gccrs: Add another test case for passing associated type-bounds
[official-gcc.git] / gcc / tree-ssa-loop-manip.cc
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1 /* High-level loop manipulation functions.
2 Copyright (C) 2004-2023 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 #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" /* ??? for TODO_update_ssa but this isn't a pass. */
28 #include "ssa.h"
29 #include "gimple-pretty-print.h"
30 #include "fold-const.h"
31 #include "cfganal.h"
32 #include "gimplify.h"
33 #include "gimple-iterator.h"
34 #include "gimplify-me.h"
35 #include "tree-cfg.h"
36 #include "tree-ssa-loop-ivopts.h"
37 #include "tree-ssa-loop-manip.h"
38 #include "tree-ssa-loop-niter.h"
39 #include "tree-ssa-loop.h"
40 #include "tree-into-ssa.h"
41 #include "tree-ssa.h"
42 #include "cfgloop.h"
43 #include "tree-scalar-evolution.h"
44 #include "tree-inline.h"
46 /* All bitmaps for rewriting into loop-closed SSA go on this obstack,
47 so that we can free them all at once. */
48 static bitmap_obstack loop_renamer_obstack;
50 /* Creates an induction variable with value BASE + STEP * iteration in LOOP.
51 It is expected that neither BASE nor STEP are shared with other expressions
52 (unless the sharing rules allow this). Use VAR as a base var_decl for it
53 (if NULL, a new temporary will be created). The increment will occur at
54 INCR_POS (after it if AFTER is true, before it otherwise). INCR_POS and
55 AFTER can be computed using standard_iv_increment_position. The ssa versions
56 of the variable before and after increment will be stored in VAR_BEFORE and
57 VAR_AFTER (unless they are NULL). */
59 void
60 create_iv (tree base, tree step, tree var, class loop *loop,
61 gimple_stmt_iterator *incr_pos, bool after,
62 tree *var_before, tree *var_after)
64 gassign *stmt;
65 gphi *phi;
66 tree initial, step1;
67 gimple_seq stmts;
68 tree vb, va;
69 enum tree_code incr_op = PLUS_EXPR;
70 edge pe = loop_preheader_edge (loop);
72 if (var != NULL_TREE)
74 vb = make_ssa_name (var);
75 va = make_ssa_name (var);
77 else
79 vb = make_temp_ssa_name (TREE_TYPE (base), NULL, "ivtmp");
80 va = make_temp_ssa_name (TREE_TYPE (base), NULL, "ivtmp");
82 if (var_before)
83 *var_before = vb;
84 if (var_after)
85 *var_after = va;
87 /* For easier readability of the created code, produce MINUS_EXPRs
88 when suitable. */
89 if (TREE_CODE (step) == INTEGER_CST)
91 if (TYPE_UNSIGNED (TREE_TYPE (step)))
93 step1 = fold_build1 (NEGATE_EXPR, TREE_TYPE (step), step);
94 if (tree_int_cst_lt (step1, step))
96 incr_op = MINUS_EXPR;
97 step = step1;
100 else
102 bool ovf;
104 if (!tree_expr_nonnegative_warnv_p (step, &ovf)
105 && may_negate_without_overflow_p (step))
107 incr_op = MINUS_EXPR;
108 step = fold_build1 (NEGATE_EXPR, TREE_TYPE (step), step);
112 if (POINTER_TYPE_P (TREE_TYPE (base)))
114 if (TREE_CODE (base) == ADDR_EXPR)
115 mark_addressable (TREE_OPERAND (base, 0));
116 step = convert_to_ptrofftype (step);
117 if (incr_op == MINUS_EXPR)
118 step = fold_build1 (NEGATE_EXPR, TREE_TYPE (step), step);
119 incr_op = POINTER_PLUS_EXPR;
121 /* Gimplify the step if necessary. We put the computations in front of the
122 loop (i.e. the step should be loop invariant). */
123 step = force_gimple_operand (step, &stmts, true, NULL_TREE);
124 if (stmts)
125 gsi_insert_seq_on_edge_immediate (pe, stmts);
127 stmt = gimple_build_assign (va, incr_op, vb, step);
128 /* Prevent the increment from inheriting a bogus location if it is not put
129 immediately after a statement whose location is known. */
130 if (after)
132 if (gsi_end_p (*incr_pos)
133 || (is_gimple_debug (gsi_stmt (*incr_pos))
134 && gsi_bb (*incr_pos)
135 && gsi_end_p (gsi_last_nondebug_bb (gsi_bb (*incr_pos)))))
137 edge e = single_succ_edge (gsi_bb (*incr_pos));
138 gimple_set_location (stmt, e->goto_locus);
140 gsi_insert_after (incr_pos, stmt, GSI_NEW_STMT);
142 else
144 gimple_stmt_iterator gsi = *incr_pos;
145 if (!gsi_end_p (gsi) && is_gimple_debug (gsi_stmt (gsi)))
146 gsi_next_nondebug (&gsi);
147 if (!gsi_end_p (gsi))
148 gimple_set_location (stmt, gimple_location (gsi_stmt (gsi)));
149 gsi_insert_before (incr_pos, stmt, GSI_NEW_STMT);
152 initial = force_gimple_operand (base, &stmts, true, var);
153 if (stmts)
154 gsi_insert_seq_on_edge_immediate (pe, stmts);
156 phi = create_phi_node (vb, loop->header);
157 add_phi_arg (phi, initial, loop_preheader_edge (loop), UNKNOWN_LOCATION);
158 add_phi_arg (phi, va, loop_latch_edge (loop), UNKNOWN_LOCATION);
161 /* Return the innermost superloop LOOP of USE_LOOP that is a superloop of
162 both DEF_LOOP and USE_LOOP. */
164 static inline class loop *
165 find_sibling_superloop (class loop *use_loop, class loop *def_loop)
167 unsigned ud = loop_depth (use_loop);
168 unsigned dd = loop_depth (def_loop);
169 gcc_assert (ud > 0 && dd > 0);
170 if (ud > dd)
171 use_loop = superloop_at_depth (use_loop, dd);
172 if (ud < dd)
173 def_loop = superloop_at_depth (def_loop, ud);
174 while (loop_outer (use_loop) != loop_outer (def_loop))
176 use_loop = loop_outer (use_loop);
177 def_loop = loop_outer (def_loop);
178 gcc_assert (use_loop && def_loop);
180 return use_loop;
183 /* DEF_BB is a basic block containing a DEF that needs rewriting into
184 loop-closed SSA form. USE_BLOCKS is the set of basic blocks containing
185 uses of DEF that "escape" from the loop containing DEF_BB (i.e. blocks in
186 USE_BLOCKS are dominated by DEF_BB but not in the loop father of DEF_BB).
187 ALL_EXITS[I] is the set of all basic blocks that exit loop I.
188 DEF_LOOP_EXITS is a bitmap of loop exit blocks that exit the loop
189 containing DEF_BB or its outer loops.
191 Compute the subset of loop exit destinations that exit the loop
192 containing DEF_BB or one of its loop fathers, in which DEF is live.
