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[official-gcc.git] / gcc / lra-eliminations.c
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1 /* Code for RTL register eliminations.
2 Copyright (C) 2010-2013 Free Software Foundation, Inc.
3 Contributed by Vladimir Makarov <vmakarov@redhat.com>.
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 3, or (at your option) any later
10 version.
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 /* Eliminable registers (like a soft argument or frame pointer) are
22 widely used in RTL. These eliminable registers should be replaced
23 by real hard registers (like the stack pointer or hard frame
24 pointer) plus some offset. The offsets usually change whenever the
25 stack is expanded. We know the final offsets only at the very end
26 of LRA.
28 Within LRA, we usually keep the RTL in such a state that the
29 eliminable registers can be replaced by just the corresponding hard
30 register (without any offset). To achieve this we should add the
31 initial elimination offset at the beginning of LRA and update the
32 offsets whenever the stack is expanded. We need to do this before
33 every constraint pass because the choice of offset often affects
34 whether a particular address or memory constraint is satisfied.
36 We keep RTL code at most time in such state that the virtual
37 registers can be changed by just the corresponding hard registers
38 (with zero offsets) and we have the right RTL code. To achieve this
39 we should add initial offset at the beginning of LRA work and update
40 offsets after each stack expanding. But actually we update virtual
41 registers to the same virtual registers + corresponding offsets
42 before every constraint pass because it affects constraint
43 satisfaction (e.g. an address displacement became too big for some
44 target).
46 The final change of eliminable registers to the corresponding hard
47 registers are done at the very end of LRA when there were no change
48 in offsets anymore:
50 fp + 42 => sp + 42
54 #include "config.h"
55 #include "system.h"
56 #include "coretypes.h"
57 #include "tm.h"
58 #include "hard-reg-set.h"
59 #include "rtl.h"
60 #include "tm_p.h"
61 #include "regs.h"
62 #include "insn-config.h"
63 #include "insn-codes.h"
64 #include "recog.h"
65 #include "output.h"
66 #include "addresses.h"
67 #include "target.h"
68 #include "function.h"
69 #include "expr.h"
70 #include "basic-block.h"
71 #include "except.h"
72 #include "optabs.h"
73 #include "df.h"
74 #include "ira.h"
75 #include "rtl-error.h"
76 #include "lra-int.h"
78 /* This structure is used to record information about hard register
79 eliminations. */
80 struct elim_table
82 /* Hard register number to be eliminated. */
83 int from;
84 /* Hard register number used as replacement. */
85 int to;
86 /* Difference between values of the two hard registers above on
87 previous iteration. */
88 HOST_WIDE_INT previous_offset;
89 /* Difference between the values on the current iteration. */
90 HOST_WIDE_INT offset;
91 /* Nonzero if this elimination can be done. */
92 bool can_eliminate;
93 /* CAN_ELIMINATE since the last check. */
94 bool prev_can_eliminate;
95 /* REG rtx for the register to be eliminated. We cannot simply
96 compare the number since we might then spuriously replace a hard
97 register corresponding to a pseudo assigned to the reg to be
98 eliminated. */
99 rtx from_rtx;
100 /* REG rtx for the replacement. */
101 rtx to_rtx;
104 /* The elimination table. Each array entry describes one possible way
105 of eliminating a register in favor of another. If there is more
106 than one way of eliminating a particular register, the most
107 preferred should be specified first. */
108 static struct elim_table *reg_eliminate = 0;
110 /* This is an intermediate structure to initialize the table. It has
111 exactly the members provided by ELIMINABLE_REGS. */
112 static const struct elim_table_1
114 const int from;
115 const int to;
116 } reg_eliminate_1[] =
118 /* If a set of eliminable hard registers was specified, define the
119 table from it. Otherwise, default to the normal case of the frame
120 pointer being replaced by the stack pointer. */
122 #ifdef ELIMINABLE_REGS
123 ELIMINABLE_REGS;
124 #else
125 {{ FRAME_POINTER_REGNUM, STACK_POINTER_REGNUM}};
126 #endif
128 #define NUM_ELIMINABLE_REGS ARRAY_SIZE (reg_eliminate_1)
130 /* Print info about elimination table to file F. */
131 static void
132 print_elim_table (FILE *f)
134 struct elim_table *ep;
136 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
137 fprintf (f, "%s eliminate %d to %d (offset=" HOST_WIDE_INT_PRINT_DEC
138 ", prev_offset=" HOST_WIDE_INT_PRINT_DEC ")\n",
139 ep->can_eliminate ? "Can" : "Can't",
140 ep->from, ep->to, ep->offset, ep->previous_offset);
143 /* Print info about elimination table to stderr. */
144 void
145 lra_debug_elim_table (void)
147 print_elim_table (stderr);
150 /* Setup possibility of elimination in elimination table element EP to
151 VALUE. Setup FRAME_POINTER_NEEDED if elimination from frame
152 pointer to stack pointer is not possible anymore. */
153 static void
154 setup_can_eliminate (struct elim_table *ep, bool value)
156 ep->can_eliminate = ep->prev_can_eliminate = value;
157 if (! value
158 && ep->from == FRAME_POINTER_REGNUM && ep->to == STACK_POINTER_REGNUM)
159 frame_pointer_needed = 1;
162 /* Map: eliminable "from" register -> its current elimination,
163 or NULL if none. The elimination table may contain more than
164 one elimination for the same hard register, but this map specifies
165 the one that we are currently using. */
166 static struct elim_table *elimination_map[FIRST_PSEUDO_REGISTER];
168 /* When an eliminable hard register becomes not eliminable, we use the
169 following special structure to restore original offsets for the
170 register. */
171 static struct elim_table self_elim_table;
173 /* Offsets should be used to restore original offsets for eliminable
174 hard register which just became not eliminable. Zero,
175 otherwise. */
176 static HOST_WIDE_INT self_elim_offsets[FIRST_PSEUDO_REGISTER];
178 /* Map: hard regno -> RTL presentation. RTL presentations of all
179 potentially eliminable hard registers are stored in the map. */
180 static rtx eliminable_reg_rtx[FIRST_PSEUDO_REGISTER];
182 /* Set up ELIMINATION_MAP of the currently used eliminations. */
183 static void
184 setup_elimination_map (void)
186 int i;
187 struct elim_table *ep;
189 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
190 elimination_map[i] = NULL;
191 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
192 if (ep->can_eliminate && elimination_map[ep->from] == NULL)
193 elimination_map[ep->from] = ep;
198 /* Compute the sum of X and Y, making canonicalizations assumed in an
199 address, namely: sum constant integers, surround the sum of two
200 constants with a CONST, put the constant as the second operand, and
201 group the constant on the outermost sum.
