* varasm.c (elf_record_gcc_switches): Cast second argument of
[official-gcc.git] / gcc / cfgloopmanip.c
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1 /* Loop manipulation code for GNU compiler.
2 Copyright (C) 2002, 2003, 2004, 2005 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 2, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 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 COPYING. If not, write to the Free
18 Software Foundation, 51 Franklin Street, Fifth Floor, Boston, MA
19 02110-1301, USA. */
21 #include "config.h"
22 #include "system.h"
23 #include "coretypes.h"
24 #include "tm.h"
25 #include "rtl.h"
26 #include "hard-reg-set.h"
27 #include "obstack.h"
28 #include "basic-block.h"
29 #include "cfgloop.h"
30 #include "cfglayout.h"
31 #include "cfghooks.h"
32 #include "output.h"
34 static void duplicate_subloops (struct loop *, struct loop *);
35 static void copy_loops_to (struct loop **, int,
36 struct loop *);
37 static void loop_redirect_edge (edge, basic_block);
38 static bool loop_delete_branch_edge (edge, int);
39 static void remove_bbs (basic_block *, int);
40 static bool rpe_enum_p (basic_block, void *);
41 static int find_path (edge, basic_block **);
42 static bool alp_enum_p (basic_block, void *);
43 static void fix_loop_placements (struct loop *, bool *);
44 static bool fix_bb_placement (basic_block);
45 static void fix_bb_placements (basic_block, bool *);
46 static void place_new_loop (struct loop *);
47 static void scale_loop_frequencies (struct loop *, int, int);
48 static basic_block create_preheader (struct loop *, int);
49 static void unloop (struct loop *, bool *);
51 #define RDIV(X,Y) (((X) + (Y) / 2) / (Y))
53 /* Checks whether basic block BB is dominated by DATA. */
54 static bool
55 rpe_enum_p (basic_block bb, void *data)
57 return dominated_by_p (CDI_DOMINATORS, bb, data);
60 /* Remove basic blocks BBS. NBBS is the number of the basic blocks. */
62 static void
63 remove_bbs (basic_block *bbs, int nbbs)
65 int i;
67 for (i = 0; i < nbbs; i++)
68 delete_basic_block (bbs[i]);
71 /* Find path -- i.e. the basic blocks dominated by edge E and put them
72 into array BBS, that will be allocated large enough to contain them.
73 E->dest must have exactly one predecessor for this to work (it is
74 easy to achieve and we do not put it here because we do not want to
75 alter anything by this function). The number of basic blocks in the
76 path is returned. */
77 static int
78 find_path (edge e, basic_block **bbs)
80 gcc_assert (EDGE_COUNT (e->dest->preds) <= 1);
82 /* Find bbs in the path. */
83 *bbs = XCNEWVEC (basic_block, n_basic_blocks);
84 return dfs_enumerate_from (e->dest, 0, rpe_enum_p, *bbs,
85 n_basic_blocks, e->dest);
88 /* Fix placement of basic block BB inside loop hierarchy --
89 Let L be a loop to that BB belongs. Then every successor of BB must either
90 1) belong to some superloop of loop L, or
91 2) be a header of loop K such that K->outer is superloop of L
92 Returns true if we had to move BB into other loop to enforce this condition,
93 false if the placement of BB was already correct (provided that placements
94 of its successors are correct). */
95 static bool
96 fix_bb_placement (basic_block bb)
98 edge e;
99 edge_iterator ei;
100 struct loop *loop = current_loops->tree_root, *act;
102 FOR_EACH_EDGE (e, ei, bb->succs)
104 if (e->dest == EXIT_BLOCK_PTR)
105 continue;
107 act = e->dest->loop_father;
108 if (act->header == e->dest)
109 act = act->outer;
111 if (flow_loop_nested_p (loop, act))
112 loop = act;
115 if (loop == bb->loop_father)
116 return false;
118 remove_bb_from_loops (bb);
119 add_bb_to_loop (bb, loop);
121 return true;
124 /* Fix placements of basic blocks inside loop hierarchy stored in loops; i.e.
125 enforce condition condition stated in description of fix_bb_placement. We
126 start from basic block FROM that had some of its successors removed, so that
127 his placement no longer has to be correct, and iteratively fix placement of
128 its predecessors that may change if placement of FROM changed. Also fix
129 placement of subloops of FROM->loop_father, that might also be altered due
130 to this change; the condition for them is similar, except that instead of
131 successors we consider edges coming out of the loops.
133 If the changes may invalidate the information about irreducible regions,
134 IRRED_INVALIDATED is set to true. */
136 static void
137 fix_bb_placements (basic_block from,
138 bool *irred_invalidated)
140 sbitmap in_queue;
141 basic_block *queue, *qtop, *qbeg, *qend;
142 struct loop *base_loop;
143 edge e;
145 /* We pass through blocks back-reachable from FROM, testing whether some
146 of their successors moved to outer loop. It may be necessary to
147 iterate several times, but it is finite, as we stop unless we move
148 the basic block up the loop structure. The whole story is a bit
149 more complicated due to presence of subloops, those are moved using
150 fix_loop_placement. */
152 base_loop = from->loop_father;
153 if (base_loop == current_loops->tree_root)
154 return;
156 in_queue = sbitmap_alloc (last_basic_block);
157 sbitmap_zero (in_queue);
158 SET_BIT (in_queue, from->index);
159 /* Prevent us from going out of the base_loop. */
160 SET_BIT (in_queue, base_loop->header->index);
162 queue = XNEWVEC (basic_block, base_loop->num_nodes + 1);
163 qtop = queue + base_loop->num_nodes + 1;
164 qbeg = queue;
165 qend = queue + 1;
166 *qbeg = from;
168 while (qbeg != qend)
170 edge_iterator ei;
171 from = *qbeg;
172 qbeg++;
173 if (qbeg == qtop)
174 qbeg = queue;
175 RESET_BIT (in_queue, from->index);
177 if (from->loop_father->header == from)
179 /* Subloop header, maybe move the loop upward. */
180 if (!fix_loop_placement (from->loop_father))
181 continue;
183 else
185 /* Ordinary basic block. */
186 if (!fix_bb_placement (from))
187 continue;
190 FOR_EACH_EDGE (e, ei, from->succs)
192 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
193 *irred_invalidated = true;
196 /* Something has changed, insert predecessors into queue. */
197 FOR_EACH_EDGE (e, ei, from->preds)
