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[official-gcc.git] / gcc / caller-save.c
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1 /* Save and restore call-clobbered registers which are live across a call.
2 Copyright (C) 1989, 1992, 1994, 1995, 1997, 1998,
3 1999, 2000 Free Software Foundation, Inc.
5 This file is part of GNU CC.
7 GNU CC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 2, or (at your option)
10 any later version.
12 GNU CC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GNU CC; see the file COPYING. If not, write to
19 the Free Software Foundation, 59 Temple Place - Suite 330,
20 Boston, MA 02111-1307, USA. */
22 #include "config.h"
23 #include "system.h"
24 #include "rtl.h"
25 #include "insn-config.h"
26 #include "flags.h"
27 #include "regs.h"
28 #include "hard-reg-set.h"
29 #include "recog.h"
30 #include "basic-block.h"
31 #include "reload.h"
32 #include "function.h"
33 #include "expr.h"
34 #include "toplev.h"
35 #include "tm_p.h"
37 #ifndef MAX_MOVE_MAX
38 #define MAX_MOVE_MAX MOVE_MAX
39 #endif
41 #ifndef MIN_UNITS_PER_WORD
42 #define MIN_UNITS_PER_WORD UNITS_PER_WORD
43 #endif
45 #define MOVE_MAX_WORDS (MOVE_MAX / UNITS_PER_WORD)
47 /* Modes for each hard register that we can save. The smallest mode is wide
48 enough to save the entire contents of the register. When saving the
49 register because it is live we first try to save in multi-register modes.
50 If that is not possible the save is done one register at a time. */
52 static enum machine_mode
53 regno_save_mode[FIRST_PSEUDO_REGISTER][MAX_MOVE_MAX / MIN_UNITS_PER_WORD + 1];
55 /* For each hard register, a place on the stack where it can be saved,
56 if needed. */
58 static rtx
59 regno_save_mem[FIRST_PSEUDO_REGISTER][MAX_MOVE_MAX / MIN_UNITS_PER_WORD + 1];
61 /* We will only make a register eligible for caller-save if it can be
62 saved in its widest mode with a simple SET insn as long as the memory
63 address is valid. We record the INSN_CODE is those insns here since
64 when we emit them, the addresses might not be valid, so they might not
65 be recognized. */
67 static enum insn_code
68 reg_save_code[FIRST_PSEUDO_REGISTER][MAX_MACHINE_MODE];
69 static enum insn_code
70 reg_restore_code[FIRST_PSEUDO_REGISTER][MAX_MACHINE_MODE];
72 /* Set of hard regs currently residing in save area (during insn scan). */
74 static HARD_REG_SET hard_regs_saved;
76 /* Number of registers currently in hard_regs_saved. */
78 static int n_regs_saved;
80 /* Computed by mark_referenced_regs, all regs referenced in a given
81 insn. */
82 static HARD_REG_SET referenced_regs;
84 /* Computed in mark_set_regs, holds all registers set by the current
85 instruction. */
86 static HARD_REG_SET this_insn_sets;
89 static void mark_set_regs PARAMS ((rtx, rtx, void *));
90 static void mark_referenced_regs PARAMS ((rtx));
91 static int insert_save PARAMS ((struct insn_chain *, int, int,
92 HARD_REG_SET *,
93 enum machine_mode *));
94 static int insert_restore PARAMS ((struct insn_chain *, int, int,
95 int, enum machine_mode *));
96 static struct insn_chain *insert_one_insn PARAMS ((struct insn_chain *, int,
97 enum insn_code, rtx));
98 static void add_stored_regs PARAMS ((rtx, rtx, void *));
100 /* Initialize for caller-save.
102 Look at all the hard registers that are used by a call and for which
103 regclass.c has not already excluded from being used across a call.
