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1.1 root 1: /* Subroutines for manipulating rtx's in semantically interesting ways.
2: Copyright (C) 1987, 1991 Free Software Foundation, Inc.
3:
4: This file is part of GNU CC.
5:
6: GNU CC is free software; you can redistribute it and/or modify
7: it under the terms of the GNU General Public License as published by
8: the Free Software Foundation; either version 2, or (at your option)
9: any later version.
10:
11: GNU CC is distributed in the hope that it will be useful,
12: but WITHOUT ANY WARRANTY; without even the implied warranty of
13: MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14: GNU General Public License for more details.
15:
16: You should have received a copy of the GNU General Public License
17: along with GNU CC; see the file COPYING. If not, write to
18: the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA. */
19:
20:
21: #include "config.h"
22: #include "rtl.h"
23: #include "tree.h"
24: #include "flags.h"
25: #include "expr.h"
26: #include "hard-reg-set.h"
27: #include "insn-config.h"
28: #include "recog.h"
29: #include "insn-flags.h"
30: #include "insn-codes.h"
31:
32: /* Return an rtx for the sum of X and the integer C. */
33:
34: rtx
35: plus_constant (x, c)
36: register rtx x;
37: register int c;
38: {
39: register RTX_CODE code;
40: register enum machine_mode mode;
41: register rtx tem;
42: int all_constant = 0;
43:
44: if (c == 0)
45: return x;
46:
47: restart:
48:
49: code = GET_CODE (x);
50: mode = GET_MODE (x);
51: switch (code)
52: {
53: case CONST_INT:
54: return gen_rtx (CONST_INT, VOIDmode, (INTVAL (x) + c));
55:
56: case CONST_DOUBLE:
57: {
58: int l1 = CONST_DOUBLE_LOW (x);
59: int h1 = CONST_DOUBLE_HIGH (x);
60: int l2 = c;
61: int h2 = c < 0 ? ~0 : 0;
62: int lv, hv;
63:
64: add_double (l1, h1, l2, h2, &lv, &hv);
65:
66: return immed_double_const (lv, hv, VOIDmode);
67: }
68:
69: case MEM:
70: /* If this is a reference to the constant pool, try replacing it with
71: a reference to a new constant. If the resulting address isn't
72: valid, don't return it because we have no way to validize it. */
73: if (GET_CODE (XEXP (x, 0)) == SYMBOL_REF
74: && CONSTANT_POOL_ADDRESS_P (XEXP (x, 0)))
75: {
76: tem
77: = force_const_mem (GET_MODE (x),
78: plus_constant (get_pool_constant (XEXP (x, 0)),
79: c));
80: if (memory_address_p (GET_MODE (tem), XEXP (tem, 0)))
81: return tem;
82: }
83: break;
84:
85: case CONST:
86: /* If adding to something entirely constant, set a flag
87: so that we can add a CONST around the result. */
88: x = XEXP (x, 0);
89: all_constant = 1;
90: goto restart;
91:
92: case SYMBOL_REF:
93: case LABEL_REF:
94: all_constant = 1;
95: break;
96:
97: case PLUS:
98: /* The interesting case is adding the integer to a sum.
99: Look for constant term in the sum and combine
100: with C. For an integer constant term, we make a combined
101: integer. For a constant term that is not an explicit integer,
102: we cannot really combine, but group them together anyway. */
103: if (GET_CODE (XEXP (x, 0)) == CONST_INT)
104: {
105: c += INTVAL (XEXP (x, 0));
106: x = XEXP (x, 1);
107: }
108: else if (GET_CODE (XEXP (x, 1)) == CONST_INT)
109: {
110: c += INTVAL (XEXP (x, 1));
111: x = XEXP (x, 0);
112: }
113: else if (CONSTANT_P (XEXP (x, 0)))
114: return gen_rtx (PLUS, mode,
115: plus_constant (XEXP (x, 0), c),
116: XEXP (x, 1));
117: else if (CONSTANT_P (XEXP (x, 1)))
118: return gen_rtx (PLUS, mode,
119: XEXP (x, 0),
120: plus_constant (XEXP (x, 1), c));
121: }
122:
123: if (c != 0)
124: x = gen_rtx (PLUS, mode, x, gen_rtx (CONST_INT, VOIDmode, c));
125:
126: if (GET_CODE (x) == SYMBOL_REF || GET_CODE (x) == LABEL_REF)
127: return x;
128: else if (all_constant)
129: return gen_rtx (CONST, mode, x);
130: else
131: return x;
132: }
133:
134: /* This is the same a `plus_constant', except that it handles LO_SUM. */
135:
136: rtx
137: plus_constant_for_output (x, c)
138: register rtx x;
139: register int c;
140: {
141: register RTX_CODE code = GET_CODE (x);
142: register enum machine_mode mode = GET_MODE (x);
143: int all_constant = 0;
144:
145: if (GET_CODE (x) == LO_SUM)
146: return gen_rtx (LO_SUM, mode, XEXP (x, 0),
147: plus_constant_for_output (XEXP (x, 1), c));
148:
149: else
150: return plus_constant (x, c);
151: }
152:
153: /* If X is a sum, return a new sum like X but lacking any constant terms.