199 basic_block pred = e->src;
200 struct loop *nca;
202 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
203 *irred_invalidated = true;
205 if (TEST_BIT (in_queue, pred->index))
206 continue;
208 /* If it is subloop, then it either was not moved, or
209 the path up the loop tree from base_loop do not contain
210 it. */
211 nca = find_common_loop (pred->loop_father, base_loop);
212 if (pred->loop_father != base_loop
213 && (nca == base_loop
214 || nca != pred->loop_father))
215 pred = pred->loop_father->header;
216 else if (!flow_loop_nested_p (from->loop_father, pred->loop_father))
218 /* No point in processing it. */
219 continue;
222 if (TEST_BIT (in_queue, pred->index))
223 continue;
225 /* Schedule the basic block. */
226 *qend = pred;
227 qend++;
228 if (qend == qtop)
229 qend = queue;
230 SET_BIT (in_queue, pred->index);
233 free (in_queue);
234 free (queue);
237 /* Removes path beginning at edge E, i.e. remove basic blocks dominated by E
238 and update loop structures and dominators. Return true if we were able
239 to remove the path, false otherwise (and nothing is affected then). */
240 bool
241 remove_path (edge e)
243 edge ae;
244 basic_block *rem_bbs, *bord_bbs, *dom_bbs, from, bb;
245 int i, nrem, n_bord_bbs, n_dom_bbs, nreml;
246 sbitmap seen;
247 bool deleted, irred_invalidated = false;
248 struct loop **deleted_loop;
250 if (!loop_delete_branch_edge (e, 0))
251 return false;
253 /* Keep track of whether we need to update information about irreducible
254 regions. This is the case if the removed area is a part of the
255 irreducible region, or if the set of basic blocks that belong to a loop
256 that is inside an irreducible region is changed, or if such a loop is
257 removed. */
258 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
259 irred_invalidated = true;
261 /* We need to check whether basic blocks are dominated by the edge
262 e, but we only have basic block dominators. This is easy to
263 fix -- when e->dest has exactly one predecessor, this corresponds
264 to blocks dominated by e->dest, if not, split the edge. */
265 if (!single_pred_p (e->dest))
266 e = single_pred_edge (split_edge (e));
268 /* It may happen that by removing path we remove one or more loops
269 we belong to. In this case first unloop the loops, then proceed
270 normally. We may assume that e->dest is not a header of any loop,
271 as it now has exactly one predecessor. */
272 while (e->src->loop_father->outer
273 && dominated_by_p (CDI_DOMINATORS,
274 e->src->loop_father->latch, e->dest))
275 unloop (e->src->loop_father, &irred_invalidated);
277 /* Identify the path. */
278 nrem = find_path (e, &rem_bbs);
280 n_bord_bbs = 0;
281 bord_bbs = XCNEWVEC (basic_block, n_basic_blocks);
282 seen = sbitmap_alloc (last_basic_block);
283 sbitmap_zero (seen);
285 /* Find "border" hexes -- i.e. those with predecessor in removed path. */
286 for (i = 0; i < nrem; i++)
287 SET_BIT (seen, rem_bbs[i]->index);
288 for (i = 0; i < nrem; i++)
290 edge_iterator ei;
291 bb = rem_bbs[i];
292 FOR_EACH_EDGE (ae, ei, rem_bbs[i]->succs)
293 if (ae->dest != EXIT_BLOCK_PTR && !TEST_BIT (seen, ae->dest->index))
295 SET_BIT (seen, ae->dest->index);
296 bord_bbs[n_bord_bbs++] = ae->dest;
298 if (ae->flags & EDGE_IRREDUCIBLE_LOOP)
299 irred_invalidated = true;
303 /* Remove the path. */
304 from = e->src;
305 deleted = loop_delete_branch_edge (e, 1);
306 gcc_assert (deleted);
307 dom_bbs = XCNEWVEC (basic_block, n_basic_blocks);
309 /* Cancel loops contained in the path. */
310 deleted_loop = XNEWVEC (struct loop *, nrem);
311 nreml = 0;
312 for (i = 0; i < nrem; i++)
313 if (rem_bbs[i]->loop_father->header == rem_bbs[i])
314 deleted_loop[nreml++] = rem_bbs[i]->loop_father;
316 remove_bbs (rem_bbs, nrem);
317 free (rem_bbs);
319 for (i = 0; i < nreml; i++)
320 cancel_loop_tree (deleted_loop[i]);
321 free (deleted_loop);
323 /* Find blocks whose dominators may be affected. */
324 n_dom_bbs = 0;
325 sbitmap_zero (seen);
326 for (i = 0; i < n_bord_bbs; i++)
328 basic_block ldom;
330 bb = get_immediate_dominator (CDI_DOMINATORS, bord_bbs[i]);
331 if (TEST_BIT (seen, bb->index))
332 continue;
333 SET_BIT (seen, bb->index);
335 for (ldom = first_dom_son (CDI_DOMINATORS, bb);
336 ldom;
337 ldom = next_dom_son (CDI_DOMINATORS, ldom))
338 if (!dominated_by_p (CDI_DOMINATORS, from, ldom))
339 dom_bbs[n_dom_bbs++] = ldom;
342 free (seen);
344 /* Recount dominators. */
345 iterate_fix_dominators (CDI_DOMINATORS, dom_bbs, n_dom_bbs);
346 free (dom_bbs);
347 free (bord_bbs);
349 /* Fix placements of basic blocks inside loops and the placement of
350 loops in the loop tree. */
351 fix_bb_placements (from, &irred_invalidated);
352 fix_loop_placements (from->loop_father, &irred_invalidated);
354 if (irred_invalidated
355 && (current_loops->state & LOOPS_HAVE_MARKED_IRREDUCIBLE_REGIONS) != 0)
356 mark_irreducible_loops ();
358 return true;
361 /* Predicate for enumeration in add_loop. */
362 static bool
363 alp_enum_p (basic_block bb, void *alp_header)
365 return bb != (basic_block) alp_header;
368 /* Given LOOP structure with filled header and latch, find the body of the
369 corresponding loop and add it to loops tree. Insert the LOOP as a son of
370 outer. */
372 static void
373 add_loop (struct loop *loop, struct loop *outer)
375 basic_block *bbs;
376 int i, n;
378 /* Add it to loop structure. */
379 place_new_loop (loop);
380 flow_loop_tree_node_add (outer, loop);
382 /* Find its nodes. */
383 bbs = XCNEWVEC (basic_block, n_basic_blocks);
384 n = dfs_enumerate_from (loop->latch, 1, alp_enum_p,
385 bbs, n_basic_blocks, loop->header);
387 for (i = 0; i < n; i++)
389 remove_bb_from_loops (bbs[i]);
390 add_bb_to_loop (bbs[i], loop);
392 remove_bb_from_loops (loop->header);
393 add_bb_to_loop (loop->header, loop);
395 free (bbs);
398 /* Multiply all frequencies in LOOP by NUM/DEN. */
399 static void
400 scale_loop_frequencies (struct loop *loop, int num, int den)
402 basic_block *bbs;
404 bbs = get_loop_body (loop);
405 scale_bbs_frequencies_int (bbs, loop->num_nodes, num, den);
406 free (bbs);
