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18ca7dab 1/* Subroutines for manipulating rtx's in semantically interesting ways.
ef58a523 2 Copyright (C) 1987, 1991, 1994, 1995, 1996, 1997, 1998,
7458026b 3 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010
71d59383 4 Free Software Foundation, Inc.
18ca7dab 5
1322177d 6This file is part of GCC.
18ca7dab 7
1322177d
LB
8GCC is free software; you can redistribute it and/or modify it under
9the terms of the GNU General Public License as published by the Free
9dcd6f09 10Software Foundation; either version 3, or (at your option) any later
1322177d 11version.
18ca7dab 12
1322177d
LB
13GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14WARRANTY; without even the implied warranty of MERCHANTABILITY or
15FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16for more details.
18ca7dab
RK
17
18You should have received a copy of the GNU General Public License
9dcd6f09
NC
19along with GCC; see the file COPYING3. If not see
20<http://www.gnu.org/licenses/>. */
18ca7dab
RK
21
22
23#include "config.h"
670ee920 24#include "system.h"
4977bab6
ZW
25#include "coretypes.h"
26#include "tm.h"
718f9c0f 27#include "diagnostic-core.h"
18ca7dab
RK
28#include "rtl.h"
29#include "tree.h"
6baf1cc8 30#include "tm_p.h"
18ca7dab 31#include "flags.h"
b38f3813 32#include "except.h"
49ad7cfa 33#include "function.h"
18ca7dab 34#include "expr.h"
e78d8e51 35#include "optabs.h"
d477d1fe 36#include "libfuncs.h"
18ca7dab
RK
37#include "hard-reg-set.h"
38#include "insn-config.h"
1d974ca7 39#include "ggc.h"
18ca7dab 40#include "recog.h"
a77a9a18 41#include "langhooks.h"
1d636cc6 42#include "target.h"
aacd3885 43#include "output.h"
18ca7dab 44
502b8322 45static rtx break_out_memory_refs (rtx);
7e4ce834
RH
46
47
48/* Truncate and perhaps sign-extend C as appropriate for MODE. */
49
50HOST_WIDE_INT
502b8322 51trunc_int_for_mode (HOST_WIDE_INT c, enum machine_mode mode)
7e4ce834
RH
52{
53 int width = GET_MODE_BITSIZE (mode);
54
71012d97 55 /* You want to truncate to a _what_? */
5b0264cb 56 gcc_assert (SCALAR_INT_MODE_P (mode));
71012d97 57
1f3f36d1
RH
58 /* Canonicalize BImode to 0 and STORE_FLAG_VALUE. */
59 if (mode == BImode)
60 return c & 1 ? STORE_FLAG_VALUE : 0;
61
5b0d91c3
AO
62 /* Sign-extend for the requested mode. */
63
64 if (width < HOST_BITS_PER_WIDE_INT)
65 {
66 HOST_WIDE_INT sign = 1;
67 sign <<= width - 1;
68 c &= (sign << 1) - 1;
69 c ^= sign;
70 c -= sign;
71 }
7e4ce834
RH
72
73 return c;
74}
75
3e95a7cb 76/* Return an rtx for the sum of X and the integer C. */
18ca7dab
RK
77
78rtx
3e95a7cb 79plus_constant (rtx x, HOST_WIDE_INT c)
18ca7dab 80{
b3694847 81 RTX_CODE code;
17ab7c59 82 rtx y;
b3694847
SS
83 enum machine_mode mode;
84 rtx tem;
18ca7dab
RK
85 int all_constant = 0;
86
87 if (c == 0)
88 return x;
89
90 restart:
91
92 code = GET_CODE (x);
93 mode = GET_MODE (x);
17ab7c59
RK
94 y = x;
95
18ca7dab
RK
96 switch (code)
97 {
98 case CONST_INT:
b1ec3c92 99 return GEN_INT (INTVAL (x) + c);
18ca7dab
RK
100
101 case CONST_DOUBLE:
102 {
f9e158c3 103 unsigned HOST_WIDE_INT l1 = CONST_DOUBLE_LOW (x);
b1ec3c92 104 HOST_WIDE_INT h1 = CONST_DOUBLE_HIGH (x);
f9e158c3 105 unsigned HOST_WIDE_INT l2 = c;
b1ec3c92 106 HOST_WIDE_INT h2 = c < 0 ? ~0 : 0;
f9e158c3
JM
107 unsigned HOST_WIDE_INT lv;
108 HOST_WIDE_INT hv;
18ca7dab
RK
109
110 add_double (l1, h1, l2, h2, &lv, &hv);
111
112 return immed_double_const (lv, hv, VOIDmode);
113 }
114
115 case MEM:
116 /* If this is a reference to the constant pool, try replacing it with
117 a reference to a new constant. If the resulting address isn't
118 valid, don't return it because we have no way to validize it. */
119 if (GET_CODE (XEXP (x, 0)) == SYMBOL_REF
120 && CONSTANT_POOL_ADDRESS_P (XEXP (x, 0)))
121 {
122 tem
123 = force_const_mem (GET_MODE (x),
124 plus_constant (get_pool_constant (XEXP (x, 0)),
125 c));
126 if (memory_address_p (GET_MODE (tem), XEXP (tem, 0)))
127 return tem;
128 }
129 break;
130
131 case CONST:
132 /* If adding to something entirely constant, set a flag
133 so that we can add a CONST around the result. */
134 x = XEXP (x, 0);
135 all_constant = 1;
136 goto restart;
137
138 case SYMBOL_REF:
139 case LABEL_REF:
140 all_constant = 1;
141 break;
142
143 case PLUS:
144 /* The interesting case is adding the integer to a sum.
145 Look for constant term in the sum and combine
146 with C. For an integer constant term, we make a combined
147 integer. For a constant term that is not an explicit integer,
d9b3eb63 148 we cannot really combine, but group them together anyway.
e5671f2b 149
03d937fc
R
150 Restart or use a recursive call in case the remaining operand is
151 something that we handle specially, such as a SYMBOL_REF.
152
153 We may not immediately return from the recursive call here, lest
154 all_constant gets lost. */
e5671f2b 155
481683e1 156 if (CONST_INT_P (XEXP (x, 1)))
03d937fc
R
157 {
158 c += INTVAL (XEXP (x, 1));
7e4ce834
RH
159
160 if (GET_MODE (x) != VOIDmode)
161 c = trunc_int_for_mode (c, GET_MODE (x));
162
03d937fc
R
163 x = XEXP (x, 0);
164 goto restart;
165 }
b72f00af 166 else if (CONSTANT_P (XEXP (x, 1)))
03d937fc 167 {
b72f00af 168 x = gen_rtx_PLUS (mode, XEXP (x, 0), plus_constant (XEXP (x, 1), c));
03d937fc
R
169 c = 0;
170 }
b72f00af 171 else if (find_constant_term_loc (&y))
03d937fc 172 {
b72f00af
RK
173 /* We need to be careful since X may be shared and we can't
174 modify it in place. */
175 rtx copy = copy_rtx (x);
176 rtx *const_loc = find_constant_term_loc (&copy);
177
178 *const_loc = plus_constant (*const_loc, c);
179 x = copy;
03d937fc
R
180 c = 0;
181 }
38a448ca 182 break;
ed8908e7 183
38a448ca
RH
184 default:
185 break;
18ca7dab
RK
186 }
187
188 if (c != 0)
38a448ca 189 x = gen_rtx_PLUS (mode, x, GEN_INT (c));
18ca7dab
RK
190
191 if (GET_CODE (x) == SYMBOL_REF || GET_CODE (x) == LABEL_REF)
192 return x;
193 else if (all_constant)
38a448ca 194 return gen_rtx_CONST (mode, x);
18ca7dab
RK
195 else
196 return x;
197}
18ca7dab
RK
198\f
199/* If X is a sum, return a new sum like X but lacking any constant terms.
200 Add all the removed constant terms into *CONSTPTR.
201 X itself is not altered. The result != X if and only if
202 it is not isomorphic to X. */
203
204rtx
502b8322 205eliminate_constant_term (rtx x, rtx *constptr)
18ca7dab 206{
b3694847 207 rtx x0, x1;
18ca7dab
RK
208 rtx tem;
209
210 if (GET_CODE (x) != PLUS)
211 return x;
212
213 /* First handle constants appearing at this level explicitly. */
481683e1 214 if (CONST_INT_P (XEXP (x, 1))
18ca7dab
RK
215 && 0 != (tem = simplify_binary_operation (PLUS, GET_MODE (x), *constptr,
216 XEXP (x, 1)))
481683e1 217 && CONST_INT_P (tem))
18ca7dab
RK
218 {
219 *constptr = tem;
220 return eliminate_constant_term (XEXP (x, 0), constptr);
221 }
222
223 tem = const0_rtx;
224 x0 = eliminate_constant_term (XEXP (x, 0), &tem);
225 x1 = eliminate_constant_term (XEXP (x, 1), &tem);
226 if ((x1 != XEXP (x, 1) || x0 != XEXP (x, 0))
227 && 0 != (tem = simplify_binary_operation (PLUS, GET_MODE (x),
228 *constptr, tem))
481683e1 229 && CONST_INT_P (tem))
18ca7dab
RK
230 {
231 *constptr = tem;
38a448ca 232 return gen_rtx_PLUS (GET_MODE (x), x0, x1);
18ca7dab
RK
233 }
234
235 return x;
236}
237
18ca7dab
RK
238/* Return an rtx for the size in bytes of the value of EXP. */
239
240rtx
502b8322 241expr_size (tree exp)
18ca7dab 242{
d25cee4d
RH
243 tree size;
244
245 if (TREE_CODE (exp) == WITH_SIZE_EXPR)
246 size = TREE_OPERAND (exp, 1);
247 else
26979bc2 248 {
71c00b5c 249 size = tree_expr_size (exp);
26979bc2 250 gcc_assert (size);
2ec5deb5 251 gcc_assert (size == SUBSTITUTE_PLACEHOLDER_IN_EXPR (size, exp));
26979bc2 252 }
99098c66 253
49452c07 254 return expand_expr (size, NULL_RTX, TYPE_MODE (sizetype), EXPAND_NORMAL);
18ca7dab 255}
de8920be
JM
256
257/* Return a wide integer for the size in bytes of the value of EXP, or -1
258 if the size can vary or is larger than an integer. */
259
260HOST_WIDE_INT
502b8322 261int_expr_size (tree exp)
de8920be 262{
d25cee4d
RH
263 tree size;
264
265 if (TREE_CODE (exp) == WITH_SIZE_EXPR)
266 size = TREE_OPERAND (exp, 1);
267 else
26979bc2 268 {
71c00b5c 269 size = tree_expr_size (exp);
26979bc2
JH
270 gcc_assert (size);
271 }
d25cee4d
RH
272
273 if (size == 0 || !host_integerp (size, 0))
de8920be
JM
274 return -1;
275
d25cee4d 276 return tree_low_cst (size, 0);
de8920be 277}
18ca7dab
RK
278\f
279/* Return a copy of X in which all memory references
280 and all constants that involve symbol refs
281 have been replaced with new temporary registers.
