1 /* Loop invariant motion. 2 Copyright (C) 2003-2020 Free Software Foundation, Inc. 3 4 This file is part of GCC. 5 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. 10 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. 15 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/>. */ 19 20 #include "config.h" 21 #include "system.h" 22 #include "coretypes.h" 23 #include "backend.h" 24 #include "tree.h" 25 #include "gimple.h" 26 #include "cfghooks.h" 27 #include "tree-pass.h" 28 #include "ssa.h" 29 #include "gimple-pretty-print.h" 30 #include "fold-const.h" 31 #include "cfganal.h" 32 #include "tree-eh.h" 33 #include "gimplify.h" 34 #include "gimple-iterator.h" 35 #include "tree-cfg.h" 36 #include "tree-ssa-loop-manip.h" 37 #include "tree-ssa-loop.h" 38 #include "tree-into-ssa.h" 39 #include "cfgloop.h" 40 #include "domwalk.h" 41 #include "tree-affine.h" 42 #include "tree-ssa-propagate.h" 43 #include "trans-mem.h" 44 #include "gimple-fold.h" 45 #include "tree-scalar-evolution.h" 46 #include "tree-ssa-loop-niter.h" 47 #include "alias.h" 48 #include "builtins.h" 49 #include "tree-dfa.h" 50 51 /* TODO: Support for predicated code motion. I.e. 52 53 while (1) 54 { 55 if (cond) 56 { 57 a = inv; 58 something; 59 } 60 } 61 62 Where COND and INV are invariants, but evaluating INV may trap or be 63 invalid from some other reason if !COND. This may be transformed to 64 65 if (cond) 66 a = inv; 67 while (1) 68 { 69 if (cond) 70 something; 71 } */ 72 73 /* The auxiliary data kept for each statement. */ 74 75 struct lim_aux_data 76 { 77 class loop *max_loop; /* The outermost loop in that the statement 78 is invariant. */ 79 80 class loop *tgt_loop; /* The loop out of that we want to move the 81 invariant. */ 82 83 class loop *always_executed_in; 84 /* The outermost loop for that we are sure 85 the statement is executed if the loop 86 is entered. */ 87 88 unsigned cost; /* Cost of the computation performed by the 89 statement. */ 90 91 unsigned ref; /* The simple_mem_ref in this stmt or 0. */ 92 93 vec<gimple *> depends; /* Vector of statements that must be also 94 hoisted out of the loop when this statement 95 is hoisted; i.e. those that define the 96 operands of the statement and are inside of 97 the MAX_LOOP loop. */ 98 }; 99 100 /* Maps statements to their lim_aux_data. */ 101 102 static hash_map<gimple *, lim_aux_data *> *lim_aux_data_map; 103 104 /* Description of a memory reference location. */ 105 106 struct mem_ref_loc 107 { 108 tree *ref; /* The reference itself. */ 109 gimple *stmt; /* The statement in that it occurs. */ 110 }; 111 112 113 /* Description of a memory reference. */ 114 115 class im_mem_ref 116 { 117 public: 118 unsigned id : 30; /* ID assigned to the memory reference 119 (its index in memory_accesses.refs_list) */ 120 unsigned ref_canonical : 1; /* Whether mem.ref was canonicalized. */ 121 unsigned ref_decomposed : 1; /* Whether the ref was hashed from mem. */ 122 hashval_t hash; /* Its hash value. */ 123 124 /* The memory access itself and associated caching of alias-oracle 125 query meta-data. */ 126 ao_ref mem; 127 128 bitmap stored; /* The set of loops in that this memory location 129 is stored to. */ 130 vec<mem_ref_loc> accesses_in_loop; 131 /* The locations of the accesses. Vector 132 indexed by the loop number. */ 133 134 /* The following sets are computed on demand. We keep both set and 135 its complement, so that we know whether the information was 136 already computed or not. */ 137 bitmap_head indep_loop; /* The set of loops in that the memory 138 reference is independent, meaning: 139 If it is stored in the loop, this store 140 is independent on all other loads and 141 stores. 142 If it is only loaded, then it is independent 143 on all stores in the loop. */ 144 bitmap_head dep_loop; /* The complement of INDEP_LOOP. */ 145 }; 146 147 /* We use two bits per loop in the ref->{in,}dep_loop bitmaps, the first 148 to record (in)dependence against stores in the loop and its subloops, the 149 second to record (in)dependence against all references in the loop 150 and its subloops. */ 151 #define LOOP_DEP_BIT(loopnum, storedp) (2 * (loopnum) + (storedp ? 1 : 0)) 152 153 /* Mem_ref hashtable helpers. */ 154 155 struct mem_ref_hasher : nofree_ptr_hash <im_mem_ref> 156 { 157 typedef ao_ref *compare_type; 158 static inline hashval_t hash (const im_mem_ref *); 159 static inline bool equal (const im_mem_ref *, const ao_ref *); 160 }; 161 162 /* A hash function for class im_mem_ref object OBJ. */ 163 164 inline hashval_t 165 mem_ref_hasher::hash (const im_mem_ref *mem) 166 { 167 return mem->hash; 168 } 169 170 /* An equality function for class im_mem_ref object MEM1 with 171 memory reference OBJ2. */ 172 173 inline bool 174 mem_ref_hasher::equal (const im_mem_ref *mem1, const ao_ref *obj2) 175 { 176 if (obj2->max_size_known_p ()) 177 return (mem1->ref_decomposed 178 && operand_equal_p (mem1->mem.base, obj2->base, 0) 179 && known_eq (mem1->mem.offset, obj2->offset) 180 && known_eq (mem1->mem.size, obj2->size) 181 && known_eq (mem1->mem.max_size, obj2->max_size) 182 && mem1->mem.volatile_p == obj2->volatile_p 183 && (mem1->mem.ref_alias_set == obj2->ref_alias_set 184 /* We are not canonicalizing alias-sets but for the 185 special-case we didn't canonicalize yet and the 186 incoming ref is a alias-set zero MEM we pick 187 the correct one already. */ 188 || (!mem1->ref_canonical 189 && (TREE_CODE (obj2->ref) == MEM_REF 190 || TREE_CODE (obj2->ref) == TARGET_MEM_REF) 191 && obj2->ref_alias_set == 0) 192 /* Likewise if there's a canonical ref with alias-set zero. */ 193 || (mem1->ref_canonical && mem1->mem.ref_alias_set == 0)) 194 && types_compatible_p (TREE_TYPE (mem1->mem.ref), 195 TREE_TYPE (obj2->ref))); 196 else 197 return operand_equal_p (mem1->mem.ref, obj2->ref, 0); 198 } 199 200 201 /* Description of memory accesses in loops. */ 202 203 static struct 204 { 205 /* The hash table of memory references accessed in loops. */ 206 hash_table<mem_ref_hasher> *refs; 207 208 /* The list of memory references. */ 209 vec<im_mem_ref *> refs_list; 210 211 /* The set of memory references accessed in each loop. */ 212 vec<bitmap_head> refs_in_loop; 213 214 /* The set of memory references stored in each loop. */ 215 vec<bitmap_head> refs_stored_in_loop; 216 217 /* The set of memory references stored in each loop, including subloops . */ 218 vec<bitmap_head> all_refs_stored_in_loop; 219 220 /* Cache for expanding memory addresses. */ 221 hash_map<tree, name_expansion *> *ttae_cache; 222 } memory_accesses; 223 224 /* Obstack for the bitmaps in the above data structures. */ 225 static bitmap_obstack lim_bitmap_obstack; 226 static obstack mem_ref_obstack; 227 228 static bool ref_indep_loop_p (class loop *, im_mem_ref *); 229 static bool ref_always_accessed_p (class loop *, im_mem_ref *, bool); 230 231 /* Minimum cost of an expensive expression. */ 232 #define LIM_EXPENSIVE ((unsigned) param_lim_expensive) 233 234 /* The outermost loop for which execution of the header guarantees that the 235 block will be executed. */ 236 #define ALWAYS_EXECUTED_IN(BB) ((class loop *) (BB)->aux) 237 #define SET_ALWAYS_EXECUTED_IN(BB, VAL) ((BB)->aux = (void *) (VAL)) 238 239 /* ID of the shared unanalyzable mem. */ 240 #define UNANALYZABLE_MEM_ID 0 241 242 /* Whether the reference was analyzable. */ 243 #define MEM_ANALYZABLE(REF) ((REF)->id != UNANALYZABLE_MEM_ID) 244 245 static struct lim_aux_data * 246 init_lim_data (gimple *stmt) 247 { 248 lim_aux_data *p = XCNEW (struct lim_aux_data); 249 lim_aux_data_map->put (stmt, p); 250 251 return p; 252 } 253 254 static struct lim_aux_data * 255 get_lim_data (gimple *stmt) 256 { 257 lim_aux_data **p = lim_aux_data_map->get (stmt); 258 if (!p) 259 return NULL; 260 261 return *p; 262 } 263 264 /* Releases the memory occupied by DATA. */ 265 266 static void 267 free_lim_aux_data (struct lim_aux_data *data) 268 { 269 data->depends.release (); 270 free (data); 271 } 272 273 static void 274 clear_lim_data (gimple *stmt) 275 { 276 lim_aux_data **p = lim_aux_data_map->get (stmt); 277 if (!p) 278 return; 279 280 free_lim_aux_data (*p); 281 *p = NULL; 282 } 283 284 285 /* The possibilities of statement movement. */ 286 enum move_pos 287 { 288 MOVE_IMPOSSIBLE, /* No movement -- side effect expression. */ 289 MOVE_PRESERVE_EXECUTION, /* Must not cause the non-executed statement 290 become executed -- memory accesses, ... */ 291 MOVE_POSSIBLE /* Unlimited movement. */ 292 }; 293 294 295 /* If it is possible to hoist the statement STMT unconditionally, 296 returns MOVE_POSSIBLE. 297 If it is possible to hoist the statement STMT, but we must avoid making 298 it executed if it would not be executed in the original program (e.g. 299 because it may trap), return MOVE_PRESERVE_EXECUTION. 300 Otherwise return MOVE_IMPOSSIBLE. */ 301 302 enum move_pos 303 movement_possibility (gimple *stmt) 304 { 305 tree lhs; 306 enum move_pos ret = MOVE_POSSIBLE; 307 308 if (flag_unswitch_loops 309 && gimple_code (stmt) == GIMPLE_COND) 310 { 311 /* If we perform unswitching, force the operands of the invariant 312 condition to be moved out of the loop. */ 313 return MOVE_POSSIBLE; 314 } 315 316 if (gimple_code (stmt) == GIMPLE_PHI 317 && gimple_phi_num_args (stmt) <= 2 318 && !virtual_operand_p (gimple_phi_result (stmt)) 319 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (gimple_phi_result (stmt))) 320 return MOVE_POSSIBLE; 321 322 if (gimple_get_lhs (stmt) == NULL_TREE) 323 return MOVE_IMPOSSIBLE; 324 325 if (gimple_vdef (stmt)) 326 return MOVE_IMPOSSIBLE; 327 328 if (stmt_ends_bb_p (stmt) 329 || gimple_has_volatile_ops (stmt) 330 || gimple_has_side_effects (stmt) 331 || stmt_could_throw_p (cfun, stmt)) 332 return MOVE_IMPOSSIBLE; 333 334 if (is_gimple_call (stmt)) 335 { 336 /* While pure or const call is guaranteed to have no side effects, we 337 cannot move it arbitrarily. Consider code like 338 339 char *s = something (); 340 341 while (1) 342 { 343 if (s) 344 t = strlen (s); 345 else 346 t = 0; 347 } 348 349 Here the strlen call cannot be moved out of the loop, even though 350 s is invariant. In addition to possibly creating a call with 351 invalid arguments, moving out a function call that is not executed 352 may cause performance regressions in case the call is costly and 353 not executed at all. */ 354 ret = MOVE_PRESERVE_EXECUTION; 355 lhs = gimple_call_lhs (stmt); 356 } 357 else if (is_gimple_assign (stmt)) 358 lhs = gimple_assign_lhs (stmt); 359 else 360 return MOVE_IMPOSSIBLE; 361 362 if (TREE_CODE (lhs) == SSA_NAME 363 && SSA_NAME_OCCURS_IN_ABNORMAL_PHI (lhs)) 364 return MOVE_IMPOSSIBLE; 365 366 if (TREE_CODE (lhs) != SSA_NAME 367 || gimple_could_trap_p (stmt)) 368 return MOVE_PRESERVE_EXECUTION; 369 370 /* Non local loads in a transaction cannot be hoisted out. Well, 371 unless the load happens on every path out of the loop, but we 372 don't take this into account yet. */ 373 if (flag_tm 374 && gimple_in_transaction (stmt) 375 && gimple_assign_single_p (stmt)) 376 { 377 tree rhs = gimple_assign_rhs1 (stmt); 378 if (DECL_P (rhs) && is_global_var (rhs)) 379 { 380 if (dump_file) 381 { 382 fprintf (dump_file, "Cannot hoist conditional load of "); 383 print_generic_expr (dump_file, rhs, TDF_SLIM); 384 fprintf (dump_file, " because it is in a transaction.