193 This set is returned in the bitmap LIVE_EXITS.
195 Instead of computing the complete livein set of the def, we use the loop
196 nesting tree as a form of poor man's structure analysis. This greatly
197 speeds up the analysis, which is important because this function may be
198 called on all SSA names that need rewriting, one at a time. */
200 static void
201 compute_live_loop_exits (bitmap live_exits, bitmap use_blocks,
202 basic_block def_bb, bitmap def_loop_exits)
204 unsigned i;
205 bitmap_iterator bi;
206 class loop *def_loop = def_bb->loop_father;
207 unsigned def_loop_depth = loop_depth (def_loop);
209 /* Normally the work list size is bounded by the number of basic
210 blocks in the largest loop. We don't know this number, but we
211 can be fairly sure that it will be relatively small. */
212 auto_vec<basic_block, 8> worklist (MAX (8, n_basic_blocks_for_fn (cfun) / 128));
214 EXECUTE_IF_SET_IN_BITMAP (use_blocks, 0, i, bi)
216 basic_block use_bb = BASIC_BLOCK_FOR_FN (cfun, i);
217 class loop *use_loop = use_bb->loop_father;
218 gcc_checking_assert (def_loop != use_loop
219 && ! flow_loop_nested_p (def_loop, use_loop));
220 if (! flow_loop_nested_p (use_loop, def_loop))
221 use_bb = find_sibling_superloop (use_loop, def_loop)->header;
222 if (bitmap_set_bit (live_exits, use_bb->index))
223 worklist.safe_push (use_bb);
226 /* Iterate until the worklist is empty. */
227 while (! worklist.is_empty ())
229 edge e;
230 edge_iterator ei;
232 /* Pull a block off the worklist. */
233 basic_block bb = worklist.pop ();
235 /* Make sure we have at least enough room in the work list
236 for all predecessors of this block. */
237 worklist.reserve (EDGE_COUNT (bb->preds));
239 /* For each predecessor block. */
240 FOR_EACH_EDGE (e, ei, bb->preds)
242 basic_block pred = e->src;
243 class loop *pred_loop = pred->loop_father;
244 unsigned pred_loop_depth = loop_depth (pred_loop);
245 bool pred_visited;
247 /* We should have met DEF_BB along the way. */
248 gcc_assert (pred != ENTRY_BLOCK_PTR_FOR_FN (cfun));
250 if (pred_loop_depth >= def_loop_depth)
252 if (pred_loop_depth > def_loop_depth)
253 pred_loop = superloop_at_depth (pred_loop, def_loop_depth);
254 /* If we've reached DEF_LOOP, our train ends here. */
255 if (pred_loop == def_loop)
256 continue;
258 else if (! flow_loop_nested_p (pred_loop, def_loop))
259 pred = find_sibling_superloop (pred_loop, def_loop)->header;
261 /* Add PRED to the LIVEIN set. PRED_VISITED is true if
262 we had already added PRED to LIVEIN before. */
263 pred_visited = !bitmap_set_bit (live_exits, pred->index);
265 /* If we have visited PRED before, don't add it to the worklist.
266 If BB dominates PRED, then we're probably looking at a loop.
267 We're only interested in looking up in the dominance tree
268 because DEF_BB dominates all the uses. */
269 if (pred_visited || dominated_by_p (CDI_DOMINATORS, pred, bb))
270 continue;
272 worklist.quick_push (pred);
276 bitmap_and_into (live_exits, def_loop_exits);
279 /* Add a loop-closing PHI for VAR in basic block EXIT. */
281 static void
282 add_exit_phi (basic_block exit, tree var)
284 gphi *phi;
285 edge e;
286 edge_iterator ei;
288 /* Check that at least one of the edges entering the EXIT block exits
289 the loop, or a superloop of that loop, that VAR is defined in. */
290 if (flag_checking)
292 gimple *def_stmt = SSA_NAME_DEF_STMT (var);
293 basic_block def_bb = gimple_bb (def_stmt);
294 FOR_EACH_EDGE (e, ei, exit->preds)
296 class loop *aloop = find_common_loop (def_bb->loop_father,
297 e->src->loop_father);
298 if (!flow_bb_inside_loop_p (aloop, e->dest))
299 break;
301 gcc_assert (e);
304 phi = create_phi_node (NULL_TREE, exit);
305 create_new_def_for (var, phi, gimple_phi_result_ptr (phi));
306 FOR_EACH_EDGE (e, ei, exit->preds)
307 add_phi_arg (phi, var, e, UNKNOWN_LOCATION);
309 if (dump_file && (dump_flags & TDF_DETAILS))
311 fprintf (dump_file, ";; Created LCSSA PHI: ");
312 print_gimple_stmt (dump_file, phi, 0, dump_flags);
316 /* Add exit phis for VAR that is used in LIVEIN.
317 Exits of the loops are stored in LOOP_EXITS. Returns the number
318 of PHIs added for VAR. */
320 static unsigned
321 add_exit_phis_var (tree var, bitmap use_blocks, bitmap def_loop_exits)
323 unsigned index;
324 bitmap_iterator bi;
325 basic_block def_bb = gimple_bb (SSA_NAME_DEF_STMT (var));
327 gcc_checking_assert (! bitmap_bit_p (use_blocks, def_bb->index));
329 auto_bitmap live_exits (&loop_renamer_obstack);
330 compute_live_loop_exits (live_exits, use_blocks, def_bb, def_loop_exits);
332 unsigned cnt = 0;
333 EXECUTE_IF_SET_IN_BITMAP (live_exits, 0, index, bi)
335 add_exit_phi (BASIC_BLOCK_FOR_FN (cfun, index), var);
336 cnt++;
338 return cnt;
341 static int
342 loop_name_cmp (const void *p1, const void *p2)
344 auto l1 = (const std::pair<int, int> *)p1;
345 auto l2 = (const std::pair<int, int> *)p2;
346 if (l1->first < l2->first)
347 return -1;
348 else if (l1->first > l2->first)
349 return 1;
350 return 0;
353 /* Add exit phis for the names marked in NAMES_TO_RENAME.
354 Exits of the loops are stored in EXITS. Sets of blocks where the ssa
355 names are used are stored in USE_BLOCKS. Returns whether any name
356 required multiple LC PHI nodes. */
358 static bool
359 add_exit_phis (bitmap names_to_rename, bitmap *use_blocks)
361 unsigned i;
362 bitmap_iterator bi;
363 bool multiple_p = false;
365 /* Sort names_to_rename after definition loop so we can avoid re-computing
366 def_loop_exits. */
367 auto_vec<std::pair<int, int> > names (bitmap_count_bits (names_to_rename));
368 EXECUTE_IF_SET_IN_BITMAP (names_to_rename, 0, i, bi)
370 tree name = ssa_name (i);
371 loop_p def_loop = gimple_bb (SSA_NAME_DEF_STMT (name))->loop_father;
372 names.quick_push (std::make_pair (def_loop->num, i));
374 names.qsort (loop_name_cmp);
376 auto_bitmap def_loop_exits (&loop_renamer_obstack);
377 loop_p last_def_loop = NULL;
378 for (auto p : names)
380 loop_p def_loop = get_loop (cfun, p.first);
381 if (def_loop != last_def_loop)
383 bitmap_clear (def_loop_exits);
384 last_def_loop = def_loop;
385 for (class loop *loop = def_loop; loop != current_loops->tree_root;
386 loop = loop_outer (loop))
387 for (auto exit = loop->exits->next; exit->e; exit = exit->next)
388 bitmap_set_bit (def_loop_exits, exit->e->dest->index);
390 if (add_exit_phis_var (ssa_name (p.second), use_blocks[p.second],
391 def_loop_exits) > 1)
392 multiple_p = true;
395 return multiple_p;
398 /* For USE in BB, if it is used outside of the loop it is defined in,
399 mark it for rewrite. Record basic block BB where it is used
400 to USE_BLOCKS. Record the ssa name index to NEED_PHIS bitmap.
