2003-12-26 Guilhem Lavaux <guilhem@kaffe.org>
[official-gcc.git] / gcc / cfgloopmanip.c
blob6fa80c716aad1d5211288aa689525e2e14b0a3a0
1 /* Loop manipulation code for GNU compiler.
2 Copyright (C) 2002, 2003 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, 59 Temple Place - Suite 330, Boston, MA
19 02111-1307, 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 "basic-block.h"
28 #include "cfgloop.h"
29 #include "cfglayout.h"
30 #include "output.h"
32 static struct loop * duplicate_loop (struct loops *, struct loop *,
33 struct loop *);
34 static void duplicate_subloops (struct loops *, struct loop *, struct loop *);
35 static void copy_loops_to (struct loops *, 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 (dominance_info, basic_block *, int);
40 static bool rpe_enum_p (basic_block, void *);
41 static int find_path (edge, dominance_info, basic_block **);
42 static bool alp_enum_p (basic_block, void *);
43 static void add_loop (struct loops *, struct loop *);
44 static void fix_loop_placements (struct loop *);
45 static bool fix_bb_placement (struct loops *, basic_block);
46 static void fix_bb_placements (struct loops *, basic_block);
47 static void place_new_loop (struct loops *, struct loop *);
48 static void scale_loop_frequencies (struct loop *, int, int);
49 static void scale_bbs_frequencies (basic_block *, int, int, int);
50 static basic_block create_preheader (struct loop *, dominance_info, int);
51 static void fix_irreducible_loops (basic_block);
53 /* Splits basic block BB after INSN, returns created edge. Updates loops
54 and dominators. */
55 edge
56 split_loop_bb (struct loops *loops, basic_block bb, rtx insn)
58 edge e;
59 basic_block *dom_bbs;
60 int n_dom_bbs, i;
62 /* Split the block. */
63 e = split_block (bb, insn);
65 /* Add dest to loop. */
66 add_bb_to_loop (e->dest, e->src->loop_father);
68 /* Fix dominators. */
69 add_to_dominance_info (loops->cfg.dom, e->dest);
70 n_dom_bbs = get_dominated_by (loops->cfg.dom, e->src, &dom_bbs);
71 for (i = 0; i < n_dom_bbs; i++)
72 set_immediate_dominator (loops->cfg.dom, dom_bbs[i], e->dest);
73 free (dom_bbs);
74 set_immediate_dominator (loops->cfg.dom, e->dest, e->src);
76 return e;
79 /* Checks whether basic block BB is dominated by RPE->DOM, where
80 RPE is passed through DATA. */
81 struct rpe_data
83 basic_block dom;
84 dominance_info doms;
87 static bool
88 rpe_enum_p (basic_block bb, void *data)
90 struct rpe_data *rpe = data;
91 return dominated_by_p (rpe->doms, bb, rpe->dom);
94 /* Remove basic blocks BBS from loop structure and dominance info,
95 and delete them afterwards. */
96 static void
97 remove_bbs (dominance_info dom, basic_block *bbs, int nbbs)
99 int i;
101 for (i = 0; i < nbbs; i++)
103 remove_bb_from_loops (bbs[i]);
104 delete_from_dominance_info (dom, bbs[i]);
105 delete_block (bbs[i]);
109 /* Find path -- i.e. the basic blocks dominated by edge E and put them
110 into array BBS, that will be allocated large enough to contain them.
111 E->dest must have exactly one predecessor for this to work (it is
112 easy to achieve and we do not put it here because we do not want to
113 alter anything by this function). The number of basic blocks in the
114 path is returned. */
115 static int
116 find_path (edge e, dominance_info doms, basic_block **bbs)
118 struct rpe_data rpe;
120 if (e->dest->pred->pred_next)
121 abort ();
123 /* Find bbs in the path. */
124 rpe.dom = e->dest;
125 rpe.doms = doms;
126 *bbs = xcalloc (n_basic_blocks, sizeof (basic_block));
127 return dfs_enumerate_from (e->dest, 0, rpe_enum_p, *bbs,
128 n_basic_blocks, &rpe);
131 /* Fix placement of basic block BB inside loop hierarchy stored in LOOPS --
132 Let L be a loop to that BB belongs. Then every successor of BB must either
133 1) belong to some superloop of loop L, or
134 2) be a header of loop K such that K->outer is superloop of L
135 Returns true if we had to move BB into other loop to enforce this condition,
136 false if the placement of BB was already correct (provided that placements
137 of its successors are correct). */
138 static bool
139 fix_bb_placement (struct loops *loops, basic_block bb)
141 edge e;
142 struct loop *loop = loops->tree_root, *act;
144 for (e = bb->succ; e; e = e->succ_next)
146 if (e->dest == EXIT_BLOCK_PTR)
147 continue;
149 act = e->dest->loop_father;
150 if (act->header == e->dest)
151 act = act->outer;
153 if (flow_loop_nested_p (loop, act))
154 loop = act;
157 if (loop == bb->loop_father)
158 return false;
160 remove_bb_from_loops (bb);
161 add_bb_to_loop (bb, loop);
163 return true;
166 /* Fix placements of basic blocks inside loop hierarchy stored in loops; i.e.