282 Also emit code to load the memory locations and constants
283 into those registers.
284
285 If X contains no such constants or memory references,
286 X itself (not a copy) is returned.
287
288 If a constant is found in the address that is not a legitimate constant
289 in an insn, it is left alone in the hope that it might be valid in the
290 address.
291
292 X may contain no arithmetic except addition, subtraction and multiplication.
293 Values returned by expand_expr with 1 for sum_ok fit this constraint. */
294
295static rtx
502b8322 296break_out_memory_refs (rtx x)
18ca7dab 297{
3c0cb5de 298 if (MEM_P (x)
cabeca29 299 || (CONSTANT_P (x) && CONSTANT_ADDRESS_P (x)
18ca7dab 300 && GET_MODE (x) != VOIDmode))
2cca6e3f 301 x = force_reg (GET_MODE (x), x);
18ca7dab
RK
302 else if (GET_CODE (x) == PLUS || GET_CODE (x) == MINUS
303 || GET_CODE (x) == MULT)
304 {
b3694847
SS
305 rtx op0 = break_out_memory_refs (XEXP (x, 0));
306 rtx op1 = break_out_memory_refs (XEXP (x, 1));
2cca6e3f 307
18ca7dab 308 if (op0 != XEXP (x, 0) || op1 != XEXP (x, 1))
d4ebfa65 309 x = simplify_gen_binary (GET_CODE (x), GET_MODE (x), op0, op1);
18ca7dab 310 }
2cca6e3f 311
18ca7dab
RK
312 return x;
313}
314
d4ebfa65
BE
315/* Given X, a memory address in address space AS' pointer mode, convert it to
316 an address in the address space's address mode, or vice versa (TO_MODE says
317 which way). We take advantage of the fact that pointers are not allowed to
318 overflow by commuting arithmetic operations over conversions so that address
319 arithmetic insns can be used. */
ea534b63 320
498b529f 321rtx
d4ebfa65
BE
322convert_memory_address_addr_space (enum machine_mode to_mode ATTRIBUTE_UNUSED,
323 rtx x, addr_space_t as ATTRIBUTE_UNUSED)
ea534b63 324{
5ae6cd0d 325#ifndef POINTERS_EXTEND_UNSIGNED
7c137931 326 gcc_assert (GET_MODE (x) == to_mode || GET_MODE (x) == VOIDmode);
5ae6cd0d
MM
327 return x;
328#else /* defined(POINTERS_EXTEND_UNSIGNED) */
d4ebfa65 329 enum machine_mode pointer_mode, address_mode, from_mode;
498b529f 330 rtx temp;
aa0f70e6 331 enum rtx_code code;
498b529f 332
5ae6cd0d
MM
333 /* If X already has the right mode, just return it. */
334 if (GET_MODE (x) == to_mode)
335 return x;
336
d4ebfa65
BE
337 pointer_mode = targetm.addr_space.pointer_mode (as);
338 address_mode = targetm.addr_space.address_mode (as);
339 from_mode = to_mode == pointer_mode ? address_mode : pointer_mode;
5ae6cd0d 340
0b04ec8c
RK
341 /* Here we handle some special cases. If none of them apply, fall through
342 to the default case. */
ea534b63
RK
343 switch (GET_CODE (x))
344 {
345 case CONST_INT:
346 case CONST_DOUBLE:
aa0f70e6
SE
347 if (GET_MODE_SIZE (to_mode) < GET_MODE_SIZE (from_mode))
348 code = TRUNCATE;
349 else if (POINTERS_EXTEND_UNSIGNED < 0)
350 break;
351 else if (POINTERS_EXTEND_UNSIGNED > 0)
352 code = ZERO_EXTEND;
353 else
354 code = SIGN_EXTEND;
355 temp = simplify_unary_operation (code, to_mode, x, from_mode);
356 if (temp)
357 return temp;
358 break;
498b529f 359
d1405722 360 case SUBREG:
5da4f548 361 if ((SUBREG_PROMOTED_VAR_P (x) || REG_POINTER (SUBREG_REG (x)))
6dd12198 362 && GET_MODE (SUBREG_REG (x)) == to_mode)
d1405722
RK
363 return SUBREG_REG (x);
364 break;
365
ea534b63 366 case LABEL_REF:
5da4f548
SE
367 temp = gen_rtx_LABEL_REF (to_mode, XEXP (x, 0));
368 LABEL_REF_NONLOCAL_P (temp) = LABEL_REF_NONLOCAL_P (x);
369 return temp;
6dd12198 370 break;
498b529f 371
ea534b63 372 case SYMBOL_REF:
ce02ba25
EC
373 temp = shallow_copy_rtx (x);
374 PUT_MODE (temp, to_mode);
5da4f548 375 return temp;
6dd12198 376 break;
ea534b63 377
498b529f 378 case CONST:
5da4f548 379 return gen_rtx_CONST (to_mode,
d4ebfa65
BE
380 convert_memory_address_addr_space
381 (to_mode, XEXP (x, 0), as));
6dd12198 382 break;
ea534b63 383
0b04ec8c
RK
384 case PLUS:
385 case MULT:
aa0f70e6
SE
386 /* For addition we can safely permute the conversion and addition
387 operation if one operand is a constant and converting the constant
17939c98
SE
388 does not change it or if one operand is a constant and we are
389 using a ptr_extend instruction (POINTERS_EXTEND_UNSIGNED < 0).
390 We can always safely permute them if we are making the address
391 narrower. */
aa0f70e6
SE
392 if (GET_MODE_SIZE (to_mode) < GET_MODE_SIZE (from_mode)
393 || (GET_CODE (x) == PLUS
481683e1 394 && CONST_INT_P (XEXP (x, 1))
d4ebfa65
BE
395 && (XEXP (x, 1) == convert_memory_address_addr_space
396 (to_mode, XEXP (x, 1), as)
17939c98 397 || POINTERS_EXTEND_UNSIGNED < 0)))
d9b3eb63 398 return gen_rtx_fmt_ee (GET_CODE (x), to_mode,
d4ebfa65
BE
399 convert_memory_address_addr_space
400 (to_mode, XEXP (x, 0), as),
aa0f70e6 401 XEXP (x, 1));
38a448ca 402 break;
d9b3eb63 403
38a448ca
RH
404 default:
405 break;
ea534b63 406 }
0b04ec8c
RK
407
408 return convert_modes (to_mode, from_mode,
409 x, POINTERS_EXTEND_UNSIGNED);
5ae6cd0d 410#endif /* defined(POINTERS_EXTEND_UNSIGNED) */
ea534b63 411}
18ca7dab 412\f
09e881c9
BE
413/* Return something equivalent to X but valid as a memory address for something
414 of mode MODE in the named address space AS. When X is not itself valid,
415 this works by copying X or subexpressions of it into registers. */
18ca7dab
RK
416
417rtx
09e881c9 418memory_address_addr_space (enum machine_mode mode, rtx x, addr_space_t as)
18ca7dab 419{
b3694847 420 rtx oldx = x;
d4ebfa65 421 enum machine_mode address_mode = targetm.addr_space.address_mode (as);
18ca7dab 422
d4ebfa65 423 x = convert_memory_address_addr_space (address_mode, x, as);
ea534b63 424
ba228239 425 /* By passing constant addresses through registers
18ca7dab 426 we get a chance to cse them. */
cabeca29 427 if (! cse_not_expected && CONSTANT_P (x) && CONSTANT_ADDRESS_P (x))
d4ebfa65 428 x = force_reg (address_mode, x);
18ca7dab 429
18ca7dab
RK
430 /* We get better cse by rejecting indirect addressing at this stage.
431 Let the combiner create indirect addresses where appropriate.
432 For now, generate the code so that the subexpressions useful to share
433 are visible. But not if cse won't be done! */
18b9ca6f 434 else
18ca7dab 435 {
f8cfc6aa 436 if (! cse_not_expected && !REG_P (x))
18b9ca6f
RK
437 x = break_out_memory_refs (x);
438
439 /* At this point, any valid address is accepted. */
09e881c9 440 if (memory_address_addr_space_p (mode, x, as))
3de5e93a 441 goto done;
18b9ca6f
RK
442
443 /* If it was valid before but breaking out memory refs invalidated it,
444 use it the old way. */
09e881c9 445 if (memory_address_addr_space_p (mode, oldx, as))
3de5e93a
SB
446 {
447 x = oldx;
448 goto done;
449 }
18b9ca6f
RK
450
451 /* Perform machine-dependent transformations on X
452 in certain cases. This is not necessary since the code
453 below can handle all possible cases, but machine-dependent
454 transformations can make better code. */
506d7b68 455 {
09e881c9
BE
456 rtx orig_x = x;
457 x = targetm.addr_space.legitimize_address (x, oldx, mode, as);
458 if (orig_x != x && memory_address_addr_space_p (mode, x, as))
506d7b68
PB
459 goto done;
460 }
18b9ca6f
RK
461
462 /* PLUS and MULT can appear in special ways
463 as the result of attempts to make an address usable for indexing.
