postreload-gcse.cc revision 1.1 1 1.1 mrg /* Post reload partially redundant load elimination
2 1.1 mrg Copyright (C) 2004-2022 Free Software Foundation, Inc.
3 1.1 mrg
4 1.1 mrg This file is part of GCC.
5 1.1 mrg
6 1.1 mrg GCC is free software; you can redistribute it and/or modify it under
7 1.1 mrg the terms of the GNU General Public License as published by the Free
8 1.1 mrg Software Foundation; either version 3, or (at your option) any later
9 1.1 mrg version.
10 1.1 mrg
11 1.1 mrg GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 1.1 mrg WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 1.1 mrg FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 1.1 mrg for more details.
15 1.1 mrg
16 1.1 mrg You should have received a copy of the GNU General Public License
17 1.1 mrg along with GCC; see the file COPYING3. If not see
18 1.1 mrg <http://www.gnu.org/licenses/>. */
19 1.1 mrg
20 1.1 mrg #include "config.h"
21 1.1 mrg #include "system.h"
22 1.1 mrg #include "coretypes.h"
23 1.1 mrg #include "backend.h"
24 1.1 mrg #include "target.h"
25 1.1 mrg #include "rtl.h"
26 1.1 mrg #include "tree.h"
27 1.1 mrg #include "predict.h"
28 1.1 mrg #include "df.h"
29 1.1 mrg #include "memmodel.h"
30 1.1 mrg #include "tm_p.h"
31 1.1 mrg #include "insn-config.h"
32 1.1 mrg #include "emit-rtl.h"
33 1.1 mrg #include "recog.h"
34 1.1 mrg
35 1.1 mrg #include "cfgrtl.h"
36 1.1 mrg #include "profile.h"
37 1.1 mrg #include "expr.h"
38 1.1 mrg #include "tree-pass.h"
39 1.1 mrg #include "dbgcnt.h"
40 1.1 mrg #include "intl.h"
41 1.1 mrg #include "gcse-common.h"
42 1.1 mrg #include "gcse.h"
43 1.1 mrg #include "regs.h"
44 1.1 mrg #include "function-abi.h"
45 1.1 mrg
46 1.1 mrg /* The following code implements gcse after reload, the purpose of this
47 1.1 mrg pass is to cleanup redundant loads generated by reload and other
48 1.1 mrg optimizations that come after gcse. It searches for simple inter-block
49 1.1 mrg redundancies and tries to eliminate them by adding moves and loads
50 1.1 mrg in cold places.
51 1.1 mrg
52 1.1 mrg Perform partially redundant load elimination, try to eliminate redundant
53 1.1 mrg loads created by the reload pass. We try to look for full or partial
54 1.1 mrg redundant loads fed by one or more loads/stores in predecessor BBs,
55 1.1 mrg and try adding loads to make them fully redundant. We also check if
56 1.1 mrg it's worth adding loads to be able to delete the redundant load.
57 1.1 mrg
58 1.1 mrg Algorithm:
59 1.1 mrg 1. Build available expressions hash table:
60 1.1 mrg For each load/store instruction, if the loaded/stored memory didn't
61 1.1 mrg change until the end of the basic block add this memory expression to
62 1.1 mrg the hash table.
63 1.1 mrg 2. Perform Redundancy elimination:
64 1.1 mrg For each load instruction do the following:
65 1.1 mrg perform partial redundancy elimination, check if it's worth adding
66 1.1 mrg loads to make the load fully redundant. If so add loads and
67 1.1 mrg register copies and delete the load.
68 1.1 mrg 3. Delete instructions made redundant in step 2.
69 1.1 mrg
70 1.1 mrg Future enhancement:
71 1.1 mrg If the loaded register is used/defined between load and some store,
72 1.1 mrg look for some other free register between load and all its stores,
73 1.1 mrg and replace the load with a copy from this register to the loaded
74 1.1 mrg register.
75 1.1 mrg */
76 1.1 mrg
77 1.1 mrg
79 1.1 mrg /* Keep statistics of this pass. */
80 1.1 mrg static struct
81 1.1 mrg {
82 1.1 mrg int moves_inserted;
83 1.1 mrg int copies_inserted;
84 1.1 mrg int insns_deleted;
85 1.1 mrg } stats;
86 1.1 mrg
87 1.1 mrg /* We need to keep a hash table of expressions. The table entries are of
88 1.1 mrg type 'struct expr', and for each expression there is a single linked
89 1.1 mrg list of occurrences. */
90 1.1 mrg
91 1.1 mrg /* Expression elements in the hash table. */
92 1.1 mrg struct expr
93 1.1 mrg {
94 1.1 mrg /* The expression (SET_SRC for expressions, PATTERN for assignments). */
95 1.1 mrg rtx expr;
96 1.1 mrg
97 1.1 mrg /* The same hash for this entry. */
98 1.1 mrg hashval_t hash;
99 1.1 mrg
100 1.1 mrg /* Index in the transparent bitmaps. */
101 1.1 mrg unsigned int bitmap_index;
102 1.1 mrg
103 1.1 mrg /* List of available occurrence in basic blocks in the function. */
104 1.1 mrg struct occr *avail_occr;
105 1.1 mrg };
106 1.1 mrg
107 1.1 mrg /* Hashtable helpers. */
108 1.1 mrg
109 1.1 mrg struct expr_hasher : nofree_ptr_hash <expr>
110 1.1 mrg {
111 1.1 mrg static inline hashval_t hash (const expr *);
112 1.1 mrg static inline bool equal (const expr *, const expr *);
113 1.1 mrg };
114 1.1 mrg
115 1.1 mrg
116 1.1 mrg /* Hash expression X.
117 1.1 mrg DO_NOT_RECORD_P is a boolean indicating if a volatile operand is found
118 1.1 mrg or if the expression contains something we don't want to insert in the
119 1.1 mrg table. */
120 1.1 mrg
121 1.1 mrg static hashval_t
122 1.1 mrg hash_expr (rtx x, int *do_not_record_p)
123 1.1 mrg {
124 1.1 mrg *do_not_record_p = 0;
125 1.1 mrg return hash_rtx (x, GET_MODE (x), do_not_record_p,
126 1.1 mrg NULL, /*have_reg_qty=*/false);
127 1.1 mrg }
128 1.1 mrg
129 1.1 mrg /* Callback for hashtab.
130 1.1 mrg Return the hash value for expression EXP. We don't actually hash
131 1.1 mrg here, we just return the cached hash value. */
132 1.1 mrg
133 1.1 mrg inline hashval_t
134 1.1 mrg expr_hasher::hash (const expr *exp)
135 1.1 mrg {
136 1.1 mrg return exp->hash;
137 1.1 mrg }
138 1.1 mrg
139 1.1 mrg /* Callback for hashtab.
140 1.1 mrg Return nonzero if exp1 is equivalent to exp2. */
141 1.1 mrg
142 1.1 mrg inline bool
143 1.1 mrg expr_hasher::equal (const expr *exp1, const expr *exp2)
144 1.1 mrg {
145 1.1 mrg int equiv_p = exp_equiv_p (exp1->expr, exp2->expr, 0, true);
146 1.1 mrg
147 1.1 mrg gcc_assert (!equiv_p || exp1->hash == exp2->hash);
148 1.1 mrg return equiv_p;
149 1.1 mrg }
150 1.1 mrg
151 1.1 mrg /* The table itself. */
152 1.1 mrg static hash_table<expr_hasher> *expr_table;
153 1.1 mrg
154 1.1 mrg
156 1.1 mrg static struct obstack expr_obstack;
157 1.1 mrg
158 1.1 mrg /* Occurrence of an expression.
159 1.1 mrg There is at most one occurrence per basic block. If a pattern appears
160 1.1 mrg more than once, the last appearance is used. */
161 1.1 mrg
162 1.1 mrg struct occr
163 1.1 mrg {
164 1.1 mrg /* Next occurrence of this expression. */
165 1.1 mrg struct occr *next;
166 1.1 mrg /* The insn that computes the expression. */
167 1.1 mrg rtx_insn *insn;
168 1.1 mrg /* Nonzero if this [anticipatable] occurrence has been deleted. */
169 1.1 mrg char deleted_p;
170 1.1 mrg };
171 1.1 mrg
172 1.1 mrg static struct obstack occr_obstack;
173 1.1 mrg
174 1.1 mrg /* The following structure holds the information about the occurrences of
175 1.1 mrg the redundant instructions. */
176 1.1 mrg struct unoccr
177 1.1 mrg {
178 1.1 mrg struct unoccr *next;
179 1.1 mrg edge pred;
180 1.1 mrg rtx_insn *insn;
181 1.1 mrg };
182 1.1 mrg
183 1.1 mrg static struct obstack unoccr_obstack;
184 1.1 mrg
185 1.1 mrg /* Array where each element is the CUID if the insn that last set the hard
186 1.1 mrg register with the number of the element, since the start of the current
187 1.1 mrg basic block.
188 1.1 mrg
189 1.1 mrg This array is used during the building of the hash table (step 1) to
190 1.1 mrg determine if a reg is killed before the end of a basic block.
191 1.1 mrg
192 1.1 mrg It is also used when eliminating partial redundancies (step 2) to see
193 1.1 mrg if a reg was modified since the start of a basic block. */
194 1.1 mrg static int *reg_avail_info;
195 1.1 mrg
196 1.1 mrg /* A list of insns that may modify memory within the current basic block. */
197 1.1 mrg struct modifies_mem
198 1.1 mrg {
199 1.1 mrg rtx_insn *insn;
200 1.1 mrg struct modifies_mem *next;
201 1.1 mrg };
202 1.1 mrg static struct modifies_mem *modifies_mem_list;
203 1.1 mrg
204 1.1 mrg /* The modifies_mem structs also go on an obstack, only this obstack is
205 1.1 mrg freed each time after completing the analysis or transformations on
206 1.1 mrg a basic block. So we allocate a dummy modifies_mem_obstack_bottom
207 1.1 mrg object on the obstack to keep track of the bottom of the obstack. */
208 1.1 mrg static struct obstack modifies_mem_obstack;
209 1.1 mrg static struct modifies_mem *modifies_mem_obstack_bottom;
210 1.1 mrg
211 1.1 mrg /* Mapping of insn UIDs to CUIDs.
