2010-07-27 Paolo Carlini <paolo.carlini@oracle.com>
[official-gcc/alias-decl.git] / gcc / dse.c
blob98861f11044003f2f1f52d5097f144b59836328c
1 /* RTL dead store elimination.
2 Copyright (C) 2005, 2006, 2007, 2008, 2009, 2010
3 Free Software Foundation, Inc.
5 Contributed by Richard Sandiford <rsandifor@codesourcery.com>
6 and Kenneth Zadeck <zadeck@naturalbridge.com>
8 This file is part of GCC.
10 GCC is free software; you can redistribute it and/or modify it under
11 the terms of the GNU General Public License as published by the Free
12 Software Foundation; either version 3, or (at your option) any later
13 version.
15 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
16 WARRANTY; without even the implied warranty of MERCHANTABILITY or
17 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
18 for more details.
20 You should have received a copy of the GNU General Public License
21 along with GCC; see the file COPYING3. If not see
22 <http://www.gnu.org/licenses/>. */
24 #undef BASELINE
26 #include "config.h"
27 #include "system.h"
28 #include "coretypes.h"
29 #include "hashtab.h"
30 #include "tm.h"
31 #include "rtl.h"
32 #include "tree.h"
33 #include "tm_p.h"
34 #include "regs.h"
35 #include "hard-reg-set.h"
36 #include "flags.h"
37 #include "df.h"
38 #include "cselib.h"
39 #include "timevar.h"
40 #include "tree-pass.h"
41 #include "alloc-pool.h"
42 #include "alias.h"
43 #include "insn-config.h"
44 #include "expr.h"
45 #include "recog.h"
46 #include "dse.h"
47 #include "optabs.h"
48 #include "dbgcnt.h"
49 #include "target.h"
51 /* This file contains three techniques for performing Dead Store
52 Elimination (dse).
54 * The first technique performs dse locally on any base address. It
55 is based on the cselib which is a local value numbering technique.
56 This technique is local to a basic block but deals with a fairly
57 general addresses.
59 * The second technique performs dse globally but is restricted to
60 base addresses that are either constant or are relative to the
61 frame_pointer.
63 * The third technique, (which is only done after register allocation)
64 processes the spill spill slots. This differs from the second
65 technique because it takes advantage of the fact that spilling is
66 completely free from the effects of aliasing.
68 Logically, dse is a backwards dataflow problem. A store can be
69 deleted if it if cannot be reached in the backward direction by any
70 use of the value being stored. However, the local technique uses a
71 forwards scan of the basic block because cselib requires that the
72 block be processed in that order.
74 The pass is logically broken into 7 steps:
76 0) Initialization.
78 1) The local algorithm, as well as scanning the insns for the two
79 global algorithms.
81 2) Analysis to see if the global algs are necessary. In the case
82 of stores base on a constant address, there must be at least two
83 stores to that address, to make it possible to delete some of the
84 stores. In the case of stores off of the frame or spill related
85 stores, only one store to an address is necessary because those
86 stores die at the end of the function.
88 3) Set up the global dataflow equations based on processing the
89 info parsed in the first step.
91 4) Solve the dataflow equations.
93 5) Delete the insns that the global analysis has indicated are
94 unnecessary.
96 6) Delete insns that store the same value as preceeding store
97 where the earlier store couldn't be eliminated.
99 7) Cleanup.
101 This step uses cselib and canon_rtx to build the largest expression
102 possible for each address. This pass is a forwards pass through
103 each basic block. From the point of view of the global technique,
104 the first pass could examine a block in either direction. The
105 forwards ordering is to accommodate cselib.
107 We a simplifying assumption: addresses fall into four broad
108 categories:
110 1) base has rtx_varies_p == false, offset is constant.
111 2) base has rtx_varies_p == false, offset variable.
112 3) base has rtx_varies_p == true, offset constant.
113 4) base has rtx_varies_p == true, offset variable.
115 The local passes are able to process all 4 kinds of addresses. The
116 global pass only handles (1).
118 The global problem is formulated as follows:
120 A store, S1, to address A, where A is not relative to the stack
121 frame, can be eliminated if all paths from S1 to the end of the
122 of the function contain another store to A before a read to A.
124 If the address A is relative to the stack frame, a store S2 to A
125 can be eliminated if there are no paths from S1 that reach the
126 end of the function that read A before another store to A. In
127 this case S2 can be deleted if there are paths to from S2 to the
128 end of the function that have no reads or writes to A. This
129 second case allows stores to the stack frame to be deleted that
130 would otherwise die when the function returns. This cannot be
131 done if stores_off_frame_dead_at_return is not true. See the doc
132 for that variable for when this variable is false.
134 The global problem is formulated as a backwards set union
135 dataflow problem where the stores are the gens and reads are the
136 kills. Set union problems are rare and require some special
137 handling given our representation of bitmaps. A straightforward
138 implementation of requires a lot of bitmaps filled with 1s.
139 These are expensive and cumbersome in our bitmap formulation so
140 care has been taken to avoid large vectors filled with 1s. See
141 the comments in bb_info and in the dataflow confluence functions
142 for details.
144 There are two places for further enhancements to this algorithm:
146 1) The original dse which was embedded in a pass called flow also
147 did local address forwarding. For example in
149 A <- r100
150 ... <- A
152 flow would replace the right hand side of the second insn with a
153 reference to r100. Most of the information is available to add this
154 to this pass. It has not done it because it is a lot of work in
155 the case that either r100 is assigned to between the first and
156 second insn and/or the second insn is a load of part of the value
157 stored by the first insn.
159 insn 5 in gcc.c-torture/compile/990203-1.c simple case.
160 insn 15 in gcc.c-torture/execute/20001017-2.c simple case.
161 insn 25 in gcc.c-torture/execute/20001026-1.c simple case.
162 insn 44 in gcc.c-torture/execute/20010910-1.c simple case.
164 2) The cleaning up of spill code is quite profitable. It currently
165 depends on reading tea leaves and chicken entrails left by reload.
166 This pass depends on reload creating a singleton alias set for each
167 spill slot and telling the next dse pass which of these alias sets
168 are the singletons. Rather than analyze the addresses of the
169 spills, dse's spill processing just does analysis of the loads and
170 stores that use those alias sets. There are three cases where this
171 falls short:
173 a) Reload sometimes creates the slot for one mode of access, and
174 then inserts loads and/or stores for a smaller mode. In this
175 case, the current code just punts on the slot. The proper thing
176 to do is to back out and use one bit vector position for each
177 byte of the entity associated with the slot. This depends on
178 KNOWING that reload always generates the accesses for each of the
179 bytes in some canonical (read that easy to understand several
180 passes after reload happens) way.
182 b) Reload sometimes decides that spill slot it allocated was not
183 large enough for the mode and goes back and allocates more slots
184 with the same mode and alias set. The backout in this case is a
185 little more graceful than (a). In this case the slot is unmarked
186 as being a spill slot and if final address comes out to be based
187 off the frame pointer, the global algorithm handles this slot.
189 c) For any pass that may prespill, there is currently no
190 mechanism to tell the dse pass that the slot being used has the
191 special properties that reload uses. It may be that all that is
192 required is to have those passes make the same calls that reload
193 does, assuming that the alias sets can be manipulated in the same
194 way. */
196 /* There are limits to the size of constant offsets we model for the
197 global problem. There are certainly test cases, that exceed this
198 limit, however, it is unlikely that there are important programs
199 that really have constant offsets this size. */
200 #define MAX_OFFSET (64 * 1024)
203 static bitmap scratch = NULL;
204 struct insn_info;
206 /* This structure holds information about a candidate store. */
207 struct store_info
210 /* False means this is a clobber. */
211 bool is_set;
213 /* False if a single HOST_WIDE_INT bitmap is used for positions_needed. */
214 bool is_large;
216 /* The id of the mem group of the base address. If rtx_varies_p is
217 true, this is -1. Otherwise, it is the index into the group
218 table. */
219 int group_id;
221 /* This is the cselib value. */
222 cselib_val *cse_base;
224 /* This canonized mem. */
225 rtx mem;
227 /* Canonized MEM address for use by canon_true_dependence. */
228 rtx mem_addr;
230 /* If this is non-zero, it is the alias set of a spill location. */
231 alias_set_type alias_set;
233 /* The offset of the first and byte before the last byte associated
234 with the operation. */
235 HOST_WIDE_INT begin, end;
237 union
239 /* A bitmask as wide as the number of bytes in the word that
240 contains a 1 if the byte may be needed. The store is unused if
241 all of the bits are 0. This is used if IS_LARGE is false. */
242 unsigned HOST_WIDE_INT small_bitmask;
244 struct
246 /* A bitmap with one bit per byte. Cleared bit means the position
247 is needed. Used if IS_LARGE is false. */
248 bitmap bmap;
250 /* Number of set bits (i.e. unneeded bytes) in BITMAP. If it is
251 equal to END - BEGIN, the whole store is unused. */
252 int count;
253 } large;
254 } positions_needed;
256 /* The next store info for this insn. */
257 struct store_info *next;
259 /* The right hand side of the store. This is used if there is a
260 subsequent reload of the mems address somewhere later in the
261 basic block. */
262 rtx rhs;
264 /* If rhs is or holds a constant, this contains that constant,
265 otherwise NULL. */
266 rtx const_rhs;
268 /* Set if this store stores the same constant value as REDUNDANT_REASON
269 insn stored. These aren't eliminated early, because doing that
270 might prevent the earlier larger store to be eliminated. */
271 struct insn_info *redundant_reason;
274 /* Return a bitmask with the first N low bits set. */
276 static unsigned HOST_WIDE_INT
277 lowpart_bitmask (int n)
279 unsigned HOST_WIDE_INT mask = ~(unsigned HOST_WIDE_INT) 0;
280 return mask >> (HOST_BITS_PER_WIDE_INT - n);
283 typedef struct store_info *store_info_t;
284 static alloc_pool cse_store_info_pool;
285 static alloc_pool rtx_store_info_pool;
287 /* This structure holds information about a load. These are only
288 built for rtx bases. */
289 struct read_info
291 /* The id of the mem group of the base address. */
292 int group_id;
294 /* If this is non-zero, it is the alias set of a spill location. */
295 alias_set_type alias_set;
297 /* The offset of the first and byte after the last byte associated
298 with the operation. If begin == end == 0, the read did not have
299 a constant offset. */
300 int begin, end;
302 /* The mem being read. */
303 rtx mem;
305 /* The next read_info for this insn. */
306 struct read_info *next;
308 typedef struct read_info *read_info_t;
309 static alloc_pool read_info_pool;
312 /* One of these records is created for each insn. */
314 struct insn_info
316 /* Set true if the insn contains a store but the insn itself cannot
317 be deleted. This is set if the insn is a parallel and there is
318 more than one non dead output or if the insn is in some way
319 volatile. */
320 bool cannot_delete;
322 /* This field is only used by the global algorithm. It is set true
323 if the insn contains any read of mem except for a (1). This is
324 also set if the insn is a call or has a clobber mem. If the insn
325 contains a wild read, the use_rec will be null. */
326 bool wild_read;
328 /* This field is only used for the processing of const functions.
329 These functions cannot read memory, but they can read the stack
330 because that is where they may get their parms. We need to be
331 this conservative because, like the store motion pass, we don't
332 consider CALL_INSN_FUNCTION_USAGE when processing call insns.
333 Moreover, we need to distinguish two cases:
334 1. Before reload (register elimination), the stores related to
335 outgoing arguments are stack pointer based and thus deemed
336 of non-constant base in this pass. This requires special
337 handling but also means that the frame pointer based stores
338 need not be killed upon encountering a const function call.
339 2. After reload, the stores related to outgoing arguments can be
340 either stack pointer or hard frame pointer based. This means
341 that we have no other choice than also killing all the frame
342 pointer based stores upon encountering a const function call.
343 This field is set after reload for const function calls. Having
344 this set is less severe than a wild read, it just means that all
345 the frame related stores are killed rather than all the stores. */
346 bool frame_read;
348 /* This field is only used for the processing of const functions.
349 It is set if the insn may contain a stack pointer based store. */
350 bool stack_pointer_based;
352 /* This is true if any of the sets within the store contains a
353 cselib base. Such stores can only be deleted by the local
354 algorithm. */
355 bool contains_cselib_groups;
357 /* The insn. */
358 rtx insn;
360 /* The list of mem sets or mem clobbers that are contained in this
361 insn. If the insn is deletable, it contains only one mem set.
362 But it could also contain clobbers. Insns that contain more than
363 one mem set are not deletable, but each of those mems are here in
364 order to provide info to delete other insns. */
365 store_info_t store_rec;
367 /* The linked list of mem uses in this insn. Only the reads from
368 rtx bases are listed here. The reads to cselib bases are
369 completely processed during the first scan and so are never
370 created. */
371 read_info_t read_rec;
373 /* The prev insn in the basic block. */
374 struct insn_info * prev_insn;
376 /* The linked list of insns that are in consideration for removal in
377 the forwards pass thru the basic block. This pointer may be
378 trash as it is not cleared when a wild read occurs. The only
379 time it is guaranteed to be correct is when the traversal starts
380 at active_local_stores. */
381 struct insn_info * next_local_store;
384 typedef struct insn_info *insn_info_t;
385 static alloc_pool insn_info_pool;
387 /* The linked list of stores that are under consideration in this
388 basic block. */
389 static insn_info_t active_local_stores;
391 struct bb_info
394 /* Pointer to the insn info for the last insn in the block. These
395 are linked so this is how all of the insns are reached. During
396 scanning this is the current insn being scanned. */
397 insn_info_t last_insn;
399 /* The info for the global dataflow problem. */
402 /* This is set if the transfer function should and in the wild_read
403 bitmap before applying the kill and gen sets. That vector knocks
404 out most of the bits in the bitmap and thus speeds up the
405 operations. */
406 bool apply_wild_read;
408 /* The following 4 bitvectors hold information about which positions
409 of which stores are live or dead. They are indexed by
410 get_bitmap_index. */
412 /* The set of store positions that exist in this block before a wild read. */
413 bitmap gen;
415 /* The set of load positions that exist in this block above the
416 same position of a store. */
417 bitmap kill;
419 /* The set of stores that reach the top of the block without being
420 killed by a read.
422 Do not represent the in if it is all ones. Note that this is
423 what the bitvector should logically be initialized to for a set
424 intersection problem. However, like the kill set, this is too
425 expensive. So initially, the in set will only be created for the
426 exit block and any block that contains a wild read. */
427 bitmap in;
429 /* The set of stores that reach the bottom of the block from it's
430 successors.