464 Usually they are dealt with by calling force_operand, below.
465 But a sum containing constant terms is special
466 if removing them makes the sum a valid address:
467 then we generate that address in a register
468 and index off of it. We do this because it often makes
469 shorter code, and because the addresses thus generated
470 in registers often become common subexpressions. */
471 if (GET_CODE (x) == PLUS)
472 {
473 rtx constant_term = const0_rtx;
474 rtx y = eliminate_constant_term (x, &constant_term);
475 if (constant_term == const0_rtx
09e881c9 476 || ! memory_address_addr_space_p (mode, y, as))
18b9ca6f
RK
477 x = force_operand (x, NULL_RTX);
478 else
479 {
38a448ca 480 y = gen_rtx_PLUS (GET_MODE (x), copy_to_reg (y), constant_term);
09e881c9 481 if (! memory_address_addr_space_p (mode, y, as))
18b9ca6f
RK
482 x = force_operand (x, NULL_RTX);
483 else
484 x = y;
485 }
486 }
18ca7dab 487
e475ed2a 488 else if (GET_CODE (x) == MULT || GET_CODE (x) == MINUS)
18b9ca6f 489 x = force_operand (x, NULL_RTX);
18ca7dab 490
18b9ca6f
RK
491 /* If we have a register that's an invalid address,
492 it must be a hard reg of the wrong class. Copy it to a pseudo. */
f8cfc6aa 493 else if (REG_P (x))
18b9ca6f
RK
494 x = copy_to_reg (x);
495
496 /* Last resort: copy the value to a register, since
497 the register is a valid address. */
498 else
d4ebfa65 499 x = force_reg (address_mode, x);
18ca7dab 500 }
18b9ca6f
RK
501
502 done:
503
09e881c9 504 gcc_assert (memory_address_addr_space_p (mode, x, as));
2cca6e3f
RK
505 /* If we didn't change the address, we are done. Otherwise, mark
506 a reg as a pointer if we have REG or REG + CONST_INT. */
507 if (oldx == x)
508 return x;
f8cfc6aa 509 else if (REG_P (x))
bdb429a5 510 mark_reg_pointer (x, BITS_PER_UNIT);
2cca6e3f 511 else if (GET_CODE (x) == PLUS
f8cfc6aa 512 && REG_P (XEXP (x, 0))
481683e1 513 && CONST_INT_P (XEXP (x, 1)))
bdb429a5 514 mark_reg_pointer (XEXP (x, 0), BITS_PER_UNIT);
2cca6e3f 515
18b9ca6f
RK
516 /* OLDX may have been the address on a temporary. Update the address
517 to indicate that X is now used. */
518 update_temp_slot_address (oldx, x);
519
18ca7dab
RK
520 return x;
521}
522
18ca7dab
RK
523/* Convert a mem ref into one with a valid memory address.
524 Pass through anything else unchanged. */
525
526rtx
502b8322 527validize_mem (rtx ref)
18ca7dab 528{
3c0cb5de 529 if (!MEM_P (ref))
18ca7dab 530 return ref;
aacd3885 531 ref = use_anchored_address (ref);
09e881c9
BE
532 if (memory_address_addr_space_p (GET_MODE (ref), XEXP (ref, 0),
533 MEM_ADDR_SPACE (ref)))
18ca7dab 534 return ref;
792760b9 535
18ca7dab 536 /* Don't alter REF itself, since that is probably a stack slot. */
792760b9 537 return replace_equiv_address (ref, XEXP (ref, 0));
18ca7dab 538}
aacd3885
RS
539
540/* If X is a memory reference to a member of an object block, try rewriting
541 it to use an anchor instead. Return the new memory reference on success
542 and the old one on failure. */
543
544rtx
545use_anchored_address (rtx x)
546{
547 rtx base;
548 HOST_WIDE_INT offset;
549
550 if (!flag_section_anchors)
551 return x;
552
553 if (!MEM_P (x))
554 return x;
555
556 /* Split the address into a base and offset. */
557 base = XEXP (x, 0);
558 offset = 0;
559 if (GET_CODE (base) == CONST
560 && GET_CODE (XEXP (base, 0)) == PLUS
481683e1 561 && CONST_INT_P (XEXP (XEXP (base, 0), 1)))
aacd3885
RS
562 {
563 offset += INTVAL (XEXP (XEXP (base, 0), 1));
564 base = XEXP (XEXP (base, 0), 0);
565 }
566
567 /* Check whether BASE is suitable for anchors. */
568 if (GET_CODE (base) != SYMBOL_REF
3fa9c136 569 || !SYMBOL_REF_HAS_BLOCK_INFO_P (base)
aacd3885 570 || SYMBOL_REF_ANCHOR_P (base)
434aeebb 571 || SYMBOL_REF_BLOCK (base) == NULL
aacd3885
RS
572 || !targetm.use_anchors_for_symbol_p (base))
573 return x;
574
575 /* Decide where BASE is going to be. */
576 place_block_symbol (base);
577
578 /* Get the anchor we need to use. */
579 offset += SYMBOL_REF_BLOCK_OFFSET (base);
580 base = get_section_anchor (SYMBOL_REF_BLOCK (base), offset,
581 SYMBOL_REF_TLS_MODEL (base));
582
583 /* Work out the offset from the anchor. */
584 offset -= SYMBOL_REF_BLOCK_OFFSET (base);
585
586 /* If we're going to run a CSE pass, force the anchor into a register.
587 We will then be able to reuse registers for several accesses, if the
588 target costs say that that's worthwhile. */
589 if (!cse_not_expected)
590 base = force_reg (GET_MODE (base), base);
591
592 return replace_equiv_address (x, plus_constant (base, offset));
593}
18ca7dab 594\f
18ca7dab
RK
595/* Copy the value or contents of X to a new temp reg and return that reg. */
596
597rtx
502b8322 598copy_to_reg (rtx x)
18ca7dab 599{
b3694847 600 rtx temp = gen_reg_rtx (GET_MODE (x));
d9b3eb63 601
18ca7dab 602 /* If not an operand, must be an address with PLUS and MULT so
d9b3eb63 603 do the computation. */
18ca7dab
RK
604 if (! general_operand (x, VOIDmode))
605 x = force_operand (x, temp);
d9b3eb63 606
18ca7dab
RK
607 if (x != temp)
608 emit_move_insn (temp, x);
609
610 return temp;
611}
612
613/* Like copy_to_reg but always give the new register mode Pmode
614 in case X is a constant. */
615
616rtx
502b8322 617copy_addr_to_reg (rtx x)
18ca7dab
RK
618{
619 return copy_to_mode_reg (Pmode, x);
620}
621
622/* Like copy_to_reg but always give the new register mode MODE
623 in case X is a constant. */
624
625rtx
502b8322 626copy_to_mode_reg (enum machine_mode mode, rtx x)
18ca7dab 627{
b3694847 628 rtx temp = gen_reg_rtx (mode);
d9b3eb63 629
18ca7dab 630 /* If not an operand, must be an address with PLUS and MULT so
d9b3eb63 631 do the computation. */
18ca7dab
RK
632 if (! general_operand (x, VOIDmode))
633 x = force_operand (x, temp);
634
5b0264cb 635 gcc_assert (GET_MODE (x) == mode || GET_MODE (x) == VOIDmode);
18ca7dab
RK
636 if (x != temp)
637 emit_move_insn (temp, x);
638 return temp;
639}
640
641/* Load X into a register if it is not already one.
642 Use mode MODE for the register.
643 X should be valid for mode MODE, but it may be a constant which
644 is valid for all integer modes; that's why caller must specify MODE.
645
646 The caller must not alter the value in the register we return,
647 since we mark it as a "constant" register. */
648
649rtx
502b8322 650force_reg (enum machine_mode mode, rtx x)
18ca7dab 651{
b3694847 652 rtx temp, insn, set;
18ca7dab 653
f8cfc6aa 654 if (REG_P (x))
18ca7dab 655 return x;
d9b3eb63 656
e3c8ea67
RH
657 if (general_operand (x, mode))
658 {
659 temp = gen_reg_rtx (mode);
660 insn = emit_move_insn (temp, x);
661 }
662 else
663 {
664 temp = force_operand (x, NULL_RTX);
f8cfc6aa 665 if (REG_P (temp))
e3c8ea67
RH
666 insn = get_last_insn ();
667 else
668 {
669 rtx temp2 = gen_reg_rtx (mode);
670 insn = emit_move_insn (temp2, temp);
671 temp = temp2;
672 }
673 }
62874575 674
18ca7dab 675 /* Let optimizers know that TEMP's value never changes
62874575
RK
676 and that X can be substituted for it. Don't get confused
677 if INSN set something else (such as a SUBREG of TEMP). */
678 if (CONSTANT_P (x)
679 && (set = single_set (insn)) != 0
fd7acc30
RS
680 && SET_DEST (set) == temp
681 && ! rtx_equal_p (x, SET_SRC (set)))
3d238248 682 set_unique_reg_note (insn, REG_EQUAL, x);
e3c8ea67 683
4a4f95d9
RH
684 /* Let optimizers know that TEMP is a pointer, and if so, the
685 known alignment of that pointer. */
686 {
687 unsigned align = 0;
688 if (GET_CODE (x) == SYMBOL_REF)
689 {
690 align = BITS_PER_UNIT;
691 if (SYMBOL_REF_DECL (x) && DECL_P (SYMBOL_REF_DECL (x)))
692 align = DECL_ALIGN (SYMBOL_REF_DECL (x));
693 }
694 else if (GET_CODE (x) == LABEL_REF)
695 align = BITS_PER_UNIT;
696 else if (GET_CODE (x) == CONST
697 && GET_CODE (XEXP (x, 0)) == PLUS
698 && GET_CODE (XEXP (XEXP (x, 0), 0)) == SYMBOL_REF
481683e1 699 && CONST_INT_P (XEXP (XEXP (x, 0), 1)))
4a4f95d9
RH
700 {
701 rtx s = XEXP (XEXP (x, 0), 0);
702 rtx c = XEXP (XEXP (x, 0), 1);
703 unsigned sa, ca;
704
705 sa = BITS_PER_UNIT;
706 if (SYMBOL_REF_DECL (s) && DECL_P (SYMBOL_REF_DECL (s)))
707 sa = DECL_ALIGN (SYMBOL_REF_DECL (s));
708
bd95721f
RH
709 if (INTVAL (c) == 0)
710 align = sa;
711 else
712 {
713 ca = ctz_hwi (INTVAL (c)) * BITS_PER_UNIT;
714 align = MIN (sa, ca);
715 }
4a4f95d9
RH
716 }
717
0a317111 718 if (align || (MEM_P (x) && MEM_POINTER (x)))
4a4f95d9
RH
719 mark_reg_pointer (temp, align);
720 }
721
18ca7dab
RK
722 return temp;
723}
724
725/* If X is a memory ref, copy its contents to a new temp reg and return
726 that reg. Otherwise, return X. */
727
728rtx
502b8322 729force_not_mem (rtx x)
18ca7dab 730{
b3694847 731 rtx temp;
fe3439b0 732
3c0cb5de 733 if (!MEM_P (x) || GET_MODE (x) == BLKmode)
18ca7dab 734 return x;
fe3439b0 735
18ca7dab 736 temp = gen_reg_rtx (GET_MODE (x));
f8ad8d7c
ZD
737
738 if (MEM_POINTER (x))
739 REG_POINTER (temp) = 1;
740
18ca7dab
RK
741 emit_move_insn (temp, x);
742 return temp;
743}
744
745/* Copy X to TARGET (if it's nonzero and a reg)
746 or to a new temp reg and return that reg.