\n"); 385 } 386 return MOVE_IMPOSSIBLE; 387 } 388 } 389 390 return ret; 391 } 392 393 /* Suppose that operand DEF is used inside the LOOP. Returns the outermost 394 loop to that we could move the expression using DEF if it did not have 395 other operands, i.e. the outermost loop enclosing LOOP in that the value 396 of DEF is invariant. */ 397 398 static class loop * 399 outermost_invariant_loop (tree def, class loop *loop) 400 { 401 gimple *def_stmt; 402 basic_block def_bb; 403 class loop *max_loop; 404 struct lim_aux_data *lim_data; 405 406 if (!def) 407 return superloop_at_depth (loop, 1); 408 409 if (TREE_CODE (def) != SSA_NAME) 410 { 411 gcc_assert (is_gimple_min_invariant (def)); 412 return superloop_at_depth (loop, 1); 413 } 414 415 def_stmt = SSA_NAME_DEF_STMT (def); 416 def_bb = gimple_bb (def_stmt); 417 if (!def_bb) 418 return superloop_at_depth (loop, 1); 419 420 max_loop = find_common_loop (loop, def_bb->loop_father); 421 422 lim_data = get_lim_data (def_stmt); 423 if (lim_data != NULL && lim_data->max_loop != NULL) 424 max_loop = find_common_loop (max_loop, 425 loop_outer (lim_data->max_loop)); 426 if (max_loop == loop) 427 return NULL; 428 max_loop = superloop_at_depth (loop, loop_depth (max_loop) + 1); 429 430 return max_loop; 431 } 432 433 /* DATA is a structure containing information associated with a statement 434 inside LOOP. DEF is one of the operands of this statement. 435 436 Find the outermost loop enclosing LOOP in that value of DEF is invariant 437 and record this in DATA->max_loop field. If DEF itself is defined inside 438 this loop as well (i.e. we need to hoist it out of the loop if we want 439 to hoist the statement represented by DATA), record the statement in that 440 DEF is defined to the DATA->depends list. Additionally if ADD_COST is true, 441 add the cost of the computation of DEF to the DATA->cost. 442 443 If DEF is not invariant in LOOP, return false. Otherwise return TRUE. */ 444 445 static bool 446 add_dependency (tree def, struct lim_aux_data *data, class loop *loop, 447 bool add_cost) 448 { 449 gimple *def_stmt = SSA_NAME_DEF_STMT (def); 450 basic_block def_bb = gimple_bb (def_stmt); 451 class loop *max_loop; 452 struct lim_aux_data *def_data; 453 454 if (!def_bb) 455 return true; 456 457 max_loop = outermost_invariant_loop (def, loop); 458 if (!max_loop) 459 return false; 460 461 if (flow_loop_nested_p (data->max_loop, max_loop)) 462 data->max_loop = max_loop; 463 464 def_data = get_lim_data (def_stmt); 465 if (!def_data) 466 return true; 467 468 if (add_cost 469 /* Only add the cost if the statement defining DEF is inside LOOP, 470 i.e. if it is likely that by moving the invariants dependent 471 on it, we will be able to avoid creating a new register for 472 it (since it will be only used in these dependent invariants). */ 473 && def_bb->loop_father == loop) 474 data->cost += def_data->cost; 475 476 data->depends.safe_push (def_stmt); 477 478 return true; 479 } 480 481 /* Returns an estimate for a cost of statement STMT. The values here 482 are just ad-hoc constants, similar to costs for inlining. */ 483 484 static unsigned 485 stmt_cost (gimple *stmt) 486 { 487 /* Always try to create possibilities for unswitching. */ 488 if (gimple_code (stmt) == GIMPLE_COND 489 || gimple_code (stmt) == GIMPLE_PHI) 490 return LIM_EXPENSIVE; 491 492 /* We should be hoisting calls if possible. */ 493 if (is_gimple_call (stmt)) 494 { 495 tree fndecl; 496 497 /* Unless the call is a builtin_constant_p; this always folds to a 498 constant, so moving it is useless. */ 499 fndecl = gimple_call_fndecl (stmt); 500 if (fndecl && fndecl_built_in_p (fndecl, BUILT_IN_CONSTANT_P)) 501 return 0; 502 503 return LIM_EXPENSIVE; 504 } 505 506 /* Hoisting memory references out should almost surely be a win. */ 507 if (gimple_references_memory_p (stmt)) 508 return LIM_EXPENSIVE; 509 510 if (gimple_code (stmt) != GIMPLE_ASSIGN) 511 return 1; 512 513 switch (gimple_assign_rhs_code (stmt)) 514 { 515 case MULT_EXPR: 516 case WIDEN_MULT_EXPR: 517 case WIDEN_MULT_PLUS_EXPR: 518 case WIDEN_MULT_MINUS_EXPR: 519 case DOT_PROD_EXPR: 520 case TRUNC_DIV_EXPR: 521 case CEIL_DIV_EXPR: 522 case FLOOR_DIV_EXPR: 523 case ROUND_DIV_EXPR: 524 case EXACT_DIV_EXPR: 525 case CEIL_MOD_EXPR: 526 case FLOOR_MOD_EXPR: 527 case ROUND_MOD_EXPR: 528 case TRUNC_MOD_EXPR: 529 case RDIV_EXPR: 530 /* Division and multiplication are usually expensive. */ 531 return LIM_EXPENSIVE; 532 533 case LSHIFT_EXPR: 534 case RSHIFT_EXPR: 535 case WIDEN_LSHIFT_EXPR: 536 case LROTATE_EXPR: 537 case RROTATE_EXPR: 538 /* Shifts and rotates are usually expensive. */ 539 return LIM_EXPENSIVE; 540 541 case CONSTRUCTOR: 542 /* Make vector construction cost proportional to the number 543 of elements. */ 544 return CONSTRUCTOR_NELTS (gimple_assign_rhs1 (stmt)); 545 546 case SSA_NAME: 547 case PAREN_EXPR: 548 /* Whether or not something is wrapped inside a PAREN_EXPR 549 should not change move cost. Nor should an intermediate 550 unpropagated SSA name copy. */ 551 return 0; 552 553 default: 554 return 1; 555 } 556 } 557 558 /* Finds the outermost loop between OUTER and LOOP in that the memory reference 559 REF is independent. If REF is not independent in LOOP, NULL is returned 560 instead. */ 561 562 static class loop * 563 outermost_indep_loop (class loop *outer, class loop *loop, im_mem_ref *ref) 564 { 565 class loop *aloop; 566 567 if (ref->stored && bitmap_bit_p (ref->stored, loop->num)) 568 return NULL; 569 570 for (aloop = outer; 571 aloop != loop; 572 aloop = superloop_at_depth (loop, loop_depth (aloop) + 1)) 573 if ((!ref->stored || !bitmap_bit_p (ref->stored, aloop->num)) 574 && ref_indep_loop_p (aloop, ref)) 575 return aloop; 576 577 if (ref_indep_loop_p (loop, ref)) 578 return loop; 579 else 580 return NULL; 581 } 582 583 /* If there is a simple load or store to a memory reference in STMT, returns 584 the location of the memory reference, and sets IS_STORE according to whether 585 it is a store or load. Otherwise, returns NULL. */ 586 587 static tree * 588 simple_mem_ref_in_stmt (gimple *stmt, bool *is_store) 589 { 590 tree *lhs, *rhs; 591 592 /* Recognize SSA_NAME = MEM and MEM = (SSA_NAME | invariant) patterns. */ 593 if (!gimple_assign_single_p (stmt)) 594 return NULL; 595 596 lhs = gimple_assign_lhs_ptr (stmt); 597 rhs = gimple_assign_rhs1_ptr (stmt); 598 599 if (TREE_CODE (*lhs) == SSA_NAME && gimple_vuse (stmt)) 600 { 601 *is_store = false; 602 return rhs; 603 } 604 else if (gimple_vdef (stmt) 605 && (TREE_CODE (*rhs) == SSA_NAME || is_gimple_min_invariant (*rhs))) 606 { 607 *is_store = true; 608 return lhs; 609 } 610 else 611 return NULL; 612 } 613 614 /* From a controlling predicate in DOM determine the arguments from 615 the PHI node PHI that are chosen if the predicate evaluates to 616 true and false and store them to *TRUE_ARG_P and *FALSE_ARG_P if 617 they are non-NULL. Returns true if the arguments can be determined, 618 else return false. */ 619 620 static bool 621 extract_true_false_args_from_phi (basic_block dom, gphi *phi, 622 tree *true_arg_p, tree *false_arg_p) 623 { 624 edge te, fe; 625 if (! extract_true_false_controlled_edges (dom, gimple_bb (phi), 626 &te, &fe)) 627 return false; 628 629 if (true_arg_p) 630 *true_arg_p = PHI_ARG_DEF (phi, te->dest_idx); 631 if (false_arg_p) 632 *false_arg_p = PHI_ARG_DEF (phi, fe->dest_idx); 633 634 return true; 635 } 636 637 /* Determine the outermost loop to that it is possible to hoist a statement 638 STMT and store it to LIM_DATA (STMT)->max_loop. To do this we determine 639 the outermost loop in that the value computed by STMT is invariant. 640 If MUST_PRESERVE_EXEC is true, additionally choose such a loop that 641 we preserve the fact whether STMT is executed. It also fills other related 642 information to LIM_DATA (STMT). 643 644 The function returns false if STMT cannot be hoisted outside of the loop it 645 is defined in, and true otherwise. */ 646 647 static bool 648 determine_max_movement (gimple *stmt, bool must_preserve_exec) 649 { 650 basic_block bb = gimple_bb (stmt); 651 class loop *loop = bb->loop_father; 652 class loop *level; 653 struct lim_aux_data *lim_data = get_lim_data (stmt); 654 tree val; 655 ssa_op_iter iter; 656 657 if (must_preserve_exec) 658 level = ALWAYS_EXECUTED_IN (bb); 659 else 660 level = superloop_at_depth (loop, 1); 661 lim_data->max_loop = level; 662 663 if (gphi *phi = dyn_cast <gphi *> (stmt)) 664 { 665 use_operand_p use_p; 666 unsigned min_cost = UINT_MAX; 667 unsigned total_cost = 0; 668 struct lim_aux_data *def_data; 669 670 /* We will end up promoting dependencies to be unconditionally 671 evaluated. For this reason the PHI cost (and thus the 672 cost we remove from the loop by doing the invariant motion) 673 is that of the cheapest PHI argument dependency chain. */ 674 FOR_EACH_PHI_ARG (use_p, phi, iter, SSA_OP_USE) 675 { 676 val = USE_FROM_PTR (use_p); 677 678 if (TREE_CODE (val) != SSA_NAME) 679 { 680 /* Assign const 1 to constants. */ 681 min_cost = MIN (min_cost, 1); 682 total_cost += 1; 683 continue; 684 } 685 if (!add_dependency (val, lim_data, loop, false)) 686 return false; 687 688 gimple *def_stmt = SSA_NAME_DEF_STMT (val); 689 if (gimple_bb (def_stmt) 690 && gimple_bb (def_stmt)->loop_father == loop) 691 { 692 def_data = get_lim_data (def_stmt); 693 if (def_data) 694 { 695 min_cost = MIN (min_cost, def_data->cost); 696 total_cost += def_data->cost; 697 } 698 } 699 } 700 701 min_cost = MIN (min_cost, total_cost); 702 lim_data->cost += min_cost; 703 704 if (gimple_phi_num_args (phi) > 1) 705 { 706 basic_block dom = get_immediate_dominator (CDI_DOMINATORS, bb); 707 gimple *cond; 708 if (gsi_end_p (gsi_last_bb (dom))) 709 return false; 710 cond = gsi_stmt (gsi_last_bb (dom)); 711 if (gimple_code (cond) != GIMPLE_COND) 712 return false; 713 /* Verify that this is an extended form of a diamond and 714 the PHI arguments are completely controlled by the 715 predicate in DOM. */ 716 if (!extract_true_false_args_from_phi (dom, phi, NULL, NULL)) 717 return false; 718 719 /* Fold in dependencies and cost of the condition. */ 720 FOR_EACH_SSA_TREE_OPERAND (val, cond, iter, SSA_OP_USE) 721 { 722 if (!add_dependency (val, lim_data, loop, false)) 723 return false; 724 def_data = get_lim_data (SSA_NAME_DEF_STMT (val)); 725 if (def_data) 726 lim_data->cost += def_data->cost; 727 } 728 729 /* We want to avoid unconditionally executing very expensive 730 operations. As costs for our dependencies cannot be 731 negative just claim we are not invariand for this case. 732 We also are not sure whether the control-flow inside the 733 loop will vanish. */ 734 if (total_cost - min_cost >= 2 * LIM_EXPENSIVE 735 && !