167 enforce condition condition stated in description of fix_bb_placement. We
168 start from basic block FROM that had some of its successors removed, so that
169 his placement no longer has to be correct, and iteratively fix placement of
170 its predecessors that may change if placement of FROM changed. Also fix
171 placement of subloops of FROM->loop_father, that might also be altered due
172 to this change; the condition for them is similar, except that instead of
173 successors we consider edges coming out of the loops. */
174 static void
175 fix_bb_placements (struct loops *loops, basic_block from)
177 sbitmap in_queue;
178 basic_block *queue, *qtop, *qbeg, *qend;
179 struct loop *base_loop;
180 edge e;
182 /* We pass through blocks back-reachable from FROM, testing whether some
183 of their successors moved to outer loop. It may be necessary to
184 iterate several times, but it is finite, as we stop unless we move
185 the basic block up the loop structure. The whole story is a bit
186 more complicated due to presence of subloops, those are moved using
187 fix_loop_placement. */
189 base_loop = from->loop_father;
190 if (base_loop == loops->tree_root)
191 return;
193 in_queue = sbitmap_alloc (last_basic_block);
194 sbitmap_zero (in_queue);
195 SET_BIT (in_queue, from->index);
196 /* Prevent us from going out of the base_loop. */
197 SET_BIT (in_queue, base_loop->header->index);
199 queue = xmalloc ((base_loop->num_nodes + 1) * sizeof (basic_block));
200 qtop = queue + base_loop->num_nodes + 1;
201 qbeg = queue;
202 qend = queue + 1;
203 *qbeg = from;
205 while (qbeg != qend)
207 from = *qbeg;
208 qbeg++;
209 if (qbeg == qtop)
210 qbeg = queue;
211 RESET_BIT (in_queue, from->index);
213 if (from->loop_father->header == from)
215 /* Subloop header, maybe move the loop upward. */
216 if (!fix_loop_placement (from->loop_father))
217 continue;
219 else
221 /* Ordinary basic block. */
222 if (!fix_bb_placement (loops, from))
223 continue;
226 /* Something has changed, insert predecessors into queue. */
227 for (e = from->pred; e; e = e->pred_next)
229 basic_block pred = e->src;
230 struct loop *nca;
232 if (TEST_BIT (in_queue, pred->index))
233 continue;
235 /* If it is subloop, then it either was not moved, or
236 the path up the loop tree from base_loop do not contain
237 it. */
238 nca = find_common_loop (pred->loop_father, base_loop);
239 if (pred->loop_father != base_loop
240 && (nca == base_loop
241 || nca != pred->loop_father))
242 pred = pred->loop_father->header;
243 else if (!flow_loop_nested_p (from->loop_father, pred->loop_father))
245 /* No point in processing it. */
246 continue;
249 if (TEST_BIT (in_queue, pred->index))
250 continue;
252 /* Schedule the basic block. */
253 *qend = pred;
254 qend++;
255 if (qend == qtop)
256 qend = queue;
257 SET_BIT (in_queue, pred->index);
260 free (in_queue);
261 free (queue);
264 /* Basic block from has lost one or more of its predecessors, so it might
265 mo longer be part irreducible loop. Fix it and proceed recursively
266 for its successors if needed. */
267 static void
268 fix_irreducible_loops (basic_block from)
270 basic_block bb;
271 basic_block *stack;
272 int stack_top;
273 sbitmap on_stack;
274 edge *edges, e;
275 unsigned n_edges, i;
277 if (!(from->flags & BB_IRREDUCIBLE_LOOP))
278 return;
280 on_stack = sbitmap_alloc (last_basic_block);
281 sbitmap_zero (on_stack);
282 SET_BIT (on_stack, from->index);
283 stack = xmalloc (from->loop_father->num_nodes * sizeof (basic_block));
284 stack[0] = from;
285 stack_top = 1;
287 while (stack_top)
289 bb = stack[--stack_top];
290 RESET_BIT (on_stack, bb->index);
292 for (e = bb->pred; e; e = e->pred_next)
293 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
294 break;
295 if (e)
296 continue;
298 bb->flags &= ~BB_IRREDUCIBLE_LOOP;
299 if (bb->loop_father->header == bb)
300 edges = get_loop_exit_edges (bb->loop_father, &n_edges);
301 else
303 n_edges = 0;
304 for (e = bb->succ; e; e = e->succ_next)
305 n_edges++;
306 edges = xmalloc (n_edges * sizeof (edge));
307 n_edges = 0;
308 for (e = bb->succ; e; e = e->succ_next)
309 edges[n_edges++] = e;
312 for (i = 0; i < n_edges; i++)
314 e = edges[i];
316 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
318 if (!flow_bb_inside_loop_p (from->loop_father, e->dest))
319 continue;
321 e->flags &= ~EDGE_IRREDUCIBLE_LOOP;
322 if (TEST_BIT (on_stack, e->dest->index))
323 continue;
325 SET_BIT (on_stack, e->dest->index);
326 stack[stack_top++] = e->dest;
329 free (edges);
332 free (on_stack);
333 free (stack);
336 /* Removes path beginning at edge E, i.e. remove basic blocks dominated by E
337 and update loop structure stored in LOOPS and dominators. Return true if
