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[binutils, ARM, 4/16] BF insns infrastructure with array of relocs in struct arm_it
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CommitLineData
cfc14b3a
MK
1/* Frame unwinder for frames with DWARF Call Frame Information.
2
42a4f53d 3 Copyright (C) 2003-2019 Free Software Foundation, Inc.
cfc14b3a
MK
4
5 Contributed by Mark Kettenis.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
a9762ec7 11 the Free Software Foundation; either version 3 of the License, or
cfc14b3a
MK
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
a9762ec7 20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
cfc14b3a
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21
22#include "defs.h"
d55e5aa6 23#include "dwarf2expr.h"
4de283e4
TT
24#include "dwarf2.h"
25#include "frame.h"
cfc14b3a
MK
26#include "frame-base.h"
27#include "frame-unwind.h"
28#include "gdbcore.h"
29#include "gdbtypes.h"
4de283e4 30#include "symtab.h"
cfc14b3a
MK
31#include "objfiles.h"
32#include "regcache.h"
f2da6b3a 33#include "value.h"
4de283e4 34#include "record.h"
cfc14b3a 35
4de283e4
TT
36#include "complaints.h"
37#include "dwarf2-frame.h"
38#include "dwarf2read.h"
39#include "ax.h"
40#include "dwarf2loc.h"
41#include "dwarf2-frame-tailcall.h"
1c90d9f0 42#if GDB_SELF_TEST
0747795c 43#include "common/selftest.h"
1c90d9f0
YQ
44#include "selftest-arch.h"
45#endif
cfc14b3a 46
ae0d2f24
UW
47struct comp_unit;
48
cfc14b3a
MK
49/* Call Frame Information (CFI). */
50
51/* Common Information Entry (CIE). */
52
53struct dwarf2_cie
54{
ae0d2f24
UW
55 /* Computation Unit for this CIE. */
56 struct comp_unit *unit;
57
cfc14b3a
MK
58 /* Offset into the .debug_frame section where this CIE was found.
59 Used to identify this CIE. */
60 ULONGEST cie_pointer;
61
62 /* Constant that is factored out of all advance location
63 instructions. */
64 ULONGEST code_alignment_factor;
65
66 /* Constants that is factored out of all offset instructions. */
67 LONGEST data_alignment_factor;
68
69 /* Return address column. */
70 ULONGEST return_address_register;
71
72 /* Instruction sequence to initialize a register set. */
f664829e
DE
73 const gdb_byte *initial_instructions;
74 const gdb_byte *end;
cfc14b3a 75
303b6f5d
DJ
76 /* Saved augmentation, in case it's needed later. */
77 char *augmentation;
78
cfc14b3a 79 /* Encoding of addresses. */
852483bc 80 gdb_byte encoding;
cfc14b3a 81
ae0d2f24
UW
82 /* Target address size in bytes. */
83 int addr_size;
84
0963b4bd 85 /* Target pointer size in bytes. */
8da614df
CV
86 int ptr_size;
87
7131cb6e
RH
88 /* True if a 'z' augmentation existed. */
89 unsigned char saw_z_augmentation;
90
56c987f6
AO
91 /* True if an 'S' augmentation existed. */
92 unsigned char signal_frame;
93
303b6f5d
DJ
94 /* The version recorded in the CIE. */
95 unsigned char version;
2dc7f7b3
TT
96
97 /* The segment size. */
98 unsigned char segment_size;
b01c8410 99};
303b6f5d 100
b01c8410
PP
101struct dwarf2_cie_table
102{
103 int num_entries;
104 struct dwarf2_cie **entries;
cfc14b3a
MK
105};
106
107/* Frame Description Entry (FDE). */
108
109struct dwarf2_fde
110{
111 /* CIE for this FDE. */
112 struct dwarf2_cie *cie;
113
114 /* First location associated with this FDE. */
115 CORE_ADDR initial_location;
116
117 /* Number of bytes of program instructions described by this FDE. */
118 CORE_ADDR address_range;
119
120 /* Instruction sequence. */
f664829e
DE
121 const gdb_byte *instructions;
122 const gdb_byte *end;
cfc14b3a 123
4bf8967c
AS
124 /* True if this FDE is read from a .eh_frame instead of a .debug_frame
125 section. */
126 unsigned char eh_frame_p;
b01c8410 127};
4bf8967c 128
b01c8410
PP
129struct dwarf2_fde_table
130{
131 int num_entries;
132 struct dwarf2_fde **entries;
cfc14b3a
MK
133};
134
ae0d2f24
UW
135/* A minimal decoding of DWARF2 compilation units. We only decode
136 what's needed to get to the call frame information. */
137
138struct comp_unit
139{
140 /* Keep the bfd convenient. */
141 bfd *abfd;
142
143 struct objfile *objfile;
144
ae0d2f24 145 /* Pointer to the .debug_frame section loaded into memory. */
d521ce57 146 const gdb_byte *dwarf_frame_buffer;
ae0d2f24
UW
147
148 /* Length of the loaded .debug_frame section. */
c098b58b 149 bfd_size_type dwarf_frame_size;
ae0d2f24
UW
150
151 /* Pointer to the .debug_frame section. */
152 asection *dwarf_frame_section;
153
154 /* Base for DW_EH_PE_datarel encodings. */
155 bfd_vma dbase;
156
157 /* Base for DW_EH_PE_textrel encodings. */
158 bfd_vma tbase;
159};
160
ac56253d
TT
161static struct dwarf2_fde *dwarf2_frame_find_fde (CORE_ADDR *pc,
162 CORE_ADDR *out_offset);
4fc771b8
DJ
163
164static int dwarf2_frame_adjust_regnum (struct gdbarch *gdbarch, int regnum,
165 int eh_frame_p);
ae0d2f24
UW
166
167static CORE_ADDR read_encoded_value (struct comp_unit *unit, gdb_byte encoding,
0d45f56e 168 int ptr_len, const gdb_byte *buf,
ae0d2f24
UW
169 unsigned int *bytes_read_ptr,
170 CORE_ADDR func_base);
cfc14b3a
MK
171\f
172
3c3bb058
AB
173/* See dwarf2-frame.h. */
174int dwarf2_frame_unwinders_enabled_p = 1;
175
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MK
176/* Store the length the expression for the CFA in the `cfa_reg' field,
177 which is unused in that case. */
178#define cfa_exp_len cfa_reg
179
afe37d6b
YQ
180dwarf2_frame_state::dwarf2_frame_state (CORE_ADDR pc_, struct dwarf2_cie *cie)
181 : pc (pc_), data_align (cie->data_alignment_factor),
182 code_align (cie->code_alignment_factor),
183 retaddr_column (cie->return_address_register)
cfc14b3a 184{
afe37d6b 185}
cfc14b3a
MK
186\f
187
188/* Helper functions for execute_stack_op. */
189
190static CORE_ADDR
192ca6d8 191read_addr_from_reg (struct frame_info *this_frame, int reg)
cfc14b3a 192{
4a4e5149 193 struct gdbarch *gdbarch = get_frame_arch (this_frame);
0fde2c53 194 int regnum = dwarf_reg_to_regnum_or_error (gdbarch, reg);
f2da6b3a 195
2ed3c037 196 return address_from_register (regnum, this_frame);
cfc14b3a
MK
197}
198
a6a5a945
LM
199/* Execute the required actions for both the DW_CFA_restore and
200DW_CFA_restore_extended instructions. */
201static void
202dwarf2_restore_rule (struct gdbarch *gdbarch, ULONGEST reg_num,
203 struct dwarf2_frame_state *fs, int eh_frame_p)
204{
205 ULONGEST reg;
206
a6a5a945 207 reg = dwarf2_frame_adjust_regnum (gdbarch, reg_num, eh_frame_p);
1c90d9f0 208 fs->regs.alloc_regs (reg + 1);
a6a5a945
LM
209
210 /* Check if this register was explicitly initialized in the
211 CIE initial instructions. If not, default the rule to
212 UNSPECIFIED. */
780942fc 213 if (reg < fs->initial.reg.size ())
a6a5a945
LM
214 fs->regs.reg[reg] = fs->initial.reg[reg];
215 else
216 fs->regs.reg[reg].how = DWARF2_FRAME_REG_UNSPECIFIED;
217
218 if (fs->regs.reg[reg].how == DWARF2_FRAME_REG_UNSPECIFIED)
0fde2c53
DE
219 {
220 int regnum = dwarf_reg_to_regnum (gdbarch, reg);
221
b98664d3 222 complaint (_("\
a6a5a945 223incomplete CFI data; DW_CFA_restore unspecified\n\
5af949e3 224register %s (#%d) at %s"),
0fde2c53
DE
225 gdbarch_register_name (gdbarch, regnum), regnum,
226 paddress (gdbarch, fs->pc));
227 }
a6a5a945
LM
228}
229
192ca6d8 230class dwarf_expr_executor : public dwarf_expr_context
9e8b7a03 231{
192ca6d8
TT
232 public:
233
234 struct frame_info *this_frame;
235
632e107b 236 CORE_ADDR read_addr_from_reg (int reg) override
192ca6d8
TT
237 {
238 return ::read_addr_from_reg (this_frame, reg);
239 }
240
632e107b 241 struct value *get_reg_value (struct type *type, int reg) override
192ca6d8
TT
242 {
243 struct gdbarch *gdbarch = get_frame_arch (this_frame);
244 int regnum = dwarf_reg_to_regnum_or_error (gdbarch, reg);
245
246 return value_from_register (type, regnum, this_frame);
247 }
248
632e107b 249 void read_mem (gdb_byte *buf, CORE_ADDR addr, size_t len) override
192ca6d8
TT
250 {
251 read_memory (addr, buf, len);
252 }
befbff86 253
632e107b 254 void get_frame_base (const gdb_byte **start, size_t *length) override
befbff86
TT
255 {
256 invalid ("DW_OP_fbreg");
257 }
258
259 void push_dwarf_reg_entry_value (enum call_site_parameter_kind kind,
260 union call_site_parameter_u kind_u,
632e107b 261 int deref_size) override
befbff86 262 {
216f72a1 263 invalid ("DW_OP_entry_value");
befbff86
TT
264 }
265
632e107b 266 CORE_ADDR get_object_address () override
befbff86
TT
267 {
268 invalid ("DW_OP_push_object_address");
269 }
270
632e107b 271 CORE_ADDR get_frame_cfa () override
befbff86
TT
272 {
273 invalid ("DW_OP_call_frame_cfa");
274 }
275
632e107b 276 CORE_ADDR get_tls_address (CORE_ADDR offset) override
befbff86
TT
277 {
278 invalid ("DW_OP_form_tls_address");
279 }
280
632e107b 281 void dwarf_call (cu_offset die_offset) override
befbff86
TT
282 {
283 invalid ("DW_OP_call*");
284 }
285
a6b786da
KB
286 struct value *dwarf_variable_value (sect_offset sect_off) override
287 {
288 invalid ("DW_OP_GNU_variable_value");
289 }
290
632e107b 291 CORE_ADDR get_addr_index (unsigned int index) override
befbff86
TT
292 {
293 invalid ("DW_OP_GNU_addr_index");
294 }
295
296 private:
297
298 void invalid (const char *op) ATTRIBUTE_NORETURN
299 {
300 error (_("%s is invalid in this context"), op);
301 }
9e8b7a03
JK
302};
303
cfc14b3a 304static CORE_ADDR
0d45f56e 305execute_stack_op (const gdb_byte *exp, ULONGEST len, int addr_size,
ac56253d
TT
306 CORE_ADDR offset, struct frame_info *this_frame,
307 CORE_ADDR initial, int initial_in_stack_memory)
cfc14b3a 308{
cfc14b3a
MK
309 CORE_ADDR result;
310
192ca6d8 311 dwarf_expr_executor ctx;
eb115069 312 scoped_value_mark free_values;
4a227398 313
192ca6d8 314 ctx.this_frame = this_frame;
718b9626
TT
315 ctx.gdbarch = get_frame_arch (this_frame);
316 ctx.addr_size = addr_size;
317 ctx.ref_addr_size = -1;
318 ctx.offset = offset;
cfc14b3a 319
595d2e30
TT
320 ctx.push_address (initial, initial_in_stack_memory);
321 ctx.eval (exp, len);
cfc14b3a 322
718b9626 323 if (ctx.location == DWARF_VALUE_MEMORY)
595d2e30 324 result = ctx.fetch_address (0);
718b9626 325 else if (ctx.location == DWARF_VALUE_REGISTER)
192ca6d8 326 result = ctx.read_addr_from_reg (value_as_long (ctx.fetch (0)));
f2c7657e 327 else
cec03d70
TT
328 {
329 /* This is actually invalid DWARF, but if we ever do run across
330 it somehow, we might as well support it. So, instead, report
331 it as unimplemented. */
3e43a32a
MS
332 error (_("\
333Not implemented: computing unwound register using explicit value operator"));
cec03d70 334 }
cfc14b3a 335
cfc14b3a
MK
336 return result;
337}
338\f
339
111c6489
JK
340/* Execute FDE program from INSN_PTR possibly up to INSN_END or up to inferior
341 PC. Modify FS state accordingly. Return current INSN_PTR where the
342 execution has stopped, one can resume it on the next call. */
343
344static const gdb_byte *
0d45f56e 345execute_cfa_program (struct dwarf2_fde *fde, const gdb_byte *insn_ptr,
9f6f94ff
TT
346 const gdb_byte *insn_end, struct gdbarch *gdbarch,
347 CORE_ADDR pc, struct dwarf2_frame_state *fs)
cfc14b3a 348{
ae0d2f24 349 int eh_frame_p = fde->eh_frame_p;
507a579c 350 unsigned int bytes_read;
e17a4113 351 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
cfc14b3a
MK
352
353 while (insn_ptr < insn_end && fs->pc <= pc)
354 {
852483bc 355 gdb_byte insn = *insn_ptr++;
9fccedf7
DE
356 uint64_t utmp, reg;
357 int64_t offset;
cfc14b3a
MK
358
359 if ((insn & 0xc0) == DW_CFA_advance_loc)
360 fs->pc += (insn & 0x3f) * fs->code_align;
361 else if ((insn & 0xc0) == DW_CFA_offset)
362 {
363 reg = insn & 0x3f;
4fc771b8 364 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
f664829e 365 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
cfc14b3a 366 offset = utmp * fs->data_align;
1c90d9f0 367 fs->regs.alloc_regs (reg + 1);
05cbe71a 368 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
cfc14b3a
MK
369 fs->regs.reg[reg].loc.offset = offset;
370 }
371 else if ((insn & 0xc0) == DW_CFA_restore)
372 {
cfc14b3a 373 reg = insn & 0x3f;
a6a5a945 374 dwarf2_restore_rule (gdbarch, reg, fs, eh_frame_p);
cfc14b3a
MK
375 }