(min_cost != 0 736 && total_cost / min_cost <= 2)) 737 return false; 738 739 /* Assume that the control-flow in the loop will vanish. 740 ??? We should verify this and not artificially increase 741 the cost if that is not the case. */ 742 lim_data->cost += stmt_cost (stmt); 743 } 744 745 return true; 746 } 747 else 748 FOR_EACH_SSA_TREE_OPERAND (val, stmt, iter, SSA_OP_USE) 749 if (!add_dependency (val, lim_data, loop, true)) 750 return false; 751 752 if (gimple_vuse (stmt)) 753 { 754 im_mem_ref *ref 755 = lim_data ? memory_accesses.refs_list[lim_data->ref] : NULL; 756 if (ref 757 && MEM_ANALYZABLE (ref)) 758 { 759 lim_data->max_loop = outermost_indep_loop (lim_data->max_loop, 760 loop, ref); 761 if (!lim_data->max_loop) 762 return false; 763 } 764 else if (! add_dependency (gimple_vuse (stmt), lim_data, loop, false)) 765 return false; 766 } 767 768 lim_data->cost += stmt_cost (stmt); 769 770 return true; 771 } 772 773 /* Suppose that some statement in ORIG_LOOP is hoisted to the loop LEVEL, 774 and that one of the operands of this statement is computed by STMT. 775 Ensure that STMT (together with all the statements that define its 776 operands) is hoisted at least out of the loop LEVEL. */ 777 778 static void 779 set_level (gimple *stmt, class loop *orig_loop, class loop *level) 780 { 781 class loop *stmt_loop = gimple_bb (stmt)->loop_father; 782 struct lim_aux_data *lim_data; 783 gimple *dep_stmt; 784 unsigned i; 785 786 stmt_loop = find_common_loop (orig_loop, stmt_loop); 787 lim_data = get_lim_data (stmt); 788 if (lim_data != NULL && lim_data->tgt_loop != NULL) 789 stmt_loop = find_common_loop (stmt_loop, 790 loop_outer (lim_data->tgt_loop)); 791 if (flow_loop_nested_p (stmt_loop, level)) 792 return; 793 794 gcc_assert (level == lim_data->max_loop 795 || flow_loop_nested_p (lim_data->max_loop, level)); 796 797 lim_data->tgt_loop = level; 798 FOR_EACH_VEC_ELT (lim_data->depends, i, dep_stmt) 799 set_level (dep_stmt, orig_loop, level); 800 } 801 802 /* Determines an outermost loop from that we want to hoist the statement STMT. 803 For now we chose the outermost possible loop. TODO -- use profiling 804 information to set it more sanely. */ 805 806 static void 807 set_profitable_level (gimple *stmt) 808 { 809 set_level (stmt, gimple_bb (stmt)->loop_father, get_lim_data (stmt)->max_loop); 810 } 811 812 /* Returns true if STMT is a call that has side effects. */ 813 814 static bool 815 nonpure_call_p (gimple *stmt) 816 { 817 if (gimple_code (stmt) != GIMPLE_CALL) 818 return false; 819 820 return gimple_has_side_effects (stmt); 821 } 822 823 /* Rewrite a/b to a*(1/b). Return the invariant stmt to process. */ 824 825 static gimple * 826 rewrite_reciprocal (gimple_stmt_iterator *bsi) 827 { 828 gassign *stmt, *stmt1, *stmt2; 829 tree name, lhs, type; 830 tree real_one; 831 gimple_stmt_iterator gsi; 832 833 stmt = as_a <gassign *> (gsi_stmt (*bsi)); 834 lhs = gimple_assign_lhs (stmt); 835 type = TREE_TYPE (lhs); 836 837 real_one = build_one_cst (type); 838 839 name = make_temp_ssa_name (type, NULL, "reciptmp"); 840 stmt1 = gimple_build_assign (name, RDIV_EXPR, real_one, 841 gimple_assign_rhs2 (stmt)); 842 stmt2 = gimple_build_assign (lhs, MULT_EXPR, name, 843 gimple_assign_rhs1 (stmt)); 844 845 /* Replace division stmt with reciprocal and multiply stmts. 846 The multiply stmt is not invariant, so update iterator 847 and avoid rescanning. */ 848 gsi = *bsi; 849 gsi_insert_before (bsi, stmt1, GSI_NEW_STMT); 850 gsi_replace (&gsi, stmt2, true); 851 852 /* Continue processing with invariant reciprocal statement. */ 853 return stmt1; 854 } 855 856 /* Check if the pattern at *BSI is a bittest of the form 857 (A >> B) & 1 != 0 and in this case rewrite it to A & (1 << B) != 0. */ 858 859 static gimple * 860 rewrite_bittest (gimple_stmt_iterator *bsi) 861 { 862 gassign *stmt; 863 gimple *stmt1; 864 gassign *stmt2; 865 gimple *use_stmt; 866 gcond *cond_stmt; 867 tree lhs, name, t, a, b; 868 use_operand_p use; 869 870 stmt = as_a <gassign *> (gsi_stmt (*bsi)); 871 lhs = gimple_assign_lhs (stmt); 872 873 /* Verify that the single use of lhs is a comparison against zero. */ 874 if (TREE_CODE (lhs) != SSA_NAME 875 || !single_imm_use (lhs, &use, &use_stmt)) 876 return stmt; 877 cond_stmt = dyn_cast <gcond *> (use_stmt); 878 if (!cond_stmt) 879 return stmt; 880 if (gimple_cond_lhs (cond_stmt) != lhs 881 || (gimple_cond_code (cond_stmt) != NE_EXPR 882 && gimple_cond_code (cond_stmt) != EQ_EXPR) 883 || !integer_zerop (gimple_cond_rhs (cond_stmt))) 884 return stmt; 885 886 /* Get at the operands of the shift. The rhs is TMP1 & 1. */ 887 stmt1 = SSA_NAME_DEF_STMT (gimple_assign_rhs1 (stmt)); 888 if (gimple_code (stmt1) != GIMPLE_ASSIGN) 889 return stmt; 890 891 /* There is a conversion in between possibly inserted by fold. */ 892 if (CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (stmt1))) 893 { 894 t = gimple_assign_rhs1 (stmt1); 895 if (TREE_CODE (t) != SSA_NAME 896 || !has_single_use (t)) 897 return stmt; 898 stmt1 = SSA_NAME_DEF_STMT (t); 899 if (gimple_code (stmt1) != GIMPLE_ASSIGN) 900 return stmt; 901 } 902 903 /* Verify that B is loop invariant but A is not. Verify that with 904 all the stmt walking we are still in the same loop. */ 905 if (gimple_assign_rhs_code (stmt1) != RSHIFT_EXPR 906 || loop_containing_stmt (stmt1) != loop_containing_stmt (stmt)) 907 return stmt; 908 909 a = gimple_assign_rhs1 (stmt1); 910 b = gimple_assign_rhs2 (stmt1); 911 912 if (outermost_invariant_loop (b, loop_containing_stmt (stmt1)) != NULL 913 && outermost_invariant_loop (a, loop_containing_stmt (stmt1)) == NULL) 914 { 915 gimple_stmt_iterator rsi; 916 917 /* 1 << B */ 918 t = fold_build2 (LSHIFT_EXPR, TREE_TYPE (a), 919 build_int_cst (TREE_TYPE (a), 1), b); 920 name = make_temp_ssa_name (TREE_TYPE (a), NULL, "shifttmp"); 921 stmt1 = gimple_build_assign (name, t); 922 923 /* A & (1 << B) */ 924 t = fold_build2 (BIT_AND_EXPR, TREE_TYPE (a), a, name); 925 name = make_temp_ssa_name (TREE_TYPE (a), NULL, "shifttmp"); 926 stmt2 = gimple_build_assign (name, t); 927 928 /* Replace the SSA_NAME we compare against zero. Adjust 929 the type of zero accordingly. */ 930 SET_USE (use, name); 931 gimple_cond_set_rhs (cond_stmt, 932 build_int_cst_type (TREE_TYPE (name), 933 0)); 934 935 /* Don't use gsi_replace here, none of the new assignments sets 936 the variable originally set in stmt. Move bsi to stmt1, and 937 then remove the original stmt, so that we get a chance to 938 retain debug info for it. */ 939 rsi = *bsi; 940 gsi_insert_before (bsi, stmt1, GSI_NEW_STMT); 941 gsi_insert_before (&rsi, stmt2, GSI_SAME_STMT); 942 gimple *to_release = gsi_stmt (rsi); 943 gsi_remove (&rsi, true); 944 release_defs (to_release); 945 946 return stmt1; 947 } 948 949 return stmt; 950 } 951 952 /* For each statement determines the outermost loop in that it is invariant, 953 - statements on whose motion it depends and the cost of the computation. 954 - This information is stored to the LIM_DATA structure associated with 955 - each statement. */ 956 class invariantness_dom_walker : public dom_walker 957 { 958 public: 959 invariantness_dom_walker (cdi_direction direction) 960 : dom_walker (direction) {} 961 962 virtual edge before_dom_children (basic_block); 963 }; 964 965 /* Determine the outermost loops in that statements in basic block BB are 966 invariant, and record them to the LIM_DATA associated with the statements. 967 Callback for dom_walker. */ 968 969 edge 970 invariantness_dom_walker::before_dom_children (basic_block bb) 971 { 972 enum move_pos pos; 973 gimple_stmt_iterator bsi; 974 gimple *stmt; 975 bool maybe_never = ALWAYS_EXECUTED_IN (bb) == NULL; 976 class loop *outermost = ALWAYS_EXECUTED_IN (bb); 977 struct lim_aux_data *lim_data; 978 979 if (!loop_outer (bb->loop_father)) 980 return NULL; 981 982 if (dump_file && (dump_flags & TDF_DETAILS)) 983 fprintf (dump_file, "Basic block %d (loop %d -- depth %d):\n\n", 984 bb->index, bb->loop_father->num, loop_depth (bb->loop_father)); 985 986 /* Look at PHI nodes, but only if there is at most two. 987 ??? We could relax this further by post-processing the inserted 988 code and transforming adjacent cond-exprs with the same predicate 989 to control flow again. */ 990 bsi = gsi_start_phis (bb); 991 if (!gsi_end_p (bsi) 992 && ((gsi_next (&bsi), gsi_end_p (bsi)) 993 || (gsi_next (&bsi), gsi_end_p (bsi)))) 994 for (bsi = gsi_start_phis (bb); !gsi_end_p (bsi); gsi_next (&bsi)) 995 { 996 stmt = gsi_stmt (bsi); 997 998 pos = movement_possibility (stmt); 999 if (pos == MOVE_IMPOSSIBLE) 1000 continue; 1001 1002 lim_data = get_lim_data (stmt); 1003 if (! lim_data) 1004 lim_data = init_lim_data (stmt); 1005 lim_data->always_executed_in = outermost; 1006 1007 if (!determine_max_movement (stmt, false)) 1008 { 1009 lim_data->max_loop = NULL; 1010 continue; 1011 } 1012 1013 if (dump_file && (dump_flags & TDF_DETAILS)) 1014 { 1015 print_gimple_stmt (dump_file, stmt, 2); 1016 fprintf (dump_file, " invariant up to level %d, cost %d.