338 we were able to remove the path, false otherwise (and nothing is affected
339 then). */
340 bool
341 remove_path (struct loops *loops, edge e)
343 edge ae;
344 basic_block *rem_bbs, *bord_bbs, *dom_bbs, from, bb;
345 int i, nrem, n_bord_bbs, n_dom_bbs;
346 sbitmap seen;
348 if (!loop_delete_branch_edge (e, 0))
349 return false;
351 /* We need to check whether basic blocks are dominated by the edge
352 e, but we only have basic block dominators. This is easy to
353 fix -- when e->dest has exactly one predecessor, this corresponds
354 to blocks dominated by e->dest, if not, split the edge. */
355 if (e->dest->pred->pred_next)
356 e = loop_split_edge_with (e, NULL_RTX, loops)->pred;
358 /* It may happen that by removing path we remove one or more loops
359 we belong to. In this case first unloop the loops, then proceed
360 normally. We may assume that e->dest is not a header of any loop,
361 as it now has exactly one predecessor. */
362 while (e->src->loop_father->outer
363 && dominated_by_p (loops->cfg.dom,
364 e->src->loop_father->latch, e->dest))
365 unloop (loops, e->src->loop_father);
367 /* Identify the path. */
368 nrem = find_path (e, loops->cfg.dom, &rem_bbs);
370 n_bord_bbs = 0;
371 bord_bbs = xcalloc (n_basic_blocks, sizeof (basic_block));
372 seen = sbitmap_alloc (last_basic_block);
373 sbitmap_zero (seen);
375 /* Find "border" hexes -- i.e. those with predecessor in removed path. */
376 for (i = 0; i < nrem; i++)
377 SET_BIT (seen, rem_bbs[i]->index);
378 for (i = 0; i < nrem; i++)
380 bb = rem_bbs[i];
381 for (ae = rem_bbs[i]->succ; ae; ae = ae->succ_next)
382 if (ae->dest != EXIT_BLOCK_PTR && !TEST_BIT (seen, ae->dest->index))
384 SET_BIT (seen, ae->dest->index);
385 bord_bbs[n_bord_bbs++] = ae->dest;
389 /* Remove the path. */
390 from = e->src;
391 if (!loop_delete_branch_edge (e, 1))
392 abort ();
393 dom_bbs = xcalloc (n_basic_blocks, sizeof (basic_block));
395 /* Cancel loops contained in the path. */
396 for (i = 0; i < nrem; i++)
397 if (rem_bbs[i]->loop_father->header == rem_bbs[i])
398 cancel_loop_tree (loops, rem_bbs[i]->loop_father);
400 remove_bbs (loops->cfg.dom, rem_bbs, nrem);
401 free (rem_bbs);
403 /* Find blocks whose dominators may be affected. */
404 n_dom_bbs = 0;
405 sbitmap_zero (seen);
406 for (i = 0; i < n_bord_bbs; i++)
408 int j, nldom;
409 basic_block *ldom;
411 bb = get_immediate_dominator (loops->cfg.dom, bord_bbs[i]);
412 if (TEST_BIT (seen, bb->index))
413 continue;
414 SET_BIT (seen, bb->index);
416 nldom = get_dominated_by (loops->cfg.dom, bb, &ldom);
417 for (j = 0; j < nldom; j++)
418 if (!dominated_by_p (loops->cfg.dom, from, ldom[j]))
419 dom_bbs[n_dom_bbs++] = ldom[j];
420 free(ldom);
423 free (seen);
425 /* Recount dominators. */
426 iterate_fix_dominators (loops->cfg.dom, dom_bbs, n_dom_bbs);
427 free (dom_bbs);
429 /* These blocks have lost some predecessor(s), thus their irreducible
430 status could be changed. */
431 for (i = 0; i < n_bord_bbs; i++)
432 fix_irreducible_loops (bord_bbs[i]);
433 free (bord_bbs);
435 /* Fix placements of basic blocks inside loops and the placement of
436 loops in the loop tree. */
437 fix_bb_placements (loops, from);
438 fix_loop_placements (from->loop_father);
440 return true;
443 /* Predicate for enumeration in add_loop. */
444 static bool
445 alp_enum_p (basic_block bb, void *alp_header)
447 return bb != (basic_block) alp_header;
450 /* Given LOOP structure with filled header and latch, find the body of the
451 corresponding loop and add it to LOOPS tree. */
452 static void
453 add_loop (struct loops *loops, struct loop *loop)
455 basic_block *bbs;
456 int i, n;
458 /* Add it to loop structure. */
459 place_new_loop (loops, loop);
460 loop->level = 1;
462 /* Find its nodes. */
463 bbs = xcalloc (n_basic_blocks, sizeof (basic_block));
464 n = dfs_enumerate_from (loop->latch, 1, alp_enum_p,
465 bbs, n_basic_blocks, loop->header);
467 for (i = 0; i < n; i++)
468 add_bb_to_loop (bbs[i], loop);
469 add_bb_to_loop (loop->header, loop);
471 free (bbs);
474 /* Multiply all frequencies of basic blocks in array BBS of length NBBS
475 by NUM/DEN. */
476 static void
477 scale_bbs_frequencies (basic_block *bbs, int nbbs, int num, int den)
479 int i;
480 edge e;
482 for (i = 0; i < nbbs; i++)
484 bbs[i]->frequency = (bbs[i]->frequency * num) / den;
485 bbs[i]->count = (bbs[i]->count * num) / den;
486 for (e = bbs[i]->succ; e; e = e->succ_next)
487 e->count = (e->count * num) /den;
491 /* Multiply all frequencies in LOOP by NUM/DEN. */
492 static void
493 scale_loop_frequencies (struct loop *loop, int num, int den)
495 basic_block *bbs;
497 bbs = get_loop_body (loop);
498 scale_bbs_frequencies (bbs, loop->num_nodes, num, den);
499 free (bbs);
