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[official-gcc.git] / gcc / tree-ssa-math-opts.c
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1 /* Global, SSA-based optimizations using mathematical identities.
2 Copyright (C) 2005, 2007 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it
7 under the terms of the GNU General Public License as published by the
8 Free Software Foundation; either version 3, or (at your option) any
9 later version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT
12 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 /* Currently, the only mini-pass in this file tries to CSE reciprocal
21 operations. These are common in sequences such as this one:
23 modulus = sqrt(x*x + y*y + z*z);
24 x = x / modulus;
25 y = y / modulus;
26 z = z / modulus;
28 that can be optimized to
30 modulus = sqrt(x*x + y*y + z*z);
31 rmodulus = 1.0 / modulus;
32 x = x * rmodulus;
33 y = y * rmodulus;
34 z = z * rmodulus;
36 We do this for loop invariant divisors, and with this pass whenever
37 we notice that a division has the same divisor multiple times.
39 Of course, like in PRE, we don't insert a division if a dominator
40 already has one. However, this cannot be done as an extension of
41 PRE for several reasons.
43 First of all, with some experiments it was found out that the
44 transformation is not always useful if there are only two divisions
45 hy the same divisor. This is probably because modern processors
46 can pipeline the divisions; on older, in-order processors it should
47 still be effective to optimize two divisions by the same number.
48 We make this a param, and it shall be called N in the remainder of
49 this comment.
51 Second, if trapping math is active, we have less freedom on where
52 to insert divisions: we can only do so in basic blocks that already
53 contain one. (If divisions don't trap, instead, we can insert
54 divisions elsewhere, which will be in blocks that are common dominators
55 of those that have the division).
57 We really don't want to compute the reciprocal unless a division will
58 be found. To do this, we won't insert the division in a basic block
59 that has less than N divisions *post-dominating* it.
61 The algorithm constructs a subset of the dominator tree, holding the
62 blocks containing the divisions and the common dominators to them,
63 and walk it twice. The first walk is in post-order, and it annotates
64 each block with the number of divisions that post-dominate it: this
65 gives information on where divisions can be inserted profitably.
66 The second walk is in pre-order, and it inserts divisions as explained
67 above, and replaces divisions by multiplications.
69 In the best case, the cost of the pass is O(n_statements). In the
70 worst-case, the cost is due to creating the dominator tree subset,
71 with a cost of O(n_basic_blocks ^ 2); however this can only happen
72 for n_statements / n_basic_blocks statements. So, the amortized cost
73 of creating the dominator tree subset is O(n_basic_blocks) and the
74 worst-case cost of the pass is O(n_statements * n_basic_blocks).
76 More practically, the cost will be small because there are few
77 divisions, and they tend to be in the same basic block, so insert_bb
78 is called very few times.
80 If we did this using domwalk.c, an efficient implementation would have
81 to work on all the variables in a single pass, because we could not
82 work on just a subset of the dominator tree, as we do now, and the
83 cost would also be something like O(n_statements * n_basic_blocks).
84 The data structures would be more complex in order to work on all the
85 variables in a single pass. */
87 #include "config.h"
88 #include "system.h"
89 #include "coretypes.h"
90 #include "tm.h"
91 #include "flags.h"
92 #include "tree.h"
93 #include "tree-flow.h"
94 #include "real.h"
95 #include "timevar.h"
96 #include "tree-pass.h"
97 #include "alloc-pool.h"
98 #include "basic-block.h"
99 #include "target.h"
102 /* This structure represents one basic block that either computes a
103 division, or is a common dominator for basic block that compute a
104 division. */
105 struct occurrence {
106 /* The basic block represented by this structure. */
107 basic_block bb;
109 /* If non-NULL, the SSA_NAME holding the definition for a reciprocal
110 inserted in BB. */
111 tree recip_def;
113 /* If non-NULL, the MODIFY_EXPR for a reciprocal computation that
114 was inserted in BB. */
115 tree recip_def_stmt;
117 /* Pointer to a list of "struct occurrence"s for blocks dominated
118 by BB. */
119 struct occurrence *children;
121 /* Pointer to the next "struct occurrence"s in the list of blocks
122 sharing a common dominator. */
123 struct occurrence *next;
125 /* The number of divisions that are in BB before compute_merit. The
126 number of divisions that are in BB or post-dominate it after
127 compute_merit. */
128 int num_divisions;
130 /* True if the basic block has a division, false if it is a common
131 dominator for basic blocks that do. If it is false and trapping
132 math is active, BB is not a candidate for inserting a reciprocal. */
133 bool bb_has_division;
137 /* The instance of "struct occurrence" representing the highest
138 interesting block in the dominator tree. */
139 static struct occurrence *occ_head;
141 /* Allocation pool for getting instances of "struct occurrence". */
142 static alloc_pool occ_pool;
146 /* Allocate and return a new struct occurrence for basic block BB, and
147 whose children list is headed by CHILDREN. */
148 static struct occurrence *
149 occ_new (basic_block bb, struct occurrence *children)
151 struct occurrence *occ;
153 occ = bb->aux = pool_alloc (occ_pool);
154 memset (occ, 0, sizeof (struct occurrence));
156 occ->bb = bb;
157 occ->children = children;
158 return occ;
162 /* Insert NEW_OCC into our subset of the dominator tree. P_HEAD points to a
163 list of "struct occurrence"s, one per basic block, having IDOM as
164 their common dominator.