376 else
377 {
378 switch (insn)
379 {
380 case DW_CFA_set_loc:
ae0d2f24 381 fs->pc = read_encoded_value (fde->cie->unit, fde->cie->encoding,
8da614df 382 fde->cie->ptr_size, insn_ptr,
ae0d2f24
UW
383 &bytes_read, fde->initial_location);
384 /* Apply the objfile offset for relocatable objects. */
385 fs->pc += ANOFFSET (fde->cie->unit->objfile->section_offsets,
386 SECT_OFF_TEXT (fde->cie->unit->objfile));
cfc14b3a
MK
387 insn_ptr += bytes_read;
388 break;
389
390 case DW_CFA_advance_loc1:
e17a4113 391 utmp = extract_unsigned_integer (insn_ptr, 1, byte_order);
cfc14b3a
MK
392 fs->pc += utmp * fs->code_align;
393 insn_ptr++;
394 break;
395 case DW_CFA_advance_loc2:
e17a4113 396 utmp = extract_unsigned_integer (insn_ptr, 2, byte_order);
cfc14b3a
MK
397 fs->pc += utmp * fs->code_align;
398 insn_ptr += 2;
399 break;
400 case DW_CFA_advance_loc4:
e17a4113 401 utmp = extract_unsigned_integer (insn_ptr, 4, byte_order);
cfc14b3a
MK
402 fs->pc += utmp * fs->code_align;
403 insn_ptr += 4;
404 break;
405
406 case DW_CFA_offset_extended:
f664829e 407 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 408 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
f664829e 409 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
cfc14b3a 410 offset = utmp * fs->data_align;
1c90d9f0 411 fs->regs.alloc_regs (reg + 1);
05cbe71a 412 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
cfc14b3a
MK
413 fs->regs.reg[reg].loc.offset = offset;
414 break;
415
416 case DW_CFA_restore_extended:
f664829e 417 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
a6a5a945 418 dwarf2_restore_rule (gdbarch, reg, fs, eh_frame_p);
cfc14b3a
MK
419 break;
420
421 case DW_CFA_undefined:
f664829e 422 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 423 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
1c90d9f0 424 fs->regs.alloc_regs (reg + 1);
05cbe71a 425 fs->regs.reg[reg].how = DWARF2_FRAME_REG_UNDEFINED;
cfc14b3a
MK
426 break;
427
428 case DW_CFA_same_value:
f664829e 429 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 430 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
1c90d9f0 431 fs->regs.alloc_regs (reg + 1);
05cbe71a 432 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAME_VALUE;
cfc14b3a
MK
433 break;
434
435 case DW_CFA_register:
f664829e 436 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 437 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
f664829e 438 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
4fc771b8 439 utmp = dwarf2_frame_adjust_regnum (gdbarch, utmp, eh_frame_p);
1c90d9f0 440 fs->regs.alloc_regs (reg + 1);
05cbe71a 441 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_REG;
cfc14b3a
MK
442 fs->regs.reg[reg].loc.reg = utmp;
443 break;
444
445 case DW_CFA_remember_state:
446 {
447 struct dwarf2_frame_state_reg_info *new_rs;
448
1c90d9f0 449 new_rs = new dwarf2_frame_state_reg_info (fs->regs);
cfc14b3a
MK
450 fs->regs.prev = new_rs;
451 }
452 break;
453
454 case DW_CFA_restore_state:
455 {
456 struct dwarf2_frame_state_reg_info *old_rs = fs->regs.prev;
457
50ea7769
MK
458 if (old_rs == NULL)
459 {
b98664d3 460 complaint (_("\
5af949e3
UW
461bad CFI data; mismatched DW_CFA_restore_state at %s"),
462 paddress (gdbarch, fs->pc));
50ea7769
MK
463 }
464 else
1c90d9f0 465 fs->regs = std::move (*old_rs);
cfc14b3a
MK
466 }
467 break;
468
469 case DW_CFA_def_cfa:
f664829e
DE
470 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
471 fs->regs.cfa_reg = reg;
472 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
303b6f5d
DJ
473
474 if (fs->armcc_cfa_offsets_sf)
475 utmp *= fs->data_align;
476
2fd481e1
PP
477 fs->regs.cfa_offset = utmp;
478 fs->regs.cfa_how = CFA_REG_OFFSET;
cfc14b3a
MK
479 break;
480
481 case DW_CFA_def_cfa_register:
f664829e
DE
482 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
483 fs->regs.cfa_reg = dwarf2_frame_adjust_regnum (gdbarch, reg,
2fd481e1
PP
484 eh_frame_p);
485 fs->regs.cfa_how = CFA_REG_OFFSET;
cfc14b3a
MK
486 break;
487
488 case DW_CFA_def_cfa_offset:
f664829e 489 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
303b6f5d
DJ
490
491 if (fs->armcc_cfa_offsets_sf)
492 utmp *= fs->data_align;
493
2fd481e1 494 fs->regs.cfa_offset = utmp;
cfc14b3a
MK
495 /* cfa_how deliberately not set. */
496 break;
497
a8504492
MK
498 case DW_CFA_nop:
499 break;
500
cfc14b3a 501 case DW_CFA_def_cfa_expression:
f664829e
DE
502 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
503 fs->regs.cfa_exp_len = utmp;
2fd481e1
PP
504 fs->regs.cfa_exp = insn_ptr;
505 fs->regs.cfa_how = CFA_EXP;
506 insn_ptr += fs->regs.cfa_exp_len;
cfc14b3a
MK
507 break;
508
509 case DW_CFA_expression:
f664829e 510 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 511 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
1c90d9f0 512 fs->regs.alloc_regs (reg + 1);
f664829e 513 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
b348037f
YQ
514 fs->regs.reg[reg].loc.exp.start = insn_ptr;
515 fs->regs.reg[reg].loc.exp.len = utmp;
05cbe71a 516 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_EXP;
cfc14b3a
MK
517 insn_ptr += utmp;
518 break;
519
a8504492 520 case DW_CFA_offset_extended_sf:
f664829e 521 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 522 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
f664829e 523 insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
f6da8dd8 524 offset *= fs->data_align;
1c90d9f0 525 fs->regs.alloc_regs (reg + 1);
05cbe71a 526 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
a8504492
MK
527 fs->regs.reg[reg].loc.offset = offset;
528 break;
529
46ea248b 530 case DW_CFA_val_offset:
f664829e 531 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
1c90d9f0 532 fs->regs.alloc_regs (reg + 1);
f664829e 533 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
46ea248b
AO
534 offset = utmp * fs->data_align;
535 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_OFFSET;
536 fs->regs.reg[reg].loc.offset = offset;
537 break;
538
539 case DW_CFA_val_offset_sf:
f664829e 540 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
1c90d9f0 541 fs->regs.alloc_regs (reg + 1);
f664829e 542 insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
46ea248b
AO
543 offset *= fs->data_align;
544 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_OFFSET;
545 fs->regs.reg[reg].loc.offset = offset;
546 break;
547
548 case DW_CFA_val_expression:
f664829e 549 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
1c90d9f0 550 fs->regs.alloc_regs (reg + 1);
f664829e 551 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
b348037f
YQ
552 fs->regs.reg[reg].loc.exp.start = insn_ptr;
553 fs->regs.reg[reg].loc.exp.len = utmp;
46ea248b
AO
554 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_EXP;
555 insn_ptr += utmp;
556 break;
557
a8504492 558 case DW_CFA_def_cfa_sf:
f664829e
DE
559 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
560 fs->regs.cfa_reg = dwarf2_frame_adjust_regnum (gdbarch, reg,
2fd481e1 561 eh_frame_p);
f664829e 562 insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
2fd481e1
PP
563 fs->regs.cfa_offset = offset * fs->data_align;
564 fs->regs.cfa_how = CFA_REG_OFFSET;
a8504492
MK
565 break;
566
567 case DW_CFA_def_cfa_offset_sf:
f664829e 568 insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
2fd481e1 569 fs->regs.cfa_offset = offset * fs->data_align;
a8504492 570 /* cfa_how deliberately not set. */
cfc14b3a
MK
571 break;
572
573 case DW_CFA_GNU_args_size:
574 /* Ignored. */
f664829e 575 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
cfc14b3a
MK
576 break;
577
58894217 578 case DW_CFA_GNU_negative_offset_extended:
f664829e 579 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
4fc771b8 580 reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
507a579c
PA
581 insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
582 offset = utmp * fs->data_align;
1c90d9f0 583 fs->regs.alloc_regs (reg + 1);
58894217
JK
584 fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
585 fs->regs.reg[reg].loc.offset = -offset;
586 break;
587
cfc14b3a 588 default:
b41c5a85
JW
589 if (insn >= DW_CFA_lo_user && insn <= DW_CFA_hi_user)
590 {
591 /* Handle vendor-specific CFI for different architectures. */
592 if (!gdbarch_execute_dwarf_cfa_vendor_op (gdbarch, insn, fs))
593 error (_("Call Frame Instruction op %d in vendor extension "
594 "space is not handled on this architecture."),
595 insn);
596 }
597 else
598 internal_error (__FILE__, __LINE__,
599 _("Unknown CFI encountered."));
cfc14b3a
MK
600 }
601 }
602 }
603
780942fc 604 if (fs->initial.reg.empty ())
111c6489
JK
605 {
606 /* Don't allow remember/restore between CIE and FDE programs. */
1c90d9f0 607 delete fs->regs.prev;
111c6489
JK
608 fs->regs.prev = NULL;
609 }
610
611 return insn_ptr;
cfc14b3a 612}
1c90d9f0
YQ
613
614#if GDB_SELF_TEST
615
616namespace selftests {
617
618/* Unit test to function execute_cfa_program. */
619
620static void
621execute_cfa_program_test (struct gdbarch *gdbarch)
622{
623 struct dwarf2_fde fde;
624 struct dwarf2_cie cie;
625
626 memset (&fde, 0, sizeof fde);
627 memset (&cie, 0, sizeof cie);
628
629 cie.data_alignment_factor = -4;
630 cie.code_alignment_factor = 2;
631 fde.cie = &cie;
632
633 dwarf2_frame_state fs (0, fde.cie);
634
635 gdb_byte insns[] =
636 {
637 DW_CFA_def_cfa, 1, 4, /* DW_CFA_def_cfa: r1 ofs 4 */
638 DW_CFA_offset | 0x2, 1, /* DW_CFA_offset: r2 at cfa-4 */
639 DW_CFA_remember_state,
640 DW_CFA_restore_state,
641 };
642
643 const gdb_byte *insn_end = insns + sizeof (insns);
644 const gdb_byte *out = execute_cfa_program (&fde, insns, insn_end, gdbarch,
645 0, &fs);
646
647 SELF_CHECK (out == insn_end);
648 SELF_CHECK (fs.pc == 0);
649
650 /* The instructions above only use r1 and r2, but the register numbers
651 used are adjusted by dwarf2_frame_adjust_regnum. */
652 auto r1 = dwarf2_frame_adjust_regnum (gdbarch, 1, fde.eh_frame_p);
653 auto r2 = dwarf2_frame_adjust_regnum (gdbarch, 2, fde.eh_frame_p);
654
780942fc 655 SELF_CHECK (fs.regs.reg.size () == (std::max (r1, r2) + 1));
1c90d9f0
YQ
656
657 SELF_CHECK (fs.regs.reg[r2].how == DWARF2_FRAME_REG_SAVED_OFFSET);
658 SELF_CHECK (fs.regs.reg[r2].loc.offset == -4);
659
780942fc 660 for (auto i = 0; i < fs.regs.reg.size (); i++)
1c90d9f0
YQ
661 if (i != r2)
662 SELF_CHECK (fs.regs.reg[i].how == DWARF2_FRAME_REG_UNSPECIFIED);
663
664 SELF_CHECK (fs.regs.cfa_reg == 1);
665 SELF_CHECK (fs.regs.cfa_offset == 4);
666 SELF_CHECK (fs.regs.cfa_how == CFA_REG_OFFSET);
667 SELF_CHECK (fs.regs.cfa_exp == NULL);
668 SELF_CHECK (fs.regs.prev == NULL);
669}
670
671} // namespace selftests
672#endif /* GDB_SELF_TEST */
673
8f22cb90 674\f
cfc14b3a 675
8f22cb90 676/* Architecture-specific operations. */
cfc14b3a 677
8f22cb90
MK
678/* Per-architecture data key. */
679static struct gdbarch_data *dwarf2_frame_data;
680
681struct dwarf2_frame_ops
682{
683 /* Pre-initialize the register state REG for register REGNUM. */
aff37fc1
DM
684 void (*init_reg) (struct gdbarch *, int, struct dwarf2_frame_state_reg *,
685 struct frame_info *);
3ed09a32 686
4a4e5149 687 /* Check whether the THIS_FRAME is a signal trampoline. */
3ed09a32 688 int (*signal_frame_p) (struct gdbarch *, struct frame_info *);
4bf8967c 689
4fc771b8
DJ
690 /* Convert .eh_frame register number to DWARF register number, or
691 adjust .debug_frame register number. */
692 int (*adjust_regnum) (struct gdbarch *, int, int);
cfc14b3a
MK
693};
694
8f22cb90
MK
695/* Default architecture-specific register state initialization
696 function. */
697
698static void
699dwarf2_frame_default_init_reg (struct gdbarch *gdbarch, int regnum,
aff37fc1 700 struct dwarf2_frame_state_reg *reg,
4a4e5149 701 struct frame_info *this_frame)
8f22cb90
MK
702{
703 /* If we have a register that acts as a program counter, mark it as
704 a destination for the return address. If we have a register that
705 serves as the stack pointer, arrange for it to be filled with the
706 call frame address (CFA). The other registers are marked as
707 unspecified.