154: Add all the removed constant terms into *CONSTPTR.
155: X itself is not altered. The result != X if and only if
156: it is not isomorphic to X. */
157:
158: rtx
159: eliminate_constant_term (x, constptr)
160: rtx x;
161: int *constptr;
162: {
163: int c;
164: register rtx x0, x1;
165:
166: if (GET_CODE (x) != PLUS)
167: return x;
168:
169: /* First handle constants appearing at this level explicitly. */
170: if (GET_CODE (XEXP (x, 0)) == CONST_INT)
171: {
172: *constptr += INTVAL (XEXP (x, 0));
173: return eliminate_constant_term (XEXP (x, 1), constptr);
174: }
175:
176: if (GET_CODE (XEXP (x, 1)) == CONST_INT)
177: {
178: *constptr += INTVAL (XEXP (x, 1));
179: return eliminate_constant_term (XEXP (x, 0), constptr);
180: }
181:
182: c = 0;
183: x0 = eliminate_constant_term (XEXP (x, 0), &c);
184: x1 = eliminate_constant_term (XEXP (x, 1), &c);
185: if (x1 != XEXP (x, 1) || x0 != XEXP (x, 0))
186: {
187: *constptr += c;
188: return gen_rtx (PLUS, GET_MODE (x), x0, x1);
189: }
190: return x;
191: }
192:
193: /* Returns the insn that next references REG after INSN, or 0
194: if REG is clobbered before next referenced or we cannot find
195: an insn that references REG in a straight-line piece of code. */
196:
197: rtx
198: find_next_ref (reg, insn)
199: rtx reg;
200: rtx insn;
201: {
202: rtx next;
203:
204: for (insn = NEXT_INSN (insn); insn; insn = next)
205: {
206: next = NEXT_INSN (insn);
207: if (GET_CODE (insn) == NOTE)
208: continue;
209: if (GET_CODE (insn) == CODE_LABEL
210: || GET_CODE (insn) == BARRIER)
211: return 0;
212: if (GET_CODE (insn) == INSN
213: || GET_CODE (insn) == JUMP_INSN
214: || GET_CODE (insn) == CALL_INSN)
215: {
216: if (reg_set_p (reg, insn))
217: return 0;
218: if (reg_mentioned_p (reg, PATTERN (insn)))
219: return insn;
220: if (GET_CODE (insn) == JUMP_INSN)
221: {
222: if (simplejump_p (insn))
223: next = JUMP_LABEL (insn);
224: else
225: return 0;
226: }
227: if (GET_CODE (insn) == CALL_INSN
228: && REGNO (reg) < FIRST_PSEUDO_REGISTER
229: && call_used_regs[REGNO (reg)])
230: return 0;
231: }
232: else
233: abort ();
234: }
235: return 0;
236: }
237:
238: /* Return an rtx for the size in bytes of the value of EXP. */
239:
240: rtx
241: expr_size (exp)
242: tree exp;
243: {
244: return expand_expr (size_in_bytes (TREE_TYPE (exp)),
245: 0, TYPE_MODE (sizetype), 0);
246: }
247:
248: /* Return a copy of X in which all memory references
249: and all constants that involve symbol refs
250: have been replaced with new temporary registers.
251: Also emit code to load the memory locations and constants
252: into those registers.
253:
254: If X contains no such constants or memory references,
255: X itself (not a copy) is returned.