747 MODE is the mode to use for X in case it is a constant. */
748
749rtx
502b8322 750copy_to_suggested_reg (rtx x, rtx target, enum machine_mode mode)
18ca7dab 751{
b3694847 752 rtx temp;
18ca7dab 753
f8cfc6aa 754 if (target && REG_P (target))
18ca7dab
RK
755 temp = target;
756 else
757 temp = gen_reg_rtx (mode);
758
759 emit_move_insn (temp, x);
760 return temp;
761}
762\f
cde0f3fd 763/* Return the mode to use to pass or return a scalar of TYPE and MODE.
9ff65789
RK
764 PUNSIGNEDP points to the signedness of the type and may be adjusted
765 to show what signedness to use on extension operations.
766
cde0f3fd
PB
767 FOR_RETURN is nonzero if the caller is promoting the return value
768 of FNDECL, else it is for promoting args. */
9ff65789 769
cde0f3fd
PB
770enum machine_mode
771promote_function_mode (const_tree type, enum machine_mode mode, int *punsignedp,
772 const_tree funtype, int for_return)
773{
cde0f3fd
PB
774 switch (TREE_CODE (type))
775 {
776 case INTEGER_TYPE: case ENUMERAL_TYPE: case BOOLEAN_TYPE:
777 case REAL_TYPE: case OFFSET_TYPE: case FIXED_POINT_TYPE:
778 case POINTER_TYPE: case REFERENCE_TYPE:
779 return targetm.calls.promote_function_mode (type, mode, punsignedp, funtype,
780 for_return);
781
782 default:
783 return mode;
784 }
785}
786/* Return the mode to use to store a scalar of TYPE and MODE.
787 PUNSIGNEDP points to the signedness of the type and may be adjusted
788 to show what signedness to use on extension operations. */
d4453b7a 789
9ff65789 790enum machine_mode
b1680483
AK
791promote_mode (const_tree type ATTRIBUTE_UNUSED, enum machine_mode mode,
792 int *punsignedp ATTRIBUTE_UNUSED)
9ff65789 793{
cde0f3fd
PB
794 /* FIXME: this is the same logic that was there until GCC 4.4, but we
795 probably want to test POINTERS_EXTEND_UNSIGNED even if PROMOTE_MODE
796 is not defined. The affected targets are M32C, S390, SPARC. */
797#ifdef PROMOTE_MODE
586de218 798 const enum tree_code code = TREE_CODE (type);
9ff65789
RK
799 int unsignedp = *punsignedp;
800
9ff65789
RK
801 switch (code)
802 {
9ff65789 803 case INTEGER_TYPE: case ENUMERAL_TYPE: case BOOLEAN_TYPE:
325217ed 804 case REAL_TYPE: case OFFSET_TYPE: case FIXED_POINT_TYPE:
cde0f3fd
PB
805 PROMOTE_MODE (mode, unsignedp, type);
806 *punsignedp = unsignedp;
807 return mode;
9ff65789 808 break;
9ff65789 809
ea534b63 810#ifdef POINTERS_EXTEND_UNSIGNED
56a4c9e2 811 case REFERENCE_TYPE:
9ff65789 812 case POINTER_TYPE:
cde0f3fd 813 *punsignedp = POINTERS_EXTEND_UNSIGNED;
d4ebfa65
BE
814 return targetm.addr_space.address_mode
815 (TYPE_ADDR_SPACE (TREE_TYPE (type)));
9ff65789 816 break;
ea534b63 817#endif
d9b3eb63 818
38a448ca 819 default:
cde0f3fd 820 return mode;
9ff65789 821 }
cde0f3fd 822#else
9ff65789 823 return mode;
cde0f3fd 824#endif
9ff65789 825}
cde0f3fd
PB
826
827
828/* Use one of promote_mode or promote_function_mode to find the promoted
829 mode of DECL. If PUNSIGNEDP is not NULL, store there the unsignedness
830 of DECL after promotion. */
831
832enum machine_mode
833promote_decl_mode (const_tree decl, int *punsignedp)
834{
835 tree type = TREE_TYPE (decl);
836 int unsignedp = TYPE_UNSIGNED (type);
837 enum machine_mode mode = DECL_MODE (decl);
838 enum machine_mode pmode;
839
666e3ceb
PB
840 if (TREE_CODE (decl) == RESULT_DECL
841 || TREE_CODE (decl) == PARM_DECL)
cde0f3fd 842 pmode = promote_function_mode (type, mode, &unsignedp,
666e3ceb 843 TREE_TYPE (current_function_decl), 2);
cde0f3fd
PB
844 else
845 pmode = promote_mode (type, mode, &unsignedp);
846
847 if (punsignedp)
848 *punsignedp = unsignedp;
849 return pmode;
850}
851
9ff65789 852\f
18ca7dab
RK
853/* Adjust the stack pointer by ADJUST (an rtx for a number of bytes).
854 This pops when ADJUST is positive. ADJUST need not be constant. */
855
856void
502b8322 857adjust_stack (rtx adjust)
18ca7dab
RK
858{
859 rtx temp;
18ca7dab
RK
860
861 if (adjust == const0_rtx)
862 return;
863
1503a7ec
JH
864 /* We expect all variable sized adjustments to be multiple of
865 PREFERRED_STACK_BOUNDARY. */
481683e1 866 if (CONST_INT_P (adjust))
1503a7ec
JH
867 stack_pointer_delta -= INTVAL (adjust);
868
18ca7dab
RK
869 temp = expand_binop (Pmode,
870#ifdef STACK_GROWS_DOWNWARD
871 add_optab,
872#else
873 sub_optab,
874#endif
875 stack_pointer_rtx, adjust, stack_pointer_rtx, 0,
876 OPTAB_LIB_WIDEN);
877
878 if (temp != stack_pointer_rtx)
879 emit_move_insn (stack_pointer_rtx, temp);
880}
881
882/* Adjust the stack pointer by minus ADJUST (an rtx for a number of bytes).
883 This pushes when ADJUST is positive. ADJUST need not be constant. */
884
885void
502b8322 886anti_adjust_stack (rtx adjust)
18ca7dab
RK
887{
888 rtx temp;
18ca7dab
RK
889
890 if (adjust == const0_rtx)
891 return;
892
1503a7ec
JH
893 /* We expect all variable sized adjustments to be multiple of
894 PREFERRED_STACK_BOUNDARY. */
481683e1 895 if (CONST_INT_P (adjust))
1503a7ec
JH
896 stack_pointer_delta += INTVAL (adjust);
897
18ca7dab
RK
898 temp = expand_binop (Pmode,
899#ifdef STACK_GROWS_DOWNWARD
900 sub_optab,
901#else
902 add_optab,
903#endif
904 stack_pointer_rtx, adjust, stack_pointer_rtx, 0,
905 OPTAB_LIB_WIDEN);
906
907 if (temp != stack_pointer_rtx)
908 emit_move_insn (stack_pointer_rtx, temp);
909}
910
911/* Round the size of a block to be pushed up to the boundary required
912 by this machine. SIZE is the desired size, which need not be constant. */
913
4dd9b044 914static rtx
502b8322 915round_push (rtx size)
18ca7dab 916{
32990d5b 917 rtx align_rtx, alignm1_rtx;
41ee3204 918
32990d5b
JJ
919 if (!SUPPORTS_STACK_ALIGNMENT
920 || crtl->preferred_stack_boundary == MAX_SUPPORTED_STACK_ALIGNMENT)
18ca7dab 921 {
32990d5b
JJ
922 int align = crtl->preferred_stack_boundary / BITS_PER_UNIT;
923
924 if (align == 1)
925 return size;
926
927 if (CONST_INT_P (size))
928 {
929 HOST_WIDE_INT new_size = (INTVAL (size) + align - 1) / align * align;
41ee3204 930
32990d5b
JJ
931 if (INTVAL (size) != new_size)
932 size = GEN_INT (new_size);
933 return size;
934 }
935
936 align_rtx = GEN_INT (align);
937 alignm1_rtx = GEN_INT (align - 1);
18ca7dab
RK
938 }
939 else
940 {
32990d5b
JJ
941 /* If crtl->preferred_stack_boundary might still grow, use
942 virtual_preferred_stack_boundary_rtx instead. This will be
943 substituted by the right value in vregs pass and optimized
944 during combine. */
945 align_rtx = virtual_preferred_stack_boundary_rtx;
946 alignm1_rtx = force_operand (plus_constant (align_rtx, -1), NULL_RTX);
18ca7dab 947 }
41ee3204 948
32990d5b
JJ
949 /* CEIL_DIV_EXPR needs to worry about the addition overflowing,
950 but we know it can't. So add ourselves and then do
951 TRUNC_DIV_EXPR. */
952 size = expand_binop (Pmode, add_optab, size, alignm1_rtx,
953 NULL_RTX, 1, OPTAB_LIB_WIDEN);
954 size = expand_divmod (0, TRUNC_DIV_EXPR, Pmode, size, align_rtx,
955 NULL_RTX, 1);
956 size = expand_mult (Pmode, size, align_rtx, NULL_RTX, 1);
957
18ca7dab
RK
958 return size;
959}
960\f
59257ff7
RK
961/* Save the stack pointer for the purpose in SAVE_LEVEL. PSAVE is a pointer
962 to a previously-created save area. If no save area has been allocated,
963 this function will allocate one. If a save area is specified, it
9eac0f2a 964 must be of the proper mode. */
59257ff7
RK
965
966void
9eac0f2a 967emit_stack_save (enum save_level save_level, rtx *psave)
59257ff7
RK
968{
969 rtx sa = *psave;
970 /* The default is that we use a move insn and save in a Pmode object. */
502b8322 971 rtx (*fcn) (rtx, rtx) = gen_move_insn;
a260abc9 972 enum machine_mode mode = STACK_SAVEAREA_MODE (save_level);
59257ff7
RK
973
974 /* See if this machine has anything special to do for this kind of save. */
975 switch (save_level)
976 {
977#ifdef HAVE_save_stack_block
978 case SAVE_BLOCK:
979 if (HAVE_save_stack_block)
a260abc9 980 fcn = gen_save_stack_block;
59257ff7
RK
981 break;
982#endif
983#ifdef HAVE_save_stack_function
984 case SAVE_FUNCTION:
985 if (HAVE_save_stack_function)
a260abc9 986 fcn = gen_save_stack_function;
59257ff7
RK
987 break;
988#endif
989#ifdef HAVE_save_stack_nonlocal
990 case SAVE_NONLOCAL:
991 if (HAVE_save_stack_nonlocal)
a260abc9 992 fcn = gen_save_stack_nonlocal;
59257ff7
RK
993 break;
994#endif
38a448ca
RH
995 default:
996 break;
59257ff7
RK
997 }
998
999 /* If there is no save area and we have to allocate one, do so. Otherwise
1000 verify the save area is the proper mode. */
1001
1002 if (sa == 0)
1003 {
1004 if (mode != VOIDmode)
1005 {
1006 if (save_level == SAVE_NONLOCAL)
1007 *psave = sa = assign_stack_local (mode, GET_MODE_SIZE (mode), 0);
1008 else
1009 *psave = sa = gen_reg_rtx (mode);
1010 }
1011 }
59257ff7 1012
9eac0f2a
RH
1013 do_pending_stack_adjust ();