409 /* Make area between HEADER_EDGE and LATCH_EDGE a loop by connecting
410 latch to header and update loop tree and dominators
411 accordingly. Everything between them plus LATCH_EDGE destination must
412 be dominated by HEADER_EDGE destination, and back-reachable from
413 LATCH_EDGE source. HEADER_EDGE is redirected to basic block SWITCH_BB,
414 FALSE_EDGE of SWITCH_BB to original destination of HEADER_EDGE and
415 TRUE_EDGE of SWITCH_BB to original destination of LATCH_EDGE.
416 Returns newly created loop. */
418 struct loop *
419 loopify (edge latch_edge, edge header_edge,
420 basic_block switch_bb, edge true_edge, edge false_edge,
421 bool redirect_all_edges)
423 basic_block succ_bb = latch_edge->dest;
424 basic_block pred_bb = header_edge->src;
425 basic_block *dom_bbs, *body;
426 unsigned n_dom_bbs, i;
427 sbitmap seen;
428 struct loop *loop = XCNEW (struct loop);
429 struct loop *outer = succ_bb->loop_father->outer;
430 int freq, prob, tot_prob;
431 gcov_type cnt;
432 edge e;
433 edge_iterator ei;
435 loop->header = header_edge->dest;
436 loop->latch = latch_edge->src;
438 freq = EDGE_FREQUENCY (header_edge);
439 cnt = header_edge->count;
440 prob = EDGE_SUCC (switch_bb, 0)->probability;
441 tot_prob = prob + EDGE_SUCC (switch_bb, 1)->probability;
442 if (tot_prob == 0)
443 tot_prob = 1;
445 /* Redirect edges. */
446 loop_redirect_edge (latch_edge, loop->header);
447 loop_redirect_edge (true_edge, succ_bb);
449 /* During loop versioning, one of the switch_bb edge is already properly
450 set. Do not redirect it again unless redirect_all_edges is true. */
451 if (redirect_all_edges)
453 loop_redirect_edge (header_edge, switch_bb);
454 loop_redirect_edge (false_edge, loop->header);
456 /* Update dominators. */
457 set_immediate_dominator (CDI_DOMINATORS, switch_bb, pred_bb);
458 set_immediate_dominator (CDI_DOMINATORS, loop->header, switch_bb);
461 set_immediate_dominator (CDI_DOMINATORS, succ_bb, switch_bb);
463 /* Compute new loop. */
464 add_loop (loop, outer);
466 /* Add switch_bb to appropriate loop. */
467 if (switch_bb->loop_father)
468 remove_bb_from_loops (switch_bb);
469 add_bb_to_loop (switch_bb, outer);
471 /* Fix frequencies. */
472 switch_bb->frequency = freq;
473 switch_bb->count = cnt;
474 FOR_EACH_EDGE (e, ei, switch_bb->succs)
475 e->count = (switch_bb->count * e->probability) / REG_BR_PROB_BASE;
476 scale_loop_frequencies (loop, prob, tot_prob);
477 scale_loop_frequencies (succ_bb->loop_father, tot_prob - prob, tot_prob);
479 /* Update dominators of blocks outside of LOOP. */
480 dom_bbs = XCNEWVEC (basic_block, n_basic_blocks);
481 n_dom_bbs = 0;
482 seen = sbitmap_alloc (last_basic_block);
483 sbitmap_zero (seen);
484 body = get_loop_body (loop);
486 for (i = 0; i < loop->num_nodes; i++)
487 SET_BIT (seen, body[i]->index);
489 for (i = 0; i < loop->num_nodes; i++)
491 basic_block ldom;
493 for (ldom = first_dom_son (CDI_DOMINATORS, body[i]);
494 ldom;
495 ldom = next_dom_son (CDI_DOMINATORS, ldom))
496 if (!TEST_BIT (seen, ldom->index))
498 SET_BIT (seen, ldom->index);
499 dom_bbs[n_dom_bbs++] = ldom;
503 iterate_fix_dominators (CDI_DOMINATORS, dom_bbs, n_dom_bbs);
505 free (body);
506 free (seen);
507 free (dom_bbs);
509 return loop;
512 /* Remove the latch edge of a LOOP and update loops to indicate that
513 the LOOP was removed. After this function, original loop latch will
514 have no successor, which caller is expected to fix somehow.