105 Ensure that we can find a mode to save the register and that there is a
106 simple insn to save and restore the register. This latter check avoids
107 problems that would occur if we tried to save the MQ register of some
108 machines directly into memory. */
110 void
111 init_caller_save ()
113 rtx addr_reg;
114 int offset;
115 rtx address;
116 int i, j;
117 enum machine_mode mode;
119 /* First find all the registers that we need to deal with and all
120 the modes that they can have. If we can't find a mode to use,
121 we can't have the register live over calls. */
123 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
125 if (call_used_regs[i] && ! call_fixed_regs[i])
127 for (j = 1; j <= MOVE_MAX_WORDS; j++)
129 regno_save_mode[i][j] = HARD_REGNO_CALLER_SAVE_MODE (i, j,
130 VOIDmode);
131 if (regno_save_mode[i][j] == VOIDmode && j == 1)
133 call_fixed_regs[i] = 1;
134 SET_HARD_REG_BIT (call_fixed_reg_set, i);
138 else
139 regno_save_mode[i][1] = VOIDmode;
142 /* The following code tries to approximate the conditions under which
143 we can easily save and restore a register without scratch registers or
144 other complexities. It will usually work, except under conditions where
145 the validity of an insn operand is dependent on the address offset.
146 No such cases are currently known.
148 We first find a typical offset from some BASE_REG_CLASS register.
149 This address is chosen by finding the first register in the class
150 and by finding the smallest power of two that is a valid offset from
151 that register in every mode we will use to save registers. */
153 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
154 if (TEST_HARD_REG_BIT (reg_class_contents[(int) BASE_REG_CLASS], i))
155 break;
157 if (i == FIRST_PSEUDO_REGISTER)
158 abort ();
160 addr_reg = gen_rtx_REG (Pmode, i);
162 for (offset = 1 << (HOST_BITS_PER_INT / 2); offset; offset >>= 1)
164 address = gen_rtx_PLUS (Pmode, addr_reg, GEN_INT (offset));
166 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
167 if (regno_save_mode[i][1] != VOIDmode
168 && ! strict_memory_address_p (regno_save_mode[i][1], address))
169 break;
171 if (i == FIRST_PSEUDO_REGISTER)
172 break;
175 /* If we didn't find a valid address, we must use register indirect. */
176 if (offset == 0)
177 address = addr_reg;
179 /* Next we try to form an insn to save and restore the register. We
180 see if such an insn is recognized and meets its constraints. */
182 start_sequence ();
184 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
185 for (mode = 0 ; mode < MAX_MACHINE_MODE; mode++)
186 if (HARD_REGNO_MODE_OK (i, mode))
188 rtx mem = gen_rtx_MEM (mode, address);
189 rtx reg = gen_rtx_REG (mode, i);
190 rtx savepat = gen_rtx_SET (VOIDmode, mem, reg);
191 rtx restpat = gen_rtx_SET (VOIDmode, reg, mem);
192 rtx saveinsn = emit_insn (savepat);
193 rtx restinsn = emit_insn (restpat);
194 int ok;
196 reg_save_code[i][mode] = recog_memoized (saveinsn);
197 reg_restore_code[i][mode] = recog_memoized (restinsn);
199 /* Now extract both insns and see if we can meet their
200 constraints. */
201 ok = (reg_save_code[i][mode] != (enum insn_code)-1
202 && reg_restore_code[i][mode] != (enum insn_code)-1);
203 if (ok)
205 extract_insn (saveinsn);
206 ok = constrain_operands (1);
207 extract_insn (restinsn);
208 ok &= constrain_operands (1);
211 if (! ok)
213 reg_save_code[i][mode] = (enum insn_code) -1;
214 reg_restore_code[i][mode] = (enum insn_code) -1;
217 else
219 reg_save_code[i][mode] = (enum insn_code) -1;
220 reg_restore_code[i][mode] = (enum insn_code) -1;
222 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
223 for (j = 1; j <= MOVE_MAX_WORDS; j++)
224 if (reg_save_code [i][regno_save_mode[i][j]] == (enum insn_code) -1)
226 regno_save_mode[i][j] = VOIDmode;
227 if (j == 1)
229 call_fixed_regs[i] = 1;
230 SET_HARD_REG_BIT (call_fixed_reg_set, i);
234 end_sequence ();
237 /* Initialize save areas by showing that we haven't allocated any yet. */
239 void
240 init_save_areas ()
242 int i, j;
244 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
245 for (j = 1; j <= MOVE_MAX_WORDS; j++)
246 regno_save_mem[i][j] = 0;
249 /* Allocate save areas for any hard registers that might need saving.
250 We take a conservative approach here and look for call-clobbered hard
251 registers that are assigned to pseudos that cross calls. This may
252 overestimate slightly (especially if some of these registers are later
253 used as spill registers), but it should not be significant.