1014 if (sa != 0)
1015 sa = validize_mem (sa);
1016 emit_insn (fcn (sa, stack_pointer_rtx));
59257ff7
RK
1017}
1018
1019/* Restore the stack pointer for the purpose in SAVE_LEVEL. SA is the save
9eac0f2a 1020 area made by emit_stack_save. If it is zero, we have nothing to do. */
59257ff7
RK
1021
1022void
9eac0f2a 1023emit_stack_restore (enum save_level save_level, rtx sa)
59257ff7
RK
1024{
1025 /* The default is that we use a move insn. */
502b8322 1026 rtx (*fcn) (rtx, rtx) = gen_move_insn;
59257ff7
RK
1027
1028 /* See if this machine has anything special to do for this kind of save. */
1029 switch (save_level)
1030 {
1031#ifdef HAVE_restore_stack_block
1032 case SAVE_BLOCK:
1033 if (HAVE_restore_stack_block)
1034 fcn = gen_restore_stack_block;
1035 break;
1036#endif
1037#ifdef HAVE_restore_stack_function
1038 case SAVE_FUNCTION:
1039 if (HAVE_restore_stack_function)
1040 fcn = gen_restore_stack_function;
1041 break;
1042#endif
1043#ifdef HAVE_restore_stack_nonlocal
59257ff7
RK
1044 case SAVE_NONLOCAL:
1045 if (HAVE_restore_stack_nonlocal)
1046 fcn = gen_restore_stack_nonlocal;
1047 break;
1048#endif
38a448ca
RH
1049 default:
1050 break;
59257ff7
RK
1051 }
1052
d072107f 1053 if (sa != 0)
260f91c2
DJ
1054 {
1055 sa = validize_mem (sa);
1056 /* These clobbers prevent the scheduler from moving
1057 references to variable arrays below the code
4b7e68e7 1058 that deletes (pops) the arrays. */
c41c1387
RS
1059 emit_clobber (gen_rtx_MEM (BLKmode, gen_rtx_SCRATCH (VOIDmode)));
1060 emit_clobber (gen_rtx_MEM (BLKmode, stack_pointer_rtx));
260f91c2 1061 }
d072107f 1062
a494ed43
EB
1063 discard_pending_stack_adjust ();
1064
9eac0f2a 1065 emit_insn (fcn (stack_pointer_rtx, sa));
59257ff7 1066}
6de9cd9a
DN
1067
1068/* Invoke emit_stack_save on the nonlocal_goto_save_area for the current
1069 function. This function should be called whenever we allocate or
1070 deallocate dynamic stack space. */
1071
1072void
1073update_nonlocal_goto_save_area (void)
1074{
1075 tree t_save;
1076 rtx r_save;
1077
1078 /* The nonlocal_goto_save_area object is an array of N pointers. The
1079 first one is used for the frame pointer save; the rest are sized by
1080 STACK_SAVEAREA_MODE. Create a reference to array index 1, the first
1081 of the stack save area slots. */
3244e67d
RS
1082 t_save = build4 (ARRAY_REF, ptr_type_node, cfun->nonlocal_goto_save_area,
1083 integer_one_node, NULL_TREE, NULL_TREE);
6de9cd9a
DN
1084 r_save = expand_expr (t_save, NULL_RTX, VOIDmode, EXPAND_WRITE);
1085
9eac0f2a 1086 emit_stack_save (SAVE_NONLOCAL, &r_save);
6de9cd9a 1087}
59257ff7 1088\f
18ca7dab 1089/* Return an rtx representing the address of an area of memory dynamically
3a42502d 1090 pushed on the stack.
18ca7dab
RK
1091
1092 Any required stack pointer alignment is preserved.
1093
1094 SIZE is an rtx representing the size of the area.
091ad0b9 1095
3a42502d
RH
1096 SIZE_ALIGN is the alignment (in bits) that we know SIZE has. This
1097 parameter may be zero. If so, a proper value will be extracted
1098 from SIZE if it is constant, otherwise BITS_PER_UNIT will be assumed.
1099
1100 REQUIRED_ALIGN is the alignment (in bits) required for the region
1101 of memory.
d3c12306
EB
1102
1103 If CANNOT_ACCUMULATE is set to TRUE, the caller guarantees that the
1104 stack space allocated by the generated code cannot be added with itself
1105 in the course of the execution of the function. It is always safe to
1106 pass FALSE here and the following criterion is sufficient in order to
1107 pass TRUE: every path in the CFG that starts at the allocation point and
1108 loops to it executes the associated deallocation code. */
18ca7dab
RK
1109
1110rtx
3a42502d
RH
1111allocate_dynamic_stack_space (rtx size, unsigned size_align,
1112 unsigned required_align, bool cannot_accumulate)
18ca7dab 1113{
d3c12306 1114 HOST_WIDE_INT stack_usage_size = -1;
3a42502d 1115 rtx final_label, final_target, target;
1ecad98e 1116 unsigned extra_align = 0;
3a42502d 1117 bool must_align;
d3c12306 1118
15fc0026 1119 /* If we're asking for zero bytes, it doesn't matter what we point
9faa82d8 1120 to since we can't dereference it. But return a reasonable
15fc0026
RK
1121 address anyway. */
1122 if (size == const0_rtx)
1123 return virtual_stack_dynamic_rtx;
1124
1125 /* Otherwise, show we're calling alloca or equivalent. */
e3b5732b 1126 cfun->calls_alloca = 1;
15fc0026 1127
d3c12306
EB
1128 /* If stack usage info is requested, look into the size we are passed.
1129 We need to do so this early to avoid the obfuscation that may be
1130 introduced later by the various alignment operations. */
1131 if (flag_stack_usage)
1132 {
32990d5b 1133 if (CONST_INT_P (size))
d3c12306 1134 stack_usage_size = INTVAL (size);
32990d5b 1135 else if (REG_P (size))
d3c12306
EB
1136 {
1137 /* Look into the last emitted insn and see if we can deduce
1138 something for the register. */
1139 rtx insn, set, note;
1140 insn = get_last_insn ();
1141 if ((set = single_set (insn)) && rtx_equal_p (SET_DEST (set), size))
1142 {
32990d5b 1143 if (CONST_INT_P (SET_SRC (set)))
d3c12306
EB
1144 stack_usage_size = INTVAL (SET_SRC (set));
1145 else if ((note = find_reg_equal_equiv_note (insn))
32990d5b 1146 && CONST_INT_P (XEXP (note, 0)))
d3c12306
EB
1147 stack_usage_size = INTVAL (XEXP (note, 0));
1148 }
1149 }
1150
1151 /* If the size is not constant, we can't say anything. */
1152 if (stack_usage_size == -1)
1153 {
1154 current_function_has_unbounded_dynamic_stack_size = 1;
1155 stack_usage_size = 0;
1156 }
1157 }
1158
18ca7dab
RK
1159 /* Ensure the size is in the proper mode. */
1160 if (GET_MODE (size) != VOIDmode && GET_MODE (size) != Pmode)
1161 size = convert_to_mode (Pmode, size, 1);
1162
3a42502d
RH
1163 /* Adjust SIZE_ALIGN, if needed. */
1164 if (CONST_INT_P (size))
1165 {
1166 unsigned HOST_WIDE_INT lsb;
1167
1168 lsb = INTVAL (size);
1169 lsb &= -lsb;
1170
1171 /* Watch out for overflow truncating to "unsigned". */
1172 if (lsb > UINT_MAX / BITS_PER_UNIT)
1173 size_align = 1u << (HOST_BITS_PER_INT - 1);
1174 else
1175 size_align = (unsigned)lsb * BITS_PER_UNIT;
1176 }
1177 else if (size_align < BITS_PER_UNIT)
1178 size_align = BITS_PER_UNIT;
1179
c2f8b491
JH
1180 /* We can't attempt to minimize alignment necessary, because we don't
1181 know the final value of preferred_stack_boundary yet while executing
1182 this code. */
32990d5b
JJ
1183 if (crtl->preferred_stack_boundary < PREFERRED_STACK_BOUNDARY)
1184 crtl->preferred_stack_boundary = PREFERRED_STACK_BOUNDARY;
c2f8b491 1185
18ca7dab 1186 /* We will need to ensure that the address we return is aligned to
3a42502d 1187 REQUIRED_ALIGN. If STACK_DYNAMIC_OFFSET is defined, we don't
d9b3eb63 1188 always know its final value at this point in the compilation (it
18ca7dab
RK
1189 might depend on the size of the outgoing parameter lists, for
1190 example), so we must align the value to be returned in that case.
cc2902df 1191 (Note that STACK_DYNAMIC_OFFSET will have a default nonzero value if
18ca7dab
RK
1192 STACK_POINTER_OFFSET or ACCUMULATE_OUTGOING_ARGS are defined).
1193 We must also do an alignment operation on the returned value if
3a42502d 1194 the stack pointer alignment is less strict than REQUIRED_ALIGN.
18ca7dab
RK
1195
1196 If we have to align, we must leave space in SIZE for the hole
1197 that might result from the alignment operation. */
1198
3a42502d 1199 must_align = (crtl->preferred_stack_boundary < required_align);
3a42502d 1200 if (must_align)
d3c12306 1201 {
3a42502d
RH
1202 if (required_align > PREFERRED_STACK_BOUNDARY)
1203 extra_align = PREFERRED_STACK_BOUNDARY;
1204 else if (required_align > STACK_BOUNDARY)
1205 extra_align = STACK_BOUNDARY;
1206 else
1207 extra_align = BITS_PER_UNIT;
1ecad98e
EB
1208 }
1209
1210 /* ??? STACK_POINTER_OFFSET is always defined now. */
1211#if defined (STACK_DYNAMIC_OFFSET) || defined (STACK_POINTER_OFFSET)
1212 must_align = true;
1213 extra_align = BITS_PER_UNIT;
1214#endif
1215
1216 if (must_align)
1217 {
1218 unsigned extra = (required_align - extra_align) / BITS_PER_UNIT;
3a42502d
RH
1219
1220 size = plus_constant (size, extra);
1221 size = force_operand (size, NULL_RTX);
d3c12306
EB
1222
1223 if (flag_stack_usage)
3a42502d 1224 stack_usage_size += extra;
d3c12306 1225
3a42502d
RH
1226 if (extra && size_align > extra_align)
1227 size_align = extra_align;
d3c12306 1228 }
1d9d04f8 1229
18ca7dab
RK
1230#ifdef SETJMP_VIA_SAVE_AREA
1231 /* If setjmp restores regs from a save area in the stack frame,
1232 avoid clobbering the reg save area. Note that the offset of
1233 virtual_incoming_args_rtx includes the preallocated stack args space.