516 If this may cause the information about irreducible regions to become
517 invalid, IRRED_INVALIDATED is set to true. */
519 static void
520 unloop (struct loop *loop, bool *irred_invalidated)
522 basic_block *body;
523 struct loop *ploop;
524 unsigned i, n;
525 basic_block latch = loop->latch;
526 bool dummy = false;
528 if (loop_preheader_edge (loop)->flags & EDGE_IRREDUCIBLE_LOOP)
529 *irred_invalidated = true;
531 /* This is relatively straightforward. The dominators are unchanged, as
532 loop header dominates loop latch, so the only thing we have to care of
533 is the placement of loops and basic blocks inside the loop tree. We
534 move them all to the loop->outer, and then let fix_bb_placements do
535 its work. */
537 body = get_loop_body (loop);
538 n = loop->num_nodes;
539 for (i = 0; i < n; i++)
540 if (body[i]->loop_father == loop)
542 remove_bb_from_loops (body[i]);
543 add_bb_to_loop (body[i], loop->outer);
545 free(body);
547 while (loop->inner)
549 ploop = loop->inner;
550 flow_loop_tree_node_remove (ploop);
551 flow_loop_tree_node_add (loop->outer, ploop);
554 /* Remove the loop and free its data. */
555 delete_loop (loop);
557 remove_edge (single_succ_edge (latch));
559 /* We do not pass IRRED_INVALIDATED to fix_bb_placements here, as even if
560 there is an irreducible region inside the cancelled loop, the flags will
561 be still correct. */
562 fix_bb_placements (latch, &dummy);
565 /* Fix placement of LOOP inside loop tree, i.e. find the innermost superloop
566 FATHER of LOOP such that all of the edges coming out of LOOP belong to
567 FATHER, and set it as outer loop of LOOP. Return true if placement of
568 LOOP changed. */
571 fix_loop_placement (struct loop *loop)
573 basic_block *body;
574 unsigned i;
575 edge e;
576 edge_iterator ei;
577 struct loop *father = loop->pred[0], *act;
579 body = get_loop_body (loop);
580 for (i = 0; i < loop->num_nodes; i++)
581 FOR_EACH_EDGE (e, ei, body[i]->succs)
582 if (!flow_bb_inside_loop_p (loop, e->dest))
584 act = find_common_loop (loop, e->dest->loop_father);
585 if (flow_loop_nested_p (father, act))
586 father = act;
588 free (body);
590 if (father != loop->outer)
592 for (act = loop->outer; act != father; act = act->outer)
593 act->num_nodes -= loop->num_nodes;
594 flow_loop_tree_node_remove (loop);
595 flow_loop_tree_node_add (father, loop);
596 return 1;
598 return 0;
601 /* Fix placement of superloops of LOOP inside loop tree, i.e. ensure that
602 condition stated in description of fix_loop_placement holds for them.
603 It is used in case when we removed some edges coming out of LOOP, which
604 may cause the right placement of LOOP inside loop tree to change.
606 IRRED_INVALIDATED is set to true if a change in the loop structures might
607 invalidate the information about irreducible regions. */
609 static void
610 fix_loop_placements (struct loop *loop, bool *irred_invalidated)
612 struct loop *outer;
614 while (loop->outer)
616 outer = loop->outer;
617 if (!fix_loop_placement (loop))
618 break;
620 /* Changing the placement of a loop in the loop tree may alter the
621 validity of condition 2) of the description of fix_bb_placement
622 for its preheader, because the successor is the header and belongs
623 to the loop. So call fix_bb_placements to fix up the placement
624 of the preheader and (possibly) of its predecessors. */
625 fix_bb_placements (loop_preheader_edge (loop)->src,
626 irred_invalidated);
627 loop = outer;
631 /* Creates place for a new LOOP in loops structure. */
632 static void
633 place_new_loop (struct loop *loop)
635 loop->num = number_of_loops ();
636 VEC_safe_push (loop_p, heap, current_loops->larray, loop);
639 /* Copies copy of LOOP as subloop of TARGET loop, placing newly
640 created loop into loops structure. */
641 struct loop *
642 duplicate_loop (struct loop *loop, struct loop *target)
644 struct loop *cloop;
645 cloop = XCNEW (struct loop);
646 place_new_loop (cloop);
648 /* Mark the new loop as copy of LOOP. */
649 loop->copy = cloop;
651 /* Add it to target. */
652 flow_loop_tree_node_add (target, cloop);
654 return cloop;
657 /* Copies structure of subloops of LOOP into TARGET loop, placing
658 newly created loops into loop tree. */
659 static void
660 duplicate_subloops (struct loop *loop, struct loop *target)
662 struct loop *aloop, *cloop;
664 for (aloop = loop->inner; aloop; aloop = aloop->next)
666 cloop = duplicate_loop (aloop, target);
667 duplicate_subloops (aloop, cloop);
671 /* Copies structure of subloops of N loops, stored in array COPIED_LOOPS,
672 into TARGET loop, placing newly created loops into loop tree. */
673 static void
674 copy_loops_to (struct loop **copied_loops, int n, struct loop *target)
676 struct loop *aloop;
677 int i;
679 for (i = 0; i < n; i++)
681 aloop = duplicate_loop (copied_loops[i], target);
682 duplicate_subloops (copied_loops[i], aloop);
686 /* Redirects edge E to basic block DEST. */
687 static void
688 loop_redirect_edge (edge e, basic_block dest)
690 if (e->dest == dest)
691 return;
693 redirect_edge_and_branch_force (e, dest);
696 /* Deletes edge E from a branch if possible. Unless REALLY_DELETE is set,
697 just test whether it is possible to remove the edge. */
698 static bool
699 loop_delete_branch_edge (edge e, int really_delete)
701 basic_block src = e->src;
702 basic_block newdest;
703 int irr;
704 edge snd;
706 gcc_assert (EDGE_COUNT (src->succs) > 1);
708 /* Cannot handle more than two exit edges. */
709 if (EDGE_COUNT (src->succs) > 2)
710 return false;
711 /* And it must be just a simple branch. */
712 if (!any_condjump_p (BB_END (src)))
713 return false;
715 snd = e == EDGE_SUCC (src, 0) ? EDGE_SUCC (src, 1) : EDGE_SUCC (src, 0);
716 newdest = snd->dest;
717 if (newdest == EXIT_BLOCK_PTR)
718 return false;
720 /* Hopefully the above conditions should suffice. */
721 if (!really_delete)
722 return true;
724 /* Redirecting behaves wrongly wrto this flag. */
725 irr = snd->flags & EDGE_IRREDUCIBLE_LOOP;
727 if (!redirect_edge_and_branch (e, newdest))
728 return false;
729 single_succ_edge (src)->flags &= ~EDGE_IRREDUCIBLE_LOOP;
730 single_succ_edge (src)->flags |= irr;
732 return true;
735 /* Check whether LOOP's body can be duplicated. */
736 bool
737 can_duplicate_loop_p (struct loop *loop)
739 int ret;
740 basic_block *bbs = get_loop_body (loop);
742 ret = can_copy_bbs_p (bbs, loop->num_nodes);
743 free (bbs);
745 return ret;
748 /* The NBBS blocks in BBS will get duplicated and the copies will be placed
749 to LOOP. Update the single_exit information in superloops of LOOP. */
751 static void
752 update_single_exits_after_duplication (basic_block *bbs, unsigned nbbs,
753 struct loop *loop)
755 unsigned i;
757 for (i = 0; i < nbbs; i++)
758 bbs[i]->flags |= BB_DUPLICATED;
760 for (; loop->outer; loop = loop->outer)
762 if (!single_exit (loop))
763 continue;
765 if (single_exit (loop)->src->flags & BB_DUPLICATED)
766 set_single_exit (loop, NULL);
769 for (i = 0; i < nbbs; i++)
770 bbs[i]->flags &= ~BB_DUPLICATED;
773 /* Updates single exit information for the copy of LOOP. */
775 static void
776 update_single_exit_for_duplicated_loop (struct loop *loop)
778 struct loop *copy = loop->copy;
779 basic_block src, dest;
780 edge exit = single_exit (loop);
782 if (!exit)
783 return;
785 src = get_bb_copy (exit->src);
786 dest = exit->dest;
787 if (dest->flags & BB_DUPLICATED)
788 dest = get_bb_copy (dest);
790 exit = find_edge (src, dest);
791 gcc_assert (exit != NULL);
792 set_single_exit (copy, exit);
795 /* Updates single exit information for copies of ORIG_LOOPS and their subloops.
