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23936 ARM_CPU_OPT ("arm710c", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23937 ARM_CPU_OPT ("arm7100", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23938 ARM_CPU_OPT ("arm7500", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23939 ARM_CPU_OPT ("arm7500fe", ARM_ARCH_V3, FPU_ARCH_FPA, NULL),
23940 ARM_CPU_OPT ("arm7t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23941 ARM_CPU_OPT ("arm7tdmi", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23942 ARM_CPU_OPT ("arm7tdmi-s", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23943 ARM_CPU_OPT ("arm8", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23944 ARM_CPU_OPT ("arm810", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23945 ARM_CPU_OPT ("strongarm", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23946 ARM_CPU_OPT ("strongarm1", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23947 ARM_CPU_OPT ("strongarm110", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23948 ARM_CPU_OPT ("strongarm1100", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23949 ARM_CPU_OPT ("strongarm1110", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23950 ARM_CPU_OPT ("arm9", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23951 ARM_CPU_OPT ("arm920", ARM_ARCH_V4T, FPU_ARCH_FPA, "ARM920T"),
23952 ARM_CPU_OPT ("arm920t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23953 ARM_CPU_OPT ("arm922t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23954 ARM_CPU_OPT ("arm940t", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23955 ARM_CPU_OPT ("arm9tdmi", ARM_ARCH_V4T, FPU_ARCH_FPA, NULL),
23956 ARM_CPU_OPT ("fa526", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23957 ARM_CPU_OPT ("fa626", ARM_ARCH_V4, FPU_ARCH_FPA, NULL),
23958 /* For V5 or later processors we default to using VFP; but the user
23959 should really set the FPU type explicitly. */
23960 ARM_CPU_OPT ("arm9e-r0", ARM_ARCH_V5TExP, FPU_ARCH_VFP_V2, NULL),
23961 ARM_CPU_OPT ("arm9e", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23962 ARM_CPU_OPT ("arm926ej", ARM_ARCH_V5TEJ, FPU_ARCH_VFP_V2, "ARM926EJ-S"),
23963 ARM_CPU_OPT ("arm926ejs", ARM_ARCH_V5TEJ, FPU_ARCH_VFP_V2, "ARM926EJ-S"),
23964 ARM_CPU_OPT ("arm926ej-s", ARM_ARCH_V5TEJ, FPU_ARCH_VFP_V2, NULL),
23965 ARM_CPU_OPT ("arm946e-r0", ARM_ARCH_V5TExP, FPU_ARCH_VFP_V2, NULL),
23966 ARM_CPU_OPT ("arm946e", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, "ARM946E-S"),
23967 ARM_CPU_OPT ("arm946e-s", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23968 ARM_CPU_OPT ("arm966e-r0", ARM_ARCH_V5TExP, FPU_ARCH_VFP_V2, NULL),
23969 ARM_CPU_OPT ("arm966e", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, "ARM966E-S"),
23970 ARM_CPU_OPT ("arm966e-s", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23971 ARM_CPU_OPT ("arm968e-s", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23972 ARM_CPU_OPT ("arm10t", ARM_ARCH_V5T, FPU_ARCH_VFP_V1, NULL),
23973 ARM_CPU_OPT ("arm10tdmi", ARM_ARCH_V5T, FPU_ARCH_VFP_V1, NULL),
23974 ARM_CPU_OPT ("arm10e", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23975 ARM_CPU_OPT ("arm1020", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, "ARM1020E"),
23976 ARM_CPU_OPT ("arm1020t", ARM_ARCH_V5T, FPU_ARCH_VFP_V1, NULL),
23977 ARM_CPU_OPT ("arm1020e", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23978 ARM_CPU_OPT ("arm1022e", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23979 ARM_CPU_OPT ("arm1026ejs", ARM_ARCH_V5TEJ, FPU_ARCH_VFP_V2,
23980 "ARM1026EJ-S"),
23981 ARM_CPU_OPT ("arm1026ej-s", ARM_ARCH_V5TEJ, FPU_ARCH_VFP_V2, NULL),
23982 ARM_CPU_OPT ("fa606te", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23983 ARM_CPU_OPT ("fa616te", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23984 ARM_CPU_OPT ("fa626te", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23985 ARM_CPU_OPT ("fmp626", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23986 ARM_CPU_OPT ("fa726te", ARM_ARCH_V5TE, FPU_ARCH_VFP_V2, NULL),
23987 ARM_CPU_OPT ("arm1136js", ARM_ARCH_V6, FPU_NONE, "ARM1136J-S"),
23988 ARM_CPU_OPT ("arm1136j-s", ARM_ARCH_V6, FPU_NONE, NULL),
23989 ARM_CPU_OPT ("arm1136jfs", ARM_ARCH_V6, FPU_ARCH_VFP_V2,
23990 "ARM1136JF-S"),
23991 ARM_CPU_OPT ("arm1136jf-s", ARM_ARCH_V6, FPU_ARCH_VFP_V2, NULL),
23992 ARM_CPU_OPT ("mpcore", ARM_ARCH_V6K, FPU_ARCH_VFP_V2, "MPCore"),
23993 ARM_CPU_OPT ("mpcorenovfp", ARM_ARCH_V6K, FPU_NONE, "MPCore"),
23994 ARM_CPU_OPT ("arm1156t2-s", ARM_ARCH_V6T2, FPU_NONE, NULL),
23995 ARM_CPU_OPT ("arm1156t2f-s", ARM_ARCH_V6T2, FPU_ARCH_VFP_V2, NULL),