1234 It would be no problem to clobber that, but it's on the wrong side
d0828b31
DM
1235 of the old save area.
1236
1237 What used to happen is that, since we did not know for sure
1238 whether setjmp() was invoked until after RTL generation, we
1239 would use reg notes to store the "optimized" size and fix things
1240 up later. These days we know this information before we ever
1241 start building RTL so the reg notes are unnecessary. */
d3c12306 1242 if (cfun->calls_setjmp)
d0828b31
DM
1243 {
1244 rtx dynamic_offset
1245 = expand_binop (Pmode, sub_optab, virtual_stack_dynamic_rtx,
1246 stack_pointer_rtx, NULL_RTX, 1, OPTAB_LIB_WIDEN);
1247
1248 size = expand_binop (Pmode, add_optab, size, dynamic_offset,
1249 NULL_RTX, 1, OPTAB_LIB_WIDEN);
d3c12306
EB
1250
1251 /* The above dynamic offset cannot be computed statically at this
1252 point, but it will be possible to do so after RTL expansion is
1253 done. Record how many times we will need to add it. */
1254 if (flag_stack_usage)
1255 current_function_dynamic_alloc_count++;
1256
3a42502d
RH
1257 /* ??? Can we infer a minimum of STACK_BOUNDARY here? */
1258 size_align = BITS_PER_UNIT;
d0828b31 1259 }
18ca7dab
RK
1260#endif /* SETJMP_VIA_SAVE_AREA */
1261
1262 /* Round the size to a multiple of the required stack alignment.
1263 Since the stack if presumed to be rounded before this allocation,
1264 this will maintain the required alignment.
1265
1266 If the stack grows downward, we could save an insn by subtracting
1267 SIZE from the stack pointer and then aligning the stack pointer.
1268 The problem with this is that the stack pointer may be unaligned
1269 between the execution of the subtraction and alignment insns and
1270 some machines do not allow this. Even on those that do, some
1271 signal handlers malfunction if a signal should occur between those
1272 insns. Since this is an extremely rare event, we have no reliable
1273 way of knowing which systems have this problem. So we avoid even
1274 momentarily mis-aligning the stack. */
3a42502d 1275 if (size_align % MAX_SUPPORTED_STACK_ALIGNMENT != 0)
d3c12306
EB
1276 {
1277 size = round_push (size);
18ca7dab 1278
d3c12306
EB
1279 if (flag_stack_usage)
1280 {
32990d5b 1281 int align = crtl->preferred_stack_boundary / BITS_PER_UNIT;
d3c12306
EB
1282 stack_usage_size = (stack_usage_size + align - 1) / align * align;
1283 }
1284 }
1285
3a42502d 1286 target = gen_reg_rtx (Pmode);
7458026b 1287
d3c12306
EB
1288 /* The size is supposed to be fully adjusted at this point so record it
1289 if stack usage info is requested. */
1290 if (flag_stack_usage)
1291 {
1292 current_function_dynamic_stack_size += stack_usage_size;
1293
1294 /* ??? This is gross but the only safe stance in the absence
1295 of stack usage oriented flow analysis. */
1296 if (!cannot_accumulate)
1297 current_function_has_unbounded_dynamic_stack_size = 1;
1298 }
18ca7dab 1299
7458026b
ILT
1300 final_label = NULL_RTX;
1301 final_target = NULL_RTX;
1302
1303 /* If we are splitting the stack, we need to ask the backend whether
1304 there is enough room on the current stack. If there isn't, or if
1305 the backend doesn't know how to tell is, then we need to call a
1306 function to allocate memory in some other way. This memory will
1307 be released when we release the current stack segment. The
1308 effect is that stack allocation becomes less efficient, but at
1309 least it doesn't cause a stack overflow. */
1310 if (flag_split_stack)
1311 {
c3928dde 1312 rtx available_label, ask, space, func;
7458026b
ILT
1313
1314 available_label = NULL_RTX;
1315
1316#ifdef HAVE_split_stack_space_check
1317 if (HAVE_split_stack_space_check)
1318 {
1319 available_label = gen_label_rtx ();
1320
1321 /* This instruction will branch to AVAILABLE_LABEL if there
1322 are SIZE bytes available on the stack. */
1323 emit_insn (gen_split_stack_space_check (size, available_label));
1324 }
1325#endif
1326
c3928dde 1327 /* The __morestack_allocate_stack_space function will allocate
c070a3b9
ILT
1328 memory using malloc. If the alignment of the memory returned
1329 by malloc does not meet REQUIRED_ALIGN, we increase SIZE to
1330 make sure we allocate enough space. */
1331 if (MALLOC_ABI_ALIGNMENT >= required_align)
1332 ask = size;
1333 else
1334 {
1335 ask = expand_binop (Pmode, add_optab, size,
1336 GEN_INT (required_align / BITS_PER_UNIT - 1),
1337 NULL_RTX, 1, OPTAB_LIB_WIDEN);
1338 must_align = true;
1339 }
c3928dde 1340
7458026b
ILT
1341 func = init_one_libfunc ("__morestack_allocate_stack_space");
1342
1343 space = emit_library_call_value (func, target, LCT_NORMAL, Pmode,
c3928dde 1344 1, ask, Pmode);
7458026b
ILT
1345
1346 if (available_label == NULL_RTX)
1347 return space;
1348
1349 final_target = gen_reg_rtx (Pmode);
7458026b
ILT
1350
1351 emit_move_insn (final_target, space);
1352
1353 final_label = gen_label_rtx ();
1354 emit_jump (final_label);
1355
1356 emit_label (available_label);
1357 }
1358
18ca7dab
RK
1359 do_pending_stack_adjust ();
1360
1503a7ec 1361 /* We ought to be called always on the toplevel and stack ought to be aligned
a1f300c0 1362 properly. */
5b0264cb
NS
1363 gcc_assert (!(stack_pointer_delta
1364 % (PREFERRED_STACK_BOUNDARY / BITS_PER_UNIT)));
1503a7ec 1365
d809253a
EB
1366 /* If needed, check that we have the required amount of stack. Take into
1367 account what has already been checked. */
1368 if (STACK_CHECK_MOVING_SP)
1369 ;
1370 else if (flag_stack_check == GENERIC_STACK_CHECK)
b38f3813
EB
1371 probe_stack_range (STACK_OLD_CHECK_PROTECT + STACK_CHECK_MAX_FRAME_SIZE,
1372 size);
1373 else if (flag_stack_check == STATIC_BUILTIN_STACK_CHECK)
1374 probe_stack_range (STACK_CHECK_PROTECT, size);
edff2491 1375
18ca7dab
RK
1376 /* Perform the required allocation from the stack. Some systems do
1377 this differently than simply incrementing/decrementing from the
38a448ca 1378 stack pointer, such as acquiring the space by calling malloc(). */
18ca7dab
RK
1379#ifdef HAVE_allocate_stack
1380 if (HAVE_allocate_stack)
1381 {
39403d82 1382 enum machine_mode mode = STACK_SIZE_MODE;
a995e389 1383 insn_operand_predicate_fn pred;
39403d82 1384
4b6c1672
RK
1385 /* We don't have to check against the predicate for operand 0 since
1386 TARGET is known to be a pseudo of the proper mode, which must
1387 be valid for the operand. For operand 1, convert to the
1388 proper mode and validate. */
c5c76735 1389 if (mode == VOIDmode)
4b6c1672 1390 mode = insn_data[(int) CODE_FOR_allocate_stack].operand[1].mode;
c5c76735 1391
a995e389
RH
1392 pred = insn_data[(int) CODE_FOR_allocate_stack].operand[1].predicate;
1393 if (pred && ! ((*pred) (size, mode)))
05d482b9 1394 size = copy_to_mode_reg (mode, convert_to_mode (mode, size, 1));
18ca7dab 1395
38a448ca 1396 emit_insn (gen_allocate_stack (target, size));
18ca7dab
RK
1397 }
1398 else
1399#endif
ea534b63 1400 {
32990d5b
JJ
1401 int saved_stack_pointer_delta;
1402
38a448ca
RH
1403#ifndef STACK_GROWS_DOWNWARD
1404 emit_move_insn (target, virtual_stack_dynamic_rtx);
1405#endif
a157febd
GK
1406
1407 /* Check stack bounds if necessary. */
e3b5732b 1408 if (crtl->limit_stack)
a157febd
GK
1409 {
1410 rtx available;
1411 rtx space_available = gen_label_rtx ();
1412#ifdef STACK_GROWS_DOWNWARD
d9b3eb63 1413 available = expand_binop (Pmode, sub_optab,
a157febd
GK
1414 stack_pointer_rtx, stack_limit_rtx,
1415 NULL_RTX, 1, OPTAB_WIDEN);
1416#else
d9b3eb63 1417 available = expand_binop (Pmode, sub_optab,
a157febd
GK
1418 stack_limit_rtx, stack_pointer_rtx,
1419 NULL_RTX, 1, OPTAB_WIDEN);
1420#endif
1421 emit_cmp_and_jump_insns (available, size, GEU, NULL_RTX, Pmode, 1,
a06ef755 1422 space_available);
a157febd
GK
1423#ifdef HAVE_trap
1424 if (HAVE_trap)
1425 emit_insn (gen_trap ());
1426 else
1427#endif
1428 error ("stack limits not supported on this target");
1429 emit_barrier ();
1430 emit_label (space_available);
1431 }
1432
32990d5b 1433 saved_stack_pointer_delta = stack_pointer_delta;
d809253a 1434 if (flag_stack_check && STACK_CHECK_MOVING_SP)
c35af30f 1435 anti_adjust_stack_and_probe (size, false);
d809253a
EB
1436 else
1437 anti_adjust_stack (size);
32990d5b
JJ
1438 /* Even if size is constant, don't modify stack_pointer_delta.