255 Future work:
257 In the fallback case we should iterate backwards across all possible
258 modes for the save, choosing the largest available one instead of
259 falling back to the smallest mode immediately. (eg TF -> DF -> SF).
261 We do not try to use "move multiple" instructions that exist
262 on some machines (such as the 68k moveml). It could be a win to try
263 and use them when possible. The hard part is doing it in a way that is
264 machine independent since they might be saving non-consecutive
265 registers. (imagine caller-saving d0,d1,a0,a1 on the 68k) */
267 void
268 setup_save_areas ()
270 int i, j, k;
271 unsigned int r;
272 HARD_REG_SET hard_regs_used;
274 /* Allocate space in the save area for the largest multi-register
275 pseudos first, then work backwards to single register
276 pseudos. */
278 /* Find and record all call-used hard-registers in this function. */
279 CLEAR_HARD_REG_SET (hard_regs_used);
280 for (i = FIRST_PSEUDO_REGISTER; i < max_regno; i++)
281 if (reg_renumber[i] >= 0 && REG_N_CALLS_CROSSED (i) > 0)
283 unsigned int regno = reg_renumber[i];
284 unsigned int endregno
285 = regno + HARD_REGNO_NREGS (regno, GET_MODE (regno_reg_rtx[i]));
287 for (r = regno; r < endregno; r++)
288 if (call_used_regs[r])
289 SET_HARD_REG_BIT (hard_regs_used, r);
292 /* Now run through all the call-used hard-registers and allocate
293 space for them in the caller-save area. Try to allocate space
294 in a manner which allows multi-register saves/restores to be done. */
296 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
297 for (j = MOVE_MAX_WORDS; j > 0; j--)
299 int do_save = 1;
301 /* If no mode exists for this size, try another. Also break out
302 if we have already saved this hard register. */
303 if (regno_save_mode[i][j] == VOIDmode || regno_save_mem[i][1] != 0)
304 continue;
306 /* See if any register in this group has been saved. */
307 for (k = 0; k < j; k++)
308 if (regno_save_mem[i + k][1])
310 do_save = 0;
311 break;
313 if (! do_save)
314 continue;
316 for (k = 0; k < j; k++)
317 if (! TEST_HARD_REG_BIT (hard_regs_used, i + k))
319 do_save = 0;
320 break;
322 if (! do_save)
323 continue;
325 /* We have found an acceptable mode to store in. */
326 regno_save_mem[i][j]
327 = assign_stack_local (regno_save_mode[i][j],
328 GET_MODE_SIZE (regno_save_mode[i][j]), 0);
330 /* Setup single word save area just in case... */
331 for (k = 0; k < j; k++)
333 /* This should not depend on WORDS_BIG_ENDIAN.
334 The order of words in regs is the same as in memory. */
335 rtx temp = gen_rtx_MEM (regno_save_mode[i + k][1],
336 XEXP (regno_save_mem[i][j], 0));
338 regno_save_mem[i + k][1]
339 = adj_offsettable_operand (temp, k * UNITS_PER_WORD);
343 /* Now loop again and set the alias set of any save areas we made to
344 the alias set used to represent frame objects. */
345 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
346 for (j = MOVE_MAX_WORDS; j > 0; j--)
347 if (regno_save_mem[i][j] != 0)
348 MEM_ALIAS_SET (regno_save_mem[i][j]) = get_frame_alias_set ();
351 /* Find the places where hard regs are live across calls and save them. */
353 void
354 save_call_clobbered_regs ()
356 struct insn_chain *chain, *next;
357 enum machine_mode save_mode [FIRST_PSEUDO_REGISTER];
359 CLEAR_HARD_REG_SET (hard_regs_saved);
360 n_regs_saved = 0;
362 for (chain = reload_insn_chain; chain != 0; chain = next)
364 rtx insn = chain->insn;
365 enum rtx_code code = GET_CODE (insn);
367 next = chain->next;
369 if (chain->is_caller_save_insn)
370 abort ();
372 if (GET_RTX_CLASS (code) == 'i')
374 /* If some registers have been saved, see if INSN references
375 any of them. We must restore them before the insn if so. */
377 if (n_regs_saved)
379 int regno;
381 if (code == JUMP_INSN)
382 /* Restore all registers if this is a JUMP_INSN. */
383 COPY_HARD_REG_SET (referenced_regs, hard_regs_saved);
384 else
386 CLEAR_HARD_REG_SET (referenced_regs);
387 mark_referenced_regs (PATTERN (insn));