432 Do not represent the in if it is all ones. Note that this is
433 what the bitvector should logically be initialized to for a set
434 intersection problem. However, like the kill and in set, this is
435 too expensive. So what is done is that the confluence operator
436 just initializes the vector from one of the out sets of the
437 successors of the block. */
438 bitmap out;
440 /* The following bitvector is indexed by the reg number. It
441 contains the set of regs that are live at the current instruction
442 being processed. While it contains info for all of the
443 registers, only the pseudos are actually examined. It is used to
444 assure that shift sequences that are inserted do not accidently
445 clobber live hard regs. */
446 bitmap regs_live;
449 typedef struct bb_info *bb_info_t;
450 static alloc_pool bb_info_pool;
452 /* Table to hold all bb_infos. */
453 static bb_info_t *bb_table;
455 /* There is a group_info for each rtx base that is used to reference
456 memory. There are also not many of the rtx bases because they are
457 very limited in scope. */
459 struct group_info
461 /* The actual base of the address. */
462 rtx rtx_base;
464 /* The sequential id of the base. This allows us to have a
465 canonical ordering of these that is not based on addresses. */
466 int id;
468 /* True if there are any positions that are to be processed
469 globally. */
470 bool process_globally;
472 /* True if the base of this group is either the frame_pointer or
473 hard_frame_pointer. */
474 bool frame_related;
476 /* A mem wrapped around the base pointer for the group in order to
477 do read dependency. */
478 rtx base_mem;
480 /* Canonized version of base_mem's address. */
481 rtx canon_base_addr;
483 /* These two sets of two bitmaps are used to keep track of how many
484 stores are actually referencing that position from this base. We
485 only do this for rtx bases as this will be used to assign
486 positions in the bitmaps for the global problem. Bit N is set in
487 store1 on the first store for offset N. Bit N is set in store2
488 for the second store to offset N. This is all we need since we
489 only care about offsets that have two or more stores for them.
491 The "_n" suffix is for offsets less than 0 and the "_p" suffix is
492 for 0 and greater offsets.
494 There is one special case here, for stores into the stack frame,
495 we will or store1 into store2 before deciding which stores look
496 at globally. This is because stores to the stack frame that have
497 no other reads before the end of the function can also be
498 deleted. */
499 bitmap store1_n, store1_p, store2_n, store2_p;
501 /* The positions in this bitmap have the same assignments as the in,
502 out, gen and kill bitmaps. This bitmap is all zeros except for
503 the positions that are occupied by stores for this group. */
504 bitmap group_kill;
506 /* The offset_map is used to map the offsets from this base into
507 positions in the global bitmaps. It is only created after all of
508 the all of stores have been scanned and we know which ones we
509 care about. */
510 int *offset_map_n, *offset_map_p;
511 int offset_map_size_n, offset_map_size_p;
513 typedef struct group_info *group_info_t;
514 typedef const struct group_info *const_group_info_t;
515 static alloc_pool rtx_group_info_pool;
517 /* Tables of group_info structures, hashed by base value. */
518 static htab_t rtx_group_table;
520 /* Index into the rtx_group_vec. */
521 static int rtx_group_next_id;
523 DEF_VEC_P(group_info_t);
524 DEF_VEC_ALLOC_P(group_info_t,heap);
526 static VEC(group_info_t,heap) *rtx_group_vec;
529 /* This structure holds the set of changes that are being deferred
530 when removing read operation. See replace_read. */
531 struct deferred_change
534 /* The mem that is being replaced. */
535 rtx *loc;
537 /* The reg it is being replaced with. */
538 rtx reg;
540 struct deferred_change *next;
543 typedef struct deferred_change *deferred_change_t;
544 static alloc_pool deferred_change_pool;
546 static deferred_change_t deferred_change_list = NULL;
548 /* This are used to hold the alias sets of spill variables. Since
549 these are never aliased and there may be a lot of them, it makes
550 sense to treat them specially. This bitvector is only allocated in
551 calls from dse_record_singleton_alias_set which currently is only
552 made during reload1. So when dse is called before reload this
553 mechanism does nothing. */
555 static bitmap clear_alias_sets = NULL;
557 /* The set of clear_alias_sets that have been disqualified because
558 there are loads or stores using a different mode than the alias set
559 was registered with. */
560 static bitmap disqualified_clear_alias_sets = NULL;
562 /* The group that holds all of the clear_alias_sets. */
563 static group_info_t clear_alias_group;
565 /* The modes of the clear_alias_sets. */
566 static htab_t clear_alias_mode_table;
568 /* Hash table element to look up the mode for an alias set. */
569 struct clear_alias_mode_holder
571 alias_set_type alias_set;
572 enum machine_mode mode;
575 static alloc_pool clear_alias_mode_pool;
577 /* This is true except if cfun->stdarg -- i.e. we cannot do
578 this for vararg functions because they play games with the frame. */
579 static bool stores_off_frame_dead_at_return;
581 /* Counter for stats. */
582 static int globally_deleted;
583 static int locally_deleted;
584 static int spill_deleted;
586 static bitmap all_blocks;
588 /* The number of bits used in the global bitmaps. */
589 static unsigned int current_position;
592 static bool gate_dse (void);
593 static bool gate_dse1 (void);
594 static bool gate_dse2 (void);
597 /*----------------------------------------------------------------------------
598 Zeroth step.
600 Initialization.
601 ----------------------------------------------------------------------------*/
603 /* Hashtable callbacks for maintaining the "bases" field of
604 store_group_info, given that the addresses are function invariants. */
606 static int
607 clear_alias_mode_eq (const void *p1, const void *p2)
609 const struct clear_alias_mode_holder * h1
610 = (const struct clear_alias_mode_holder *) p1;
611 const struct clear_alias_mode_holder * h2
612 = (const struct clear_alias_mode_holder *) p2;
613 return h1->alias_set == h2->alias_set;
617 static hashval_t
618 clear_alias_mode_hash (const void *p)
620 const struct clear_alias_mode_holder *holder
621 = (const struct clear_alias_mode_holder *) p;
622 return holder->alias_set;
626 /* Find the entry associated with ALIAS_SET. */
628 static struct clear_alias_mode_holder *
629 clear_alias_set_lookup (alias_set_type alias_set)
631 struct clear_alias_mode_holder tmp_holder;
632 void **slot;
634 tmp_holder.alias_set = alias_set;
635 slot = htab_find_slot (clear_alias_mode_table, &tmp_holder, NO_INSERT);
636 gcc_assert (*slot);
638 return (struct clear_alias_mode_holder *) *slot;
642 /* Hashtable callbacks for maintaining the "bases" field of
643 store_group_info, given that the addresses are function invariants. */
645 static int
646 invariant_group_base_eq (const void *p1, const void *p2)
648 const_group_info_t gi1 = (const_group_info_t) p1;
649 const_group_info_t gi2 = (const_group_info_t) p2;
650 return rtx_equal_p (gi1->rtx_base, gi2->rtx_base);
654 static hashval_t
655 invariant_group_base_hash (const void *p)
657 const_group_info_t gi = (const_group_info_t) p;
658 int do_not_record;
659 return hash_rtx (gi->rtx_base, Pmode, &do_not_record, NULL, false);
663 /* Get the GROUP for BASE. Add a new group if it is not there. */
665 static group_info_t
666 get_group_info (rtx base)
668 struct group_info tmp_gi;
669 group_info_t gi;
670 void **slot;
672 if (base)
674 /* Find the store_base_info structure for BASE, creating a new one
675 if necessary. */
676 tmp_gi.rtx_base = base;
677 slot = htab_find_slot (rtx_group_table, &tmp_gi, INSERT);
678 gi = (group_info_t) *slot;
680 else
682 if (!clear_alias_group)
684 clear_alias_group = gi =
685 (group_info_t) pool_alloc (rtx_group_info_pool);
686 memset (gi, 0, sizeof (struct group_info));
687 gi->id = rtx_group_next_id++;
688 gi->store1_n = BITMAP_ALLOC (NULL);
689 gi->store1_p = BITMAP_ALLOC (NULL);
690 gi->store2_n = BITMAP_ALLOC (NULL);
691 gi->store2_p = BITMAP_ALLOC (NULL);
692 gi->group_kill = BITMAP_ALLOC (NULL);
693 gi->process_globally = false;
694 gi->offset_map_size_n = 0;
695 gi->offset_map_size_p = 0;
696 gi->offset_map_n = NULL;
697 gi->offset_map_p = NULL;
698 VEC_safe_push (group_info_t, heap, rtx_group_vec, gi);
700 return clear_alias_group;
703 if (gi == NULL)
705 *slot = gi = (group_info_t) pool_alloc (rtx_group_info_pool);
706 gi->rtx_base = base;
707 gi->id = rtx_group_next_id++;
708 gi->base_mem = gen_rtx_MEM (QImode, base);
709 gi->canon_base_addr = canon_rtx (base);
710 gi->store1_n = BITMAP_ALLOC (NULL);
711 gi->store1_p = BITMAP_ALLOC (NULL);
712 gi->store2_n = BITMAP_ALLOC (NULL);
713 gi->store2_p = BITMAP_ALLOC (NULL);
714 gi->group_kill = BITMAP_ALLOC (NULL);
715 gi->process_globally = false;
716 gi->frame_related =
717 (base == frame_pointer_rtx) || (base == hard_frame_pointer_rtx);
718 gi->offset_map_size_n = 0;
719 gi->offset_map_size_p = 0;
720 gi->offset_map_n = NULL;
721 gi->offset_map_p = NULL;
722 VEC_safe_push (group_info_t, heap, rtx_group_vec, gi);
725 return gi;
729 /* Initialization of data structures. */
731 static void
732 dse_step0 (void)
734 locally_deleted = 0;
735 globally_deleted = 0;
736 spill_deleted = 0;
738 scratch = BITMAP_ALLOC (NULL);
740 rtx_store_info_pool
741 = create_alloc_pool ("rtx_store_info_pool",
742 sizeof (struct store_info), 100);
743 read_info_pool
744 = create_alloc_pool ("read_info_pool",
745 sizeof (struct read_info), 100);
746 insn_info_pool
747 = create_alloc_pool ("insn_info_pool",
748 sizeof (struct insn_info), 100);
749 bb_info_pool
750 = create_alloc_pool ("bb_info_pool",
751 sizeof (struct bb_info), 100);
752 rtx_group_info_pool
753 = create_alloc_pool ("rtx_group_info_pool",
754 sizeof (struct group_info), 100);
755 deferred_change_pool
756 = create_alloc_pool ("deferred_change_pool",
757 sizeof (struct deferred_change), 10);
759 rtx_group_table = htab_create (11, invariant_group_base_hash,
760 invariant_group_base_eq, NULL);
762 bb_table = XCNEWVEC (bb_info_t, last_basic_block);
763 rtx_group_next_id = 0;
765 stores_off_frame_dead_at_return = !cfun->stdarg;
767 init_alias_analysis ();
769 if (clear_alias_sets)
770 clear_alias_group = get_group_info (NULL);
771 else
772 clear_alias_group = NULL;
777 /*----------------------------------------------------------------------------
778 First step.
780 Scan all of the insns. Any random ordering of the blocks is fine.
781 Each block is scanned in forward order to accommodate cselib which
782 is used to remove stores with non-constant bases.
783 ----------------------------------------------------------------------------*/
785 /* Delete all of the store_info recs from INSN_INFO. */
787 static void
788 free_store_info (insn_info_t insn_info)
790 store_info_t store_info = insn_info->store_rec;
791 while (store_info)
793 store_info_t next = store_info->next;
794 if (store_info->is_large)
795 BITMAP_FREE (store_info->positions_needed.large.bmap);
796 if (store_info->cse_base)
797 pool_free (cse_store_info_pool, store_info);
798 else
799 pool_free (rtx_store_info_pool, store_info);
800 store_info = next;
803 insn_info->cannot_delete = true;
804 insn_info->contains_cselib_groups = false;
805 insn_info->store_rec = NULL;
809 struct insn_size {
810 int size;
811 rtx insn;
815 /* Add an insn to do the add inside a x if it is a
816 PRE/POST-INC/DEC/MODIFY. D is an structure containing the insn and
817 the size of the mode of the MEM that this is inside of. */
819 static int
820 replace_inc_dec (rtx *r, void *d)
822 rtx x = *r;
823 struct insn_size *data = (struct insn_size *)d;
824 switch (GET_CODE (x))
826 case PRE_INC:
827 case POST_INC:
829 rtx r1 = XEXP (x, 0);
830 rtx c = gen_int_mode (data->size, GET_MODE (r1));
831 emit_insn_before (gen_rtx_SET (VOIDmode, r1,
832 gen_rtx_PLUS (GET_MODE (r1), r1, c)),
833 data->insn);
834 return -1;
837 case PRE_DEC:
838 case POST_DEC:
840 rtx r1 = XEXP (x, 0);
841 rtx c = gen_int_mode (-data->size, GET_MODE (r1));
842 emit_insn_before (gen_rtx_SET (VOIDmode, r1,
843 gen_rtx_PLUS (GET_MODE (r1), r1, c)),
844 data->insn);
845 return -1;
848 case PRE_MODIFY:
849 case POST_MODIFY:
851 /* We can reuse the add because we are about to delete the
852 insn that contained it. */
853 rtx add = XEXP (x, 0);
854 rtx r1 = XEXP (add, 0);
855 emit_insn_before (gen_rtx_SET (VOIDmode, r1, add), data->insn);
856 return -1;
859 default:
860 return 0;
865 /* If X is a MEM, check the address to see if it is PRE/POST-INC/DEC/MODIFY
866 and generate an add to replace that. */
868 static int
869 replace_inc_dec_mem (rtx *r, void *d)
871 rtx x = *r;
872 if (x != NULL_RTX && MEM_P (x))
874 struct insn_size data;
876 data.size = GET_MODE_SIZE (GET_MODE (x));
877 data.insn = (rtx) d;
879 for_each_rtx (&XEXP (x, 0), replace_inc_dec, &data);
881 return -1;
883 return 0;
886 /* Before we delete INSN, make sure that the auto inc/dec, if it is
887 there, is split into a separate insn. */
889 static void
890 check_for_inc_dec (rtx insn)
892 rtx note = find_reg_note (insn, REG_INC, NULL_RTX);
893 if (note)
894 for_each_rtx (&insn, replace_inc_dec_mem, insn);
898 /* Delete the insn and free all of the fields inside INSN_INFO. */
900 static void
901 delete_dead_store_insn (insn_info_t insn_info)
903 read_info_t read_info;
905 if (!dbg_cnt (dse))
906 return;
908 check_for_inc_dec (insn_info->insn);
909 if (dump_file)
911 fprintf (dump_file, "Locally deleting insn %d ",
912 INSN_UID (insn_info->insn));
913 if (insn_info->store_rec->alias_set)
914 fprintf (dump_file, "alias set %d\n",
915 (int) insn_info->store_rec->alias_set);
916 else
917 fprintf (dump_file, "\n");
920 free_store_info (insn_info);
921 read_info = insn_info->read_rec;
923 while (read_info)
925 read_info_t next = read_info->next;
926 pool_free (read_info_pool, read_info);
927 read_info = next;
929 insn_info->read_rec = NULL;
931 delete_insn (insn_info->insn);
932 locally_deleted++;
933 insn_info->insn = NULL;
935 insn_info->wild_read = false;
939 /* Set the store* bitmaps offset_map_size* fields in GROUP based on
940 OFFSET and WIDTH. */
942 static void
943 set_usage_bits (group_info_t group, HOST_WIDE_INT offset, HOST_WIDE_INT width)
945 HOST_WIDE_INT i;
947 if (offset > -MAX_OFFSET && offset + width < MAX_OFFSET)
948 for (i=offset; i<offset+width; i++)
950 bitmap store1;
951 bitmap store2;
952 int ai;
953 if (i < 0)
955 store1 = group->store1_n;
956 store2 = group->store2_n;
957 ai = -i;
959 else
961 store1 = group->store1_p;
962 store2 = group->store2_p;
963 ai = i;
966 if (bitmap_bit_p (store1, ai))
967 bitmap_set_bit (store2, ai);
968 else
970 bitmap_set_bit (store1, ai);
971 if (i < 0)
973 if (group->offset_map_size_n < ai)
974 group->offset_map_size_n = ai;
976 else
978 if (group->offset_map_size_p < ai)
979 group->offset_map_size_p = ai;
986 /* Set the BB_INFO so that the last insn is marked as a wild read. */
988 static void
989 add_wild_read (bb_info_t bb_info)
991 insn_info_t insn_info = bb_info->last_insn;
992 read_info_t *ptr = &insn_info->read_rec;
994 while (*ptr)
996 read_info_t next = (*ptr)->next;
997 if ((*ptr)->alias_set == 0)
999 pool_free (read_info_pool, *ptr);
1000 *ptr = next;
1002 else
1003 ptr = &(*ptr)->next;
1005 insn_info->wild_read = true;
1006 active_local_stores = NULL;
1010 /* Return true if X is a constant or one of the registers that behave
1011 as a constant over the life of a function. This is equivalent to
1012 !rtx_varies_p for memory addresses. */
1014 static bool
1015 const_or_frame_p (rtx x)
1017 switch (GET_CODE (x))
1019 case CONST:
1020 case CONST_INT:
1021 case CONST_DOUBLE:
1022 case CONST_VECTOR:
1023 case SYMBOL_REF:
1024 case LABEL_REF:
1025 return true;
1027 case REG:
1028 /* Note that we have to test for the actual rtx used for the frame
1029 and arg pointers and not just the register number in case we have
1030 eliminated the frame and/or arg pointer and are using it
1031 for pseudos. */
1032 if (x == frame_pointer_rtx || x == hard_frame_pointer_rtx
1033 /* The arg pointer varies if it is not a fixed register. */
1034 || (x == arg_pointer_rtx && fixed_regs[ARG_POINTER_REGNUM])
1035 || x == pic_offset_table_rtx)
1036 return true;
1037 return false;
1039 default:
1040 return false;
1044 /* Take all reasonable action to put the address of MEM into the form
1045 that we can do analysis on.