708
709 We copy the return address to the program counter, since many
710 parts in GDB assume that it is possible to get the return address
711 by unwinding the program counter register. However, on ISA's
712 with a dedicated return address register, the CFI usually only
713 contains information to unwind that return address register.
714
715 The reason we're treating the stack pointer special here is
716 because in many cases GCC doesn't emit CFI for the stack pointer
717 and implicitly assumes that it is equal to the CFA. This makes
718 some sense since the DWARF specification (version 3, draft 8,
719 p. 102) says that:
720
721 "Typically, the CFA is defined to be the value of the stack
722 pointer at the call site in the previous frame (which may be
723 different from its value on entry to the current frame)."
724
725 However, this isn't true for all platforms supported by GCC
726 (e.g. IBM S/390 and zSeries). Those architectures should provide
727 their own architecture-specific initialization function. */
05cbe71a 728
ad010def 729 if (regnum == gdbarch_pc_regnum (gdbarch))
8f22cb90 730 reg->how = DWARF2_FRAME_REG_RA;
ad010def 731 else if (regnum == gdbarch_sp_regnum (gdbarch))
8f22cb90
MK
732 reg->how = DWARF2_FRAME_REG_CFA;
733}
05cbe71a 734
8f22cb90 735/* Return a default for the architecture-specific operations. */
05cbe71a 736
8f22cb90 737static void *
030f20e1 738dwarf2_frame_init (struct obstack *obstack)
8f22cb90
MK
739{
740 struct dwarf2_frame_ops *ops;
741
030f20e1 742 ops = OBSTACK_ZALLOC (obstack, struct dwarf2_frame_ops);
8f22cb90
MK
743 ops->init_reg = dwarf2_frame_default_init_reg;
744 return ops;
745}
05cbe71a 746
8f22cb90
MK
747/* Set the architecture-specific register state initialization
748 function for GDBARCH to INIT_REG. */
749
750void
751dwarf2_frame_set_init_reg (struct gdbarch *gdbarch,
752 void (*init_reg) (struct gdbarch *, int,
aff37fc1
DM
753 struct dwarf2_frame_state_reg *,
754 struct frame_info *))
8f22cb90 755{
9a3c8263
SM
756 struct dwarf2_frame_ops *ops
757 = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
8f22cb90 758
8f22cb90
MK
759 ops->init_reg = init_reg;
760}
761
762/* Pre-initialize the register state REG for register REGNUM. */
05cbe71a
MK
763
764static void
765dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
aff37fc1 766 struct dwarf2_frame_state_reg *reg,
4a4e5149 767 struct frame_info *this_frame)
05cbe71a 768{
9a3c8263
SM
769 struct dwarf2_frame_ops *ops
770 = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
8f22cb90 771
4a4e5149 772 ops->init_reg (gdbarch, regnum, reg, this_frame);
05cbe71a 773}
3ed09a32
DJ
774
775/* Set the architecture-specific signal trampoline recognition
776 function for GDBARCH to SIGNAL_FRAME_P. */
777
778void
779dwarf2_frame_set_signal_frame_p (struct gdbarch *gdbarch,
780 int (*signal_frame_p) (struct gdbarch *,
781 struct frame_info *))
782{
9a3c8263
SM
783 struct dwarf2_frame_ops *ops
784 = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
3ed09a32
DJ
785
786 ops->signal_frame_p = signal_frame_p;
787}
788
789/* Query the architecture-specific signal frame recognizer for
4a4e5149 790 THIS_FRAME. */
3ed09a32
DJ
791
792static int
793dwarf2_frame_signal_frame_p (struct gdbarch *gdbarch,
4a4e5149 794 struct frame_info *this_frame)
3ed09a32 795{
9a3c8263
SM
796 struct dwarf2_frame_ops *ops
797 = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
3ed09a32
DJ
798
799 if (ops->signal_frame_p == NULL)
800 return 0;
4a4e5149 801 return ops->signal_frame_p (gdbarch, this_frame);
3ed09a32 802}
4bf8967c 803
4fc771b8
DJ
804/* Set the architecture-specific adjustment of .eh_frame and .debug_frame
805 register numbers. */
4bf8967c
AS
806
807void
4fc771b8
DJ
808dwarf2_frame_set_adjust_regnum (struct gdbarch *gdbarch,
809 int (*adjust_regnum) (struct gdbarch *,
810 int, int))
4bf8967c 811{
9a3c8263
SM
812 struct dwarf2_frame_ops *ops
813 = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
4bf8967c 814
4fc771b8 815 ops->adjust_regnum = adjust_regnum;
4bf8967c
AS
816}
817
4fc771b8
DJ
818/* Translate a .eh_frame register to DWARF register, or adjust a .debug_frame
819 register. */
4bf8967c 820
4fc771b8 821static int
3e43a32a
MS
822dwarf2_frame_adjust_regnum (struct gdbarch *gdbarch,
823 int regnum, int eh_frame_p)
4bf8967c 824{
9a3c8263
SM
825 struct dwarf2_frame_ops *ops
826 = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
4bf8967c 827
4fc771b8 828 if (ops->adjust_regnum == NULL)
4bf8967c 829 return regnum;
4fc771b8 830 return ops->adjust_regnum (gdbarch, regnum, eh_frame_p);
4bf8967c 831}
303b6f5d
DJ
832
833static void
834dwarf2_frame_find_quirks (struct dwarf2_frame_state *fs,
835 struct dwarf2_fde *fde)
836{
43f3e411 837 struct compunit_symtab *cust;
303b6f5d 838
43f3e411
DE
839 cust = find_pc_compunit_symtab (fs->pc);
840 if (cust == NULL)
303b6f5d
DJ
841 return;
842
43f3e411 843 if (producer_is_realview (COMPUNIT_PRODUCER (cust)))
a6c727b2
DJ
844 {
845 if (fde->cie->version == 1)
846 fs->armcc_cfa_offsets_sf = 1;
847
848 if (fde->cie->version == 1)
849 fs->armcc_cfa_offsets_reversed = 1;
850
851 /* The reversed offset problem is present in some compilers
852 using DWARF3, but it was eventually fixed. Check the ARM
853 defined augmentations, which are in the format "armcc" followed
854 by a list of one-character options. The "+" option means
855 this problem is fixed (no quirk needed). If the armcc
856 augmentation is missing, the quirk is needed. */
857 if (fde->cie->version == 3
61012eef 858 && (!startswith (fde->cie->augmentation, "armcc")
a6c727b2
DJ
859 || strchr (fde->cie->augmentation + 5, '+') == NULL))
860 fs->armcc_cfa_offsets_reversed = 1;
861
862 return;
863 }
303b6f5d 864}
8f22cb90
MK
865\f
866
a8fd5589
TT
867/* See dwarf2-frame.h. */
868
869int
870dwarf2_fetch_cfa_info (struct gdbarch *gdbarch, CORE_ADDR pc,
871 struct dwarf2_per_cu_data *data,
872 int *regnum_out, LONGEST *offset_out,
873 CORE_ADDR *text_offset_out,
874 const gdb_byte **cfa_start_out,
875 const gdb_byte **cfa_end_out)
9f6f94ff 876{
9f6f94ff 877 struct dwarf2_fde *fde;
22e048c9 878 CORE_ADDR text_offset;
afe37d6b 879 CORE_ADDR pc1 = pc;
9f6f94ff
TT
880
881 /* Find the correct FDE. */
afe37d6b 882 fde = dwarf2_frame_find_fde (&pc1, &text_offset);
9f6f94ff
TT
883 if (fde == NULL)
884 error (_("Could not compute CFA; needed to translate this expression"));
885
afe37d6b 886 dwarf2_frame_state fs (pc1, fde->cie);
9f6f94ff
TT
887
888 /* Check for "quirks" - known bugs in producers. */
889 dwarf2_frame_find_quirks (&fs, fde);
890
891 /* First decode all the insns in the CIE. */
892 execute_cfa_program (fde, fde->cie->initial_instructions,
893 fde->cie->end, gdbarch, pc, &fs);
894
895 /* Save the initialized register set. */
896 fs.initial = fs.regs;
9f6f94ff
TT
897
898 /* Then decode the insns in the FDE up to our target PC. */
899 execute_cfa_program (fde, fde->instructions, fde->end, gdbarch, pc, &fs);
900
901 /* Calculate the CFA. */
902 switch (fs.regs.cfa_how)
903 {
904 case CFA_REG_OFFSET:
905 {
0fde2c53 906 int regnum = dwarf_reg_to_regnum_or_error (gdbarch, fs.regs.cfa_reg);
a8fd5589
TT
907
908 *regnum_out = regnum;
909 if (fs.armcc_cfa_offsets_reversed)
910 *offset_out = -fs.regs.cfa_offset;
911 else
912 *offset_out = fs.regs.cfa_offset;
913 return 1;
9f6f94ff 914 }
9f6f94ff
TT
915
916 case CFA_EXP:
a8fd5589
TT
917 *text_offset_out = text_offset;
918 *cfa_start_out = fs.regs.cfa_exp;
919 *cfa_end_out = fs.regs.cfa_exp + fs.regs.cfa_exp_len;
920 return 0;
9f6f94ff
TT
921
922 default:
923 internal_error (__FILE__, __LINE__, _("Unknown CFA rule."));
924 }
925}
926
927\f
8f22cb90
MK
928struct dwarf2_frame_cache
929{
930 /* DWARF Call Frame Address. */
931 CORE_ADDR cfa;
932
8fbca658
PA
933 /* Set if the return address column was marked as unavailable
934 (required non-collected memory or registers to compute). */
935 int unavailable_retaddr;
936
0228dfb9
DJ
937 /* Set if the return address column was marked as undefined. */
938 int undefined_retaddr;
939
8f22cb90
MK
940 /* Saved registers, indexed by GDB register number, not by DWARF
941 register number. */
942 struct dwarf2_frame_state_reg *reg;
8d5a9abc
MK
943
944 /* Return address register. */
945 struct dwarf2_frame_state_reg retaddr_reg;
ae0d2f24
UW
946
947 /* Target address size in bytes. */
948 int addr_size;
ac56253d
TT
949
950 /* The .text offset. */
951 CORE_ADDR text_offset;
111c6489 952
1ec56e88
PA
953 /* True if we already checked whether this frame is the bottom frame
954 of a virtual tail call frame chain. */
955 int checked_tailcall_bottom;
956
111c6489
JK
957 /* If not NULL then this frame is the bottom frame of a TAILCALL_FRAME
958 sequence. If NULL then it is a normal case with no TAILCALL_FRAME
959 involved. Non-bottom frames of a virtual tail call frames chain use
960 dwarf2_tailcall_frame_unwind unwinder so this field does not apply for
961 them. */
962 void *tailcall_cache;
1ec56e88
PA
963
964 /* The number of bytes to subtract from TAILCALL_FRAME frames frame
965 base to get the SP, to simulate the return address pushed on the
966 stack. */
967 LONGEST entry_cfa_sp_offset;
968 int entry_cfa_sp_offset_p;
8f22cb90 969};
05cbe71a 970
b9362cc7 971static struct dwarf2_frame_cache *
4a4e5149 972dwarf2_frame_cache (struct frame_info *this_frame, void **this_cache)
cfc14b3a 973{
4a4e5149 974 struct gdbarch *gdbarch = get_frame_arch (this_frame);
f6efe3f8 975 const int num_regs = gdbarch_num_cooked_regs (gdbarch);
cfc14b3a 976 struct dwarf2_frame_cache *cache;
cfc14b3a 977 struct dwarf2_fde *fde;
111c6489 978 CORE_ADDR entry_pc;
111c6489 979 const gdb_byte *instr;
cfc14b3a
MK
980
981 if (*this_cache)
9a3c8263 982 return (struct dwarf2_frame_cache *) *this_cache;
cfc14b3a
MK
983
984 /* Allocate a new cache. */
985 cache = FRAME_OBSTACK_ZALLOC (struct dwarf2_frame_cache);
986 cache->reg = FRAME_OBSTACK_CALLOC (num_regs, struct dwarf2_frame_state_reg);
8fbca658 987 *this_cache = cache;
cfc14b3a 988
cfc14b3a
MK
989 /* Unwind the PC.