502 /* Make area between HEADER_EDGE and LATCH_EDGE a loop by connecting
503 latch to header and update loop tree stored in LOOPS and dominators
504 accordingly. Everything between them plus LATCH_EDGE destination must
505 be dominated by HEADER_EDGE destination, and back-reachable from
506 LATCH_EDGE source. HEADER_EDGE is redirected to basic block SWITCH_BB,
507 SWITCH_BB->succ to original destination of LATCH_EDGE and
508 SWITCH_BB->succ->succ_next to original destination of HEADER_EDGE.
509 Returns newly created loop. */
510 struct loop *
511 loopify (struct loops *loops, edge latch_edge, edge header_edge, basic_block switch_bb)
513 basic_block succ_bb = latch_edge->dest;
514 basic_block pred_bb = header_edge->src;
515 basic_block *dom_bbs, *body;
516 unsigned n_dom_bbs, i, j;
517 sbitmap seen;
518 struct loop *loop = xcalloc (1, sizeof (struct loop));
519 struct loop *outer = succ_bb->loop_father->outer;
520 int freq, prob, tot_prob;
521 gcov_type cnt;
522 edge e;
524 loop->header = header_edge->dest;
525 loop->latch = latch_edge->src;
527 freq = EDGE_FREQUENCY (header_edge);
528 cnt = header_edge->count;
529 prob = switch_bb->succ->probability;
530 tot_prob = prob + switch_bb->succ->succ_next->probability;
531 if (tot_prob == 0)
532 tot_prob = 1;
534 /* Redirect edges. */
535 loop_redirect_edge (latch_edge, loop->header);
536 loop_redirect_edge (header_edge, switch_bb);
537 loop_redirect_edge (switch_bb->succ->succ_next, loop->header);
538 loop_redirect_edge (switch_bb->succ, succ_bb);
540 /* Update dominators. */
541 set_immediate_dominator (loops->cfg.dom, switch_bb, pred_bb);
542 set_immediate_dominator (loops->cfg.dom, loop->header, switch_bb);
543 set_immediate_dominator (loops->cfg.dom, succ_bb, switch_bb);
545 /* Compute new loop. */
546 add_loop (loops, loop);
547 flow_loop_tree_node_add (outer, loop);
549 /* Add switch_bb to appropriate loop. */
550 add_bb_to_loop (switch_bb, outer);
552 /* Fix frequencies. */
553 switch_bb->frequency = freq;
554 switch_bb->count = cnt;
555 for (e = switch_bb->succ; e; e = e->succ_next)
556 e->count = (switch_bb->count * e->probability) / REG_BR_PROB_BASE;
557 scale_loop_frequencies (loop, prob, tot_prob);
558 scale_loop_frequencies (succ_bb->loop_father, tot_prob - prob, tot_prob);
560 /* Update dominators of blocks outside of LOOP. */
561 dom_bbs = xcalloc (n_basic_blocks, sizeof (basic_block));
562 n_dom_bbs = 0;
563 seen = sbitmap_alloc (last_basic_block);
564 sbitmap_zero (seen);
565 body = get_loop_body (loop);
567 for (i = 0; i < loop->num_nodes; i++)
568 SET_BIT (seen, body[i]->index);
570 for (i = 0; i < loop->num_nodes; i++)
572 unsigned nldom;
573 basic_block *ldom;
575 nldom = get_dominated_by (loops->cfg.dom, body[i], &ldom);
576 for (j = 0; j < nldom; j++)
577 if (!TEST_BIT (seen, ldom[j]->index))
579 SET_BIT (seen, ldom[j]->index);
580 dom_bbs[n_dom_bbs++] = ldom[j];
582 free (ldom);
585 iterate_fix_dominators (loops->cfg.dom, dom_bbs, n_dom_bbs);
587 free (body);
588 free (seen);
589 free (dom_bbs);
591 return loop;
594 /* Remove the latch edge of a LOOP and update LOOPS tree to indicate that
595 the LOOP was removed. After this function, original loop latch will
596 have no successor, which caller is expected to fix somehow. */
597 void
598 unloop (struct loops *loops, struct loop *loop)
600 basic_block *body;
601 struct loop *ploop;
602 unsigned i, n;
603 basic_block latch = loop->latch;
604 edge *edges;
605 unsigned n_edges;
607 /* This is relatively straightforward. The dominators are unchanged, as
608 loop header dominates loop latch, so the only thing we have to care of
609 is the placement of loops and basic blocks inside the loop tree. We
610 move them all to the loop->outer, and then let fix_bb_placements do
611 its work. */
613 body = get_loop_body (loop);
614 edges = get_loop_exit_edges (loop, &n_edges);
615 n = loop->num_nodes;
616 for (i = 0; i < n; i++)
617 if (body[i]->loop_father == loop)
619 remove_bb_from_loops (body[i]);
620 add_bb_to_loop (body[i], loop->outer);
622 free(body);
624 while (loop->inner)
626 ploop = loop->inner;
627 flow_loop_tree_node_remove (ploop);
628 flow_loop_tree_node_add (loop->outer, ploop);
631 /* Remove the loop and free its data. */
632 flow_loop_tree_node_remove (loop);
633 loops->parray[loop->num] = NULL;
634 flow_loop_free (loop);
636 remove_edge (latch->succ);
637 fix_bb_placements (loops, latch);