\n\n", 1017 loop_depth (lim_data->max_loop), 1018 lim_data->cost); 1019 } 1020 1021 if (lim_data->cost >= LIM_EXPENSIVE) 1022 set_profitable_level (stmt); 1023 } 1024 1025 for (bsi = gsi_start_bb (bb); !gsi_end_p (bsi); gsi_next (&bsi)) 1026 { 1027 stmt = gsi_stmt (bsi); 1028 1029 pos = movement_possibility (stmt); 1030 if (pos == MOVE_IMPOSSIBLE) 1031 { 1032 if (nonpure_call_p (stmt)) 1033 { 1034 maybe_never = true; 1035 outermost = NULL; 1036 } 1037 /* Make sure to note always_executed_in for stores to make 1038 store-motion work. */ 1039 else if (stmt_makes_single_store (stmt)) 1040 { 1041 struct lim_aux_data *lim_data = get_lim_data (stmt); 1042 if (! lim_data) 1043 lim_data = init_lim_data (stmt); 1044 lim_data->always_executed_in = outermost; 1045 } 1046 continue; 1047 } 1048 1049 if (is_gimple_assign (stmt) 1050 && (get_gimple_rhs_class (gimple_assign_rhs_code (stmt)) 1051 == GIMPLE_BINARY_RHS)) 1052 { 1053 tree op0 = gimple_assign_rhs1 (stmt); 1054 tree op1 = gimple_assign_rhs2 (stmt); 1055 class loop *ol1 = outermost_invariant_loop (op1, 1056 loop_containing_stmt (stmt)); 1057 1058 /* If divisor is invariant, convert a/b to a*(1/b), allowing reciprocal 1059 to be hoisted out of loop, saving expensive divide. */ 1060 if (pos == MOVE_POSSIBLE 1061 && gimple_assign_rhs_code (stmt) == RDIV_EXPR 1062 && flag_unsafe_math_optimizations 1063 && !flag_trapping_math 1064 && ol1 != NULL 1065 && outermost_invariant_loop (op0, ol1) == NULL) 1066 stmt = rewrite_reciprocal (&bsi); 1067 1068 /* If the shift count is invariant, convert (A >> B) & 1 to 1069 A & (1 << B) allowing the bit mask to be hoisted out of the loop 1070 saving an expensive shift. */ 1071 if (pos == MOVE_POSSIBLE 1072 && gimple_assign_rhs_code (stmt) == BIT_AND_EXPR 1073 && integer_onep (op1) 1074 && TREE_CODE (op0) == SSA_NAME 1075 && has_single_use (op0)) 1076 stmt = rewrite_bittest (&bsi); 1077 } 1078 1079 lim_data = get_lim_data (stmt); 1080 if (! lim_data) 1081 lim_data = init_lim_data (stmt); 1082 lim_data->always_executed_in = outermost; 1083 1084 if (maybe_never && pos == MOVE_PRESERVE_EXECUTION) 1085 continue; 1086 1087 if (!determine_max_movement (stmt, pos == MOVE_PRESERVE_EXECUTION)) 1088 { 1089 lim_data->max_loop = NULL; 1090 continue; 1091 } 1092 1093 if (dump_file && (dump_flags & TDF_DETAILS)) 1094 { 1095 print_gimple_stmt (dump_file, stmt, 2); 1096 fprintf (dump_file, " invariant up to level %d, cost %d.\n\n", 1097 loop_depth (lim_data->max_loop), 1098 lim_data->cost); 1099 } 1100 1101 if (lim_data->cost >= LIM_EXPENSIVE) 1102 set_profitable_level (stmt); 1103 } 1104 return NULL; 1105 } 1106 1107 /* Hoist the statements in basic block BB out of the loops prescribed by 1108 data stored in LIM_DATA structures associated with each statement. Callback 1109 for walk_dominator_tree. */ 1110 1111 unsigned int 1112 move_computations_worker (basic_block bb) 1113 { 1114 class loop *level; 1115 unsigned cost = 0; 1116 struct lim_aux_data *lim_data; 1117 unsigned int todo = 0; 1118 1119 if (!loop_outer (bb->loop_father)) 1120 return todo; 1121 1122 for (gphi_iterator bsi = gsi_start_phis (bb); !gsi_end_p (bsi); ) 1123 { 1124 gassign *new_stmt; 1125 gphi *stmt = bsi.phi (); 1126 1127 lim_data = get_lim_data (stmt); 1128 if (lim_data == NULL) 1129 { 1130 gsi_next (&bsi); 1131 continue; 1132 } 1133 1134 cost = lim_data->cost; 1135 level = lim_data->tgt_loop; 1136 clear_lim_data (stmt); 1137 1138 if (!level) 1139 { 1140 gsi_next (&bsi); 1141 continue; 1142 } 1143 1144 if (dump_file && (dump_flags & TDF_DETAILS)) 1145 { 1146 fprintf (dump_file, "Moving PHI node\n"); 1147 print_gimple_stmt (dump_file, stmt, 0); 1148 fprintf (dump_file, "(cost %u) out of loop %d.\n\n", 1149 cost, level->num); 1150 } 1151 1152 if (gimple_phi_num_args (stmt) == 1) 1153 { 1154 tree arg = PHI_ARG_DEF (stmt, 0); 1155 new_stmt = gimple_build_assign (gimple_phi_result (stmt), 1156 TREE_CODE (arg), arg); 1157 } 1158 else 1159 { 1160 basic_block dom = get_immediate_dominator (CDI_DOMINATORS, bb); 1161 gimple *cond = gsi_stmt (gsi_last_bb (dom)); 1162 tree arg0 = NULL_TREE, arg1 = NULL_TREE, t; 1163 /* Get the PHI arguments corresponding to the true and false 1164 edges of COND. */ 1165 extract_true_false_args_from_phi (dom, stmt, &arg0, &arg1); 1166 gcc_assert (arg0 && arg1); 1167 t = build2 (gimple_cond_code (cond), boolean_type_node, 1168 gimple_cond_lhs (cond), gimple_cond_rhs (cond)); 1169 new_stmt = gimple_build_assign (gimple_phi_result (stmt), 1170 COND_EXPR, t, arg0, arg1); 1171 todo |= TODO_cleanup_cfg; 1172 } 1173 if (!ALWAYS_EXECUTED_IN (bb) 1174 || (ALWAYS_EXECUTED_IN (bb) != level 1175 && !flow_loop_nested_p (ALWAYS_EXECUTED_IN (bb), level))) 1176 reset_flow_sensitive_info (gimple_assign_lhs (new_stmt)); 1177 gsi_insert_on_edge (loop_preheader_edge (level), new_stmt); 1178 remove_phi_node (&bsi, false); 1179 } 1180 1181 for (gimple_stmt_iterator bsi = gsi_start_bb (bb); !gsi_end_p (bsi); ) 1182 { 1183 edge e; 1184 1185 gimple *stmt = gsi_stmt (bsi); 1186 1187 lim_data = get_lim_data (stmt); 1188 if (lim_data == NULL) 1189 { 1190 gsi_next (&bsi); 1191 continue; 1192 } 1193 1194 cost = lim_data->cost; 1195 level = lim_data->tgt_loop; 1196 clear_lim_data (stmt); 1197 1198 if (!level) 1199 { 1200 gsi_next (&bsi); 1201 continue; 1202 } 1203 1204 /* We do not really want to move conditionals out of the loop; we just 1205 placed it here to force its operands to be moved if necessary. */ 1206 if (gimple_code (stmt) == GIMPLE_COND) 1207 continue; 1208 1209 if (dump_file && (dump_flags & TDF_DETAILS)) 1210 { 1211 fprintf (dump_file, "Moving statement\n"); 1212 print_gimple_stmt (dump_file, stmt, 0); 1213 fprintf (dump_file, "(cost %u) out of loop %d.\n\n", 1214 cost, level->num); 1215 } 1216 1217 e = loop_preheader_edge (level); 1218 gcc_assert (!gimple_vdef (stmt)); 1219 if (gimple_vuse (stmt)) 1220 { 1221 /* The new VUSE is the one from the virtual PHI in the loop 1222 header or the one already present. */ 1223 gphi_iterator gsi2; 1224 for (gsi2 = gsi_start_phis (e->dest); 1225 !gsi_end_p (gsi2); gsi_next (&gsi2)) 1226 { 1227 gphi *phi = gsi2.phi (); 1228 if (virtual_operand_p (gimple_phi_result (phi))) 1229 { 1230 SET_USE (gimple_vuse_op (stmt), 1231 PHI_ARG_DEF_FROM_EDGE (phi, e)); 1232 break; 1233 } 1234 } 1235 } 1236 gsi_remove (&bsi, false); 1237 if (gimple_has_lhs (stmt) 1238 && TREE_CODE (gimple_get_lhs (stmt)) == SSA_NAME 1239 && (!ALWAYS_EXECUTED_IN (bb) 1240 || !(ALWAYS_EXECUTED_IN (bb) == level 1241 || flow_loop_nested_p (ALWAYS_EXECUTED_IN (bb), level)))) 1242 reset_flow_sensitive_info (gimple_get_lhs (stmt)); 1243 /* In case this is a stmt that is not unconditionally executed 1244 when the target loop header is executed and the stmt may 1245 invoke undefined integer or pointer overflow rewrite it to 1246 unsigned arithmetic. */ 1247 if (is_gimple_assign (stmt) 1248 && INTEGRAL_TYPE_P (TREE_TYPE (gimple_assign_lhs (stmt))) 1249 && TYPE_OVERFLOW_UNDEFINED (TREE_TYPE (gimple_assign_lhs (stmt))) 1250 && arith_code_with_undefined_signed_overflow 1251 (gimple_assign_rhs_code (stmt)) 1252 && (!ALWAYS_EXECUTED_IN (bb) 1253 || !(ALWAYS_EXECUTED_IN (bb) == level 1254 || flow_loop_nested_p (ALWAYS_EXECUTED_IN (bb), level)))) 1255 gsi_insert_seq_on_edge (e, rewrite_to_defined_overflow (stmt)); 1256 else 1257 gsi_insert_on_edge (e, stmt); 1258 } 1259 1260 return todo; 1261 } 1262 1263 /* Hoist the statements out of the loops prescribed by data stored in 1264 LIM_DATA structures associated with each statement.*/ 1265 1266 static unsigned int 1267 move_computations (void) 1268 { 1269 int *rpo = XNEWVEC (int, last_basic_block_for_fn (cfun)); 1270 int n = pre_and_rev_post_order_compute_fn (cfun, NULL, rpo, false); 1271 unsigned todo = 0; 1272 1273 for (int i = 0; i < n; ++i) 1274 todo |= move_computations_worker (BASIC_BLOCK_FOR_FN (cfun, rpo[i])); 1275 1276 free (rpo); 1277 1278 gsi_commit_edge_inserts (); 1279 if (need_ssa_update_p (cfun)) 1280 rewrite_into_loop_closed_ssa (NULL, TODO_update_ssa); 1281 1282 return todo; 1283 } 1284 1285 /* Checks whether the statement defining variable *INDEX can be hoisted 1286 out of the loop passed in DATA. Callback for for_each_index. */ 1287 1288 static bool 1289 may_move_till (tree ref, tree *index, void *data) 1290 { 1291 class loop *loop = (class loop *) data, *max_loop; 1292 1293 /* If REF is an array reference, check also that the step and the lower 1294 bound is invariant in LOOP. */ 1295 if (TREE_CODE (ref) == ARRAY_REF) 1296 { 1297 tree step = TREE_OPERAND (ref, 3); 1298 tree lbound = TREE_OPERAND (ref, 2); 1299 1300 max_loop = outermost_invariant_loop (step, loop); 1301 if (!max_loop) 1302 return false; 1303 1304 max_loop = outermost_invariant_loop (lbound, loop); 1305 if (!max_loop) 1306 return false; 1307 } 1308 1309 max_loop = outermost_invariant_loop (*index, loop); 1310 if (!max_loop) 1311 return false; 1312 1313 return true; 1314 } 1315 1316 /* If OP is SSA NAME, force the statement that defines it to be 1317 moved out of the LOOP. ORIG_LOOP is the loop in that EXPR is used. */ 1318 1319 static void 1320 force_move_till_op (tree op, class loop *orig_loop, class loop *loop) 1321 { 1322 gimple *stmt; 1323 1324 if (!op 1325 || is_gimple_min_invariant (op)) 1326 return; 1327 1328 gcc_assert (TREE_CODE (op) == SSA_NAME); 1329 1330 stmt = SSA_NAME_DEF_STMT (op); 1331 if (gimple_nop_p (stmt)) 1332 return; 1333 1334 set_level (stmt, orig_loop, loop); 1335 } 1336 1337 /* Forces statement defining invariants in REF (and *INDEX) to be moved out of 1338 the LOOP. The reference REF is used in the loop ORIG_LOOP. Callback for 1339 for_each_index. */ 1340 1341 struct fmt_data 1342 { 1343 class loop *loop; 1344 class loop *orig_loop; 1345 }; 1346 1347 static bool 1348 force_move_till (tree ref, tree *index, void *data) 1349 { 1350 struct fmt_data *fmt_data = (struct fmt_data *) data; 1351 1352 if (TREE_CODE (ref) == ARRAY_REF) 1353 { 1354 tree step = TREE_OPERAND (ref, 3); 1355 tree lbound = TREE_OPERAND (ref, 2); 1356 1357 force_move_till_op (step, fmt_data->orig_loop, fmt_data->loop); 1358 force_move_till_op (lbound, fmt_data->orig_loop, fmt_data->loop); 1359 } 1360 1361 force_move_till_op (*index, fmt_data->orig_loop, fmt_data->loop); 1362 1363 return true; 1364 } 1365 1366 /* A function to free the mem_ref object OBJ. */ 1367 1368 static void 1369 memref_free (class im_mem_ref *mem) 1370 { 1371 mem->accesses_in_loop.release (); 1372 } 1373 1374 /* Allocates and returns a memory reference description for MEM whose hash 1375 value is HASH and id is ID. */ 1376 1377 static im_mem_ref * 1378 mem_ref_alloc (ao_ref *mem, unsigned hash, unsigned id) 1379 { 1380 im_mem_ref *ref = XOBNEW (&mem_ref_obstack, class im_mem_ref); 1381 if (mem) 1382 ref->mem = *mem; 1383 else 1384 ao_ref_init (&ref->mem, error_mark_node); 1385 ref->id = id; 1386 ref->ref_canonical = false; 1387 ref->ref_decomposed = false; 1388 ref->hash = hash; 1389 ref->stored = NULL; 1390 bitmap_initialize (&ref->indep_loop, &lim_bitmap_obstack); 1391 bitmap_initialize (&ref->dep_loop, &lim_bitmap_obstack); 1392 ref->accesses_in_loop.create (1); 1393 1394 return ref; 1395 } 1396 1397 /* Records memory reference location *LOC in LOOP to the memory reference 1398 description REF. The reference occurs in statement STMT. */ 1399 1400 static void 1401 record_mem_ref_loc (im_mem_ref *ref, gimple *stmt, tree *loc) 1402 { 1403 mem_ref_loc aref; 1404 aref.stmt = stmt; 1405 aref.ref = loc; 1406 ref->accesses_in_loop.safe_push (aref); 1407 } 1408 1409 /* Set the LOOP bit in REF stored bitmap and allocate that if 1410 necessary. Return whether a bit was changed. */ 1411 1412 static bool 1413 set_ref_stored_in_loop (im_mem_ref *ref, class loop *loop) 1414 { 1415 if (!ref->stored) 1416 ref->stored = BITMAP_ALLOC (&lim_bitmap_obstack); 1417 return bitmap_set_bit (ref->stored, loop->num); 1418 } 1419 1420 /* Marks reference REF as stored in LOOP. */ 1421 1422 static void 1423 mark_ref_stored (im_mem_ref *ref, class loop *loop) 1424 { 1425 while (loop != current_loops->tree_root 1426 && set_ref_stored_in_loop (ref, loop)) 1427 loop = loop_outer (loop); 1428 } 1429 1430 /* Gathers memory references in statement STMT in LOOP, storing the 1431 information about them in the memory_accesses structure. Marks 1432 the vops accessed through unrecognized statements there as 1433 well. */ 1434 1435 static void 1436 gather_mem_refs_stmt (class loop *loop, gimple *stmt) 1437 { 1438 tree *mem = NULL; 1439 hashval_t hash; 1440 im_mem_ref **slot; 1441 im_mem_ref *ref; 1442 bool is_stored; 1443 unsigned id; 1444 1445 if (!gimple_vuse (stmt)) 1446 return; 1447 1448 mem = simple_mem_ref_in_stmt (stmt, &is_stored); 1449 if (!mem) 1450 { 1451 /* We use the shared mem_ref for all unanalyzable refs. */ 1452 id = UNANALYZABLE_MEM_ID; 1453 ref = memory_accesses.refs_list[id]; 1454 if (dump_file && (dump_flags & TDF_DETAILS)) 1455 { 1456 fprintf (dump_file, "Unanalyzed memory reference %u: ", id); 1457 print_gimple_stmt (dump_file, stmt, 0, TDF_SLIM); 1458 } 1459 is_stored = gimple_vdef (stmt); 1460 } 1461 else 1462 { 1463 /* We are looking for equal refs that might differ in structure 1464 such as a.b vs. MEM[&a + 4]. So we key off the ao_ref but 1465 make sure we can canonicalize the ref in the hashtable if 1466 non-operand_equal_p refs are found. For the lookup we mark 1467 the case we want strict equality with aor.max_size == -1. */ 1468 ao_ref aor; 1469 ao_ref_init (&aor, *mem); 1470 ao_ref_base (&aor); 1471 ao_ref_alias_set (&aor); 1472 HOST_WIDE_INT offset, size, max_size; 1473 poly_int64 saved_maxsize = aor.max_size, mem_off; 1474 tree mem_base; 1475 bool ref_decomposed; 1476 if (aor.max_size_known_p () 1477 && aor.offset.is_constant (&offset) 1478 && aor.size.is_constant (&size) 1479 && aor.max_size.is_constant (&max_size) 1480 && size == max_size 1481 && (size % BITS_PER_UNIT) == 0 1482 /* We're canonicalizing to a MEM where TYPE_SIZE specifies the 1483 size. Make sure this is consistent with the extraction. */ 1484 && poly_int_tree_p (TYPE_SIZE (TREE_TYPE (*mem))) 1485 && known_eq (wi::to_poly_offset (TYPE_SIZE (TREE_TYPE (*mem))), 1486 aor.size) 1487 && (mem_base = get_addr_base_and_unit_offset (aor.ref, &mem_off))) 1488 { 1489 ref_decomposed = true; 1490 hash = iterative_hash_expr (ao_ref_base (&aor), 0); 1491 hash = iterative_hash_host_wide_int (offset, hash); 1492 hash = iterative_hash_host_wide_int (size, hash); 1493 } 1494 else 1495 { 1496 ref_decomposed = false; 1497 hash = iterative_hash_expr (aor.ref, 0); 1498 aor.max_size = -1; 1499 } 1500 slot = memory_accesses.refs->find_slot_with_hash (&aor, hash, INSERT); 1501 aor.max_size = saved_maxsize; 1502 if (*slot) 1503 { 1504 if (!(*slot)->ref_canonical 1505 && !operand_equal_p (*mem, (*slot)->mem.ref, 0)) 1506 { 1507 /* If we didn't yet canonicalize the hashtable ref (which 1508 we'll end up using for code insertion) and hit a second 1509 equal ref that is not structurally equivalent create 1510 a canonical ref which is a bare MEM_REF. */ 1511 if (TREE_CODE (*mem) == MEM_REF 1512 || TREE_CODE (*mem) == TARGET_MEM_REF) 1513 { 1514 (*slot)->mem.ref = *mem; 1515 (*slot)->mem.base_alias_set = ao_ref_base_alias_set (&aor); 1516 } 1517 else 1518 { 1519 tree ref_alias_type = reference_alias_ptr_type (*mem); 1520 unsigned int ref_align = get_object_alignment (*mem); 1521 tree ref_type = TREE_TYPE (*mem); 1522 tree tmp = build1 (ADDR_EXPR, ptr_type_node, 1523 unshare_expr (mem_base)); 1524 if (TYPE_ALIGN (ref_type) != ref_align) 1525 ref_type = build_aligned_type (ref_type, ref_align); 1526 (*slot)->mem.ref 1527 = fold_build2 (MEM_REF, ref_type, tmp, 1528 build_int_cst (ref_alias_type, mem_off)); 1529 if ((*slot)->mem.volatile_p) 1530 TREE_THIS_VOLATILE ((*slot)->mem.ref) = 1; 1531 gcc_checking_assert (TREE_CODE ((*slot)->mem.ref) == MEM_REF 1532 && is_gimple_mem_ref_addr 1533 (TREE_OPERAND ((*slot)->mem.ref, 1534 0))); 1535 (*slot)->mem.base_alias_set = (*slot)->mem.ref_alias_set; 1536 } 1537 (*slot)->ref_canonical = true; 1538 } 1539 ref = *slot; 1540 id = ref->id; 1541 } 1542 else 1543 { 1544 id = memory_accesses.refs_list.length (); 1545 ref = mem_ref_alloc (&aor, hash, id); 1546 ref->ref_decomposed = ref_decomposed; 1547 memory_accesses.refs_list.safe_push (ref); 1548 *slot = ref; 1549 1550 if (dump_file && (dump_flags & TDF_DETAILS)) 1551 { 1552 fprintf (dump_file, "Memory reference %u: ", id); 1553 print_generic_expr (dump_file, ref->mem.ref, TDF_SLIM); 1554 fprintf (dump_file, "\n"); 1555 } 1556 } 1557 1558 record_mem_ref_loc (ref, stmt, mem); 1559 } 1560 bitmap_set_bit (&memory_accesses.refs_in_loop[loop->num], ref->id); 1561 if (is_stored) 1562 { 1563 bitmap_set_bit (&memory_accesses.refs_stored_in_loop[loop->num], ref->id); 1564 mark_ref_stored (ref, loop); 1565 } 1566 init_lim_data (stmt)->ref = ref->id; 1567 return; 1568 } 1569 1570 static unsigned *bb_loop_postorder; 1571 1572 /* qsort sort function to sort blocks after their loop fathers postorder. */ 1573 1574 static int 1575 sort_bbs_in_loop_postorder_cmp (const void *bb1_, const void *bb2_, 1576 void *bb_loop_postorder_) 1577 { 1578 unsigned *bb_loop_postorder = (unsigned *)bb_loop_postorder_; 1579 basic_block bb1 = *(const basic_block *)bb1_; 1580 basic_block bb2 = *(const basic_block *)bb2_; 1581 class loop *loop1 = bb1->loop_father; 1582 class loop *loop2 = bb2->loop_father; 1583 if (loop1->num == loop2->num) 1584 return bb1->index - bb2->index; 1585 return bb_loop_postorder[loop1->num] < bb_loop_postorder[loop2->num] ? -1 : 1; 1586 } 1587 1588 /* qsort sort function to sort ref locs after their loop fathers postorder. */ 1589 1590 static int 1591 sort_locs_in_loop_postorder_cmp (const void *loc1_, const void *loc2_, 1592 void *bb_loop_postorder_) 1593 { 1594 unsigned *bb_loop_postorder = (unsigned *)bb_loop_postorder_; 1595 const mem_ref_loc *loc1 = (const mem_ref_loc *)loc1_; 1596 const mem_ref_loc *loc2 = (const mem_ref_loc *)loc2_; 1597 class loop *loop1 = gimple_bb (loc1->stmt)->loop_father; 1598 class loop *loop2 = gimple_bb (loc2->stmt)->loop_father; 1599 if (loop1->num == loop2->num) 1600 return 0; 1601 return bb_loop_postorder[loop1->num] < bb_loop_postorder[loop2->num] ? -1 : 1; 1602 } 1603 1604 /* Gathers memory references in loops. */ 1605 1606 static void 1607 analyze_memory_references (void) 1608 { 1609 gimple_stmt_iterator bsi; 1610 basic_block bb, *bbs; 1611 class loop *loop, *outer; 1612 unsigned i, n; 1613 1614 /* Collect all basic-blocks in loops and sort them after their 1615 loops postorder. */ 1616 i = 0; 1617 bbs = XNEWVEC (basic_block, n_basic_blocks_for_fn (cfun) - NUM_FIXED_BLOCKS); 1618 FOR_EACH_BB_FN (bb, cfun) 1619 if (bb->loop_father != current_loops->tree_root) 1620 bbs[i++] = bb; 1621 n = i; 1622 gcc_sort_r (bbs, n, sizeof (basic_block), sort_bbs_in_loop_postorder_cmp, 1623 bb_loop_postorder); 1624 1625 /* Visit blocks in loop postorder and assign mem-ref IDs in that order. 1626 That results in better locality for all the bitmaps. */ 1627 for (i = 0; i < n; ++i) 1628 { 1629 basic_block bb = bbs[i]; 1630 for (bsi = gsi_start_bb (bb); !gsi_end_p (bsi); gsi_next (&bsi)) 1631 gather_mem_refs_stmt (bb->loop_father, gsi_stmt (bsi)); 1632 } 1633 1634 /* Sort the location list of gathered memory references after their 1635 loop postorder number. */ 1636 im_mem_ref *ref; 1637 FOR_EACH_VEC_ELT (memory_accesses.refs_list, i, ref) 1638 ref->accesses_in_loop.sort (sort_locs_in_loop_postorder_cmp, 1639 bb_loop_postorder); 1640 1641 free (bbs); 1642 1643 /* Propagate the information about accessed memory references up 1644 the loop hierarchy. */ 1645 FOR_EACH_LOOP (loop, LI_FROM_INNERMOST) 1646 { 1647 /* Finalize the overall touched references (including subloops). */ 1648 bitmap_ior_into (&memory_accesses.all_refs_stored_in_loop[loop->num], 1649 &memory_accesses.refs_stored_in_loop[loop->num]); 1650 1651 /* Propagate the information about accessed memory references up 1652 the loop hierarchy. */ 1653 outer = loop_outer (loop); 1654 if (outer == current_loops->tree_root) 1655 continue; 1656 1657 bitmap_ior_into (&memory_accesses.all_refs_stored_in_loop[outer->num], 1658 &memory_accesses.all_refs_stored_in_loop[loop->num]); 1659 } 1660 } 1661 1662 /* Returns true if MEM1 and MEM2 may alias. TTAE_CACHE is used as a cache in 1663 tree_to_aff_combination_expand. */ 1664 1665 static bool 1666 mem_refs_may_alias_p (im_mem_ref *mem1, im_mem_ref *mem2, 1667 hash_map<tree, name_expansion *> **ttae_cache) 1668 { 1669 /* Perform BASE + OFFSET analysis -- if MEM1 and MEM2 are based on the same 1670 object and their offset differ in such a way that the locations cannot 1671 overlap, then they cannot alias. */ 1672 poly_widest_int size1, size2; 1673 aff_tree off1, off2; 1674 1675 /* Perform basic offset and type-based disambiguation. */ 1676 if (!refs_may_alias_p_1 (&mem1->mem, &mem2->mem, true)) 1677 return false; 1678 1679 /* The expansion of addresses may be a bit expensive, thus we only do 1680 the check at -O2 and higher optimization levels. */ 1681 if (optimize < 2) 1682 return true; 1683 1684 get_inner_reference_aff (mem1->mem.ref, &off1, &size1); 1685 get_inner_reference_aff (mem2->mem.ref, &off2, &size2); 1686 aff_combination_expand (&off1, ttae_cache); 1687 aff_combination_expand (&off2, ttae_cache); 1688 aff_combination_scale (&off1, -1); 1689 aff_combination_add (&off2, &off1); 1690 1691 if (aff_comb_cannot_overlap_p (&off2, size1, size2)) 1692 return false; 1693 1694 return true; 1695 } 1696 1697 /* Compare function for bsearch searching for reference locations 1698 in a loop. */ 1699 1700 static int 1701 find_ref_loc_in_loop_cmp (const void *loop_, const void *loc_, 1702 void *bb_loop_postorder_) 1703 { 1704 unsigned *bb_loop_postorder = (unsigned *)bb_loop_postorder_; 1705 class loop *loop = (class loop *)const_cast<void *>(loop_); 1706 mem_ref_loc *loc = (mem_ref_loc *)const_cast<void *>(loc_); 1707 class loop *loc_loop = gimple_bb (loc->stmt)->loop_father; 1708 if (loop->num == loc_loop->num 1709 || flow_loop_nested_p (loop, loc_loop)) 1710 return 0; 1711 return (bb_loop_postorder[loop->num] < bb_loop_postorder[loc_loop->num] 1712 ? -1 : 1); 1713 } 1714 1715 /* Iterates over all locations of REF in LOOP and its subloops calling 1716 fn.operator() with the location as argument. When that operator 1717 returns true the iteration is stopped and true is returned. 