23996 ARM_CPU_OPT ("arm1176jz-s", ARM_ARCH_V6ZK, FPU_NONE, NULL),
23997 ARM_CPU_OPT ("arm1176jzf-s", ARM_ARCH_V6ZK, FPU_ARCH_VFP_V2, NULL),
23998 ARM_CPU_OPT ("cortex-a5", ARM_ARCH_V7A_MP_SEC,
23999 FPU_NONE, "Cortex-A5"),
24000 ARM_CPU_OPT ("cortex-a7", ARM_ARCH_V7VE, FPU_ARCH_NEON_VFP_V4,
24001 "Cortex-A7"),
24002 ARM_CPU_OPT ("cortex-a8", ARM_ARCH_V7A_SEC,
24003 ARM_FEATURE (0, FPU_VFP_V3
24004 | FPU_NEON_EXT_V1),
24005 "Cortex-A8"),
24006 ARM_CPU_OPT ("cortex-a9", ARM_ARCH_V7A_MP_SEC,
24007 ARM_FEATURE (0, FPU_VFP_V3
24008 | FPU_NEON_EXT_V1),
24009 "Cortex-A9"),
24010 ARM_CPU_OPT ("cortex-a12", ARM_ARCH_V7VE, FPU_ARCH_NEON_VFP_V4,
24011 "Cortex-A12"),
24012 ARM_CPU_OPT ("cortex-a15", ARM_ARCH_V7VE, FPU_ARCH_NEON_VFP_V4,
24013 "Cortex-A15"),
24014 ARM_CPU_OPT ("cortex-a53", ARM_ARCH_V8A, FPU_ARCH_CRYPTO_NEON_VFP_ARMV8,
24015 "Cortex-A53"),
24016 ARM_CPU_OPT ("cortex-a57", ARM_ARCH_V8A, FPU_ARCH_CRYPTO_NEON_VFP_ARMV8,
24017 "Cortex-A57"),
24018 ARM_CPU_OPT ("cortex-r4", ARM_ARCH_V7R, FPU_NONE, "Cortex-R4"),
24019 ARM_CPU_OPT ("cortex-r4f", ARM_ARCH_V7R, FPU_ARCH_VFP_V3D16,
24020 "Cortex-R4F"),
24021 ARM_CPU_OPT ("cortex-r5", ARM_ARCH_V7R_IDIV,
24022 FPU_NONE, "Cortex-R5"),
24023 ARM_CPU_OPT ("cortex-r7", ARM_ARCH_V7R_IDIV,
24024 FPU_ARCH_VFP_V3D16,
24025 "Cortex-R7"),
24026 ARM_CPU_OPT ("cortex-m4", ARM_ARCH_V7EM, FPU_NONE, "Cortex-M4"),
24027 ARM_CPU_OPT ("cortex-m3", ARM_ARCH_V7M, FPU_NONE, "Cortex-M3"),
24028 ARM_CPU_OPT ("cortex-m1", ARM_ARCH_V6SM, FPU_NONE, "Cortex-M1"),
24029 ARM_CPU_OPT ("cortex-m0", ARM_ARCH_V6SM, FPU_NONE, "Cortex-M0"),
24030 ARM_CPU_OPT ("cortex-m0plus", ARM_ARCH_V6SM, FPU_NONE, "Cortex-M0+"),
24031 /* ??? XSCALE is really an architecture. */
24032 ARM_CPU_OPT ("xscale", ARM_ARCH_XSCALE, FPU_ARCH_VFP_V2, NULL),
24033 /* ??? iwmmxt is not a processor. */
24034 ARM_CPU_OPT ("iwmmxt", ARM_ARCH_IWMMXT, FPU_ARCH_VFP_V2, NULL),
24035 ARM_CPU_OPT ("iwmmxt2", ARM_ARCH_IWMMXT2,FPU_ARCH_VFP_V2, NULL),
24036 ARM_CPU_OPT ("i80200", ARM_ARCH_XSCALE, FPU_ARCH_VFP_V2, NULL),
24037 /* Maverick */
24038 ARM_CPU_OPT ("ep9312", ARM_FEATURE (ARM_AEXT_V4T, ARM_CEXT_MAVERICK),
24039 FPU_ARCH_MAVERICK, "ARM920T"),
24040 /* Marvell processors. */
24041 ARM_CPU_OPT ("marvell-pj4", ARM_FEATURE (ARM_AEXT_V7A | ARM_EXT_MP | ARM_EXT_SEC, 0),
24042 FPU_ARCH_VFP_V3D16, NULL),
24043
24044 { NULL, 0, ARM_ARCH_NONE, ARM_ARCH_NONE, NULL }
24045 };
24046 #undef ARM_CPU_OPT
24047
24048 struct arm_arch_option_table
24049 {
24050 char *name;
24051 size_t name_len;
24052 const arm_feature_set value;
24053 const arm_feature_set default_fpu;
24054 };
24055
24056 /* This list should, at a minimum, contain all the architecture names
24057 recognized by GCC. */
24058 #define ARM_ARCH_OPT(N, V, DF) { N, sizeof (N) - 1, V, DF }
24059 static const struct arm_arch_option_table arm_archs[] =
24060 {
24061 ARM_ARCH_OPT ("all", ARM_ANY, FPU_ARCH_FPA),
24062 ARM_ARCH_OPT ("armv1", ARM_ARCH_V1, FPU_ARCH_FPA),
24063 ARM_ARCH_OPT ("armv2", ARM_ARCH_V2, FPU_ARCH_FPA),
24064 ARM_ARCH_OPT ("armv2a", ARM_ARCH_V2S, FPU_ARCH_FPA),
24065 ARM_ARCH_OPT ("armv2s", ARM_ARCH_V2S, FPU_ARCH_FPA),
24066 ARM_ARCH_OPT ("armv3", ARM_ARCH_V3, FPU_ARCH_FPA),
24067 ARM_ARCH_OPT ("armv3m", ARM_ARCH_V3M, FPU_ARCH_FPA),
24068 ARM_ARCH_OPT ("armv4", ARM_ARCH_V4, FPU_ARCH_FPA),
24069 ARM_ARCH_OPT ("armv4xm", ARM_ARCH_V4xM, FPU_ARCH_FPA),
24070 ARM_ARCH_OPT ("armv4t", ARM_ARCH_V4T, FPU_ARCH_FPA),
24071 ARM_ARCH_OPT ("armv4txm", ARM_ARCH_V4TxM, FPU_ARCH_FPA),
24072 ARM_ARCH_OPT ("armv5", ARM_ARCH_V5, FPU_ARCH_VFP),
24073 ARM_ARCH_OPT ("armv5t", ARM_ARCH_V5T, FPU_ARCH_VFP),
24074 ARM_ARCH_OPT ("armv5txm", ARM_ARCH_V5TxM, FPU_ARCH_VFP),
24075 ARM_ARCH_OPT ("armv5te", ARM_ARCH_V5TE, FPU_ARCH_VFP),
24076 ARM_ARCH_OPT ("armv5texp", ARM_ARCH_V5TExP, FPU_ARCH_VFP),
24077 ARM_ARCH_OPT ("armv5tej", ARM_ARCH_V5TEJ, FPU_ARCH_VFP),
24078 ARM_ARCH_OPT ("armv6", ARM_ARCH_V6, FPU_ARCH_VFP),
24079 ARM_ARCH_OPT ("armv6j", ARM_ARCH_V6, FPU_ARCH_VFP),
24080 ARM_ARCH_OPT ("armv6k", ARM_ARCH_V6K, FPU_ARCH_VFP),
24081 ARM_ARCH_OPT ("armv6z", ARM_ARCH_V6Z, FPU_ARCH_VFP),
24082 ARM_ARCH_OPT ("armv6zk", ARM_ARCH_V6ZK, FPU_ARCH_VFP),
24083 ARM_ARCH_OPT ("armv6t2", ARM_ARCH_V6T2, FPU_ARCH_VFP),
24084 ARM_ARCH_OPT ("armv6kt2", ARM_ARCH_V6KT2, FPU_ARCH_VFP),
24085 ARM_ARCH_OPT ("armv6zt2", ARM_ARCH_V6ZT2, FPU_ARCH_VFP),
24086 ARM_ARCH_OPT ("armv6zkt2", ARM_ARCH_V6ZKT2, FPU_ARCH_VFP),
24087 ARM_ARCH_OPT ("armv6-m", ARM_ARCH_V6M, FPU_ARCH_VFP),
24088 ARM_ARCH_OPT ("armv6s-m", ARM_ARCH_V6SM, FPU_ARCH_VFP),
24089 ARM_ARCH_OPT ("armv7", ARM_ARCH_V7, FPU_ARCH_VFP),
24090 /* The official spelling of the ARMv7 profile variants is the dashed form.