796 N is the number of the loops in the ORIG_LOOPS array. */
798 static void
799 update_single_exit_for_duplicated_loops (struct loop *orig_loops[], unsigned n)
801 unsigned i;
803 for (i = 0; i < n; i++)
804 update_single_exit_for_duplicated_loop (orig_loops[i]);
807 /* Duplicates body of LOOP to given edge E NDUPL times. Takes care of updating
808 loop structure and dominators. E's destination must be LOOP header for
809 this to work, i.e. it must be entry or latch edge of this loop; these are
810 unique, as the loops must have preheaders for this function to work
811 correctly (in case E is latch, the function unrolls the loop, if E is entry
812 edge, it peels the loop). Store edges created by copying ORIG edge from
813 copies corresponding to set bits in WONT_EXIT bitmap (bit 0 corresponds to
814 original LOOP body, the other copies are numbered in order given by control
815 flow through them) into TO_REMOVE array. Returns false if duplication is
816 impossible. */
817 bool
818 duplicate_loop_to_header_edge (struct loop *loop, edge e,
819 unsigned int ndupl, sbitmap wont_exit,
820 edge orig, edge *to_remove,
821 unsigned int *n_to_remove, int flags)
823 struct loop *target, *aloop;
824 struct loop **orig_loops;
825 unsigned n_orig_loops;
826 basic_block header = loop->header, latch = loop->latch;
827 basic_block *new_bbs, *bbs, *first_active;
828 basic_block new_bb, bb, first_active_latch = NULL;
829 edge ae, latch_edge;
830 edge spec_edges[2], new_spec_edges[2];
831 #define SE_LATCH 0
832 #define SE_ORIG 1
833 unsigned i, j, n;
834 int is_latch = (latch == e->src);
835 int scale_act = 0, *scale_step = NULL, scale_main = 0;
836 int p, freq_in, freq_le, freq_out_orig;
837 int prob_pass_thru, prob_pass_wont_exit, prob_pass_main;
838 int add_irreducible_flag;
839 basic_block place_after;
841 gcc_assert (e->dest == loop->header);
842 gcc_assert (ndupl > 0);
844 if (orig)
846 /* Orig must be edge out of the loop. */
847 gcc_assert (flow_bb_inside_loop_p (loop, orig->src));
848 gcc_assert (!flow_bb_inside_loop_p (loop, orig->dest));
851 n = loop->num_nodes;
852 bbs = get_loop_body_in_dom_order (loop);
853 gcc_assert (bbs[0] == loop->header);
854 gcc_assert (bbs[n - 1] == loop->latch);
856 /* Check whether duplication is possible. */
857 if (!can_copy_bbs_p (bbs, loop->num_nodes))
859 free (bbs);
860 return false;
862 new_bbs = XNEWVEC (basic_block, loop->num_nodes);
864 /* In case we are doing loop peeling and the loop is in the middle of
865 irreducible region, the peeled copies will be inside it too. */
866 add_irreducible_flag = e->flags & EDGE_IRREDUCIBLE_LOOP;
867 gcc_assert (!is_latch || !add_irreducible_flag);
869 /* Find edge from latch. */
870 latch_edge = loop_latch_edge (loop);
872 if (flags & DLTHE_FLAG_UPDATE_FREQ)
874 /* Calculate coefficients by that we have to scale frequencies
875 of duplicated loop bodies. */
876 freq_in = header->frequency;
877 freq_le = EDGE_FREQUENCY (latch_edge);
878 if (freq_in == 0)
879 freq_in = 1;
880 if (freq_in < freq_le)
881 freq_in = freq_le;
882 freq_out_orig = orig ? EDGE_FREQUENCY (orig) : freq_in - freq_le;
883 if (freq_out_orig > freq_in - freq_le)
884 freq_out_orig = freq_in - freq_le;
885 prob_pass_thru = RDIV (REG_BR_PROB_BASE * freq_le, freq_in);
886 prob_pass_wont_exit =
887 RDIV (REG_BR_PROB_BASE * (freq_le + freq_out_orig), freq_in);
889 scale_step = XNEWVEC (int, ndupl);
891 for (i = 1; i <= ndupl; i++)
892 scale_step[i - 1] = TEST_BIT (wont_exit, i)
893 ? prob_pass_wont_exit
894 : prob_pass_thru;
896 /* Complete peeling is special as the probability of exit in last
897 copy becomes 1. */
898 if (flags & DLTHE_FLAG_COMPLETTE_PEEL)
900 int wanted_freq = EDGE_FREQUENCY (e);
902 if (wanted_freq > freq_in)
903 wanted_freq = freq_in;
905 gcc_assert (!is_latch);
906 /* First copy has frequency of incoming edge. Each subsequent
907 frequency should be reduced by prob_pass_wont_exit. Caller
908 should've managed the flags so all except for original loop
909 has won't exist set. */
910 scale_act = RDIV (wanted_freq * REG_BR_PROB_BASE, freq_in);
911 /* Now simulate the duplication adjustments and compute header
912 frequency of the last copy. */
913 for (i = 0; i < ndupl; i++)
914 wanted_freq = RDIV (wanted_freq * scale_step[i], REG_BR_PROB_BASE);
915 scale_main = RDIV (wanted_freq * REG_BR_PROB_BASE, freq_in);
917 else if (is_latch)
919 prob_pass_main = TEST_BIT (wont_exit, 0)
920 ? prob_pass_wont_exit
921 : prob_pass_thru;
922 p = prob_pass_main;
923 scale_main = REG_BR_PROB_BASE;
924 for (i = 0; i < ndupl; i++)
926 scale_main += p;
927 p = RDIV (p * scale_step[i], REG_BR_PROB_BASE);
929 scale_main = RDIV (REG_BR_PROB_BASE * REG_BR_PROB_BASE, scale_main);
930 scale_act = RDIV (scale_main * prob_pass_main, REG_BR_PROB_BASE);
932 else
934 scale_main = REG_BR_PROB_BASE;
935 for (i = 0; i < ndupl; i++)
936 scale_main = RDIV (scale_main * scale_step[i], REG_BR_PROB_BASE);
937 scale_act = REG_BR_PROB_BASE - prob_pass_thru;
939 for (i = 0; i < ndupl; i++)
940 gcc_assert (scale_step[i] >= 0 && scale_step[i] <= REG_BR_PROB_BASE);