990
4a4e5149 991 Note that if the next frame is never supposed to return (i.e. a call
cfc14b3a 992 to abort), the compiler might optimize away the instruction at
4a4e5149 993 its return address. As a result the return address will
cfc14b3a 994 point at some random instruction, and the CFI for that
e4e9607c 995 instruction is probably worthless to us. GCC's unwinder solves
cfc14b3a
MK
996 this problem by substracting 1 from the return address to get an
997 address in the middle of a presumed call instruction (or the
998 instruction in the associated delay slot). This should only be
999 done for "normal" frames and not for resume-type frames (signal
e4e9607c 1000 handlers, sentinel frames, dummy frames). The function
ad1193e7 1001 get_frame_address_in_block does just this. It's not clear how
e4e9607c
MK
1002 reliable the method is though; there is the potential for the
1003 register state pre-call being different to that on return. */
afe37d6b 1004 CORE_ADDR pc1 = get_frame_address_in_block (this_frame);
cfc14b3a
MK
1005
1006 /* Find the correct FDE. */
afe37d6b 1007 fde = dwarf2_frame_find_fde (&pc1, &cache->text_offset);
cfc14b3a
MK
1008 gdb_assert (fde != NULL);
1009
afe37d6b
YQ
1010 /* Allocate and initialize the frame state. */
1011 struct dwarf2_frame_state fs (pc1, fde->cie);
1012
ae0d2f24 1013 cache->addr_size = fde->cie->addr_size;
cfc14b3a 1014
303b6f5d 1015 /* Check for "quirks" - known bugs in producers. */
afe37d6b 1016 dwarf2_frame_find_quirks (&fs, fde);
303b6f5d 1017
cfc14b3a 1018 /* First decode all the insns in the CIE. */
ae0d2f24 1019 execute_cfa_program (fde, fde->cie->initial_instructions,
0c92d8c1 1020 fde->cie->end, gdbarch,
afe37d6b 1021 get_frame_address_in_block (this_frame), &fs);
cfc14b3a
MK
1022
1023 /* Save the initialized register set. */
afe37d6b 1024 fs.initial = fs.regs;
cfc14b3a 1025
111c6489
JK
1026 if (get_frame_func_if_available (this_frame, &entry_pc))
1027 {
1028 /* Decode the insns in the FDE up to the entry PC. */
1029 instr = execute_cfa_program (fde, fde->instructions, fde->end, gdbarch,
afe37d6b 1030 entry_pc, &fs);
111c6489 1031
afe37d6b
YQ
1032 if (fs.regs.cfa_how == CFA_REG_OFFSET
1033 && (dwarf_reg_to_regnum (gdbarch, fs.regs.cfa_reg)
111c6489
JK
1034 == gdbarch_sp_regnum (gdbarch)))
1035 {
afe37d6b 1036 cache->entry_cfa_sp_offset = fs.regs.cfa_offset;
1ec56e88 1037 cache->entry_cfa_sp_offset_p = 1;
111c6489
JK
1038 }
1039 }
1040 else
1041 instr = fde->instructions;
1042
cfc14b3a 1043 /* Then decode the insns in the FDE up to our target PC. */
111c6489 1044 execute_cfa_program (fde, instr, fde->end, gdbarch,
afe37d6b 1045 get_frame_address_in_block (this_frame), &fs);
cfc14b3a 1046
a70b8144 1047 try
cfc14b3a 1048 {
8fbca658 1049 /* Calculate the CFA. */
afe37d6b 1050 switch (fs.regs.cfa_how)
8fbca658
PA
1051 {
1052 case CFA_REG_OFFSET:
afe37d6b
YQ
1053 cache->cfa = read_addr_from_reg (this_frame, fs.regs.cfa_reg);
1054 if (fs.armcc_cfa_offsets_reversed)
1055 cache->cfa -= fs.regs.cfa_offset;
8fbca658 1056 else
afe37d6b 1057 cache->cfa += fs.regs.cfa_offset;
8fbca658
PA
1058 break;
1059
1060 case CFA_EXP:
1061 cache->cfa =
afe37d6b 1062 execute_stack_op (fs.regs.cfa_exp, fs.regs.cfa_exp_len,
8fbca658
PA
1063 cache->addr_size, cache->text_offset,
1064 this_frame, 0, 0);
1065 break;
1066
1067 default:
1068 internal_error (__FILE__, __LINE__, _("Unknown CFA rule."));
1069 }
1070 }
230d2906 1071 catch (const gdb_exception_error &ex)
8fbca658
PA
1072 {
1073 if (ex.error == NOT_AVAILABLE_ERROR)
1074 {
1075 cache->unavailable_retaddr = 1;
1076 return cache;
1077 }
cfc14b3a 1078
eedc3f4f 1079 throw;
cfc14b3a
MK
1080 }
1081
05cbe71a 1082 /* Initialize the register state. */
3e2c4033
AC
1083 {
1084 int regnum;
e4e9607c 1085
3e2c4033 1086 for (regnum = 0; regnum < num_regs; regnum++)
4a4e5149 1087 dwarf2_frame_init_reg (gdbarch, regnum, &cache->reg[regnum], this_frame);
3e2c4033
AC
1088 }
1089
1090 /* Go through the DWARF2 CFI generated table and save its register
79c4cb80
MK
1091 location information in the cache. Note that we don't skip the
1092 return address column; it's perfectly all right for it to
0fde2c53 1093 correspond to a real register. */
3e2c4033
AC
1094 {
1095 int column; /* CFI speak for "register number". */
e4e9607c 1096
780942fc 1097 for (column = 0; column < fs.regs.reg.size (); column++)
3e2c4033 1098 {
3e2c4033 1099 /* Use the GDB register number as the destination index. */
0fde2c53 1100 int regnum = dwarf_reg_to_regnum (gdbarch, column);
3e2c4033 1101
0fde2c53 1102 /* Protect against a target returning a bad register. */
3e2c4033
AC
1103 if (regnum < 0 || regnum >= num_regs)
1104 continue;
1105
1106 /* NOTE: cagney/2003-09-05: CFI should specify the disposition
e4e9607c
MK
1107 of all debug info registers. If it doesn't, complain (but
1108 not too loudly). It turns out that GCC assumes that an
3e2c4033
AC
1109 unspecified register implies "same value" when CFI (draft
1110 7) specifies nothing at all. Such a register could equally
1111 be interpreted as "undefined". Also note that this check
e4e9607c
MK
1112 isn't sufficient; it only checks that all registers in the
1113 range [0 .. max column] are specified, and won't detect
3e2c4033 1114 problems when a debug info register falls outside of the
e4e9607c 1115 table. We need a way of iterating through all the valid
3e2c4033 1116 DWARF2 register numbers. */
afe37d6b 1117 if (fs.regs.reg[column].how == DWARF2_FRAME_REG_UNSPECIFIED)
f059bf6f
AC
1118 {
1119 if (cache->reg[regnum].how == DWARF2_FRAME_REG_UNSPECIFIED)
b98664d3 1120 complaint (_("\
5af949e3 1121incomplete CFI data; unspecified registers (e.g., %s) at %s"),
f059bf6f 1122 gdbarch_register_name (gdbarch, regnum),
afe37d6b 1123 paddress (gdbarch, fs.pc));
f059bf6f 1124 }
35889917 1125 else
afe37d6b 1126 cache->reg[regnum] = fs.regs.reg[column];
3e2c4033
AC
1127 }
1128 }
cfc14b3a 1129
8d5a9abc
MK
1130 /* Eliminate any DWARF2_FRAME_REG_RA rules, and save the information
1131 we need for evaluating DWARF2_FRAME_REG_RA_OFFSET rules. */
35889917
MK
1132 {
1133 int regnum;
1134
1135 for (regnum = 0; regnum < num_regs; regnum++)
1136 {
8d5a9abc
MK
1137 if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA
1138 || cache->reg[regnum].how == DWARF2_FRAME_REG_RA_OFFSET)
35889917 1139 {
780942fc
TT
1140 const std::vector<struct dwarf2_frame_state_reg> &regs
1141 = fs.regs.reg;
1142 ULONGEST retaddr_column = fs.retaddr_column;
05cbe71a 1143
d4f10bf2
MK
1144 /* It seems rather bizarre to specify an "empty" column as
1145 the return adress column. However, this is exactly
1146 what GCC does on some targets. It turns out that GCC
1147 assumes that the return address can be found in the
1148 register corresponding to the return address column.
8d5a9abc
MK
1149 Incidentally, that's how we should treat a return
1150 address column specifying "same value" too. */
780942fc
TT
1151 if (fs.retaddr_column < fs.regs.reg.size ()
1152 && regs[retaddr_column].how != DWARF2_FRAME_REG_UNSPECIFIED
1153 && regs[retaddr_column].how != DWARF2_FRAME_REG_SAME_VALUE)
8d5a9abc
MK
1154 {
1155 if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA)
780942fc 1156 cache->reg[regnum] = regs[retaddr_column];
8d5a9abc 1157 else
780942fc 1158 cache->retaddr_reg = regs[retaddr_column];
8d5a9abc 1159 }
35889917
MK
1160 else
1161 {
8d5a9abc
MK
1162 if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA)
1163 {
afe37d6b 1164 cache->reg[regnum].loc.reg = fs.retaddr_column;
8d5a9abc
MK
1165 cache->reg[regnum].how = DWARF2_FRAME_REG_SAVED_REG;
1166 }
1167 else
1168 {
afe37d6b 1169 cache->retaddr_reg.loc.reg = fs.retaddr_column;
8d5a9abc
MK
1170 cache->retaddr_reg.how = DWARF2_FRAME_REG_SAVED_REG;
1171 }
35889917
MK
1172 }
1173 }
1174 }
1175 }
cfc14b3a 1176
780942fc 1177 if (fs.retaddr_column < fs.regs.reg.size ()
afe37d6b 1178 && fs.regs.reg[fs.retaddr_column].how == DWARF2_FRAME_REG_UNDEFINED)
0228dfb9
DJ
1179 cache->undefined_retaddr = 1;
1180
cfc14b3a
MK
1181 return cache;
1182}
1183
8fbca658
PA
1184static enum unwind_stop_reason
1185dwarf2_frame_unwind_stop_reason (struct frame_info *this_frame,
1186 void **this_cache)
1187{
1188 struct dwarf2_frame_cache *cache
1189 = dwarf2_frame_cache (this_frame, this_cache);
1190
1191 if (cache->unavailable_retaddr)
1192 return UNWIND_UNAVAILABLE;
1193
1194 if (cache->undefined_retaddr)
1195 return UNWIND_OUTERMOST;
1196
1197 return UNWIND_NO_REASON;
1198}
1199
cfc14b3a 1200static void
4a4e5149 1201dwarf2_frame_this_id (struct frame_info *this_frame, void **this_cache,
cfc14b3a
MK
1202 struct frame_id *this_id)
1203{
1204 struct dwarf2_frame_cache *cache =
4a4e5149 1205 dwarf2_frame_cache (this_frame, this_cache);
cfc14b3a 1206
8fbca658 1207 if (cache->unavailable_retaddr)
5ce0145d
PA
1208 (*this_id) = frame_id_build_unavailable_stack (get_frame_func (this_frame));
1209 else if (cache->undefined_retaddr)
8fbca658 1210 return;
5ce0145d
PA
1211 else
1212 (*this_id) = frame_id_build (cache->cfa, get_frame_func (this_frame));
93d42b30
DJ
1213}
1214
4a4e5149
DJ
1215static struct value *
1216dwarf2_frame_prev_register (struct frame_info *this_frame, void **this_cache,
1217 int regnum)
93d42b30 1218{
4a4e5149 1219 struct gdbarch *gdbarch = get_frame_arch (this_frame);
93d42b30 1220 struct dwarf2_frame_cache *cache =
4a4e5149
DJ
1221 dwarf2_frame_cache (this_frame, this_cache);
1222 CORE_ADDR addr;
1223 int realnum;
cfc14b3a 1224
1ec56e88
PA
1225 /* Check whether THIS_FRAME is the bottom frame of a virtual tail
1226 call frame chain. */
1227 if (!cache->checked_tailcall_bottom)
1228 {
1229 cache->checked_tailcall_bottom = 1;
1230 dwarf2_tailcall_sniffer_first (this_frame, &cache->tailcall_cache,
1231 (cache->entry_cfa_sp_offset_p
1232 ? &cache->entry_cfa_sp_offset : NULL));
1233 }
1234
111c6489
JK
1235 /* Non-bottom frames of a virtual tail call frames chain use
1236 dwarf2_tailcall_frame_unwind unwinder so this code does not apply for
1237 them. If dwarf2_tailcall_prev_register_first does not have specific value
1238 unwind the register, tail call frames are assumed to have the register set
1239 of the top caller. */
1240 if (cache->tailcall_cache)
1241 {
1242 struct value *val;
1243
1244 val = dwarf2_tailcall_prev_register_first (this_frame,
1245 &cache->tailcall_cache,
1246 regnum);
1247 if (val)
1248 return val;
1249 }
1250
cfc14b3a
MK
1251 switch (cache->reg[regnum].how)
1252 {
05cbe71a 1253 case DWARF2_FRAME_REG_UNDEFINED:
3e2c4033 1254 /* If CFI explicitly specified that the value isn't defined,
e4e9607c 1255 mark it as optimized away; the value isn't available. */
4a4e5149 1256 return frame_unwind_got_optimized (this_frame, regnum);
cfc14b3a 1257
05cbe71a 1258 case DWARF2_FRAME_REG_SAVED_OFFSET:
4a4e5149
DJ
1259 addr = cache->cfa + cache->reg[regnum].loc.offset;
1260 return frame_unwind_got_memory (this_frame, regnum, addr);
cfc14b3a 1261
05cbe71a 1262 case DWARF2_FRAME_REG_SAVED_REG:
0fde2c53
DE
1263 realnum = dwarf_reg_to_regnum_or_error
1264 (gdbarch, cache->reg[regnum].loc.reg);
4a4e5149 1265 return frame_unwind_got_register (this_frame, regnum, realnum);
cfc14b3a 1266
05cbe71a 1267 case DWARF2_FRAME_REG_SAVED_EXP:
b348037f
YQ
1268 addr = execute_stack_op (cache->reg[regnum].loc.exp.start,
1269 cache->reg[regnum].loc.exp.len,
ac56253d
TT
1270 cache->addr_size, cache->text_offset,
1271 this_frame, cache->cfa, 1);
4a4e5149 1272 return frame_unwind_got_memory (this_frame, regnum, addr);
cfc14b3a 1273
46ea248b 1274 case DWARF2_FRAME_REG_SAVED_VAL_OFFSET:
4a4e5149
DJ
1275 addr = cache->cfa + cache->reg[regnum].loc.offset;
1276 return frame_unwind_got_constant (this_frame, regnum, addr);
46ea248b
AO
1277
1278 case DWARF2_FRAME_REG_SAVED_VAL_EXP:
b348037f
YQ
1279 addr = execute_stack_op (cache->reg[regnum].loc.exp.start,
1280 cache->reg[regnum].loc.exp.len,
ac56253d
TT
1281 cache->addr_size, cache->text_offset,
1282 this_frame, cache->cfa, 1);
4a4e5149 1283 return frame_unwind_got_constant (this_frame, regnum, addr);
46ea248b 1284
05cbe71a 1285 case DWARF2_FRAME_REG_UNSPECIFIED:
3e2c4033
AC
1286 /* GCC, in its infinite wisdom decided to not provide unwind
1287 information for registers that are "same value". Since
1288 DWARF2 (3 draft 7) doesn't define such behavior, said
1289 registers are actually undefined (which is different to CFI
1290 "undefined"). Code above issues a complaint about this.