24091 Accept the non-dashed form for compatibility with old toolchains. */
24092 ARM_ARCH_OPT ("armv7a", ARM_ARCH_V7A, FPU_ARCH_VFP),
24093 ARM_ARCH_OPT ("armv7ve", ARM_ARCH_V7VE, FPU_ARCH_VFP),
24094 ARM_ARCH_OPT ("armv7r", ARM_ARCH_V7R, FPU_ARCH_VFP),
24095 ARM_ARCH_OPT ("armv7m", ARM_ARCH_V7M, FPU_ARCH_VFP),
24096 ARM_ARCH_OPT ("armv7-a", ARM_ARCH_V7A, FPU_ARCH_VFP),
24097 ARM_ARCH_OPT ("armv7-r", ARM_ARCH_V7R, FPU_ARCH_VFP),
24098 ARM_ARCH_OPT ("armv7-m", ARM_ARCH_V7M, FPU_ARCH_VFP),
24099 ARM_ARCH_OPT ("armv7e-m", ARM_ARCH_V7EM, FPU_ARCH_VFP),
24100 ARM_ARCH_OPT ("armv8-a", ARM_ARCH_V8A, FPU_ARCH_VFP),
24101 ARM_ARCH_OPT ("xscale", ARM_ARCH_XSCALE, FPU_ARCH_VFP),
24102 ARM_ARCH_OPT ("iwmmxt", ARM_ARCH_IWMMXT, FPU_ARCH_VFP),
24103 ARM_ARCH_OPT ("iwmmxt2", ARM_ARCH_IWMMXT2,FPU_ARCH_VFP),
24104 { NULL, 0, ARM_ARCH_NONE, ARM_ARCH_NONE }
24105 };
24106 #undef ARM_ARCH_OPT
24107
24108 /* ISA extensions in the co-processor and main instruction set space. */
24109 struct arm_option_extension_value_table
24110 {
24111 char *name;
24112 size_t name_len;
24113 const arm_feature_set value;
24114 const arm_feature_set allowed_archs;
24115 };
24116
24117 /* The following table must be in alphabetical order with a NULL last entry.
24118 */
24119 #define ARM_EXT_OPT(N, V, AA) { N, sizeof (N) - 1, V, AA }
24120 static const struct arm_option_extension_value_table arm_extensions[] =
24121 {
24122 ARM_EXT_OPT ("crc", ARCH_CRC_ARMV8, ARM_FEATURE (ARM_EXT_V8, 0)),
24123 ARM_EXT_OPT ("crypto", FPU_ARCH_CRYPTO_NEON_VFP_ARMV8,
24124 ARM_FEATURE (ARM_EXT_V8, 0)),
24125 ARM_EXT_OPT ("fp", FPU_ARCH_VFP_ARMV8,
24126 ARM_FEATURE (ARM_EXT_V8, 0)),
24127 ARM_EXT_OPT ("idiv", ARM_FEATURE (ARM_EXT_ADIV | ARM_EXT_DIV, 0),
24128 ARM_FEATURE (ARM_EXT_V7A | ARM_EXT_V7R, 0)),
24129 ARM_EXT_OPT ("iwmmxt",ARM_FEATURE (0, ARM_CEXT_IWMMXT), ARM_ANY),
24130 ARM_EXT_OPT ("iwmmxt2",
24131 ARM_FEATURE (0, ARM_CEXT_IWMMXT2), ARM_ANY),
24132 ARM_EXT_OPT ("maverick",
24133 ARM_FEATURE (0, ARM_CEXT_MAVERICK), ARM_ANY),
24134 ARM_EXT_OPT ("mp", ARM_FEATURE (ARM_EXT_MP, 0),
24135 ARM_FEATURE (ARM_EXT_V7A | ARM_EXT_V7R, 0)),
24136 ARM_EXT_OPT ("simd", FPU_ARCH_NEON_VFP_ARMV8,
24137 ARM_FEATURE (ARM_EXT_V8, 0)),
24138 ARM_EXT_OPT ("os", ARM_FEATURE (ARM_EXT_OS, 0),
24139 ARM_FEATURE (ARM_EXT_V6M, 0)),
24140 ARM_EXT_OPT ("sec", ARM_FEATURE (ARM_EXT_SEC, 0),
24141 ARM_FEATURE (ARM_EXT_V6K | ARM_EXT_V7A, 0)),
24142 ARM_EXT_OPT ("virt", ARM_FEATURE (ARM_EXT_VIRT | ARM_EXT_ADIV
24143 | ARM_EXT_DIV, 0),
24144 ARM_FEATURE (ARM_EXT_V7A, 0)),
24145 ARM_EXT_OPT ("xscale",ARM_FEATURE (0, ARM_CEXT_XSCALE), ARM_ANY),
24146 { NULL, 0, ARM_ARCH_NONE, ARM_ARCH_NONE }
24147 };
24148 #undef ARM_EXT_OPT
24149
24150 /* ISA floating-point and Advanced SIMD extensions. */
24151 struct arm_option_fpu_value_table
24152 {
24153 char *name;
24154 const arm_feature_set value;
24155 };
24156
24157 /* This list should, at a minimum, contain all the fpu names
24158 recognized by GCC. */
24159 static const struct arm_option_fpu_value_table arm_fpus[] =
24160 {
24161 {"softfpa", FPU_NONE},
24162 {"fpe", FPU_ARCH_FPE},
24163 {"fpe2", FPU_ARCH_FPE},
24164 {"fpe3", FPU_ARCH_FPA}, /* Third release supports LFM/SFM. */
24165 {"fpa", FPU_ARCH_FPA},
24166 {"fpa10", FPU_ARCH_FPA},
24167 {"fpa11", FPU_ARCH_FPA},
24168 {"arm7500fe", FPU_ARCH_FPA},
24169 {"softvfp", FPU_ARCH_VFP},
24170 {"softvfp+vfp", FPU_ARCH_VFP_V2},
24171 {"vfp", FPU_ARCH_VFP_V2},
24172 {"vfp9", FPU_ARCH_VFP_V2},
24173 {"vfp3", FPU_ARCH_VFP_V3}, /* For backwards compatbility. */
24174 {"vfp10", FPU_ARCH_VFP_V2},
24175 {"vfp10-r0", FPU_ARCH_VFP_V1},
24176 {"vfpxd", FPU_ARCH_VFP_V1xD},
24177 {"vfpv2", FPU_ARCH_VFP_V2},
24178 {"vfpv3", FPU_ARCH_VFP_V3},
24179 {"vfpv3-fp16", FPU_ARCH_VFP_V3_FP16},
24180 {"vfpv3-d16", FPU_ARCH_VFP_V3D16},
24181 {"vfpv3-d16-fp16", FPU_ARCH_VFP_V3D16_FP16},
24182 {"vfpv3xd", FPU_ARCH_VFP_V3xD},
24183 {"vfpv3xd-fp16", FPU_ARCH_VFP_V3xD_FP16},
24184 {"arm1020t", FPU_ARCH_VFP_V1},
24185 {"arm1020e", FPU_ARCH_VFP_V2},
24186 {"arm1136jfs", FPU_ARCH_VFP_V2},
24187 {"arm1136jf-s", FPU_ARCH_VFP_V2},
24188 {"maverick", FPU_ARCH_MAVERICK},
24189 {"neon", FPU_ARCH_VFP_V3_PLUS_NEON_V1},
24190 {"neon-fp16", FPU_ARCH_NEON_FP16},
24191 {"vfpv4", FPU_ARCH_VFP_V4},
24192 {"vfpv4-d16", FPU_ARCH_VFP_V4D16},
24193 {"fpv4-sp-d16", FPU_ARCH_VFP_V4_SP_D16},
24194 {"neon-vfpv4", FPU_ARCH_NEON_VFP_V4},
24195 {"fp-armv8", FPU_ARCH_VFP_ARMV8},
24196 {"neon-fp-armv8", FPU_ARCH_NEON_VFP_ARMV8},
24197 {"crypto-neon-fp-armv8",
24198 FPU_ARCH_CRYPTO_NEON_VFP_ARMV8},
24199 {NULL, ARM_ARCH_NONE}
24200 };
24201
24202 struct arm_option_value_table
24203 {
24204 char *name;
24205 long value;
24206 };
24207
24208 static const struct arm_option_value_table arm_float_abis[] =
24209 {
24210 {"hard", ARM_FLOAT_ABI_HARD},
24211 {"softfp", ARM_FLOAT_ABI_SOFTFP},
24212 {"soft", ARM_FLOAT_ABI_SOFT},
24213 {NULL, 0}
24214 };
24215
24216 #ifdef OBJ_ELF
24217 /* We only know how to output GNU and ver 4/5 (AAELF) formats. */
24218 static const struct arm_option_value_table arm_eabis[] =
24219 {
24220 {"gnu", EF_ARM_EABI_UNKNOWN},
24221 {"4", EF_ARM_EABI_VER4},
24222 {"5", EF_ARM_EABI_VER5},
24223 {NULL, 0}
24224 };
24225 #endif
24226
24227 struct arm_long_option_table
24228 {
24229 char * option; /* Substring to match. */
24230 char * help; /* Help information. */
24231 int (* func) (char * subopt); /* Function to decode sub-option. */
24232 char * deprecated; /* If non-null, print this message. */
24233 };
24234
24235 static bfd_boolean
24236 arm_parse_extension (char *str, const arm_feature_set **opt_p)
24237 {
24238 arm_feature_set *ext_set = (arm_feature_set *)
24239 xmalloc (sizeof (arm_feature_set));
24240
24241 /* We insist on extensions being specified in alphabetical order, and with
24242 extensions being added before being removed. We achieve this by having
24243 the global ARM_EXTENSIONS table in alphabetical order, and using the