256:
257: If a constant is found in the address that is not a legitimate constant
258: in an insn, it is left alone in the hope that it might be valid in the
259: address.
260:
261: X may contain no arithmetic except addition, subtraction and multiplication.
262: Values returned by expand_expr with 1 for sum_ok fit this constraint. */
263:
264: static rtx
265: break_out_memory_refs (x)
266: register rtx x;
267: {
268: if (GET_CODE (x) == MEM
269: || (CONSTANT_P (x) && LEGITIMATE_CONSTANT_P (x)
270: && GET_MODE (x) != VOIDmode))
271: {
272: register rtx temp = force_reg (GET_MODE (x), x);
273: mark_reg_pointer (temp);
274: x = temp;
275: }
276: else if (GET_CODE (x) == PLUS || GET_CODE (x) == MINUS
277: || GET_CODE (x) == MULT)
278: {
279: register rtx op0 = break_out_memory_refs (XEXP (x, 0));
280: register rtx op1 = break_out_memory_refs (XEXP (x, 1));
281: if (op0 != XEXP (x, 0) || op1 != XEXP (x, 1))
282: x = gen_rtx (GET_CODE (x), Pmode, op0, op1);
283: }
284: return x;
285: }
286:
287: /* Given a memory address or facsimile X, construct a new address,
288: currently equivalent, that is stable: future stores won't change it.
289:
290: X must be composed of constants, register and memory references
291: combined with addition, subtraction and multiplication:
292: in other words, just what you can get from expand_expr if sum_ok is 1.
293:
294: Works by making copies of all regs and memory locations used
295: by X and combining them the same way X does.
296: You could also stabilize the reference to this address
297: by copying the address to a register with copy_to_reg;
298: but then you wouldn't get indexed addressing in the reference. */
299:
300: rtx
301: copy_all_regs (x)
302: register rtx x;
303: {
304: if (GET_CODE (x) == REG)
305: {
306: if (REGNO (x) != FRAME_POINTER_REGNUM)
307: x = copy_to_reg (x);
308: }
309: else if (GET_CODE (x) == MEM)
310: x = copy_to_reg (x);
311: else if (GET_CODE (x) == PLUS || GET_CODE (x) == MINUS
312: || GET_CODE (x) == MULT)
313: {
314: register rtx op0 = copy_all_regs (XEXP (x, 0));
315: register rtx op1 = copy_all_regs (XEXP (x, 1));
316: if (op0 != XEXP (x, 0) || op1 != XEXP (x, 1))
317: x = gen_rtx (GET_CODE (x), Pmode, op0, op1);
318: }
319: return x;
320: }
321:
322: /* Return something equivalent to X but valid as a memory address
323: for something of mode MODE. When X is not itself valid, this
324: works by copying X or subexpressions of it into registers. */
325:
326: rtx
327: memory_address (mode, x)
328: enum machine_mode mode;
329: register rtx x;
330: {
331: register rtx oldx;
332:
333: /* By passing constant addresses thru registers
334: we get a chance to cse them. */
335: if (! cse_not_expected && CONSTANT_P (x) && LEGITIMATE_CONSTANT_P (x))
336: return force_reg (Pmode, x);
337:
338: /* Accept a QUEUED that refers to a REG
339: even though that isn't a valid address.
340: On attempting to put this in an insn we will call protect_from_queue
341: which will turn it into a REG, which is valid. */
342: if (GET_CODE (x) == QUEUED
343: && GET_CODE (QUEUED_VAR (x)) == REG)
344: return x;
345:
346: /* We get better cse by rejecting indirect addressing at this stage.
347: Let the combiner create indirect addresses where appropriate.
348: For now, generate the code so that the subexpressions useful to share
349: are visible. But not if cse won't be done! */
350: oldx = x;
351: if (! cse_not_expected && GET_CODE (x) != REG)
352: x = break_out_memory_refs (x);
353:
354: /* At this point, any valid address is accepted. */
355: GO_IF_LEGITIMATE_ADDRESS (mode, x, win);
356:
357: /* If it was valid before but breaking out memory refs invalidated it,
358: use it the old way. */
359: if (memory_address_p (mode, oldx))
360: goto win2;
361:
362: /* Perform machine-dependent transformations on X
363: in certain cases. This is not necessary since the code
364: below can handle all possible cases, but machine-dependent
365: transformations can make better code. */
366: LEGITIMIZE_ADDRESS (x, oldx, mode, win);
367:
368: /* PLUS and MULT can appear in special ways
369: as the result of attempts to make an address usable for indexing.