388 AND_HARD_REG_SET (referenced_regs, hard_regs_saved);
391 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
392 if (TEST_HARD_REG_BIT (referenced_regs, regno))
393 regno += insert_restore (chain, 1, regno, MOVE_MAX_WORDS, save_mode);
396 if (code == CALL_INSN)
398 int regno;
399 HARD_REG_SET hard_regs_to_save;
401 /* Use the register life information in CHAIN to compute which
402 regs are live during the call. */
403 REG_SET_TO_HARD_REG_SET (hard_regs_to_save,
404 &chain->live_throughout);
405 /* Save hard registers always in the widest mode availble. */
406 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
407 if (TEST_HARD_REG_BIT (hard_regs_to_save, regno))
408 save_mode [regno] = regno_save_mode [regno][1];
409 else
410 save_mode [regno] = VOIDmode;
412 /* Look trought all live pseudos, mark their hard registers
413 and choose proper mode for saving. */
414 EXECUTE_IF_SET_IN_REG_SET
415 (&chain->live_throughout, FIRST_PSEUDO_REGISTER, regno,
417 int r = reg_renumber[regno];
418 int nregs;
420 if (r >= 0)
422 enum machine_mode mode;
424 nregs = HARD_REGNO_NREGS (r, PSEUDO_REGNO_MODE (regno));
425 mode = HARD_REGNO_CALLER_SAVE_MODE
426 (r, nregs, PSEUDO_REGNO_MODE (regno));
427 if (GET_MODE_BITSIZE (mode)
428 > GET_MODE_BITSIZE (save_mode[r]))
429 save_mode[r] = mode;
430 while (nregs-- > 0)
431 SET_HARD_REG_BIT (hard_regs_to_save, r + nregs);
433 else
434 abort ();
437 /* Record all registers set in this call insn. These don't need
438 to be saved. N.B. the call insn might set a subreg of a
439 multi-hard-reg pseudo; then the pseudo is considered live
440 during the call, but the subreg that is set isn't. */
441 CLEAR_HARD_REG_SET (this_insn_sets);
442 note_stores (PATTERN (insn), mark_set_regs, NULL);
444 /* Compute which hard regs must be saved before this call. */
445 AND_COMPL_HARD_REG_SET (hard_regs_to_save, call_fixed_reg_set);
446 AND_COMPL_HARD_REG_SET (hard_regs_to_save, this_insn_sets);
447 AND_COMPL_HARD_REG_SET (hard_regs_to_save, hard_regs_saved);
448 AND_HARD_REG_SET (hard_regs_to_save, call_used_reg_set);
450 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
451 if (TEST_HARD_REG_BIT (hard_regs_to_save, regno))
452 regno += insert_save (chain, 1, regno, &hard_regs_to_save, save_mode);
454 /* Must recompute n_regs_saved. */
455 n_regs_saved = 0;
456 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
457 if (TEST_HARD_REG_BIT (hard_regs_saved, regno))
458 n_regs_saved++;
462 if (chain->next == 0 || chain->next->block > chain->block)
464 int regno;
465 /* At the end of the basic block, we must restore any registers that
466 remain saved. If the last insn in the block is a JUMP_INSN, put
467 the restore before the insn, otherwise, put it after the insn. */
469 if (n_regs_saved)
470 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
471 if (TEST_HARD_REG_BIT (hard_regs_saved, regno))
472 regno += insert_restore (chain, GET_CODE (insn) == JUMP_INSN,
473 regno, MOVE_MAX_WORDS, save_mode);
478 /* Here from note_stores when an insn stores a value in a register.
479 Set the proper bit or bits in this_insn_sets. All pseudos that have
480 been assigned hard regs have had their register number changed already,
481 so we can ignore pseudos. */
482 static void
483 mark_set_regs (reg, setter, data)
484 rtx reg;
485 rtx setter ATTRIBUTE_UNUSED;
486 void *data ATTRIBUTE_UNUSED;
488 register int regno, endregno, i;
489 enum machine_mode mode = GET_MODE (reg);
491 if (GET_CODE (reg) == SUBREG)
493 rtx inner = SUBREG_REG (reg);
494 if (GET_CODE (inner) != REG || REGNO (inner) >= FIRST_PSEUDO_REGISTER)
495 return;
497 regno = subreg_hard_regno (reg, 1);
499 else if (GET_CODE (reg) == REG
500 && REGNO (reg) < FIRST_PSEUDO_REGISTER)
501 regno = REGNO (reg);
502 else
503 return;
505 endregno = regno + HARD_REGNO_NREGS (regno, mode);
507 for (i = regno; i < endregno; i++)
508 SET_HARD_REG_BIT (this_insn_sets, i);
511 /* Here from note_stores when an insn stores a value in a register.