212 1.1 mrg CUIDs are like UIDs except they increase monotonically in each basic
213 1.1 mrg block, have no gaps, and only apply to real insns. */
214 1.1 mrg static int *uid_cuid;
215 1.1 mrg #define INSN_CUID(INSN) (uid_cuid[INSN_UID (INSN)])
216 1.1 mrg
217 1.1 mrg /* Bitmap of blocks which have memory stores. */
218 1.1 mrg static bitmap modify_mem_list_set;
219 1.1 mrg
220 1.1 mrg /* Bitmap of blocks which have calls. */
221 1.1 mrg static bitmap blocks_with_calls;
222 1.1 mrg
223 1.1 mrg /* Vector indexed by block # with a list of all the insns that
224 1.1 mrg modify memory within the block. */
225 1.1 mrg static vec<rtx_insn *> *modify_mem_list;
226 1.1 mrg
227 1.1 mrg /* Vector indexed by block # with a canonicalized list of insns
228 1.1 mrg that modify memory in the block. */
229 1.1 mrg static vec<modify_pair> *canon_modify_mem_list;
230 1.1 mrg
231 1.1 mrg /* Vector of simple bitmaps indexed by block number. Each component sbitmap
232 1.1 mrg indicates which expressions are transparent through the block. */
233 1.1 mrg static sbitmap *transp;
234 1.1 mrg
235 1.1 mrg
237 1.1 mrg /* Helpers for memory allocation/freeing. */
238 1.1 mrg static void alloc_mem (void);
239 1.1 mrg static void free_mem (void);
240 1.1 mrg
241 1.1 mrg /* Support for hash table construction and transformations. */
242 1.1 mrg static bool oprs_unchanged_p (rtx, rtx_insn *, bool);
243 1.1 mrg static void record_last_reg_set_info (rtx_insn *, rtx);
244 1.1 mrg static void record_last_reg_set_info_regno (rtx_insn *, int);
245 1.1 mrg static void record_last_mem_set_info (rtx_insn *);
246 1.1 mrg static void record_last_set_info (rtx, const_rtx, void *);
247 1.1 mrg static void record_opr_changes (rtx_insn *);
248 1.1 mrg
249 1.1 mrg static void find_mem_conflicts (rtx, const_rtx, void *);
250 1.1 mrg static int load_killed_in_block_p (int, rtx, bool);
251 1.1 mrg static void reset_opr_set_tables (void);
252 1.1 mrg
253 1.1 mrg /* Hash table support. */
254 1.1 mrg static hashval_t hash_expr (rtx, int *);
255 1.1 mrg static void insert_expr_in_table (rtx, rtx_insn *);
256 1.1 mrg static struct expr *lookup_expr_in_table (rtx);
257 1.1 mrg static void dump_hash_table (FILE *);
258 1.1 mrg
259 1.1 mrg /* Helpers for eliminate_partially_redundant_load. */
260 1.1 mrg static bool reg_killed_on_edge (rtx, edge);
261 1.1 mrg static bool reg_used_on_edge (rtx, edge);
262 1.1 mrg
263 1.1 mrg static rtx get_avail_load_store_reg (rtx_insn *);
264 1.1 mrg
265 1.1 mrg static bool bb_has_well_behaved_predecessors (basic_block);
266 1.1 mrg static struct occr* get_bb_avail_insn (basic_block, struct occr *, int);
267 1.1 mrg static void hash_scan_set (rtx_insn *);
268 1.1 mrg static void compute_hash_table (void);
269 1.1 mrg
270 1.1 mrg /* The work horses of this pass. */
271 1.1 mrg static void eliminate_partially_redundant_load (basic_block,
272 1.1 mrg rtx_insn *,
273 1.1 mrg struct expr *);
274 1.1 mrg static void eliminate_partially_redundant_loads (void);
275 1.1 mrg
276 1.1 mrg
278 1.1 mrg /* Allocate memory for the CUID mapping array and register/memory
279 1.1 mrg tracking tables. */
280 1.1 mrg
281 1.1 mrg static void
282 1.1 mrg alloc_mem (void)
283 1.1 mrg {
284 1.1 mrg int i;
285 1.1 mrg basic_block bb;
286 1.1 mrg rtx_insn *insn;
287 1.1 mrg
288 1.1 mrg /* Find the largest UID and create a mapping from UIDs to CUIDs. */
289 1.1 mrg uid_cuid = XCNEWVEC (int, get_max_uid () + 1);
290 1.1 mrg i = 1;
291 1.1 mrg FOR_EACH_BB_FN (bb, cfun)
292 1.1 mrg FOR_BB_INSNS (bb, insn)
293 1.1 mrg {
294 1.1 mrg if (INSN_P (insn))
295 1.1 mrg uid_cuid[INSN_UID (insn)] = i++;
296 1.1 mrg else
297 1.1 mrg uid_cuid[INSN_UID (insn)] = i;
298 1.1 mrg }
299 1.1 mrg
300 1.1 mrg /* Allocate the available expressions hash table. We don't want to
301 1.1 mrg make the hash table too small, but unnecessarily making it too large
302 1.1 mrg also doesn't help. The i/4 is a gcse.cc relic, and seems like a
303 1.1 mrg reasonable choice. */
304 1.1 mrg expr_table = new hash_table<expr_hasher> (MAX (i / 4, 13));
305 1.1 mrg
306 1.1 mrg /* We allocate everything on obstacks because we often can roll back
307 1.1 mrg the whole obstack to some point. Freeing obstacks is very fast. */
308 1.1 mrg gcc_obstack_init (&expr_obstack);
309 1.1 mrg gcc_obstack_init (&occr_obstack);
310 1.1 mrg gcc_obstack_init (&unoccr_obstack);
311 1.1 mrg gcc_obstack_init (&modifies_mem_obstack);
312 1.1 mrg
313 1.1 mrg /* Working array used to track the last set for each register
314 1.1 mrg in the current block. */
315 1.1 mrg reg_avail_info = (int *) xmalloc (FIRST_PSEUDO_REGISTER * sizeof (int));
316 1.1 mrg
317 1.1 mrg /* Put a dummy modifies_mem object on the modifies_mem_obstack, so we
318 1.1 mrg can roll it back in reset_opr_set_tables. */
319 1.1 mrg modifies_mem_obstack_bottom =
320 1.1 mrg (struct modifies_mem *) obstack_alloc (&modifies_mem_obstack,
321 1.1 mrg sizeof (struct modifies_mem));
322 1.1 mrg
323 1.1 mrg blocks_with_calls = BITMAP_ALLOC (NULL);
324 1.1 mrg modify_mem_list_set = BITMAP_ALLOC (NULL);
325 1.1 mrg
326 1.1 mrg modify_mem_list = (vec_rtx_heap *) xcalloc (last_basic_block_for_fn (cfun),
327 1.1 mrg sizeof (vec_rtx_heap));
328 1.1 mrg canon_modify_mem_list
329 1.1 mrg = (vec_modify_pair_heap *) xcalloc (last_basic_block_for_fn (cfun),
330 1.1 mrg sizeof (vec_modify_pair_heap));
331 1.1 mrg }
332 1.1 mrg
333 1.1 mrg /* Free memory allocated by alloc_mem. */
334 1.1 mrg
335 1.1 mrg static void
336 1.1 mrg free_mem (void)
337 1.1 mrg {
338 1.1 mrg free (uid_cuid);
339 1.1 mrg
340 1.1 mrg delete expr_table;
341 1.1 mrg expr_table = NULL;
342 1.1 mrg
343 1.1 mrg obstack_free (&expr_obstack, NULL);
344 1.1 mrg obstack_free (&occr_obstack, NULL);
345 1.1 mrg obstack_free (&unoccr_obstack, NULL);
346 1.1 mrg obstack_free (&modifies_mem_obstack, NULL);
347 1.1 mrg
348 1.1 mrg unsigned i;
349 1.1 mrg bitmap_iterator bi;
350 1.1 mrg EXECUTE_IF_SET_IN_BITMAP (modify_mem_list_set, 0, i, bi)
351 1.1 mrg {
352 1.1 mrg modify_mem_list[i].release ();
353 1.1 mrg canon_modify_mem_list[i].release ();
354 1.1 mrg }
355 1.1 mrg
356 1.1 mrg BITMAP_FREE (blocks_with_calls);
357 1.1 mrg BITMAP_FREE (modify_mem_list_set);
358 1.1 mrg free (reg_avail_info);
359 1.1 mrg free (modify_mem_list);
360 1.1 mrg free (canon_modify_mem_list);
361 1.1 mrg }
362 1.1 mrg
363 1.1 mrg
365 1.1 mrg /* Insert expression X in INSN in the hash TABLE.