370: Usually they are dealt with by calling force_operand, below.
371: But a sum containing constant terms is special
372: if removing them makes the sum a valid address:
373: then we generate that address in a register
374: and index off of it. We do this because it often makes
375: shorter code, and because the addresses thus generated
376: in registers often become common subexpressions. */
377: if (GET_CODE (x) == PLUS)
378: {
379: int constant_term = 0;
380: rtx y = eliminate_constant_term (x, &constant_term);
381: if (constant_term == 0
382: || ! memory_address_p (mode, y))
383: return force_operand (x, 0);
384:
385: y = plus_constant (copy_to_reg (y), constant_term);
386: if (! memory_address_p (mode, y))
387: return force_operand (x, 0);
388: return y;
389: }
390: if (GET_CODE (x) == MULT || GET_CODE (x) == MINUS)
391: return force_operand (x, 0);
392:
393: /* If we have a register that's an invalid address,
394: it must be a hard reg of the wrong class. Copy it to a pseudo. */
395: if (GET_CODE (x) == REG)
396: return copy_to_reg (x);
397:
398: /* Last resort: copy the value to a register, since
399: the register is a valid address. */
400: return force_reg (Pmode, x);
401:
402: win2:
403: x = oldx;
404: win:
405: if (flag_force_addr && ! cse_not_expected && GET_CODE (x) != REG
406: /* Don't copy an addr via a reg if it is one of our stack slots. */
407: && ! (GET_CODE (x) == PLUS
408: && (XEXP (x, 0) == virtual_stack_vars_rtx
409: || XEXP (x, 0) == virtual_incoming_args_rtx)))
410: {
411: if (general_operand (x, Pmode))
412: return force_reg (Pmode, x);
413: else
414: return force_operand (x, 0);
415: }
416: return x;
417: }
418:
419: /* Like `memory_address' but pretend `flag_force_addr' is 0. */
420:
421: rtx
422: memory_address_noforce (mode, x)
423: enum machine_mode mode;
424: rtx x;
425: {
426: int ambient_force_addr = flag_force_addr;
427: rtx val;
428:
429: flag_force_addr = 0;
430: val = memory_address (mode, x);
431: flag_force_addr = ambient_force_addr;
432: return val;
433: }
434:
435: /* Convert a mem ref into one with a valid memory address.
436: Pass through anything else unchanged. */
437:
438: rtx
439: validize_mem (ref)
440: rtx ref;
441: {
442: if (GET_CODE (ref) != MEM)
443: return ref;
444: if (memory_address_p (GET_MODE (ref), XEXP (ref, 0)))
445: return ref;
446: /* Don't alter REF itself, since that is probably a stack slot. */
447: return change_address (ref, GET_MODE (ref), XEXP (ref, 0));
448: }
449:
450: /* Return a modified copy of X with its memory address copied
451: into a temporary register to protect it from side effects.
452: If X is not a MEM, it is returned unchanged (and not copied).