401 Note that for USEs in phis, BB should be the src of the edge corresponding to
402 the use, rather than the bb containing the phi. */
404 static void
405 find_uses_to_rename_use (basic_block bb, tree use, bitmap *use_blocks,
406 bitmap need_phis)
408 unsigned ver;
409 basic_block def_bb;
410 class loop *def_loop;
412 if (TREE_CODE (use) != SSA_NAME)
413 return;
415 ver = SSA_NAME_VERSION (use);
416 def_bb = gimple_bb (SSA_NAME_DEF_STMT (use));
417 if (!def_bb)
418 return;
419 def_loop = def_bb->loop_father;
421 /* If the definition is not inside a loop, it is not interesting. */
422 if (!loop_outer (def_loop))
423 return;
425 /* If the use is not outside of the loop it is defined in, it is not
426 interesting. */
427 if (flow_bb_inside_loop_p (def_loop, bb))
428 return;
430 /* If we're seeing VER for the first time, we still have to allocate
431 a bitmap for its uses. */
432 if (bitmap_set_bit (need_phis, ver))
433 use_blocks[ver] = BITMAP_ALLOC (&loop_renamer_obstack);
434 bitmap_set_bit (use_blocks[ver], bb->index);
437 /* For uses matching USE_FLAGS in STMT, mark names that are used outside of the
438 loop they are defined to rewrite. Record the set of blocks in which the ssa
439 names are used to USE_BLOCKS, and the ssa names themselves to NEED_PHIS. */
441 static void
442 find_uses_to_rename_stmt (gimple *stmt, bitmap *use_blocks, bitmap need_phis,
443 int use_flags)
445 ssa_op_iter iter;
446 tree var;
447 basic_block bb = gimple_bb (stmt);
449 if (is_gimple_debug (stmt))
450 return;
452 /* FOR_EACH_SSA_TREE_OPERAND iterator does not allows SSA_OP_VIRTUAL_USES
453 only. */
454 if (use_flags == SSA_OP_VIRTUAL_USES)
456 tree vuse = gimple_vuse (stmt);
457 if (vuse != NULL_TREE)
458 find_uses_to_rename_use (bb, gimple_vuse (stmt), use_blocks, need_phis);
460 else
461 FOR_EACH_SSA_TREE_OPERAND (var, stmt, iter, use_flags)
462 find_uses_to_rename_use (bb, var, use_blocks, need_phis);
465 /* Marks names matching USE_FLAGS that are used in BB and outside of the loop
466 they are defined in for rewrite. Records the set of blocks in which the ssa
467 names are used to USE_BLOCKS. Record the SSA names that will
468 need exit PHIs in NEED_PHIS. */
470 static void
471 find_uses_to_rename_bb (basic_block bb, bitmap *use_blocks, bitmap need_phis,
472 int use_flags)
474 edge e;
475 edge_iterator ei;
476 bool do_virtuals = (use_flags & SSA_OP_VIRTUAL_USES) != 0;
477 bool do_nonvirtuals = (use_flags & SSA_OP_USE) != 0;
479 FOR_EACH_EDGE (e, ei, bb->succs)
480 for (gphi_iterator bsi = gsi_start_phis (e->dest); !gsi_end_p (bsi);
481 gsi_next (&bsi))
483 gphi *phi = bsi.phi ();
484 bool virtual_p = virtual_operand_p (gimple_phi_result (phi));
485 if ((virtual_p && do_virtuals)
486 || (!virtual_p && do_nonvirtuals))
487 find_uses_to_rename_use (bb, PHI_ARG_DEF_FROM_EDGE (phi, e),
488 use_blocks, need_phis);
491 for (gimple_stmt_iterator bsi = gsi_start_bb (bb); !gsi_end_p (bsi);
492 gsi_next (&bsi))
493 find_uses_to_rename_stmt (gsi_stmt (bsi), use_blocks, need_phis,
494 use_flags);
497 /* Marks names matching USE_FLAGS that are used outside of the loop they are
498 defined in for rewrite. Records the set of blocks in which the ssa names are
499 used to USE_BLOCKS. Record the SSA names that will need exit PHIs in
500 NEED_PHIS. If CHANGED_BBS is not NULL, scan only blocks in this set. */
502 static void
503 find_uses_to_rename (bitmap changed_bbs, bitmap *use_blocks, bitmap need_phis,
504 int use_flags)
506 basic_block bb;
507 unsigned index;
508 bitmap_iterator bi;
510 if (changed_bbs)
511 EXECUTE_IF_SET_IN_BITMAP (changed_bbs, 0, index, bi)
513 bb = BASIC_BLOCK_FOR_FN (cfun, index);
514 if (bb)
515 find_uses_to_rename_bb (bb, use_blocks, need_phis, use_flags);
517 else
518 FOR_EACH_BB_FN (bb, cfun)
519 find_uses_to_rename_bb (bb, use_blocks, need_phis, use_flags);
522 /* Rewrites the program into a loop closed ssa form -- i.e. inserts extra
523 phi nodes to ensure that no variable is used outside the loop it is
524 defined in.
526 This strengthening of the basic ssa form has several advantages:
528 1) Updating it during unrolling/peeling/versioning is trivial, since
529 we do not need to care about the uses outside of the loop.
530 The same applies to virtual operands which are also rewritten into
531 loop closed SSA form. Note that virtual operands are always live
532 until function exit.
533 2) The behavior of all uses of an induction variable is the same.
534 Without this, you need to distinguish the case when the variable
535 is used outside of the loop it is defined in, for example
537 for (i = 0; i < 100; i++)
539 for (j = 0; j < 100; j++)
541 k = i + j;
542 use1 (k);
544 use2 (k);
547 Looking from the outer loop with the normal SSA form, the first use of k
548 is not well-behaved, while the second one is an induction variable with
549 base 99 and step 1.
551 If CHANGED_BBS is not NULL, we look for uses outside loops only in the
552 basic blocks in this set.
554 USE_FLAGS allows us to specify whether we want virtual, non-virtual or
555 both variables rewritten.
557 UPDATE_FLAG is used in the call to update_ssa. See
558 TODO_update_ssa* for documentation. */
560 static void
561 rewrite_into_loop_closed_ssa_1 (bitmap changed_bbs, unsigned update_flag,
562 int use_flags)
564 bitmap *use_blocks;
565 bitmap names_to_rename;
567 loops_state_set (LOOP_CLOSED_SSA);
568 if (number_of_loops (cfun) <= 1)
569 return;
571 /* If the pass has caused the SSA form to be out-of-date, update it
572 now. */
573 if (update_flag != 0)
574 update_ssa (update_flag);
575 else if (flag_checking)
576 verify_ssa (true, true);
578 bitmap_obstack_initialize (&loop_renamer_obstack);
580 names_to_rename = BITMAP_ALLOC (&loop_renamer_obstack);
582 /* Uses of names to rename. We don't have to initialize this array,
583 because we know that we will only have entries for the SSA names
584 in NAMES_TO_RENAME. */
585 use_blocks = XNEWVEC (bitmap, num_ssa_names);
586 find_uses_to_rename (changed_bbs, use_blocks, names_to_rename, use_flags);
588 if (!bitmap_empty_p (names_to_rename))
590 bool release_recorded_exits_p = false;
591 if (!loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
593 /* Doing one scan over the whole function is cheaper than
594 traversing the loop tree and gathering BBs of each loop. */
595 record_loop_exits ();
596 release_recorded_exits_p = true;
599 /* Add the PHI nodes on exits of the loops for the names we need to
600 rewrite. When no variable required multiple LC PHI nodes to be
601 inserted then we know that all uses outside of the loop are
602 dominated by the single LC SSA definition and no further PHI
603 node insertions are required. */
604 bool need_phis_p = add_exit_phis (names_to_rename, use_blocks);
606 if (release_recorded_exits_p)
607 release_recorded_exits (cfun);
609 /* Fix up all the names found to be used outside their original
610 loops. */
611 update_ssa (need_phis_p ? TODO_update_ssa : TODO_update_ssa_no_phi);
614 bitmap_obstack_release (&loop_renamer_obstack);
615 free (use_blocks);
618 /* Rewrites the defs and uses into a loop closed ssa form.