1047 The gold standard is to get the address into the form: address +
1048 OFFSET where address is something that rtx_varies_p considers a
1049 constant. When we can get the address in this form, we can do
1050 global analysis on it. Note that for constant bases, address is
1051 not actually returned, only the group_id. The address can be
1052 obtained from that.
1054 If that fails, we try cselib to get a value we can at least use
1055 locally. If that fails we return false.
1057 The GROUP_ID is set to -1 for cselib bases and the index of the
1058 group for non_varying bases.
1060 FOR_READ is true if this is a mem read and false if not. */
1062 static bool
1063 canon_address (rtx mem,
1064 alias_set_type *alias_set_out,
1065 int *group_id,
1066 HOST_WIDE_INT *offset,
1067 cselib_val **base)
1069 enum machine_mode address_mode
1070 = targetm.addr_space.address_mode (MEM_ADDR_SPACE (mem));
1071 rtx mem_address = XEXP (mem, 0);
1072 rtx expanded_address, address;
1073 int expanded;
1075 /* Make sure that cselib is has initialized all of the operands of
1076 the address before asking it to do the subst. */
1078 if (clear_alias_sets)
1080 /* If this is a spill, do not do any further processing. */
1081 alias_set_type alias_set = MEM_ALIAS_SET (mem);
1082 if (dump_file)
1083 fprintf (dump_file, "found alias set %d\n", (int) alias_set);
1084 if (bitmap_bit_p (clear_alias_sets, alias_set))
1086 struct clear_alias_mode_holder *entry
1087 = clear_alias_set_lookup (alias_set);
1089 /* If the modes do not match, we cannot process this set. */
1090 if (entry->mode != GET_MODE (mem))
1092 if (dump_file)
1093 fprintf (dump_file,
1094 "disqualifying alias set %d, (%s) != (%s)\n",
1095 (int) alias_set, GET_MODE_NAME (entry->mode),
1096 GET_MODE_NAME (GET_MODE (mem)));
1098 bitmap_set_bit (disqualified_clear_alias_sets, alias_set);
1099 return false;
1102 *alias_set_out = alias_set;
1103 *group_id = clear_alias_group->id;
1104 return true;
1108 *alias_set_out = 0;
1110 cselib_lookup (mem_address, address_mode, 1);
1112 if (dump_file)
1114 fprintf (dump_file, " mem: ");
1115 print_inline_rtx (dump_file, mem_address, 0);
1116 fprintf (dump_file, "\n");
1119 /* First see if just canon_rtx (mem_address) is const or frame,
1120 if not, try cselib_expand_value_rtx and call canon_rtx on that. */
1121 address = NULL_RTX;
1122 for (expanded = 0; expanded < 2; expanded++)
1124 if (expanded)
1126 /* Use cselib to replace all of the reg references with the full
1127 expression. This will take care of the case where we have
1129 r_x = base + offset;
1130 val = *r_x;
1132 by making it into
1134 val = *(base + offset); */
1136 expanded_address = cselib_expand_value_rtx (mem_address,
1137 scratch, 5);
1139 /* If this fails, just go with the address from first
1140 iteration. */
1141 if (!expanded_address)
1142 break;
1144 else
1145 expanded_address = mem_address;
1147 /* Split the address into canonical BASE + OFFSET terms. */
1148 address = canon_rtx (expanded_address);
1150 *offset = 0;
1152 if (dump_file)
1154 if (expanded)
1156 fprintf (dump_file, "\n after cselib_expand address: ");
1157 print_inline_rtx (dump_file, expanded_address, 0);
1158 fprintf (dump_file, "\n");
1161 fprintf (dump_file, "\n after canon_rtx address: ");
1162 print_inline_rtx (dump_file, address, 0);
1163 fprintf (dump_file, "\n");
1166 if (GET_CODE (address) == CONST)
1167 address = XEXP (address, 0);
1169 if (GET_CODE (address) == PLUS
1170 && CONST_INT_P (XEXP (address, 1)))
1172 *offset = INTVAL (XEXP (address, 1));
1173 address = XEXP (address, 0);
1176 if (ADDR_SPACE_GENERIC_P (MEM_ADDR_SPACE (mem))
1177 && const_or_frame_p (address))
1179 group_info_t group = get_group_info (address);
1181 if (dump_file)
1182 fprintf (dump_file, " gid=%d offset=%d \n",
1183 group->id, (int)*offset);
1184 *base = NULL;
1185 *group_id = group->id;
1186 return true;
1190 *base = cselib_lookup (address, address_mode, true);
1191 *group_id = -1;
1193 if (*base == NULL)
1195 if (dump_file)
1196 fprintf (dump_file, " no cselib val - should be a wild read.\n");
1197 return false;
1199 if (dump_file)
1200 fprintf (dump_file, " varying cselib base=%u:%u offset = %d\n",
1201 (*base)->uid, (*base)->hash, (int)*offset);
1202 return true;
1206 /* Clear the rhs field from the active_local_stores array. */
1208 static void
1209 clear_rhs_from_active_local_stores (void)
1211 insn_info_t ptr = active_local_stores;
1213 while (ptr)
1215 store_info_t store_info = ptr->store_rec;
1216 /* Skip the clobbers. */
1217 while (!store_info->is_set)
1218 store_info = store_info->next;
1220 store_info->rhs = NULL;
1221 store_info->const_rhs = NULL;
1223 ptr = ptr->next_local_store;
1228 /* Mark byte POS bytes from the beginning of store S_INFO as unneeded. */
1230 static inline void
1231 set_position_unneeded (store_info_t s_info, int pos)
1233 if (__builtin_expect (s_info->is_large, false))
1235 if (!bitmap_bit_p (s_info->positions_needed.large.bmap, pos))
1237 s_info->positions_needed.large.count++;
1238 bitmap_set_bit (s_info->positions_needed.large.bmap, pos);
1241 else
1242 s_info->positions_needed.small_bitmask
1243 &= ~(((unsigned HOST_WIDE_INT) 1) << pos);
1246 /* Mark the whole store S_INFO as unneeded. */
1248 static inline void
1249 set_all_positions_unneeded (store_info_t s_info)
1251 if (__builtin_expect (s_info->is_large, false))
1253 int pos, end = s_info->end - s_info->begin;
1254 for (pos = 0; pos < end; pos++)
1255 bitmap_set_bit (s_info->positions_needed.large.bmap, pos);
1256 s_info->positions_needed.large.count = end;
1258 else
1259 s_info->positions_needed.small_bitmask = (unsigned HOST_WIDE_INT) 0;
1262 /* Return TRUE if any bytes from S_INFO store are needed. */
1264 static inline bool
1265 any_positions_needed_p (store_info_t s_info)
1267 if (__builtin_expect (s_info->is_large, false))
1268 return (s_info->positions_needed.large.count
1269 < s_info->end - s_info->begin);
1270 else
1271 return (s_info->positions_needed.small_bitmask
1272 != (unsigned HOST_WIDE_INT) 0);
1275 /* Return TRUE if all bytes START through START+WIDTH-1 from S_INFO
1276 store are needed. */
1278 static inline bool
1279 all_positions_needed_p (store_info_t s_info, int start, int width)
1281 if (__builtin_expect (s_info->is_large, false))
1283 int end = start + width;
1284 while (start < end)
1285 if (bitmap_bit_p (s_info->positions_needed.large.bmap, start++))
1286 return false;
1287 return true;
1289 else
1291 unsigned HOST_WIDE_INT mask = lowpart_bitmask (width) << start;
1292 return (s_info->positions_needed.small_bitmask & mask) == mask;
1297 static rtx get_stored_val (store_info_t, enum machine_mode, HOST_WIDE_INT,
1298 HOST_WIDE_INT, basic_block, bool);
1301 /* BODY is an instruction pattern that belongs to INSN. Return 1 if
1302 there is a candidate store, after adding it to the appropriate
1303 local store group if so. */
1305 static int
1306 record_store (rtx body, bb_info_t bb_info)
1308 rtx mem, rhs, const_rhs, mem_addr;
1309 HOST_WIDE_INT offset = 0;
1310 HOST_WIDE_INT width = 0;
1311 alias_set_type spill_alias_set;
1312 insn_info_t insn_info = bb_info->last_insn;
1313 store_info_t store_info = NULL;
1314 int group_id;
1315 cselib_val *base = NULL;
1316 insn_info_t ptr, last, redundant_reason;
1317 bool store_is_unused;
1319 if (GET_CODE (body) != SET && GET_CODE (body) != CLOBBER)
1320 return 0;
1322 mem = SET_DEST (body);
1324 /* If this is not used, then this cannot be used to keep the insn
1325 from being deleted. On the other hand, it does provide something
1326 that can be used to prove that another store is dead. */
1327 store_is_unused
1328 = (find_reg_note (insn_info->insn, REG_UNUSED, mem) != NULL);
1330 /* Check whether that value is a suitable memory location. */
1331 if (!MEM_P (mem))
1333 /* If the set or clobber is unused, then it does not effect our
1334 ability to get rid of the entire insn. */
1335 if (!store_is_unused)
1336 insn_info->cannot_delete = true;
1337 return 0;
1340 /* At this point we know mem is a mem. */
1341 if (GET_MODE (mem) == BLKmode)
1343 if (GET_CODE (XEXP (mem, 0)) == SCRATCH)
1345 if (dump_file)
1346 fprintf (dump_file, " adding wild read for (clobber (mem:BLK (scratch))\n");
1347 add_wild_read (bb_info);
1348 insn_info->cannot_delete = true;
1349 return 0;
1351 /* Handle (set (mem:BLK (addr) [... S36 ...]) (const_int 0))
1352 as memset (addr, 0, 36); */
1353 else if (!MEM_SIZE (mem)
1354 || !CONST_INT_P (MEM_SIZE (mem))
1355 || GET_CODE (body) != SET
1356 || INTVAL (MEM_SIZE (mem)) <= 0
1357 || INTVAL (MEM_SIZE (mem)) > MAX_OFFSET
1358 || !CONST_INT_P (SET_SRC (body)))
1360 if (!store_is_unused)
1362 /* If the set or clobber is unused, then it does not effect our
1363 ability to get rid of the entire insn. */
1364 insn_info->cannot_delete = true;
1365 clear_rhs_from_active_local_stores ();
1367 return 0;
1371 /* We can still process a volatile mem, we just cannot delete it. */
1372 if (MEM_VOLATILE_P (mem))
1373 insn_info->cannot_delete = true;
1375 if (!canon_address (mem, &spill_alias_set, &group_id, &offset, &base))
1377 clear_rhs_from_active_local_stores ();
1378 return 0;
1381 if (GET_MODE (mem) == BLKmode)
1382 width = INTVAL (MEM_SIZE (mem));
1383 else
1385 width = GET_MODE_SIZE (GET_MODE (mem));
1386 gcc_assert ((unsigned) width <= HOST_BITS_PER_WIDE_INT);
1389 if (spill_alias_set)
1391 bitmap store1 = clear_alias_group->store1_p;
1392 bitmap store2 = clear_alias_group->store2_p;
1394 gcc_assert (GET_MODE (mem) != BLKmode);
1396 if (bitmap_bit_p (store1, spill_alias_set))
1397 bitmap_set_bit (store2, spill_alias_set);
1398 else
1399 bitmap_set_bit (store1, spill_alias_set);
1401 if (clear_alias_group->offset_map_size_p < spill_alias_set)
1402 clear_alias_group->offset_map_size_p = spill_alias_set;
1404 store_info = (store_info_t) pool_alloc (rtx_store_info_pool);
1406 if (dump_file)
1407 fprintf (dump_file, " processing spill store %d(%s)\n",
1408 (int) spill_alias_set, GET_MODE_NAME (GET_MODE (mem)));
1410 else if (group_id >= 0)
1412 /* In the restrictive case where the base is a constant or the
1413 frame pointer we can do global analysis. */
1415 group_info_t group
1416 = VEC_index (group_info_t, rtx_group_vec, group_id);
1418 store_info = (store_info_t) pool_alloc (rtx_store_info_pool);
1419 set_usage_bits (group, offset, width);
1421 if (dump_file)
1422 fprintf (dump_file, " processing const base store gid=%d[%d..%d)\n",
1423 group_id, (int)offset, (int)(offset+width));
1425 else
1427 rtx base_term = find_base_term (XEXP (mem, 0));
1428 if (!base_term
1429 || (GET_CODE (base_term) == ADDRESS
1430 && GET_MODE (base_term) == Pmode
1431 && XEXP (base_term, 0) == stack_pointer_rtx))
1432 insn_info->stack_pointer_based = true;
1433 insn_info->contains_cselib_groups = true;
1435 store_info = (store_info_t) pool_alloc (cse_store_info_pool);
1436 group_id = -1;
1438 if (dump_file)
1439 fprintf (dump_file, " processing cselib store [%d..%d)\n",
1440 (int)offset, (int)(offset+width));
1443 const_rhs = rhs = NULL_RTX;
1444 if (GET_CODE (body) == SET
1445 /* No place to keep the value after ra. */
1446 && !reload_completed
1447 && (REG_P (SET_SRC (body))
1448 || GET_CODE (SET_SRC (body)) == SUBREG
1449 || CONSTANT_P (SET_SRC (body)))
1450 && !MEM_VOLATILE_P (mem)
1451 /* Sometimes the store and reload is used for truncation and
1452 rounding. */
1453 && !(FLOAT_MODE_P (GET_MODE (mem)) && (flag_float_store)))
1455 rhs = SET_SRC (body);
1456 if (CONSTANT_P (rhs))
1457 const_rhs = rhs;
1458 else if (body == PATTERN (insn_info->insn))
1460 rtx tem = find_reg_note (insn_info->insn, REG_EQUAL, NULL_RTX);
1461 if (tem && CONSTANT_P (XEXP (tem, 0)))
1462 const_rhs = XEXP (tem, 0);
1464 if (const_rhs == NULL_RTX && REG_P (rhs))
1466 rtx tem = cselib_expand_value_rtx (rhs, scratch, 5);
1468 if (tem && CONSTANT_P (tem))
1469 const_rhs = tem;
1473 /* Check to see if this stores causes some other stores to be
1474 dead. */
1475 ptr = active_local_stores;
1476 last = NULL;
1477 redundant_reason = NULL;
1478 mem = canon_rtx (mem);
1479 /* For alias_set != 0 canon_true_dependence should be never called. */
1480 if (spill_alias_set)
1481 mem_addr = NULL_RTX;
1482 else
1484 if (group_id < 0)
1485 mem_addr = base->val_rtx;
1486 else
1488 group_info_t group
1489 = VEC_index (group_info_t, rtx_group_vec, group_id);