24244 ADDING_VALUE variable to indicate whether we are adding an extension (1)
24245 or removing it (0) and only allowing it to change in the order
24246 -1 -> 1 -> 0. */
24247 const struct arm_option_extension_value_table * opt = NULL;
24248 int adding_value = -1;
24249
24250 /* Copy the feature set, so that we can modify it. */
24251 *ext_set = **opt_p;
24252 *opt_p = ext_set;
24253
24254 while (str != NULL && *str != 0)
24255 {
24256 char *ext;
24257 size_t len;
24258
24259 if (*str != '+')
24260 {
24261 as_bad (_("invalid architectural extension"));
24262 return FALSE;
24263 }
24264
24265 str++;
24266 ext = strchr (str, '+');
24267
24268 if (ext != NULL)
24269 len = ext - str;
24270 else
24271 len = strlen (str);
24272
24273 if (len >= 2 && strncmp (str, "no", 2) == 0)
24274 {
24275 if (adding_value != 0)
24276 {
24277 adding_value = 0;
24278 opt = arm_extensions;
24279 }
24280
24281 len -= 2;
24282 str += 2;
24283 }
24284 else if (len > 0)
24285 {
24286 if (adding_value == -1)
24287 {
24288 adding_value = 1;
24289 opt = arm_extensions;
24290 }
24291 else if (adding_value != 1)
24292 {
24293 as_bad (_("must specify extensions to add before specifying "
24294 "those to remove"));
24295 return FALSE;
24296 }
24297 }
24298
24299 if (len == 0)
24300 {
24301 as_bad (_("missing architectural extension"));
24302 return FALSE;
24303 }
24304
24305 gas_assert (adding_value != -1);
24306 gas_assert (opt != NULL);
24307
24308 /* Scan over the options table trying to find an exact match. */
24309 for (; opt->name != NULL; opt++)
24310 if (opt->name_len == len && strncmp (opt->name, str, len) == 0)
24311 {
24312 /* Check we can apply the extension to this architecture. */
24313 if (!ARM_CPU_HAS_FEATURE (*ext_set, opt->allowed_archs))
24314 {
24315 as_bad (_("extension does not apply to the base architecture"));
24316 return FALSE;
24317 }
24318
24319 /* Add or remove the extension. */
24320 if (adding_value)
24321 ARM_MERGE_FEATURE_SETS (*ext_set, *ext_set, opt->value);
24322 else
24323 ARM_CLEAR_FEATURE (*ext_set, *ext_set, opt->value);
24324
24325 break;
24326 }
24327
24328 if (opt->name == NULL)
24329 {
24330 /* Did we fail to find an extension because it wasn't specified in
24331 alphabetical order, or because it does not exist? */
24332
24333 for (opt = arm_extensions; opt->name != NULL; opt++)
24334 if (opt->name_len == len && strncmp (opt->name, str, len) == 0)
24335 break;
24336
24337 if (opt->name == NULL)
24338 as_bad (_("unknown architectural extension `%s'"), str);
24339 else
24340 as_bad (_("architectural extensions must be specified in "
24341 "alphabetical order"));
24342
24343 return FALSE;
24344 }
24345 else
24346 {
24347 /* We should skip the extension we've just matched the next time
24348 round. */
24349 opt++;
24350 }
24351
24352 str = ext;
24353 };
24354
24355 return TRUE;
24356 }
24357
24358 static bfd_boolean
24359 arm_parse_cpu (char *str)
24360 {
24361 const struct arm_cpu_option_table *opt;
24362 char *ext = strchr (str, '+');
24363 size_t len;
24364
24365 if (ext != NULL)
24366 len = ext - str;
24367 else
24368 len = strlen (str);
24369
24370 if (len == 0)
24371 {
24372 as_bad (_("missing cpu name `%s'"), str);
24373 return FALSE;
24374 }
24375
24376 for (opt = arm_cpus; opt->name != NULL; opt++)
24377 if (opt->name_len == len && strncmp (opt->name, str, len) == 0)
24378 {
24379 mcpu_cpu_opt = &opt->value;
24380 mcpu_fpu_opt = &opt->default_fpu;
24381 if (opt->canonical_name)
24382 strcpy (selected_cpu_name, opt->canonical_name);
24383 else
24384 {
24385 size_t i;
24386
24387 for (i = 0; i < len; i++)
24388 selected_cpu_name[i] = TOUPPER (opt->name[i]);
24389 selected_cpu_name[i] = 0;
24390 }
24391
24392 if (ext != NULL)
24393 return arm_parse_extension (ext, &mcpu_cpu_opt);
24394
24395 return TRUE;
24396 }
24397
24398 as_bad (_("unknown cpu `%s'"), str);
24399 return FALSE;
24400 }
24401
24402 static bfd_boolean
24403 arm_parse_arch (char *str)
24404 {
24405 const struct arm_arch_option_table *opt;
24406 char *ext = strchr (str, '+');
24407 size_t len;
24408
24409 if (ext != NULL)
24410 len = ext - str;
24411 else
24412 len = strlen (str);
24413
24414 if (len == 0)
24415 {
24416 as_bad (_("missing architecture name `%s'"), str);
24417 return FALSE;
24418 }
24419
24420 for (opt = arm_archs; opt->name != NULL; opt++)
24421 if (opt->name_len == len && strncmp (opt->name, str, len) == 0)
24422 {
24423 march_cpu_opt = &opt->value;
24424 march_fpu_opt = &opt->default_fpu;
24425 strcpy (selected_cpu_name, opt->name);
24426
24427 if (ext != NULL)
24428 return arm_parse_extension (ext, &march_cpu_opt);
24429
24430 return TRUE;
24431 }
24432
24433 as_bad (_("unknown architecture `%s'\n"), str);
24434 return FALSE;
24435 }
24436
24437 static bfd_boolean
24438 arm_parse_fpu (char * str)
24439 {
24440 const struct arm_option_fpu_value_table * opt;
24441
24442 for (opt = arm_fpus; opt->name != NULL; opt++)
24443 if (streq (opt->name, str))
24444 {
24445 mfpu_opt = &opt->value;
24446 return TRUE;
24447 }
24448
24449 as_bad (_("unknown floating point format `%s'\n"), str);
24450 return FALSE;
24451 }
24452
24453 static bfd_boolean
24454 arm_parse_float_abi (char * str)
24455 {
24456 const struct arm_option_value_table * opt;
24457
24458 for (opt = arm_float_abis; opt->name != NULL; opt++)
24459 if (streq (opt->name, str))
24460 {
24461 mfloat_abi_opt = opt->value;
24462 return TRUE;
24463 }
24464
24465 as_bad (_("unknown floating point abi `%s'\n"), str);
24466 return FALSE;
24467 }
24468
24469 #ifdef OBJ_ELF
24470 static bfd_boolean
24471 arm_parse_eabi (char * str)
24472 {
24473 const struct arm_option_value_table *opt;
24474
24475 for (opt = arm_eabis; opt->name != NULL; opt++)
24476 if (streq (opt->name, str))
24477 {
24478 meabi_flags = opt->value;
24479 return TRUE;
24480 }
24481 as_bad (_("unknown EABI `%s'\n"), str);
24482 return FALSE;