619 If CHANGED_BBS is not NULL, we look for uses outside loops only in the basic
620 blocks in this set. UPDATE_FLAG is used in the call to update_ssa. See
621 TODO_update_ssa* for documentation. */
623 void
624 rewrite_into_loop_closed_ssa (bitmap changed_bbs, unsigned update_flag)
626 rewrite_into_loop_closed_ssa_1 (changed_bbs, update_flag, SSA_OP_ALL_USES);
629 /* Check invariants of the loop closed ssa form for the def in DEF_BB. */
631 static void
632 check_loop_closed_ssa_def (basic_block def_bb, tree def)
634 use_operand_p use_p;
635 imm_use_iterator iterator;
636 FOR_EACH_IMM_USE_FAST (use_p, iterator, def)
638 if (is_gimple_debug (USE_STMT (use_p)))
639 continue;
641 basic_block use_bb = gimple_bb (USE_STMT (use_p));
642 if (is_a <gphi *> (USE_STMT (use_p)))
643 use_bb = EDGE_PRED (use_bb, PHI_ARG_INDEX_FROM_USE (use_p))->src;
645 gcc_assert (flow_bb_inside_loop_p (def_bb->loop_father, use_bb));
649 /* Checks invariants of loop closed ssa form in BB. */
651 static void
652 check_loop_closed_ssa_bb (basic_block bb)
654 for (gphi_iterator bsi = gsi_start_phis (bb); !gsi_end_p (bsi);
655 gsi_next (&bsi))
657 gphi *phi = bsi.phi ();
659 check_loop_closed_ssa_def (bb, PHI_RESULT (phi));
662 for (gimple_stmt_iterator bsi = gsi_start_nondebug_bb (bb); !gsi_end_p (bsi);
663 gsi_next_nondebug (&bsi))
665 ssa_op_iter iter;
666 tree var;
667 gimple *stmt = gsi_stmt (bsi);
669 FOR_EACH_SSA_TREE_OPERAND (var, stmt, iter, SSA_OP_ALL_DEFS)
670 check_loop_closed_ssa_def (bb, var);
674 /* Checks that invariants of the loop closed ssa form are preserved.
675 Call verify_ssa when VERIFY_SSA_P is true. Note all loops are checked
676 if LOOP is NULL, otherwise, only LOOP is checked. */
678 DEBUG_FUNCTION void
679 verify_loop_closed_ssa (bool verify_ssa_p, class loop *loop)
681 if (number_of_loops (cfun) <= 1)
682 return;
684 timevar_push (TV_VERIFY_LOOP_CLOSED);
686 if (loop == NULL)
688 basic_block bb;
690 if (verify_ssa_p)
691 verify_ssa (false, true);
693 FOR_EACH_BB_FN (bb, cfun)
694 if (bb->loop_father && bb->loop_father->num > 0)
695 check_loop_closed_ssa_bb (bb);
697 else
699 basic_block *bbs = get_loop_body (loop);
701 /* We do not have loop-local SSA verification so just
702 check there's no update queued. */
703 if (verify_ssa_p)
704 gcc_assert (!need_ssa_update_p (cfun));
706 for (unsigned i = 0; i < loop->num_nodes; ++i)
707 check_loop_closed_ssa_bb (bbs[i]);
709 free (bbs);
712 timevar_pop (TV_VERIFY_LOOP_CLOSED);
715 /* Split loop exit edge EXIT. The things are a bit complicated by a need to
716 preserve the loop closed ssa form. If COPY_CONSTANTS_P is true then
717 forwarder PHIs are also created for constant arguments.
718 The newly created block is returned. */
720 basic_block
721 split_loop_exit_edge (edge exit, bool copy_constants_p)
723 basic_block dest = exit->dest;
724 basic_block bb = split_edge (exit);
725 gphi *phi, *new_phi;
726 tree new_name, name;
727 use_operand_p op_p;
728 gphi_iterator psi;
729 location_t locus;
731 for (psi = gsi_start_phis (dest); !gsi_end_p (psi); gsi_next (&psi))
733 phi = psi.phi ();
734 op_p = PHI_ARG_DEF_PTR_FROM_EDGE (phi, single_succ_edge (bb));
735 locus = gimple_phi_arg_location_from_edge (phi, single_succ_edge (bb));
737 name = USE_FROM_PTR (op_p);
739 /* If the argument of the PHI node is a constant, we do not need
740 to keep it inside loop. */
741 if (TREE_CODE (name) != SSA_NAME
742 && !copy_constants_p)
743 continue;
745 /* Otherwise create an auxiliary phi node that will copy the value
746 of the SSA name out of the loop. */
747 new_name = duplicate_ssa_name (PHI_RESULT (phi), NULL);
748 new_phi = create_phi_node (new_name, bb);
749 add_phi_arg (new_phi, name, exit, locus);
750 SET_USE (op_p, new_name);
753 return bb;
756 /* Returns the basic block in that statements should be emitted for induction
757 variables incremented at the end of the LOOP. */
759 basic_block
760 ip_end_pos (class loop *loop)
762 return loop->latch;
765 /* Returns the basic block in that statements should be emitted for induction
766 variables incremented just before exit condition of a LOOP. */
768 basic_block
769 ip_normal_pos (class loop *loop)
771 gimple *last;
772 basic_block bb;
773 edge exit;
775 if (!single_pred_p (loop->latch))
776 return NULL;
778 bb = single_pred (loop->latch);
779 last = last_stmt (bb);
780 if (!last
781 || gimple_code (last) != GIMPLE_COND)
782 return NULL;
784 exit = EDGE_SUCC (bb, 0);
785 if (exit->dest == loop->latch)
786 exit = EDGE_SUCC (bb, 1);
788 if (flow_bb_inside_loop_p (loop, exit->dest))
789 return NULL;
791 return bb;
794 /* Stores the standard position for induction variable increment in LOOP
795 (just before the exit condition if it is available and latch block is empty,
796 end of the latch block otherwise) to BSI. INSERT_AFTER is set to true if
797 the increment should be inserted after *BSI. */
799 void
800 standard_iv_increment_position (class loop *loop, gimple_stmt_iterator *bsi,
801 bool *insert_after)
803 basic_block bb = ip_normal_pos (loop), latch = ip_end_pos (loop);
804 gimple *last = last_stmt (latch);
806 if (!bb
807 || (last && gimple_code (last) != GIMPLE_LABEL))
809 *bsi = gsi_last_bb (latch);
810 *insert_after = true;
812 else
814 *bsi = gsi_last_bb (bb);
815 *insert_after = false;
819 /* Copies phi node arguments for duplicated blocks. The index of the first
820 duplicated block is FIRST_NEW_BLOCK. */
822 static void
823 copy_phi_node_args (unsigned first_new_block)
825 unsigned i;
827 for (i = first_new_block; i < (unsigned) last_basic_block_for_fn (cfun); i++)
828 BASIC_BLOCK_FOR_FN (cfun, i)->flags |= BB_DUPLICATED;
830 for (i = first_new_block; i < (unsigned) last_basic_block_for_fn (cfun); i++)
831 add_phi_args_after_copy_bb (BASIC_BLOCK_FOR_FN (cfun, i));
833 for (i = first_new_block; i < (unsigned) last_basic_block_for_fn (cfun); i++)
834 BASIC_BLOCK_FOR_FN (cfun, i)->flags &= ~BB_DUPLICATED;
838 /* The same as cfgloopmanip.cc:duplicate_loop_body_to_header_edge, but also
839 updates the PHI nodes at start of the copied region. In order to
840 achieve this, only loops whose exits all lead to the same location
841 are handled.