366 1.1 mrg If it is already present, record it as the last occurrence in INSN's
367 1.1 mrg basic block. */
368 1.1 mrg
369 1.1 mrg static void
370 1.1 mrg insert_expr_in_table (rtx x, rtx_insn *insn)
371 1.1 mrg {
372 1.1 mrg int do_not_record_p;
373 1.1 mrg hashval_t hash;
374 1.1 mrg struct expr *cur_expr, **slot;
375 1.1 mrg struct occr *avail_occr;
376 1.1 mrg
377 1.1 mrg hash = hash_expr (x, &do_not_record_p);
378 1.1 mrg
379 1.1 mrg /* Do not insert expression in the table if it contains volatile operands,
380 1.1 mrg or if hash_expr determines the expression is something we don't want
381 1.1 mrg to or can't handle. */
382 1.1 mrg if (do_not_record_p)
383 1.1 mrg return;
384 1.1 mrg
385 1.1 mrg /* We anticipate that redundant expressions are rare, so for convenience
386 1.1 mrg allocate a new hash table element here already and set its fields.
387 1.1 mrg If we don't do this, we need a hack with a static struct expr. Anyway,
388 1.1 mrg obstack_free is really fast and one more obstack_alloc doesn't hurt if
389 1.1 mrg we're going to see more expressions later on. */
390 1.1 mrg cur_expr = (struct expr *) obstack_alloc (&expr_obstack,
391 1.1 mrg sizeof (struct expr));
392 1.1 mrg cur_expr->expr = x;
393 1.1 mrg cur_expr->hash = hash;
394 1.1 mrg cur_expr->avail_occr = NULL;
395 1.1 mrg
396 1.1 mrg slot = expr_table->find_slot_with_hash (cur_expr, hash, INSERT);
397 1.1 mrg
398 1.1 mrg if (! (*slot))
399 1.1 mrg {
400 1.1 mrg /* The expression isn't found, so insert it. */
401 1.1 mrg *slot = cur_expr;
402 1.1 mrg
403 1.1 mrg /* Anytime we add an entry to the table, record the index
404 1.1 mrg of the new entry. The bitmap index starts counting
405 1.1 mrg at zero. */
406 1.1 mrg cur_expr->bitmap_index = expr_table->elements () - 1;
407 1.1 mrg }
408 1.1 mrg else
409 1.1 mrg {
410 1.1 mrg /* The expression is already in the table, so roll back the
411 1.1 mrg obstack and use the existing table entry. */
412 1.1 mrg obstack_free (&expr_obstack, cur_expr);
413 1.1 mrg cur_expr = *slot;
414 1.1 mrg }
415 1.1 mrg
416 1.1 mrg /* Search for another occurrence in the same basic block. We insert
417 1.1 mrg insns blockwise from start to end, so keep appending to the
418 1.1 mrg start of the list so we have to check only a single element. */
419 1.1 mrg avail_occr = cur_expr->avail_occr;
420 1.1 mrg if (avail_occr
421 1.1 mrg && BLOCK_FOR_INSN (avail_occr->insn) == BLOCK_FOR_INSN (insn))
422 1.1 mrg avail_occr->insn = insn;
423 1.1 mrg else
424 1.1 mrg {
425 1.1 mrg /* First occurrence of this expression in this basic block. */
426 1.1 mrg avail_occr = (struct occr *) obstack_alloc (&occr_obstack,
427 1.1 mrg sizeof (struct occr));
428 1.1 mrg avail_occr->insn = insn;
429 1.1 mrg avail_occr->next = cur_expr->avail_occr;
430 1.1 mrg avail_occr->deleted_p = 0;
431 1.1 mrg cur_expr->avail_occr = avail_occr;
432 1.1 mrg }
433 1.1 mrg }
434 1.1 mrg
435 1.1 mrg
437 1.1 mrg /* Lookup pattern PAT in the expression hash table.
438 1.1 mrg The result is a pointer to the table entry, or NULL if not found. */
439 1.1 mrg
440 1.1 mrg static struct expr *
441 1.1 mrg lookup_expr_in_table (rtx pat)
442 1.1 mrg {
443 1.1 mrg int do_not_record_p;
444 1.1 mrg struct expr **slot, *tmp_expr;
445 1.1 mrg hashval_t hash = hash_expr (pat, &do_not_record_p);
446 1.1 mrg
447 1.1 mrg if (do_not_record_p)
448 1.1 mrg return NULL;
449 1.1 mrg
450 1.1 mrg tmp_expr = (struct expr *) obstack_alloc (&expr_obstack,
451 1.1 mrg sizeof (struct expr));
452 1.1 mrg tmp_expr->expr = pat;
453 1.1 mrg tmp_expr->hash = hash;
454 1.1 mrg tmp_expr->avail_occr = NULL;
455 1.1 mrg
456 1.1 mrg slot = expr_table->find_slot_with_hash (tmp_expr, hash, INSERT);
457 1.1 mrg obstack_free (&expr_obstack, tmp_expr);
458 1.1 mrg
459 1.1 mrg if (!slot)
460 1.1 mrg return NULL;
461 1.1 mrg else
462 1.1 mrg return (*slot);
463 1.1 mrg }
464 1.1 mrg
465 1.1 mrg
467 1.1 mrg /* Dump all expressions and occurrences that are currently in the
468 1.1 mrg expression hash table to FILE. */
469 1.1 mrg
470 1.1 mrg /* This helper is called via htab_traverse. */
471 1.1 mrg int
472 1.1 mrg dump_expr_hash_table_entry (expr **slot, FILE *file)
473 1.1 mrg {
474 1.1 mrg struct expr *exprs = *slot;
475 1.1 mrg struct occr *occr;
476 1.1 mrg
477 1.1 mrg fprintf (file, "expr: ");
478 1.1 mrg print_rtl (file, exprs->expr);
479 1.1 mrg fprintf (file,"\nhashcode: %u\n", exprs->hash);
480 1.1 mrg fprintf (file,"list of occurrences:\n");
481 1.1 mrg occr = exprs->avail_occr;
482 1.1 mrg while (occr)
483 1.1 mrg {
484 1.1 mrg rtx_insn *insn = occr->insn;
485 1.1 mrg print_rtl_single (file, insn);
486 1.1 mrg fprintf (file, "\n");
487 1.1 mrg occr = occr->next;
488 1.1 mrg }
489 1.1 mrg fprintf (file, "\n");
490 1.1 mrg return 1;
491 1.1 mrg }
492 1.1 mrg
493 1.1 mrg static void
494 1.1 mrg dump_hash_table (FILE *file)
495 1.1 mrg {
496 1.1 mrg fprintf (file, "\n\nexpression hash table\n");
497 1.1 mrg fprintf (file, "size %ld, %ld elements, %f collision/search ratio\n",
498 1.1 mrg (long) expr_table->size (),
499 1.1 mrg (long) expr_table->elements (),
500 1.1 mrg expr_table->collisions ());
501 1.1 mrg if (!expr_table->is_empty ())
502 1.1 mrg {
503 1.1 mrg fprintf (file, "\n\ntable entries:\n");
504 1.1 mrg expr_table->traverse <FILE *, dump_expr_hash_table_entry> (file);
505 1.1 mrg }
506 1.1 mrg fprintf (file, "\n");
507 1.1 mrg }
508 1.1 mrg
509 1.1 mrg /* Return true if register X is recorded as being set by an instruction
511 1.1 mrg whose CUID is greater than the one given. */
512 1.1 mrg
513 1.1 mrg static bool
514 1.1 mrg reg_changed_after_insn_p (rtx x, int cuid)
515 1.1 mrg {
516 1.1 mrg unsigned int regno, end_regno;
517 1.1 mrg
518 1.1 mrg regno = REGNO (x);
519 1.1 mrg end_regno = END_REGNO (x);
520 1.1 mrg do
521 1.1 mrg if (reg_avail_info[regno] > cuid)
522 1.1 mrg return true;
523 1.1 mrg while (++regno < end_regno);
524 1.1 mrg return false;
525 1.1 mrg }
526 1.1 mrg
527 1.1 mrg /* Return nonzero if the operands of expression X are unchanged
528 1.1 mrg 1) from the start of INSN's basic block up to but not including INSN
529 1.1 mrg if AFTER_INSN is false, or
530 1.1 mrg 2) from INSN to the end of INSN's basic block if AFTER_INSN is true. */
531 1.1 mrg
532 1.1 mrg static bool
533 1.1 mrg oprs_unchanged_p (rtx x, rtx_insn *insn, bool after_insn)
534 1.1 mrg {
535 1.1 mrg int i, j;
536 1.1 mrg enum rtx_code code;
537 1.1 mrg const char *fmt;
538 1.1 mrg
539 1.1 mrg if (x == 0)
540 1.1 mrg return 1;
541 1.1 mrg
542 1.1 mrg code = GET_CODE (x);
543 1.1 mrg switch (code)
544 1.1 mrg {
545 1.1 mrg case REG:
546 1.1 mrg /* We are called after register allocation. */
547 1.1 mrg gcc_assert (REGNO (x) < FIRST_PSEUDO_REGISTER);
548 1.1 mrg if (after_insn)
549 1.1 mrg return !reg_changed_after_insn_p (x, INSN_CUID (insn) - 1);
550 1.1 mrg else
551 1.1 mrg return !reg_changed_after_insn_p (x, 0);
552 1.1 mrg
553 1.1 mrg case MEM:
554 1.1 mrg if (load_killed_in_block_p (INSN_CUID (insn), x, after_insn))
555 1.1 mrg return 0;
556 1.1 mrg else
557 1.1 mrg return oprs_unchanged_p (XEXP (x, 0), insn, after_insn);
558 1.1 mrg
559 1.1 mrg case PC:
560 1.1 mrg case CONST:
561 1.1 mrg CASE_CONST_ANY:
562 1.1 mrg case SYMBOL_REF:
563 1.1 mrg case LABEL_REF:
564 1.1 mrg case ADDR_VEC:
565 1.1 mrg case ADDR_DIFF_VEC:
566 1.1 mrg return 1;
567 1.1 mrg
568 1.1 mrg case PRE_DEC:
569 1.1 mrg case PRE_INC:
570 1.1 mrg case POST_DEC:
571 1.1 mrg case POST_INC:
572 1.1 mrg case PRE_MODIFY:
573 1.1 mrg case POST_MODIFY:
574 1.1 mrg if (after_insn)
575 1.1 mrg return 0;
576 1.1 mrg break;
577 1.1 mrg
578 1.1 mrg default:
579 1.1 mrg break;
580 1.1 mrg }
581 1.1 mrg
582 1.1 mrg for (i = GET_RTX_LENGTH (code) - 1, fmt = GET_RTX_FORMAT (code); i >= 0; i--)
583 1.1 mrg {
584 1.1 mrg if (fmt[i] == 'e')
585 1.1 mrg {
586 1.1 mrg if (! oprs_unchanged_p (XEXP (x, i), insn, after_insn))
587 1.1 mrg return 0;
588 1.1 mrg }
589 1.1 mrg else if (fmt[i] == 'E')
590 1.1 mrg for (j = 0; j < XVECLEN (x, i); j++)
591 1.1 mrg if (! oprs_unchanged_p (XVECEXP (x, i, j), insn, after_insn))
592 1.1 mrg return 0;
593 1.1 mrg }
594 1.1 mrg
595 1.1 mrg return 1;
596 1.1 mrg }
597 1.1 mrg
598 1.1 mrg
600 1.1 mrg /* Used for communication between find_mem_conflicts and
601 1.1 mrg load_killed_in_block_p. Nonzero if find_mem_conflicts finds a
602 1.1 mrg conflict between two memory references.