1439 The constant size alloca should preserve
1440 crtl->preferred_stack_boundary alignment. */
1441 stack_pointer_delta = saved_stack_pointer_delta;
d5457140 1442
18ca7dab 1443#ifdef STACK_GROWS_DOWNWARD
ca56cd30 1444 emit_move_insn (target, virtual_stack_dynamic_rtx);
18ca7dab 1445#endif
38a448ca 1446 }
18ca7dab 1447
3a42502d
RH
1448 /* Finish up the split stack handling. */
1449 if (final_label != NULL_RTX)
1450 {
1451 gcc_assert (flag_split_stack);
1452 emit_move_insn (final_target, target);
1453 emit_label (final_label);
1454 target = final_target;
1455 }
1456
1457 if (must_align)
091ad0b9 1458 {
5244db05 1459 /* CEIL_DIV_EXPR needs to worry about the addition overflowing,
0f41302f
MS
1460 but we know it can't. So add ourselves and then do
1461 TRUNC_DIV_EXPR. */
0f56a403 1462 target = expand_binop (Pmode, add_optab, target,
3a42502d 1463 GEN_INT (required_align / BITS_PER_UNIT - 1),
5244db05
RK
1464 NULL_RTX, 1, OPTAB_LIB_WIDEN);
1465 target = expand_divmod (0, TRUNC_DIV_EXPR, Pmode, target,
3a42502d 1466 GEN_INT (required_align / BITS_PER_UNIT),
b1ec3c92 1467 NULL_RTX, 1);
091ad0b9 1468 target = expand_mult (Pmode, target,
3a42502d 1469 GEN_INT (required_align / BITS_PER_UNIT),
b1ec3c92 1470 NULL_RTX, 1);
091ad0b9 1471 }
d9b3eb63 1472
3a42502d
RH
1473 /* Now that we've committed to a return value, mark its alignment. */
1474 mark_reg_pointer (target, required_align);
1475
15fc0026 1476 /* Record the new stack level for nonlocal gotos. */
6de9cd9a
DN
1477 if (cfun->nonlocal_goto_save_area != 0)
1478 update_nonlocal_goto_save_area ();
15fc0026 1479
18ca7dab
RK
1480 return target;
1481}
1482\f
d9b3eb63 1483/* A front end may want to override GCC's stack checking by providing a
14a774a9
RK
1484 run-time routine to call to check the stack, so provide a mechanism for
1485 calling that routine. */
1486
e2500fed 1487static GTY(()) rtx stack_check_libfunc;
14a774a9
RK
1488
1489void
d477d1fe 1490set_stack_check_libfunc (const char *libfunc_name)
14a774a9 1491{
d477d1fe
SB
1492 gcc_assert (stack_check_libfunc == NULL_RTX);
1493 stack_check_libfunc = gen_rtx_SYMBOL_REF (Pmode, libfunc_name);
14a774a9
RK
1494}
1495\f
edff2491
RK
1496/* Emit one stack probe at ADDRESS, an address within the stack. */
1497
260c8ba3 1498void
502b8322 1499emit_stack_probe (rtx address)
edff2491 1500{
38a448ca 1501 rtx memref = gen_rtx_MEM (word_mode, address);
edff2491
RK
1502
1503 MEM_VOLATILE_P (memref) = 1;
1504
d809253a
EB
1505 /* See if we have an insn to probe the stack. */
1506#ifdef HAVE_probe_stack
1507 if (HAVE_probe_stack)
1508 emit_insn (gen_probe_stack (memref));
1509 else
1510#endif
edff2491
RK
1511 emit_move_insn (memref, const0_rtx);
1512}
1513
d9b3eb63 1514/* Probe a range of stack addresses from FIRST to FIRST+SIZE, inclusive.
d809253a
EB
1515 FIRST is a constant and size is a Pmode RTX. These are offsets from
1516 the current stack pointer. STACK_GROWS_DOWNWARD says whether to add
1517 or subtract them from the stack pointer. */
1518
1519#define PROBE_INTERVAL (1 << STACK_CHECK_PROBE_INTERVAL_EXP)
edff2491
RK
1520
1521#ifdef STACK_GROWS_DOWNWARD
1522#define STACK_GROW_OP MINUS
d809253a
EB
1523#define STACK_GROW_OPTAB sub_optab
1524#define STACK_GROW_OFF(off) -(off)
edff2491
RK
1525#else
1526#define STACK_GROW_OP PLUS
d809253a
EB
1527#define STACK_GROW_OPTAB add_optab
1528#define STACK_GROW_OFF(off) (off)
edff2491
RK
1529#endif
1530
1531void
502b8322 1532probe_stack_range (HOST_WIDE_INT first, rtx size)
edff2491 1533{
4b6c1672
RK
1534 /* First ensure SIZE is Pmode. */
1535 if (GET_MODE (size) != VOIDmode && GET_MODE (size) != Pmode)
1536 size = convert_to_mode (Pmode, size, 1);
1537
d809253a
EB
1538 /* Next see if we have a function to check the stack. */
1539 if (stack_check_libfunc)
f5f5363f 1540 {
d809253a 1541 rtx addr = memory_address (Pmode,
2b3aadfc
RH
1542 gen_rtx_fmt_ee (STACK_GROW_OP, Pmode,
1543 stack_pointer_rtx,
1544 plus_constant (size, first)));
949fa04c
EB
1545 emit_library_call (stack_check_libfunc, LCT_NORMAL, VOIDmode, 1, addr,
1546 Pmode);
f5f5363f 1547 }
14a774a9 1548
d809253a 1549 /* Next see if we have an insn to check the stack. */
edff2491 1550#ifdef HAVE_check_stack
14a774a9 1551 else if (HAVE_check_stack)
edff2491 1552 {
d809253a
EB
1553 rtx addr = memory_address (Pmode,
1554 gen_rtx_fmt_ee (STACK_GROW_OP, Pmode,
1555 stack_pointer_rtx,
1556 plus_constant (size, first)));
1557 insn_operand_predicate_fn pred
1558 = insn_data[(int) CODE_FOR_check_stack].operand[0].predicate;
1559 if (pred && !((*pred) (addr, Pmode)))
1560 addr = copy_to_mode_reg (Pmode, addr);
edff2491 1561
d809253a 1562 emit_insn (gen_check_stack (addr));
edff2491
RK
1563 }
1564#endif
1565
d809253a
EB
1566 /* Otherwise we have to generate explicit probes. If we have a constant
1567 small number of them to generate, that's the easy case. */
1568 else if (CONST_INT_P (size) && INTVAL (size) < 7 * PROBE_INTERVAL)
edff2491 1569 {
d809253a
EB
1570 HOST_WIDE_INT isize = INTVAL (size), i;
1571 rtx addr;
1572
1573 /* Probe at FIRST + N * PROBE_INTERVAL for values of N from 1 until
1574 it exceeds SIZE. If only one probe is needed, this will not
1575 generate any code. Then probe at FIRST + SIZE. */
1576 for (i = PROBE_INTERVAL; i < isize; i += PROBE_INTERVAL)
1577 {
1578 addr = memory_address (Pmode,
1579 plus_constant (stack_pointer_rtx,
1580 STACK_GROW_OFF (first + i)));
1581 emit_stack_probe (addr);
1582 }
1583
1584 addr = memory_address (Pmode,
1585 plus_constant (stack_pointer_rtx,
1586 STACK_GROW_OFF (first + isize)));
1587 emit_stack_probe (addr);
edff2491
RK
1588 }
1589
d809253a
EB
1590 /* In the variable case, do the same as above, but in a loop. Note that we
1591 must be extra careful with variables wrapping around because we might be
1592 at the very top (or the very bottom) of the address space and we have to
1593 be able to handle this case properly; in particular, we use an equality
1594 test for the loop condition. */
edff2491
RK
1595 else
1596 {
d809253a 1597 rtx rounded_size, rounded_size_op, test_addr, last_addr, temp;
edff2491 1598 rtx loop_lab = gen_label_rtx ();
edff2491 1599 rtx end_lab = gen_label_rtx ();
edff2491 1600
edff2491 1601
d809253a
EB
1602 /* Step 1: round SIZE to the previous multiple of the interval. */
1603
1604 /* ROUNDED_SIZE = SIZE & -PROBE_INTERVAL */
1605 rounded_size
1606 = simplify_gen_binary (AND, Pmode, size, GEN_INT (-PROBE_INTERVAL));
1607 rounded_size_op = force_operand (rounded_size, NULL_RTX);
1608
1609
1610 /* Step 2: compute initial and final value of the loop counter. */
1611
1612 /* TEST_ADDR = SP + FIRST. */
1613 test_addr = force_operand (gen_rtx_fmt_ee (STACK_GROW_OP, Pmode,
1614 stack_pointer_rtx,
1615 GEN_INT (first)), NULL_RTX);
1616
1617 /* LAST_ADDR = SP + FIRST + ROUNDED_SIZE. */
1618 last_addr = force_operand (gen_rtx_fmt_ee (STACK_GROW_OP, Pmode,
1619 test_addr,
1620 rounded_size_op), NULL_RTX);
1621
1622
1623 /* Step 3: the loop
1624
1625 while (TEST_ADDR != LAST_ADDR)
1626 {
1627 TEST_ADDR = TEST_ADDR + PROBE_INTERVAL
1628 probe at TEST_ADDR
1629 }
1630
1631 probes at FIRST + N * PROBE_INTERVAL for values of N from 1
1632 until it is equal to ROUNDED_SIZE. */
edff2491
RK
1633
1634 emit_label (loop_lab);
edff2491 1635
d809253a
EB
1636 /* Jump to END_LAB if TEST_ADDR == LAST_ADDR. */
1637 emit_cmp_and_jump_insns (test_addr, last_addr, EQ, NULL_RTX, Pmode, 1,
1638 end_lab);
1639
1640 /* TEST_ADDR = TEST_ADDR + PROBE_INTERVAL. */
1641 temp = expand_binop (Pmode, STACK_GROW_OPTAB, test_addr,
1642 GEN_INT (PROBE_INTERVAL), test_addr,
edff2491 1643 1, OPTAB_WIDEN);
edff2491 1644
5b0264cb 1645 gcc_assert (temp == test_addr);
edff2491 1646
d809253a
EB
1647 /* Probe at TEST_ADDR. */
1648 emit_stack_probe (test_addr);
1649
1650 emit_jump (loop_lab);
1651
edff2491
RK
1652 emit_label (end_lab);
1653
d809253a
EB
1654
1655 /* Step 4: probe at FIRST + SIZE if we cannot assert at compile-time
1656 that SIZE is equal to ROUNDED_SIZE. */
1657
1658 /* TEMP = SIZE - ROUNDED_SIZE. */
1659 temp = simplify_gen_binary (MINUS, Pmode, size, rounded_size);
1660 if (temp != const0_rtx)