1490 mem_addr = group->canon_base_addr;
1492 if (offset)
1493 mem_addr = plus_constant (mem_addr, offset);
1496 while (ptr)
1498 insn_info_t next = ptr->next_local_store;
1499 store_info_t s_info = ptr->store_rec;
1500 bool del = true;
1502 /* Skip the clobbers. We delete the active insn if this insn
1503 shadows the set. To have been put on the active list, it
1504 has exactly on set. */
1505 while (!s_info->is_set)
1506 s_info = s_info->next;
1508 if (s_info->alias_set != spill_alias_set)
1509 del = false;
1510 else if (s_info->alias_set)
1512 struct clear_alias_mode_holder *entry
1513 = clear_alias_set_lookup (s_info->alias_set);
1514 /* Generally, spills cannot be processed if and of the
1515 references to the slot have a different mode. But if
1516 we are in the same block and mode is exactly the same
1517 between this store and one before in the same block,
1518 we can still delete it. */
1519 if ((GET_MODE (mem) == GET_MODE (s_info->mem))
1520 && (GET_MODE (mem) == entry->mode))
1522 del = true;
1523 set_all_positions_unneeded (s_info);
1525 if (dump_file)
1526 fprintf (dump_file, " trying spill store in insn=%d alias_set=%d\n",
1527 INSN_UID (ptr->insn), (int) s_info->alias_set);
1529 else if ((s_info->group_id == group_id)
1530 && (s_info->cse_base == base))
1532 HOST_WIDE_INT i;
1533 if (dump_file)
1534 fprintf (dump_file, " trying store in insn=%d gid=%d[%d..%d)\n",
1535 INSN_UID (ptr->insn), s_info->group_id,
1536 (int)s_info->begin, (int)s_info->end);
1538 /* Even if PTR won't be eliminated as unneeded, if both
1539 PTR and this insn store the same constant value, we might
1540 eliminate this insn instead. */
1541 if (s_info->const_rhs
1542 && const_rhs
1543 && offset >= s_info->begin
1544 && offset + width <= s_info->end
1545 && all_positions_needed_p (s_info, offset - s_info->begin,
1546 width))
1548 if (GET_MODE (mem) == BLKmode)
1550 if (GET_MODE (s_info->mem) == BLKmode
1551 && s_info->const_rhs == const_rhs)
1552 redundant_reason = ptr;
1554 else if (s_info->const_rhs == const0_rtx
1555 && const_rhs == const0_rtx)
1556 redundant_reason = ptr;
1557 else
1559 rtx val;
1560 start_sequence ();
1561 val = get_stored_val (s_info, GET_MODE (mem),
1562 offset, offset + width,
1563 BLOCK_FOR_INSN (insn_info->insn),
1564 true);
1565 if (get_insns () != NULL)
1566 val = NULL_RTX;
1567 end_sequence ();
1568 if (val && rtx_equal_p (val, const_rhs))
1569 redundant_reason = ptr;
1573 for (i = MAX (offset, s_info->begin);
1574 i < offset + width && i < s_info->end;
1575 i++)
1576 set_position_unneeded (s_info, i - s_info->begin);
1578 else if (s_info->rhs)
1579 /* Need to see if it is possible for this store to overwrite
1580 the value of store_info. If it is, set the rhs to NULL to
1581 keep it from being used to remove a load. */
1583 if (canon_true_dependence (s_info->mem,
1584 GET_MODE (s_info->mem),
1585 s_info->mem_addr,
1586 mem, mem_addr, rtx_varies_p))
1588 s_info->rhs = NULL;
1589 s_info->const_rhs = NULL;
1593 /* An insn can be deleted if every position of every one of
1594 its s_infos is zero. */
1595 if (any_positions_needed_p (s_info)
1596 || ptr->cannot_delete)
1597 del = false;
1599 if (del)
1601 insn_info_t insn_to_delete = ptr;
1603 if (last)
1604 last->next_local_store = ptr->next_local_store;
1605 else
1606 active_local_stores = ptr->next_local_store;
1608 delete_dead_store_insn (insn_to_delete);
1610 else
1611 last = ptr;
1613 ptr = next;
1616 /* Finish filling in the store_info. */
1617 store_info->next = insn_info->store_rec;
1618 insn_info->store_rec = store_info;
1619 store_info->mem = mem;
1620 store_info->alias_set = spill_alias_set;
1621 store_info->mem_addr = mem_addr;
1622 store_info->cse_base = base;
1623 if (width > HOST_BITS_PER_WIDE_INT)
1625 store_info->is_large = true;
1626 store_info->positions_needed.large.count = 0;
1627 store_info->positions_needed.large.bmap = BITMAP_ALLOC (NULL);
1629 else
1631 store_info->is_large = false;
1632 store_info->positions_needed.small_bitmask = lowpart_bitmask (width);
1634 store_info->group_id = group_id;
1635 store_info->begin = offset;
1636 store_info->end = offset + width;
1637 store_info->is_set = GET_CODE (body) == SET;
1638 store_info->rhs = rhs;
1639 store_info->const_rhs = const_rhs;
1640 store_info->redundant_reason = redundant_reason;
1642 /* If this is a clobber, we return 0. We will only be able to
1643 delete this insn if there is only one store USED store, but we
1644 can use the clobber to delete other stores earlier. */
1645 return store_info->is_set ? 1 : 0;
1649 static void
1650 dump_insn_info (const char * start, insn_info_t insn_info)
1652 fprintf (dump_file, "%s insn=%d %s\n", start,
1653 INSN_UID (insn_info->insn),
1654 insn_info->store_rec ? "has store" : "naked");
1658 /* If the modes are different and the value's source and target do not
1659 line up, we need to extract the value from lower part of the rhs of
1660 the store, shift it, and then put it into a form that can be shoved
1661 into the read_insn. This function generates a right SHIFT of a
1662 value that is at least ACCESS_SIZE bytes wide of READ_MODE. The
1663 shift sequence is returned or NULL if we failed to find a
1664 shift. */
1666 static rtx
1667 find_shift_sequence (int access_size,
1668 store_info_t store_info,
1669 enum machine_mode read_mode,
1670 int shift, bool speed, bool require_cst)
1672 enum machine_mode store_mode = GET_MODE (store_info->mem);
1673 enum machine_mode new_mode;
1674 rtx read_reg = NULL;
1676 /* Some machines like the x86 have shift insns for each size of
1677 operand. Other machines like the ppc or the ia-64 may only have
1678 shift insns that shift values within 32 or 64 bit registers.
1679 This loop tries to find the smallest shift insn that will right
1680 justify the value we want to read but is available in one insn on
1681 the machine. */
1683 for (new_mode = smallest_mode_for_size (access_size * BITS_PER_UNIT,
1684 MODE_INT);
1685 GET_MODE_BITSIZE (new_mode) <= BITS_PER_WORD;
1686 new_mode = GET_MODE_WIDER_MODE (new_mode))
1688 rtx target, new_reg, shift_seq, insn, new_lhs;
1689 int cost;
1691 /* If a constant was stored into memory, try to simplify it here,
1692 otherwise the cost of the shift might preclude this optimization
1693 e.g. at -Os, even when no actual shift will be needed. */
1694 if (store_info->const_rhs)
1696 unsigned int byte = subreg_lowpart_offset (new_mode, store_mode);
1697 rtx ret = simplify_subreg (new_mode, store_info->const_rhs,
1698 store_mode, byte);
1699 if (ret && CONSTANT_P (ret))
1701 ret = simplify_const_binary_operation (LSHIFTRT, new_mode,
1702 ret, GEN_INT (shift));
1703 if (ret && CONSTANT_P (ret))
1705 byte = subreg_lowpart_offset (read_mode, new_mode);
1706 ret = simplify_subreg (read_mode, ret, new_mode, byte);
1707 if (ret && CONSTANT_P (ret)
1708 && rtx_cost (ret, SET, speed) <= COSTS_N_INSNS (1))
1709 return ret;
1714 if (require_cst)
1715 return NULL_RTX;
1717 /* Try a wider mode if truncating the store mode to NEW_MODE
1718 requires a real instruction. */
1719 if (GET_MODE_BITSIZE (new_mode) < GET_MODE_BITSIZE (store_mode)
1720 && !TRULY_NOOP_TRUNCATION (GET_MODE_BITSIZE (new_mode),
1721 GET_MODE_BITSIZE (store_mode)))
1722 continue;
1724 /* Also try a wider mode if the necessary punning is either not
1725 desirable or not possible. */
1726 if (!CONSTANT_P (store_info->rhs)
1727 && !MODES_TIEABLE_P (new_mode, store_mode))
1728 continue;
1730 new_reg = gen_reg_rtx (new_mode);
1732 start_sequence ();
1734 /* In theory we could also check for an ashr. Ian Taylor knows
1735 of one dsp where the cost of these two was not the same. But
1736 this really is a rare case anyway. */
1737 target = expand_binop (new_mode, lshr_optab, new_reg,
1738 GEN_INT (shift), new_reg, 1, OPTAB_DIRECT);
1740 shift_seq = get_insns ();
1741 end_sequence ();
1743 if (target != new_reg || shift_seq == NULL)
1744 continue;
1746 cost = 0;
1747 for (insn = shift_seq; insn != NULL_RTX; insn = NEXT_INSN (insn))
1748 if (INSN_P (insn))
1749 cost += insn_rtx_cost (PATTERN (insn), speed);
1751 /* The computation up to here is essentially independent
1752 of the arguments and could be precomputed. It may
1753 not be worth doing so. We could precompute if
1754 worthwhile or at least cache the results. The result
1755 technically depends on both SHIFT and ACCESS_SIZE,
1756 but in practice the answer will depend only on ACCESS_SIZE. */
1758 if (cost > COSTS_N_INSNS (1))
1759 continue;
1761 new_lhs = extract_low_bits (new_mode, store_mode,
1762 copy_rtx (store_info->rhs));
1763 if (new_lhs == NULL_RTX)
1764 continue;
1766 /* We found an acceptable shift. Generate a move to
1767 take the value from the store and put it into the
1768 shift pseudo, then shift it, then generate another
1769 move to put in into the target of the read. */
1770 emit_move_insn (new_reg, new_lhs);
1771 emit_insn (shift_seq);
1772 read_reg = extract_low_bits (read_mode, new_mode, new_reg);
1773 break;
1776 return read_reg;
1780 /* Call back for note_stores to find the hard regs set or clobbered by
1781 insn. Data is a bitmap of the hardregs set so far. */
1783 static void
1784 look_for_hardregs (rtx x, const_rtx pat ATTRIBUTE_UNUSED, void *data)
1786 bitmap regs_set = (bitmap) data;
1788 if (REG_P (x)
1789 && REGNO (x) < FIRST_PSEUDO_REGISTER)
1791 int regno = REGNO (x);
1792 int n = hard_regno_nregs[regno][GET_MODE (x)];
1793 while (--n >= 0)
1794 bitmap_set_bit (regs_set, regno + n);
1798 /* Helper function for replace_read and record_store.
1799 Attempt to return a value stored in STORE_INFO, from READ_BEGIN
1800 to one before READ_END bytes read in READ_MODE. Return NULL
1801 if not successful. If REQUIRE_CST is true, return always constant. */
1803 static rtx
1804 get_stored_val (store_info_t store_info, enum machine_mode read_mode,
1805 HOST_WIDE_INT read_begin, HOST_WIDE_INT read_end,
1806 basic_block bb, bool require_cst)
1808 enum machine_mode store_mode = GET_MODE (store_info->mem);
1809 int shift;
1810 int access_size; /* In bytes. */
1811 rtx read_reg;
1813 /* To get here the read is within the boundaries of the write so
1814 shift will never be negative. Start out with the shift being in
1815 bytes. */
1816 if (store_mode == BLKmode)
1817 shift = 0;
1818 else if (BYTES_BIG_ENDIAN)
1819 shift = store_info->end - read_end;
1820 else
1821 shift = read_begin - store_info->begin;
1823 access_size = shift + GET_MODE_SIZE (read_mode);
1825 /* From now on it is bits. */
1826 shift *= BITS_PER_UNIT;
1828 if (shift)
1829 read_reg = find_shift_sequence (access_size, store_info, read_mode, shift,
1830 optimize_bb_for_speed_p (bb),
1831 require_cst);
1832 else if (store_mode == BLKmode)
1834 /* The store is a memset (addr, const_val, const_size). */
1835 gcc_assert (CONST_INT_P (store_info->rhs));
1836 store_mode = int_mode_for_mode (read_mode);
1837 if (store_mode == BLKmode)
1838 read_reg = NULL_RTX;
1839 else if (store_info->rhs == const0_rtx)
1840 read_reg = extract_low_bits (read_mode, store_mode, const0_rtx);
1841 else if (GET_MODE_BITSIZE (store_mode) > HOST_BITS_PER_WIDE_INT
1842 || BITS_PER_UNIT >= HOST_BITS_PER_WIDE_INT)
1843 read_reg = NULL_RTX;
1844 else
1846 unsigned HOST_WIDE_INT c
1847 = INTVAL (store_info->rhs)
1848 & (((HOST_WIDE_INT) 1 << BITS_PER_UNIT) - 1);
1849 int shift = BITS_PER_UNIT;
1850 while (shift < HOST_BITS_PER_WIDE_INT)
1852 c |= (c << shift);
1853 shift <<= 1;
1855 read_reg = GEN_INT (trunc_int_for_mode (c, store_mode));
1856 read_reg = extract_low_bits (read_mode, store_mode, read_reg);
1859 else if (store_info->const_rhs
1860 && (require_cst
1861 || GET_MODE_CLASS (read_mode) != GET_MODE_CLASS (store_mode)))
1862 read_reg = extract_low_bits (read_mode, store_mode,
1863 copy_rtx (store_info->const_rhs));
1864 else
1865 read_reg = extract_low_bits (read_mode, store_mode,
1866 copy_rtx (store_info->rhs));
1867 if (require_cst && read_reg && !CONSTANT_P (read_reg))
1868 read_reg = NULL_RTX;
1869 return read_reg;
1872 /* Take a sequence of:
1873 A <- r1
1875 ... <- A
1877 and change it into
1878 r2 <- r1
1879 A <- r1
1881 ... <- r2
1885 r3 <- extract (r1)
1886 r3 <- r3 >> shift
1887 r2 <- extract (r3)
1888 ... <- r2
1892 r2 <- extract (r1)
1893 ... <- r2
1895 Depending on the alignment and the mode of the store and
1896 subsequent load.