453: Perhaps even if it is a MEM, if there is no need to change it. */
454:
455: rtx
456: stabilize (x)
457: rtx x;
458: {
459: register rtx addr;
460: if (GET_CODE (x) != MEM)
461: return x;
462: addr = XEXP (x, 0);
463: if (rtx_unstable_p (addr))
464: {
465: rtx temp = copy_all_regs (addr);
466: rtx mem;
467: if (GET_CODE (temp) != REG)
468: temp = copy_to_reg (temp);
469: mem = gen_rtx (MEM, GET_MODE (x), temp);
470: /* Mark returned memref with in_struct
471: if it's in an array or structure. */
472: if (GET_CODE (addr) == PLUS || MEM_IN_STRUCT_P (x))
473: MEM_IN_STRUCT_P (mem) = 1;
474: return mem;
475: }
476: return x;
477: }
478:
479: /* Copy the value or contents of X to a new temp reg and return that reg. */
480:
481: rtx
482: copy_to_reg (x)
483: rtx x;
484: {
485: register rtx temp = gen_reg_rtx (GET_MODE (x));
486:
487: /* If not an operand, must be an address with PLUS and MULT so
488: do the computation. */
489: if (! general_operand (x, VOIDmode))
490: x = force_operand (x, temp);
491:
492: if (x != temp)
493: emit_move_insn (temp, x);
494:
495: return temp;
496: }
497:
498: /* Like copy_to_reg but always give the new register mode Pmode
499: in case X is a constant. */
500:
501: rtx
502: copy_addr_to_reg (x)
503: rtx x;
504: {
505: return copy_to_mode_reg (Pmode, x);
506: }
507:
508: /* Like copy_to_reg but always give the new register mode MODE
509: in case X is a constant. */
510:
511: rtx
512: copy_to_mode_reg (mode, x)
513: enum machine_mode mode;
514: rtx x;
515: {
516: register rtx temp = gen_reg_rtx (mode);
517:
518: /* If not an operand, must be an address with PLUS and MULT so
519: do the computation. */
520: if (! general_operand (x, VOIDmode))
521: x = force_operand (x, temp);
522:
523: if (GET_MODE (x) != mode && GET_MODE (x) != VOIDmode)
524: abort ();
525: if (x != temp)
526: emit_move_insn (temp, x);
527: return temp;
528: }
529:
530: /* Load X into a register if it is not already one.
531: Use mode MODE for the register.
532: X should be valid for mode MODE, but it may be a constant which
533: is valid for all integer modes; that's why caller must specify MODE.
534:
535: The caller must not alter the value in the register we return,
536: since we mark it as a "constant" register. */
537:
538: rtx
539: force_reg (mode, x)
540: enum machine_mode mode;
541: rtx x;
542: {
543: register rtx temp, insn;
544:
545: if (GET_CODE (x) == REG)
546: return x;
547: temp = gen_reg_rtx (mode);
548: insn = emit_move_insn (temp, x);
549: /* Let optimizers know that TEMP's value never changes
550: and that X can be substituted for it. */
551: if (CONSTANT_P (x))
552: {
553: rtx note = find_reg_note (insn, REG_EQUAL, 0);
554:
555: if (note)
556: XEXP (note, 0) = x;
557: else
558: REG_NOTES (insn) = gen_rtx (EXPR_LIST, REG_EQUAL, x, REG_NOTES (insn));
559: }
560: return temp;
561: }
562:
563: /* If X is a memory ref, copy its contents to a new temp reg and return
564: that reg. Otherwise, return X. */
565:
566: rtx
567: force_not_mem (x)
568: rtx x;
569: {
570: register rtx temp;
571: if (GET_CODE (x) != MEM || GET_MODE (x) == BLKmode)
572: return x;
573: temp = gen_reg_rtx (GET_MODE (x));
574: emit_move_insn (temp, x);
575: return temp;
576: }
577:
578: /* Copy X to TARGET (if it's nonzero and a reg)
579: or to a new temp reg and return that reg.
580:
581: If we need to make a temp reg, try getting the mode from
582: both X and TARGET. */
583:
584: rtx
585: copy_to_suggested_reg (x, target)
586: rtx x, target;
587: {
588: register rtx temp;
589:
590: if (target && GET_CODE (target) == REG)
591: temp = target;
592: else
593: {
594: enum machine_mode mode = GET_MODE (x);
595:
596: if (mode == VOIDmode && target != 0)
597: mode = GET_MODE (target);
598:
599: temp = gen_reg_rtx (mode);
600: }
601:
602: emit_move_insn (temp, x);
603: return temp;
604: }
605:
606: /* Adjust the stack pointer by ADJUST (an rtx for a number of bytes).
607: This pops when ADJUST is positive. ADJUST need not be constant. */
608:
609: void
610: adjust_stack (adjust)
611: rtx adjust;
612: {
613: rtx temp;
614: adjust = protect_from_queue (adjust, 0);
615:
616: if (adjust == const0_rtx)
617: return;
618:
619: temp = expand_binop (Pmode,
620: #ifdef STACK_GROWS_DOWNWARD
621: add_optab,
622: #else
623: sub_optab,
624: #endif
625: stack_pointer_rtx, adjust, stack_pointer_rtx, 0,
626: OPTAB_LIB_WIDEN);
627:
628: if (temp != stack_pointer_rtx)
629: emit_move_insn (stack_pointer_rtx, temp);
630: }
631:
632: /* Adjust the stack pointer by minus ADJUST (an rtx for a number of bytes).