203 This routine assumes both inputs are already in canonical form. */
204 static rtx
205 form_sum (rtx x, rtx y)
207 rtx tem;
208 enum machine_mode mode = GET_MODE (x);
210 if (mode == VOIDmode)
211 mode = GET_MODE (y);
213 if (mode == VOIDmode)
214 mode = Pmode;
216 if (CONST_INT_P (x))
217 return plus_constant (mode, y, INTVAL (x));
218 else if (CONST_INT_P (y))
219 return plus_constant (mode, x, INTVAL (y));
220 else if (CONSTANT_P (x))
221 tem = x, x = y, y = tem;
223 if (GET_CODE (x) == PLUS && CONSTANT_P (XEXP (x, 1)))
224 return form_sum (XEXP (x, 0), form_sum (XEXP (x, 1), y));
226 /* Note that if the operands of Y are specified in the opposite
227 order in the recursive calls below, infinite recursion will
228 occur. */
229 if (GET_CODE (y) == PLUS && CONSTANT_P (XEXP (y, 1)))
230 return form_sum (form_sum (x, XEXP (y, 0)), XEXP (y, 1));
232 /* If both constant, encapsulate sum. Otherwise, just form sum. A
233 constant will have been placed second. */
234 if (CONSTANT_P (x) && CONSTANT_P (y))
236 if (GET_CODE (x) == CONST)
237 x = XEXP (x, 0);
238 if (GET_CODE (y) == CONST)
239 y = XEXP (y, 0);
241 return gen_rtx_CONST (VOIDmode, gen_rtx_PLUS (mode, x, y));
244 return gen_rtx_PLUS (mode, x, y);
247 /* Return the current substitution hard register of the elimination of
248 HARD_REGNO. If HARD_REGNO is not eliminable, return itself. */
250 lra_get_elimination_hard_regno (int hard_regno)
252 struct elim_table *ep;
254 if (hard_regno < 0 || hard_regno >= FIRST_PSEUDO_REGISTER)
255 return hard_regno;
256 if ((ep = elimination_map[hard_regno]) == NULL)
257 return hard_regno;
258 return ep->to;
261 /* Return elimination which will be used for hard reg REG, NULL
262 otherwise. */
263 static struct elim_table *
264 get_elimination (rtx reg)
266 int hard_regno;
267 struct elim_table *ep;
268 HOST_WIDE_INT offset;
270 lra_assert (REG_P (reg));
271 if ((hard_regno = REGNO (reg)) < 0 || hard_regno >= FIRST_PSEUDO_REGISTER)
272 return NULL;
273 if ((ep = elimination_map[hard_regno]) != NULL)
274 return ep->from_rtx != reg ? NULL : ep;
275 if ((offset = self_elim_offsets[hard_regno]) == 0)
276 return NULL;
277 /* This is an iteration to restore offsets just after HARD_REGNO
278 stopped to be eliminable. */
279 self_elim_table.from = self_elim_table.to = hard_regno;
280 self_elim_table.from_rtx
281 = self_elim_table.to_rtx
282 = eliminable_reg_rtx[hard_regno];
283 lra_assert (self_elim_table.from_rtx != NULL);
284 self_elim_table.offset = offset;
285 return &self_elim_table;
288 /* Scan X and replace any eliminable registers (such as fp) with a
289 replacement (such as sp) if SUBST_P, plus an offset. The offset is
290 a change in the offset between the eliminable register and its
291 substitution if UPDATE_P, or the full offset if FULL_P, or
292 otherwise zero.
294 MEM_MODE is the mode of an enclosing MEM. We need this to know how
295 much to adjust a register for, e.g., PRE_DEC. Also, if we are
296 inside a MEM, we are allowed to replace a sum of a hard register
297 and the constant zero with the hard register, which we cannot do
298 outside a MEM. In addition, we need to record the fact that a
299 hard register is referenced outside a MEM.
301 Alternatively, INSN may be a note (an EXPR_LIST or INSN_LIST).
302 That's used when we eliminate in expressions stored in notes. */
304 lra_eliminate_regs_1 (rtx x, enum machine_mode mem_mode,
305 bool subst_p, bool update_p, bool full_p)
307 enum rtx_code code = GET_CODE (x);
308 struct elim_table *ep;
309 rtx new_rtx;
310 int i, j;
311 const char *fmt;
312 int copied = 0;
314 if (! current_function_decl)
315 return x;
317 switch (code)
319 CASE_CONST_ANY:
320 case CONST:
321 case SYMBOL_REF:
322 case CODE_LABEL:
323 case PC:
324 case CC0:
325 case ASM_INPUT:
326 case ADDR_VEC:
327 case ADDR_DIFF_VEC:
328 case RETURN:
329 return x;
331 case REG:
332 /* First handle the case where we encounter a bare hard register
333 that is eliminable. Replace it with a PLUS. */
334 if ((ep = get_elimination (x)) != NULL)
336 rtx to = subst_p ? ep->to_rtx : ep->from_rtx;
338 if (update_p)
339 return plus_constant (Pmode, to, ep->offset - ep->previous_offset);
340 else if (full_p)
341 return plus_constant (Pmode, to, ep->offset);
342 else
343 return to;
345 return x;
347 case PLUS:
348 /* If this is the sum of an eliminable register and a constant, rework
349 the sum. */
350 if (REG_P (XEXP (x, 0)) && CONSTANT_P (XEXP (x, 1)))
352 if ((ep = get_elimination (XEXP (x, 0))) != NULL)
354 HOST_WIDE_INT offset;
355 rtx to = subst_p ? ep->to_rtx : ep->from_rtx;
357 if (! update_p && ! full_p)
358 return gen_rtx_PLUS (Pmode, to, XEXP (x, 1));
360 offset = (update_p
361 ? ep->offset - ep->previous_offset : ep->offset);
362 if (CONST_INT_P (XEXP (x, 1))
363 && INTVAL (XEXP (x, 1)) == -offset)
364 return to;
365 else
366 return gen_rtx_PLUS (Pmode, to,
367 plus_constant (Pmode,
368 XEXP (x, 1), offset));
371 /* If the hard register is not eliminable, we are done since
372 the other operand is a constant. */
373 return x;
376 /* If this is part of an address, we want to bring any constant
377 to the outermost PLUS. We will do this by doing hard
378 register replacement in our operands and seeing if a constant
379 shows up in one of them.