1718 Otherwise false is returned. */ 1719 1720 template <typename FN> 1721 static bool 1722 for_all_locs_in_loop (class loop *loop, im_mem_ref *ref, FN fn) 1723 { 1724 unsigned i; 1725 mem_ref_loc *loc; 1726 1727 /* Search for the cluster of locs in the accesses_in_loop vector 1728 which is sorted after postorder index of the loop father. */ 1729 loc = ref->accesses_in_loop.bsearch (loop, find_ref_loc_in_loop_cmp, 1730 bb_loop_postorder); 1731 if (!loc) 1732 return false; 1733 1734 /* We have found one location inside loop or its sub-loops. Iterate 1735 both forward and backward to cover the whole cluster. */ 1736 i = loc - ref->accesses_in_loop.address (); 1737 while (i > 0) 1738 { 1739 --i; 1740 mem_ref_loc *l = &ref->accesses_in_loop[i]; 1741 if (!flow_bb_inside_loop_p (loop, gimple_bb (l->stmt))) 1742 break; 1743 if (fn (l)) 1744 return true; 1745 } 1746 for (i = loc - ref->accesses_in_loop.address (); 1747 i < ref->accesses_in_loop.length (); ++i) 1748 { 1749 mem_ref_loc *l = &ref->accesses_in_loop[i]; 1750 if (!flow_bb_inside_loop_p (loop, gimple_bb (l->stmt))) 1751 break; 1752 if (fn (l)) 1753 return true; 1754 } 1755 1756 return false; 1757 } 1758 1759 /* Rewrites location LOC by TMP_VAR. */ 1760 1761 class rewrite_mem_ref_loc 1762 { 1763 public: 1764 rewrite_mem_ref_loc (tree tmp_var_) : tmp_var (tmp_var_) {} 1765 bool operator () (mem_ref_loc *loc); 1766 tree tmp_var; 1767 }; 1768 1769 bool 1770 rewrite_mem_ref_loc::operator () (mem_ref_loc *loc) 1771 { 1772 *loc->ref = tmp_var; 1773 update_stmt (loc->stmt); 1774 return false; 1775 } 1776 1777 /* Rewrites all references to REF in LOOP by variable TMP_VAR. */ 1778 1779 static void 1780 rewrite_mem_refs (class loop *loop, im_mem_ref *ref, tree tmp_var) 1781 { 1782 for_all_locs_in_loop (loop, ref, rewrite_mem_ref_loc (tmp_var)); 1783 } 1784 1785 /* Stores the first reference location in LOCP. */ 1786 1787 class first_mem_ref_loc_1 1788 { 1789 public: 1790 first_mem_ref_loc_1 (mem_ref_loc **locp_) : locp (locp_) {} 1791 bool operator () (mem_ref_loc *loc); 1792 mem_ref_loc **locp; 1793 }; 1794 1795 bool 1796 first_mem_ref_loc_1::operator () (mem_ref_loc *loc) 1797 { 1798 *locp = loc; 1799 return true; 1800 } 1801 1802 /* Returns the first reference location to REF in LOOP. */ 1803 1804 static mem_ref_loc * 1805 first_mem_ref_loc (class loop *loop, im_mem_ref *ref) 1806 { 1807 mem_ref_loc *locp = NULL; 1808 for_all_locs_in_loop (loop, ref, first_mem_ref_loc_1 (&locp)); 1809 return locp; 1810 } 1811 1812 struct prev_flag_edges { 1813 /* Edge to insert new flag comparison code. */ 1814 edge append_cond_position; 1815 1816 /* Edge for fall through from previous flag comparison. */ 1817 edge last_cond_fallthru; 1818 }; 1819 1820 /* Helper function for execute_sm. Emit code to store TMP_VAR into 1821 MEM along edge EX. 1822 1823 The store is only done if MEM has changed. We do this so no 1824 changes to MEM occur on code paths that did not originally store 1825 into it. 1826 1827 The common case for execute_sm will transform: 1828 1829 for (...) { 1830 if (foo) 1831 stuff; 1832 else 1833 MEM = TMP_VAR; 1834 } 1835 1836 into: 1837 1838 lsm = MEM; 1839 for (...) { 1840 if (foo) 1841 stuff; 1842 else 1843 lsm = TMP_VAR; 1844 } 1845 MEM = lsm; 1846 1847 This function will generate: 1848 1849 lsm = MEM; 1850 1851 lsm_flag = false; 1852 ... 1853 for (...) { 1854 if (foo) 1855 stuff; 1856 else { 1857 lsm = TMP_VAR; 1858 lsm_flag = true; 1859 } 1860 } 1861 if (lsm_flag) <-- 1862 MEM = lsm; <-- 1863 */ 1864 1865 static void 1866 execute_sm_if_changed (edge ex, tree mem, tree tmp_var, tree flag, 1867 edge preheader, hash_set <basic_block> *flag_bbs) 1868 { 1869 basic_block new_bb, then_bb, old_dest; 1870 bool loop_has_only_one_exit; 1871 edge then_old_edge, orig_ex = ex; 1872 gimple_stmt_iterator gsi; 1873 gimple *stmt; 1874 struct prev_flag_edges *prev_edges = (struct prev_flag_edges *) ex->aux; 1875 bool irr = ex->flags & EDGE_IRREDUCIBLE_LOOP; 1876 1877 profile_count count_sum = profile_count::zero (); 1878 int nbbs = 0, ncount = 0; 1879 profile_probability flag_probability = profile_probability::uninitialized (); 1880 1881 /* Flag is set in FLAG_BBS. Determine probability that flag will be true 1882 at loop exit. 1883 1884 This code may look fancy, but it cannot update profile very realistically 1885 because we do not know the probability that flag will be true at given 1886 loop exit. 1887 1888 We look for two interesting extremes 1889 - when exit is dominated by block setting the flag, we know it will 1890 always be true. This is a common case. 1891 - when all blocks setting the flag have very low frequency we know 1892 it will likely be false. 1893 In all other cases we default to 2/3 for flag being true. */ 1894 1895 for (hash_set<basic_block>::iterator it = flag_bbs->begin (); 1896 it != flag_bbs->end (); ++it) 1897 { 1898 if ((*it)->count.initialized_p ()) 1899 count_sum += (*it)->count, ncount ++; 1900 if (dominated_by_p (CDI_DOMINATORS, ex->src, *it)) 1901 flag_probability = profile_probability::always (); 1902 nbbs++; 1903 } 1904 1905 profile_probability cap = profile_probability::always ().apply_scale (2, 3); 1906 1907 if (flag_probability.initialized_p ()) 1908 ; 1909 else if (ncount == nbbs 1910 && preheader->count () >= count_sum && preheader->count ().nonzero_p ()) 1911 { 1912 flag_probability = count_sum.probability_in (preheader->count ()); 1913 if (flag_probability > cap) 1914 flag_probability = cap; 1915 } 1916 1917 if (!flag_probability.initialized_p ()) 1918 flag_probability = cap; 1919 1920 /* ?? Insert store after previous store if applicable. See note 1921 below. */ 1922 if (prev_edges) 1923 ex = prev_edges->append_cond_position; 1924 1925 loop_has_only_one_exit = single_pred_p (ex->dest); 1926 1927 if (loop_has_only_one_exit) 1928 ex = split_block_after_labels (ex->dest); 1929 else 1930 { 1931 for (gphi_iterator gpi = gsi_start_phis (ex->dest); 1932 !gsi_end_p (gpi); gsi_next (&gpi)) 1933 { 1934 gphi *phi = gpi.phi (); 1935 if (virtual_operand_p (gimple_phi_result (phi))) 1936 continue; 1937 1938 /* When the destination has a non-virtual PHI node with multiple 1939 predecessors make sure we preserve the PHI structure by 1940 forcing a forwarder block so that hoisting of that PHI will 1941 still work. */ 1942 split_edge (ex); 1943 break; 1944 } 1945 } 1946 1947 old_dest = ex->dest; 1948 new_bb = split_edge (ex); 1949 then_bb = create_empty_bb (new_bb); 1950 then_bb->count = new_bb->count.apply_probability (flag_probability); 1951 if (irr) 1952 then_bb->flags = BB_IRREDUCIBLE_LOOP; 1953 add_bb_to_loop (then_bb, new_bb->loop_father); 1954 1955 gsi = gsi_start_bb (new_bb); 1956 stmt = gimple_build_cond (NE_EXPR, flag, boolean_false_node, 1957 NULL_TREE, NULL_TREE); 1958 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING); 1959 1960 gsi = gsi_start_bb (then_bb); 1961 /* Insert actual store. */ 1962 stmt = gimple_build_assign (unshare_expr (mem), tmp_var); 1963 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING); 1964 1965 edge e1 = single_succ_edge (new_bb); 1966 edge e2 = make_edge (new_bb, then_bb, 1967 EDGE_TRUE_VALUE | (irr ? EDGE_IRREDUCIBLE_LOOP : 0)); 1968 e2->probability = flag_probability; 1969 1970 e1->flags |= EDGE_FALSE_VALUE | (irr ? EDGE_IRREDUCIBLE_LOOP : 0); 1971 e1->flags &= ~EDGE_FALLTHRU; 1972 1973 e1->probability = flag_probability.invert (); 1974 1975 then_old_edge = make_single_succ_edge (then_bb, old_dest, 1976 EDGE_FALLTHRU | (irr ? EDGE_IRREDUCIBLE_LOOP : 0)); 1977 1978 set_immediate_dominator (CDI_DOMINATORS, then_bb, new_bb); 1979 1980 if (prev_edges) 1981 { 1982 basic_block prevbb = prev_edges->last_cond_fallthru->src; 1983 redirect_edge_succ (prev_edges->last_cond_fallthru, new_bb); 1984 set_immediate_dominator (CDI_DOMINATORS, new_bb, prevbb); 1985 set_immediate_dominator (CDI_DOMINATORS, old_dest, 1986 recompute_dominator (CDI_DOMINATORS, old_dest)); 1987 } 1988 1989 /* ?? Because stores may alias, they must happen in the exact 1990 sequence they originally happened. Save the position right after 1991 the (_lsm) store we just created so we can continue appending after 1992 it and maintain the original order. */ 1993 { 1994 struct prev_flag_edges *p; 1995 1996 if (orig_ex->aux) 1997 orig_ex->aux = NULL; 1998 alloc_aux_for_edge (orig_ex, sizeof (struct prev_flag_edges)); 1999 p = (struct prev_flag_edges *) orig_ex->aux; 2000 p->append_cond_position = then_old_edge; 2001 p->last_cond_fallthru = find_edge (new_bb, old_dest); 2002 orig_ex->aux = (void *) p; 2003 } 2004 2005 if (!loop_has_only_one_exit) 2006 for (gphi_iterator gpi = gsi_start_phis (old_dest); 2007 !gsi_end_p (gpi); gsi_next (&gpi)) 2008 { 2009 gphi *phi = gpi.phi (); 2010 unsigned i; 2011 2012 for (i = 0; i < gimple_phi_num_args (phi); i++) 2013 if (gimple_phi_arg_edge (phi, i)->src == new_bb) 2014 { 2015 tree arg = gimple_phi_arg_def (phi, i); 2016 add_phi_arg (phi, arg, then_old_edge, UNKNOWN_LOCATION); 2017 update_stmt (phi); 2018 } 2019 } 2020 } 2021 2022 /* When REF is set on the location, set flag indicating the store. */ 2023 2024 class sm_set_flag_if_changed 2025 { 2026 public: 2027 sm_set_flag_if_changed (tree flag_, hash_set <basic_block> *bbs_) 2028 : flag (flag_), bbs (bbs_) {} 2029 bool operator () (mem_ref_loc *loc); 2030 tree flag; 2031 hash_set <basic_block> *bbs; 2032 }; 2033 2034 bool 2035 sm_set_flag_if_changed::operator () (mem_ref_loc *loc) 2036 { 2037 /* Only set the flag for writes. */ 2038 if (is_gimple_assign (loc->stmt) 2039 && gimple_assign_lhs_ptr (loc->stmt) == loc->ref) 2040 { 2041 gimple_stmt_iterator gsi = gsi_for_stmt (loc->stmt); 2042 gimple *stmt = gimple_build_assign (flag, boolean_true_node); 2043 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING); 2044 bbs->add (gimple_bb (stmt)); 2045 } 2046 return false; 2047 } 2048 2049 /* Helper function for execute_sm. On every location where REF is 2050 set, set an appropriate flag indicating the store. */ 2051 2052 static tree 2053 execute_sm_if_changed_flag_set (class loop *loop, im_mem_ref *ref, 2054 hash_set <basic_block> *bbs) 2055 { 2056 tree flag; 2057 char *str = get_lsm_tmp_name (ref->mem.ref, ~0, "_flag"); 2058 flag = create_tmp_reg (boolean_type_node, str); 2059 for_all_locs_in_loop (loop, ref, sm_set_flag_if_changed (flag, bbs)); 2060 return flag; 2061 } 2062 2063 /* Executes store motion of memory reference REF from LOOP. 2064 Exits from the LOOP are stored in EXITS. The initialization of the 2065 temporary variable is put to the preheader of the loop, and assignments 2066 to the reference from the temporary variable are emitted to exits. */ 2067 2068 static void 2069 execute_sm (class loop *loop, vec<edge> exits, im_mem_ref *ref) 2070 { 2071 tree tmp_var, store_flag = NULL_TREE; 2072 unsigned i; 2073 gassign *load; 2074 struct fmt_data fmt_data; 2075 edge ex; 2076 struct lim_aux_data *lim_data; 2077 bool multi_threaded_model_p = false; 2078 gimple_stmt_iterator gsi; 2079 hash_set<basic_block> flag_bbs; 2080 2081 if (dump_file && (dump_flags & TDF_DETAILS)) 2082 { 2083 fprintf (dump_file, "Executing store motion of "); 2084 print_generic_expr (dump_file, ref->mem.ref); 2085 fprintf (dump_file, " from loop %d\n", loop->num); 2086 } 2087 2088 tmp_var = create_tmp_reg (TREE_TYPE (ref->mem.ref), 2089 get_lsm_tmp_name (ref->mem.ref, ~0)); 2090 2091 fmt_data.loop = loop; 2092 fmt_data.orig_loop = loop; 2093 for_each_index (&ref->mem.ref, force_move_till, &fmt_data); 2094 2095 if (bb_in_transaction (loop_preheader_edge (loop)->src) 2096 || (! flag_store_data_races 2097 && ! ref_always_accessed_p (loop, ref, true))) 2098 multi_threaded_model_p = true; 2099 2100 if (multi_threaded_model_p) 2101 store_flag = execute_sm_if_changed_flag_set (loop, ref, &flag_bbs); 2102 2103 rewrite_mem_refs (loop, ref, tmp_var); 2104 2105 /* Emit the load code on a random exit edge or into the latch if 2106 the loop does not exit, so that we are sure it will be processed 2107 by move_computations after all dependencies. */ 2108 gsi = gsi_for_stmt (first_mem_ref_loc (loop, ref)->stmt); 2109 2110 /* FIXME/TODO: For the multi-threaded variant, we could avoid this 2111 load altogether, since the store is predicated by a flag. We 2112 could, do the load only if it was originally in the loop. */ 2113 load = gimple_build_assign (tmp_var, unshare_expr (ref->mem.ref)); 2114 lim_data = init_lim_data (load); 2115 lim_data->max_loop = loop; 2116 lim_data->tgt_loop = loop; 2117 gsi_insert_before (&gsi, load, GSI_SAME_STMT); 2118 2119 if (multi_threaded_model_p) 2120 { 2121 load = gimple_build_assign (store_flag, boolean_false_node); 2122 lim_data = init_lim_data (load); 2123 lim_data->max_loop = loop; 2124 lim_data->tgt_loop = loop; 2125 gsi_insert_before (&gsi, load, GSI_SAME_STMT); 2126 } 2127 2128 /* Sink the store to every exit from the loop. */ 2129 FOR_EACH_VEC_ELT (exits, i, ex) 2130 if (!multi_threaded_model_p) 2131 { 2132 gassign *store; 2133 store = gimple_build_assign (unshare_expr (ref->mem.ref), tmp_var); 2134 gsi_insert_on_edge (ex, store); 2135 } 2136 else 2137 execute_sm_if_changed (ex, ref->mem.ref, tmp_var, store_flag, 2138 loop_preheader_edge (loop), &flag_bbs); 2139 } 2140 2141 /* Hoists memory references MEM_REFS out of LOOP. EXITS is the list of exit 2142 edges of the LOOP. */ 2143 2144 static void 2145 hoist_memory_references (class loop *loop, bitmap mem_refs, 2146 vec<edge> exits) 2147 { 2148 im_mem_ref *ref; 2149 unsigned i; 2150 bitmap_iterator bi; 2151 2152 EXECUTE_IF_SET_IN_BITMAP (mem_refs, 0, i, bi) 2153 { 2154 ref = memory_accesses.refs_list[i]; 2155 execute_sm (loop, exits, ref); 2156 } 2157 } 2158 2159 class ref_always_accessed 2160 { 2161 public: 2162 ref_always_accessed (class loop *loop_, bool stored_p_) 2163 : loop (loop_), stored_p (stored_p_) {} 2164 bool operator () (mem_ref_loc *loc); 2165 class loop *loop; 2166 bool stored_p; 2167 }; 2168 2169 bool 2170 ref_always_accessed::operator () (mem_ref_loc *loc) 2171 { 2172 class loop *must_exec; 2173 2174 struct lim_aux_data *lim_data = get_lim_data (loc->stmt); 2175 if (!lim_data) 2176 return false; 2177 2178 /* If we require an always executed store make sure the statement 2179 is a store. */ 2180 if (stored_p) 2181 { 2182 tree lhs = gimple_get_lhs (loc->stmt); 2183 if (!lhs 2184 || !(DECL_P (lhs) || REFERENCE_CLASS_P (lhs))) 2185 return false; 2186 } 2187 2188 must_exec = lim_data->always_executed_in; 2189 if (!must_exec) 2190 return false; 2191 2192 if (must_exec == loop 2193 || flow_loop_nested_p (must_exec, loop)) 2194 return true; 2195 2196 return false; 2197 } 2198 2199 /* Returns true if REF is always accessed in LOOP. If STORED_P is true 2200 make sure REF is always stored to in LOOP. */ 2201 2202 static bool 2203 ref_always_accessed_p (class loop *loop, im_mem_ref *ref, bool stored_p) 2204 { 2205 return for_all_locs_in_loop (loop, ref, 2206 ref_always_accessed (loop, stored_p)); 2207 } 2208 2209 /* Returns true if REF1 and REF2 are independent. */ 2210 2211 static bool 2212 refs_independent_p (im_mem_ref *ref1, im_mem_ref *ref2) 2213 { 2214 if (ref1 == ref2) 2215 return true; 2216 2217 if (dump_file && (dump_flags & TDF_DETAILS)) 2218 fprintf (dump_file, "Querying dependency of refs %u and %u: ", 2219 ref1->id, ref2->id); 2220 2221 if (mem_refs_may_alias_p (ref1, ref2, &memory_accesses.ttae_cache)) 2222 { 2223 if (dump_file && (dump_flags & TDF_DETAILS)) 2224 fprintf (dump_file, "dependent.\n"); 2225 return false; 2226 } 2227 else 2228 { 2229 if (dump_file && (dump_flags & TDF_DETAILS)) 2230 fprintf (dump_file, "independent.\n"); 2231 return true; 2232 } 2233 } 2234 2235 /* Mark REF dependent on stores or loads (according to STORED_P) in LOOP 2236 and its super-loops. */ 2237 2238 static void 2239 record_dep_loop (class loop *loop, im_mem_ref *ref, bool stored_p) 2240 { 2241 /* We can propagate dependent-in-loop bits up the loop 2242 hierarchy to all outer loops. */ 2243 while (loop != current_loops->tree_root 2244 && bitmap_set_bit (&ref->dep_loop, LOOP_DEP_BIT (loop->num, stored_p))) 2245 loop = loop_outer (loop); 2246 } 2247 2248 /* Returns true if REF is independent on all other memory 2249 references in LOOP. */ 2250 2251 static bool 2252 ref_indep_loop_p_1 (class loop *loop, im_mem_ref *ref, bool stored_p) 2253 { 2254 stored_p |= (ref->stored && bitmap_bit_p (ref->stored, loop->num)); 2255 2256 bool indep_p = true; 2257 bitmap refs_to_check; 2258 2259 if (stored_p) 2260 refs_to_check = &memory_accesses.refs_in_loop[loop->num]; 2261 else 2262 refs_to_check = &memory_accesses.refs_stored_in_loop[loop->num]; 2263 2264 if (bitmap_bit_p (refs_to_check, UNANALYZABLE_MEM_ID)) 2265 indep_p = false; 2266 else 2267 { 2268 if (bitmap_bit_p (&ref->indep_loop, LOOP_DEP_BIT (loop->num, stored_p))) 2269 return true; 2270 if (bitmap_bit_p (&ref->dep_loop, LOOP_DEP_BIT (loop->num, stored_p))) 2271 return false; 2272 2273 class loop *inner = loop->inner; 2274 while (inner) 2275 { 2276 if (!ref_indep_loop_p_1 (inner, ref, stored_p)) 2277 { 2278 indep_p = false; 2279 break; 2280 } 2281 inner = inner->next; 2282 } 2283 2284 if (indep_p) 2285 { 2286 unsigned i; 2287 bitmap_iterator bi; 2288 EXECUTE_IF_SET_IN_BITMAP (refs_to_check, 0, i, bi) 2289 { 2290 im_mem_ref *aref = memory_accesses.refs_list[i]; 2291 if (!refs_independent_p (ref, aref)) 2292 { 2293 indep_p = false; 2294 break; 2295 } 2296 } 2297 } 2298 } 2299 2300 if (dump_file && (dump_flags & TDF_DETAILS)) 2301 fprintf (dump_file, "Querying dependencies of ref %u in loop %d: %s\n", 2302 ref->id, loop->num, indep_p ? "independent" : "dependent"); 2303 2304 /* Record the computed result in the cache. */ 2305 if (indep_p) 2306 { 2307 if (bitmap_set_bit (&ref->indep_loop, LOOP_DEP_BIT (loop->num, stored_p)) 2308 && stored_p) 2309 { 2310 /* If it's independend against all refs then it's independent 2311 against stores, too. */ 2312 bitmap_set_bit (&ref->indep_loop, LOOP_DEP_BIT (loop->num, false)); 2313 } 2314 } 2315 else 2316 { 2317 record_dep_loop (loop, ref, stored_p); 2318 if (!stored_p) 2319 { 2320 /* If it's dependent against stores it's dependent against 2321 all refs, too. */ 2322 record_dep_loop (loop, ref, true); 2323 } 2324 } 2325 2326 return indep_p; 2327 } 2328 2329 /* Returns true if REF is independent on all other memory references in 2330 LOOP. */ 2331 2332 static bool 2333 ref_indep_loop_p (class loop *loop, im_mem_ref *ref) 2334 { 2335 gcc_checking_assert (MEM_ANALYZABLE (ref)); 2336 2337 return ref_indep_loop_p_1 (loop, ref, false); 2338 } 2339 2340 /* Returns true if we can perform store motion of REF from LOOP. */ 2341 2342 static bool 2343 can_sm_ref_p (class loop *loop, im_mem_ref *ref) 2344 { 2345 tree base; 2346 2347 /* Can't hoist unanalyzable refs. */ 2348 if (!MEM_ANALYZABLE (ref)) 2349 return false; 2350 2351 /* It should be movable. */ 2352 if (!is_gimple_reg_type (TREE_TYPE (ref->mem.ref)) 2353 || TREE_THIS_VOLATILE (ref->mem.ref) 2354 || !for_each_index (&ref->mem.ref, may_move_till, loop)) 2355 return false; 2356 2357 /* If it can throw fail, we do not properly update EH info. */ 2358 if (tree_could_throw_p (ref->mem.ref)) 2359 return false; 2360 2361 /* If it can trap, it must be always executed in LOOP. 2362 Readonly memory locations may trap when storing to them, but 2363 tree_could_trap_p is a predicate for rvalues, so check that 2364 explicitly. */ 2365 base = get_base_address (ref->mem.ref); 2366 if ((tree_could_trap_p (ref->mem.ref) 2367 || (DECL_P (base) && TREE_READONLY (base))) 2368 && !ref_always_accessed_p (loop, ref, true)) 2369 return false; 2370 2371 /* And it must be independent on all other memory references 2372 in LOOP. */ 2373 if (!ref_indep_loop_p (loop, ref)) 2374 return false; 2375 2376 return true; 2377 } 2378 2379 /* Marks the references in LOOP for that store motion should be performed 2380 in REFS_TO_SM. SM_EXECUTED is the set of references for that store 2381 motion was