633: This pushes when ADJUST is positive. ADJUST need not be constant. */
634:
635: void
636: anti_adjust_stack (adjust)
637: rtx adjust;
638: {
639: rtx temp;
640: adjust = protect_from_queue (adjust, 0);
641:
642: if (adjust == const0_rtx)
643: return;
644:
645: temp = expand_binop (Pmode,
646: #ifdef STACK_GROWS_DOWNWARD
647: sub_optab,
648: #else
649: add_optab,
650: #endif
651: stack_pointer_rtx, adjust, stack_pointer_rtx, 0,
652: OPTAB_LIB_WIDEN);
653:
654: if (temp != stack_pointer_rtx)
655: emit_move_insn (stack_pointer_rtx, temp);
656: }
657:
658: /* Round the size of a block to be pushed up to the boundary required
659: by this machine. SIZE is the desired size, which need not be constant. */
660:
661: rtx
662: round_push (size)
663: rtx size;
664: {
665: #ifdef STACK_BOUNDARY
666: int align = STACK_BOUNDARY / BITS_PER_UNIT;
667: if (align == 1)
668: return size;
669: if (GET_CODE (size) == CONST_INT)
670: {
671: int new = (INTVAL (size) + align - 1) / align * align;
672: if (INTVAL (size) != new)
673: size = gen_rtx (CONST_INT, VOIDmode, new);
674: }
675: else
676: {
677: size = expand_divmod (0, CEIL_DIV_EXPR, Pmode, size,
678: gen_rtx (CONST_INT, VOIDmode, align),
679: 0, 1);
680: size = expand_mult (Pmode, size,
681: gen_rtx (CONST_INT, VOIDmode, align),
682: 0, 1);
683: }
684: #endif /* STACK_BOUNDARY */
685: return size;
686: }
687:
688: /* Return an rtx representing the address of an area of memory dynamically
689: pushed on the stack. This region of memory is always aligned to
690: a multiple of BIGGEST_ALIGNMENT.
691:
692: Any required stack pointer alignment is preserved.
693:
694: SIZE is an rtx representing the size of the area.
695: TARGET is a place in which the address can be placed. */
696:
697: rtx
698: allocate_dynamic_stack_space (size, target)
699: rtx size;
700: rtx target;
701: {
702: /* Ensure the size is in the proper mode. */
703: if (GET_MODE (size) != VOIDmode && GET_MODE (size) != Pmode)
704: size = convert_to_mode (Pmode, size, 1);
705:
706: /* We will need to ensure that the address we return is aligned to
707: BIGGEST_ALIGNMENT. If STACK_DYNAMIC_OFFSET is defined, we don't
708: always know its final value at this point in the compilation (it
709: might depend on the size of the outgoing parameter lists, for
710: example), so we must align the value to be returned in that case.
711: (Note that STACK_DYNAMIC_OFFSET will have a default non-zero value if
712: STACK_POINTER_OFFSET or ACCUMULATE_OUTGOING_ARGS are defined).
713: We must also do an alignment operation on the returned value if
714: the stack pointer alignment is less strict that BIGGEST_ALIGNMENT.
715:
716: If we have to align, we must leave space in SIZE for the hole
717: that might result from the alignment operation. */
718:
719: #if defined (STACK_DYNAMIC_OFFSET) || defined(STACK_POINTER_OFFSET) || defined (ALLOCATE_OUTGOING_ARGS)
720: #define MUST_ALIGN
721: #endif
722:
723: #if ! defined (MUST_ALIGN) && (!defined(STACK_BOUNDARY) || STACK_BOUNDARY < BIGGEST_ALIGNMENT)
724: #define MUST_ALIGN
725: #endif
726:
727: #ifdef MUST_ALIGN
728:
729: if (GET_CODE (size) == CONST_INT)
730: size = gen_rtx (CONST_INT, VOIDmode,
731: INTVAL (size) + (BIGGEST_ALIGNMENT / BITS_PER_UNIT - 1));
732: else
733: size = expand_binop (Pmode, add_optab, size,
734: gen_rtx (CONST_INT, VOIDmode,
735: BIGGEST_ALIGNMENT / BITS_PER_UNIT - 1),
736: 0, 1, OPTAB_LIB_WIDEN);
737: #endif
738:
739: #ifdef SETJMP_VIA_SAVE_AREA
740: /* If setjmp restores regs from a save area in the stack frame,
741: avoid clobbering the reg save area. Note that the offset of
742: virtual_incoming_args_rtx includes the preallocated stack args space.