603 1.1 mrg This is a bit of a hack to work around the limitations of note_stores. */
604 1.1 mrg static int mems_conflict_p;
605 1.1 mrg
606 1.1 mrg /* DEST is the output of an instruction. If it is a memory reference, and
607 1.1 mrg possibly conflicts with the load found in DATA, then set mems_conflict_p
608 1.1 mrg to a nonzero value. */
609 1.1 mrg
610 1.1 mrg static void
611 1.1 mrg find_mem_conflicts (rtx dest, const_rtx setter ATTRIBUTE_UNUSED,
612 1.1 mrg void *data)
613 1.1 mrg {
614 1.1 mrg rtx mem_op = (rtx) data;
615 1.1 mrg
616 1.1 mrg while (GET_CODE (dest) == SUBREG
617 1.1 mrg || GET_CODE (dest) == ZERO_EXTRACT
618 1.1 mrg || GET_CODE (dest) == STRICT_LOW_PART)
619 1.1 mrg dest = XEXP (dest, 0);
620 1.1 mrg
621 1.1 mrg /* If DEST is not a MEM, then it will not conflict with the load. Note
622 1.1 mrg that function calls are assumed to clobber memory, but are handled
623 1.1 mrg elsewhere. */
624 1.1 mrg if (! MEM_P (dest))
625 1.1 mrg return;
626 1.1 mrg
627 1.1 mrg if (true_dependence (dest, GET_MODE (dest), mem_op))
628 1.1 mrg mems_conflict_p = 1;
629 1.1 mrg }
630 1.1 mrg
631 1.1 mrg
633 1.1 mrg /* Return nonzero if the expression in X (a memory reference) is killed
634 1.1 mrg in the current basic block before (if AFTER_INSN is false) or after
635 1.1 mrg (if AFTER_INSN is true) the insn with the CUID in UID_LIMIT.
636 1.1 mrg
637 1.1 mrg This function assumes that the modifies_mem table is flushed when
638 1.1 mrg the hash table construction or redundancy elimination phases start
639 1.1 mrg processing a new basic block. */
640 1.1 mrg
641 1.1 mrg static int
642 1.1 mrg load_killed_in_block_p (int uid_limit, rtx x, bool after_insn)
643 1.1 mrg {
644 1.1 mrg struct modifies_mem *list_entry = modifies_mem_list;
645 1.1 mrg
646 1.1 mrg while (list_entry)
647 1.1 mrg {
648 1.1 mrg rtx_insn *setter = list_entry->insn;
649 1.1 mrg
650 1.1 mrg /* Ignore entries in the list that do not apply. */
651 1.1 mrg if ((after_insn
652 1.1 mrg && INSN_CUID (setter) < uid_limit)
653 1.1 mrg || (! after_insn
654 1.1 mrg && INSN_CUID (setter) > uid_limit))
655 1.1 mrg {
656 1.1 mrg list_entry = list_entry->next;
657 1.1 mrg continue;
658 1.1 mrg }
659 1.1 mrg
660 1.1 mrg /* If SETTER is a call everything is clobbered. Note that calls
661 1.1 mrg to pure functions are never put on the list, so we need not
662 1.1 mrg worry about them. */
663 1.1 mrg if (CALL_P (setter))
664 1.1 mrg return 1;
665 1.1 mrg
666 1.1 mrg /* SETTER must be an insn of some kind that sets memory. Call
667 1.1 mrg note_stores to examine each hunk of memory that is modified.
668 1.1 mrg It will set mems_conflict_p to nonzero if there may be a
669 1.1 mrg conflict between X and SETTER. */
670 1.1 mrg mems_conflict_p = 0;
671 1.1 mrg note_stores (setter, find_mem_conflicts, x);
672 1.1 mrg if (mems_conflict_p)
673 1.1 mrg return 1;
674 1.1 mrg
675 1.1 mrg list_entry = list_entry->next;
676 1.1 mrg }
677 1.1 mrg return 0;
678 1.1 mrg }
679 1.1 mrg
680 1.1 mrg
682 1.1 mrg /* Record register first/last/block set information for REGNO in INSN. */
683 1.1 mrg
684 1.1 mrg static inline void
685 1.1 mrg record_last_reg_set_info (rtx_insn *insn, rtx reg)
686 1.1 mrg {
687 1.1 mrg unsigned int regno, end_regno;
688 1.1 mrg
689 1.1 mrg regno = REGNO (reg);
690 1.1 mrg end_regno = END_REGNO (reg);
691 1.1 mrg do
692 1.1 mrg reg_avail_info[regno] = INSN_CUID (insn);
693 1.1 mrg while (++regno < end_regno);
694 1.1 mrg }
695 1.1 mrg
696 1.1 mrg static inline void
697 1.1 mrg record_last_reg_set_info_regno (rtx_insn *insn, int regno)
698 1.1 mrg {
699 1.1 mrg reg_avail_info[regno] = INSN_CUID (insn);
700 1.1 mrg }
701 1.1 mrg
702 1.1 mrg
703 1.1 mrg /* Record memory modification information for INSN. We do not actually care
704 1.1 mrg about the memory location(s) that are set, or even how they are set (consider
705 1.1 mrg a CALL_INSN). We merely need to record which insns modify memory. */
706 1.1 mrg
707 1.1 mrg static void
708 1.1 mrg record_last_mem_set_info (rtx_insn *insn)
709 1.1 mrg {
710 1.1 mrg struct modifies_mem *list_entry;
711 1.1 mrg
712 1.1 mrg list_entry = (struct modifies_mem *) obstack_alloc (&modifies_mem_obstack,
713 1.1 mrg sizeof (struct modifies_mem));
714 1.1 mrg list_entry->insn = insn;
715 1.1 mrg list_entry->next = modifies_mem_list;
716 1.1 mrg modifies_mem_list = list_entry;
717 1.1 mrg
718 1.1 mrg record_last_mem_set_info_common (insn, modify_mem_list,
719 1.1 mrg canon_modify_mem_list,
720 1.1 mrg modify_mem_list_set,
721 1.1 mrg blocks_with_calls);
722 1.1 mrg }
723 1.1 mrg
724 1.1 mrg /* Called from compute_hash_table via note_stores to handle one
725 1.1 mrg SET or CLOBBER in an insn. DATA is really the instruction in which
726 1.1 mrg the SET is taking place. */
727 1.1 mrg
728 1.1 mrg static void
729 1.1 mrg record_last_set_info (rtx dest, const_rtx setter ATTRIBUTE_UNUSED, void *data)
730 1.1 mrg {
731 1.1 mrg rtx_insn *last_set_insn = (rtx_insn *) data;
732 1.1 mrg
733 1.1 mrg if (GET_CODE (dest) == SUBREG)
734 1.1 mrg dest = SUBREG_REG (dest);
735 1.1 mrg
736 1.1 mrg if (REG_P (dest))
737 1.1 mrg record_last_reg_set_info (last_set_insn, dest);
738 1.1 mrg else if (MEM_P (dest))
739 1.1 mrg {
740 1.1 mrg /* Ignore pushes, they don't clobber memory. They may still
741 1.1 mrg clobber the stack pointer though. Some targets do argument
742 1.1 mrg pushes without adding REG_INC notes. See e.g. PR25196,
743 1.1 mrg where a pushsi2 on i386 doesn't have REG_INC notes. Note
744 1.1 mrg such changes here too. */
745 1.1 mrg if (! push_operand (dest, GET_MODE (dest)))
746 1.1 mrg record_last_mem_set_info (last_set_insn);
747 1.1 mrg else
748 1.1 mrg record_last_reg_set_info_regno (last_set_insn, STACK_POINTER_REGNUM);
749 1.1 mrg }
750 1.1 mrg }
751 1.1 mrg
752 1.1 mrg
753 1.1 mrg /* Reset tables used to keep track of what's still available since the
754 1.1 mrg start of the block. */
755 1.1 mrg
756 1.1 mrg static void
757 1.1 mrg reset_opr_set_tables (void)
758 1.1 mrg {
759 1.1 mrg memset (reg_avail_info, 0, FIRST_PSEUDO_REGISTER * sizeof (int));
760 1.1 mrg obstack_free (&modifies_mem_obstack, modifies_mem_obstack_bottom);
761 1.1 mrg modifies_mem_list = NULL;
762 1.1 mrg }
763 1.1 mrg
764 1.1 mrg
766 1.1 mrg /* Record things set by INSN.