941 gcc_assert (scale_main >= 0 && scale_main <= REG_BR_PROB_BASE
942 && scale_act >= 0 && scale_act <= REG_BR_PROB_BASE);
945 /* Loop the new bbs will belong to. */
946 target = e->src->loop_father;
948 /* Original loops. */
949 n_orig_loops = 0;
950 for (aloop = loop->inner; aloop; aloop = aloop->next)
951 n_orig_loops++;
952 orig_loops = XCNEWVEC (struct loop *, n_orig_loops);
953 for (aloop = loop->inner, i = 0; aloop; aloop = aloop->next, i++)
954 orig_loops[i] = aloop;
956 loop->copy = target;
958 first_active = XNEWVEC (basic_block, n);
959 if (is_latch)
961 memcpy (first_active, bbs, n * sizeof (basic_block));
962 first_active_latch = latch;
965 /* Update the information about single exits. */
966 if (current_loops->state & LOOPS_HAVE_MARKED_SINGLE_EXITS)
967 update_single_exits_after_duplication (bbs, n, target);
969 /* Record exit edge in original loop body. */
970 if (orig && TEST_BIT (wont_exit, 0))
971 to_remove[(*n_to_remove)++] = orig;
973 spec_edges[SE_ORIG] = orig;
974 spec_edges[SE_LATCH] = latch_edge;
976 place_after = e->src;
977 for (j = 0; j < ndupl; j++)
979 /* Copy loops. */
980 copy_loops_to (orig_loops, n_orig_loops, target);
982 /* Copy bbs. */
983 copy_bbs (bbs, n, new_bbs, spec_edges, 2, new_spec_edges, loop,
984 place_after);
985 place_after = new_spec_edges[SE_LATCH]->src;
987 if (current_loops->state & LOOPS_HAVE_MARKED_SINGLE_EXITS)
989 for (i = 0; i < n; i++)
990 bbs[i]->flags |= BB_DUPLICATED;
991 update_single_exit_for_duplicated_loops (orig_loops, n_orig_loops);
992 for (i = 0; i < n; i++)
993 bbs[i]->flags &= ~BB_DUPLICATED;
996 if (flags & DLTHE_RECORD_COPY_NUMBER)
997 for (i = 0; i < n; i++)
999 gcc_assert (!new_bbs[i]->aux);
1000 new_bbs[i]->aux = (void *)(size_t)(j + 1);
1003 /* Note whether the blocks and edges belong to an irreducible loop. */
1004 if (add_irreducible_flag)
1006 for (i = 0; i < n; i++)
1007 new_bbs[i]->flags |= BB_DUPLICATED;
1008 for (i = 0; i < n; i++)
1010 edge_iterator ei;
1011 new_bb = new_bbs[i];
1012 if (new_bb->loop_father == target)
1013 new_bb->flags |= BB_IRREDUCIBLE_LOOP;
1015 FOR_EACH_EDGE (ae, ei, new_bb->succs)
1016 if ((ae->dest->flags & BB_DUPLICATED)
1017 && (ae->src->loop_father == target
1018 || ae->dest->loop_father == target))
1019 ae->flags |= EDGE_IRREDUCIBLE_LOOP;
1021 for (i = 0; i < n; i++)
1022 new_bbs[i]->flags &= ~BB_DUPLICATED;
1025 /* Redirect the special edges. */
1026 if (is_latch)
1028 redirect_edge_and_branch_force (latch_edge, new_bbs[0]);
1029 redirect_edge_and_branch_force (new_spec_edges[SE_LATCH],
1030 loop->header);
1031 set_immediate_dominator (CDI_DOMINATORS, new_bbs[0], latch);
1032 latch = loop->latch = new_bbs[n - 1];
1033 e = latch_edge = new_spec_edges[SE_LATCH];
1035 else
1037 redirect_edge_and_branch_force (new_spec_edges[SE_LATCH],
1038 loop->header);
1039 redirect_edge_and_branch_force (e, new_bbs[0]);
1040 set_immediate_dominator (CDI_DOMINATORS, new_bbs[0], e->src);
1041 e = new_spec_edges[SE_LATCH];
1044 /* Record exit edge in this copy. */
1045 if (orig && TEST_BIT (wont_exit, j + 1))
1046 to_remove[(*n_to_remove)++] = new_spec_edges[SE_ORIG];
1048 /* Record the first copy in the control flow order if it is not
1049 the original loop (i.e. in case of peeling). */
1050 if (!first_active_latch)
1052 memcpy (first_active, new_bbs, n * sizeof (basic_block));
1053 first_active_latch = new_bbs[n - 1];
1056 /* Set counts and frequencies. */
1057 if (flags & DLTHE_FLAG_UPDATE_FREQ)
1059 scale_bbs_frequencies_int (new_bbs, n, scale_act, REG_BR_PROB_BASE);
1060 scale_act = RDIV (scale_act * scale_step[j], REG_BR_PROB_BASE);
1063 free (new_bbs);
1064 free (orig_loops);
1066 /* Update the original loop. */
1067 if (!is_latch)
1068 set_immediate_dominator (CDI_DOMINATORS, e->dest, e->src);
1069 if (flags & DLTHE_FLAG_UPDATE_FREQ)
1071 scale_bbs_frequencies_int (bbs, n, scale_main, REG_BR_PROB_BASE);
1072 free (scale_step);
1075 /* Update dominators of outer blocks if affected. */
1076 for (i = 0; i < n; i++)
1078 basic_block dominated, dom_bb, *dom_bbs;
1079 int n_dom_bbs,j;
1081 bb = bbs[i];
1082 bb->aux = 0;
1084 n_dom_bbs = get_dominated_by (CDI_DOMINATORS, bb, &dom_bbs);
1085 for (j = 0; j < n_dom_bbs; j++)
1087 dominated = dom_bbs[j];
1088 if (flow_bb_inside_loop_p (loop, dominated))
1089 continue;
1090 dom_bb = nearest_common_dominator (
1091 CDI_DOMINATORS, first_active[i], first_active_latch);
1092 set_immediate_dominator (CDI_DOMINATORS, dominated, dom_bb);
1094 free (dom_bbs);
1096 free (first_active);
1098 free (bbs);
1100 return true;
1103 /* A callback for make_forwarder block, to redirect all edges except for
1104 MFB_KJ_EDGE to the entry part. E is the edge for that we should decide
1105 whether to redirect it. */
1107 static edge mfb_kj_edge;
1108 static bool
1109 mfb_keep_just (edge e)
1111 return e != mfb_kj_edge;
1114 /* Creates a pre-header for a LOOP. Returns newly created block. Unless
1115 CP_SIMPLE_PREHEADERS is set in FLAGS, we only force LOOP to have single
1116 entry; otherwise we also force preheader block to have only one successor.