1899 The STORE_INFO and STORE_INSN are for the store and READ_INFO
1900 and READ_INSN are for the read. Return true if the replacement
1901 went ok. */
1903 static bool
1904 replace_read (store_info_t store_info, insn_info_t store_insn,
1905 read_info_t read_info, insn_info_t read_insn, rtx *loc,
1906 bitmap regs_live)
1908 enum machine_mode store_mode = GET_MODE (store_info->mem);
1909 enum machine_mode read_mode = GET_MODE (read_info->mem);
1910 rtx insns, this_insn, read_reg;
1911 basic_block bb;
1913 if (!dbg_cnt (dse))
1914 return false;
1916 /* Create a sequence of instructions to set up the read register.
1917 This sequence goes immediately before the store and its result
1918 is read by the load.
1920 We need to keep this in perspective. We are replacing a read
1921 with a sequence of insns, but the read will almost certainly be
1922 in cache, so it is not going to be an expensive one. Thus, we
1923 are not willing to do a multi insn shift or worse a subroutine
1924 call to get rid of the read. */
1925 if (dump_file)
1926 fprintf (dump_file, "trying to replace %smode load in insn %d"
1927 " from %smode store in insn %d\n",
1928 GET_MODE_NAME (read_mode), INSN_UID (read_insn->insn),
1929 GET_MODE_NAME (store_mode), INSN_UID (store_insn->insn));
1930 start_sequence ();
1931 bb = BLOCK_FOR_INSN (read_insn->insn);
1932 read_reg = get_stored_val (store_info,
1933 read_mode, read_info->begin, read_info->end,
1934 bb, false);
1935 if (read_reg == NULL_RTX)
1937 end_sequence ();
1938 if (dump_file)
1939 fprintf (dump_file, " -- could not extract bits of stored value\n");
1940 return false;
1942 /* Force the value into a new register so that it won't be clobbered
1943 between the store and the load. */
1944 read_reg = copy_to_mode_reg (read_mode, read_reg);
1945 insns = get_insns ();
1946 end_sequence ();
1948 if (insns != NULL_RTX)
1950 /* Now we have to scan the set of new instructions to see if the
1951 sequence contains and sets of hardregs that happened to be
1952 live at this point. For instance, this can happen if one of
1953 the insns sets the CC and the CC happened to be live at that
1954 point. This does occasionally happen, see PR 37922. */
1955 bitmap regs_set = BITMAP_ALLOC (NULL);
1957 for (this_insn = insns; this_insn != NULL_RTX; this_insn = NEXT_INSN (this_insn))
1958 note_stores (PATTERN (this_insn), look_for_hardregs, regs_set);
1960 bitmap_and_into (regs_set, regs_live);
1961 if (!bitmap_empty_p (regs_set))
1963 if (dump_file)
1965 fprintf (dump_file,
1966 "abandoning replacement because sequence clobbers live hardregs:");
1967 df_print_regset (dump_file, regs_set);
1970 BITMAP_FREE (regs_set);
1971 return false;
1973 BITMAP_FREE (regs_set);
1976 if (validate_change (read_insn->insn, loc, read_reg, 0))
1978 deferred_change_t deferred_change =
1979 (deferred_change_t) pool_alloc (deferred_change_pool);
1981 /* Insert this right before the store insn where it will be safe
1982 from later insns that might change it before the read. */
1983 emit_insn_before (insns, store_insn->insn);
1985 /* And now for the kludge part: cselib croaks if you just
1986 return at this point. There are two reasons for this:
1988 1) Cselib has an idea of how many pseudos there are and
1989 that does not include the new ones we just added.
1991 2) Cselib does not know about the move insn we added
1992 above the store_info, and there is no way to tell it
1993 about it, because it has "moved on".
1995 Problem (1) is fixable with a certain amount of engineering.
1996 Problem (2) is requires starting the bb from scratch. This
1997 could be expensive.
1999 So we are just going to have to lie. The move/extraction
2000 insns are not really an issue, cselib did not see them. But
2001 the use of the new pseudo read_insn is a real problem because
2002 cselib has not scanned this insn. The way that we solve this
2003 problem is that we are just going to put the mem back for now
2004 and when we are finished with the block, we undo this. We
2005 keep a table of mems to get rid of. At the end of the basic
2006 block we can put them back. */
2008 *loc = read_info->mem;
2009 deferred_change->next = deferred_change_list;
2010 deferred_change_list = deferred_change;
2011 deferred_change->loc = loc;
2012 deferred_change->reg = read_reg;
2014 /* Get rid of the read_info, from the point of view of the
2015 rest of dse, play like this read never happened. */
2016 read_insn->read_rec = read_info->next;
2017 pool_free (read_info_pool, read_info);
2018 if (dump_file)
2020 fprintf (dump_file, " -- replaced the loaded MEM with ");
2021 print_simple_rtl (dump_file, read_reg);
2022 fprintf (dump_file, "\n");
2024 return true;
2026 else
2028 if (dump_file)
2030 fprintf (dump_file, " -- replacing the loaded MEM with ");
2031 print_simple_rtl (dump_file, read_reg);
2032 fprintf (dump_file, " led to an invalid instruction\n");
2034 return false;
2038 /* A for_each_rtx callback in which DATA is the bb_info. Check to see
2039 if LOC is a mem and if it is look at the address and kill any
2040 appropriate stores that may be active. */
2042 static int
2043 check_mem_read_rtx (rtx *loc, void *data)
2045 rtx mem = *loc, mem_addr;
2046 bb_info_t bb_info;
2047 insn_info_t insn_info;
2048 HOST_WIDE_INT offset = 0;
2049 HOST_WIDE_INT width = 0;
2050 alias_set_type spill_alias_set = 0;
2051 cselib_val *base = NULL;
2052 int group_id;
2053 read_info_t read_info;
2055 if (!mem || !MEM_P (mem))
2056 return 0;
2058 bb_info = (bb_info_t) data;
2059 insn_info = bb_info->last_insn;
2061 if ((MEM_ALIAS_SET (mem) == ALIAS_SET_MEMORY_BARRIER)
2062 || (MEM_VOLATILE_P (mem)))
2064 if (dump_file)
2065 fprintf (dump_file, " adding wild read, volatile or barrier.\n");
2066 add_wild_read (bb_info);
2067 insn_info->cannot_delete = true;
2068 return 0;
2071 /* If it is reading readonly mem, then there can be no conflict with
2072 another write. */
2073 if (MEM_READONLY_P (mem))
2074 return 0;
2076 if (!canon_address (mem, &spill_alias_set, &group_id, &offset, &base))
2078 if (dump_file)
2079 fprintf (dump_file, " adding wild read, canon_address failure.\n");
2080 add_wild_read (bb_info);
2081 return 0;
2084 if (GET_MODE (mem) == BLKmode)
2085 width = -1;
2086 else
2087 width = GET_MODE_SIZE (GET_MODE (mem));
2089 read_info = (read_info_t) pool_alloc (read_info_pool);
2090 read_info->group_id = group_id;
2091 read_info->mem = mem;
2092 read_info->alias_set = spill_alias_set;
2093 read_info->begin = offset;
2094 read_info->end = offset + width;
2095 read_info->next = insn_info->read_rec;
2096 insn_info->read_rec = read_info;
2097 /* For alias_set != 0 canon_true_dependence should be never called. */
2098 if (spill_alias_set)
2099 mem_addr = NULL_RTX;
2100 else
2102 if (group_id < 0)
2103 mem_addr = base->val_rtx;
2104 else
2106 group_info_t group
2107 = VEC_index (group_info_t, rtx_group_vec, group_id);
2108 mem_addr = group->canon_base_addr;
2110 if (offset)
2111 mem_addr = plus_constant (mem_addr, offset);
2114 /* We ignore the clobbers in store_info. The is mildly aggressive,
2115 but there really should not be a clobber followed by a read. */
2117 if (spill_alias_set)
2119 insn_info_t i_ptr = active_local_stores;
2120 insn_info_t last = NULL;
2122 if (dump_file)
2123 fprintf (dump_file, " processing spill load %d\n",
2124 (int) spill_alias_set);
2126 while (i_ptr)
2128 store_info_t store_info = i_ptr->store_rec;
2130 /* Skip the clobbers. */
2131 while (!store_info->is_set)
2132 store_info = store_info->next;
2134 if (store_info->alias_set == spill_alias_set)
2136 if (dump_file)
2137 dump_insn_info ("removing from active", i_ptr);
2139 if (last)
2140 last->next_local_store = i_ptr->next_local_store;
2141 else
2142 active_local_stores = i_ptr->next_local_store;
2144 else
2145 last = i_ptr;
2146 i_ptr = i_ptr->next_local_store;
2149 else if (group_id >= 0)
2151 /* This is the restricted case where the base is a constant or
2152 the frame pointer and offset is a constant. */
2153 insn_info_t i_ptr = active_local_stores;
2154 insn_info_t last = NULL;
2156 if (dump_file)
2158 if (width == -1)
2159 fprintf (dump_file, " processing const load gid=%d[BLK]\n",
2160 group_id);
2161 else
2162 fprintf (dump_file, " processing const load gid=%d[%d..%d)\n",
2163 group_id, (int)offset, (int)(offset+width));
2166 while (i_ptr)
2168 bool remove = false;
2169 store_info_t store_info = i_ptr->store_rec;
2171 /* Skip the clobbers. */
2172 while (!store_info->is_set)
2173 store_info = store_info->next;
2175 /* There are three cases here. */
2176 if (store_info->group_id < 0)
2177 /* We have a cselib store followed by a read from a
2178 const base. */
2179 remove
2180 = canon_true_dependence (store_info->mem,
2181 GET_MODE (store_info->mem),
2182 store_info->mem_addr,
2183 mem, mem_addr, rtx_varies_p);
2185 else if (group_id == store_info->group_id)
2187 /* This is a block mode load. We may get lucky and
2188 canon_true_dependence may save the day. */
2189 if (width == -1)
2190 remove
2191 = canon_true_dependence (store_info->mem,
2192 GET_MODE (store_info->mem),
2193 store_info->mem_addr,
2194 mem, mem_addr, rtx_varies_p);
2196 /* If this read is just reading back something that we just
2197 stored, rewrite the read. */
2198 else
2200 if (store_info->rhs
2201 && offset >= store_info->begin
2202 && offset + width <= store_info->end
2203 && all_positions_needed_p (store_info,
2204 offset - store_info->begin,
2205 width)
2206 && replace_read (store_info, i_ptr, read_info,
2207 insn_info, loc, bb_info->regs_live))
2208 return 0;
2210 /* The bases are the same, just see if the offsets
2211 overlap. */
2212 if ((offset < store_info->end)
2213 && (offset + width > store_info->begin))
2214 remove = true;
2218 /* else
2219 The else case that is missing here is that the
2220 bases are constant but different. There is nothing
2221 to do here because there is no overlap. */
2223 if (remove)
2225 if (dump_file)
2226 dump_insn_info ("removing from active", i_ptr);
2228 if (last)
2229 last->next_local_store = i_ptr->next_local_store;
2230 else
2231 active_local_stores = i_ptr->next_local_store;
2233 else
2234 last = i_ptr;
2235 i_ptr = i_ptr->next_local_store;
2238 else
2240 insn_info_t i_ptr = active_local_stores;
2241 insn_info_t last = NULL;
2242 if (dump_file)
2244 fprintf (dump_file, " processing cselib load mem:");
2245 print_inline_rtx (dump_file, mem, 0);
2246 fprintf (dump_file, "\n");
2249 while (i_ptr)
2251 bool remove = false;
2252 store_info_t store_info = i_ptr->store_rec;
2254 if (dump_file)
2255 fprintf (dump_file, " processing cselib load against insn %d\n",
2256 INSN_UID (i_ptr->insn));
2258 /* Skip the clobbers. */
2259 while (!store_info->is_set)
2260 store_info = store_info->next;
2262 /* If this read is just reading back something that we just
2263 stored, rewrite the read. */
2264 if (store_info->rhs
2265 && store_info->group_id == -1
2266 && store_info->cse_base == base
2267 && width != -1
2268 && offset >= store_info->begin
2269 && offset + width <= store_info->end
2270 && all_positions_needed_p (store_info,
2271 offset - store_info->begin, width)
2272 && replace_read (store_info, i_ptr, read_info, insn_info, loc,
2273 bb_info->regs_live))
2274 return 0;
2276 if (!store_info->alias_set)
2277 remove = canon_true_dependence (store_info->mem,
2278 GET_MODE (store_info->mem),
2279 store_info->mem_addr,
2280 mem, mem_addr, rtx_varies_p);
2282 if (remove)
2284 if (dump_file)
2285 dump_insn_info ("removing from active", i_ptr);
2287 if (last)
2288 last->next_local_store = i_ptr->next_local_store;
2289 else
2290 active_local_stores = i_ptr->next_local_store;
2292 else
2293 last = i_ptr;
2294 i_ptr = i_ptr->next_local_store;
2297 return 0;
2300 /* A for_each_rtx callback in which DATA points the INSN_INFO for
2301 as check_mem_read_rtx. Nullify the pointer if i_m_r_m_r returns
2302 true for any part of *LOC. */
2304 static void
2305 check_mem_read_use (rtx *loc, void *data)
2307 for_each_rtx (loc, check_mem_read_rtx, data);
2311 /* Get arguments passed to CALL_INSN. Return TRUE if successful.
2312 So far it only handles arguments passed in registers. */
2314 static bool
2315 get_call_args (rtx call_insn, tree fn, rtx *args, int nargs)
2317 CUMULATIVE_ARGS args_so_far;
2318 tree arg;
2319 int idx;
2321 INIT_CUMULATIVE_ARGS (args_so_far, TREE_TYPE (fn), NULL_RTX, 0, 3);
2323 arg = TYPE_ARG_TYPES (TREE_TYPE (fn));
2324 for (idx = 0;
2325 arg != void_list_node && idx < nargs;
2326 arg = TREE_CHAIN (arg), idx++)
2328 enum machine_mode mode = TYPE_MODE (TREE_VALUE (arg));
2329 rtx reg, link, tmp;
2330 reg = targetm.calls.function_arg (&args_so_far, mode, NULL_TREE, true);
2331 if (!reg || !REG_P (reg) || GET_MODE (reg) != mode
2332 || GET_MODE_CLASS (mode) != MODE_INT)
2333 return false;
2335 for (link = CALL_INSN_FUNCTION_USAGE (call_insn);
2336 link;
2337 link = XEXP (link, 1))
2338 if (GET_CODE (XEXP (link, 0)) == USE)
2340 args[idx] = XEXP (XEXP (link, 0), 0);
2341 if (REG_P (args[idx])
2342 && REGNO (args[idx]) == REGNO (reg)
2343 && (GET_MODE (args[idx]) == mode
2344 || (GET_MODE_CLASS (GET_MODE (args[idx])) == MODE_INT
2345 && (GET_MODE_SIZE (GET_MODE (args[idx]))
2346 <= UNITS_PER_WORD)
2347 && (GET_MODE_SIZE (GET_MODE (args[idx]))
2348 > GET_MODE_SIZE (mode)))))
2349 break;
2351 if (!link)
2352 return false;
2354 tmp = cselib_expand_value_rtx (args[idx], scratch, 5);
2355 if (GET_MODE (args[idx]) != mode)
2357 if (!tmp || !CONST_INT_P (tmp))
2358 return false;
2359 tmp = GEN_INT (trunc_int_for_mode (INTVAL (tmp), mode));
2361 if (tmp)
2362 args[idx] = tmp;
2364 targetm.calls.function_arg_advance (&args_so_far, mode, NULL_TREE, true);
2366 if (arg != void_list_node || idx != nargs)
2367 return false;
2368 return true;
2372 /* Apply record_store to all candidate stores in INSN. Mark INSN
2373 if some part of it is not a candidate store and assigns to a
2374 non-register target. */
2376 static void
2377 scan_insn (bb_info_t bb_info, rtx insn)
2379 rtx body;
2380 insn_info_t insn_info = (insn_info_t) pool_alloc (insn_info_pool);
2381 int mems_found = 0;
2382 memset (insn_info, 0, sizeof (struct insn_info));
2384 if (dump_file)
2385 fprintf (dump_file, "\n**scanning insn=%d\n",
2386 INSN_UID (insn));
2388 insn_info->prev_insn = bb_info->last_insn;
2389 insn_info->insn = insn;
2390 bb_info->last_insn = insn_info;
2392 if (DEBUG_INSN_P (insn))
2394 insn_info->cannot_delete = true;
2395 return;
2398 /* Cselib clears the table for this case, so we have to essentially
2399 do the same. */
2400 if (NONJUMP_INSN_P (insn)
2401 && GET_CODE (PATTERN (insn)) == ASM_OPERANDS
2402 && MEM_VOLATILE_P (PATTERN (insn)))
2404 add_wild_read (bb_info);
2405 insn_info->cannot_delete = true;
2406 return;
2409 /* Look at all of the uses in the insn. */
2410 note_uses (&PATTERN (insn), check_mem_read_use, bb_info);
2412 if (CALL_P (insn))
2414 bool const_call;
2415 tree memset_call = NULL_TREE;
2417 insn_info->cannot_delete = true;
2419 /* Const functions cannot do anything bad i.e. read memory,
2420 however, they can read their parameters which may have
2421 been pushed onto the stack.