1291 Here just fudge the books, assume GCC, and that the value is
1292 more inner on the stack. */
4a4e5149 1293 return frame_unwind_got_register (this_frame, regnum, regnum);
3e2c4033 1294
05cbe71a 1295 case DWARF2_FRAME_REG_SAME_VALUE:
4a4e5149 1296 return frame_unwind_got_register (this_frame, regnum, regnum);
cfc14b3a 1297
05cbe71a 1298 case DWARF2_FRAME_REG_CFA:
4a4e5149 1299 return frame_unwind_got_address (this_frame, regnum, cache->cfa);
35889917 1300
ea7963f0 1301 case DWARF2_FRAME_REG_CFA_OFFSET:
4a4e5149
DJ
1302 addr = cache->cfa + cache->reg[regnum].loc.offset;
1303 return frame_unwind_got_address (this_frame, regnum, addr);
ea7963f0 1304
8d5a9abc 1305 case DWARF2_FRAME_REG_RA_OFFSET:
4a4e5149 1306 addr = cache->reg[regnum].loc.offset;
0fde2c53 1307 regnum = dwarf_reg_to_regnum_or_error
4a4e5149
DJ
1308 (gdbarch, cache->retaddr_reg.loc.reg);
1309 addr += get_frame_register_unsigned (this_frame, regnum);
1310 return frame_unwind_got_address (this_frame, regnum, addr);
8d5a9abc 1311
b39cc962
DJ
1312 case DWARF2_FRAME_REG_FN:
1313 return cache->reg[regnum].loc.fn (this_frame, this_cache, regnum);
1314
cfc14b3a 1315 default:
e2e0b3e5 1316 internal_error (__FILE__, __LINE__, _("Unknown register rule."));
cfc14b3a
MK
1317 }
1318}
1319
111c6489
JK
1320/* Proxy for tailcall_frame_dealloc_cache for bottom frame of a virtual tail
1321 call frames chain. */
1322
1323static void
1324dwarf2_frame_dealloc_cache (struct frame_info *self, void *this_cache)
1325{
1326 struct dwarf2_frame_cache *cache = dwarf2_frame_cache (self, &this_cache);
1327
1328 if (cache->tailcall_cache)
1329 dwarf2_tailcall_frame_unwind.dealloc_cache (self, cache->tailcall_cache);
1330}
1331
4a4e5149
DJ
1332static int
1333dwarf2_frame_sniffer (const struct frame_unwind *self,
1334 struct frame_info *this_frame, void **this_cache)
cfc14b3a 1335{
3c3bb058
AB
1336 if (!dwarf2_frame_unwinders_enabled_p)
1337 return 0;
1338
1ce5d6dd 1339 /* Grab an address that is guarenteed to reside somewhere within the
4a4e5149 1340 function. get_frame_pc(), with a no-return next function, can
93d42b30
DJ
1341 end up returning something past the end of this function's body.
1342 If the frame we're sniffing for is a signal frame whose start
1343 address is placed on the stack by the OS, its FDE must
4a4e5149
DJ
1344 extend one byte before its start address or we could potentially
1345 select the FDE of the previous function. */
1346 CORE_ADDR block_addr = get_frame_address_in_block (this_frame);
ac56253d 1347 struct dwarf2_fde *fde = dwarf2_frame_find_fde (&block_addr, NULL);
9a619af0 1348
56c987f6 1349 if (!fde)
4a4e5149 1350 return 0;
3ed09a32
DJ
1351
1352 /* On some targets, signal trampolines may have unwind information.
1353 We need to recognize them so that we set the frame type
1354 correctly. */
1355
56c987f6 1356 if (fde->cie->signal_frame
4a4e5149
DJ
1357 || dwarf2_frame_signal_frame_p (get_frame_arch (this_frame),
1358 this_frame))
1359 return self->type == SIGTRAMP_FRAME;
1360
111c6489
JK
1361 if (self->type != NORMAL_FRAME)
1362 return 0;
1363
111c6489 1364 return 1;
4a4e5149
DJ
1365}
1366
1367static const struct frame_unwind dwarf2_frame_unwind =
1368{
1369 NORMAL_FRAME,
8fbca658 1370 dwarf2_frame_unwind_stop_reason,
4a4e5149
DJ
1371 dwarf2_frame_this_id,
1372 dwarf2_frame_prev_register,
1373 NULL,
111c6489
JK
1374 dwarf2_frame_sniffer,
1375 dwarf2_frame_dealloc_cache
4a4e5149
DJ
1376};
1377
1378static const struct frame_unwind dwarf2_signal_frame_unwind =
1379{
1380 SIGTRAMP_FRAME,
8fbca658 1381 dwarf2_frame_unwind_stop_reason,
4a4e5149
DJ
1382 dwarf2_frame_this_id,
1383 dwarf2_frame_prev_register,
1384 NULL,
111c6489
JK
1385 dwarf2_frame_sniffer,
1386
1387 /* TAILCALL_CACHE can never be in such frame to need dealloc_cache. */
1388 NULL
4a4e5149 1389};
cfc14b3a 1390
4a4e5149
DJ
1391/* Append the DWARF-2 frame unwinders to GDBARCH's list. */
1392
1393void
1394dwarf2_append_unwinders (struct gdbarch *gdbarch)
1395{
111c6489
JK
1396 /* TAILCALL_FRAME must be first to find the record by
1397 dwarf2_tailcall_sniffer_first. */
1398 frame_unwind_append_unwinder (gdbarch, &dwarf2_tailcall_frame_unwind);
1399
4a4e5149
DJ
1400 frame_unwind_append_unwinder (gdbarch, &dwarf2_frame_unwind);
1401 frame_unwind_append_unwinder (gdbarch, &dwarf2_signal_frame_unwind);
cfc14b3a
MK
1402}
1403\f
1404
1405/* There is no explicitly defined relationship between the CFA and the
1406 location of frame's local variables and arguments/parameters.
1407 Therefore, frame base methods on this page should probably only be
1408 used as a last resort, just to avoid printing total garbage as a
1409 response to the "info frame" command. */
1410
1411static CORE_ADDR
4a4e5149 1412dwarf2_frame_base_address (struct frame_info *this_frame, void **this_cache)
cfc14b3a
MK
1413{
1414 struct dwarf2_frame_cache *cache =
4a4e5149 1415 dwarf2_frame_cache (this_frame, this_cache);
cfc14b3a
MK
1416
1417 return cache->cfa;
1418}
1419
1420static const struct frame_base dwarf2_frame_base =
1421{
1422 &dwarf2_frame_unwind,
1423 dwarf2_frame_base_address,
1424 dwarf2_frame_base_address,
1425 dwarf2_frame_base_address
1426};
1427
1428const struct frame_base *
4a4e5149 1429dwarf2_frame_base_sniffer (struct frame_info *this_frame)
cfc14b3a 1430{
4a4e5149 1431 CORE_ADDR block_addr = get_frame_address_in_block (this_frame);
9a619af0 1432
ac56253d 1433 if (dwarf2_frame_find_fde (&block_addr, NULL))
cfc14b3a
MK
1434 return &dwarf2_frame_base;
1435
1436 return NULL;
1437}
e7802207
TT
1438
1439/* Compute the CFA for THIS_FRAME, but only if THIS_FRAME came from
1440 the DWARF unwinder. This is used to implement
1441 DW_OP_call_frame_cfa. */
1442
1443CORE_ADDR
1444dwarf2_frame_cfa (struct frame_info *this_frame)
1445{
0b722aec
MM
1446 if (frame_unwinder_is (this_frame, &record_btrace_tailcall_frame_unwind)
1447 || frame_unwinder_is (this_frame, &record_btrace_frame_unwind))
1448 throw_error (NOT_AVAILABLE_ERROR,
1449 _("cfa not available for record btrace target"));
1450
e7802207
TT
1451 while (get_frame_type (this_frame) == INLINE_FRAME)
1452 this_frame = get_prev_frame (this_frame);
32261e52
MM
1453 if (get_frame_unwind_stop_reason (this_frame) == UNWIND_UNAVAILABLE)
1454 throw_error (NOT_AVAILABLE_ERROR,
1455 _("can't compute CFA for this frame: "
1456 "required registers or memory are unavailable"));
14aba1ac
JB
1457
1458 if (get_frame_id (this_frame).stack_status != FID_STACK_VALID)
1459 throw_error (NOT_AVAILABLE_ERROR,
1460 _("can't compute CFA for this frame: "
1461 "frame base not available"));
1462
e7802207
TT
1463 return get_frame_base (this_frame);
1464}
cfc14b3a 1465\f
8f22cb90 1466const struct objfile_data *dwarf2_frame_objfile_data;
0d0e1a63 1467
cfc14b3a 1468static unsigned int
f664829e 1469read_1_byte (bfd *abfd, const gdb_byte *buf)
cfc14b3a 1470{
852483bc 1471 return bfd_get_8 (abfd, buf);
cfc14b3a
MK
1472}
1473
1474static unsigned int
f664829e 1475read_4_bytes (bfd *abfd, const gdb_byte *buf)
cfc14b3a 1476{
852483bc 1477 return bfd_get_32 (abfd, buf);
cfc14b3a
MK
1478}
1479
1480static ULONGEST
f664829e 1481read_8_bytes (bfd *abfd, const gdb_byte *buf)
cfc14b3a 1482{
852483bc 1483 return bfd_get_64 (abfd, buf);
cfc14b3a
MK
1484}
1485
1486static ULONGEST
f664829e
DE
1487read_initial_length (bfd *abfd, const gdb_byte *buf,
1488 unsigned int *bytes_read_ptr)
cfc14b3a
MK
1489{
1490 LONGEST result;
1491
852483bc 1492 result = bfd_get_32 (abfd, buf);
cfc14b3a
MK
1493 if (result == 0xffffffff)
1494 {
852483bc 1495 result = bfd_get_64 (abfd, buf + 4);
cfc14b3a
MK
1496 *bytes_read_ptr = 12;
1497 }
1498 else
1499 *bytes_read_ptr = 4;
1500
1501 return result;
1502}
1503\f
1504
1505/* Pointer encoding helper functions. */
1506
1507/* GCC supports exception handling based on DWARF2 CFI. However, for
1508 technical reasons, it encodes addresses in its FDE's in a different
1509 way. Several "pointer encodings" are supported. The encoding
1510 that's used for a particular FDE is determined by the 'R'
1511 augmentation in the associated CIE. The argument of this
1512 augmentation is a single byte.