24483 }
24484 #endif
24485
24486 static bfd_boolean
24487 arm_parse_it_mode (char * str)
24488 {
24489 bfd_boolean ret = TRUE;
24490
24491 if (streq ("arm", str))
24492 implicit_it_mode = IMPLICIT_IT_MODE_ARM;
24493 else if (streq ("thumb", str))
24494 implicit_it_mode = IMPLICIT_IT_MODE_THUMB;
24495 else if (streq ("always", str))
24496 implicit_it_mode = IMPLICIT_IT_MODE_ALWAYS;
24497 else if (streq ("never", str))
24498 implicit_it_mode = IMPLICIT_IT_MODE_NEVER;
24499 else
24500 {
24501 as_bad (_("unknown implicit IT mode `%s', should be "\
24502 "arm, thumb, always, or never."), str);
24503 ret = FALSE;
24504 }
24505
24506 return ret;
24507 }
24508
24509 struct arm_long_option_table arm_long_opts[] =
24510 {
24511 {"mcpu=", N_("<cpu name>\t assemble for CPU <cpu name>"),
24512 arm_parse_cpu, NULL},
24513 {"march=", N_("<arch name>\t assemble for architecture <arch name>"),
24514 arm_parse_arch, NULL},
24515 {"mfpu=", N_("<fpu name>\t assemble for FPU architecture <fpu name>"),
24516 arm_parse_fpu, NULL},
24517 {"mfloat-abi=", N_("<abi>\t assemble for floating point ABI <abi>"),
24518 arm_parse_float_abi, NULL},
24519 #ifdef OBJ_ELF
24520 {"meabi=", N_("<ver>\t\t assemble for eabi version <ver>"),
24521 arm_parse_eabi, NULL},
24522 #endif
24523 {"mimplicit-it=", N_("<mode>\t controls implicit insertion of IT instructions"),
24524 arm_parse_it_mode, NULL},
24525 {NULL, NULL, 0, NULL}
24526 };
24527
24528 int
24529 md_parse_option (int c, char * arg)
24530 {
24531 struct arm_option_table *opt;
24532 const struct arm_legacy_option_table *fopt;
24533 struct arm_long_option_table *lopt;
24534
24535 switch (c)
24536 {
24537 #ifdef OPTION_EB
24538 case OPTION_EB:
24539 target_big_endian = 1;
24540 break;
24541 #endif
24542
24543 #ifdef OPTION_EL
24544 case OPTION_EL:
24545 target_big_endian = 0;
24546 break;
24547 #endif
24548
24549 case OPTION_FIX_V4BX:
24550 fix_v4bx = TRUE;
24551 break;
24552
24553 case 'a':
24554 /* Listing option. Just ignore these, we don't support additional
24555 ones. */
24556 return 0;
24557
24558 default:
24559 for (opt = arm_opts; opt->option != NULL; opt++)
24560 {
24561 if (c == opt->option[0]
24562 && ((arg == NULL && opt->option[1] == 0)
24563 || streq (arg, opt->option + 1)))
24564 {
24565 /* If the option is deprecated, tell the user. */
24566 if (warn_on_deprecated && opt->deprecated != NULL)
24567 as_tsktsk (_("option `-%c%s' is deprecated: %s"), c,
24568 arg ? arg : "", _(opt->deprecated));
24569
24570 if (opt->var != NULL)
24571 *opt->var = opt->value;
24572
24573 return 1;
24574 }
24575 }
24576
24577 for (fopt = arm_legacy_opts; fopt->option != NULL; fopt++)
24578 {
24579 if (c == fopt->option[0]
24580 && ((arg == NULL && fopt->option[1] == 0)
24581 || streq (arg, fopt->option + 1)))
24582 {
24583 /* If the option is deprecated, tell the user. */
24584 if (warn_on_deprecated && fopt->deprecated != NULL)
24585 as_tsktsk (_("option `-%c%s' is deprecated: %s"), c,
24586 arg ? arg : "", _(fopt->deprecated));
24587
24588 if (fopt->var != NULL)
24589 *fopt->var = &fopt->value;
24590
24591 return 1;
24592 }
24593 }
24594
24595 for (lopt = arm_long_opts; lopt->option != NULL; lopt++)
24596 {
24597 /* These options are expected to have an argument. */
24598 if (c == lopt->option[0]
24599 && arg != NULL
24600 && strncmp (arg, lopt->option + 1,
24601 strlen (lopt->option + 1)) == 0)
24602 {
24603 /* If the option is deprecated, tell the user. */
24604 if (warn_on_deprecated && lopt->deprecated != NULL)
24605 as_tsktsk (_("option `-%c%s' is deprecated: %s"), c, arg,
24606 _(lopt->deprecated));
24607
24608 /* Call the sup-option parser. */
24609 return lopt->func (arg + strlen (lopt->option) - 1);
24610 }
24611 }
24612
24613 return 0;
24614 }
24615
24616 return 1;
24617 }
24618
24619 void
24620 md_show_usage (FILE * fp)
24621 {
24622 struct arm_option_table *opt;
24623 struct arm_long_option_table *lopt;
24624
24625 fprintf (fp, _(" ARM-specific assembler options:\n"));
24626
24627 for (opt = arm_opts; opt->option != NULL; opt++)
24628 if (opt->help != NULL)
24629 fprintf (fp, " -%-23s%s\n", opt->option, _(opt->help));
24630
24631 for (lopt = arm_long_opts; lopt->option != NULL; lopt++)
24632 if (lopt->help != NULL)
24633 fprintf (fp, " -%s%s\n", lopt->option, _(lopt->help));
24634
24635 #ifdef OPTION_EB
24636 fprintf (fp, _("\
24637 -EB assemble code for a big-endian cpu\n"));
24638 #endif
24639
24640 #ifdef OPTION_EL
24641 fprintf (fp, _("\
24642 -EL assemble code for a little-endian cpu\n"));
24643 #endif
24644
24645 fprintf (fp, _("\
24646 --fix-v4bx Allow BX in ARMv4 code\n"));
24647 }
24648
24649
24650 #ifdef OBJ_ELF
24651 typedef struct
24652 {
24653 int val;
24654 arm_feature_set flags;
24655 } cpu_arch_ver_table;
24656
24657 /* Mapping from CPU features to EABI CPU arch values. Table must be sorted
24658 least features first. */
24659 static const cpu_arch_ver_table cpu_arch_ver[] =
24660 {
24661 {1, ARM_ARCH_V4},
24662 {2, ARM_ARCH_V4T},
24663 {3, ARM_ARCH_V5},
24664 {3, ARM_ARCH_V5T},
24665 {4, ARM_ARCH_V5TE},
24666 {5, ARM_ARCH_V5TEJ},
24667 {6, ARM_ARCH_V6},
24668 {9, ARM_ARCH_V6K},
24669 {7, ARM_ARCH_V6Z},
24670 {11, ARM_ARCH_V6M},
24671 {12, ARM_ARCH_V6SM},
24672 {8, ARM_ARCH_V6T2},
24673 {10, ARM_ARCH_V7VE},
24674 {10, ARM_ARCH_V7R},
24675 {10, ARM_ARCH_V7M},
24676 {14, ARM_ARCH_V8A},
24677 {0, ARM_ARCH_NONE}
24678 };
24679
24680 /* Set an attribute if it has not already been set by the user. */
24681 static void
24682 aeabi_set_attribute_int (int tag, int value)
24683 {
24684 if (tag < 1
24685 || tag >= NUM_KNOWN_OBJ_ATTRIBUTES
24686 || !attributes_set_explicitly[tag])
24687 bfd_elf_add_proc_attr_int (stdoutput, tag, value);
24688 }
24689
24690 static void
24691 aeabi_set_attribute_string (int tag, const char *value)
24692 {
24693 if (tag < 1
24694 || tag >= NUM_KNOWN_OBJ_ATTRIBUTES
24695 || !attributes_set_explicitly[tag])