843 Notice that we do not completely update the SSA web after
844 duplication. The caller is responsible for calling update_ssa
845 after the loop has been duplicated. */
847 bool
848 gimple_duplicate_loop_body_to_header_edge (class loop *loop, edge e,
849 unsigned int ndupl,
850 sbitmap wont_exit, edge orig,
851 vec<edge> *to_remove, int flags)
853 unsigned first_new_block;
855 if (!loops_state_satisfies_p (LOOPS_HAVE_SIMPLE_LATCHES))
856 return false;
857 if (!loops_state_satisfies_p (LOOPS_HAVE_PREHEADERS))
858 return false;
860 first_new_block = last_basic_block_for_fn (cfun);
861 if (!duplicate_loop_body_to_header_edge (loop, e, ndupl, wont_exit, orig,
862 to_remove, flags))
863 return false;
865 /* Readd the removed phi args for e. */
866 flush_pending_stmts (e);
868 /* Copy the phi node arguments. */
869 copy_phi_node_args (first_new_block);
871 scev_reset ();
873 return true;
876 /* Returns true if we can unroll LOOP FACTOR times. Number
877 of iterations of the loop is returned in NITER. */
879 bool
880 can_unroll_loop_p (class loop *loop, unsigned factor,
881 class tree_niter_desc *niter)
883 edge exit;
885 /* Check whether unrolling is possible. We only want to unroll loops
886 for that we are able to determine number of iterations. We also
887 want to split the extra iterations of the loop from its end,
888 therefore we require that the loop has precisely one
889 exit. */
891 exit = single_dom_exit (loop);
892 if (!exit)
893 return false;
895 if (!number_of_iterations_exit (loop, exit, niter, false)
896 || niter->cmp == ERROR_MARK
897 /* Scalar evolutions analysis might have copy propagated
898 the abnormal ssa names into these expressions, hence
899 emitting the computations based on them during loop
900 unrolling might create overlapping life ranges for
901 them, and failures in out-of-ssa. */
902 || contains_abnormal_ssa_name_p (niter->may_be_zero)
903 || contains_abnormal_ssa_name_p (niter->control.base)
904 || contains_abnormal_ssa_name_p (niter->control.step)
905 || contains_abnormal_ssa_name_p (niter->bound))
906 return false;
908 /* And of course, we must be able to duplicate the loop. */
909 if (!can_duplicate_loop_p (loop))
910 return false;
912 /* The final loop should be small enough. */
913 if (tree_num_loop_insns (loop, &eni_size_weights) * factor
914 > (unsigned) param_max_unrolled_insns)
915 return false;
917 return true;
920 /* Determines the conditions that control execution of LOOP unrolled FACTOR
921 times. DESC is number of iterations of LOOP. ENTER_COND is set to
922 condition that must be true if the main loop can be entered.
923 If the loop does not always iterate an exact multiple of FACTOR times,
924 EXIT_BASE, EXIT_STEP, EXIT_CMP and EXIT_BOUND are set to values describing
925 how the exit from the unrolled loop should be controlled. Otherwise,
926 the trees are set to null and EXIT_CMP is set to ERROR_MARK. */
928 static void
929 determine_exit_conditions (class loop *loop, class tree_niter_desc *desc,
930 unsigned factor, tree *enter_cond,
931 tree *exit_base, tree *exit_step,
932 enum tree_code *exit_cmp, tree *exit_bound)
934 gimple_seq stmts;
935 tree base = desc->control.base;
936 tree step = desc->control.step;
937 tree bound = desc->bound;
938 tree type = TREE_TYPE (step);
939 tree bigstep, delta;
940 tree min = lower_bound_in_type (type, type);
941 tree max = upper_bound_in_type (type, type);
942 enum tree_code cmp = desc->cmp;
943 tree cond = boolean_true_node, assum;
945 /* For pointers, do the arithmetics in the type of step. */
946 base = fold_convert (type, base);
947 bound = fold_convert (type, bound);
949 *enter_cond = boolean_false_node;
950 *exit_base = NULL_TREE;
951 *exit_step = NULL_TREE;
952 *exit_cmp = ERROR_MARK;
953 *exit_bound = NULL_TREE;
954 gcc_assert (cmp != ERROR_MARK);
956 /* We only need to be correct when we answer question
957 "Do at least FACTOR more iterations remain?" in the unrolled loop.
958 Thus, transforming BASE + STEP * i <> BOUND to
959 BASE + STEP * i < BOUND is ok. */
960 if (cmp == NE_EXPR)
962 if (tree_int_cst_sign_bit (step))
963 cmp = GT_EXPR;
964 else
965 cmp = LT_EXPR;
967 else if (cmp == LT_EXPR)
969 gcc_assert (!tree_int_cst_sign_bit (step));
971 else if (cmp == GT_EXPR)
973 gcc_assert (tree_int_cst_sign_bit (step));
975 else
976 gcc_unreachable ();
978 /* The main body of the loop may be entered iff:
980 1) desc->may_be_zero is false.
981 2) it is possible to check that there are at least FACTOR iterations
982 of the loop, i.e., BOUND - step * FACTOR does not overflow.