2422 memset and bzero don't read memory either. */
2423 const_call = RTL_CONST_CALL_P (insn);
2424 if (!const_call)
2426 rtx call = PATTERN (insn);
2427 if (GET_CODE (call) == PARALLEL)
2428 call = XVECEXP (call, 0, 0);
2429 if (GET_CODE (call) == SET)
2430 call = SET_SRC (call);
2431 if (GET_CODE (call) == CALL
2432 && MEM_P (XEXP (call, 0))
2433 && GET_CODE (XEXP (XEXP (call, 0), 0)) == SYMBOL_REF)
2435 rtx symbol = XEXP (XEXP (call, 0), 0);
2436 if (SYMBOL_REF_DECL (symbol)
2437 && TREE_CODE (SYMBOL_REF_DECL (symbol)) == FUNCTION_DECL)
2439 if ((DECL_BUILT_IN_CLASS (SYMBOL_REF_DECL (symbol))
2440 == BUILT_IN_NORMAL
2441 && (DECL_FUNCTION_CODE (SYMBOL_REF_DECL (symbol))
2442 == BUILT_IN_MEMSET))
2443 || SYMBOL_REF_DECL (symbol) == block_clear_fn)
2444 memset_call = SYMBOL_REF_DECL (symbol);
2448 if (const_call || memset_call)
2450 insn_info_t i_ptr = active_local_stores;
2451 insn_info_t last = NULL;
2453 if (dump_file)
2454 fprintf (dump_file, "%s call %d\n",
2455 const_call ? "const" : "memset", INSN_UID (insn));
2457 /* See the head comment of the frame_read field. */
2458 if (reload_completed)
2459 insn_info->frame_read = true;
2461 /* Loop over the active stores and remove those which are
2462 killed by the const function call. */
2463 while (i_ptr)
2465 bool remove_store = false;
2467 /* The stack pointer based stores are always killed. */
2468 if (i_ptr->stack_pointer_based)
2469 remove_store = true;
2471 /* If the frame is read, the frame related stores are killed. */
2472 else if (insn_info->frame_read)
2474 store_info_t store_info = i_ptr->store_rec;
2476 /* Skip the clobbers. */
2477 while (!store_info->is_set)
2478 store_info = store_info->next;
2480 if (store_info->group_id >= 0
2481 && VEC_index (group_info_t, rtx_group_vec,
2482 store_info->group_id)->frame_related)
2483 remove_store = true;
2486 if (remove_store)
2488 if (dump_file)
2489 dump_insn_info ("removing from active", i_ptr);
2491 if (last)
2492 last->next_local_store = i_ptr->next_local_store;
2493 else
2494 active_local_stores = i_ptr->next_local_store;
2496 else
2497 last = i_ptr;
2499 i_ptr = i_ptr->next_local_store;
2502 if (memset_call)
2504 rtx args[3];
2505 if (get_call_args (insn, memset_call, args, 3)
2506 && CONST_INT_P (args[1])
2507 && CONST_INT_P (args[2])
2508 && INTVAL (args[2]) > 0)
2510 rtx mem = gen_rtx_MEM (BLKmode, args[0]);
2511 set_mem_size (mem, args[2]);
2512 body = gen_rtx_SET (VOIDmode, mem, args[1]);
2513 mems_found += record_store (body, bb_info);
2514 if (dump_file)
2515 fprintf (dump_file, "handling memset as BLKmode store\n");
2516 if (mems_found == 1)
2518 insn_info->next_local_store = active_local_stores;
2519 active_local_stores = insn_info;
2525 else
2526 /* Every other call, including pure functions, may read memory. */
2527 add_wild_read (bb_info);
2529 return;
2532 /* Assuming that there are sets in these insns, we cannot delete
2533 them. */
2534 if ((GET_CODE (PATTERN (insn)) == CLOBBER)
2535 || volatile_refs_p (PATTERN (insn))
2536 || insn_could_throw_p (insn)
2537 || (RTX_FRAME_RELATED_P (insn))
2538 || find_reg_note (insn, REG_FRAME_RELATED_EXPR, NULL_RTX))
2539 insn_info->cannot_delete = true;
2541 body = PATTERN (insn);
2542 if (GET_CODE (body) == PARALLEL)
2544 int i;
2545 for (i = 0; i < XVECLEN (body, 0); i++)
2546 mems_found += record_store (XVECEXP (body, 0, i), bb_info);
2548 else
2549 mems_found += record_store (body, bb_info);
2551 if (dump_file)
2552 fprintf (dump_file, "mems_found = %d, cannot_delete = %s\n",
2553 mems_found, insn_info->cannot_delete ? "true" : "false");
2555 /* If we found some sets of mems, add it into the active_local_stores so
2556 that it can be locally deleted if found dead or used for
2557 replace_read and redundant constant store elimination. Otherwise mark
2558 it as cannot delete. This simplifies the processing later. */
2559 if (mems_found == 1)
2561 insn_info->next_local_store = active_local_stores;
2562 active_local_stores = insn_info;
2564 else
2565 insn_info->cannot_delete = true;
2569 /* Remove BASE from the set of active_local_stores. This is a
2570 callback from cselib that is used to get rid of the stores in
2571 active_local_stores. */
2573 static void
2574 remove_useless_values (cselib_val *base)
2576 insn_info_t insn_info = active_local_stores;
2577 insn_info_t last = NULL;
2579 while (insn_info)
2581 store_info_t store_info = insn_info->store_rec;
2582 bool del = false;
2584 /* If ANY of the store_infos match the cselib group that is
2585 being deleted, then the insn can not be deleted. */
2586 while (store_info)
2588 if ((store_info->group_id == -1)
2589 && (store_info->cse_base == base))
2591 del = true;
2592 break;
2594 store_info = store_info->next;
2597 if (del)
2599 if (last)
2600 last->next_local_store = insn_info->next_local_store;
2601 else
2602 active_local_stores = insn_info->next_local_store;
2603 free_store_info (insn_info);
2605 else
2606 last = insn_info;
2608 insn_info = insn_info->next_local_store;
2613 /* Do all of step 1. */
2615 static void
2616 dse_step1 (void)
2618 basic_block bb;
2619 bitmap regs_live = BITMAP_ALLOC (NULL);
2621 cselib_init (0);
2622 all_blocks = BITMAP_ALLOC (NULL);
2623 bitmap_set_bit (all_blocks, ENTRY_BLOCK);
2624 bitmap_set_bit (all_blocks, EXIT_BLOCK);
2626 FOR_ALL_BB (bb)
2628 insn_info_t ptr;
2629 bb_info_t bb_info = (bb_info_t) pool_alloc (bb_info_pool);
2631 memset (bb_info, 0, sizeof (struct bb_info));
2632 bitmap_set_bit (all_blocks, bb->index);
2633 bb_info->regs_live = regs_live;
2635 bitmap_copy (regs_live, DF_LR_IN (bb));
2636 df_simulate_initialize_forwards (bb, regs_live);
2638 bb_table[bb->index] = bb_info;
2639 cselib_discard_hook = remove_useless_values;
2641 if (bb->index >= NUM_FIXED_BLOCKS)
2643 rtx insn;
2645 cse_store_info_pool
2646 = create_alloc_pool ("cse_store_info_pool",
2647 sizeof (struct store_info), 100);
2648 active_local_stores = NULL;
2649 cselib_clear_table ();
2651 /* Scan the insns. */
2652 FOR_BB_INSNS (bb, insn)
2654 if (INSN_P (insn))
2655 scan_insn (bb_info, insn);
2656 cselib_process_insn (insn);
2657 if (INSN_P (insn))
2658 df_simulate_one_insn_forwards (bb, insn, regs_live);
2661 /* This is something of a hack, because the global algorithm
2662 is supposed to take care of the case where stores go dead
2663 at the end of the function. However, the global
2664 algorithm must take a more conservative view of block
2665 mode reads than the local alg does. So to get the case
2666 where you have a store to the frame followed by a non
2667 overlapping block more read, we look at the active local
2668 stores at the end of the function and delete all of the
2669 frame and spill based ones. */
2670 if (stores_off_frame_dead_at_return
2671 && (EDGE_COUNT (bb->succs) == 0
2672 || (single_succ_p (bb)
2673 && single_succ (bb) == EXIT_BLOCK_PTR
2674 && ! crtl->calls_eh_return)))
2676 insn_info_t i_ptr = active_local_stores;
2677 while (i_ptr)
2679 store_info_t store_info = i_ptr->store_rec;
2681 /* Skip the clobbers. */
2682 while (!store_info->is_set)
2683 store_info = store_info->next;
2684 if (store_info->alias_set && !i_ptr->cannot_delete)
2685 delete_dead_store_insn (i_ptr);
2686 else
2687 if (store_info->group_id >= 0)
2689 group_info_t group
2690 = VEC_index (group_info_t, rtx_group_vec, store_info->group_id);
2691 if (group->frame_related && !i_ptr->cannot_delete)
2692 delete_dead_store_insn (i_ptr);
2695 i_ptr = i_ptr->next_local_store;
2699 /* Get rid of the loads that were discovered in
2700 replace_read. Cselib is finished with this block. */
2701 while (deferred_change_list)
2703 deferred_change_t next = deferred_change_list->next;
2705 /* There is no reason to validate this change. That was
2706 done earlier. */
2707 *deferred_change_list->loc = deferred_change_list->reg;
2708 pool_free (deferred_change_pool, deferred_change_list);
2709 deferred_change_list = next;
2712 /* Get rid of all of the cselib based store_infos in this
2713 block and mark the containing insns as not being
2714 deletable. */
2715 ptr = bb_info->last_insn;
2716 while (ptr)
2718 if (ptr->contains_cselib_groups)
2720 store_info_t s_info = ptr->store_rec;
2721 while (s_info && !s_info->is_set)
2722 s_info = s_info->next;
2723 if (s_info
2724 && s_info->redundant_reason
2725 && s_info->redundant_reason->insn
2726 && !ptr->cannot_delete)
2728 if (dump_file)
2729 fprintf (dump_file, "Locally deleting insn %d "
2730 "because insn %d stores the "
2731 "same value and couldn't be "
2732 "eliminated\n",
2733 INSN_UID (ptr->insn),
2734 INSN_UID (s_info->redundant_reason->insn));
2735 delete_dead_store_insn (ptr);
2737 if (s_info)
2738 s_info->redundant_reason = NULL;
2739 free_store_info (ptr);
2741 else
2743 store_info_t s_info;
2745 /* Free at least positions_needed bitmaps. */
2746 for (s_info = ptr->store_rec; s_info; s_info = s_info->next)
2747 if (s_info->is_large)
2749 BITMAP_FREE (s_info->positions_needed.large.bmap);
2750 s_info->is_large = false;
2753 ptr = ptr->prev_insn;
2756 free_alloc_pool (cse_store_info_pool);
2758 bb_info->regs_live = NULL;
2761 BITMAP_FREE (regs_live);
2762 cselib_finish ();
2763 htab_empty (rtx_group_table);
2767 /*----------------------------------------------------------------------------
2768 Second step.
2770 Assign each byte position in the stores that we are going to
2771 analyze globally to a position in the bitmaps. Returns true if
2772 there are any bit positions assigned.
2773 ----------------------------------------------------------------------------*/
2775 static void
2776 dse_step2_init (void)
2778 unsigned int i;
2779 group_info_t group;
2781 for (i = 0; VEC_iterate (group_info_t, rtx_group_vec, i, group); i++)
2783 /* For all non stack related bases, we only consider a store to
2784 be deletable if there are two or more stores for that
2785 position. This is because it takes one store to make the
2786 other store redundant. However, for the stores that are
2787 stack related, we consider them if there is only one store
2788 for the position. We do this because the stack related
2789 stores can be deleted if their is no read between them and
2790 the end of the function.
2792 To make this work in the current framework, we take the stack
2793 related bases add all of the bits from store1 into store2.
2794 This has the effect of making the eligible even if there is
2795 only one store. */
2797 if (stores_off_frame_dead_at_return && group->frame_related)
2799 bitmap_ior_into (group->store2_n, group->store1_n);
2800 bitmap_ior_into (group->store2_p, group->store1_p);
2801 if (dump_file)
2802 fprintf (dump_file, "group %d is frame related ", i);
2805 group->offset_map_size_n++;
2806 group->offset_map_n = XNEWVEC (int, group->offset_map_size_n);
2807 group->offset_map_size_p++;
2808 group->offset_map_p = XNEWVEC (int, group->offset_map_size_p);
2809 group->process_globally = false;
2810 if (dump_file)
2812 fprintf (dump_file, "group %d(%d+%d): ", i,
2813 (int)bitmap_count_bits (group->store2_n),
2814 (int)bitmap_count_bits (group->store2_p));
2815 bitmap_print (dump_file, group->store2_n, "n ", " ");
2816 bitmap_print (dump_file, group->store2_p, "p ", "\n");
2822 /* Init the offset tables for the normal case. */
2824 static bool
2825 dse_step2_nospill (void)
2827 unsigned int i;
2828 group_info_t group;
2829 /* Position 0 is unused because 0 is used in the maps to mean
2830 unused. */
2831 current_position = 1;
2833 for (i = 0; VEC_iterate (group_info_t, rtx_group_vec, i, group); i++)
2835 bitmap_iterator bi;
2836 unsigned int j;
2838 if (group == clear_alias_group)
2839 continue;
2841 memset (group->offset_map_n, 0, sizeof(int) * group->offset_map_size_n);
2842 memset (group->offset_map_p, 0, sizeof(int) * group->offset_map_size_p);
2843 bitmap_clear (group->group_kill);
2845 EXECUTE_IF_SET_IN_BITMAP (group->store2_n, 0, j, bi)
2847 bitmap_set_bit (group->group_kill, current_position);
2848 group->offset_map_n[j] = current_position++;
2849 group->process_globally = true;
2851 EXECUTE_IF_SET_IN_BITMAP (group->store2_p, 0, j, bi)
2853 bitmap_set_bit (group->group_kill, current_position);
2854 group->offset_map_p[j] = current_position++;
2855 group->process_globally = true;
2858 return current_position != 1;
2862 /* Init the offset tables for the spill case. */
2864 static bool
2865 dse_step2_spill (void)
2867 unsigned int j;
2868 group_info_t group = clear_alias_group;
2869 bitmap_iterator bi;
2871 /* Position 0 is unused because 0 is used in the maps to mean
2872 unused. */
2873 current_position = 1;
2875 if (dump_file)
2877 bitmap_print (dump_file, clear_alias_sets,
2878 "clear alias sets ", "\n");
2879 bitmap_print (dump_file, disqualified_clear_alias_sets,
2880 "disqualified clear alias sets ", "\n");
2883 memset (group->offset_map_n, 0, sizeof(int) * group->offset_map_size_n);
2884 memset (group->offset_map_p, 0, sizeof(int) * group->offset_map_size_p);
2885 bitmap_clear (group->group_kill);
2887 /* Remove the disqualified positions from the store2_p set. */
2888 bitmap_and_compl_into (group->store2_p, disqualified_clear_alias_sets);
2890 /* We do not need to process the store2_n set because
2891 alias_sets are always positive. */
2892 EXECUTE_IF_SET_IN_BITMAP (group->store2_p, 0, j, bi)
2894 bitmap_set_bit (group->group_kill, current_position);
2895 group->offset_map_p[j] = current_position++;
2896 group->process_globally = true;
2899 return current_position != 1;
2904 /*----------------------------------------------------------------------------
2905 Third step.
2907 Build the bit vectors for the transfer functions.
2908 ----------------------------------------------------------------------------*/
2911 /* Note that this is NOT a general purpose function. Any mem that has
2912 an alias set registered here expected to be COMPLETELY unaliased:
2913 i.e it's addresses are not and need not be examined.