512 Set the proper bit or bits in the passed regset. All pseudos that have
513 been assigned hard regs have had their register number changed already,
514 so we can ignore pseudos. */
515 static void
516 add_stored_regs (reg, setter, data)
517 rtx reg;
518 rtx setter;
519 void *data;
521 register int regno, endregno, i;
522 enum machine_mode mode = GET_MODE (reg);
523 int offset = 0;
525 if (GET_CODE (setter) == CLOBBER)
526 return;
528 if (GET_CODE (reg) == SUBREG && GET_CODE (SUBREG_REG (reg)) == REG)
530 offset = subreg_regno_offset (REGNO (SUBREG_REG (reg)),
531 GET_MODE (SUBREG_REG (reg)),
532 SUBREG_BYTE (reg),
533 GET_MODE (reg));
534 reg = SUBREG_REG (reg);
537 if (GET_CODE (reg) != REG || REGNO (reg) >= FIRST_PSEUDO_REGISTER)
538 return;
540 regno = REGNO (reg) + offset;
541 endregno = regno + HARD_REGNO_NREGS (regno, mode);
543 for (i = regno; i < endregno; i++)
544 SET_REGNO_REG_SET ((regset) data, i);
547 /* Walk X and record all referenced registers in REFERENCED_REGS. */
548 static void
549 mark_referenced_regs (x)
550 rtx x;
552 enum rtx_code code = GET_CODE (x);
553 const char *fmt;
554 int i, j;
556 if (code == SET)
557 mark_referenced_regs (SET_SRC (x));
558 if (code == SET || code == CLOBBER)
560 x = SET_DEST (x);
561 code = GET_CODE (x);
562 if (code == REG || code == PC || code == CC0
563 || (code == SUBREG && GET_CODE (SUBREG_REG (x)) == REG
564 /* If we're setting only part of a multi-word register,
565 we shall mark it as referenced, because the words
566 that are not being set should be restored. */
567 && ((GET_MODE_SIZE (GET_MODE (x))
568 >= GET_MODE_SIZE (GET_MODE (SUBREG_REG (x))))
569 || (GET_MODE_SIZE (GET_MODE (SUBREG_REG (x)))
570 <= UNITS_PER_WORD))))
571 return;
573 if (code == MEM || code == SUBREG)
575 x = XEXP (x, 0);
576 code = GET_CODE (x);
579 if (code == REG)
581 int regno = REGNO (x);
582 int hardregno = (regno < FIRST_PSEUDO_REGISTER ? regno
583 : reg_renumber[regno]);
585 if (hardregno >= 0)
587 int nregs = HARD_REGNO_NREGS (hardregno, GET_MODE (x));
588 while (nregs-- > 0)
589 SET_HARD_REG_BIT (referenced_regs, hardregno + nregs);
591 /* If this is a pseudo that did not get a hard register, scan its
592 memory location, since it might involve the use of another
593 register, which might be saved. */
594 else if (reg_equiv_mem[regno] != 0)
595 mark_referenced_regs (XEXP (reg_equiv_mem[regno], 0));
596 else if (reg_equiv_address[regno] != 0)
597 mark_referenced_regs (reg_equiv_address[regno]);
598 return;
601 fmt = GET_RTX_FORMAT (code);
602 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
604 if (fmt[i] == 'e')
605 mark_referenced_regs (XEXP (x, i));
606 else if (fmt[i] == 'E')
607 for (j = XVECLEN (x, i) - 1; j >= 0; j--)
608 mark_referenced_regs (XVECEXP (x, i, j));
612 /* Insert a sequence of insns to restore. Place these insns in front of
613 CHAIN if BEFORE_P is nonzero, behind the insn otherwise. MAXRESTORE is
614 the maximum number of registers which should be restored during this call.