639 /* If the loop was inside an irreducible region, we would have to somehow
640 update the irreducible marks inside its body. While it is certainly
641 possible to do, it is a bit complicated and this situation should be
642 very rare, so we just remark all loops in this case. */
643 for (i = 0; i < n_edges; i++)
644 if (edges[i]->flags & EDGE_IRREDUCIBLE_LOOP)
645 break;
646 if (i != n_edges)
647 mark_irreducible_loops (loops);
648 free (edges);
651 /* Fix placement of LOOP inside loop tree, i.e. find the innermost superloop
652 FATHER of LOOP such that all of the edges coming out of LOOP belong to
653 FATHER, and set it as outer loop of LOOP. Return 1 if placement of
654 LOOP changed. */
656 fix_loop_placement (struct loop *loop)
658 basic_block *body;
659 unsigned i;
660 edge e;
661 struct loop *father = loop->pred[0], *act;
663 body = get_loop_body (loop);
664 for (i = 0; i < loop->num_nodes; i++)
665 for (e = body[i]->succ; e; e = e->succ_next)
666 if (!flow_bb_inside_loop_p (loop, e->dest))
668 act = find_common_loop (loop, e->dest->loop_father);
669 if (flow_loop_nested_p (father, act))
670 father = act;
672 free (body);
674 if (father != loop->outer)
676 for (act = loop->outer; act != father; act = act->outer)
677 act->num_nodes -= loop->num_nodes;
678 flow_loop_tree_node_remove (loop);
679 flow_loop_tree_node_add (father, loop);
680 return 1;
682 return 0;
685 /* Fix placement of superloops of LOOP inside loop tree, i.e. ensure that
686 condition stated in description of fix_loop_placement holds for them.
687 It is used in case when we removed some edges coming out of LOOP, which
688 may cause the right placement of LOOP inside loop tree to change. */
689 static void
690 fix_loop_placements (struct loop *loop)
692 struct loop *outer;
694 while (loop->outer)
696 outer = loop->outer;
697 if (!fix_loop_placement (loop))
698 break;
699 loop = outer;
703 /* Creates place for a new LOOP in LOOPS structure. */
704 static void
705 place_new_loop (struct loops *loops, struct loop *loop)
707 loops->parray =
708 xrealloc (loops->parray, (loops->num + 1) * sizeof (struct loop *));
709 loops->parray[loops->num] = loop;
711 loop->num = loops->num++;
714 /* Copies copy of LOOP as subloop of TARGET loop, placing newly
715 created loop into LOOPS structure. */
716 static struct loop *
717 duplicate_loop (struct loops *loops, struct loop *loop, struct loop *target)
719 struct loop *cloop;
720 cloop = xcalloc (1, sizeof (struct loop));
721 place_new_loop (loops, cloop);
723 /* Initialize copied loop. */
724 cloop->level = loop->level;
726 /* Set it as copy of loop. */
727 loop->copy = cloop;
729 /* Add it to target. */
730 flow_loop_tree_node_add (target, cloop);
732 return cloop;
735 /* Copies structure of subloops of LOOP into TARGET loop, placing
736 newly created loops into loop tree stored in LOOPS. */
737 static void
738 duplicate_subloops (struct loops *loops, struct loop *loop, struct loop *target)
740 struct loop *aloop, *cloop;
742 for (aloop = loop->inner; aloop; aloop = aloop->next)
744 cloop = duplicate_loop (loops, aloop, target);
745 duplicate_subloops (loops, aloop, cloop);
749 /* Copies structure of subloops of N loops, stored in array COPIED_LOOPS,
750 into TARGET loop, placing newly created loops into loop tree LOOPS. */
751 static void
752 copy_loops_to (struct loops *loops, struct loop **copied_loops, int n, struct loop *target)
754 struct loop *aloop;
755 int i;
757 for (i = 0; i < n; i++)
759 aloop = duplicate_loop (loops, copied_loops[i], target);
760 duplicate_subloops (loops, copied_loops[i], aloop);
764 /* Redirects edge E to basic block DEST. */
765 static void
766 loop_redirect_edge (edge e, basic_block dest)
768 if (e->dest == dest)
769 return;
771 redirect_edge_and_branch_force (e, dest);
774 /* Deletes edge E from a branch if possible. Unless REALLY_DELETE is set,
775 just test whether it is possible to remove the edge. */
776 static bool
777 loop_delete_branch_edge (edge e, int really_delete)
779 basic_block src = e->src;
780 int irr;
781 edge snd;
783 if (src->succ->succ_next)
785 basic_block newdest;
787 /* Cannot handle more than two exit edges. */
788 if (src->succ->succ_next->succ_next)
789 return false;
790 /* And it must be just a simple branch. */
791 if (!any_condjump_p (BB_END (src)))
792 return false;
794 snd = e == src->succ ? src->succ->succ_next : src->succ;
795 newdest = snd->dest;