24696 bfd_elf_add_proc_attr_string (stdoutput, tag, value);
24697 }
24698
24699 /* Set the public EABI object attributes. */
24700 static void
24701 aeabi_set_public_attributes (void)
24702 {
24703 int arch;
24704 char profile;
24705 int virt_sec = 0;
24706 int fp16_optional = 0;
24707 arm_feature_set flags;
24708 arm_feature_set tmp;
24709 const cpu_arch_ver_table *p;
24710
24711 /* Choose the architecture based on the capabilities of the requested cpu
24712 (if any) and/or the instructions actually used. */
24713 ARM_MERGE_FEATURE_SETS (flags, arm_arch_used, thumb_arch_used);
24714 ARM_MERGE_FEATURE_SETS (flags, flags, *mfpu_opt);
24715 ARM_MERGE_FEATURE_SETS (flags, flags, selected_cpu);
24716
24717 if (ARM_CPU_HAS_FEATURE (arm_arch_used, arm_arch_any))
24718 ARM_MERGE_FEATURE_SETS (flags, flags, arm_ext_v1);
24719
24720 if (ARM_CPU_HAS_FEATURE (thumb_arch_used, arm_arch_any))
24721 ARM_MERGE_FEATURE_SETS (flags, flags, arm_ext_v4t);
24722
24723 /* Allow the user to override the reported architecture. */
24724 if (object_arch)
24725 {
24726 ARM_CLEAR_FEATURE (flags, flags, arm_arch_any);
24727 ARM_MERGE_FEATURE_SETS (flags, flags, *object_arch);
24728 }
24729
24730 /* We need to make sure that the attributes do not identify us as v6S-M
24731 when the only v6S-M feature in use is the Operating System Extensions. */
24732 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_os))
24733 if (!ARM_CPU_HAS_FEATURE (flags, arm_arch_v6m_only))
24734 ARM_CLEAR_FEATURE (flags, flags, arm_ext_os);
24735
24736 tmp = flags;
24737 arch = 0;
24738 for (p = cpu_arch_ver; p->val; p++)
24739 {
24740 if (ARM_CPU_HAS_FEATURE (tmp, p->flags))
24741 {
24742 arch = p->val;
24743 ARM_CLEAR_FEATURE (tmp, tmp, p->flags);
24744 }
24745 }
24746
24747 /* The table lookup above finds the last architecture to contribute
24748 a new feature. Unfortunately, Tag13 is a subset of the union of
24749 v6T2 and v7-M, so it is never seen as contributing a new feature.
24750 We can not search for the last entry which is entirely used,
24751 because if no CPU is specified we build up only those flags
24752 actually used. Perhaps we should separate out the specified
24753 and implicit cases. Avoid taking this path for -march=all by
24754 checking for contradictory v7-A / v7-M features. */
24755 if (arch == 10
24756 && !ARM_CPU_HAS_FEATURE (flags, arm_ext_v7a)
24757 && ARM_CPU_HAS_FEATURE (flags, arm_ext_v7m)
24758 && ARM_CPU_HAS_FEATURE (flags, arm_ext_v6_dsp))
24759 arch = 13;
24760
24761 /* Tag_CPU_name. */
24762 if (selected_cpu_name[0])
24763 {
24764 char *q;
24765
24766 q = selected_cpu_name;
24767 if (strncmp (q, "armv", 4) == 0)
24768 {
24769 int i;
24770
24771 q += 4;
24772 for (i = 0; q[i]; i++)
24773 q[i] = TOUPPER (q[i]);
24774 }
24775 aeabi_set_attribute_string (Tag_CPU_name, q);
24776 }
24777
24778 /* Tag_CPU_arch. */
24779 aeabi_set_attribute_int (Tag_CPU_arch, arch);
24780
24781 /* Tag_CPU_arch_profile. */
24782 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_v7a))
24783 profile = 'A';
24784 else if (ARM_CPU_HAS_FEATURE (flags, arm_ext_v7r))
24785 profile = 'R';
24786 else if (ARM_CPU_HAS_FEATURE (flags, arm_ext_m))
24787 profile = 'M';
24788 else
24789 profile = '\0';
24790
24791 if (profile != '\0')
24792 aeabi_set_attribute_int (Tag_CPU_arch_profile, profile);
24793
24794 /* Tag_ARM_ISA_use. */
24795 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_v1)
24796 || arch == 0)
24797 aeabi_set_attribute_int (Tag_ARM_ISA_use, 1);
24798
24799 /* Tag_THUMB_ISA_use. */
24800 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_v4t)
24801 || arch == 0)
24802 aeabi_set_attribute_int (Tag_THUMB_ISA_use,
24803 ARM_CPU_HAS_FEATURE (flags, arm_arch_t2) ? 2 : 1);
24804
24805 /* Tag_VFP_arch. */
24806 if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_armv8))
24807 aeabi_set_attribute_int (Tag_VFP_arch, 7);
24808 else if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_fma))
24809 aeabi_set_attribute_int (Tag_VFP_arch,
24810 ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_d32)
24811 ? 5 : 6);
24812 else if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_d32))
24813 {
24814 fp16_optional = 1;
24815 aeabi_set_attribute_int (Tag_VFP_arch, 3);
24816 }
24817 else if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_v3xd))
24818 {
24819 aeabi_set_attribute_int (Tag_VFP_arch, 4);
24820 fp16_optional = 1;
24821 }
24822 else if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_v2))
24823 aeabi_set_attribute_int (Tag_VFP_arch, 2);
24824 else if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_v1)
24825 || ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_v1xd))
24826 aeabi_set_attribute_int (Tag_VFP_arch, 1);
24827
24828 /* Tag_ABI_HardFP_use. */
24829 if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_v1xd)
24830 && !ARM_CPU_HAS_FEATURE (flags, fpu_vfp_ext_v1))
24831 aeabi_set_attribute_int (Tag_ABI_HardFP_use, 1);
24832
24833 /* Tag_WMMX_arch. */
24834 if (ARM_CPU_HAS_FEATURE (flags, arm_cext_iwmmxt2))
24835 aeabi_set_attribute_int (Tag_WMMX_arch, 2);
24836 else if (ARM_CPU_HAS_FEATURE (flags, arm_cext_iwmmxt))
24837 aeabi_set_attribute_int (Tag_WMMX_arch, 1);
24838
24839 /* Tag_Advanced_SIMD_arch (formerly Tag_NEON_arch). */
24840 if (ARM_CPU_HAS_FEATURE (flags, fpu_neon_ext_armv8))
24841 aeabi_set_attribute_int (Tag_Advanced_SIMD_arch, 3);
24842 else if (ARM_CPU_HAS_FEATURE (flags, fpu_neon_ext_v1))
24843 {
24844 if (ARM_CPU_HAS_FEATURE (flags, fpu_neon_ext_fma))
24845 {
24846 aeabi_set_attribute_int (Tag_Advanced_SIMD_arch, 2);
24847 }
24848 else
24849 {
24850 aeabi_set_attribute_int (Tag_Advanced_SIMD_arch, 1);
24851 fp16_optional = 1;
24852 }
24853 }
24854
24855 /* Tag_VFP_HP_extension (formerly Tag_NEON_FP16_arch). */
24856 if (ARM_CPU_HAS_FEATURE (flags, fpu_vfp_fp16) && fp16_optional)
24857 aeabi_set_attribute_int (Tag_VFP_HP_extension, 1);
24858
24859 /* Tag_DIV_use.