983 3) # of iterations is at least FACTOR */
985 if (!integer_zerop (desc->may_be_zero))
986 cond = fold_build2 (TRUTH_AND_EXPR, boolean_type_node,
987 invert_truthvalue (desc->may_be_zero),
988 cond);
990 bigstep = fold_build2 (MULT_EXPR, type, step,
991 build_int_cst_type (type, factor));
992 delta = fold_build2 (MINUS_EXPR, type, bigstep, step);
993 if (cmp == LT_EXPR)
994 assum = fold_build2 (GE_EXPR, boolean_type_node,
995 bound,
996 fold_build2 (PLUS_EXPR, type, min, delta));
997 else
998 assum = fold_build2 (LE_EXPR, boolean_type_node,
999 bound,
1000 fold_build2 (PLUS_EXPR, type, max, delta));
1001 cond = fold_build2 (TRUTH_AND_EXPR, boolean_type_node, assum, cond);
1003 bound = fold_build2 (MINUS_EXPR, type, bound, delta);
1004 assum = fold_build2 (cmp, boolean_type_node, base, bound);
1005 cond = fold_build2 (TRUTH_AND_EXPR, boolean_type_node, assum, cond);
1007 if (integer_nonzerop (cond)
1008 && integer_zerop (desc->may_be_zero))
1010 /* Convert the latch count to an iteration count. */
1011 tree niter = fold_build2 (PLUS_EXPR, type, desc->niter,
1012 build_one_cst (type));
1013 if (multiple_of_p (type, niter, bigstep))
1014 return;
1017 cond = force_gimple_operand (unshare_expr (cond), &stmts, false, NULL_TREE);
1018 if (stmts)
1019 gsi_insert_seq_on_edge_immediate (loop_preheader_edge (loop), stmts);
1020 /* cond now may be a gimple comparison, which would be OK, but also any
1021 other gimple rhs (say a && b). In this case we need to force it to
1022 operand. */
1023 if (!is_gimple_condexpr_for_cond (cond))
1025 cond = force_gimple_operand (cond, &stmts, true, NULL_TREE);
1026 if (stmts)
1027 gsi_insert_seq_on_edge_immediate (loop_preheader_edge (loop), stmts);
1029 *enter_cond = cond;
1031 base = force_gimple_operand (unshare_expr (base), &stmts, true, NULL_TREE);
1032 if (stmts)
1033 gsi_insert_seq_on_edge_immediate (loop_preheader_edge (loop), stmts);
1034 bound = force_gimple_operand (unshare_expr (bound), &stmts, true, NULL_TREE);
1035 if (stmts)
1036 gsi_insert_seq_on_edge_immediate (loop_preheader_edge (loop), stmts);
1038 *exit_base = base;
1039 *exit_step = bigstep;
1040 *exit_cmp = cmp;
1041 *exit_bound = bound;
1044 /* Scales the frequencies of all basic blocks in LOOP that are strictly
1045 dominated by BB by NUM/DEN. */
1047 static void
1048 scale_dominated_blocks_in_loop (class loop *loop, basic_block bb,
1049 profile_count num, profile_count den)
1051 basic_block son;
1053 if (!den.nonzero_p () && !(num == profile_count::zero ()))
1054 return;
1056 for (son = first_dom_son (CDI_DOMINATORS, bb);
1057 son;
1058 son = next_dom_son (CDI_DOMINATORS, son))
1060 if (!flow_bb_inside_loop_p (loop, son))
1061 continue;
1062 scale_bbs_frequencies_profile_count (&son, 1, num, den);
1063 scale_dominated_blocks_in_loop (loop, son, num, den);
1067 /* Return estimated niter for LOOP after unrolling by FACTOR times. */
1069 gcov_type
1070 niter_for_unrolled_loop (class loop *loop, unsigned factor)
1072 gcc_assert (factor != 0);
1073 bool profile_p = false;
1074 gcov_type est_niter = expected_loop_iterations_unbounded (loop, &profile_p);
1075 /* Note that this is really CEIL (est_niter + 1, factor) - 1, where the
1076 "+ 1" converts latch iterations to loop iterations and the "- 1"
1077 converts back. */
1078 gcov_type new_est_niter = est_niter / factor;
1080 if (est_niter == -1)
1081 return -1;
1083 /* Without profile feedback, loops for which we do not know a better estimate
1084 are assumed to roll 10 times. When we unroll such loop, it appears to
1085 roll too little, and it may even seem to be cold. To avoid this, we
1086 ensure that the created loop appears to roll at least 5 times (but at
1087 most as many times as before unrolling). Don't do adjustment if profile
1088 feedback is present. */
1089 if (new_est_niter < 5 && !profile_p)
1091 if (est_niter < 5)
1092 new_est_niter = est_niter;
1093 else
1094 new_est_niter = 5;
1097 if (loop->any_upper_bound)
1099 /* As above, this is really CEIL (upper_bound + 1, factor) - 1. */
1100 widest_int bound = wi::udiv_floor (loop->nb_iterations_upper_bound,
1101 factor);
1102 if (wi::ltu_p (bound, new_est_niter))
1103 new_est_niter = bound.to_uhwi ();
1106 return new_est_niter;
1109 /* Unroll LOOP FACTOR times. LOOP is known to have a single exit edge
1110 whose source block dominates the latch. DESC describes the number of
1111 iterations of LOOP.
1113 If N is number of iterations of the loop and MAY_BE_ZERO is the condition
1114 under that loop exits in the first iteration even if N != 0,
1116 while (1)
1118 x = phi (init, next);
1120 pre;
1121 if (st)
1122 break;
1123 post;
1126 becomes (with possibly the exit conditions formulated a bit differently,
1127 avoiding the need to create a new iv):
1129 if (MAY_BE_ZERO || N < FACTOR)
1130 goto rest;
1134 x = phi (init, next);
1136 pre;
1137 post;
1138 pre;
1139 post;
1141 pre;
1142 post;
1143 N -= FACTOR;
1145 } while (N >= FACTOR);
1147 rest:
1148 init' = phi (init, x);
1150 while (1)
1152 x = phi (init', next);
1154 pre;
1155 if (st)
1156 break;
1157 post;
1160 Before the loop is unrolled, TRANSFORM is called for it (only for the
1161 unrolled loop, but not for its versioned copy). DATA is passed to
1162 TRANSFORM. */
1164 /* Probability in % that the unrolled loop is entered. Just a guess. */
1165 #define PROB_UNROLLED_LOOP_ENTERED 90
1167 void
1168 tree_transform_and_unroll_loop (class loop *loop, unsigned factor,
1169 class tree_niter_desc *desc,
1170 transform_callback transform,
1171 void *data)
1173 gcov_type new_est_niter = niter_for_unrolled_loop (loop, factor);
1174 unsigned irr = loop_preheader_edge (loop)->flags & EDGE_IRREDUCIBLE_LOOP;
1176 enum tree_code exit_cmp;
1177 tree enter_main_cond, exit_base, exit_step, exit_bound;
1178 determine_exit_conditions (loop, desc, factor,
1179 &enter_main_cond, &exit_base, &exit_step,
1180 &exit_cmp, &exit_bound);
1181 bool single_loop_p = !exit_base;
1183 /* Let us assume that the unrolled loop is quite likely to be entered. */
1184 profile_probability prob_entry;
1185 if (integer_nonzerop (enter_main_cond))
1186 prob_entry = profile_probability::always ();
1187 else
1188 prob_entry = profile_probability::guessed_always ()
1189 .apply_scale (PROB_UNROLLED_LOOP_ENTERED, 100);
1191 gcond *exit_if = nullptr;
1192 class loop *new_loop = nullptr;
1193 edge new_exit;
1194 if (!single_loop_p)
1196 edge exit = single_dom_exit (loop);
1198 /* The values for scales should keep profile consistent, and somewhat
1199 close to correct.
1201 TODO: The current value of SCALE_REST makes it appear that the loop
1202 that is created by splitting the remaining iterations of the unrolled
1203 loop is executed the same number of times as the original loop, and
1204 with the same frequencies, which is obviously wrong. This does not
1205 appear to cause problems, so we do not bother with fixing it for now.