1513
1514 The address can be encoded as 2 bytes, 4 bytes, 8 bytes, or as a
1515 LEB128. This is encoded in bits 0, 1 and 2. Bit 3 encodes whether
1516 the address is signed or unsigned. Bits 4, 5 and 6 encode how the
1517 address should be interpreted (absolute, relative to the current
1518 position in the FDE, ...). Bit 7, indicates that the address
1519 should be dereferenced. */
1520
852483bc 1521static gdb_byte
cfc14b3a
MK
1522encoding_for_size (unsigned int size)
1523{
1524 switch (size)
1525 {
1526 case 2:
1527 return DW_EH_PE_udata2;
1528 case 4:
1529 return DW_EH_PE_udata4;
1530 case 8:
1531 return DW_EH_PE_udata8;
1532 default:
e2e0b3e5 1533 internal_error (__FILE__, __LINE__, _("Unsupported address size"));
cfc14b3a
MK
1534 }
1535}
1536
cfc14b3a 1537static CORE_ADDR
852483bc 1538read_encoded_value (struct comp_unit *unit, gdb_byte encoding,
0d45f56e
TT
1539 int ptr_len, const gdb_byte *buf,
1540 unsigned int *bytes_read_ptr,
ae0d2f24 1541 CORE_ADDR func_base)
cfc14b3a 1542{
68f6cf99 1543 ptrdiff_t offset;
cfc14b3a
MK
1544 CORE_ADDR base;
1545
1546 /* GCC currently doesn't generate DW_EH_PE_indirect encodings for
1547 FDE's. */
1548 if (encoding & DW_EH_PE_indirect)
1549 internal_error (__FILE__, __LINE__,
e2e0b3e5 1550 _("Unsupported encoding: DW_EH_PE_indirect"));
cfc14b3a 1551
68f6cf99
MK
1552 *bytes_read_ptr = 0;
1553
cfc14b3a
MK
1554 switch (encoding & 0x70)
1555 {
1556 case DW_EH_PE_absptr:
1557 base = 0;
1558 break;
1559 case DW_EH_PE_pcrel:
f2fec864 1560 base = bfd_get_section_vma (unit->abfd, unit->dwarf_frame_section);
852483bc 1561 base += (buf - unit->dwarf_frame_buffer);
cfc14b3a 1562 break;
0912c7f2
MK
1563 case DW_EH_PE_datarel:
1564 base = unit->dbase;
1565 break;
0fd85043
CV
1566 case DW_EH_PE_textrel:
1567 base = unit->tbase;
1568 break;
03ac2a74 1569 case DW_EH_PE_funcrel:
ae0d2f24 1570 base = func_base;
03ac2a74 1571 break;
68f6cf99
MK
1572 case DW_EH_PE_aligned:
1573 base = 0;
852483bc 1574 offset = buf - unit->dwarf_frame_buffer;
68f6cf99
MK
1575 if ((offset % ptr_len) != 0)
1576 {
1577 *bytes_read_ptr = ptr_len - (offset % ptr_len);
1578 buf += *bytes_read_ptr;
1579 }
1580 break;
cfc14b3a 1581 default:
3e43a32a
MS
1582 internal_error (__FILE__, __LINE__,
1583 _("Invalid or unsupported encoding"));
cfc14b3a
MK
1584 }
1585
b04de778 1586 if ((encoding & 0x07) == 0x00)
f2fec864
DJ
1587 {
1588 encoding |= encoding_for_size (ptr_len);
1589 if (bfd_get_sign_extend_vma (unit->abfd))
1590 encoding |= DW_EH_PE_signed;
1591 }
cfc14b3a
MK
1592
1593 switch (encoding & 0x0f)
1594 {
a81b10ae
MK
1595 case DW_EH_PE_uleb128:
1596 {
9fccedf7 1597 uint64_t value;
0d45f56e 1598 const gdb_byte *end_buf = buf + (sizeof (value) + 1) * 8 / 7;
9a619af0 1599
f664829e 1600 *bytes_read_ptr += safe_read_uleb128 (buf, end_buf, &value) - buf;
a81b10ae
MK
1601 return base + value;
1602 }
cfc14b3a 1603 case DW_EH_PE_udata2:
68f6cf99 1604 *bytes_read_ptr += 2;
cfc14b3a
MK
1605 return (base + bfd_get_16 (unit->abfd, (bfd_byte *) buf));
1606 case DW_EH_PE_udata4:
68f6cf99 1607 *bytes_read_ptr += 4;
cfc14b3a
MK
1608 return (base + bfd_get_32 (unit->abfd, (bfd_byte *) buf));
1609 case DW_EH_PE_udata8:
68f6cf99 1610 *bytes_read_ptr += 8;
cfc14b3a 1611 return (base + bfd_get_64 (unit->abfd, (bfd_byte *) buf));
a81b10ae
MK
1612 case DW_EH_PE_sleb128:
1613 {
9fccedf7 1614 int64_t value;
0d45f56e 1615 const gdb_byte *end_buf = buf + (sizeof (value) + 1) * 8 / 7;
9a619af0 1616
f664829e 1617 *bytes_read_ptr += safe_read_sleb128 (buf, end_buf, &value) - buf;
a81b10ae
MK
1618 return base + value;
1619 }
cfc14b3a 1620 case DW_EH_PE_sdata2:
68f6cf99 1621 *bytes_read_ptr += 2;
cfc14b3a
MK
1622 return (base + bfd_get_signed_16 (unit->abfd, (bfd_byte *) buf));
1623 case DW_EH_PE_sdata4:
68f6cf99 1624 *bytes_read_ptr += 4;
cfc14b3a
MK
1625 return (base + bfd_get_signed_32 (unit->abfd, (bfd_byte *) buf));
1626 case DW_EH_PE_sdata8:
68f6cf99 1627 *bytes_read_ptr += 8;
cfc14b3a
MK
1628 return (base + bfd_get_signed_64 (unit->abfd, (bfd_byte *) buf));
1629 default:
3e43a32a
MS
1630 internal_error (__FILE__, __LINE__,
1631 _("Invalid or unsupported encoding"));
cfc14b3a
MK
1632 }
1633}
1634\f
1635
b01c8410
PP
1636static int
1637bsearch_cie_cmp (const void *key, const void *element)
cfc14b3a 1638{
b01c8410
PP
1639 ULONGEST cie_pointer = *(ULONGEST *) key;
1640 struct dwarf2_cie *cie = *(struct dwarf2_cie **) element;
cfc14b3a 1641
b01c8410
PP
1642 if (cie_pointer == cie->cie_pointer)
1643 return 0;
cfc14b3a 1644
b01c8410
PP
1645 return (cie_pointer < cie->cie_pointer) ? -1 : 1;
1646}
1647
1648/* Find CIE with the given CIE_POINTER in CIE_TABLE. */
1649static struct dwarf2_cie *
1650find_cie (struct dwarf2_cie_table *cie_table, ULONGEST cie_pointer)
1651{
1652 struct dwarf2_cie **p_cie;
cfc14b3a 1653
65a97ab3
PP
1654 /* The C standard (ISO/IEC 9899:TC2) requires the BASE argument to
1655 bsearch be non-NULL. */
1656 if (cie_table->entries == NULL)
1657 {
1658 gdb_assert (cie_table->num_entries == 0);
1659 return NULL;
1660 }
1661
9a3c8263
SM
1662 p_cie = ((struct dwarf2_cie **)
1663 bsearch (&cie_pointer, cie_table->entries, cie_table->num_entries,
1664 sizeof (cie_table->entries[0]), bsearch_cie_cmp));
b01c8410
PP
1665 if (p_cie != NULL)
1666 return *p_cie;
cfc14b3a
MK
1667 return NULL;
1668}
1669
b01c8410 1670/* Add a pointer to new CIE to the CIE_TABLE, allocating space for it. */
cfc14b3a 1671static void
b01c8410 1672add_cie (struct dwarf2_cie_table *cie_table, struct dwarf2_cie *cie)
cfc14b3a 1673{
b01c8410
PP
1674 const int n = cie_table->num_entries;
1675
1676 gdb_assert (n < 1
1677 || cie_table->entries[n - 1]->cie_pointer < cie->cie_pointer);
1678
224c3ddb
SM
1679 cie_table->entries
1680 = XRESIZEVEC (struct dwarf2_cie *, cie_table->entries, n + 1);
b01c8410
PP
1681 cie_table->entries[n] = cie;
1682 cie_table->num_entries = n + 1;
1683}
1684
1685static int
1686bsearch_fde_cmp (const void *key, const void *element)
1687{
1688 CORE_ADDR seek_pc = *(CORE_ADDR *) key;
1689 struct dwarf2_fde *fde = *(struct dwarf2_fde **) element;
9a619af0 1690
b01c8410
PP
1691 if (seek_pc < fde->initial_location)
1692 return -1;
1693 if (seek_pc < fde->initial_location + fde->address_range)
1694 return 0;
1695 return 1;
cfc14b3a
MK
1696}
1697
1698/* Find the FDE for *PC. Return a pointer to the FDE, and store the
1699 inital location associated with it into *PC. */
1700
1701static struct dwarf2_fde *
ac56253d 1702dwarf2_frame_find_fde (CORE_ADDR *pc, CORE_ADDR *out_offset)
cfc14b3a 1703{
2030c079 1704 for (objfile *objfile : current_program_space->objfiles ())
cfc14b3a 1705 {
b01c8410
PP
1706 struct dwarf2_fde_table *fde_table;
1707 struct dwarf2_fde **p_fde;
cfc14b3a 1708 CORE_ADDR offset;
b01c8410 1709 CORE_ADDR seek_pc;
cfc14b3a 1710
9a3c8263
SM
1711 fde_table = ((struct dwarf2_fde_table *)
1712 objfile_data (objfile, dwarf2_frame_objfile_data));
b01c8410 1713 if (fde_table == NULL)
be391dca
TT
1714 {
1715 dwarf2_build_frame_info (objfile);
9a3c8263
SM
1716 fde_table = ((struct dwarf2_fde_table *)
1717 objfile_data (objfile, dwarf2_frame_objfile_data));
be391dca
TT
1718 }
1719 gdb_assert (fde_table != NULL);
1720
1721 if (fde_table->num_entries == 0)
4ae9ee8e
DJ
1722 continue;
1723
1724 gdb_assert (objfile->section_offsets);
1725 offset = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
1726
b01c8410
PP
1727 gdb_assert (fde_table->num_entries > 0);
1728 if (*pc < offset + fde_table->entries[0]->initial_location)
1729 continue;
1730
1731 seek_pc = *pc - offset;
9a3c8263
SM
1732 p_fde = ((struct dwarf2_fde **)
1733 bsearch (&seek_pc, fde_table->entries, fde_table->num_entries,
1734 sizeof (fde_table->entries[0]), bsearch_fde_cmp));
b01c8410
PP
1735 if (p_fde != NULL)
1736 {
1737 *pc = (*p_fde)->initial_location + offset;
ac56253d
TT
1738 if (out_offset)
1739 *out_offset = offset;
b01c8410
PP
1740 return *p_fde;
1741 }
cfc14b3a 1742 }
cfc14b3a
MK
1743 return NULL;
1744}
1745
b01c8410 1746/* Add a pointer to new FDE to the FDE_TABLE, allocating space for it. */
cfc14b3a 1747static void
b01c8410 1748add_fde (struct dwarf2_fde_table *fde_table, struct dwarf2_fde *fde)
cfc14b3a 1749{
b01c8410
PP
1750 if (fde->address_range == 0)
1751 /* Discard useless FDEs. */
1752 return;
1753
1754 fde_table->num_entries += 1;
224c3ddb
SM
1755 fde_table->entries = XRESIZEVEC (struct dwarf2_fde *, fde_table->entries,
1756 fde_table->num_entries);
b01c8410 1757 fde_table->entries[fde_table->num_entries - 1] = fde;
cfc14b3a
MK
1758}
1759
cfc14b3a 1760#define DW64_CIE_ID 0xffffffffffffffffULL
cfc14b3a 1761
8bd90839
FM
1762/* Defines the type of eh_frames that are expected to be decoded: CIE, FDE
1763 or any of them. */
1764
1765enum eh_frame_type
1766{
1767 EH_CIE_TYPE_ID = 1 << 0,
1768 EH_FDE_TYPE_ID = 1 << 1,
1769 EH_CIE_OR_FDE_TYPE_ID = EH_CIE_TYPE_ID | EH_FDE_TYPE_ID
1770};
1771
f664829e
DE
1772static const gdb_byte *decode_frame_entry (struct comp_unit *unit,
1773 const gdb_byte *start,
1774 int eh_frame_p,
1775 struct dwarf2_cie_table *cie_table,
1776 struct dwarf2_fde_table *fde_table,
1777 enum eh_frame_type entry_type);
8bd90839
FM
1778
1779/* Decode the next CIE or FDE, entry_type specifies the expected type.