796 if (newdest == EXIT_BLOCK_PTR)
797 return false;
799 /* Hopefully the above conditions should suffice. */
800 if (!really_delete)
801 return true;
803 /* Redirecting behaves wrongly wrto this flag. */
804 irr = snd->flags & EDGE_IRREDUCIBLE_LOOP;
806 if (!redirect_edge_and_branch (e, newdest))
807 return false;
808 src->succ->flags &= ~EDGE_IRREDUCIBLE_LOOP;
809 src->succ->flags |= irr;
811 return true;
813 else
815 /* Cannot happen -- we are using this only to remove an edge
816 from branch. */
817 abort ();
820 return false; /* To avoid warning, cannot get here. */
823 /* Check whether LOOP's body can be duplicated. */
824 bool
825 can_duplicate_loop_p (struct loop *loop)
827 int ret;
828 basic_block *bbs = get_loop_body (loop);
830 ret = can_copy_bbs_p (bbs, loop->num_nodes);
831 free (bbs);
833 return ret;
836 #define RDIV(X,Y) (((X) + (Y) / 2) / (Y))
838 /* Duplicates body of LOOP to given edge E NDUPL times. Takes care of updating
839 LOOPS structure and dominators. E's destination must be LOOP header for
840 this to work, i.e. it must be entry or latch edge of this loop; these are
841 unique, as the loops must have preheaders for this function to work
842 correctly (in case E is latch, the function unrolls the loop, if E is entry
843 edge, it peels the loop). Store edges created by copying ORIG edge from
844 copies corresponding to set bits in WONT_EXIT bitmap (bit 0 corresponds to
845 original LOOP body, the other copies are numbered in order given by control
846 flow through them) into TO_REMOVE array. Returns false if duplication is
847 impossible. */
849 duplicate_loop_to_header_edge (struct loop *loop, edge e, struct loops *loops,
850 unsigned int ndupl, sbitmap wont_exit,
851 edge orig, edge *to_remove,
852 unsigned int *n_to_remove, int flags)
854 struct loop *target, *aloop;
855 struct loop **orig_loops;
856 unsigned n_orig_loops;
857 basic_block header = loop->header, latch = loop->latch;
858 basic_block *new_bbs, *bbs, *first_active;
859 basic_block new_bb, bb, first_active_latch = NULL;
860 edge ae, latch_edge;
861 edge spec_edges[2], new_spec_edges[2];
862 #define SE_LATCH 0
863 #define SE_ORIG 1
864 unsigned i, j, n;
865 int is_latch = (latch == e->src);
866 int scale_act = 0, *scale_step = NULL, scale_main = 0;
867 int p, freq_in, freq_le, freq_out_orig;
868 int prob_pass_thru, prob_pass_wont_exit, prob_pass_main;
869 int add_irreducible_flag;
871 if (e->dest != loop->header)
872 abort ();
873 if (ndupl <= 0)
874 abort ();
876 if (orig)
878 /* Orig must be edge out of the loop. */
879 if (!flow_bb_inside_loop_p (loop, orig->src))
880 abort ();
881 if (flow_bb_inside_loop_p (loop, orig->dest))
882 abort ();
885 bbs = get_loop_body (loop);
887 /* Check whether duplication is possible. */
888 if (!can_copy_bbs_p (bbs, loop->num_nodes))
890 free (bbs);
891 return false;
893 new_bbs = xmalloc (sizeof (basic_block) * loop->num_nodes);
895 /* In case we are doing loop peeling and the loop is in the middle of
896 irreducible region, the peeled copies will be inside it too. */
897 add_irreducible_flag = e->flags & EDGE_IRREDUCIBLE_LOOP;
898 if (is_latch && add_irreducible_flag)
899 abort ();
901 /* Find edge from latch. */
902 latch_edge = loop_latch_edge (loop);
904 if (flags & DLTHE_FLAG_UPDATE_FREQ)
906 /* Calculate coefficients by that we have to scale frequencies
907 of duplicated loop bodies. */
908 freq_in = header->frequency;
909 freq_le = EDGE_FREQUENCY (latch_edge);
910 if (freq_in == 0)
911 freq_in = 1;
912 if (freq_in < freq_le)
913 freq_in = freq_le;
914 freq_out_orig = orig ? EDGE_FREQUENCY (orig) : freq_in - freq_le;
915 if (freq_out_orig > freq_in - freq_le)
916 freq_out_orig = freq_in - freq_le;
917 prob_pass_thru = RDIV (REG_BR_PROB_BASE * freq_le, freq_in);
918 prob_pass_wont_exit =
919 RDIV (REG_BR_PROB_BASE * (freq_le + freq_out_orig), freq_in);
921 scale_step = xmalloc (ndupl * sizeof (int));
923 for (i = 1; i <= ndupl; i++)
924 scale_step[i - 1] = TEST_BIT (wont_exit, i)
925 ? prob_pass_wont_exit
926 : prob_pass_thru;
928 if (is_latch)
930 prob_pass_main = TEST_BIT (wont_exit, 0)
931 ? prob_pass_wont_exit
932 : prob_pass_thru;
933 p = prob_pass_main;
934 scale_main = REG_BR_PROB_BASE;
935 for (i = 0; i < ndupl; i++)
937 scale_main += p;
938 p = RDIV (p * scale_step[i], REG_BR_PROB_BASE);
940 scale_main = RDIV (REG_BR_PROB_BASE * REG_BR_PROB_BASE, scale_main);
941 scale_act = RDIV (scale_main * prob_pass_main, REG_BR_PROB_BASE);