166 We try to insert NEW_OCC as deep as possible in the tree, and we also
167 insert any other block that is a common dominator for BB and one
168 block already in the tree. */
170 static void
171 insert_bb (struct occurrence *new_occ, basic_block idom,
172 struct occurrence **p_head)
174 struct occurrence *occ, **p_occ;
176 for (p_occ = p_head; (occ = *p_occ) != NULL; )
178 basic_block bb = new_occ->bb, occ_bb = occ->bb;
179 basic_block dom = nearest_common_dominator (CDI_DOMINATORS, occ_bb, bb);
180 if (dom == bb)
182 /* BB dominates OCC_BB. OCC becomes NEW_OCC's child: remove OCC
183 from its list. */
184 *p_occ = occ->next;
185 occ->next = new_occ->children;
186 new_occ->children = occ;
188 /* Try the next block (it may as well be dominated by BB). */
191 else if (dom == occ_bb)
193 /* OCC_BB dominates BB. Tail recurse to look deeper. */
194 insert_bb (new_occ, dom, &occ->children);
195 return;
198 else if (dom != idom)
200 gcc_assert (!dom->aux);
202 /* There is a dominator between IDOM and BB, add it and make
203 two children out of NEW_OCC and OCC. First, remove OCC from
204 its list. */
205 *p_occ = occ->next;
206 new_occ->next = occ;
207 occ->next = NULL;
209 /* None of the previous blocks has DOM as a dominator: if we tail
210 recursed, we would reexamine them uselessly. Just switch BB with
211 DOM, and go on looking for blocks dominated by DOM. */
212 new_occ = occ_new (dom, new_occ);
215 else
217 /* Nothing special, go on with the next element. */
218 p_occ = &occ->next;
222 /* No place was found as a child of IDOM. Make BB a sibling of IDOM. */
223 new_occ->next = *p_head;
224 *p_head = new_occ;
227 /* Register that we found a division in BB. */
229 static inline void
230 register_division_in (basic_block bb)
232 struct occurrence *occ;
234 occ = (struct occurrence *) bb->aux;
235 if (!occ)
237 occ = occ_new (bb, NULL);
238 insert_bb (occ, ENTRY_BLOCK_PTR, &occ_head);
241 occ->bb_has_division = true;
242 occ->num_divisions++;
246 /* Compute the number of divisions that postdominate each block in OCC and
247 its children. */
249 static void
250 compute_merit (struct occurrence *occ)
252 struct occurrence *occ_child;
253 basic_block dom = occ->bb;
255 for (occ_child = occ->children; occ_child; occ_child = occ_child->next)
257 basic_block bb;
258 if (occ_child->children)
259 compute_merit (occ_child);
261 if (flag_exceptions)
262 bb = single_noncomplex_succ (dom);
263 else
264 bb = dom;
266 if (dominated_by_p (CDI_POST_DOMINATORS, bb, occ_child->bb))
267 occ->num_divisions += occ_child->num_divisions;
272 /* Return whether USE_STMT is a floating-point division by DEF. */
273 static inline bool
274 is_division_by (tree use_stmt, tree def)
276 return TREE_CODE (use_stmt) == MODIFY_EXPR
277 && TREE_CODE (TREE_OPERAND (use_stmt, 1)) == RDIV_EXPR
278 && TREE_OPERAND (TREE_OPERAND (use_stmt, 1), 1) == def
279 /* Do not recognize x / x as valid division, as we are getting
280 confused later by replacing all immediate uses x in such
281 a stmt. */
282 && TREE_OPERAND (TREE_OPERAND (use_stmt, 1), 0) != def;
285 /* Walk the subset of the dominator tree rooted at OCC, setting the
286 RECIP_DEF field to a definition of 1.0 / DEF that can be used in
287 the given basic block. The field may be left NULL, of course,
288 if it is not possible or profitable to do the optimization.