743: It would be no problem to clobber that, but it's on the wrong side
744: of the old save area. */
745: {
746: rtx dynamic_offset
747: = expand_binop (Pmode, sub_optab, virtual_stack_dynamic_rtx,
748: stack_pointer_rtx, 0, 1, OPTAB_LIB_WIDEN);
749: size = expand_binop (Pmode, add_optab, size, dynamic_offset,
750: 0, 1, OPTAB_LIB_WIDEN);
751: }
752: #endif /* SETJMP_VIA_SAVE_AREA */
753:
754: /* Round the size to a multiple of the required stack alignment.
755: Since the stack if presumed to be rounded before this allocation,
756: this will maintain the required alignment.
757:
758: If the stack grows downward, we could save an insn by subtracting
759: SIZE from the stack pointer and then aligning the stack pointer.
760: The problem with this is that the stack pointer may be unaligned
761: between the execution of the subtraction and alignment insns and
762: some machines do not allow this. Even on those that do, some
763: signal handlers malfunction if a signal should occur between those
764: insns. Since this is an extremely rare event, we have no reliable
765: way of knowing which systems have this problem. So we avoid even
766: momentarily mis-aligning the stack. */
767:
768: size = round_push (size);
769:
770: do_pending_stack_adjust ();
771:
772: if (target == 0)
773: target = gen_reg_rtx (Pmode);
774:
775: #ifndef STACK_GROWS_DOWNWARD
776: emit_move_insn (target, virtual_stack_dynamic_rtx);
777: #endif
778:
779: /* Perform the required allocation from the stack. Some systems do
780: this differently than simply incrementing/decrementing from the
781: stack pointer. */
782: #ifdef HAVE_allocate_stack
783: if (HAVE_allocate_stack)
784: {
785: enum machine_mode mode
786: = insn_operand_mode[(int) CODE_FOR_allocate_stack][0];
787:
788: if (insn_operand_predicate[(int) CODE_FOR_allocate_stack][0]
789: && ! ((*insn_operand_predicate[(int) CODE_FOR_allocate_stack][0])
790: (size, mode)))
791: size = copy_to_mode_reg (mode, size);
792:
793: emit_insn (gen_allocate_stack (size));
794: }
795: else
796: #endif
797: anti_adjust_stack (size);
798:
799: #ifdef STACK_GROWS_DOWNWARD
800: emit_move_insn (target, virtual_stack_dynamic_rtx);
801: #endif
802:
803: #ifdef MUST_ALIGN
804: target = expand_divmod (0, CEIL_DIV_EXPR, Pmode, target,
805: gen_rtx (CONST_INT, VOIDmode,
806: BIGGEST_ALIGNMENT / BITS_PER_UNIT),
807: 0, 1);
808:
809: target = expand_mult (Pmode, target,
810: gen_rtx (CONST_INT, VOIDmode,
811: BIGGEST_ALIGNMENT / BITS_PER_UNIT),
812: 0, 1);
813: #endif
814:
815: /* Some systems require a particular insn to refer to the stack
816: to make the pages exist. */
817: #ifdef HAVE_probe
818: if (HAVE_probe)
819: emit_insn (gen_probe ());
820: #endif
821:
822: return target;
823: }
824:
825: /* Return an rtx representing the register or memory location
826: in which a scalar value of data type VALTYPE
827: was returned by a function call to function FUNC.
828: FUNC is a FUNCTION_DECL node if the precise function is known,
829: otherwise 0. */
830:
831: rtx
832: hard_function_value (valtype, func)
833: tree valtype;
834: tree func;
835: {
836: return FUNCTION_VALUE (valtype, func);
837: }
838:
839: /* Return an rtx representing the register or memory location
840: in which a scalar value of mode MODE was returned by a library call. */
841:
842: rtx
843: hard_libcall_value (mode)
844: enum machine_mode mode;
845: {
846: return LIBCALL_VALUE (mode);
847: }
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