1780 Return NULL if invalid input, otherwise the next byte to be processed. */
cfc14b3a 1781
f664829e
DE
1782static const gdb_byte *
1783decode_frame_entry_1 (struct comp_unit *unit, const gdb_byte *start,
1784 int eh_frame_p,
b01c8410 1785 struct dwarf2_cie_table *cie_table,
8bd90839
FM
1786 struct dwarf2_fde_table *fde_table,
1787 enum eh_frame_type entry_type)
cfc14b3a 1788{
5e2b427d 1789 struct gdbarch *gdbarch = get_objfile_arch (unit->objfile);
f664829e 1790 const gdb_byte *buf, *end;
cfc14b3a
MK
1791 LONGEST length;
1792 unsigned int bytes_read;
6896c0c7
RH
1793 int dwarf64_p;
1794 ULONGEST cie_id;
cfc14b3a 1795 ULONGEST cie_pointer;
9fccedf7
DE
1796 int64_t sleb128;
1797 uint64_t uleb128;
cfc14b3a 1798
6896c0c7 1799 buf = start;
cfc14b3a
MK
1800 length = read_initial_length (unit->abfd, buf, &bytes_read);
1801 buf += bytes_read;
1802 end = buf + length;
1803
0963b4bd 1804 /* Are we still within the section? */
6896c0c7
RH
1805 if (end > unit->dwarf_frame_buffer + unit->dwarf_frame_size)
1806 return NULL;
1807
cfc14b3a
MK
1808 if (length == 0)
1809 return end;
1810
6896c0c7
RH
1811 /* Distinguish between 32 and 64-bit encoded frame info. */
1812 dwarf64_p = (bytes_read == 12);
cfc14b3a 1813
6896c0c7 1814 /* In a .eh_frame section, zero is used to distinguish CIEs from FDEs. */
cfc14b3a
MK
1815 if (eh_frame_p)
1816 cie_id = 0;
1817 else if (dwarf64_p)
1818 cie_id = DW64_CIE_ID;
6896c0c7
RH
1819 else
1820 cie_id = DW_CIE_ID;
cfc14b3a
MK
1821
1822 if (dwarf64_p)
1823 {
1824 cie_pointer = read_8_bytes (unit->abfd, buf);
1825 buf += 8;
1826 }
1827 else
1828 {
1829 cie_pointer = read_4_bytes (unit->abfd, buf);
1830 buf += 4;
1831 }
1832
1833 if (cie_pointer == cie_id)
1834 {
1835 /* This is a CIE. */
1836 struct dwarf2_cie *cie;
1837 char *augmentation;
28ba0b33 1838 unsigned int cie_version;
cfc14b3a 1839
8bd90839
FM
1840 /* Check that a CIE was expected. */
1841 if ((entry_type & EH_CIE_TYPE_ID) == 0)
1842 error (_("Found a CIE when not expecting it."));
1843
cfc14b3a
MK
1844 /* Record the offset into the .debug_frame section of this CIE. */
1845 cie_pointer = start - unit->dwarf_frame_buffer;
1846
1847 /* Check whether we've already read it. */
b01c8410 1848 if (find_cie (cie_table, cie_pointer))
cfc14b3a
MK
1849 return end;
1850
8d749320 1851 cie = XOBNEW (&unit->objfile->objfile_obstack, struct dwarf2_cie);
cfc14b3a
MK
1852 cie->initial_instructions = NULL;
1853 cie->cie_pointer = cie_pointer;
1854
1855 /* The encoding for FDE's in a normal .debug_frame section
32b05c07
MK
1856 depends on the target address size. */
1857 cie->encoding = DW_EH_PE_absptr;
cfc14b3a 1858
56c987f6
AO
1859 /* We'll determine the final value later, but we need to
1860 initialize it conservatively. */
1861 cie->signal_frame = 0;
1862
cfc14b3a 1863 /* Check version number. */
28ba0b33 1864 cie_version = read_1_byte (unit->abfd, buf);
2dc7f7b3 1865 if (cie_version != 1 && cie_version != 3 && cie_version != 4)
6896c0c7 1866 return NULL;
303b6f5d 1867 cie->version = cie_version;
cfc14b3a
MK
1868 buf += 1;
1869
1870 /* Interpret the interesting bits of the augmentation. */
303b6f5d 1871 cie->augmentation = augmentation = (char *) buf;
852483bc 1872 buf += (strlen (augmentation) + 1);
cfc14b3a 1873
303b6f5d
DJ
1874 /* Ignore armcc augmentations. We only use them for quirks,
1875 and that doesn't happen until later. */
61012eef 1876 if (startswith (augmentation, "armcc"))
303b6f5d
DJ
1877 augmentation += strlen (augmentation);
1878
cfc14b3a
MK
1879 /* The GCC 2.x "eh" augmentation has a pointer immediately
1880 following the augmentation string, so it must be handled
1881 first. */
1882 if (augmentation[0] == 'e' && augmentation[1] == 'h')
1883 {
1884 /* Skip. */
5e2b427d 1885 buf += gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT;
cfc14b3a
MK
1886 augmentation += 2;
1887 }
1888
2dc7f7b3
TT
1889 if (cie->version >= 4)
1890 {
1891 /* FIXME: check that this is the same as from the CU header. */
1892 cie->addr_size = read_1_byte (unit->abfd, buf);
1893 ++buf;
1894 cie->segment_size = read_1_byte (unit->abfd, buf);
1895 ++buf;
1896 }
1897 else
1898 {
8da614df 1899 cie->addr_size = gdbarch_dwarf2_addr_size (gdbarch);
2dc7f7b3
TT
1900 cie->segment_size = 0;
1901 }
8da614df
CV
1902 /* Address values in .eh_frame sections are defined to have the
1903 target's pointer size. Watchout: This breaks frame info for
1904 targets with pointer size < address size, unless a .debug_frame
0963b4bd 1905 section exists as well. */
8da614df
CV
1906 if (eh_frame_p)
1907 cie->ptr_size = gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT;
1908 else
1909 cie->ptr_size = cie->addr_size;
2dc7f7b3 1910
f664829e
DE
1911 buf = gdb_read_uleb128 (buf, end, &uleb128);
1912 if (buf == NULL)
1913 return NULL;
1914 cie->code_alignment_factor = uleb128;
cfc14b3a 1915
f664829e
DE
1916 buf = gdb_read_sleb128 (buf, end, &sleb128);
1917 if (buf == NULL)
1918 return NULL;
1919 cie->data_alignment_factor = sleb128;
cfc14b3a 1920
28ba0b33
PB
1921 if (cie_version == 1)
1922 {
1923 cie->return_address_register = read_1_byte (unit->abfd, buf);
f664829e 1924 ++buf;
28ba0b33
PB
1925 }
1926 else
f664829e
DE
1927 {
1928 buf = gdb_read_uleb128 (buf, end, &uleb128);
1929 if (buf == NULL)
1930 return NULL;
1931 cie->return_address_register = uleb128;
1932 }
1933
4fc771b8 1934 cie->return_address_register
5e2b427d 1935 = dwarf2_frame_adjust_regnum (gdbarch,
4fc771b8
DJ
1936 cie->return_address_register,
1937 eh_frame_p);
4bf8967c 1938
7131cb6e
RH
1939 cie->saw_z_augmentation = (*augmentation == 'z');
1940 if (cie->saw_z_augmentation)
cfc14b3a 1941 {
b926417a 1942 uint64_t uleb_length;
cfc14b3a 1943
b926417a 1944 buf = gdb_read_uleb128 (buf, end, &uleb_length);
f664829e 1945 if (buf == NULL)
6896c0c7 1946 return NULL;
b926417a 1947 cie->initial_instructions = buf + uleb_length;
cfc14b3a
MK
1948 augmentation++;
1949 }
1950
1951 while (*augmentation)
1952 {
1953 /* "L" indicates a byte showing how the LSDA pointer is encoded. */
1954 if (*augmentation == 'L')
1955 {
1956 /* Skip. */
1957 buf++;
1958 augmentation++;
1959 }
1960
1961 /* "R" indicates a byte indicating how FDE addresses are encoded. */
1962 else if (*augmentation == 'R')
1963 {
1964 cie->encoding = *buf++;
1965 augmentation++;
1966 }
1967
1968 /* "P" indicates a personality routine in the CIE augmentation. */
1969 else if (*augmentation == 'P')
1970 {
1234d960 1971 /* Skip. Avoid indirection since we throw away the result. */
852483bc 1972 gdb_byte encoding = (*buf++) & ~DW_EH_PE_indirect;
8da614df 1973 read_encoded_value (unit, encoding, cie->ptr_size,
ae0d2f24 1974 buf, &bytes_read, 0);
f724bf08 1975 buf += bytes_read;
cfc14b3a
MK
1976 augmentation++;
1977 }
1978
56c987f6
AO
1979 /* "S" indicates a signal frame, such that the return
1980 address must not be decremented to locate the call frame
1981 info for the previous frame; it might even be the first
1982 instruction of a function, so decrementing it would take
1983 us to a different function. */
1984 else if (*augmentation == 'S')
1985 {
1986 cie->signal_frame = 1;
1987 augmentation++;
1988 }
1989
3e9a2e52
DJ
1990 /* Otherwise we have an unknown augmentation. Assume that either
1991 there is no augmentation data, or we saw a 'z' prefix. */
cfc14b3a
MK
1992 else
1993 {
3e9a2e52
DJ
1994 if (cie->initial_instructions)
1995 buf = cie->initial_instructions;
cfc14b3a
MK
1996 break;
1997 }
1998 }
1999
2000 cie->initial_instructions = buf;
2001 cie->end = end;
b01c8410 2002 cie->unit = unit;
cfc14b3a 2003
b01c8410 2004 add_cie (cie_table, cie);
cfc14b3a
MK
2005 }
2006 else
2007 {
2008 /* This is a FDE. */
2009 struct dwarf2_fde *fde;
3e29f34a 2010 CORE_ADDR addr;
cfc14b3a 2011
8bd90839
FM
2012 /* Check that an FDE was expected. */
2013 if ((entry_type & EH_FDE_TYPE_ID) == 0)
2014 error (_("Found an FDE when not expecting it."));
2015
6896c0c7
RH
2016 /* In an .eh_frame section, the CIE pointer is the delta between the
2017 address within the FDE where the CIE pointer is stored and the
2018 address of the CIE. Convert it to an offset into the .eh_frame
2019 section. */
cfc14b3a
MK
2020 if (eh_frame_p)
2021 {
cfc14b3a
MK
2022 cie_pointer = buf - unit->dwarf_frame_buffer - cie_pointer;
2023 cie_pointer -= (dwarf64_p ? 8 : 4);
2024 }
2025
6896c0c7
RH
2026 /* In either case, validate the result is still within the section. */
2027 if (cie_pointer >= unit->dwarf_frame_size)
2028 return NULL;
2029
8d749320 2030 fde = XOBNEW (&unit->objfile->objfile_obstack, struct dwarf2_fde);
b01c8410 2031 fde->cie = find_cie (cie_table, cie_pointer);
cfc14b3a
MK
2032 if (fde->cie == NULL)
2033 {
2034 decode_frame_entry (unit, unit->dwarf_frame_buffer + cie_pointer,
8bd90839
FM
2035 eh_frame_p, cie_table, fde_table,
2036 EH_CIE_TYPE_ID);
b01c8410 2037 fde->cie = find_cie (cie_table, cie_pointer);
cfc14b3a
MK
2038 }
2039
2040 gdb_assert (fde->cie != NULL);
2041
3e29f34a
MR
2042 addr = read_encoded_value (unit, fde->cie->encoding, fde->cie->ptr_size,
2043 buf, &bytes_read, 0);
2044 fde->initial_location = gdbarch_adjust_dwarf2_addr (gdbarch, addr);
cfc14b3a
MK
2045 buf += bytes_read;
2046
2047 fde->address_range =
ae0d2f24 2048 read_encoded_value (unit, fde->cie->encoding & 0x0f,
8da614df 2049 fde->cie->ptr_size, buf, &bytes_read, 0);
3e29f34a
MR
2050 addr = gdbarch_adjust_dwarf2_addr (gdbarch, addr + fde->address_range);
2051 fde->address_range = addr - fde->initial_location;
cfc14b3a
MK
2052 buf += bytes_read;
2053
7131cb6e
RH
2054 /* A 'z' augmentation in the CIE implies the presence of an
2055 augmentation field in the FDE as well. The only thing known
2056 to be in here at present is the LSDA entry for EH. So we
2057 can skip the whole thing. */
2058 if (fde->cie->saw_z_augmentation)
2059 {
b926417a 2060 uint64_t uleb_length;
7131cb6e 2061
b926417a 2062 buf = gdb_read_uleb128 (buf, end, &uleb_length);
f664829e
DE
2063 if (buf == NULL)
2064 return NULL;
b926417a 2065 buf += uleb_length;
6896c0c7
RH
2066 if (buf > end)
2067 return NULL;
7131cb6e
RH
2068 }
2069
cfc14b3a
MK
2070 fde->instructions = buf;
2071 fde->end = end;
2072
4bf8967c
AS
2073 fde->eh_frame_p = eh_frame_p;
2074
b01c8410 2075 add_fde (fde_table, fde);
cfc14b3a
MK
2076 }
2077
2078 return end;
2079}
6896c0c7 2080
8bd90839
FM
2081/* Read a CIE or FDE in BUF and decode it. Entry_type specifies whether we
2082 expect an FDE or a CIE. */
2083
f664829e
DE
2084static const gdb_byte *
2085decode_frame_entry (struct comp_unit *unit, const gdb_byte *start,
2086 int eh_frame_p,
b01c8410 2087 struct dwarf2_cie_table *cie_table,
8bd90839
FM
2088 struct dwarf2_fde_table *fde_table,
2089 enum eh_frame_type entry_type)
6896c0c7
RH
2090{
2091 enum { NONE, ALIGN4, ALIGN8, FAIL } workaround = NONE;
f664829e 2092 const gdb_byte *ret;
6896c0c7
RH
2093 ptrdiff_t start_offset;
2094
2095 while (1)
2096 {
b01c8410 2097 ret = decode_frame_entry_1 (unit, start, eh_frame_p,
8bd90839 2098 cie_table, fde_table, entry_type);
6896c0c7
RH
2099 if (ret != NULL)
2100 break;
2101
2102 /* We have corrupt input data of some form. */
2103
2104 /* ??? Try, weakly, to work around compiler/assembler/linker bugs
2105 and mismatches wrt padding and alignment of debug sections. */
2106 /* Note that there is no requirement in the standard for any
2107 alignment at all in the frame unwind sections. Testing for
2108 alignment before trying to interpret data would be incorrect.
2109
2110 However, GCC traditionally arranged for frame sections to be
2111 sized such that the FDE length and CIE fields happen to be
2112 aligned (in theory, for performance). This, unfortunately,
2113 was done with .align directives, which had the side effect of
2114 forcing the section to be aligned by the linker.
2115
2116 This becomes a problem when you have some other producer that
2117 creates frame sections that are not as strictly aligned. That
2118 produces a hole in the frame info that gets filled by the
2119 linker with zeros.