615 It should never be less than 1 since we only work with entire registers.
617 Note that we have verified in init_caller_save that we can do this
618 with a simple SET, so use it. Set INSN_CODE to what we save there
619 since the address might not be valid so the insn might not be recognized.
620 These insns will be reloaded and have register elimination done by
621 find_reload, so we need not worry about that here.
623 Return the extra number of registers saved. */
625 static int
626 insert_restore (chain, before_p, regno, maxrestore, save_mode)
627 struct insn_chain *chain;
628 int before_p;
629 int regno;
630 int maxrestore;
631 enum machine_mode *save_mode;
633 int i, k;
634 rtx pat = NULL_RTX;
635 enum insn_code code = CODE_FOR_nothing;
636 unsigned int numregs = 0;
637 struct insn_chain *new;
638 rtx mem;
640 /* A common failure mode if register status is not correct in the RTL
641 is for this routine to be called with a REGNO we didn't expect to
642 save. That will cause us to write an insn with a (nil) SET_DEST
643 or SET_SRC. Instead of doing so and causing a crash later, check
644 for this common case and abort here instead. This will remove one
645 step in debugging such problems. */
647 if (regno_save_mem[regno][1] == 0)
648 abort ();
650 /* Get the pattern to emit and update our status.
652 See if we can restore `maxrestore' registers at once. Work
653 backwards to the single register case. */
654 for (i = maxrestore; i > 0; i--)
656 int j;
657 int ok = 1;
659 if (regno_save_mem[regno][i] == 0)
660 continue;
662 for (j = 0; j < i; j++)
663 if (! TEST_HARD_REG_BIT (hard_regs_saved, regno + j))
665 ok = 0;
666 break;
668 /* Must do this one restore at a time */
669 if (! ok)
670 continue;
672 numregs = i;
673 break;
676 mem = regno_save_mem [regno][numregs];
677 if (save_mode [regno] != VOIDmode
678 && save_mode [regno] != GET_MODE (mem)
679 && numregs == HARD_REGNO_NREGS (regno, save_mode [regno]))
680 mem = change_address (mem, save_mode[regno], XEXP (mem, 0));
681 pat = gen_rtx_SET (VOIDmode,
682 gen_rtx_REG (GET_MODE (mem),
683 regno), mem);
684 code = reg_restore_code[regno][GET_MODE (mem)];
685 new = insert_one_insn (chain, before_p, code, pat);
687 /* Clear status for all registers we restored. */
688 for (k = 0; k < i; k++)
690 CLEAR_HARD_REG_BIT (hard_regs_saved, regno + k);
691 SET_REGNO_REG_SET (&new->dead_or_set, regno + k);
692 n_regs_saved--;
697 /* Tell our callers how many extra registers we saved/restored */
698 return numregs - 1;
701 /* Like insert_restore above, but save registers instead. */
702 static int
703 insert_save (chain, before_p, regno, to_save, save_mode)
704 struct insn_chain *chain;
705 int before_p;
706 int regno;
707 HARD_REG_SET *to_save;
708 enum machine_mode *save_mode;
710 int i;
711 unsigned int k;
712 rtx pat = NULL_RTX;
713 enum insn_code code = CODE_FOR_nothing;
714 unsigned int numregs = 0;
715 struct insn_chain *new;
716 rtx mem;
718 /* A common failure mode if register status is not correct in the RTL
719 is for this routine to be called with a REGNO we didn't expect to
720 save. That will cause us to write an insn with a (nil) SET_DEST
721 or SET_SRC. Instead of doing so and causing a crash later, check
722 for this common case and abort here instead. This will remove one
723 step in debugging such problems. */
725 if (regno_save_mem[regno][1] == 0)
726 abort ();
728 /* Get the pattern to emit and update our status.