381 Note that there is no risk of modifying the structure of the
382 insn, since we only get called for its operands, thus we are
383 either modifying the address inside a MEM, or something like
384 an address operand of a load-address insn. */
387 rtx new0 = lra_eliminate_regs_1 (XEXP (x, 0), mem_mode,
388 subst_p, update_p, full_p);
389 rtx new1 = lra_eliminate_regs_1 (XEXP (x, 1), mem_mode,
390 subst_p, update_p, full_p);
392 if (new0 != XEXP (x, 0) || new1 != XEXP (x, 1))
393 return form_sum (new0, new1);
395 return x;
397 case MULT:
398 /* If this is the product of an eliminable hard register and a
399 constant, apply the distribute law and move the constant out
400 so that we have (plus (mult ..) ..). This is needed in order
401 to keep load-address insns valid. This case is pathological.
402 We ignore the possibility of overflow here. */
403 if (REG_P (XEXP (x, 0)) && CONST_INT_P (XEXP (x, 1))
404 && (ep = get_elimination (XEXP (x, 0))) != NULL)
406 rtx to = subst_p ? ep->to_rtx : ep->from_rtx;
408 if (update_p)
409 return
410 plus_constant (Pmode,
411 gen_rtx_MULT (Pmode, to, XEXP (x, 1)),
412 (ep->offset - ep->previous_offset)
413 * INTVAL (XEXP (x, 1)));
414 else if (full_p)
415 return
416 plus_constant (Pmode,
417 gen_rtx_MULT (Pmode, to, XEXP (x, 1)),
418 ep->offset * INTVAL (XEXP (x, 1)));
419 else
420 return gen_rtx_MULT (Pmode, to, XEXP (x, 1));
423 /* ... fall through ... */
425 case CALL:
426 case COMPARE:
427 /* See comments before PLUS about handling MINUS. */
428 case MINUS:
429 case DIV: case UDIV:
430 case MOD: case UMOD:
431 case AND: case IOR: case XOR:
432 case ROTATERT: case ROTATE:
433 case ASHIFTRT: case LSHIFTRT: case ASHIFT:
434 case NE: case EQ:
435 case GE: case GT: case GEU: case GTU:
436 case LE: case LT: case LEU: case LTU:
438 rtx new0 = lra_eliminate_regs_1 (XEXP (x, 0), mem_mode,
439 subst_p, update_p, full_p);
440 rtx new1 = XEXP (x, 1)
441 ? lra_eliminate_regs_1 (XEXP (x, 1), mem_mode,
442 subst_p, update_p, full_p) : 0;
444 if (new0 != XEXP (x, 0) || new1 != XEXP (x, 1))
445 return gen_rtx_fmt_ee (code, GET_MODE (x), new0, new1);
447 return x;
449 case EXPR_LIST:
450 /* If we have something in XEXP (x, 0), the usual case,
451 eliminate it. */
452 if (XEXP (x, 0))
454 new_rtx = lra_eliminate_regs_1 (XEXP (x, 0), mem_mode,
455 subst_p, update_p, full_p);
456 if (new_rtx != XEXP (x, 0))
458 /* If this is a REG_DEAD note, it is not valid anymore.
459 Using the eliminated version could result in creating a
460 REG_DEAD note for the stack or frame pointer. */
461 if (REG_NOTE_KIND (x) == REG_DEAD)
462 return (XEXP (x, 1)
463 ? lra_eliminate_regs_1 (XEXP (x, 1), mem_mode,
464 subst_p, update_p, full_p)
465 : NULL_RTX);
467 x = alloc_reg_note (REG_NOTE_KIND (x), new_rtx, XEXP (x, 1));
471 /* ... fall through ... */
473 case INSN_LIST:
474 /* Now do eliminations in the rest of the chain. If this was
475 an EXPR_LIST, this might result in allocating more memory than is
476 strictly needed, but it simplifies the code. */
477 if (XEXP (x, 1))
479 new_rtx = lra_eliminate_regs_1 (XEXP (x, 1), mem_mode,
480 subst_p, update_p, full_p);
481 if (new_rtx != XEXP (x, 1))
482 return
483 gen_rtx_fmt_ee (GET_CODE (x), GET_MODE (x),
484 XEXP (x, 0), new_rtx);
486 return x;
488 case PRE_INC:
489 case POST_INC:
490 case PRE_DEC:
491 case POST_DEC:
492 /* We do not support elimination of a register that is modified.