1206 To make the profile correct, we would need to change the probability
1207 of the exit edge of the loop, and recompute the distribution of
1208 frequencies in its body because of this change (scale the frequencies
1209 of blocks before and after the exit by appropriate factors). */
1210 profile_probability scale_unrolled = prob_entry;
1211 new_loop = loop_version (loop, enter_main_cond, NULL, prob_entry,
1212 prob_entry.invert (), scale_unrolled,
1213 profile_probability::guessed_always (),
1214 true);
1215 gcc_assert (new_loop != NULL);
1216 update_ssa (TODO_update_ssa_no_phi);
1218 /* Prepare the cfg and update the phi nodes. Move the loop exit to the
1219 loop latch (and make its condition dummy, for the moment). */
1220 basic_block rest = loop_preheader_edge (new_loop)->src;
1221 edge precond_edge = single_pred_edge (rest);
1222 split_edge (loop_latch_edge (loop));
1223 basic_block exit_bb = single_pred (loop->latch);
1225 /* Since the exit edge will be removed, the frequency of all the blocks
1226 in the loop that are dominated by it must be scaled by
1227 1 / (1 - exit->probability). */
1228 if (exit->probability.initialized_p ())
1229 scale_dominated_blocks_in_loop (loop, exit->src,
1230 /* We are scaling up here so
1231 probability does not fit. */
1232 loop->header->count,
1233 loop->header->count
1234 - loop->header->count.apply_probability
1235 (exit->probability));
1237 gimple_stmt_iterator bsi = gsi_last_bb (exit_bb);
1238 exit_if = gimple_build_cond (EQ_EXPR, integer_zero_node,
1239 integer_zero_node,
1240 NULL_TREE, NULL_TREE);
1242 gsi_insert_after (&bsi, exit_if, GSI_NEW_STMT);
1243 new_exit = make_edge (exit_bb, rest, EDGE_FALSE_VALUE | irr);
1244 rescan_loop_exit (new_exit, true, false);
1246 /* Set the probability of new exit to the same of the old one. Fix
1247 the frequency of the latch block, by scaling it back by
1248 1 - exit->probability. */
1249 new_exit->probability = exit->probability;
1250 edge new_nonexit = single_pred_edge (loop->latch);
1251 new_nonexit->probability = exit->probability.invert ();
1252 new_nonexit->flags = EDGE_TRUE_VALUE;
1253 if (new_nonexit->probability.initialized_p ())
1254 scale_bbs_frequencies (&loop->latch, 1, new_nonexit->probability);
1256 edge old_entry = loop_preheader_edge (loop);
1257 edge new_entry = loop_preheader_edge (new_loop);
1258 edge old_latch = loop_latch_edge (loop);
1259 for (gphi_iterator psi_old_loop = gsi_start_phis (loop->header),
1260 psi_new_loop = gsi_start_phis (new_loop->header);
1261 !gsi_end_p (psi_old_loop);
1262 gsi_next (&psi_old_loop), gsi_next (&psi_new_loop))
1264 gphi *phi_old_loop = psi_old_loop.phi ();
1265 gphi *phi_new_loop = psi_new_loop.phi ();
1267 tree init = PHI_ARG_DEF_FROM_EDGE (phi_old_loop, old_entry);
1268 use_operand_p op
1269 = PHI_ARG_DEF_PTR_FROM_EDGE (phi_new_loop, new_entry);
1270 gcc_assert (operand_equal_for_phi_arg_p (init, USE_FROM_PTR (op)));
1271 tree next = PHI_ARG_DEF_FROM_EDGE (phi_old_loop, old_latch);
1273 /* Prefer using original variable as a base for the new ssa name.
1274 This is necessary for virtual ops, and useful in order to avoid
1275 losing debug info for real ops. */
1276 tree new_init;
1277 if (TREE_CODE (next) == SSA_NAME
1278 && useless_type_conversion_p (TREE_TYPE (next),
1279 TREE_TYPE (init)))
1280 new_init = copy_ssa_name (next);
1281 else if (TREE_CODE (init) == SSA_NAME
1282 && useless_type_conversion_p (TREE_TYPE (init),
1283 TREE_TYPE (next)))
1284 new_init = copy_ssa_name (init);
1285 else if (useless_type_conversion_p (TREE_TYPE (next),
1286 TREE_TYPE (init)))
1287 new_init = make_temp_ssa_name (TREE_TYPE (next), NULL,
1288 "unrinittmp");
1289 else
1290 new_init = make_temp_ssa_name (TREE_TYPE (init), NULL,
1291 "unrinittmp");
1293 gphi *phi_rest = create_phi_node (new_init, rest);
1294 add_phi_arg (phi_rest, init, precond_edge, UNKNOWN_LOCATION);
1295 add_phi_arg (phi_rest, next, new_exit, UNKNOWN_LOCATION);
1296 SET_USE (op, new_init);
1299 remove_path (exit);
1301 else
1302 new_exit = single_dom_exit (loop);
1304 /* Transform the loop. */
1305 if (transform)
1306 (*transform) (loop, data);
1308 /* Unroll the loop and remove the exits in all iterations except for the
1309 last one. */
1310 auto_sbitmap wont_exit (factor);
1311 bitmap_ones (wont_exit);
1312 bitmap_clear_bit (wont_exit, factor - 1);
1314 auto_vec<edge> to_remove;
1315 bool ok
1316 = gimple_duplicate_loop_body_to_header_edge (loop, loop_latch_edge (loop),
1317 factor - 1, wont_exit,
1318 new_exit, &to_remove,
1319 DLTHE_FLAG_UPDATE_FREQ);
1320 gcc_assert (ok);
1322 for (edge e : to_remove)
1324 ok = remove_path (e);
1325 gcc_assert (ok);
1327 update_ssa (TODO_update_ssa);
1329 new_exit = single_dom_exit (loop);
1330 if (!single_loop_p)
1332 /* Ensure that the frequencies in the loop match the new estimated
1333 number of iterations, and change the probability of the new
1334 exit edge. */
1336 profile_count freq_h = loop->header->count;
1337 profile_count freq_e = (loop_preheader_edge (loop))->count ();
1338 if (freq_h.nonzero_p ())
1340 /* Avoid dropping loop body profile counter to 0 because of zero
1341 count in loop's preheader. */
1342 if (freq_h.nonzero_p () && !(freq_e == profile_count::zero ()))
1343 freq_e = freq_e.force_nonzero ();
1344 scale_loop_frequencies (loop, freq_e.probability_in (freq_h));
1347 basic_block rest = new_exit->dest;
1348 new_exit->probability
1349 = (profile_probability::always () / (new_est_niter + 1));
1351 rest->count += new_exit->count ();
1353 edge new_nonexit = single_pred_edge (loop->latch);
1354 profile_probability prob = new_nonexit->probability;
1355 new_nonexit->probability = new_exit->probability.invert ();
1356 prob = new_nonexit->probability / prob;
1357 if (prob.initialized_p ())
1358 scale_bbs_frequencies (&loop->latch, 1, prob);
1360 /* Finally create the new counter for number of iterations and add
1361 the new exit instruction. */
1362 tree ctr_before, ctr_after;
1363 gimple_stmt_iterator bsi = gsi_last_nondebug_bb (new_exit->src);
1364 exit_if = as_a <gcond *> (gsi_stmt (bsi));
1365 create_iv (exit_base, exit_step, NULL_TREE, loop,
1366 &bsi, false, &ctr_before, &ctr_after);
1367 gimple_cond_set_code (exit_if, exit_cmp);
1368 gimple_cond_set_lhs (exit_if, ctr_after);
1369 gimple_cond_set_rhs (exit_if, exit_bound);
1370 update_stmt (exit_if);
1372 else
1374 /* gimple_duplicate_loop_to_header_edge has adjusted the loop body's
1375 original profile counts in line with the unroll factor. However,
1376 the old counts might not have been consistent with the old
1377 iteration count.
1379 Therefore, if the iteration count is known exactly, make sure that the
1380 profile counts of the loop header (and any other blocks that might be
1381 executed in the final iteration) are consistent with the combination
1382 of (a) the incoming profile count and (b) the new iteration count. */
1383 profile_count in_count = loop_preheader_edge (loop)->count ();
1384 profile_count old_header_count = loop->header->count;
1385 if (in_count.nonzero_p ()
1386 && old_header_count.nonzero_p ()
1387 && TREE_CODE (desc->niter) == INTEGER_CST)
1389 /* The + 1 converts latch counts to iteration counts. */
1390 profile_count new_header_count = in_count * (new_est_niter + 1);
1391 basic_block *body = get_loop_body (loop);
1392 scale_bbs_frequencies_profile_count (body, loop->num_nodes,
1393 new_header_count,
1394 old_header_count);
1395 free (body);
1398 /* gimple_duplicate_loop_to_header_edge discarded FACTOR - 1
1399 exit edges and adjusted the loop body's profile counts for the
1400 new probabilities of the remaining non-exit edges. However,
1401 the remaining exit edge still has the same probability as it
1402 did before, even though it is now more likely.