730 See if we can save several registers with a single instruction.
731 Work backwards to the single register case. */
732 for (i = MOVE_MAX_WORDS; i > 0; i--)
734 int j;
735 int ok = 1;
736 if (regno_save_mem[regno][i] == 0)
737 continue;
739 for (j = 0; j < i; j++)
740 if (! TEST_HARD_REG_BIT (*to_save, regno + j))
742 ok = 0;
743 break;
745 /* Must do this one save at a time */
746 if (! ok)
747 continue;
749 numregs = i;
750 break;
753 mem = regno_save_mem [regno][numregs];
754 if (save_mode [regno] != VOIDmode
755 && save_mode [regno] != GET_MODE (mem)
756 && numregs == HARD_REGNO_NREGS (regno, save_mode [regno]))
757 mem = change_address (mem, save_mode[regno], XEXP (mem, 0));
758 pat = gen_rtx_SET (VOIDmode, mem,
759 gen_rtx_REG (GET_MODE (mem),
760 regno));
761 code = reg_save_code[regno][GET_MODE (mem)];
762 new = insert_one_insn (chain, before_p, code, pat);
764 /* Set hard_regs_saved and dead_or_set for all the registers we saved. */
765 for (k = 0; k < numregs; k++)
767 SET_HARD_REG_BIT (hard_regs_saved, regno + k);
768 SET_REGNO_REG_SET (&new->dead_or_set, regno + k);
769 n_regs_saved++;
772 /* Tell our callers how many extra registers we saved/restored */
773 return numregs - 1;
776 /* Emit a new caller-save insn and set the code. */
777 static struct insn_chain *
778 insert_one_insn (chain, before_p, code, pat)
779 struct insn_chain *chain;
780 int before_p;
781 enum insn_code code;
782 rtx pat;
784 rtx insn = chain->insn;
785 struct insn_chain *new;
787 #ifdef HAVE_cc0
788 /* If INSN references CC0, put our insns in front of the insn that sets
789 CC0. This is always safe, since the only way we could be passed an
790 insn that references CC0 is for a restore, and doing a restore earlier
791 isn't a problem. We do, however, assume here that CALL_INSNs don't
792 reference CC0. Guard against non-INSN's like CODE_LABEL. */
794 if ((GET_CODE (insn) == INSN || GET_CODE (insn) == JUMP_INSN)
795 && before_p
796 && reg_referenced_p (cc0_rtx, PATTERN (insn)))
797 chain = chain->prev, insn = chain->insn;
798 #endif
800 new = new_insn_chain ();
801 if (before_p)
803 rtx link;
805 new->prev = chain->prev;
806 if (new->prev != 0)
807 new->prev->next = new;
808 else
809 reload_insn_chain = new;
811 chain->prev = new;
812 new->next = chain;
813 new->insn = emit_insn_before (pat, insn);
814 /* ??? It would be nice if we could exclude the already / still saved
815 registers from the live sets. */
816 COPY_REG_SET (&new->live_throughout, &chain->live_throughout);
817 /* Registers that die in CHAIN->INSN still live in the new insn. */
818 for (link = REG_NOTES (chain->insn); link; link = XEXP (link, 1))
820 if (REG_NOTE_KIND (link) == REG_DEAD)
822 rtx reg = XEXP (link, 0);
823 int regno, i;
825 if (GET_CODE (reg) != REG)
826 abort ();
828 regno = REGNO (reg);
829 if (regno >= FIRST_PSEUDO_REGISTER)
830 regno = reg_renumber[regno];
831 if (regno < 0)
832 continue;
833 for (i = HARD_REGNO_NREGS (regno, GET_MODE (reg)) - 1;
834 i >= 0; i--)
835 SET_REGNO_REG_SET (&new->live_throughout, regno + i);
838 CLEAR_REG_SET (&new->dead_or_set);
839 if (chain->insn == BLOCK_HEAD (chain->block))
840 BLOCK_HEAD (chain->block) = new->insn;
842 else
844 new->next = chain->next;
845 if (new->next != 0)
846 new->next->prev = new;
847 chain->next = new;
848 new->prev = chain;
849 new->insn = emit_insn_after (pat, insn);
850 /* ??? It would be nice if we could exclude the already / still saved
851 registers from the live sets, and observe REG_UNUSED notes. */
852 COPY_REG_SET (&new->live_throughout, &chain->live_throughout);
853 /* Registers that are set in CHAIN->INSN live in the new insn.
854 (Unless there is a REG_UNUSED note for them, but we don't
855 look for them here.) */
856 note_stores (PATTERN (chain->insn), add_stored_regs,
857 &new->live_throughout);
858 CLEAR_REG_SET (&new->dead_or_set);
859 if (chain->insn == BLOCK_END (chain->block))
860 BLOCK_END (chain->block) = new->insn;
862 new->block = chain->block;
863 new->is_caller_save_insn = 1;
865 INSN_CODE (new->insn) = code;
866 return new;