767 1.1 mrg This data is used by oprs_unchanged_p. */
768 1.1 mrg
769 1.1 mrg static void
770 1.1 mrg record_opr_changes (rtx_insn *insn)
771 1.1 mrg {
772 1.1 mrg rtx note;
773 1.1 mrg
774 1.1 mrg /* Find all stores and record them. */
775 1.1 mrg note_stores (insn, record_last_set_info, insn);
776 1.1 mrg
777 1.1 mrg /* Also record autoincremented REGs for this insn as changed. */
778 1.1 mrg for (note = REG_NOTES (insn); note; note = XEXP (note, 1))
779 1.1 mrg if (REG_NOTE_KIND (note) == REG_INC)
780 1.1 mrg record_last_reg_set_info (insn, XEXP (note, 0));
781 1.1 mrg
782 1.1 mrg /* Finally, if this is a call, record all call clobbers. */
783 1.1 mrg if (CALL_P (insn))
784 1.1 mrg {
785 1.1 mrg unsigned int regno;
786 1.1 mrg hard_reg_set_iterator hrsi;
787 1.1 mrg /* We don't track modes of hard registers, so we need to be
788 1.1 mrg conservative and assume that partial kills are full kills. */
789 1.1 mrg HARD_REG_SET callee_clobbers
790 1.1 mrg = insn_callee_abi (insn).full_and_partial_reg_clobbers ();
791 1.1 mrg EXECUTE_IF_SET_IN_HARD_REG_SET (callee_clobbers, 0, regno, hrsi)
792 1.1 mrg record_last_reg_set_info_regno (insn, regno);
793 1.1 mrg
794 1.1 mrg if (! RTL_CONST_OR_PURE_CALL_P (insn)
795 1.1 mrg || RTL_LOOPING_CONST_OR_PURE_CALL_P (insn)
796 1.1 mrg || can_throw_external (insn))
797 1.1 mrg record_last_mem_set_info (insn);
798 1.1 mrg }
799 1.1 mrg }
800 1.1 mrg
801 1.1 mrg
803 1.1 mrg /* Scan the pattern of INSN and add an entry to the hash TABLE.
804 1.1 mrg After reload we are interested in loads/stores only. */
805 1.1 mrg
806 1.1 mrg static void
807 1.1 mrg hash_scan_set (rtx_insn *insn)
808 1.1 mrg {
809 1.1 mrg rtx pat = PATTERN (insn);
810 1.1 mrg rtx src = SET_SRC (pat);
811 1.1 mrg rtx dest = SET_DEST (pat);
812 1.1 mrg
813 1.1 mrg /* We are only interested in loads and stores. */
814 1.1 mrg if (! MEM_P (src) && ! MEM_P (dest))
815 1.1 mrg return;
816 1.1 mrg
817 1.1 mrg /* Don't mess with jumps and nops. */
818 1.1 mrg if (JUMP_P (insn) || set_noop_p (pat))
819 1.1 mrg return;
820 1.1 mrg
821 1.1 mrg if (REG_P (dest))
822 1.1 mrg {
823 1.1 mrg if (/* Don't CSE something if we can't do a reg/reg copy. */
824 1.1 mrg can_copy_p (GET_MODE (dest))
825 1.1 mrg /* Is SET_SRC something we want to gcse? */
826 1.1 mrg && general_operand (src, GET_MODE (src))
827 1.1 mrg #ifdef STACK_REGS
828 1.1 mrg /* Never consider insns touching the register stack. It may
829 1.1 mrg create situations that reg-stack cannot handle (e.g. a stack
830 1.1 mrg register live across an abnormal edge). */
831 1.1 mrg && (REGNO (dest) < FIRST_STACK_REG || REGNO (dest) > LAST_STACK_REG)
832 1.1 mrg #endif
833 1.1 mrg /* An expression is not available if its operands are
834 1.1 mrg subsequently modified, including this insn. */
835 1.1 mrg && oprs_unchanged_p (src, insn, true))
836 1.1 mrg {
837 1.1 mrg insert_expr_in_table (src, insn);
838 1.1 mrg }
839 1.1 mrg }
840 1.1 mrg else if (REG_P (src))
841 1.1 mrg {
842 1.1 mrg /* Only record sets of pseudo-regs in the hash table. */
843 1.1 mrg if (/* Don't CSE something if we can't do a reg/reg copy. */
844 1.1 mrg can_copy_p (GET_MODE (src))
845 1.1 mrg /* Is SET_DEST something we want to gcse? */
846 1.1 mrg && general_operand (dest, GET_MODE (dest))
847 1.1 mrg #ifdef STACK_REGS
848 1.1 mrg /* As above for STACK_REGS. */
849 1.1 mrg && (REGNO (src) < FIRST_STACK_REG || REGNO (src) > LAST_STACK_REG)
850 1.1 mrg #endif
851 1.1 mrg && ! (flag_float_store && FLOAT_MODE_P (GET_MODE (dest)))
852 1.1 mrg /* Check if the memory expression is killed after insn. */
853 1.1 mrg && ! load_killed_in_block_p (INSN_CUID (insn) + 1, dest, true)
854 1.1 mrg && oprs_unchanged_p (XEXP (dest, 0), insn, true))
855 1.1 mrg {
856 1.1 mrg insert_expr_in_table (dest, insn);
857 1.1 mrg }
858 1.1 mrg }
859 1.1 mrg }
860 1.1 mrg
861 1.1 mrg
863 1.1 mrg /* Create hash table of memory expressions available at end of basic
864 1.1 mrg blocks. Basically you should think of this hash table as the
865 1.1 mrg representation of AVAIL_OUT. This is the set of expressions that
866 1.1 mrg is generated in a basic block and not killed before the end of the
867 1.1 mrg same basic block. Notice that this is really a local computation. */
868 1.1 mrg
869 1.1 mrg static void
870 1.1 mrg compute_hash_table (void)
871 1.1 mrg {
872 1.1 mrg basic_block bb;
873 1.1 mrg
874 1.1 mrg FOR_EACH_BB_FN (bb, cfun)
875 1.1 mrg {
876 1.1 mrg rtx_insn *insn;
877 1.1 mrg
878 1.1 mrg /* First pass over the instructions records information used to
879 1.1 mrg determine when registers and memory are last set.
880 1.1 mrg Since we compute a "local" AVAIL_OUT, reset the tables that
881 1.1 mrg help us keep track of what has been modified since the start
882 1.1 mrg of the block. */
883 1.1 mrg reset_opr_set_tables ();
884 1.1 mrg FOR_BB_INSNS (bb, insn)
885 1.1 mrg {
886 1.1 mrg if (INSN_P (insn))
887 1.1 mrg record_opr_changes (insn);
888 1.1 mrg }
889 1.1 mrg
890 1.1 mrg /* The next pass actually builds the hash table. */
891 1.1 mrg FOR_BB_INSNS (bb, insn)
892 1.1 mrg if (INSN_P (insn) && GET_CODE (PATTERN (insn)) == SET)
893 1.1 mrg hash_scan_set (insn);
894 1.1 mrg }
895 1.1 mrg }
896 1.1 mrg
897 1.1 mrg
899 1.1 mrg /* Check if register REG is killed in any insn waiting to be inserted on
900 1.1 mrg edge E. This function is required to check that our data flow analysis
901 1.1 mrg is still valid prior to commit_edge_insertions. */
902 1.1 mrg
903 1.1 mrg static bool
904 1.1 mrg reg_killed_on_edge (rtx reg, edge e)
905 1.1 mrg {
906 1.1 mrg rtx_insn *insn;
907 1.1 mrg
908 1.1 mrg for (insn = e->insns.r; insn; insn = NEXT_INSN (insn))
909 1.1 mrg if (INSN_P (insn) && reg_set_p (reg, insn))
910 1.1 mrg return true;
911 1.1 mrg
912 1.1 mrg return false;
913 1.1 mrg }
914 1.1 mrg
915 1.1 mrg /* Similar to above - check if register REG is used in any insn waiting
916 1.1 mrg to be inserted on edge E.