493 elimination_effects has already make sure that this does not
494 happen. */
495 return x;
497 case PRE_MODIFY:
498 case POST_MODIFY:
499 /* We do not support elimination of a hard register that is
500 modified. LRA has already make sure that this does not
501 happen. The only remaining case we need to consider here is
502 that the increment value may be an eliminable register. */
503 if (GET_CODE (XEXP (x, 1)) == PLUS
504 && XEXP (XEXP (x, 1), 0) == XEXP (x, 0))
506 rtx new_rtx = lra_eliminate_regs_1 (XEXP (XEXP (x, 1), 1), mem_mode,
507 subst_p, update_p, full_p);
509 if (new_rtx != XEXP (XEXP (x, 1), 1))
510 return gen_rtx_fmt_ee (code, GET_MODE (x), XEXP (x, 0),
511 gen_rtx_PLUS (GET_MODE (x),
512 XEXP (x, 0), new_rtx));
514 return x;
516 case STRICT_LOW_PART:
517 case NEG: case NOT:
518 case SIGN_EXTEND: case ZERO_EXTEND:
519 case TRUNCATE: case FLOAT_EXTEND: case FLOAT_TRUNCATE:
520 case FLOAT: case FIX:
521 case UNSIGNED_FIX: case UNSIGNED_FLOAT:
522 case ABS:
523 case SQRT:
524 case FFS:
525 case CLZ:
526 case CTZ:
527 case POPCOUNT:
528 case PARITY:
529 case BSWAP:
530 new_rtx = lra_eliminate_regs_1 (XEXP (x, 0), mem_mode,
531 subst_p, update_p, full_p);
532 if (new_rtx != XEXP (x, 0))
533 return gen_rtx_fmt_e (code, GET_MODE (x), new_rtx);
534 return x;
536 case SUBREG:
537 new_rtx = lra_eliminate_regs_1 (SUBREG_REG (x), mem_mode,
538 subst_p, update_p, full_p);
540 if (new_rtx != SUBREG_REG (x))
542 int x_size = GET_MODE_SIZE (GET_MODE (x));
543 int new_size = GET_MODE_SIZE (GET_MODE (new_rtx));
545 if (MEM_P (new_rtx) && x_size <= new_size)
547 SUBREG_REG (x) = new_rtx;
548 alter_subreg (&x, false);
549 return x;
551 else
552 return simplify_gen_subreg (GET_MODE (x), new_rtx,
553 GET_MODE (new_rtx), SUBREG_BYTE (x));
556 return x;
558 case MEM:
559 /* Our only special processing is to pass the mode of the MEM to our
560 recursive call and copy the flags. While we are here, handle this
561 case more efficiently. */
562 return
563 replace_equiv_address_nv
565 lra_eliminate_regs_1 (XEXP (x, 0), GET_MODE (x),
566 subst_p, update_p, full_p));
568 case USE:
569 /* Handle insn_list USE that a call to a pure function may generate. */
570 new_rtx = lra_eliminate_regs_1 (XEXP (x, 0), VOIDmode,
571 subst_p, update_p, full_p);
572 if (new_rtx != XEXP (x, 0))
573 return gen_rtx_USE (GET_MODE (x), new_rtx);
574 return x;
576 case CLOBBER:
577 case SET:
578 gcc_unreachable ();
580 default:
581 break;
584 /* Process each of our operands recursively. If any have changed, make a
585 copy of the rtx. */
586 fmt = GET_RTX_FORMAT (code);
587 for (i = 0; i < GET_RTX_LENGTH (code); i++, fmt++)
589 if (*fmt == 'e')
591 new_rtx = lra_eliminate_regs_1 (XEXP (x, i), mem_mode,
592 subst_p, update_p, full_p);
593 if (new_rtx != XEXP (x, i) && ! copied)
595 x = shallow_copy_rtx (x);
596 copied = 1;
598 XEXP (x, i) = new_rtx;
600 else if (*fmt == 'E')
602 int copied_vec = 0;
603 for (j = 0; j < XVECLEN (x, i); j++)
605 new_rtx = lra_eliminate_regs_1 (XVECEXP (x, i, j), mem_mode,
606 subst_p, update_p, full_p);
607 if (new_rtx != XVECEXP (x, i, j) && ! copied_vec)
609 rtvec new_v = gen_rtvec_v (XVECLEN (x, i),
610 XVEC (x, i)->elem);
611 if (! copied)
613 x = shallow_copy_rtx (x);
614 copied = 1;
616 XVEC (x, i) = new_v;
617 copied_vec = 1;
619 XVECEXP (x, i, j) = new_rtx;
624 return x;
627 /* This function is used externally in subsequent passes of GCC. It
628 always does a full elimination of X. */
630 lra_eliminate_regs (rtx x, enum machine_mode mem_mode,
631 rtx insn ATTRIBUTE_UNUSED)
633 return lra_eliminate_regs_1 (x, mem_mode, true, false, true);
636 /* Scan rtx X for references to elimination source or target registers
637 in contexts that would prevent the elimination from happening.
638 Update the table of eliminables to reflect the changed state.
639 MEM_MODE is the mode of an enclosing MEM rtx, or VOIDmode if not
640 within a MEM. */
641 static void
642 mark_not_eliminable (rtx x)
644 enum rtx_code code = GET_CODE (x);
645 struct elim_table *ep;
646 int i, j;
647 const char *fmt;
649 switch (code)
651 case PRE_INC:
652 case POST_INC:
653 case PRE_DEC:
654 case POST_DEC:
655 case POST_MODIFY:
656 case PRE_MODIFY:
657 if (REG_P (XEXP (x, 0)) && REGNO (XEXP (x, 0)) < FIRST_PSEUDO_REGISTER)
658 /* If we modify the source of an elimination rule, disable
659 it. Do the same if it is the source and not the hard frame
660 register. */
661 for (ep = reg_eliminate;
662 ep < &reg_eliminate[NUM_ELIMINABLE_REGS];
663 ep++)
664 if (ep->from_rtx == XEXP (x, 0)
665 || (ep->to_rtx == XEXP (x, 0)
666 && ep->to_rtx != hard_frame_pointer_rtx))
667 setup_can_eliminate (ep, false);
668 return;
670 case USE:
671 if (REG_P (XEXP (x, 0)) && REGNO (XEXP (x, 0)) < FIRST_PSEUDO_REGISTER)
672 /* If using a hard register that is the source of an eliminate
673 we still think can be performed, note it cannot be
674 performed since we don't know how this hard register is
675 used. */
676 for (ep = reg_eliminate;
677 ep < &reg_eliminate[NUM_ELIMINABLE_REGS];
678 ep++)
679 if (ep->from_rtx == XEXP (x, 0)
680 && ep->to_rtx != hard_frame_pointer_rtx)
681 setup_can_eliminate (ep, false);
682 return;
684 case CLOBBER:
685 if (REG_P (XEXP (x, 0)) && REGNO (XEXP (x, 0)) < FIRST_PSEUDO_REGISTER)
686 /* If clobbering a hard register that is the replacement
687 register for an elimination we still think can be
688 performed, note that it cannot be performed. Otherwise, we
689 need not be concerned about it. */
690 for (ep = reg_eliminate;
691 ep < &reg_eliminate[NUM_ELIMINABLE_REGS];
692 ep++)
693 if (ep->to_rtx == XEXP (x, 0)
694 && ep->to_rtx != hard_frame_pointer_rtx)
695 setup_can_eliminate (ep, false);
696 return;
698 case SET:
699 /* Check for setting a hard register that we know about. */
700 if (REG_P (SET_DEST (x)) && REGNO (SET_DEST (x)) < FIRST_PSEUDO_REGISTER)
702 /* See if this is setting the replacement hard register for
703 an elimination.