290 DEF_BSI is an iterator pointing at the statement defining DEF.
291 If RECIP_DEF is set, a dominator already has a computation that can
292 be used. */
294 static void
295 insert_reciprocals (block_stmt_iterator *def_bsi, struct occurrence *occ,
296 tree def, tree recip_def, int threshold)
298 tree type, new_stmt;
299 block_stmt_iterator bsi;
300 struct occurrence *occ_child;
302 if (!recip_def
303 && (occ->bb_has_division || !flag_trapping_math)
304 && occ->num_divisions >= threshold)
306 /* Make a variable with the replacement and substitute it. */
307 type = TREE_TYPE (def);
308 recip_def = make_rename_temp (type, "reciptmp");
309 new_stmt = build2 (MODIFY_EXPR, void_type_node, recip_def,
310 fold_build2 (RDIV_EXPR, type, build_one_cst (type),
311 def));
314 if (occ->bb_has_division)
316 /* Case 1: insert before an existing division. */
317 bsi = bsi_after_labels (occ->bb);
318 while (!bsi_end_p (bsi) && !is_division_by (bsi_stmt (bsi), def))
319 bsi_next (&bsi);
321 bsi_insert_before (&bsi, new_stmt, BSI_SAME_STMT);
323 else if (def_bsi && occ->bb == def_bsi->bb)
325 /* Case 2: insert right after the definition. Note that this will
326 never happen if the definition statement can throw, because in
327 that case the sole successor of the statement's basic block will
328 dominate all the uses as well. */
329 bsi_insert_after (def_bsi, new_stmt, BSI_NEW_STMT);
331 else
333 /* Case 3: insert in a basic block not containing defs/uses. */
334 bsi = bsi_after_labels (occ->bb);
335 bsi_insert_before (&bsi, new_stmt, BSI_SAME_STMT);
338 occ->recip_def_stmt = new_stmt;
341 occ->recip_def = recip_def;
342 for (occ_child = occ->children; occ_child; occ_child = occ_child->next)
343 insert_reciprocals (def_bsi, occ_child, def, recip_def, threshold);
347 /* Replace the division at USE_P with a multiplication by the reciprocal, if
348 possible. */
350 static inline void
351 replace_reciprocal (use_operand_p use_p)
353 tree use_stmt = USE_STMT (use_p);
354 basic_block bb = bb_for_stmt (use_stmt);
355 struct occurrence *occ = (struct occurrence *) bb->aux;
357 if (occ->recip_def && use_stmt != occ->recip_def_stmt)
359 TREE_SET_CODE (TREE_OPERAND (use_stmt, 1), MULT_EXPR);
360 SET_USE (use_p, occ->recip_def);
361 fold_stmt_inplace (use_stmt);
362 update_stmt (use_stmt);
367 /* Free OCC and return one more "struct occurrence" to be freed. */
369 static struct occurrence *
370 free_bb (struct occurrence *occ)
372 struct occurrence *child, *next;
374 /* First get the two pointers hanging off OCC. */
375 next = occ->next;
376 child = occ->children;
377 occ->bb->aux = NULL;
378 pool_free (occ_pool, occ);
380 /* Now ensure that we don't recurse unless it is necessary. */
381 if (!child)
382 return next;
383 else
385 while (next)
386 next = free_bb (next);
388 return child;
393 /* Look for floating-point divisions among DEF's uses, and try to
394 replace them by multiplications with the reciprocal. Add
395 as many statements computing the reciprocal as needed.