917 1.1 mrg Assumes no such insn can be a CALL_INSN; if so call reg_used_between_p
918 1.1 mrg with PREV(insn),NEXT(insn) instead of calling reg_overlap_mentioned_p. */
919 1.1 mrg
920 1.1 mrg static bool
921 1.1 mrg reg_used_on_edge (rtx reg, edge e)
922 1.1 mrg {
923 1.1 mrg rtx_insn *insn;
924 1.1 mrg
925 1.1 mrg for (insn = e->insns.r; insn; insn = NEXT_INSN (insn))
926 1.1 mrg if (INSN_P (insn) && reg_overlap_mentioned_p (reg, PATTERN (insn)))
927 1.1 mrg return true;
928 1.1 mrg
929 1.1 mrg return false;
930 1.1 mrg }
931 1.1 mrg
932 1.1 mrg /* Return the loaded/stored register of a load/store instruction. */
934 1.1 mrg
935 1.1 mrg static rtx
936 1.1 mrg get_avail_load_store_reg (rtx_insn *insn)
937 1.1 mrg {
938 1.1 mrg if (REG_P (SET_DEST (PATTERN (insn))))
939 1.1 mrg /* A load. */
940 1.1 mrg return SET_DEST (PATTERN (insn));
941 1.1 mrg else
942 1.1 mrg {
943 1.1 mrg /* A store. */
944 1.1 mrg gcc_assert (REG_P (SET_SRC (PATTERN (insn))));
945 1.1 mrg return SET_SRC (PATTERN (insn));
946 1.1 mrg }
947 1.1 mrg }
948 1.1 mrg
949 1.1 mrg /* Return nonzero if the predecessors of BB are "well behaved". */
950 1.1 mrg
951 1.1 mrg static bool
952 1.1 mrg bb_has_well_behaved_predecessors (basic_block bb)
953 1.1 mrg {
954 1.1 mrg edge pred;
955 1.1 mrg edge_iterator ei;
956 1.1 mrg
957 1.1 mrg if (EDGE_COUNT (bb->preds) == 0)
958 1.1 mrg return false;
959 1.1 mrg
960 1.1 mrg FOR_EACH_EDGE (pred, ei, bb->preds)
961 1.1 mrg {
962 1.1 mrg /* commit_one_edge_insertion refuses to insert on abnormal edges even if
963 1.1 mrg the source has only one successor so EDGE_CRITICAL_P is too weak. */
964 1.1 mrg if ((pred->flags & EDGE_ABNORMAL) && !single_pred_p (pred->dest))
965 1.1 mrg return false;
966 1.1 mrg
967 1.1 mrg if ((pred->flags & EDGE_ABNORMAL_CALL) && cfun->has_nonlocal_label)
968 1.1 mrg return false;
969 1.1 mrg
970 1.1 mrg if (tablejump_p (BB_END (pred->src), NULL, NULL))
971 1.1 mrg return false;
972 1.1 mrg }
973 1.1 mrg return true;
974 1.1 mrg }
975 1.1 mrg
976 1.1 mrg
977 1.1 mrg /* Search for the occurrences of expression in BB. */
978 1.1 mrg
979 1.1 mrg static struct occr*
980 1.1 mrg get_bb_avail_insn (basic_block bb, struct occr *orig_occr, int bitmap_index)
981 1.1 mrg {
982 1.1 mrg struct occr *occr = orig_occr;
983 1.1 mrg
984 1.1 mrg for (; occr != NULL; occr = occr->next)
985 1.1 mrg if (BLOCK_FOR_INSN (occr->insn) == bb)
986 1.1 mrg return occr;
987 1.1 mrg
988 1.1 mrg /* If we could not find an occurrence in BB, see if BB
989 1.1 mrg has a single predecessor with an occurrence that is
990 1.1 mrg transparent through BB. */
991 1.1 mrg if (transp
992 1.1 mrg && single_pred_p (bb)
993 1.1 mrg && bitmap_bit_p (transp[bb->index], bitmap_index)
994 1.1 mrg && (occr = get_bb_avail_insn (single_pred (bb), orig_occr, bitmap_index)))
995 1.1 mrg {
996 1.1 mrg rtx avail_reg = get_avail_load_store_reg (occr->insn);
997 1.1 mrg if (!reg_set_between_p (avail_reg,
998 1.1 mrg PREV_INSN (BB_HEAD (bb)),
999 1.1 mrg NEXT_INSN (BB_END (bb)))
1000 1.1 mrg && !reg_killed_on_edge (avail_reg, single_pred_edge (bb)))
1001 1.1 mrg return occr;
1002 1.1 mrg }
1003 1.1 mrg
1004 1.1 mrg return NULL;
1005 1.1 mrg }
1006 1.1 mrg
1007 1.1 mrg
1008 1.1 mrg /* This helper is called via htab_traverse. */
1009 1.1 mrg int
1010 1.1 mrg compute_expr_transp (expr **slot, FILE *dump_file ATTRIBUTE_UNUSED)
1011 1.1 mrg {
1012 1.1 mrg struct expr *expr = *slot;
1013 1.1 mrg
1014 1.1 mrg compute_transp (expr->expr, expr->bitmap_index, transp,
1015 1.1 mrg blocks_with_calls, modify_mem_list_set,
1016 1.1 mrg canon_modify_mem_list);
1017 1.1 mrg return 1;
1018 1.1 mrg }
1019 1.1 mrg
1020 1.1 mrg /* This handles the case where several stores feed a partially redundant
1021 1.1 mrg load. It checks if the redundancy elimination is possible and if it's
1022 1.1 mrg worth it.
1023 1.1 mrg
1024 1.1 mrg Redundancy elimination is possible if,
1025 1.1 mrg 1) None of the operands of an insn have been modified since the start
1026 1.1 mrg of the current basic block.
1027 1.1 mrg 2) In any predecessor of the current basic block, the same expression
1028 1.1 mrg is generated.
1029 1.1 mrg
1030 1.1 mrg See the function body for the heuristics that determine if eliminating
1031 1.1 mrg a redundancy is also worth doing, assuming it is possible. */
1032 1.1 mrg
1033 1.1 mrg static void
1034 1.1 mrg eliminate_partially_redundant_load (basic_block bb, rtx_insn *insn,
1035 1.1 mrg struct expr *expr)
1036 1.1 mrg {
1037 1.1 mrg edge pred;
1038 1.1 mrg rtx_insn *avail_insn = NULL;
1039 1.1 mrg rtx avail_reg;
1040 1.1 mrg rtx dest, pat;
1041 1.1 mrg struct occr *a_occr;
1042 1.1 mrg struct unoccr *occr, *avail_occrs = NULL;
1043 1.1 mrg struct unoccr *unoccr, *unavail_occrs = NULL, *rollback_unoccr = NULL;
1044 1.1 mrg int npred_ok = 0;
1045 1.1 mrg profile_count ok_count = profile_count::zero ();
1046 1.1 mrg /* Redundant load execution count. */
1047 1.1 mrg profile_count critical_count = profile_count::zero ();
1048 1.1 mrg /* Execution count of critical edges. */
1049 1.1 mrg edge_iterator ei;
1050 1.1 mrg bool critical_edge_split = false;
1051 1.1 mrg
1052 1.1 mrg /* The execution count of the loads to be added to make the
1053 1.1 mrg load fully redundant. */
1054 1.1 mrg profile_count not_ok_count = profile_count::zero ();
1055 1.1 mrg basic_block pred_bb;
1056 1.1 mrg
1057 1.1 mrg pat = PATTERN (insn);
1058 1.1 mrg dest = SET_DEST (pat);
1059 1.1 mrg
1060 1.1 mrg /* Check that the loaded register is not used, set, or killed from the
1061 1.1 mrg beginning of the block. */
1062 1.1 mrg if (reg_changed_after_insn_p (dest, 0)
1063 1.1 mrg || reg_used_between_p (dest, PREV_INSN (BB_HEAD (bb)), insn))
1064 1.1 mrg return;
1065 1.1 mrg
1066 1.1 mrg /* Check potential for replacing load with copy for predecessors. */
1067 1.1 mrg FOR_EACH_EDGE (pred, ei, bb->preds)
1068 1.1 mrg {
1069 1.1 mrg rtx_insn *next_pred_bb_end;
1070 1.1 mrg
1071 1.1 mrg avail_insn = NULL;
1072 1.1 mrg avail_reg = NULL_RTX;
1073 1.1 mrg pred_bb = pred->src;
1074 1.1 mrg for (a_occr = get_bb_avail_insn (pred_bb,
1075 1.1 mrg expr->avail_occr,
1076 1.1 mrg expr->bitmap_index);
1077 1.1 mrg a_occr;
1078 1.1 mrg a_occr = get_bb_avail_insn (pred_bb,
1079 1.1 mrg a_occr->next,
1080 1.1 mrg expr->bitmap_index))
1081 1.1 mrg {
1082 1.1 mrg /* Check if the loaded register is not used. */
1083 1.1 mrg avail_insn = a_occr->insn;
1084 1.1 mrg avail_reg = get_avail_load_store_reg (avail_insn);
1085 1.1 mrg gcc_assert (avail_reg);
1086 1.1 mrg
1087 1.1 mrg /* Make sure we can generate a move from register avail_reg to
1088 1.1 mrg dest. */
1089 1.1 mrg rtx_insn *move = gen_move_insn (copy_rtx (dest),
1090 1.1 mrg copy_rtx (avail_reg));
1091 1.1 mrg extract_insn (move);
1092 1.1 mrg if (! constrain_operands (1, get_preferred_alternatives (insn,
1093 1.1 mrg pred_bb))
1094 1.1 mrg || reg_killed_on_edge (avail_reg, pred)
1095 1.1 mrg || reg_used_on_edge (dest, pred))
1096 1.1 mrg {
1097 1.1 mrg avail_insn = NULL;
1098 1.1 mrg continue;
1099 1.1 mrg }
1100 1.1 mrg next_pred_bb_end = NEXT_INSN (BB_END (BLOCK_FOR_INSN (avail_insn)));