2915 It is known that all references to this address will have this
2916 alias set and there are NO other references to this address in the
2917 function.
2919 Currently the only place that is known to be clean enough to use
2920 this interface is the code that assigns the spill locations.
2922 All of the mems that have alias_sets registered are subjected to a
2923 very powerful form of dse where function calls, volatile reads and
2924 writes, and reads from random location are not taken into account.
2926 It is also assumed that these locations go dead when the function
2927 returns. This assumption could be relaxed if there were found to
2928 be places that this assumption was not correct.
2930 The MODE is passed in and saved. The mode of each load or store to
2931 a mem with ALIAS_SET is checked against MEM. If the size of that
2932 load or store is different from MODE, processing is halted on this
2933 alias set. For the vast majority of aliases sets, all of the loads
2934 and stores will use the same mode. But vectors are treated
2935 differently: the alias set is established for the entire vector,
2936 but reload will insert loads and stores for individual elements and
2937 we do not necessarily have the information to track those separate
2938 elements. So when we see a mode mismatch, we just bail. */
2941 void
2942 dse_record_singleton_alias_set (alias_set_type alias_set,
2943 enum machine_mode mode)
2945 struct clear_alias_mode_holder tmp_holder;
2946 struct clear_alias_mode_holder *entry;
2947 void **slot;
2949 /* If we are not going to run dse, we need to return now or there
2950 will be problems with allocating the bitmaps. */
2951 if ((!gate_dse()) || !alias_set)
2952 return;
2954 if (!clear_alias_sets)
2956 clear_alias_sets = BITMAP_ALLOC (NULL);
2957 disqualified_clear_alias_sets = BITMAP_ALLOC (NULL);
2958 clear_alias_mode_table = htab_create (11, clear_alias_mode_hash,
2959 clear_alias_mode_eq, NULL);
2960 clear_alias_mode_pool = create_alloc_pool ("clear_alias_mode_pool",
2961 sizeof (struct clear_alias_mode_holder), 100);
2964 bitmap_set_bit (clear_alias_sets, alias_set);
2966 tmp_holder.alias_set = alias_set;
2968 slot = htab_find_slot (clear_alias_mode_table, &tmp_holder, INSERT);
2969 gcc_assert (*slot == NULL);
2971 *slot = entry =
2972 (struct clear_alias_mode_holder *) pool_alloc (clear_alias_mode_pool);
2973 entry->alias_set = alias_set;
2974 entry->mode = mode;
2978 /* Remove ALIAS_SET from the sets of stack slots being considered. */
2980 void
2981 dse_invalidate_singleton_alias_set (alias_set_type alias_set)
2983 if ((!gate_dse()) || !alias_set)
2984 return;
2986 bitmap_clear_bit (clear_alias_sets, alias_set);
2990 /* Look up the bitmap index for OFFSET in GROUP_INFO. If it is not
2991 there, return 0. */
2993 static int
2994 get_bitmap_index (group_info_t group_info, HOST_WIDE_INT offset)
2996 if (offset < 0)
2998 HOST_WIDE_INT offset_p = -offset;
2999 if (offset_p >= group_info->offset_map_size_n)
3000 return 0;
3001 return group_info->offset_map_n[offset_p];
3003 else
3005 if (offset >= group_info->offset_map_size_p)
3006 return 0;
3007 return group_info->offset_map_p[offset];
3012 /* Process the STORE_INFOs into the bitmaps into GEN and KILL. KILL
3013 may be NULL. */
3015 static void
3016 scan_stores_nospill (store_info_t store_info, bitmap gen, bitmap kill)
3018 while (store_info)
3020 HOST_WIDE_INT i;
3021 group_info_t group_info
3022 = VEC_index (group_info_t, rtx_group_vec, store_info->group_id);
3023 if (group_info->process_globally)
3024 for (i = store_info->begin; i < store_info->end; i++)
3026 int index = get_bitmap_index (group_info, i);
3027 if (index != 0)
3029 bitmap_set_bit (gen, index);
3030 if (kill)
3031 bitmap_clear_bit (kill, index);
3034 store_info = store_info->next;
3039 /* Process the STORE_INFOs into the bitmaps into GEN and KILL. KILL
3040 may be NULL. */
3042 static void
3043 scan_stores_spill (store_info_t store_info, bitmap gen, bitmap kill)
3045 while (store_info)
3047 if (store_info->alias_set)
3049 int index = get_bitmap_index (clear_alias_group,
3050 store_info->alias_set);
3051 if (index != 0)
3053 bitmap_set_bit (gen, index);
3054 if (kill)
3055 bitmap_clear_bit (kill, index);
3058 store_info = store_info->next;
3063 /* Process the READ_INFOs into the bitmaps into GEN and KILL. KILL
3064 may be NULL. */
3066 static void
3067 scan_reads_nospill (insn_info_t insn_info, bitmap gen, bitmap kill)
3069 read_info_t read_info = insn_info->read_rec;
3070 int i;
3071 group_info_t group;
3073 /* If this insn reads the frame, kill all the frame related stores. */
3074 if (insn_info->frame_read)
3076 for (i = 0; VEC_iterate (group_info_t, rtx_group_vec, i, group); i++)
3077 if (group->process_globally && group->frame_related)
3079 if (kill)
3080 bitmap_ior_into (kill, group->group_kill);
3081 bitmap_and_compl_into (gen, group->group_kill);
3085 while (read_info)
3087 for (i = 0; VEC_iterate (group_info_t, rtx_group_vec, i, group); i++)
3089 if (group->process_globally)
3091 if (i == read_info->group_id)
3093 if (read_info->begin > read_info->end)
3095 /* Begin > end for block mode reads. */
3096 if (kill)
3097 bitmap_ior_into (kill, group->group_kill);
3098 bitmap_and_compl_into (gen, group->group_kill);
3100 else
3102 /* The groups are the same, just process the
3103 offsets. */
3104 HOST_WIDE_INT j;
3105 for (j = read_info->begin; j < read_info->end; j++)
3107 int index = get_bitmap_index (group, j);
3108 if (index != 0)
3110 if (kill)
3111 bitmap_set_bit (kill, index);
3112 bitmap_clear_bit (gen, index);
3117 else
3119 /* The groups are different, if the alias sets
3120 conflict, clear the entire group. We only need
3121 to apply this test if the read_info is a cselib
3122 read. Anything with a constant base cannot alias
3123 something else with a different constant
3124 base. */
3125 if ((read_info->group_id < 0)
3126 && canon_true_dependence (group->base_mem,
3127 QImode,
3128 group->canon_base_addr,
3129 read_info->mem, NULL_RTX,
3130 rtx_varies_p))
3132 if (kill)
3133 bitmap_ior_into (kill, group->group_kill);
3134 bitmap_and_compl_into (gen, group->group_kill);
3140 read_info = read_info->next;
3144 /* Process the READ_INFOs into the bitmaps into GEN and KILL. KILL
3145 may be NULL. */
3147 static void
3148 scan_reads_spill (read_info_t read_info, bitmap gen, bitmap kill)
3150 while (read_info)
3152 if (read_info->alias_set)
3154 int index = get_bitmap_index (clear_alias_group,
3155 read_info->alias_set);
3156 if (index != 0)
3158 if (kill)
3159 bitmap_set_bit (kill, index);
3160 bitmap_clear_bit (gen, index);
3164 read_info = read_info->next;
3169 /* Return the insn in BB_INFO before the first wild read or if there
3170 are no wild reads in the block, return the last insn. */
3172 static insn_info_t
3173 find_insn_before_first_wild_read (bb_info_t bb_info)
3175 insn_info_t insn_info = bb_info->last_insn;
3176 insn_info_t last_wild_read = NULL;
3178 while (insn_info)
3180 if (insn_info->wild_read)
3182 last_wild_read = insn_info->prev_insn;
3183 /* Block starts with wild read. */
3184 if (!last_wild_read)
3185 return NULL;
3188 insn_info = insn_info->prev_insn;
3191 if (last_wild_read)
3192 return last_wild_read;
3193 else
3194 return bb_info->last_insn;
3198 /* Scan the insns in BB_INFO starting at PTR and going to the top of
3199 the block in order to build the gen and kill sets for the block.
3200 We start at ptr which may be the last insn in the block or may be
3201 the first insn with a wild read. In the latter case we are able to
3202 skip the rest of the block because it just does not matter:
3203 anything that happens is hidden by the wild read. */
3205 static void
3206 dse_step3_scan (bool for_spills, basic_block bb)
3208 bb_info_t bb_info = bb_table[bb->index];
3209 insn_info_t insn_info;
3211 if (for_spills)
3212 /* There are no wild reads in the spill case. */
3213 insn_info = bb_info->last_insn;
3214 else
3215 insn_info = find_insn_before_first_wild_read (bb_info);
3217 /* In the spill case or in the no_spill case if there is no wild
3218 read in the block, we will need a kill set. */
3219 if (insn_info == bb_info->last_insn)
3221 if (bb_info->kill)
3222 bitmap_clear (bb_info->kill);
3223 else
3224 bb_info->kill = BITMAP_ALLOC (NULL);
3226 else
3227 if (bb_info->kill)
3228 BITMAP_FREE (bb_info->kill);
3230 while (insn_info)
3232 /* There may have been code deleted by the dce pass run before
3233 this phase. */
3234 if (insn_info->insn && INSN_P (insn_info->insn))
3236 /* Process the read(s) last. */
3237 if (for_spills)
3239 scan_stores_spill (insn_info->store_rec, bb_info->gen, bb_info->kill);
3240 scan_reads_spill (insn_info->read_rec, bb_info->gen, bb_info->kill);
3242 else
3244 scan_stores_nospill (insn_info->store_rec, bb_info->gen, bb_info->kill);
3245 scan_reads_nospill (insn_info, bb_info->gen, bb_info->kill);
3249 insn_info = insn_info->prev_insn;
3254 /* Set the gen set of the exit block, and also any block with no
3255 successors that does not have a wild read. */
3257 static void
3258 dse_step3_exit_block_scan (bb_info_t bb_info)
3260 /* The gen set is all 0's for the exit block except for the
3261 frame_pointer_group. */
3263 if (stores_off_frame_dead_at_return)
3265 unsigned int i;
3266 group_info_t group;
3268 for (i = 0; VEC_iterate (group_info_t, rtx_group_vec, i, group); i++)
3270 if (group->process_globally && group->frame_related)
3271 bitmap_ior_into (bb_info->gen, group->group_kill);
3277 /* Find all of the blocks that are not backwards reachable from the
3278 exit block or any block with no successors (BB). These are the
3279 infinite loops or infinite self loops. These blocks will still
3280 have their bits set in UNREACHABLE_BLOCKS. */
3282 static void
3283 mark_reachable_blocks (sbitmap unreachable_blocks, basic_block bb)
3285 edge e;
3286 edge_iterator ei;
3288 if (TEST_BIT (unreachable_blocks, bb->index))
3290 RESET_BIT (unreachable_blocks, bb->index);
3291 FOR_EACH_EDGE (e, ei, bb->preds)
3293 mark_reachable_blocks (unreachable_blocks, e->src);
3298 /* Build the transfer functions for the function. */
3300 static void
3301 dse_step3 (bool for_spills)
3303 basic_block bb;
3304 sbitmap unreachable_blocks = sbitmap_alloc (last_basic_block);
3305 sbitmap_iterator sbi;
3306 bitmap all_ones = NULL;
3307 unsigned int i;
3309 sbitmap_ones (unreachable_blocks);
3311 FOR_ALL_BB (bb)
3313 bb_info_t bb_info = bb_table[bb->index];
3314 if (bb_info->gen)
3315 bitmap_clear (bb_info->gen);
3316 else
3317 bb_info->gen = BITMAP_ALLOC (NULL);
3319 if (bb->index == ENTRY_BLOCK)
3321 else if (bb->index == EXIT_BLOCK)
3322 dse_step3_exit_block_scan (bb_info);
3323 else
3324 dse_step3_scan (for_spills, bb);
3325 if (EDGE_COUNT (bb->succs) == 0)
3326 mark_reachable_blocks (unreachable_blocks, bb);
3328 /* If this is the second time dataflow is run, delete the old
3329 sets. */
3330 if (bb_info->in)
3331 BITMAP_FREE (bb_info->in);
3332 if (bb_info->out)
3333 BITMAP_FREE (bb_info->out);
3336 /* For any block in an infinite loop, we must initialize the out set
3337 to all ones. This could be expensive, but almost never occurs in
3338 practice. However, it is common in regression tests. */
3339 EXECUTE_IF_SET_IN_SBITMAP (unreachable_blocks, 0, i, sbi)
3341 if (bitmap_bit_p (all_blocks, i))
3343 bb_info_t bb_info = bb_table[i];
3344 if (!all_ones)
3346 unsigned int j;
3347 group_info_t group;
3349 all_ones = BITMAP_ALLOC (NULL);
3350 for (j = 0; VEC_iterate (group_info_t, rtx_group_vec, j, group); j++)
3351 bitmap_ior_into (all_ones, group->group_kill);
3353 if (!bb_info->out)
3355 bb_info->out = BITMAP_ALLOC (NULL);
3356 bitmap_copy (bb_info->out, all_ones);
3361 if (all_ones)
3362 BITMAP_FREE (all_ones);
3363 sbitmap_free (unreachable_blocks);
3368 /*----------------------------------------------------------------------------
3369 Fourth step.
3371 Solve the bitvector equations.
3372 ----------------------------------------------------------------------------*/
3375 /* Confluence function for blocks with no successors. Create an out
3376 set from the gen set of the exit block. This block logically has
3377 the exit block as a successor. */
3381 static void
3382 dse_confluence_0 (basic_block bb)
3384 bb_info_t bb_info = bb_table[bb->index];
3386 if (bb->index == EXIT_BLOCK)
3387 return;
3389 if (!bb_info->out)
3391 bb_info->out = BITMAP_ALLOC (NULL);
3392 bitmap_copy (bb_info->out, bb_table[EXIT_BLOCK]->gen);
3396 /* Propagate the information from the in set of the dest of E to the
3397 out set of the src of E. If the various in or out sets are not
3398 there, that means they are all ones. */
3400 static bool
3401 dse_confluence_n (edge e)
3403 bb_info_t src_info = bb_table[e->src->index];
3404 bb_info_t dest_info = bb_table[e->dest->index];
3406 if (dest_info->in)
3408 if (src_info->out)
3409 bitmap_and_into (src_info->out, dest_info->in);
3410 else
3412 src_info->out = BITMAP_ALLOC (NULL);
3413 bitmap_copy (src_info->out, dest_info->in);
3416 return true;
3420 /* Propagate the info from the out to the in set of BB_INDEX's basic
3421 block. There are three cases:
3423 1) The block has no kill set. In this case the kill set is all
3424 ones. It does not matter what the out set of the block is, none of
3425 the info can reach the top. The only thing that reaches the top is
3426 the gen set and we just copy the set.