397 DEF must be a GIMPLE register of a floating-point type. */
399 static void
400 execute_cse_reciprocals_1 (block_stmt_iterator *def_bsi, tree def)
402 use_operand_p use_p;
403 imm_use_iterator use_iter;
404 struct occurrence *occ;
405 int count = 0, threshold;
407 gcc_assert (FLOAT_TYPE_P (TREE_TYPE (def)) && is_gimple_reg (def));
409 FOR_EACH_IMM_USE_FAST (use_p, use_iter, def)
411 tree use_stmt = USE_STMT (use_p);
412 if (is_division_by (use_stmt, def))
414 register_division_in (bb_for_stmt (use_stmt));
415 count++;
419 /* Do the expensive part only if we can hope to optimize something. */
420 threshold = targetm.min_divisions_for_recip_mul (TYPE_MODE (TREE_TYPE (def)));
421 if (count >= threshold)
423 tree use_stmt;
424 for (occ = occ_head; occ; occ = occ->next)
426 compute_merit (occ);
427 insert_reciprocals (def_bsi, occ, def, NULL, threshold);
430 FOR_EACH_IMM_USE_STMT (use_stmt, use_iter, def)
432 if (is_division_by (use_stmt, def))
434 FOR_EACH_IMM_USE_ON_STMT (use_p, use_iter)
435 replace_reciprocal (use_p);
440 for (occ = occ_head; occ; )
441 occ = free_bb (occ);
443 occ_head = NULL;
447 static bool
448 gate_cse_reciprocals (void)
450 return optimize && !optimize_size && flag_unsafe_math_optimizations;
454 /* Go through all the floating-point SSA_NAMEs, and call
455 execute_cse_reciprocals_1 on each of them. */
456 static unsigned int
457 execute_cse_reciprocals (void)
459 basic_block bb;
460 tree arg;
462 occ_pool = create_alloc_pool ("dominators for recip",
463 sizeof (struct occurrence),
464 n_basic_blocks / 3 + 1);
466 calculate_dominance_info (CDI_DOMINATORS);
467 calculate_dominance_info (CDI_POST_DOMINATORS);
469 #ifdef ENABLE_CHECKING
470 FOR_EACH_BB (bb)
471 gcc_assert (!bb->aux);
472 #endif
474 for (arg = DECL_ARGUMENTS (cfun->decl); arg; arg = TREE_CHAIN (arg))
475 if (default_def (arg)
476 && FLOAT_TYPE_P (TREE_TYPE (arg))
477 && is_gimple_reg (arg))
478 execute_cse_reciprocals_1 (NULL, default_def (arg));
480 FOR_EACH_BB (bb)
482 block_stmt_iterator bsi;
483 tree phi, def;
485 for (phi = phi_nodes (bb); phi; phi = PHI_CHAIN (phi))
487 def = PHI_RESULT (phi);
488 if (FLOAT_TYPE_P (TREE_TYPE (def))
489 && is_gimple_reg (def))
490 execute_cse_reciprocals_1 (NULL, def);
493 for (bsi = bsi_after_labels (bb); !bsi_end_p (bsi); bsi_next (&bsi))
495 tree stmt = bsi_stmt (bsi);
496 if (TREE_CODE (stmt) == MODIFY_EXPR
497 && (def = SINGLE_SSA_TREE_OPERAND (stmt, SSA_OP_DEF)) != NULL
498 && FLOAT_TYPE_P (TREE_TYPE (def))
499 && TREE_CODE (def) == SSA_NAME)
500 execute_cse_reciprocals_1 (&bsi, def);
504 free_dominance_info (CDI_DOMINATORS);
505 free_dominance_info (CDI_POST_DOMINATORS);
506 free_alloc_pool (occ_pool);
507 return 0;
510 struct tree_opt_pass pass_cse_reciprocals =
512 "recip", /* name */
513 gate_cse_reciprocals, /* gate */
514 execute_cse_reciprocals, /* execute */
515 NULL, /* sub */
516 NULL, /* next */
517 0, /* static_pass_number */
518 0, /* tv_id */
519 PROP_ssa, /* properties_required */
520 0, /* properties_provided */
521 0, /* properties_destroyed */
522 0, /* todo_flags_start */
523 TODO_dump_func | TODO_update_ssa | TODO_verify_ssa
524 | TODO_verify_stmts, /* todo_flags_finish */
525 0 /* letter */