1101 1.1 mrg if (!reg_set_between_p (avail_reg, avail_insn, next_pred_bb_end))
1102 1.1 mrg /* AVAIL_INSN remains non-null. */
1103 1.1 mrg break;
1104 1.1 mrg else
1105 1.1 mrg avail_insn = NULL;
1106 1.1 mrg }
1107 1.1 mrg
1108 1.1 mrg if (EDGE_CRITICAL_P (pred) && pred->count ().initialized_p ())
1109 1.1 mrg critical_count += pred->count ();
1110 1.1 mrg
1111 1.1 mrg if (avail_insn != NULL_RTX)
1112 1.1 mrg {
1113 1.1 mrg npred_ok++;
1114 1.1 mrg if (pred->count ().initialized_p ())
1115 1.1 mrg ok_count = ok_count + pred->count ();
1116 1.1 mrg if (! set_noop_p (PATTERN (gen_move_insn (copy_rtx (dest),
1117 1.1 mrg copy_rtx (avail_reg)))))
1118 1.1 mrg {
1119 1.1 mrg /* Check if there is going to be a split. */
1120 1.1 mrg if (EDGE_CRITICAL_P (pred))
1121 1.1 mrg critical_edge_split = true;
1122 1.1 mrg }
1123 1.1 mrg else /* Its a dead move no need to generate. */
1124 1.1 mrg continue;
1125 1.1 mrg occr = (struct unoccr *) obstack_alloc (&unoccr_obstack,
1126 1.1 mrg sizeof (struct unoccr));
1127 1.1 mrg occr->insn = avail_insn;
1128 1.1 mrg occr->pred = pred;
1129 1.1 mrg occr->next = avail_occrs;
1130 1.1 mrg avail_occrs = occr;
1131 1.1 mrg if (! rollback_unoccr)
1132 1.1 mrg rollback_unoccr = occr;
1133 1.1 mrg }
1134 1.1 mrg else
1135 1.1 mrg {
1136 1.1 mrg /* Adding a load on a critical edge will cause a split. */
1137 1.1 mrg if (EDGE_CRITICAL_P (pred))
1138 1.1 mrg critical_edge_split = true;
1139 1.1 mrg if (pred->count ().initialized_p ())
1140 1.1 mrg not_ok_count = not_ok_count + pred->count ();
1141 1.1 mrg unoccr = (struct unoccr *) obstack_alloc (&unoccr_obstack,
1142 1.1 mrg sizeof (struct unoccr));
1143 1.1 mrg unoccr->insn = NULL;
1144 1.1 mrg unoccr->pred = pred;
1145 1.1 mrg unoccr->next = unavail_occrs;
1146 1.1 mrg unavail_occrs = unoccr;
1147 1.1 mrg if (! rollback_unoccr)
1148 1.1 mrg rollback_unoccr = unoccr;
1149 1.1 mrg }
1150 1.1 mrg }
1151 1.1 mrg
1152 1.1 mrg if (/* No load can be replaced by copy. */
1153 1.1 mrg npred_ok == 0
1154 1.1 mrg /* Prevent exploding the code. */
1155 1.1 mrg || (optimize_bb_for_size_p (bb) && npred_ok > 1)
1156 1.1 mrg /* If we don't have profile information we cannot tell if splitting
1157 1.1 mrg a critical edge is profitable or not so don't do it. */
1158 1.1 mrg || ((!profile_info || profile_status_for_fn (cfun) != PROFILE_READ
1159 1.1 mrg || targetm.cannot_modify_jumps_p ())
1160 1.1 mrg && critical_edge_split))
1161 1.1 mrg goto cleanup;
1162 1.1 mrg
1163 1.1 mrg /* Check if it's worth applying the partial redundancy elimination. */
1164 1.1 mrg if (ok_count.to_gcov_type ()
1165 1.1 mrg < param_gcse_after_reload_partial_fraction * not_ok_count.to_gcov_type ())
1166 1.1 mrg goto cleanup;
1167 1.1 mrg
1168 1.1 mrg gcov_type threshold;
1169 1.1 mrg #if (GCC_VERSION >= 5000)
1170 1.1 mrg if (__builtin_mul_overflow (param_gcse_after_reload_critical_fraction,
1171 1.1 mrg critical_count.to_gcov_type (), &threshold))
1172 1.1 mrg threshold = profile_count::max_count;
1173 1.1 mrg #else
1174 1.1 mrg threshold
1175 1.1 mrg = (param_gcse_after_reload_critical_fraction
1176 1.1 mrg * critical_count.to_gcov_type ());
1177 1.1 mrg #endif
1178 1.1 mrg
1179 1.1 mrg if (ok_count.to_gcov_type () < threshold)
1180 1.1 mrg goto cleanup;
1181 1.1 mrg
1182 1.1 mrg /* Generate moves to the loaded register from where
1183 1.1 mrg the memory is available. */
1184 1.1 mrg for (occr = avail_occrs; occr; occr = occr->next)
1185 1.1 mrg {
1186 1.1 mrg avail_insn = occr->insn;
1187 1.1 mrg pred = occr->pred;
1188 1.1 mrg /* Set avail_reg to be the register having the value of the
1189 1.1 mrg memory. */
1190 1.1 mrg avail_reg = get_avail_load_store_reg (avail_insn);
1191 1.1 mrg gcc_assert (avail_reg);
1192 1.1 mrg
1193 1.1 mrg insert_insn_on_edge (gen_move_insn (copy_rtx (dest),
1194 1.1 mrg copy_rtx (avail_reg)),
1195 1.1 mrg pred);
1196 1.1 mrg stats.moves_inserted++;
1197 1.1 mrg
1198 1.1 mrg if (dump_file)
1199 1.1 mrg fprintf (dump_file,
1200 1.1 mrg "generating move from %d to %d on edge from %d to %d\n",
1201 1.1 mrg REGNO (avail_reg),
1202 1.1 mrg REGNO (dest),
1203 1.1 mrg pred->src->index,
1204 1.1 mrg pred->dest->index);
1205 1.1 mrg }
1206 1.1 mrg
1207 1.1 mrg /* Regenerate loads where the memory is unavailable. */
1208 1.1 mrg for (unoccr = unavail_occrs; unoccr; unoccr = unoccr->next)
1209 1.1 mrg {
1210 1.1 mrg pred = unoccr->pred;
1211 1.1 mrg insert_insn_on_edge (copy_insn (PATTERN (insn)), pred);
1212 1.1 mrg stats.copies_inserted++;
1213 1.1 mrg
1214 1.1 mrg if (dump_file)
1215 1.1 mrg {
1216 1.1 mrg fprintf (dump_file,
1217 1.1 mrg "generating on edge from %d to %d a copy of load: ",
1218 1.1 mrg pred->src->index,
1219 1.1 mrg pred->dest->index);
1220 1.1 mrg print_rtl (dump_file, PATTERN (insn));
1221 1.1 mrg fprintf (dump_file, "\n");
1222 1.1 mrg }
1223 1.1 mrg }
1224 1.1 mrg
1225 1.1 mrg /* Delete the insn if it is not available in this block and mark it
1226 1.1 mrg for deletion if it is available. If insn is available it may help
1227 1.1 mrg discover additional redundancies, so mark it for later deletion. */
1228 1.1 mrg for (a_occr = get_bb_avail_insn (bb, expr->avail_occr, expr->bitmap_index);
1229 1.1 mrg a_occr && (a_occr->insn != insn);
1230 1.1 mrg a_occr = get_bb_avail_insn (bb, a_occr->next, expr->bitmap_index))
1231 1.1 mrg ;
1232 1.1 mrg
1233 1.1 mrg if (!a_occr)
1234 1.1 mrg {
1235 1.1 mrg stats.insns_deleted++;
1236 1.1 mrg
1237 1.1 mrg if (dump_file)
1238 1.1 mrg {
1239 1.1 mrg fprintf (dump_file, "deleting insn:\n");
1240 1.1 mrg print_rtl_single (dump_file, insn);
1241 1.1 mrg fprintf (dump_file, "\n");
1242 1.1 mrg }
1243 1.1 mrg delete_insn (insn);
1244 1.1 mrg }
1245 1.1 mrg else
1246 1.1 mrg a_occr->deleted_p = 1;
1247 1.1 mrg
1248 1.1 mrg cleanup:
1249 1.1 mrg if (rollback_unoccr)
1250 1.1 mrg obstack_free (&unoccr_obstack, rollback_unoccr);
1251 1.1 mrg }
1252 1.1 mrg
1253 1.1 mrg /* Performing the redundancy elimination as described before. */
1254 1.1 mrg
1255 1.1 mrg static void
1256 1.1 mrg eliminate_partially_redundant_loads (void)
1257 1.1 mrg {
1258 1.1 mrg rtx_insn *insn;
1259 1.1 mrg basic_block bb;
1260 1.1 mrg
1261 1.1 mrg /* Note we start at block 1. */
1262 1.1 mrg
1263 1.1 mrg if (ENTRY_BLOCK_PTR_FOR_FN (cfun)->next_bb == EXIT_BLOCK_PTR_FOR_FN (cfun))
1264 1.1 mrg return;
1265 1.1 mrg
1266 1.1 mrg FOR_BB_BETWEEN (bb,
1267 1.1 mrg ENTRY_BLOCK_PTR_FOR_FN (cfun)->next_bb->next_bb,
1268 1.1 mrg EXIT_BLOCK_PTR_FOR_FN (cfun),
1269 1.1 mrg next_bb)
1270 1.1 mrg {
1271 1.1 mrg /* Don't try anything on basic blocks with strange predecessors. */
1272 1.1 mrg if (! bb_has_well_behaved_predecessors (bb))
1273 1.1 mrg continue;
1274 1.1 mrg
1275 1.1 mrg /* Do not try anything on cold basic blocks. */
1276 1.1 mrg if (optimize_bb_for_size_p (bb))
1277 1.1 mrg continue;
1278 1.1 mrg
1279 1.1 mrg /* Reset the table of things changed since the start of the current
1280 1.1 mrg basic block. */
1281 1.1 mrg reset_opr_set_tables ();
1282 1.1 mrg
1283 1.1 mrg /* Look at all insns in the current basic block and see if there are