3428 2) There is a kill set but no out set and bb has successors. In
3429 this case we just return. Eventually an out set will be created and
3430 it is better to wait than to create a set of ones.
3432 3) There is both a kill and out set. We apply the obvious transfer
3433 function.
3436 static bool
3437 dse_transfer_function (int bb_index)
3439 bb_info_t bb_info = bb_table[bb_index];
3441 if (bb_info->kill)
3443 if (bb_info->out)
3445 /* Case 3 above. */
3446 if (bb_info->in)
3447 return bitmap_ior_and_compl (bb_info->in, bb_info->gen,
3448 bb_info->out, bb_info->kill);
3449 else
3451 bb_info->in = BITMAP_ALLOC (NULL);
3452 bitmap_ior_and_compl (bb_info->in, bb_info->gen,
3453 bb_info->out, bb_info->kill);
3454 return true;
3457 else
3458 /* Case 2 above. */
3459 return false;
3461 else
3463 /* Case 1 above. If there is already an in set, nothing
3464 happens. */
3465 if (bb_info->in)
3466 return false;
3467 else
3469 bb_info->in = BITMAP_ALLOC (NULL);
3470 bitmap_copy (bb_info->in, bb_info->gen);
3471 return true;
3476 /* Solve the dataflow equations. */
3478 static void
3479 dse_step4 (void)
3481 df_simple_dataflow (DF_BACKWARD, NULL, dse_confluence_0,
3482 dse_confluence_n, dse_transfer_function,
3483 all_blocks, df_get_postorder (DF_BACKWARD),
3484 df_get_n_blocks (DF_BACKWARD));
3485 if (dump_file)
3487 basic_block bb;
3489 fprintf (dump_file, "\n\n*** Global dataflow info after analysis.\n");
3490 FOR_ALL_BB (bb)
3492 bb_info_t bb_info = bb_table[bb->index];
3494 df_print_bb_index (bb, dump_file);
3495 if (bb_info->in)
3496 bitmap_print (dump_file, bb_info->in, " in: ", "\n");
3497 else
3498 fprintf (dump_file, " in: *MISSING*\n");
3499 if (bb_info->gen)
3500 bitmap_print (dump_file, bb_info->gen, " gen: ", "\n");
3501 else
3502 fprintf (dump_file, " gen: *MISSING*\n");
3503 if (bb_info->kill)
3504 bitmap_print (dump_file, bb_info->kill, " kill: ", "\n");
3505 else
3506 fprintf (dump_file, " kill: *MISSING*\n");
3507 if (bb_info->out)
3508 bitmap_print (dump_file, bb_info->out, " out: ", "\n");
3509 else
3510 fprintf (dump_file, " out: *MISSING*\n\n");
3517 /*----------------------------------------------------------------------------
3518 Fifth step.
3520 Delete the stores that can only be deleted using the global information.
3521 ----------------------------------------------------------------------------*/
3524 static void
3525 dse_step5_nospill (void)
3527 basic_block bb;
3528 FOR_EACH_BB (bb)
3530 bb_info_t bb_info = bb_table[bb->index];
3531 insn_info_t insn_info = bb_info->last_insn;
3532 bitmap v = bb_info->out;
3534 while (insn_info)
3536 bool deleted = false;
3537 if (dump_file && insn_info->insn)
3539 fprintf (dump_file, "starting to process insn %d\n",
3540 INSN_UID (insn_info->insn));
3541 bitmap_print (dump_file, v, " v: ", "\n");
3544 /* There may have been code deleted by the dce pass run before
3545 this phase. */
3546 if (insn_info->insn
3547 && INSN_P (insn_info->insn)
3548 && (!insn_info->cannot_delete)
3549 && (!bitmap_empty_p (v)))
3551 store_info_t store_info = insn_info->store_rec;
3553 /* Try to delete the current insn. */
3554 deleted = true;
3556 /* Skip the clobbers. */
3557 while (!store_info->is_set)
3558 store_info = store_info->next;
3560 if (store_info->alias_set)
3561 deleted = false;
3562 else
3564 HOST_WIDE_INT i;
3565 group_info_t group_info
3566 = VEC_index (group_info_t, rtx_group_vec, store_info->group_id);
3568 for (i = store_info->begin; i < store_info->end; i++)
3570 int index = get_bitmap_index (group_info, i);
3572 if (dump_file)
3573 fprintf (dump_file, "i = %d, index = %d\n", (int)i, index);
3574 if (index == 0 || !bitmap_bit_p (v, index))
3576 if (dump_file)
3577 fprintf (dump_file, "failing at i = %d\n", (int)i);
3578 deleted = false;
3579 break;
3583 if (deleted)
3585 if (dbg_cnt (dse))
3587 check_for_inc_dec (insn_info->insn);
3588 delete_insn (insn_info->insn);
3589 insn_info->insn = NULL;
3590 globally_deleted++;
3594 /* We do want to process the local info if the insn was
3595 deleted. For instance, if the insn did a wild read, we
3596 no longer need to trash the info. */
3597 if (insn_info->insn
3598 && INSN_P (insn_info->insn)
3599 && (!deleted))
3601 scan_stores_nospill (insn_info->store_rec, v, NULL);
3602 if (insn_info->wild_read)
3604 if (dump_file)
3605 fprintf (dump_file, "wild read\n");
3606 bitmap_clear (v);
3608 else if (insn_info->read_rec)
3610 if (dump_file)
3611 fprintf (dump_file, "regular read\n");
3612 scan_reads_nospill (insn_info, v, NULL);
3616 insn_info = insn_info->prev_insn;
3622 static void
3623 dse_step5_spill (void)
3625 basic_block bb;
3626 FOR_EACH_BB (bb)
3628 bb_info_t bb_info = bb_table[bb->index];
3629 insn_info_t insn_info = bb_info->last_insn;
3630 bitmap v = bb_info->out;
3632 while (insn_info)
3634 bool deleted = false;
3635 /* There may have been code deleted by the dce pass run before
3636 this phase. */
3637 if (insn_info->insn
3638 && INSN_P (insn_info->insn)
3639 && (!insn_info->cannot_delete)
3640 && (!bitmap_empty_p (v)))
3642 /* Try to delete the current insn. */
3643 store_info_t store_info = insn_info->store_rec;
3644 deleted = true;
3646 while (store_info)
3648 if (store_info->alias_set)
3650 int index = get_bitmap_index (clear_alias_group,
3651 store_info->alias_set);
3652 if (index == 0 || !bitmap_bit_p (v, index))
3654 deleted = false;
3655 break;
3658 else
3659 deleted = false;
3660 store_info = store_info->next;
3662 if (deleted && dbg_cnt (dse))
3664 if (dump_file)
3665 fprintf (dump_file, "Spill deleting insn %d\n",
3666 INSN_UID (insn_info->insn));
3667 check_for_inc_dec (insn_info->insn);
3668 delete_insn (insn_info->insn);
3669 spill_deleted++;
3670 insn_info->insn = NULL;
3674 if (insn_info->insn
3675 && INSN_P (insn_info->insn)
3676 && (!deleted))
3678 scan_stores_spill (insn_info->store_rec, v, NULL);
3679 scan_reads_spill (insn_info->read_rec, v, NULL);
3682 insn_info = insn_info->prev_insn;
3689 /*----------------------------------------------------------------------------
3690 Sixth step.
3692 Delete stores made redundant by earlier stores (which store the same
3693 value) that couldn't be eliminated.
3694 ----------------------------------------------------------------------------*/
3696 static void
3697 dse_step6 (void)
3699 basic_block bb;
3701 FOR_ALL_BB (bb)
3703 bb_info_t bb_info = bb_table[bb->index];
3704 insn_info_t insn_info = bb_info->last_insn;
3706 while (insn_info)
3708 /* There may have been code deleted by the dce pass run before
3709 this phase. */
3710 if (insn_info->insn
3711 && INSN_P (insn_info->insn)
3712 && !insn_info->cannot_delete)
3714 store_info_t s_info = insn_info->store_rec;
3716 while (s_info && !s_info->is_set)
3717 s_info = s_info->next;
3718 if (s_info
3719 && s_info->redundant_reason
3720 && s_info->redundant_reason->insn
3721 && INSN_P (s_info->redundant_reason->insn))
3723 rtx rinsn = s_info->redundant_reason->insn;
3724 if (dump_file)
3725 fprintf (dump_file, "Locally deleting insn %d "
3726 "because insn %d stores the "
3727 "same value and couldn't be "
3728 "eliminated\n",
3729 INSN_UID (insn_info->insn),
3730 INSN_UID (rinsn));
3731 delete_dead_store_insn (insn_info);
3734 insn_info = insn_info->prev_insn;
3739 /*----------------------------------------------------------------------------
3740 Seventh step.
3742 Destroy everything left standing.
3743 ----------------------------------------------------------------------------*/
3745 static void
3746 dse_step7 (bool global_done)
3748 unsigned int i;
3749 group_info_t group;
3750 basic_block bb;
3752 for (i = 0; VEC_iterate (group_info_t, rtx_group_vec, i, group); i++)
3754 free (group->offset_map_n);
3755 free (group->offset_map_p);
3756 BITMAP_FREE (group->store1_n);
3757 BITMAP_FREE (group->store1_p);
3758 BITMAP_FREE (group->store2_n);
3759 BITMAP_FREE (group->store2_p);
3760 BITMAP_FREE (group->group_kill);
3763 if (global_done)
3764 FOR_ALL_BB (bb)
3766 bb_info_t bb_info = bb_table[bb->index];
3767 BITMAP_FREE (bb_info->gen);
3768 if (bb_info->kill)
3769 BITMAP_FREE (bb_info->kill);
3770 if (bb_info->in)
3771 BITMAP_FREE (bb_info->in);
3772 if (bb_info->out)
3773 BITMAP_FREE (bb_info->out);
3776 if (clear_alias_sets)
3778 BITMAP_FREE (clear_alias_sets);
3779 BITMAP_FREE (disqualified_clear_alias_sets);
3780 free_alloc_pool (clear_alias_mode_pool);
3781 htab_delete (clear_alias_mode_table);
3784 end_alias_analysis ();
3785 free (bb_table);
3786 htab_delete (rtx_group_table);
3787 VEC_free (group_info_t, heap, rtx_group_vec);
3788 BITMAP_FREE (all_blocks);
3789 BITMAP_FREE (scratch);
3791 free_alloc_pool (rtx_store_info_pool);
3792 free_alloc_pool (read_info_pool);
3793 free_alloc_pool (insn_info_pool);
3794 free_alloc_pool (bb_info_pool);
3795 free_alloc_pool (rtx_group_info_pool);
3796 free_alloc_pool (deferred_change_pool);
3800 /* -------------------------------------------------------------------------
3802 ------------------------------------------------------------------------- */
3804 /* Callback for running pass_rtl_dse. */
3806 static unsigned int
3807 rest_of_handle_dse (void)
3809 bool did_global = false;
3811 df_set_flags (DF_DEFER_INSN_RESCAN);
3813 /* Need the notes since we must track live hardregs in the forwards
3814 direction. */
3815 df_note_add_problem ();
3816 df_analyze ();
3818 dse_step0 ();
3819 dse_step1 ();
3820 dse_step2_init ();
3821 if (dse_step2_nospill ())
3823 df_set_flags (DF_LR_RUN_DCE);
3824 df_analyze ();
3825 did_global = true;
3826 if (dump_file)
3827 fprintf (dump_file, "doing global processing\n");
3828 dse_step3 (false);
3829 dse_step4 ();
3830 dse_step5_nospill ();
3833 /* For the instance of dse that runs after reload, we make a special
3834 pass to process the spills. These are special in that they are
3835 totally transparent, i.e, there is no aliasing issues that need
3836 to be considered. This means that the wild reads that kill
3837 everything else do not apply here. */
3838 if (clear_alias_sets && dse_step2_spill ())
3840 if (!did_global)
3842 df_set_flags (DF_LR_RUN_DCE);
3843 df_analyze ();
3845 did_global = true;
3846 if (dump_file)
3847 fprintf (dump_file, "doing global spill processing\n");
3848 dse_step3 (true);
3849 dse_step4 ();
3850 dse_step5_spill ();
3853 dse_step6 ();
3854 dse_step7 (did_global);
3856 if (dump_file)
3857 fprintf (dump_file, "dse: local deletions = %d, global deletions = %d, spill deletions = %d\n",
3858 locally_deleted, globally_deleted, spill_deleted);
3859 return 0;
3862 static bool
3863 gate_dse (void)
3865 return gate_dse1 () || gate_dse2 ();
3868 static bool
3869 gate_dse1 (void)
3871 return optimize > 0 && flag_dse
3872 && dbg_cnt (dse1);
3875 static bool
3876 gate_dse2 (void)
3878 return optimize > 0 && flag_dse
3879 && dbg_cnt (dse2);
3882 struct rtl_opt_pass pass_rtl_dse1 =
3885 RTL_PASS,
3886 "dse1", /* name */
3887 gate_dse1, /* gate */
3888 rest_of_handle_dse, /* execute */
3889 NULL, /* sub */
3890 NULL, /* next */
3891 0, /* static_pass_number */
3892 TV_DSE1, /* tv_id */
3893 0, /* properties_required */
3894 0, /* properties_provided */
3895 0, /* properties_destroyed */
3896 0, /* todo_flags_start */
3897 TODO_dump_func |
3898 TODO_df_finish | TODO_verify_rtl_sharing |
3899 TODO_ggc_collect /* todo_flags_finish */
3903 struct rtl_opt_pass pass_rtl_dse2 =
3906 RTL_PASS,
3907 "dse2", /* name */
3908 gate_dse2, /* gate */
3909 rest_of_handle_dse, /* execute */
3910 NULL, /* sub */
3911 NULL, /* next */
3912 0, /* static_pass_number */
3913 TV_DSE2, /* tv_id */
3914 0, /* properties_required */
3915 0, /* properties_provided */
3916 0, /* properties_destroyed */
3917 0, /* todo_flags_start */
3918 TODO_dump_func |
3919 TODO_df_finish | TODO_verify_rtl_sharing |
3920 TODO_ggc_collect /* todo_flags_finish */