705 If DEST is the hard frame pointer, we do nothing because
706 we assume that all assignments to the frame pointer are
707 for non-local gotos and are being done at a time when
708 they are valid and do not disturb anything else. Some
709 machines want to eliminate a fake argument pointer (or
710 even a fake frame pointer) with either the real frame
711 pointer or the stack pointer. Assignments to the hard
712 frame pointer must not prevent this elimination. */
714 for (ep = reg_eliminate;
715 ep < &reg_eliminate[NUM_ELIMINABLE_REGS];
716 ep++)
717 if (ep->to_rtx == SET_DEST (x)
718 && SET_DEST (x) != hard_frame_pointer_rtx
719 && (! (SUPPORTS_STACK_ALIGNMENT && stack_realign_fp
720 && REGNO (ep->to_rtx) == STACK_POINTER_REGNUM)
721 || GET_CODE (SET_SRC (x)) != PLUS
722 || XEXP (SET_SRC (x), 0) != SET_DEST (x)
723 || ! CONST_INT_P (XEXP (SET_SRC (x), 1))))
724 setup_can_eliminate (ep, false);
727 mark_not_eliminable (SET_DEST (x));
728 mark_not_eliminable (SET_SRC (x));
729 return;
731 default:
732 break;
735 fmt = GET_RTX_FORMAT (code);
736 for (i = 0; i < GET_RTX_LENGTH (code); i++, fmt++)
738 if (*fmt == 'e')
739 mark_not_eliminable (XEXP (x, i));
740 else if (*fmt == 'E')
741 for (j = 0; j < XVECLEN (x, i); j++)
742 mark_not_eliminable (XVECEXP (x, i, j));
748 /* Scan INSN and eliminate all eliminable hard registers in it.
750 If REPLACE_P is true, do the replacement destructively. Also
751 delete the insn as dead it if it is setting an eliminable register.
753 If REPLACE_P is false, just update the offsets while keeping the
754 base register the same. */
756 static void
757 eliminate_regs_in_insn (rtx insn, bool replace_p)
759 int icode = recog_memoized (insn);
760 rtx old_set = single_set (insn);
761 bool validate_p;
762 int i;
763 rtx substed_operand[MAX_RECOG_OPERANDS];
764 rtx orig_operand[MAX_RECOG_OPERANDS];
765 struct elim_table *ep;
766 rtx plus_src, plus_cst_src;
767 lra_insn_recog_data_t id;
768 struct lra_static_insn_data *static_id;
770 if (icode < 0 && asm_noperands (PATTERN (insn)) < 0 && ! DEBUG_INSN_P (insn))
772 lra_assert (GET_CODE (PATTERN (insn)) == USE
773 || GET_CODE (PATTERN (insn)) == CLOBBER
774 || GET_CODE (PATTERN (insn)) == ADDR_VEC
775 || GET_CODE (PATTERN (insn)) == ADDR_DIFF_VEC
776 || GET_CODE (PATTERN (insn)) == ASM_INPUT);
777 return;
780 /* Check for setting an eliminable register. */
781 if (old_set != 0 && REG_P (SET_DEST (old_set))
782 && (ep = get_elimination (SET_DEST (old_set))) != NULL)
784 bool delete_p = replace_p;
786 #ifdef HARD_FRAME_POINTER_REGNUM
787 /* If this is setting the frame pointer register to the hardware
788 frame pointer register and this is an elimination that will
789 be done (tested above), this insn is really adjusting the
790 frame pointer downward to compensate for the adjustment done
791 before a nonlocal goto. */
792 if (ep->from == FRAME_POINTER_REGNUM
793 && ep->to == HARD_FRAME_POINTER_REGNUM)
795 if (replace_p)
797 SET_DEST (old_set) = ep->to_rtx;
798 lra_update_insn_recog_data (insn);
799 return;
801 else
803 rtx base = SET_SRC (old_set);
804 HOST_WIDE_INT offset = 0;
805 rtx base_insn = insn;
807 while (base != ep->to_rtx)
809 rtx prev_insn, prev_set;
811 if (GET_CODE (base) == PLUS && CONST_INT_P (XEXP (base, 1)))
813 offset += INTVAL (XEXP (base, 1));
814 base = XEXP (base, 0);
816 else if ((prev_insn = prev_nonnote_insn (base_insn)) != 0
817 && (prev_set = single_set (prev_insn)) != 0
818 && rtx_equal_p (SET_DEST (prev_set), base))
820 base = SET_SRC (prev_set);
821 base_insn = prev_insn;
823 else
824 break;
827 if (base == ep->to_rtx)
829 rtx src;
831 offset -= (ep->offset - ep->previous_offset);
832 src = plus_constant (Pmode, ep->to_rtx, offset);
834 /* First see if this insn remains valid when we make
835 the change. If not, keep the INSN_CODE the same
836 and let the constraint pass fit it up. */
837 validate_change (insn, &SET_SRC (old_set), src, 1);
838 validate_change (insn, &SET_DEST (old_set),
839 ep->from_rtx, 1);
840 if (! apply_change_group ())
842 SET_SRC (old_set) = src;
843 SET_DEST (old_set) = ep->from_rtx;
845 lra_update_insn_recog_data (insn);
846 return;
851 /* We can't delete this insn, but needn't process it
852 since it won't be used unless something changes. */
853 delete_p = false;
855 #endif
857 /* This insn isn't serving a useful purpose. We delete it