1117 The function also updates dominators. */
1119 static basic_block
1120 create_preheader (struct loop *loop, int flags)
1122 edge e, fallthru;
1123 basic_block dummy;
1124 int nentry = 0;
1125 bool irred = false;
1126 bool latch_edge_was_fallthru;
1127 edge one_succ_pred = 0;
1128 edge_iterator ei;
1130 FOR_EACH_EDGE (e, ei, loop->header->preds)
1132 if (e->src == loop->latch)
1133 continue;
1134 irred |= (e->flags & EDGE_IRREDUCIBLE_LOOP) != 0;
1135 nentry++;
1136 if (single_succ_p (e->src))
1137 one_succ_pred = e;
1139 gcc_assert (nentry);
1140 if (nentry == 1)
1142 /* Get an edge that is different from the one from loop->latch
1143 to loop->header. */
1144 e = EDGE_PRED (loop->header,
1145 EDGE_PRED (loop->header, 0)->src == loop->latch);
1147 if (!(flags & CP_SIMPLE_PREHEADERS) || single_succ_p (e->src))
1148 return NULL;
1151 mfb_kj_edge = loop_latch_edge (loop);
1152 latch_edge_was_fallthru = (mfb_kj_edge->flags & EDGE_FALLTHRU) != 0;
1153 fallthru = make_forwarder_block (loop->header, mfb_keep_just, NULL);
1154 dummy = fallthru->src;
1155 loop->header = fallthru->dest;
1157 /* Try to be clever in placing the newly created preheader. The idea is to
1158 avoid breaking any "fallthruness" relationship between blocks.
1160 The preheader was created just before the header and all incoming edges
1161 to the header were redirected to the preheader, except the latch edge.
1162 So the only problematic case is when this latch edge was a fallthru
1163 edge: it is not anymore after the preheader creation so we have broken
1164 the fallthruness. We're therefore going to look for a better place. */
1165 if (latch_edge_was_fallthru)
1167 if (one_succ_pred)
1168 e = one_succ_pred;
1169 else
1170 e = EDGE_PRED (dummy, 0);
1172 move_block_after (dummy, e->src);
1175 if (irred)
1177 dummy->flags |= BB_IRREDUCIBLE_LOOP;
1178 single_succ_edge (dummy)->flags |= EDGE_IRREDUCIBLE_LOOP;
1181 if (dump_file)
1182 fprintf (dump_file, "Created preheader block for loop %i\n",
1183 loop->num);
1185 return dummy;
1188 /* Create preheaders for each loop; for meaning of FLAGS see create_preheader. */
1190 void
1191 create_preheaders (int flags)
1193 loop_iterator li;
1194 struct loop *loop;
1196 FOR_EACH_LOOP (li, loop, 0)
1197 create_preheader (loop, flags);
1198 current_loops->state |= LOOPS_HAVE_PREHEADERS;
1201 /* Forces all loop latches to have only single successor. */
1203 void
1204 force_single_succ_latches (void)
1206 loop_iterator li;
1207 struct loop *loop;
1208 edge e;
1210 FOR_EACH_LOOP (li, loop, 0)
1212 if (loop->latch != loop->header && single_succ_p (loop->latch))
1213 continue;
1215 e = find_edge (loop->latch, loop->header);
1217 split_edge (e);
1219 current_loops->state |= LOOPS_HAVE_SIMPLE_LATCHES;
1222 /* This function is called from loop_version. It splits the entry edge
1223 of the loop we want to version, adds the versioning condition, and
1224 adjust the edges to the two versions of the loop appropriately.
1225 e is an incoming edge. Returns the basic block containing the
1226 condition.
1228 --- edge e ---- > [second_head]
1230 Split it and insert new conditional expression and adjust edges.
1232 --- edge e ---> [cond expr] ---> [first_head]
1234 +---------> [second_head]
1237 static basic_block
1238 lv_adjust_loop_entry_edge (basic_block first_head,
1239 basic_block second_head,
1240 edge e,
1241 void *cond_expr)
1243 basic_block new_head = NULL;
1244 edge e1;
1246 gcc_assert (e->dest == second_head);
1248 /* Split edge 'e'. This will create a new basic block, where we can
1249 insert conditional expr. */
1250 new_head = split_edge (e);
1253 lv_add_condition_to_bb (first_head, second_head, new_head,
1254 cond_expr);
1256 /* Don't set EDGE_TRUE_VALUE in RTL mode, as it's invalid there. */
1257 e1 = make_edge (new_head, first_head,
1258 current_ir_type () == IR_GIMPLE ? EDGE_TRUE_VALUE : 0);
1259 set_immediate_dominator (CDI_DOMINATORS, first_head, new_head);
1260 set_immediate_dominator (CDI_DOMINATORS, second_head, new_head);
1262 /* Adjust loop header phi nodes. */
1263 lv_adjust_loop_header_phi (first_head, second_head, new_head, e1);
1265 return new_head;
1268 /* Main entry point for Loop Versioning transformation.
1270 This transformation given a condition and a loop, creates
1271 -if (condition) { loop_copy1 } else { loop_copy2 },
1272 where loop_copy1 is the loop transformed in one way, and loop_copy2
1273 is the loop transformed in another way (or unchanged). 'condition'
1274 may be a run time test for things that were not resolved by static
1275 analysis (overlapping ranges (anti-aliasing), alignment, etc.).