performed in one of the outer loops. */ 2382 2383 static void 2384 find_refs_for_sm (class loop *loop, bitmap sm_executed, bitmap refs_to_sm) 2385 { 2386 bitmap refs = &memory_accesses.all_refs_stored_in_loop[loop->num]; 2387 unsigned i; 2388 bitmap_iterator bi; 2389 im_mem_ref *ref; 2390 2391 EXECUTE_IF_AND_COMPL_IN_BITMAP (refs, sm_executed, 0, i, bi) 2392 { 2393 ref = memory_accesses.refs_list[i]; 2394 if (can_sm_ref_p (loop, ref)) 2395 bitmap_set_bit (refs_to_sm, i); 2396 } 2397 } 2398 2399 /* Checks whether LOOP (with exits stored in EXITS array) is suitable 2400 for a store motion optimization (i.e. whether we can insert statement 2401 on its exits). */ 2402 2403 static bool 2404 loop_suitable_for_sm (class loop *loop ATTRIBUTE_UNUSED, 2405 vec<edge> exits) 2406 { 2407 unsigned i; 2408 edge ex; 2409 2410 FOR_EACH_VEC_ELT (exits, i, ex) 2411 if (ex->flags & (EDGE_ABNORMAL | EDGE_EH)) 2412 return false; 2413 2414 return true; 2415 } 2416 2417 /* Try to perform store motion for all memory references modified inside 2418 LOOP. SM_EXECUTED is the bitmap of the memory references for that 2419 store motion was executed in one of the outer loops. */ 2420 2421 static void 2422 store_motion_loop (class loop *loop, bitmap sm_executed) 2423 { 2424 vec<edge> exits = get_loop_exit_edges (loop); 2425 class loop *subloop; 2426 bitmap sm_in_loop = BITMAP_ALLOC (&lim_bitmap_obstack); 2427 2428 if (loop_suitable_for_sm (loop, exits)) 2429 { 2430 find_refs_for_sm (loop, sm_executed, sm_in_loop); 2431 hoist_memory_references (loop, sm_in_loop, exits); 2432 } 2433 exits.release (); 2434 2435 bitmap_ior_into (sm_executed, sm_in_loop); 2436 for (subloop = loop->inner; subloop != NULL; subloop = subloop->next) 2437 store_motion_loop (subloop, sm_executed); 2438 bitmap_and_compl_into (sm_executed, sm_in_loop); 2439 BITMAP_FREE (sm_in_loop); 2440 } 2441 2442 /* Try to perform store motion for all memory references modified inside 2443 loops. */ 2444 2445 static void 2446 store_motion (void) 2447 { 2448 class loop *loop; 2449 bitmap sm_executed = BITMAP_ALLOC (&lim_bitmap_obstack); 2450 2451 for (loop = current_loops->tree_root->inner; loop != NULL; loop = loop->next) 2452 store_motion_loop (loop, sm_executed); 2453 2454 BITMAP_FREE (sm_executed); 2455 gsi_commit_edge_inserts (); 2456 } 2457 2458 /* Fills ALWAYS_EXECUTED_IN information for basic blocks of LOOP, i.e. 2459 for each such basic block bb records the outermost loop for that execution 2460 of its header implies execution of bb. CONTAINS_CALL is the bitmap of 2461 blocks that contain a nonpure call. */ 2462 2463 static void 2464 fill_always_executed_in_1 (class loop *loop, sbitmap contains_call) 2465 { 2466 basic_block bb = NULL, *bbs, last = NULL; 2467 unsigned i; 2468 edge e; 2469 class loop *inn_loop = loop; 2470 2471 if (ALWAYS_EXECUTED_IN (loop->header) == NULL) 2472 { 2473 bbs = get_loop_body_in_dom_order (loop); 2474 2475 for (i = 0; i < loop->num_nodes; i++) 2476 { 2477 edge_iterator ei; 2478 bb = bbs[i]; 2479 2480 if (dominated_by_p (CDI_DOMINATORS, loop->latch, bb)) 2481 last = bb; 2482 2483 if (bitmap_bit_p (contains_call, bb->index)) 2484 break; 2485 2486 FOR_EACH_EDGE (e, ei, bb->succs) 2487 { 2488 /* If there is an exit from this BB. */ 2489 if (!flow_bb_inside_loop_p (loop, e->dest)) 2490 break; 2491 /* Or we enter a possibly non-finite loop. */ 2492 if (flow_loop_nested_p (bb->loop_father, 2493 e->dest->loop_father) 2494 && ! finite_loop_p (e->dest->loop_father)) 2495 break; 2496 } 2497 if (e) 2498 break; 2499 2500 /* A loop might be infinite (TODO use simple loop analysis 2501 to disprove this if possible). */ 2502 if (bb->flags & BB_IRREDUCIBLE_LOOP) 2503 break; 2504 2505 if (!flow_bb_inside_loop_p (inn_loop, bb)) 2506 break; 2507 2508 if (bb->loop_father->header == bb) 2509 { 2510 if (!dominated_by_p (CDI_DOMINATORS, loop->latch, bb)) 2511 break; 2512 2513 /* In a loop that is always entered we may proceed anyway. 2514 But record that we entered it and stop once we leave it. */ 2515 inn_loop = bb->loop_father; 2516 } 2517 } 2518 2519 while (1) 2520 { 2521 SET_ALWAYS_EXECUTED_IN (last, loop); 2522 if (last == loop->header) 2523 break; 2524 last = get_immediate_dominator (CDI_DOMINATORS, last); 2525 } 2526 2527 free (bbs); 2528 } 2529 2530 for (loop = loop->inner; loop; loop = loop->next) 2531 fill_always_executed_in_1 (loop, contains_call); 2532 } 2533 2534 /* Fills ALWAYS_EXECUTED_IN information for basic blocks, i.e. 2535 for each such basic block bb records the outermost loop for that execution 2536 of its header implies execution of bb. */ 2537 2538 static void 2539 fill_always_executed_in (void) 2540 { 2541 basic_block bb; 2542 class loop *loop; 2543 2544 auto_sbitmap contains_call (last_basic_block_for_fn (cfun)); 2545 bitmap_clear (contains_call); 2546 FOR_EACH_BB_FN (bb, cfun) 2547 { 2548 gimple_stmt_iterator gsi; 2549 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi)) 2550 { 2551 if (nonpure_call_p (gsi_stmt (gsi))) 2552 break; 2553 } 2554 2555 if (!gsi_end_p (gsi)) 2556 bitmap_set_bit (contains_call, bb->index); 2557 } 2558 2559 for (loop = current_loops->tree_root->inner; loop; loop = loop->next) 2560 fill_always_executed_in_1 (loop, contains_call); 2561 } 2562 2563 2564 /* Compute the global information needed by the loop invariant motion pass. */ 2565 2566 static void 2567 tree_ssa_lim_initialize (void) 2568 { 2569 class loop *loop; 2570 unsigned i; 2571 2572 bitmap_obstack_initialize (&lim_bitmap_obstack); 2573 gcc_obstack_init (&mem_ref_obstack); 2574 lim_aux_data_map = new hash_map<gimple *, lim_aux_data *>; 2575 2576 if (flag_tm) 2577 compute_transaction_bits (); 2578 2579 alloc_aux_for_edges (0); 2580 2581 memory_accesses.refs = new hash_table<mem_ref_hasher> (100); 2582 memory_accesses.refs_list.create (100); 2583 /* Allocate a special, unanalyzable mem-ref with ID zero. */ 2584 memory_accesses.refs_list.quick_push 2585 (mem_ref_alloc (NULL, 0, UNANALYZABLE_MEM_ID)); 2586 2587 memory_accesses.refs_in_loop.create (number_of_loops (cfun)); 2588 memory_accesses.refs_in_loop.quick_grow (number_of_loops (cfun)); 2589 memory_accesses.refs_stored_in_loop.create (number_of_loops (cfun)); 2590 memory_accesses.refs_stored_in_loop.quick_grow (number_of_loops (cfun)); 2591 memory_accesses.all_refs_stored_in_loop.create (number_of_loops (cfun)); 2592 memory_accesses.all_refs_stored_in_loop.quick_grow (number_of_loops (cfun)); 2593 2594 for (i = 0; i < number_of_loops (cfun); i++) 2595 { 2596 bitmap_initialize (&memory_accesses.refs_in_loop[i], 2597 &lim_bitmap_obstack); 2598 bitmap_initialize (&memory_accesses.refs_stored_in_loop[i], 2599 &lim_bitmap_obstack); 2600 bitmap_initialize (&memory_accesses.all_refs_stored_in_loop[i], 2601 &lim_bitmap_obstack); 2602 } 2603 2604 memory_accesses.ttae_cache = NULL; 2605 2606 /* Initialize bb_loop_postorder with a mapping from loop->num to 2607 its postorder index. */ 2608 i = 0; 2609 bb_loop_postorder = XNEWVEC (unsigned, number_of_loops (cfun)); 2610 FOR_EACH_LOOP (loop, LI_FROM_INNERMOST) 2611 bb_loop_postorder[loop->num] = i++; 2612 } 2613 2614 /* Cleans up after the invariant motion pass. */ 2615 2616 static void 2617 tree_ssa_lim_finalize (void) 2618 { 2619 basic_block bb; 2620 unsigned i; 2621 im_mem_ref *ref; 2622 2623 free_aux_for_edges (); 2624 2625 FOR_EACH_BB_FN (bb, cfun) 2626 SET_ALWAYS_EXECUTED_IN (bb, NULL); 2627 2628 bitmap_obstack_release (&lim_bitmap_obstack); 2629 delete lim_aux_data_map; 2630 2631 delete memory_accesses.refs; 2632 memory_accesses.refs = NULL; 2633 2634 FOR_EACH_VEC_ELT (memory_accesses.refs_list, i, ref) 2635 memref_free (ref); 2636 memory_accesses.refs_list.release (); 2637 obstack_free (&mem_ref_obstack, NULL); 2638 2639 memory_accesses.refs_in_loop.release (); 2640 memory_accesses.refs_stored_in_loop.release (); 2641 memory_accesses.all_refs_stored_in_loop.release (); 2642 2643 if (memory_accesses.ttae_cache) 2644 free_affine_expand_cache (&memory_accesses.ttae_cache); 2645 2646 free (bb_loop_postorder); 2647 } 2648 2649 /* Moves invariants from loops. Only "expensive" invariants are moved out -- 2650 i.e. those that are likely to be win regardless of the register pressure. */ 2651 2652 static unsigned int 2653 tree_ssa_lim (void) 2654 { 2655 unsigned int todo; 2656 2657 tree_ssa_lim_initialize (); 2658 2659 /* Gathers information about memory accesses in the loops. */ 2660 analyze_memory_references (); 2661 2662 /* Fills ALWAYS_EXECUTED_IN information for basic blocks. */ 2663 fill_always_executed_in (); 2664 2665 /* For each statement determine the outermost loop in that it is 2666 invariant and cost for computing the invariant. */ 2667 invariantness_dom_walker (CDI_DOMINATORS) 2668 .walk (cfun->cfg->x_entry_block_ptr); 2669 2670 /* Execute store motion. Force the necessary invariants to be moved 2671 out of the loops as well. */ 2672 store_motion (); 2673 2674 /* Move the expressions that are expensive enough. */ 2675 todo = move_computations (); 2676 2677 tree_ssa_lim_finalize (); 2678 2679 return todo; 2680 } 2681 2682 /* Loop invariant motion pass. */ 2683 2684 namespace { 2685 2686 const pass_data pass_data_lim = 2687 { 2688 GIMPLE_PASS, /* type */ 2689 "lim", /* name */ 2690 OPTGROUP_LOOP, /* optinfo_flags */ 2691 TV_LIM, /* tv_id */ 2692 PROP_cfg, /* properties_required */ 2693 0, /* properties_provided */ 2694 0, /* properties_destroyed */ 2695 0, /* todo_flags_start */ 2696 0, /* todo_flags_finish */ 2697 }; 2698 2699 class pass_lim : public gimple_opt_pass 2700 { 2701 public: 2702 pass_lim (gcc::context *ctxt) 2703 : gimple_opt_pass (pass_data_lim, ctxt) 2704 {} 2705 2706 /* opt_pass methods: */ 2707 opt_pass * clone () { return new pass_lim (m_ctxt); } 2708 virtual bool gate (function *) { return flag_tree_loop_im != 0; } 2709 virtual unsigned int execute (function *); 2710 2711 }; // class pass_lim 2712 2713 unsigned int 2714 pass_lim::execute (function *fun) 2715 { 2716 bool in_loop_pipeline = scev_initialized_p (); 2717 if (!in_loop_pipeline) 2718 loop_optimizer_init (LOOPS_NORMAL | LOOPS_HAVE_RECORDED_EXITS); 2719 2720 if (number_of_loops (fun) <= 1) 2721 return 0; 2722 unsigned int todo = tree_ssa_lim (); 2723 2724 if (!in_loop_pipeline) 2725 loop_optimizer_finalize (); 2726 else 2727 scev_reset (); 2728 return todo; 2729 } 2730 2731 } // anon namespace 2732 2733 gimple_opt_pass * 2734 make_pass_lim (gcc::context *ctxt) 2735 { 2736 return new pass_lim (ctxt); 2737 } 2738 2739 2740