858 when REPLACE is set. */
859 if (delete_p)
860 lra_delete_dead_insn (insn);
861 return;
864 /* We allow one special case which happens to work on all machines we
865 currently support: a single set with the source or a REG_EQUAL
866 note being a PLUS of an eliminable register and a constant. */
867 plus_src = plus_cst_src = 0;
868 if (old_set && REG_P (SET_DEST (old_set)))
870 if (GET_CODE (SET_SRC (old_set)) == PLUS)
871 plus_src = SET_SRC (old_set);
872 /* First see if the source is of the form (plus (...) CST). */
873 if (plus_src
874 && CONST_INT_P (XEXP (plus_src, 1)))
875 plus_cst_src = plus_src;
876 /* Check that the first operand of the PLUS is a hard reg or
877 the lowpart subreg of one. */
878 if (plus_cst_src)
880 rtx reg = XEXP (plus_cst_src, 0);
882 if (GET_CODE (reg) == SUBREG && subreg_lowpart_p (reg))
883 reg = SUBREG_REG (reg);
885 if (!REG_P (reg) || REGNO (reg) >= FIRST_PSEUDO_REGISTER)
886 plus_cst_src = 0;
889 if (plus_cst_src)
891 rtx reg = XEXP (plus_cst_src, 0);
892 HOST_WIDE_INT offset = INTVAL (XEXP (plus_cst_src, 1));
894 if (GET_CODE (reg) == SUBREG)
895 reg = SUBREG_REG (reg);
897 if (REG_P (reg) && (ep = get_elimination (reg)) != NULL)
899 rtx to_rtx = replace_p ? ep->to_rtx : ep->from_rtx;
901 if (! replace_p)
903 offset += (ep->offset - ep->previous_offset);
904 offset = trunc_int_for_mode (offset, GET_MODE (plus_cst_src));
907 if (GET_CODE (XEXP (plus_cst_src, 0)) == SUBREG)
908 to_rtx = gen_lowpart (GET_MODE (XEXP (plus_cst_src, 0)), to_rtx);
909 /* If we have a nonzero offset, and the source is already a
910 simple REG, the following transformation would increase
911 the cost of the insn by replacing a simple REG with (plus
912 (reg sp) CST). So try only when we already had a PLUS
913 before. */
914 if (offset == 0 || plus_src)
916 rtx new_src = plus_constant (GET_MODE (to_rtx), to_rtx, offset);
918 old_set = single_set (insn);
920 /* First see if this insn remains valid when we make the
921 change. If not, try to replace the whole pattern
922 with a simple set (this may help if the original insn
923 was a PARALLEL that was only recognized as single_set
924 due to REG_UNUSED notes). If this isn't valid
925 either, keep the INSN_CODE the same and let the
926 constraint pass fix it up. */
927 if (! validate_change (insn, &SET_SRC (old_set), new_src, 0))
929 rtx new_pat = gen_rtx_SET (VOIDmode,
930 SET_DEST (old_set), new_src);
932 if (! validate_change (insn, &PATTERN (insn), new_pat, 0))
933 SET_SRC (old_set) = new_src;
935 lra_update_insn_recog_data (insn);
936 /* This can't have an effect on elimination offsets, so skip
937 right to the end. */
938 return;
943 /* Eliminate all eliminable registers occurring in operands that
944 can be handled by the constraint pass. */
945 id = lra_get_insn_recog_data (insn);
946 static_id = id->insn_static_data;
947 validate_p = false;
948 for (i = 0; i < static_id->n_operands; i++)
950 orig_operand[i] = *id->operand_loc[i];
951 substed_operand[i] = *id->operand_loc[i];
953 /* For an asm statement, every operand is eliminable. */
954 if (icode < 0 || insn_data[icode].operand[i].eliminable)
956 /* Check for setting a hard register that we know about. */
957 if (static_id->operand[i].type != OP_IN
958 && REG_P (orig_operand[i]))
960 /* If we are assigning to a hard register that can be
961 eliminated, it must be as part of a PARALLEL, since
962 the code above handles single SETs. This reg can not
963 be longer eliminated -- it is forced by
964 mark_not_eliminable. */
965 for (ep = reg_eliminate;
966 ep < &reg_eliminate[NUM_ELIMINABLE_REGS];
967 ep++)
968 lra_assert (ep->from_rtx != orig_operand[i]
969 || ! ep->can_eliminate);
972 /* Companion to the above plus substitution, we can allow
973 invariants as the source of a plain move. */
974 substed_operand[i]
975 = lra_eliminate_regs_1 (*id->operand_loc[i], VOIDmode,
976 replace_p, ! replace_p, false);
977 if (substed_operand[i] != orig_operand[i])
978 validate_p = true;
982 /* Substitute the operands; the new values are in the substed_operand
983 array. */
984 for (i = 0; i < static_id->n_operands; i++)
985 *id->operand_loc[i] = substed_operand[i];
986 for (i = 0; i < static_id->n_dups; i++)
987 *id->dup_loc[i] = substed_operand[(int) static_id->dup_num[i]];
989 if (validate_p)
991 /* If we had a move insn but now we don't, re-recognize it.