943 else
945 scale_main = REG_BR_PROB_BASE;
946 for (i = 0; i < ndupl; i++)
947 scale_main = RDIV (scale_main * scale_step[i], REG_BR_PROB_BASE);
948 scale_act = REG_BR_PROB_BASE - prob_pass_thru;
950 for (i = 0; i < ndupl; i++)
951 if (scale_step[i] < 0 || scale_step[i] > REG_BR_PROB_BASE)
952 abort ();
953 if (scale_main < 0 || scale_main > REG_BR_PROB_BASE
954 || scale_act < 0 || scale_act > REG_BR_PROB_BASE)
955 abort ();
958 /* Loop the new bbs will belong to. */
959 target = e->src->loop_father;
961 /* Original loops. */
962 n_orig_loops = 0;
963 for (aloop = loop->inner; aloop; aloop = aloop->next)
964 n_orig_loops++;
965 orig_loops = xcalloc (n_orig_loops, sizeof (struct loop *));
966 for (aloop = loop->inner, i = 0; aloop; aloop = aloop->next, i++)
967 orig_loops[i] = aloop;
969 loop->copy = target;
971 n = loop->num_nodes;
973 first_active = xmalloc (n * sizeof (basic_block));
974 if (is_latch)
976 memcpy (first_active, bbs, n * sizeof (basic_block));
977 first_active_latch = latch;
980 /* Record exit edge in original loop body. */
981 if (orig && TEST_BIT (wont_exit, 0))
982 to_remove[(*n_to_remove)++] = orig;
984 spec_edges[SE_ORIG] = orig;
985 spec_edges[SE_LATCH] = latch_edge;
987 for (j = 0; j < ndupl; j++)
989 /* Copy loops. */
990 copy_loops_to (loops, orig_loops, n_orig_loops, target);
992 /* Copy bbs. */
993 copy_bbs (bbs, n, new_bbs, spec_edges, 2, new_spec_edges, loop, loops);
995 /* Note whether the blocks and edges belong to an irreducible loop. */
996 if (add_irreducible_flag)
998 for (i = 0; i < n; i++)
999 new_bbs[i]->rbi->duplicated = 1;
1000 for (i = 0; i < n; i++)
1002 new_bb = new_bbs[i];
1003 if (new_bb->loop_father == target)
1004 new_bb->flags |= BB_IRREDUCIBLE_LOOP;
1006 for (ae = new_bb->succ; ae; ae = ae->succ_next)
1007 if (ae->dest->rbi->duplicated
1008 && (ae->src->loop_father == target
1009 || ae->dest->loop_father == target))
1010 ae->flags |= EDGE_IRREDUCIBLE_LOOP;
1012 for (i = 0; i < n; i++)
1013 new_bbs[i]->rbi->duplicated = 0;
1016 /* Redirect the special edges. */
1017 if (is_latch)
1019 redirect_edge_and_branch_force (latch_edge, new_bbs[0]);
1020 redirect_edge_and_branch_force (new_spec_edges[SE_LATCH],
1021 loop->header);
1022 set_immediate_dominator (loops->cfg.dom, new_bbs[0], latch);
1023 latch = loop->latch = new_bbs[1];
1024 e = latch_edge = new_spec_edges[SE_LATCH];
1026 else
1028 redirect_edge_and_branch_force (new_spec_edges[SE_LATCH],
1029 loop->header);
1030 redirect_edge_and_branch_force (e, new_bbs[0]);
1031 set_immediate_dominator (loops->cfg.dom, new_bbs[0], e->src);
1032 e = new_spec_edges[SE_LATCH];
1035 /* Record exit edge in this copy. */
1036 if (orig && TEST_BIT (wont_exit, j + 1))
1037 to_remove[(*n_to_remove)++] = new_spec_edges[SE_ORIG];
1039 /* Record the first copy in the control flow order if it is not
1040 the original loop (i.e. in case of peeling). */
1041 if (!first_active_latch)
1043 memcpy (first_active, new_bbs, n * sizeof (basic_block));
1044 first_active_latch = new_bbs[1];
1047 /* Set counts and frequencies. */
1048 if (flags & DLTHE_FLAG_UPDATE_FREQ)
1050 scale_bbs_frequencies (new_bbs, n, scale_act, REG_BR_PROB_BASE);
1051 scale_act = RDIV (scale_act * scale_step[j], REG_BR_PROB_BASE);
1054 free (new_bbs);
1055 free (orig_loops);
1057 /* Update the original loop. */
1058 if (!is_latch)
1059 set_immediate_dominator (loops->cfg.dom, e->dest, e->src);
1060 if (flags & DLTHE_FLAG_UPDATE_FREQ)
1062 scale_bbs_frequencies (bbs, n, scale_main, REG_BR_PROB_BASE);
1063 free (scale_step);
1066 /* Update dominators of outer blocks if affected. */
1067 for (i = 0; i < n; i++)
1069 basic_block dominated, dom_bb, *dom_bbs;
1070 int n_dom_bbs,j;
1072 bb = bbs[i];
1073 n_dom_bbs = get_dominated_by (loops->cfg.dom, bb, &dom_bbs);
1074 for (j = 0; j < n_dom_bbs; j++)
1076 dominated = dom_bbs[j];
1077 if (flow_bb_inside_loop_p (loop, dominated))
1078 continue;
1079 dom_bb = nearest_common_dominator (
1080 loops->cfg.dom, first_active[i], first_active_latch);
1081 set_immediate_dominator (loops->cfg.dom, dominated, dom_bb);
1083 free (dom_bbs);
1085 free (first_active);
1087 free (bbs);
1089 return true;
1092 /* Creates a pre-header for a LOOP. Returns newly created block. Unless
1093 CP_SIMPLE_PREHEADERS is set in FLAGS, we only force LOOP to have single
1094 entry; otherwise we also force preheader block to have only one successor.