24860
24861 We set Tag_DIV_use to two when integer divide instructions have been used
24862 in ARM state, or when Thumb integer divide instructions have been used,
24863 but we have no architecture profile set, nor have we any ARM instructions.
24864
24865 For ARMv8 we set the tag to 0 as integer divide is implied by the base
24866 architecture.
24867
24868 For new architectures we will have to check these tests. */
24869 gas_assert (arch <= TAG_CPU_ARCH_V8);
24870 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_v8))
24871 aeabi_set_attribute_int (Tag_DIV_use, 0);
24872 else if (ARM_CPU_HAS_FEATURE (flags, arm_ext_adiv)
24873 || (profile == '\0'
24874 && ARM_CPU_HAS_FEATURE (flags, arm_ext_div)
24875 && !ARM_CPU_HAS_FEATURE (arm_arch_used, arm_arch_any)))
24876 aeabi_set_attribute_int (Tag_DIV_use, 2);
24877
24878 /* Tag_MP_extension_use. */
24879 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_mp))
24880 aeabi_set_attribute_int (Tag_MPextension_use, 1);
24881
24882 /* Tag Virtualization_use. */
24883 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_sec))
24884 virt_sec |= 1;
24885 if (ARM_CPU_HAS_FEATURE (flags, arm_ext_virt))
24886 virt_sec |= 2;
24887 if (virt_sec != 0)
24888 aeabi_set_attribute_int (Tag_Virtualization_use, virt_sec);
24889 }
24890
24891 /* Add the default contents for the .ARM.attributes section. */
24892 void
24893 arm_md_end (void)
24894 {
24895 if (EF_ARM_EABI_VERSION (meabi_flags) < EF_ARM_EABI_VER4)
24896 return;
24897
24898 aeabi_set_public_attributes ();
24899 }
24900 #endif /* OBJ_ELF */
24901
24902
24903 /* Parse a .cpu directive. */
24904
24905 static void
24906 s_arm_cpu (int ignored ATTRIBUTE_UNUSED)
24907 {
24908 const struct arm_cpu_option_table *opt;
24909 char *name;
24910 char saved_char;
24911
24912 name = input_line_pointer;
24913 while (*input_line_pointer && !ISSPACE (*input_line_pointer))
24914 input_line_pointer++;
24915 saved_char = *input_line_pointer;
24916 *input_line_pointer = 0;
24917
24918 /* Skip the first "all" entry. */
24919 for (opt = arm_cpus + 1; opt->name != NULL; opt++)
24920 if (streq (opt->name, name))
24921 {
24922 mcpu_cpu_opt = &opt->value;
24923 selected_cpu = opt->value;
24924 if (opt->canonical_name)
24925 strcpy (selected_cpu_name, opt->canonical_name);
24926 else
24927 {
24928 int i;
24929 for (i = 0; opt->name[i]; i++)
24930 selected_cpu_name[i] = TOUPPER (opt->name[i]);
24931
24932 selected_cpu_name[i] = 0;
24933 }
24934 ARM_MERGE_FEATURE_SETS (cpu_variant, *mcpu_cpu_opt, *mfpu_opt);
24935 *input_line_pointer = saved_char;
24936 demand_empty_rest_of_line ();
24937 return;
24938 }
24939 as_bad (_("unknown cpu `%s'"), name);
24940 *input_line_pointer = saved_char;
24941 ignore_rest_of_line ();
24942 }
24943
24944
24945 /* Parse a .arch directive. */
24946
24947 static void
24948 s_arm_arch (int ignored ATTRIBUTE_UNUSED)
24949 {
24950 const struct arm_arch_option_table *opt;
24951 char saved_char;
24952 char *name;
24953
24954 name = input_line_pointer;
24955 while (*input_line_pointer && !ISSPACE (*input_line_pointer))
24956 input_line_pointer++;
24957 saved_char = *input_line_pointer;
24958 *input_line_pointer = 0;
24959
24960 /* Skip the first "all" entry. */
24961 for (opt = arm_archs + 1; opt->name != NULL; opt++)
24962 if (streq (opt->name, name))
24963 {
24964 mcpu_cpu_opt = &opt->value;
24965 selected_cpu = opt->value;
24966 strcpy (selected_cpu_name, opt->name);
24967 ARM_MERGE_FEATURE_SETS (cpu_variant, *mcpu_cpu_opt, *mfpu_opt);
24968 *input_line_pointer = saved_char;
24969 demand_empty_rest_of_line ();
24970 return;
24971 }
24972
24973 as_bad (_("unknown architecture `%s'\n"), name);
24974 *input_line_pointer = saved_char;
24975 ignore_rest_of_line ();
24976 }
24977
24978
24979 /* Parse a .object_arch directive. */
24980
24981 static void
24982 s_arm_object_arch (int ignored ATTRIBUTE_UNUSED)
24983 {
24984 const struct arm_arch_option_table *opt;
24985 char saved_char;
24986 char *name;
24987
24988 name = input_line_pointer;
24989 while (*input_line_pointer && !ISSPACE (*input_line_pointer))
24990 input_line_pointer++;
24991 saved_char = *input_line_pointer;
24992 *input_line_pointer = 0;
24993
24994 /* Skip the first "all" entry. */
24995 for (opt = arm_archs + 1; opt->name != NULL; opt++)
24996 if (streq (opt->name, name))
24997 {
24998 object_arch = &opt->value;
24999 *input_line_pointer = saved_char;
25000 demand_empty_rest_of_line ();
25001 return;
25002 }
25003
25004 as_bad (_("unknown architecture `%s'\n"), name);
25005 *input_line_pointer = saved_char;
25006 ignore_rest_of_line ();
25007 }
25008
25009 /* Parse a .arch_extension directive. */
25010
25011 static void
25012 s_arm_arch_extension (int ignored ATTRIBUTE_UNUSED)
25013 {
25014 const struct arm_option_extension_value_table *opt;
25015 char saved_char;
25016 char *name;
25017 int adding_value = 1;
25018
25019 name = input_line_pointer;
25020 while (*input_line_pointer && !ISSPACE (*input_line_pointer))
25021 input_line_pointer++;
25022 saved_char = *input_line_pointer;
25023 *input_line_pointer = 0;