992 This will cause spurious re-recognition if the old move had a
993 PARALLEL since the new one still will, but we can't call
994 single_set without having put new body into the insn and the
995 re-recognition won't hurt in this rare case. */
996 id = lra_update_insn_recog_data (insn);
997 static_id = id->insn_static_data;
1001 /* Spill pseudos which are assigned to hard registers in SET. Add
1002 affected insns for processing in the subsequent constraint
1003 pass. */
1004 static void
1005 spill_pseudos (HARD_REG_SET set)
1007 int i;
1008 bitmap_head to_process;
1009 rtx insn;
1011 if (hard_reg_set_empty_p (set))
1012 return;
1013 if (lra_dump_file != NULL)
1015 fprintf (lra_dump_file, " Spilling non-eliminable hard regs:");
1016 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
1017 if (TEST_HARD_REG_BIT (set, i))
1018 fprintf (lra_dump_file, " %d", i);
1019 fprintf (lra_dump_file, "\n");
1021 bitmap_initialize (&to_process, &reg_obstack);
1022 for (i = FIRST_PSEUDO_REGISTER; i < max_reg_num (); i++)
1023 if (lra_reg_info[i].nrefs != 0 && reg_renumber[i] >= 0
1024 && overlaps_hard_reg_set_p (set,
1025 PSEUDO_REGNO_MODE (i), reg_renumber[i]))
1027 if (lra_dump_file != NULL)
1028 fprintf (lra_dump_file, " Spilling r%d(%d)\n",
1029 i, reg_renumber[i]);
1030 reg_renumber[i] = -1;
1031 bitmap_ior_into (&to_process, &lra_reg_info[i].insn_bitmap);
1033 IOR_HARD_REG_SET (lra_no_alloc_regs, set);
1034 for (insn = get_insns (); insn != NULL_RTX; insn = NEXT_INSN (insn))
1035 if (bitmap_bit_p (&to_process, INSN_UID (insn)))
1037 lra_push_insn (insn);
1038 lra_set_used_insn_alternative (insn, -1);
1040 bitmap_clear (&to_process);
1043 /* Update all offsets and possibility for elimination on eliminable
1044 registers. Spill pseudos assigned to registers which became
1045 uneliminable, update LRA_NO_ALLOC_REGS and ELIMINABLE_REG_SET. Add
1046 insns to INSNS_WITH_CHANGED_OFFSETS containing eliminable hard
1047 registers whose offsets should be changed. */
1048 static void
1049 update_reg_eliminate (bitmap insns_with_changed_offsets)
1051 bool prev;
1052 struct elim_table *ep, *ep1;
1053 HARD_REG_SET temp_hard_reg_set;
1055 /* Clear self elimination offsets. */
1056 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
1057 self_elim_offsets[ep->from] = 0;
1058 CLEAR_HARD_REG_SET (temp_hard_reg_set);
1059 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
1061 /* If it is a currently used elimination: update the previous
1062 offset. */
1063 if (elimination_map[ep->from] == ep)
1064 ep->previous_offset = ep->offset;
1066 prev = ep->prev_can_eliminate;
1067 setup_can_eliminate (ep, targetm.can_eliminate (ep->from, ep->to));
1068 if (ep->can_eliminate && ! prev)
1070 /* It is possible that not eliminable register becomes
1071 eliminable because we took other reasons into account to
1072 set up eliminable regs in the initial set up. Just
1073 ignore new eliminable registers. */
1074 setup_can_eliminate (ep, false);
1075 continue;
1077 if (ep->can_eliminate != prev && elimination_map[ep->from] == ep)
1079 /* We cannot use this elimination anymore -- find another
1080 one. */
1081 if (lra_dump_file != NULL)
1082 fprintf (lra_dump_file,
1083 " Elimination %d to %d is not possible anymore\n",
1084 ep->from, ep->to);
1085 /* Mark that is not eliminable anymore. */
1086 elimination_map[ep->from] = NULL;
1087 for (ep1 = ep + 1; ep1 < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep1++)
1088 if (ep1->can_eliminate && ep1->from == ep->from)
1089 break;
1090 if (ep1 < &reg_eliminate[NUM_ELIMINABLE_REGS])
1092 if (lra_dump_file != NULL)
1093 fprintf (lra_dump_file, " Using elimination %d to %d now\n",
1094 ep1->from, ep1->to);
1095 /* Prevent the hard register into which we eliminate now
1096 from the usage for pseudos. */
1097 SET_HARD_REG_BIT (temp_hard_reg_set, ep1->to);
1098 lra_assert (ep1->previous_offset == 0);
1099 ep1->previous_offset = ep->offset;
1101 else
1103 /* There is no elimination anymore just use the hard
1104 register `from' itself. Setup self elimination
1105 offset to restore the original offset values. */
1106 if (lra_dump_file != NULL)
1107 fprintf (lra_dump_file, " %d is not eliminable at all\n",
1108 ep->from);
1109 self_elim_offsets[ep->from] = -ep->offset;
1110 SET_HARD_REG_BIT (temp_hard_reg_set, ep->from);
1111 if (ep->offset != 0)
1112 bitmap_ior_into (insns_with_changed_offsets,
1113 &lra_reg_info[ep->from].insn_bitmap);
1117 #ifdef ELIMINABLE_REGS
1118 INITIAL_ELIMINATION_OFFSET (ep->from, ep->to, ep->offset);
1119 #else
1120 INITIAL_FRAME_POINTER_OFFSET (ep->offset);
1121 #endif
1123 IOR_HARD_REG_SET (lra_no_alloc_regs, temp_hard_reg_set);
1124 AND_COMPL_HARD_REG_SET (eliminable_regset, temp_hard_reg_set);
1125 spill_pseudos (temp_hard_reg_set);
1126 setup_elimination_map ();
1127 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
1128 if (elimination_map[ep->from] == ep && ep->previous_offset != ep->offset)
1129 bitmap_ior_into (insns_with_changed_offsets,
1130 &lra_reg_info[ep->from].insn_bitmap);
1133 /* Initialize the table of hard registers to eliminate.