2120
2121 The GCC behaviour is arguably a bug, but it's effectively now
2122 part of the ABI, so we're now stuck with it, at least at the
2123 object file level. A smart linker may decide, in the process
2124 of compressing duplicate CIE information, that it can rewrite
2125 the entire output section without this extra padding. */
2126
2127 start_offset = start - unit->dwarf_frame_buffer;
2128 if (workaround < ALIGN4 && (start_offset & 3) != 0)
2129 {
2130 start += 4 - (start_offset & 3);
2131 workaround = ALIGN4;
2132 continue;
2133 }
2134 if (workaround < ALIGN8 && (start_offset & 7) != 0)
2135 {
2136 start += 8 - (start_offset & 7);
2137 workaround = ALIGN8;
2138 continue;
2139 }
2140
2141 /* Nothing left to try. Arrange to return as if we've consumed
2142 the entire input section. Hopefully we'll get valid info from
2143 the other of .debug_frame/.eh_frame. */
2144 workaround = FAIL;
2145 ret = unit->dwarf_frame_buffer + unit->dwarf_frame_size;
2146 break;
2147 }
2148
2149 switch (workaround)
2150 {
2151 case NONE:
2152 break;
2153
2154 case ALIGN4:
b98664d3 2155 complaint (_("\
3e43a32a 2156Corrupt data in %s:%s; align 4 workaround apparently succeeded"),
6896c0c7
RH
2157 unit->dwarf_frame_section->owner->filename,
2158 unit->dwarf_frame_section->name);
2159 break;
2160
2161 case ALIGN8:
b98664d3 2162 complaint (_("\
3e43a32a 2163Corrupt data in %s:%s; align 8 workaround apparently succeeded"),
6896c0c7
RH
2164 unit->dwarf_frame_section->owner->filename,
2165 unit->dwarf_frame_section->name);
2166 break;
2167
2168 default:
b98664d3 2169 complaint (_("Corrupt data in %s:%s"),
6896c0c7
RH
2170 unit->dwarf_frame_section->owner->filename,
2171 unit->dwarf_frame_section->name);
2172 break;
2173 }
2174
2175 return ret;
2176}
cfc14b3a 2177\f
b01c8410
PP
2178static int
2179qsort_fde_cmp (const void *a, const void *b)
2180{
2181 struct dwarf2_fde *aa = *(struct dwarf2_fde **)a;
2182 struct dwarf2_fde *bb = *(struct dwarf2_fde **)b;
e5af178f 2183
b01c8410 2184 if (aa->initial_location == bb->initial_location)
e5af178f
PP
2185 {
2186 if (aa->address_range != bb->address_range
2187 && aa->eh_frame_p == 0 && bb->eh_frame_p == 0)
2188 /* Linker bug, e.g. gold/10400.
2189 Work around it by keeping stable sort order. */
2190 return (a < b) ? -1 : 1;
2191 else
2192 /* Put eh_frame entries after debug_frame ones. */
2193 return aa->eh_frame_p - bb->eh_frame_p;
2194 }
b01c8410
PP
2195
2196 return (aa->initial_location < bb->initial_location) ? -1 : 1;
2197}
2198
cfc14b3a
MK
2199void
2200dwarf2_build_frame_info (struct objfile *objfile)
2201{
ae0d2f24 2202 struct comp_unit *unit;
f664829e 2203 const gdb_byte *frame_ptr;
b01c8410
PP
2204 struct dwarf2_cie_table cie_table;
2205 struct dwarf2_fde_table fde_table;
be391dca 2206 struct dwarf2_fde_table *fde_table2;
b01c8410
PP
2207
2208 cie_table.num_entries = 0;
2209 cie_table.entries = NULL;
2210
2211 fde_table.num_entries = 0;
2212 fde_table.entries = NULL;
cfc14b3a
MK
2213
2214 /* Build a minimal decoding of the DWARF2 compilation unit. */
e39db4db 2215 unit = XOBNEW (&objfile->objfile_obstack, comp_unit);
ae0d2f24
UW
2216 unit->abfd = objfile->obfd;
2217 unit->objfile = objfile;
2218 unit->dbase = 0;
2219 unit->tbase = 0;
cfc14b3a 2220
d40102a1 2221 if (objfile->separate_debug_objfile_backlink == NULL)
cfc14b3a 2222 {
d40102a1
JB
2223 /* Do not read .eh_frame from separate file as they must be also
2224 present in the main file. */
2225 dwarf2_get_section_info (objfile, DWARF2_EH_FRAME,
2226 &unit->dwarf_frame_section,
2227 &unit->dwarf_frame_buffer,
2228 &unit->dwarf_frame_size);
2229 if (unit->dwarf_frame_size)
b01c8410 2230 {
d40102a1
JB
2231 asection *got, *txt;
2232
2233 /* FIXME: kettenis/20030602: This is the DW_EH_PE_datarel base
2234 that is used for the i386/amd64 target, which currently is
2235 the only target in GCC that supports/uses the
2236 DW_EH_PE_datarel encoding. */
2237 got = bfd_get_section_by_name (unit->abfd, ".got");
2238 if (got)
2239 unit->dbase = got->vma;
2240
2241 /* GCC emits the DW_EH_PE_textrel encoding type on sh and ia64
2242 so far. */
2243 txt = bfd_get_section_by_name (unit->abfd, ".text");
2244 if (txt)
2245 unit->tbase = txt->vma;
2246
a70b8144 2247 try
8bd90839
FM
2248 {
2249 frame_ptr = unit->dwarf_frame_buffer;
2250 while (frame_ptr < unit->dwarf_frame_buffer + unit->dwarf_frame_size)
2251 frame_ptr = decode_frame_entry (unit, frame_ptr, 1,
2252 &cie_table, &fde_table,
2253 EH_CIE_OR_FDE_TYPE_ID);
2254 }
2255
230d2906 2256 catch (const gdb_exception_error &e)
8bd90839
FM
2257 {
2258 warning (_("skipping .eh_frame info of %s: %s"),
3d6e9d23 2259 objfile_name (objfile), e.what ());
8bd90839
FM
2260
2261 if (fde_table.num_entries != 0)
2262 {
2263 xfree (fde_table.entries);
2264 fde_table.entries = NULL;
2265 fde_table.num_entries = 0;
2266 }
2267 /* The cie_table is discarded by the next if. */
2268 }
d40102a1
JB
2269
2270 if (cie_table.num_entries != 0)
2271 {
2272 /* Reinit cie_table: debug_frame has different CIEs. */
2273 xfree (cie_table.entries);
2274 cie_table.num_entries = 0;
2275 cie_table.entries = NULL;
2276 }
b01c8410 2277 }
cfc14b3a
MK
2278 }
2279
3017a003 2280 dwarf2_get_section_info (objfile, DWARF2_DEBUG_FRAME,
dce234bc
PP
2281 &unit->dwarf_frame_section,
2282 &unit->dwarf_frame_buffer,
2283 &unit->dwarf_frame_size);
2284 if (unit->dwarf_frame_size)
cfc14b3a 2285 {
8bd90839
FM
2286 int num_old_fde_entries = fde_table.num_entries;
2287
a70b8144 2288 try
8bd90839
FM
2289 {
2290 frame_ptr = unit->dwarf_frame_buffer;
2291 while (frame_ptr < unit->dwarf_frame_buffer + unit->dwarf_frame_size)
2292 frame_ptr = decode_frame_entry (unit, frame_ptr, 0,
2293 &cie_table, &fde_table,
2294 EH_CIE_OR_FDE_TYPE_ID);
2295 }
230d2906 2296 catch (const gdb_exception_error &e)
8bd90839
FM
2297 {
2298 warning (_("skipping .debug_frame info of %s: %s"),
3d6e9d23 2299 objfile_name (objfile), e.what ());
8bd90839
FM
2300
2301 if (fde_table.num_entries != 0)
2302 {
2303 fde_table.num_entries = num_old_fde_entries;
2304 if (num_old_fde_entries == 0)
2305 {
2306 xfree (fde_table.entries);
2307 fde_table.entries = NULL;
2308 }
2309 else
2310 {
224c3ddb
SM
2311 fde_table.entries
2312 = XRESIZEVEC (struct dwarf2_fde *, fde_table.entries,
2313 fde_table.num_entries);
8bd90839
FM
2314 }
2315 }
2316 fde_table.num_entries = num_old_fde_entries;
2317 /* The cie_table is discarded by the next if. */
2318 }
b01c8410
PP
2319 }
2320
2321 /* Discard the cie_table, it is no longer needed. */
2322 if (cie_table.num_entries != 0)
2323 {
2324 xfree (cie_table.entries);
2325 cie_table.entries = NULL; /* Paranoia. */
2326 cie_table.num_entries = 0; /* Paranoia. */
2327 }
2328
be391dca 2329 /* Copy fde_table to obstack: it is needed at runtime. */
8d749320 2330 fde_table2 = XOBNEW (&objfile->objfile_obstack, struct dwarf2_fde_table);
be391dca
TT
2331
2332 if (fde_table.num_entries == 0)
2333 {
2334 fde_table2->entries = NULL;
2335 fde_table2->num_entries = 0;
2336 }
2337 else
b01c8410 2338 {
875cdfbb
PA
2339 struct dwarf2_fde *fde_prev = NULL;
2340 struct dwarf2_fde *first_non_zero_fde = NULL;
2341 int i;
b01c8410
PP
2342
2343 /* Prepare FDE table for lookups. */
2344 qsort (fde_table.entries, fde_table.num_entries,
2345 sizeof (fde_table.entries[0]), qsort_fde_cmp);
2346
875cdfbb
PA
2347 /* Check for leftovers from --gc-sections. The GNU linker sets
2348 the relevant symbols to zero, but doesn't zero the FDE *end*
2349 ranges because there's no relocation there. It's (offset,
2350 length), not (start, end). On targets where address zero is
2351 just another valid address this can be a problem, since the
2352 FDEs appear to be non-empty in the output --- we could pick
2353 out the wrong FDE. To work around this, when overlaps are
2354 detected, we prefer FDEs that do not start at zero.
2355
2356 Start by finding the first FDE with non-zero start. Below
2357 we'll discard all FDEs that start at zero and overlap this
2358 one. */
2359 for (i = 0; i < fde_table.num_entries; i++)
2360 {
2361 struct dwarf2_fde *fde = fde_table.entries[i];
b01c8410 2362
875cdfbb
PA
2363 if (fde->initial_location != 0)
2364 {
2365 first_non_zero_fde = fde;
2366 break;
2367 }
2368 }
2369
2370 /* Since we'll be doing bsearch, squeeze out identical (except
2371 for eh_frame_p) fde entries so bsearch result is predictable.
2372 Also discard leftovers from --gc-sections. */
be391dca 2373 fde_table2->num_entries = 0;
875cdfbb
PA
2374 for (i = 0; i < fde_table.num_entries; i++)
2375 {
2376 struct dwarf2_fde *fde = fde_table.entries[i];
2377
2378 if (fde->initial_location == 0
2379 && first_non_zero_fde != NULL
2380 && (first_non_zero_fde->initial_location
2381 < fde->initial_location + fde->address_range))
2382 continue;
2383
2384 if (fde_prev != NULL
2385 && fde_prev->initial_location == fde->initial_location)
2386 continue;
2387
2388 obstack_grow (&objfile->objfile_obstack, &fde_table.entries[i],
2389 sizeof (fde_table.entries[0]));
2390 ++fde_table2->num_entries;
2391 fde_prev = fde;
2392 }
224c3ddb
SM
2393 fde_table2->entries
2394 = (struct dwarf2_fde **) obstack_finish (&objfile->objfile_obstack);
b01c8410
PP
2395
2396 /* Discard the original fde_table. */
2397 xfree (fde_table.entries);
cfc14b3a 2398 }
be391dca
TT
2399
2400 set_objfile_data (objfile, dwarf2_frame_objfile_data, fde_table2);
cfc14b3a 2401}
0d0e1a63 2402
3c3bb058
AB
2403/* Handle 'maintenance show dwarf unwinders'. */
2404
2405static void
2406show_dwarf_unwinders_enabled_p (struct ui_file *file, int from_tty,
2407 struct cmd_list_element *c,
2408 const char *value)
2409{
2410 fprintf_filtered (file,
2411 _("The DWARF stack unwinders are currently %s.\n"),
2412 value);
2413}
2414
0d0e1a63
MK
2415void
2416_initialize_dwarf2_frame (void)
2417{
030f20e1 2418 dwarf2_frame_data = gdbarch_data_register_pre_init (dwarf2_frame_init);
8f22cb90 2419 dwarf2_frame_objfile_data = register_objfile_data ();
1c90d9f0 2420
3c3bb058
AB
2421 add_setshow_boolean_cmd ("unwinders", class_obscure,
2422 &dwarf2_frame_unwinders_enabled_p , _("\
2423Set whether the DWARF stack frame unwinders are used."), _("\
2424Show whether the DWARF stack frame unwinders are used."), _("\
2425When enabled the DWARF stack frame unwinders can be used for architectures\n\
2426that support the DWARF unwinders. Enabling the DWARF unwinders for an\n\
2427architecture that doesn't support them will have no effect."),
2428 NULL,
2429 show_dwarf_unwinders_enabled_p,
2430 &set_dwarf_cmdlist,
2431 &show_dwarf_cmdlist);
2432
1c90d9f0 2433#if GDB_SELF_TEST
1526853e
SM
2434 selftests::register_test_foreach_arch ("execute_cfa_program",
2435 selftests::execute_cfa_program_test);
1c90d9f0 2436#endif
0d0e1a63 2437}