1277 If PLACE_AFTER is true, we place the new loop after LOOP in the
1278 instruction stream, otherwise it is placed before LOOP. */
1280 struct loop *
1281 loop_version (struct loop *loop,
1282 void *cond_expr, basic_block *condition_bb,
1283 bool place_after)
1285 basic_block first_head, second_head;
1286 edge entry, latch_edge, exit, true_edge, false_edge;
1287 int irred_flag;
1288 struct loop *nloop;
1289 basic_block cond_bb;
1291 /* CHECKME: Loop versioning does not handle nested loop at this point. */
1292 if (loop->inner)
1293 return NULL;
1295 /* Record entry and latch edges for the loop */
1296 entry = loop_preheader_edge (loop);
1297 irred_flag = entry->flags & EDGE_IRREDUCIBLE_LOOP;
1298 entry->flags &= ~EDGE_IRREDUCIBLE_LOOP;
1300 /* Note down head of loop as first_head. */
1301 first_head = entry->dest;
1303 /* Duplicate loop. */
1304 if (!cfg_hook_duplicate_loop_to_header_edge (loop, entry, 1,
1305 NULL, NULL, NULL, NULL, 0))
1306 return NULL;
1308 /* After duplication entry edge now points to new loop head block.
1309 Note down new head as second_head. */
1310 second_head = entry->dest;
1312 /* Split loop entry edge and insert new block with cond expr. */
1313 cond_bb = lv_adjust_loop_entry_edge (first_head, second_head,
1314 entry, cond_expr);
1315 if (condition_bb)
1316 *condition_bb = cond_bb;
1318 if (!cond_bb)
1320 entry->flags |= irred_flag;
1321 return NULL;
1324 latch_edge = single_succ_edge (get_bb_copy (loop->latch));
1326 extract_cond_bb_edges (cond_bb, &true_edge, &false_edge);
1327 nloop = loopify (latch_edge,
1328 single_pred_edge (get_bb_copy (loop->header)),
1329 cond_bb, true_edge, false_edge,
1330 false /* Do not redirect all edges. */);
1332 exit = single_exit (loop);
1333 if (exit)
1334 set_single_exit (nloop, find_edge (get_bb_copy (exit->src), exit->dest));
1336 /* loopify redirected latch_edge. Update its PENDING_STMTS. */
1337 lv_flush_pending_stmts (latch_edge);
1339 /* loopify redirected condition_bb's succ edge. Update its PENDING_STMTS. */
1340 extract_cond_bb_edges (cond_bb, &true_edge, &false_edge);
1341 lv_flush_pending_stmts (false_edge);
1342 /* Adjust irreducible flag. */
1343 if (irred_flag)
1345 cond_bb->flags |= BB_IRREDUCIBLE_LOOP;
1346 loop_preheader_edge (loop)->flags |= EDGE_IRREDUCIBLE_LOOP;
1347 loop_preheader_edge (nloop)->flags |= EDGE_IRREDUCIBLE_LOOP;
1348 single_pred_edge (cond_bb)->flags |= EDGE_IRREDUCIBLE_LOOP;
1351 if (place_after)
1353 basic_block *bbs = get_loop_body_in_dom_order (nloop), after;
1354 unsigned i;
1356 after = loop->latch;
1358 for (i = 0; i < nloop->num_nodes; i++)
1360 move_block_after (bbs[i], after);
1361 after = bbs[i];
1363 free (bbs);
1366 /* At this point condition_bb is loop predheader with two successors,
1367 first_head and second_head. Make sure that loop predheader has only
1368 one successor. */
1369 split_edge (loop_preheader_edge (loop));
1370 split_edge (loop_preheader_edge (nloop));
1372 return nloop;
1375 /* The structure of loops might have changed. Some loops might get removed
1376 (and their headers and latches were set to NULL), loop exists might get
1377 removed (thus the loop nesting may be wrong), and some blocks and edges
1378 were changed (so the information about bb --> loop mapping does not have
1379 to be correct). But still for the remaining loops the header dominates
1380 the latch, and loops did not get new subloobs (new loops might possibly
1381 get created, but we are not interested in them). Fix up the mess.
1383 If CHANGED_BBS is not NULL, basic blocks whose loop has changed are
1384 marked in it. */
1386 void
1387 fix_loop_structure (bitmap changed_bbs)
1389 basic_block bb;
1390 struct loop *loop, *ploop;
1391 loop_iterator li;
1393 /* Remove the old bb -> loop mapping. */
1394 FOR_EACH_BB (bb)
1396 bb->aux = (void *) (size_t) bb->loop_father->depth;
1397 bb->loop_father = current_loops->tree_root;
1400 /* Remove the dead loops from structures. */
1401 current_loops->tree_root->num_nodes = n_basic_blocks;
1402 FOR_EACH_LOOP (li, loop, 0)
1404 loop->num_nodes = 0;
1405 if (loop->header)
1406 continue;
1408 while (loop->inner)
1410 ploop = loop->inner;
1411 flow_loop_tree_node_remove (ploop);
1412 flow_loop_tree_node_add (loop->outer, ploop);
1415 /* Remove the loop and free its data. */
1416 delete_loop (loop);
1419 /* Rescan the bodies of loops, starting from the outermost. */
1420 FOR_EACH_LOOP (li, loop, 0)
1422 loop->num_nodes = flow_loop_nodes_find (loop->header, loop);
1425 /* Now fix the loop nesting. */
1426 FOR_EACH_LOOP (li, loop, 0)
1428 bb = loop_preheader_edge (loop)->src;
1429 if (bb->loop_father != loop->outer)
1431 flow_loop_tree_node_remove (loop);
1432 flow_loop_tree_node_add (bb->loop_father, loop);
1436 /* Mark the blocks whose loop has changed. */
1437 FOR_EACH_BB (bb)
1439 if (changed_bbs
1440 && (void *) (size_t) bb->loop_father->depth != bb->aux)
1441 bitmap_set_bit (changed_bbs, bb->index);
1443 bb->aux = NULL;
1446 if (current_loops->state & LOOPS_HAVE_MARKED_SINGLE_EXITS)
1447 mark_single_exit_loops ();
1448 if (current_loops->state & LOOPS_HAVE_MARKED_IRREDUCIBLE_REGIONS)
1449 mark_irreducible_loops ();