1661 {
1662 rtx addr;
1663
32990d5b 1664 if (CONST_INT_P (temp))
d809253a
EB
1665 {
1666 /* Use [base + disp} addressing mode if supported. */
1667 HOST_WIDE_INT offset = INTVAL (temp);
1668 addr = memory_address (Pmode,
1669 plus_constant (last_addr,
1670 STACK_GROW_OFF (offset)));
1671 }
1672 else
1673 {
1674 /* Manual CSE if the difference is not known at compile-time. */
1675 temp = gen_rtx_MINUS (Pmode, size, rounded_size_op);
1676 addr = memory_address (Pmode,
1677 gen_rtx_fmt_ee (STACK_GROW_OP, Pmode,
1678 last_addr, temp));
1679 }
1680
1681 emit_stack_probe (addr);
1682 }
edff2491
RK
1683 }
1684}
d809253a 1685
c35af30f
EB
1686/* Adjust the stack pointer by minus SIZE (an rtx for a number of bytes)
1687 while probing it. This pushes when SIZE is positive. SIZE need not
1688 be constant. If ADJUST_BACK is true, adjust back the stack pointer
1689 by plus SIZE at the end. */
d809253a 1690
c35af30f
EB
1691void
1692anti_adjust_stack_and_probe (rtx size, bool adjust_back)
d809253a 1693{
c35af30f
EB
1694 /* We skip the probe for the first interval + a small dope of 4 words and
1695 probe that many bytes past the specified size to maintain a protection
1696 area at the botton of the stack. */
d809253a
EB
1697 const int dope = 4 * UNITS_PER_WORD;
1698
1699 /* First ensure SIZE is Pmode. */
1700 if (GET_MODE (size) != VOIDmode && GET_MODE (size) != Pmode)
1701 size = convert_to_mode (Pmode, size, 1);
1702
1703 /* If we have a constant small number of probes to generate, that's the
1704 easy case. */
32990d5b 1705 if (CONST_INT_P (size) && INTVAL (size) < 7 * PROBE_INTERVAL)
d809253a
EB
1706 {
1707 HOST_WIDE_INT isize = INTVAL (size), i;
1708 bool first_probe = true;
1709
260c8ba3 1710 /* Adjust SP and probe at PROBE_INTERVAL + N * PROBE_INTERVAL for
d809253a
EB
1711 values of N from 1 until it exceeds SIZE. If only one probe is
1712 needed, this will not generate any code. Then adjust and probe
1713 to PROBE_INTERVAL + SIZE. */
1714 for (i = PROBE_INTERVAL; i < isize; i += PROBE_INTERVAL)
1715 {
1716 if (first_probe)
1717 {
1718 anti_adjust_stack (GEN_INT (2 * PROBE_INTERVAL + dope));
1719 first_probe = false;
1720 }
1721 else
1722 anti_adjust_stack (GEN_INT (PROBE_INTERVAL));
1723 emit_stack_probe (stack_pointer_rtx);
1724 }
1725
1726 if (first_probe)
1727 anti_adjust_stack (plus_constant (size, PROBE_INTERVAL + dope));
1728 else
1729 anti_adjust_stack (plus_constant (size, PROBE_INTERVAL - i));
1730 emit_stack_probe (stack_pointer_rtx);
1731 }
1732
1733 /* In the variable case, do the same as above, but in a loop. Note that we
1734 must be extra careful with variables wrapping around because we might be
1735 at the very top (or the very bottom) of the address space and we have to
1736 be able to handle this case properly; in particular, we use an equality
1737 test for the loop condition. */
1738 else
1739 {
1740 rtx rounded_size, rounded_size_op, last_addr, temp;
1741 rtx loop_lab = gen_label_rtx ();
1742 rtx end_lab = gen_label_rtx ();
1743
1744
1745 /* Step 1: round SIZE to the previous multiple of the interval. */
1746
1747 /* ROUNDED_SIZE = SIZE & -PROBE_INTERVAL */
1748 rounded_size
1749 = simplify_gen_binary (AND, Pmode, size, GEN_INT (-PROBE_INTERVAL));
1750 rounded_size_op = force_operand (rounded_size, NULL_RTX);
1751
1752
1753 /* Step 2: compute initial and final value of the loop counter. */
1754
1755 /* SP = SP_0 + PROBE_INTERVAL. */
1756 anti_adjust_stack (GEN_INT (PROBE_INTERVAL + dope));
1757
1758 /* LAST_ADDR = SP_0 + PROBE_INTERVAL + ROUNDED_SIZE. */
1759 last_addr = force_operand (gen_rtx_fmt_ee (STACK_GROW_OP, Pmode,
1760 stack_pointer_rtx,
1761 rounded_size_op), NULL_RTX);
1762
1763
1764 /* Step 3: the loop
1765
260c8ba3
EB
1766 while (SP != LAST_ADDR)
1767 {
1768 SP = SP + PROBE_INTERVAL
1769 probe at SP
1770 }
d809253a 1771
260c8ba3 1772 adjusts SP and probes at PROBE_INTERVAL + N * PROBE_INTERVAL for
d809253a
EB
1773 values of N from 1 until it is equal to ROUNDED_SIZE. */
1774
1775 emit_label (loop_lab);
1776
1777 /* Jump to END_LAB if SP == LAST_ADDR. */
1778 emit_cmp_and_jump_insns (stack_pointer_rtx, last_addr, EQ, NULL_RTX,
1779 Pmode, 1, end_lab);
1780
1781 /* SP = SP + PROBE_INTERVAL and probe at SP. */
1782 anti_adjust_stack (GEN_INT (PROBE_INTERVAL));
1783 emit_stack_probe (stack_pointer_rtx);
1784
1785 emit_jump (loop_lab);
1786
1787 emit_label (end_lab);
1788
1789
260c8ba3 1790 /* Step 4: adjust SP and probe at PROBE_INTERVAL + SIZE if we cannot
d809253a
EB
1791 assert at compile-time that SIZE is equal to ROUNDED_SIZE. */
1792
1793 /* TEMP = SIZE - ROUNDED_SIZE. */
1794 temp = simplify_gen_binary (MINUS, Pmode, size, rounded_size);
1795 if (temp != const0_rtx)
1796 {
1797 /* Manual CSE if the difference is not known at compile-time. */
1798 if (GET_CODE (temp) != CONST_INT)
1799 temp = gen_rtx_MINUS (Pmode, size, rounded_size_op);
1800 anti_adjust_stack (temp);
1801 emit_stack_probe (stack_pointer_rtx);
1802 }
1803 }
1804
c35af30f
EB
1805 /* Adjust back and account for the additional first interval. */
1806 if (adjust_back)
1807 adjust_stack (plus_constant (size, PROBE_INTERVAL + dope));
1808 else
1809 adjust_stack (GEN_INT (PROBE_INTERVAL + dope));
d809253a
EB
1810}
1811
18ca7dab
RK
1812/* Return an rtx representing the register or memory location
1813 in which a scalar value of data type VALTYPE
1814 was returned by a function call to function FUNC.
1d636cc6
RG
1815 FUNC is a FUNCTION_DECL, FNTYPE a FUNCTION_TYPE node if the precise
1816 function is known, otherwise 0.
4dc07bd7
JJ
1817 OUTGOING is 1 if on a machine with register windows this function
1818 should return the register in which the function will put its result
30f7a378 1819 and 0 otherwise. */
18ca7dab
RK
1820
1821rtx
586de218 1822hard_function_value (const_tree valtype, const_tree func, const_tree fntype,
502b8322 1823 int outgoing ATTRIBUTE_UNUSED)
18ca7dab 1824{
4dc07bd7 1825 rtx val;
770ae6cc 1826
1d636cc6 1827 val = targetm.calls.function_value (valtype, func ? func : fntype, outgoing);
770ae6cc 1828
f8cfc6aa 1829 if (REG_P (val)
e1a4071f
JL
1830 && GET_MODE (val) == BLKmode)
1831 {
770ae6cc 1832 unsigned HOST_WIDE_INT bytes = int_size_in_bytes (valtype);
e1a4071f 1833 enum machine_mode tmpmode;
770ae6cc 1834
d9b3eb63 1835 /* int_size_in_bytes can return -1. We don't need a check here
535a42b1
NS
1836 since the value of bytes will then be large enough that no
1837 mode will match anyway. */
d9b3eb63 1838
e1a4071f 1839 for (tmpmode = GET_CLASS_NARROWEST_MODE (MODE_INT);
0fb7aeda
KH
1840 tmpmode != VOIDmode;
1841 tmpmode = GET_MODE_WIDER_MODE (tmpmode))
1842 {
1843 /* Have we found a large enough mode? */
1844 if (GET_MODE_SIZE (tmpmode) >= bytes)
1845 break;
1846 }
e1a4071f
JL
1847
1848 /* No suitable mode found. */
5b0264cb 1849 gcc_assert (tmpmode != VOIDmode);
e1a4071f
JL
1850
1851 PUT_MODE (val, tmpmode);
d9b3eb63 1852 }
e1a4071f 1853 return val;
18ca7dab
RK
1854}
1855
1856/* Return an rtx representing the register or memory location
1857 in which a scalar value of mode MODE was returned by a library call. */
1858
1859rtx
390b17c2 1860hard_libcall_value (enum machine_mode mode, rtx fun)
18ca7dab 1861{
390b17c2 1862 return targetm.calls.libcall_value (mode, fun);
18ca7dab 1863}
0c5e217d
RS
1864
1865/* Look up the tree code for a given rtx code
1866 to provide the arithmetic operation for REAL_ARITHMETIC.
1867 The function returns an int because the caller may not know
1868 what `enum tree_code' means. */
1869
1870int
502b8322 1871rtx_to_tree_code (enum rtx_code code)
0c5e217d
RS
1872{
1873 enum tree_code tcode;
1874
1875 switch (code)
1876 {
1877 case PLUS:
1878 tcode = PLUS_EXPR;
1879 break;
1880 case MINUS:
1881 tcode = MINUS_EXPR;
1882 break;
1883 case MULT:
1884 tcode = MULT_EXPR;
1885 break;
1886 case DIV:
1887 tcode = RDIV_EXPR;
1888 break;
1889 case SMIN:
1890 tcode = MIN_EXPR;
1891 break;
1892 case SMAX:
1893 tcode = MAX_EXPR;
1894 break;
1895 default:
1896 tcode = LAST_AND_UNUSED_TREE_CODE;
1897 break;
1898 }
1899 return ((int) tcode);
1900}
e2500fed
GK
1901
1902#include "gt-explow.h"