1284 1.1 mrg any loads in it that we can record. */
1285 1.1 mrg FOR_BB_INSNS (bb, insn)
1286 1.1 mrg {
1287 1.1 mrg /* Is it a load - of the form (set (reg) (mem))? */
1288 1.1 mrg if (NONJUMP_INSN_P (insn)
1289 1.1 mrg && GET_CODE (PATTERN (insn)) == SET
1290 1.1 mrg && REG_P (SET_DEST (PATTERN (insn)))
1291 1.1 mrg && MEM_P (SET_SRC (PATTERN (insn))))
1292 1.1 mrg {
1293 1.1 mrg rtx pat = PATTERN (insn);
1294 1.1 mrg rtx src = SET_SRC (pat);
1295 1.1 mrg struct expr *expr;
1296 1.1 mrg
1297 1.1 mrg if (!MEM_VOLATILE_P (src)
1298 1.1 mrg && GET_MODE (src) != BLKmode
1299 1.1 mrg && general_operand (src, GET_MODE (src))
1300 1.1 mrg /* Are the operands unchanged since the start of the
1301 1.1 mrg block? */
1302 1.1 mrg && oprs_unchanged_p (src, insn, false)
1303 1.1 mrg && !(cfun->can_throw_non_call_exceptions && may_trap_p (src))
1304 1.1 mrg && !side_effects_p (src)
1305 1.1 mrg /* Is the expression recorded? */
1306 1.1 mrg && (expr = lookup_expr_in_table (src)) != NULL)
1307 1.1 mrg {
1308 1.1 mrg /* We now have a load (insn) and an available memory at
1309 1.1 mrg its BB start (expr). Try to remove the loads if it is
1310 1.1 mrg redundant. */
1311 1.1 mrg eliminate_partially_redundant_load (bb, insn, expr);
1312 1.1 mrg }
1313 1.1 mrg }
1314 1.1 mrg
1315 1.1 mrg /* Keep track of everything modified by this insn, so that we
1316 1.1 mrg know what has been modified since the start of the current
1317 1.1 mrg basic block. */
1318 1.1 mrg if (INSN_P (insn))
1319 1.1 mrg record_opr_changes (insn);
1320 1.1 mrg }
1321 1.1 mrg }
1322 1.1 mrg
1323 1.1 mrg commit_edge_insertions ();
1324 1.1 mrg }
1325 1.1 mrg
1326 1.1 mrg /* Go over the expression hash table and delete insns that were
1327 1.1 mrg marked for later deletion. */
1328 1.1 mrg
1329 1.1 mrg /* This helper is called via htab_traverse. */
1330 1.1 mrg int
1331 1.1 mrg delete_redundant_insns_1 (expr **slot, void *data ATTRIBUTE_UNUSED)
1332 1.1 mrg {
1333 1.1 mrg struct expr *exprs = *slot;
1334 1.1 mrg struct occr *occr;
1335 1.1 mrg
1336 1.1 mrg for (occr = exprs->avail_occr; occr != NULL; occr = occr->next)
1337 1.1 mrg {
1338 1.1 mrg if (occr->deleted_p && dbg_cnt (gcse2_delete))
1339 1.1 mrg {
1340 1.1 mrg delete_insn (occr->insn);
1341 1.1 mrg stats.insns_deleted++;
1342 1.1 mrg
1343 1.1 mrg if (dump_file)
1344 1.1 mrg {
1345 1.1 mrg fprintf (dump_file, "deleting insn:\n");
1346 1.1 mrg print_rtl_single (dump_file, occr->insn);
1347 1.1 mrg fprintf (dump_file, "\n");
1348 1.1 mrg }
1349 1.1 mrg }
1350 1.1 mrg }
1351 1.1 mrg
1352 1.1 mrg return 1;
1353 1.1 mrg }
1354 1.1 mrg
1355 1.1 mrg static void
1356 1.1 mrg delete_redundant_insns (void)
1357 1.1 mrg {
1358 1.1 mrg expr_table->traverse <void *, delete_redundant_insns_1> (NULL);
1359 1.1 mrg if (dump_file)
1360 1.1 mrg fprintf (dump_file, "\n");
1361 1.1 mrg }
1362 1.1 mrg
1363 1.1 mrg /* Main entry point of the GCSE after reload - clean some redundant loads
1364 1.1 mrg due to spilling. */
1365 1.1 mrg
1366 1.1 mrg static void
1367 1.1 mrg gcse_after_reload_main (rtx f ATTRIBUTE_UNUSED)
1368 1.1 mrg {
1369 1.1 mrg /* Disable computing transparentness if it is too expensive. */
1370 1.1 mrg bool do_transp
1371 1.1 mrg = !gcse_or_cprop_is_too_expensive (_("using simple load CSE after register "
1372 1.1 mrg "allocation"));
1373 1.1 mrg
1374 1.1 mrg memset (&stats, 0, sizeof (stats));
1375 1.1 mrg
1376 1.1 mrg /* Allocate memory for this pass.
1377 1.1 mrg Also computes and initializes the insns' CUIDs. */
1378 1.1 mrg alloc_mem ();
1379 1.1 mrg
1380 1.1 mrg /* We need alias analysis. */
1381 1.1 mrg init_alias_analysis ();
1382 1.1 mrg
1383 1.1 mrg compute_hash_table ();
1384 1.1 mrg
1385 1.1 mrg if (dump_file)
1386 1.1 mrg dump_hash_table (dump_file);
1387 1.1 mrg
1388 1.1 mrg if (!expr_table->is_empty ())
1389 1.1 mrg {
1390 1.1 mrg /* Knowing which MEMs are transparent through a block can signifiantly
1391 1.1 mrg increase the number of redundant loads found. So compute transparency
1392 1.1 mrg information for each memory expression in the hash table. */
1393 1.1 mrg df_analyze ();
1394 1.1 mrg if (do_transp)
1395 1.1 mrg {
1396 1.1 mrg /* This cannot be part of the normal allocation routine because
1397 1.1 mrg we have to know the number of elements in the hash table. */
1398 1.1 mrg transp = sbitmap_vector_alloc (last_basic_block_for_fn (cfun),
1399 1.1 mrg expr_table->elements ());
1400 1.1 mrg bitmap_vector_ones (transp, last_basic_block_for_fn (cfun));
1401 1.1 mrg expr_table->traverse <FILE *, compute_expr_transp> (dump_file);
1402 1.1 mrg }
1403 1.1 mrg else
1404 1.1 mrg transp = NULL;
1405 1.1 mrg eliminate_partially_redundant_loads ();
1406 1.1 mrg delete_redundant_insns ();
1407 1.1 mrg if (do_transp)
1408 1.1 mrg sbitmap_vector_free (transp);
1409 1.1 mrg
1410 1.1 mrg if (dump_file)
1411 1.1 mrg {
1412 1.1 mrg fprintf (dump_file, "GCSE AFTER RELOAD stats:\n");
1413 1.1 mrg fprintf (dump_file, "copies inserted: %d\n", stats.copies_inserted);
1414 1.1 mrg fprintf (dump_file, "moves inserted: %d\n", stats.moves_inserted);
1415 1.1 mrg fprintf (dump_file, "insns deleted: %d\n", stats.insns_deleted);
1416 1.1 mrg fprintf (dump_file, "\n\n");
1417 1.1 mrg }
1418 1.1 mrg
1419 1.1 mrg statistics_counter_event (cfun, "copies inserted",
1420 1.1 mrg stats.copies_inserted);
1421 1.1 mrg statistics_counter_event (cfun, "moves inserted",
1422 1.1 mrg stats.moves_inserted);
1423 1.1 mrg statistics_counter_event (cfun, "insns deleted",
1424 1.1 mrg stats.insns_deleted);
1425 1.1 mrg }
1426 1.1 mrg
1427 1.1 mrg /* We are finished with alias. */
1428 1.1 mrg end_alias_analysis ();
1429 1.1 mrg
1430 1.1 mrg free_mem ();
1431 1.1 mrg }
1432 1.1 mrg
1433 1.1 mrg
1434 1.1 mrg
1436 1.1 mrg static unsigned int
1437 1.1 mrg rest_of_handle_gcse2 (void)
1438 1.1 mrg {
1439 1.1 mrg gcse_after_reload_main (get_insns ());
1440 1.1 mrg rebuild_jump_labels (get_insns ());
1441 1.1 mrg return 0;
1442 1.1 mrg }
1443 1.1 mrg
1444 1.1 mrg namespace {
1445 1.1 mrg
1446 1.1 mrg const pass_data pass_data_gcse2 =
1447 1.1 mrg {
1448 1.1 mrg RTL_PASS, /* type */
1449 1.1 mrg "gcse2", /* name */
1450 1.1 mrg OPTGROUP_NONE, /* optinfo_flags */
1451 1.1 mrg TV_GCSE_AFTER_RELOAD, /* tv_id */
1452 1.1 mrg 0, /* properties_required */
1453 1.1 mrg 0, /* properties_provided */
1454 1.1 mrg 0, /* properties_destroyed */
1455 1.1 mrg 0, /* todo_flags_start */
1456 1.1 mrg 0, /* todo_flags_finish */
1457 1.1 mrg };
1458 1.1 mrg
1459 1.1 mrg class pass_gcse2 : public rtl_opt_pass
1460 1.1 mrg {
1461 1.1 mrg public:
1462 1.1 mrg pass_gcse2 (gcc::context *ctxt)
1463 1.1 mrg : rtl_opt_pass (pass_data_gcse2, ctxt)
1464 1.1 mrg {}
1465 1.1 mrg
1466 1.1 mrg /* opt_pass methods: */
1467 virtual bool gate (function *fun)
1468 {
1469 return (optimize > 0 && flag_gcse_after_reload
1470 && optimize_function_for_speed_p (fun));
1471 }
1472
1473 virtual unsigned int execute (function *) { return rest_of_handle_gcse2 (); }
1474
1475 }; // class pass_gcse2
1476
1477 } // anon namespace
1478
1479 rtl_opt_pass *
1480 make_pass_gcse2 (gcc::context *ctxt)
1481 {
1482 return new pass_gcse2 (ctxt);
1483 }
1484