1134 Pre-condition: global flag frame_pointer_needed has been set before
1135 calling this function. */
1136 static void
1137 init_elim_table (void)
1139 bool value_p;
1140 struct elim_table *ep;
1141 #ifdef ELIMINABLE_REGS
1142 const struct elim_table_1 *ep1;
1143 #endif
1145 if (!reg_eliminate)
1146 reg_eliminate = XCNEWVEC (struct elim_table, NUM_ELIMINABLE_REGS);
1148 memset (self_elim_offsets, 0, sizeof (self_elim_offsets));
1149 /* Initiate member values which will be never changed. */
1150 self_elim_table.can_eliminate = self_elim_table.prev_can_eliminate = true;
1151 self_elim_table.previous_offset = 0;
1152 #ifdef ELIMINABLE_REGS
1153 for (ep = reg_eliminate, ep1 = reg_eliminate_1;
1154 ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++, ep1++)
1156 ep->offset = ep->previous_offset = 0;
1157 ep->from = ep1->from;
1158 ep->to = ep1->to;
1159 value_p = (targetm.can_eliminate (ep->from, ep->to)
1160 && ! (ep->to == STACK_POINTER_REGNUM
1161 && frame_pointer_needed
1162 && (! SUPPORTS_STACK_ALIGNMENT
1163 || ! stack_realign_fp)));
1164 setup_can_eliminate (ep, value_p);
1166 #else
1167 reg_eliminate[0].offset = reg_eliminate[0].previous_offset = 0;
1168 reg_eliminate[0].from = reg_eliminate_1[0].from;
1169 reg_eliminate[0].to = reg_eliminate_1[0].to;
1170 setup_can_eliminate (&reg_eliminate[0], ! frame_pointer_needed);
1171 #endif
1173 /* Count the number of eliminable registers and build the FROM and TO
1174 REG rtx's. Note that code in gen_rtx_REG will cause, e.g.,
1175 gen_rtx_REG (Pmode, STACK_POINTER_REGNUM) to equal stack_pointer_rtx.
1176 We depend on this. */
1177 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
1179 ep->from_rtx = gen_rtx_REG (Pmode, ep->from);
1180 ep->to_rtx = gen_rtx_REG (Pmode, ep->to);
1181 eliminable_reg_rtx[ep->from] = ep->from_rtx;
1185 /* Entry function for initialization of elimination once per
1186 function. */
1187 void
1188 lra_init_elimination (void)
1190 basic_block bb;
1191 rtx insn;
1193 init_elim_table ();
1194 FOR_EACH_BB (bb)
1195 FOR_BB_INSNS (bb, insn)
1196 if (NONDEBUG_INSN_P (insn))
1197 mark_not_eliminable (PATTERN (insn));
1198 setup_elimination_map ();
1201 /* Eliminate hard reg given by its location LOC. */
1202 void
1203 lra_eliminate_reg_if_possible (rtx *loc)
1205 int regno;
1206 struct elim_table *ep;
1208 lra_assert (REG_P (*loc));
1209 if ((regno = REGNO (*loc)) >= FIRST_PSEUDO_REGISTER
1210 || ! TEST_HARD_REG_BIT (lra_no_alloc_regs, regno))
1211 return;
1212 if ((ep = get_elimination (*loc)) != NULL)
1213 *loc = ep->to_rtx;
1216 /* Do (final if FINAL_P) elimination in INSN. Add the insn for
1217 subsequent processing in the constraint pass, update the insn info. */
1218 static void
1219 process_insn_for_elimination (rtx insn, bool final_p)
1221 eliminate_regs_in_insn (insn, final_p);
1222 if (! final_p)
1224 /* Check that insn changed its code. This is a case when a move
1225 insn becomes an add insn and we do not want to process the
1226 insn as a move anymore. */
1227 int icode = recog (PATTERN (insn), insn, 0);
1229 if (icode >= 0 && icode != INSN_CODE (insn))
1231 INSN_CODE (insn) = icode;
1232 lra_update_insn_recog_data (insn);
1234 lra_update_insn_regno_info (insn);
1235 lra_push_insn (insn);
1236 lra_set_used_insn_alternative (insn, -1);
1240 /* Entry function to do final elimination if FINAL_P or to update
1241 elimination register offsets. */
1242 void
1243 lra_eliminate (bool final_p)
1245 int i;
1246 unsigned int uid;
1247 rtx mem_loc, invariant;
1248 bitmap_head insns_with_changed_offsets;
1249 bitmap_iterator bi;
1250 struct elim_table *ep;
1251 int regs_num = max_reg_num ();
1253 timevar_push (TV_LRA_ELIMINATE);
1255 bitmap_initialize (&insns_with_changed_offsets, &reg_obstack);
1256 if (final_p)
1258 #ifdef ENABLE_CHECKING
1259 update_reg_eliminate (&insns_with_changed_offsets);
1260 if (! bitmap_empty_p (&insns_with_changed_offsets))
1261 gcc_unreachable ();
1262 #endif
1263 /* We change eliminable hard registers in insns so we should do
1264 this for all insns containing any eliminable hard
1265 register. */
1266 for (ep = reg_eliminate; ep < &reg_eliminate[NUM_ELIMINABLE_REGS]; ep++)
1267 if (elimination_map[ep->from] != NULL)
1268 bitmap_ior_into (&insns_with_changed_offsets,
1269 &lra_reg_info[ep->from].insn_bitmap);
1271 else
1273 update_reg_eliminate (&insns_with_changed_offsets);
1274 if (bitmap_empty_p (&insns_with_changed_offsets))
1275 goto lra_eliminate_done;
1277 if (lra_dump_file != NULL)
1279 fprintf (lra_dump_file, "New elimination table:\n");
1280 print_elim_table (lra_dump_file);
1282 for (i = FIRST_PSEUDO_REGISTER; i < regs_num; i++)
1283 if (lra_reg_info[i].nrefs != 0)
1285 mem_loc = ira_reg_equiv[i].memory;
1286 if (mem_loc != NULL_RTX)
1287 mem_loc = lra_eliminate_regs_1 (mem_loc, VOIDmode,
1288 final_p, ! final_p, false);
1289 ira_reg_equiv[i].memory = mem_loc;
1290 invariant = ira_reg_equiv[i].invariant;
1291 if (invariant != NULL_RTX)
1292 invariant = lra_eliminate_regs_1 (invariant, VOIDmode,
1293 final_p, ! final_p, false);
1294 ira_reg_equiv[i].invariant = invariant;
1295 if (lra_dump_file != NULL
1296 && (mem_loc != NULL_RTX || invariant != NULL))
1297 fprintf (lra_dump_file,
1298 "Updating elimination of equiv for reg %d\n", i);
1300 EXECUTE_IF_SET_IN_BITMAP (&insns_with_changed_offsets, 0, uid, bi)
1301 process_insn_for_elimination (lra_insn_recog_data[uid]->insn, final_p);
1302 bitmap_clear (&insns_with_changed_offsets);
1304 lra_eliminate_done:
1305 timevar_pop (TV_LRA_ELIMINATE);