1404 Therefore, all blocks executed after a failed exit test now have
1405 a profile count that is too high, and the sum of the profile counts
1406 for the header's incoming edges is greater than the profile count
1407 of the header itself.
1409 Adjust the profile counts of all code in the loop body after
1410 the exit test so that the sum of the counts on entry to the
1411 header agree. */
1412 profile_count old_latch_count = loop_latch_edge (loop)->count ();
1413 profile_count new_latch_count = loop->header->count - in_count;
1414 if (old_latch_count.nonzero_p () && new_latch_count.nonzero_p ())
1415 scale_dominated_blocks_in_loop (loop, new_exit->src, new_latch_count,
1416 old_latch_count);
1418 /* Set the probability of the exit edge based on NEW_EST_NITER
1419 (which estimates latch counts rather than iteration counts).
1420 Update the probabilities of other edges to match.
1422 If the profile counts are large enough to give the required
1423 precision, the updates above will have made
1425 e->dest->count / e->src->count ~= new e->probability
1427 for every outgoing edge e of NEW_EXIT->src. */
1428 profile_probability new_exit_prob
1429 = profile_probability::always () / (new_est_niter + 1);
1430 change_edge_frequency (new_exit, new_exit_prob);
1433 checking_verify_flow_info ();
1434 checking_verify_loop_structure ();
1435 checking_verify_loop_closed_ssa (true, loop);
1436 if (new_loop)
1437 checking_verify_loop_closed_ssa (true, new_loop);
1440 /* Wrapper over tree_transform_and_unroll_loop for case we do not
1441 want to transform the loop before unrolling. The meaning
1442 of the arguments is the same as for tree_transform_and_unroll_loop. */
1444 void
1445 tree_unroll_loop (class loop *loop, unsigned factor,
1446 class tree_niter_desc *desc)
1448 tree_transform_and_unroll_loop (loop, factor, desc, NULL, NULL);
1451 /* Rewrite the phi node at position PSI in function of the main
1452 induction variable MAIN_IV and insert the generated code at GSI. */
1454 static void
1455 rewrite_phi_with_iv (loop_p loop,
1456 gphi_iterator *psi,
1457 gimple_stmt_iterator *gsi,
1458 tree main_iv)
1460 affine_iv iv;
1461 gassign *stmt;
1462 gphi *phi = psi->phi ();
1463 tree atype, mtype, val, res = PHI_RESULT (phi);
1465 if (virtual_operand_p (res) || res == main_iv)
1467 gsi_next (psi);
1468 return;
1471 if (!simple_iv (loop, loop, res, &iv, true))
1473 gsi_next (psi);
1474 return;
1477 remove_phi_node (psi, false);
1479 atype = TREE_TYPE (res);
1480 mtype = POINTER_TYPE_P (atype) ? sizetype : atype;
1481 val = fold_build2 (MULT_EXPR, mtype, unshare_expr (iv.step),
1482 fold_convert (mtype, main_iv));
1483 val = fold_build2 (POINTER_TYPE_P (atype)
1484 ? POINTER_PLUS_EXPR : PLUS_EXPR,
1485 atype, unshare_expr (iv.base), val);
1486 val = force_gimple_operand_gsi (gsi, val, false, NULL_TREE, true,
1487 GSI_SAME_STMT);
1488 stmt = gimple_build_assign (res, val);
1489 gsi_insert_before (gsi, stmt, GSI_SAME_STMT);
1492 /* Rewrite all the phi nodes of LOOP in function of the main induction
1493 variable MAIN_IV. */
1495 static void
1496 rewrite_all_phi_nodes_with_iv (loop_p loop, tree main_iv)
1498 unsigned i;
1499 basic_block *bbs = get_loop_body_in_dom_order (loop);
1500 gphi_iterator psi;
1502 for (i = 0; i < loop->num_nodes; i++)
1504 basic_block bb = bbs[i];
1505 gimple_stmt_iterator gsi = gsi_after_labels (bb);
1507 if (bb->loop_father != loop)
1508 continue;
1510 for (psi = gsi_start_phis (bb); !gsi_end_p (psi); )
1511 rewrite_phi_with_iv (loop, &psi, &gsi, main_iv);
1514 free (bbs);
1517 /* Bases all the induction variables in LOOP on a single induction variable
1518 (with base 0 and step 1), whose final value is compared with *NIT. When the
1519 IV type precision has to be larger than *NIT type precision, *NIT is
1520 converted to the larger type, the conversion code is inserted before the
1521 loop, and *NIT is updated to the new definition. When BUMP_IN_LATCH is true,
1522 the induction variable is incremented in the loop latch, otherwise it is
1523 incremented in the loop header. Return the induction variable that was
1524 created. */
1526 tree
1527 canonicalize_loop_ivs (class loop *loop, tree *nit, bool bump_in_latch)
1529 unsigned precision = TYPE_PRECISION (TREE_TYPE (*nit));
1530 unsigned original_precision = precision;
1531 tree type, var_before;
1532 gimple_stmt_iterator gsi;
1533 gphi_iterator psi;
1534 gcond *stmt;
1535 edge exit = single_dom_exit (loop);
1536 gimple_seq stmts;
1537 bool unsigned_p = false;
1539 for (psi = gsi_start_phis (loop->header);
1540 !gsi_end_p (psi); gsi_next (&psi))
1542 gphi *phi = psi.phi ();
1543 tree res = PHI_RESULT (phi);
1544 bool uns;
1546 type = TREE_TYPE (res);
1547 if (virtual_operand_p (res)
1548 || (!INTEGRAL_TYPE_P (type)
1549 && !POINTER_TYPE_P (type))
1550 || TYPE_PRECISION (type) < precision)
1551 continue;
1553 uns = POINTER_TYPE_P (type) | TYPE_UNSIGNED (type);
1555 if (TYPE_PRECISION (type) > precision)
1556 unsigned_p = uns;
1557 else
1558 unsigned_p |= uns;
1560 precision = TYPE_PRECISION (type);
1563 scalar_int_mode mode = smallest_int_mode_for_size (precision);
1564 precision = GET_MODE_PRECISION (mode);
1565 type = build_nonstandard_integer_type (precision, unsigned_p);
1567 if (original_precision != precision
1568 || TYPE_UNSIGNED (TREE_TYPE (*nit)) != unsigned_p)
1570 *nit = fold_convert (type, *nit);
1571 *nit = force_gimple_operand (*nit, &stmts, true, NULL_TREE);
1572 if (stmts)
1573 gsi_insert_seq_on_edge_immediate (loop_preheader_edge (loop), stmts);
1576 if (bump_in_latch)
1577 gsi = gsi_last_bb (loop->latch);
1578 else
1579 gsi = gsi_last_nondebug_bb (loop->header);
1580 create_iv (build_int_cst_type (type, 0), build_int_cst (type, 1), NULL_TREE,
1581 loop, &gsi, bump_in_latch, &var_before, NULL);
1583 rewrite_all_phi_nodes_with_iv (loop, var_before);
1585 stmt = as_a <gcond *> (last_stmt (exit->src));
1586 /* Make the loop exit if the control condition is not satisfied. */
1587 if (exit->flags & EDGE_TRUE_VALUE)
1589 edge te, fe;
1591 extract_true_false_edges_from_block (exit->src, &te, &fe);
1592 te->flags = EDGE_FALSE_VALUE;
1593 fe->flags = EDGE_TRUE_VALUE;
1595 gimple_cond_set_code (stmt, LT_EXPR);
1596 gimple_cond_set_lhs (stmt, var_before);
1597 gimple_cond_set_rhs (stmt, *nit);
1598 update_stmt (stmt);
1600 return var_before;