1095 The function also updates dominators stored in DOM. */
1096 static basic_block
1097 create_preheader (struct loop *loop, dominance_info dom, int flags)
1099 edge e, fallthru;
1100 basic_block dummy;
1101 basic_block jump, src = 0;
1102 struct loop *cloop, *ploop;
1103 int nentry = 0;
1104 rtx insn;
1106 cloop = loop->outer;
1108 for (e = loop->header->pred; e; e = e->pred_next)
1110 if (e->src == loop->latch)
1111 continue;
1112 nentry++;
1114 if (!nentry)
1115 abort ();
1116 if (nentry == 1)
1118 for (e = loop->header->pred; e->src == loop->latch; e = e->pred_next);
1119 if (!(flags & CP_SIMPLE_PREHEADERS)
1120 || !e->src->succ->succ_next)
1121 return NULL;
1124 insn = first_insn_after_basic_block_note (loop->header);
1125 if (insn)
1126 insn = PREV_INSN (insn);
1127 else
1128 insn = get_last_insn ();
1129 if (insn == BB_END (loop->header))
1131 /* Split_block would not split block after its end. */
1132 emit_note_after (NOTE_INSN_DELETED, insn);
1134 fallthru = split_block (loop->header, insn);
1135 dummy = fallthru->src;
1136 loop->header = fallthru->dest;
1138 /* The header could be a latch of some superloop(s); due to design of
1139 split_block, it would now move to fallthru->dest. */
1140 for (ploop = loop; ploop; ploop = ploop->outer)
1141 if (ploop->latch == dummy)
1142 ploop->latch = fallthru->dest;
1144 add_to_dominance_info (dom, fallthru->dest);
1146 /* Redirect edges. */
1147 for (e = dummy->pred; e; e = e->pred_next)
1149 src = e->src;
1150 if (src == loop->latch)
1151 break;
1153 if (!e)
1154 abort ();
1156 dummy->frequency -= EDGE_FREQUENCY (e);
1157 dummy->count -= e->count;
1158 fallthru->count -= e->count;
1159 jump = redirect_edge_and_branch_force (e, loop->header);
1160 if (jump)
1162 add_to_dominance_info (dom, jump);
1163 set_immediate_dominator (dom, jump, src);
1164 add_bb_to_loop (jump, loop);
1165 loop->latch = jump;
1168 /* Update structures. */
1169 redirect_immediate_dominators (dom, dummy, loop->header);
1170 set_immediate_dominator (dom, loop->header, dummy);
1171 loop->header->loop_father = loop;
1172 add_bb_to_loop (dummy, cloop);
1173 if (rtl_dump_file)
1174 fprintf (rtl_dump_file, "Created preheader block for loop %i\n",
1175 loop->num);
1177 return dummy;
1180 /* Create preheaders for each loop from loop tree stored in LOOPS; for meaning
1181 of FLAGS see create_preheader. */
1182 void
1183 create_preheaders (struct loops *loops, int flags)
1185 unsigned i;
1186 for (i = 1; i < loops->num; i++)
1187 create_preheader (loops->parray[i], loops->cfg.dom, flags);
1188 loops->state |= LOOPS_HAVE_PREHEADERS;
1191 /* Forces all loop latches of loops from loop tree LOOPS to have only single
1192 successor. */
1193 void
1194 force_single_succ_latches (struct loops *loops)
1196 unsigned i;
1197 struct loop *loop;
1198 edge e;
1200 for (i = 1; i < loops->num; i++)
1202 loop = loops->parray[i];
1203 if (loop->latch != loop->header
1204 && !loop->latch->succ->succ_next)
1205 continue;
1207 for (e = loop->header->pred; e->src != loop->latch; e = e->pred_next)
1208 continue;
1210 loop_split_edge_with (e, NULL_RTX, loops);
1212 loops->state |= LOOPS_HAVE_SIMPLE_LATCHES;
1215 /* A quite stupid function to put INSNS on edge E. They are supposed to form
1216 just one basic block. Jumps in INSNS are not handled, so cfg do not have to
1217 be ok after this function. The created block is placed on correct place
1218 in LOOPS structure and its dominator is set. */
1219 basic_block
1220 loop_split_edge_with (edge e, rtx insns, struct loops *loops)
1222 basic_block src, dest, new_bb;
1223 struct loop *loop_c;
1224 edge new_e;
1226 src = e->src;
1227 dest = e->dest;
1229 loop_c = find_common_loop (src->loop_father, dest->loop_father);
1231 /* Create basic block for it. */
1233 new_bb = split_edge (e);
1234 add_to_dominance_info (loops->cfg.dom, new_bb);
1235 add_bb_to_loop (new_bb, loop_c);
1236 new_bb->flags = insns ? BB_SUPERBLOCK : 0;
1238 new_e = new_bb->succ;
1239 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
1241 new_bb->flags |= BB_IRREDUCIBLE_LOOP;
1242 new_e->flags |= EDGE_IRREDUCIBLE_LOOP;
1245 if (insns)
1246 emit_insn_after (insns, BB_END (new_bb));
1248 set_immediate_dominator (loops->cfg.dom, new_bb, src);
1249 set_immediate_dominator (loops->cfg.dom, dest,
1250 recount_dominator (loops->cfg.dom, dest));
1252 if (dest->loop_father->latch == src)
1253 dest->loop_father->latch = new_bb;
1255 return new_bb;