25024
25025 if (strlen (name) >= 2
25026 && strncmp (name, "no", 2) == 0)
25027 {
25028 adding_value = 0;
25029 name += 2;
25030 }
25031
25032 for (opt = arm_extensions; opt->name != NULL; opt++)
25033 if (streq (opt->name, name))
25034 {
25035 if (!ARM_CPU_HAS_FEATURE (*mcpu_cpu_opt, opt->allowed_archs))
25036 {
25037 as_bad (_("architectural extension `%s' is not allowed for the "
25038 "current base architecture"), name);
25039 break;
25040 }
25041
25042 if (adding_value)
25043 ARM_MERGE_FEATURE_SETS (selected_cpu, selected_cpu, opt->value);
25044 else
25045 ARM_CLEAR_FEATURE (selected_cpu, selected_cpu, opt->value);
25046
25047 mcpu_cpu_opt = &selected_cpu;
25048 ARM_MERGE_FEATURE_SETS (cpu_variant, *mcpu_cpu_opt, *mfpu_opt);
25049 *input_line_pointer = saved_char;
25050 demand_empty_rest_of_line ();
25051 return;
25052 }
25053
25054 if (opt->name == NULL)
25055 as_bad (_("unknown architecture extension `%s'\n"), name);
25056
25057 *input_line_pointer = saved_char;
25058 ignore_rest_of_line ();
25059 }
25060
25061 /* Parse a .fpu directive. */
25062
25063 static void
25064 s_arm_fpu (int ignored ATTRIBUTE_UNUSED)
25065 {
25066 const struct arm_option_fpu_value_table *opt;
25067 char saved_char;
25068 char *name;
25069
25070 name = input_line_pointer;
25071 while (*input_line_pointer && !ISSPACE (*input_line_pointer))
25072 input_line_pointer++;
25073 saved_char = *input_line_pointer;
25074 *input_line_pointer = 0;
25075
25076 for (opt = arm_fpus; opt->name != NULL; opt++)
25077 if (streq (opt->name, name))
25078 {
25079 mfpu_opt = &opt->value;
25080 ARM_MERGE_FEATURE_SETS (cpu_variant, *mcpu_cpu_opt, *mfpu_opt);
25081 *input_line_pointer = saved_char;
25082 demand_empty_rest_of_line ();
25083 return;
25084 }
25085
25086 as_bad (_("unknown floating point format `%s'\n"), name);
25087 *input_line_pointer = saved_char;
25088 ignore_rest_of_line ();
25089 }
25090
25091 /* Copy symbol information. */
25092
25093 void
25094 arm_copy_symbol_attributes (symbolS *dest, symbolS *src)
25095 {
25096 ARM_GET_FLAG (dest) = ARM_GET_FLAG (src);
25097 }
25098
25099 #ifdef OBJ_ELF
25100 /* Given a symbolic attribute NAME, return the proper integer value.
25101 Returns -1 if the attribute is not known. */
25102
25103 int
25104 arm_convert_symbolic_attribute (const char *name)
25105 {
25106 static const struct
25107 {
25108 const char * name;
25109 const int tag;
25110 }
25111 attribute_table[] =
25112 {
25113 /* When you modify this table you should
25114 also modify the list in doc/c-arm.texi. */
25115 #define T(tag) {#tag, tag}
25116 T (Tag_CPU_raw_name),
25117 T (Tag_CPU_name),
25118 T (Tag_CPU_arch),
25119 T (Tag_CPU_arch_profile),
25120 T (Tag_ARM_ISA_use),
25121 T (Tag_THUMB_ISA_use),
25122 T (Tag_FP_arch),
25123 T (Tag_VFP_arch),
25124 T (Tag_WMMX_arch),
25125 T (Tag_Advanced_SIMD_arch),
25126 T (Tag_PCS_config),
25127 T (Tag_ABI_PCS_R9_use),
25128 T (Tag_ABI_PCS_RW_data),
25129 T (Tag_ABI_PCS_RO_data),
25130 T (Tag_ABI_PCS_GOT_use),
25131 T (Tag_ABI_PCS_wchar_t),
25132 T (Tag_ABI_FP_rounding),
25133 T (Tag_ABI_FP_denormal),
25134 T (Tag_ABI_FP_exceptions),
25135 T (Tag_ABI_FP_user_exceptions),
25136 T (Tag_ABI_FP_number_model),
25137 T (Tag_ABI_align_needed),
25138 T (Tag_ABI_align8_needed),
25139 T (Tag_ABI_align_preserved),
25140 T (Tag_ABI_align8_preserved),
25141 T (Tag_ABI_enum_size),
25142 T (Tag_ABI_HardFP_use),
25143 T (Tag_ABI_VFP_args),
25144 T (Tag_ABI_WMMX_args),
25145 T (Tag_ABI_optimization_goals),
25146 T (Tag_ABI_FP_optimization_goals),
25147 T (Tag_compatibility),
25148 T (Tag_CPU_unaligned_access),
25149 T (Tag_FP_HP_extension),
25150 T (Tag_VFP_HP_extension),
25151 T (Tag_ABI_FP_16bit_format),
25152 T (Tag_MPextension_use),
25153 T (Tag_DIV_use),
25154 T (Tag_nodefaults),
25155 T (Tag_also_compatible_with),
25156 T (Tag_conformance),
25157 T (Tag_T2EE_use),
25158 T (Tag_Virtualization_use),
25159 /* We deliberately do not include Tag_MPextension_use_legacy. */
25160 #undef T
25161 };
25162 unsigned int i;
25163
25164 if (name == NULL)
25165 return -1;
25166
25167 for (i = 0; i < ARRAY_SIZE (attribute_table); i++)
25168 if (streq (name, attribute_table[i].name))
25169 return attribute_table[i].tag;
25170
25171 return -1;
25172 }
25173
25174
25175 /* Apply sym value for relocations only in the case that
25176 they are for local symbols and you have the respective
25177 architectural feature for blx and simple switches. */
25178 int
25179 arm_apply_sym_value (struct fix * fixP)
25180 {
25181 if (fixP->fx_addsy
25182 && ARM_CPU_HAS_FEATURE (selected_cpu, arm_ext_v5t)
25183 && !S_FORCE_RELOC (fixP->fx_addsy, TRUE))
25184 {
25185 switch (fixP->fx_r_type)
25186 {
25187 case BFD_RELOC_ARM_PCREL_BLX:
25188 case BFD_RELOC_THUMB_PCREL_BRANCH23:
25189 if (ARM_IS_FUNC (fixP->fx_addsy))
25190 return 1;
25191 break;
25192
25193 case BFD_RELOC_ARM_PCREL_CALL:
25194 case BFD_RELOC_THUMB_PCREL_BLX:
25195 if (THUMB_IS_FUNC (fixP->fx_addsy))
25196 return 1;
25197 break;
25198
25199 default:
25200 break;
25201 }
25202
25203 }
25204 return 0;
25205 }
25206 #endif /* OBJ_ELF */