[Mid-end] Add TARGET_GIMPLE_FOLD_BUILTIN target hook.
[official-gcc.git] / gcc / tree-eh.c
blob2eb309732a6b98815164db6608810acdf04d425a
1 /* Exception handling semantics and decomposition for trees.
2 Copyright (C) 2003-2013 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3, or (at your option)
9 any later version.
11 GCC is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License 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 "tm.h"
24 #include "tree.h"
25 #include "flags.h"
26 #include "function.h"
27 #include "except.h"
28 #include "pointer-set.h"
29 #include "tree-flow.h"
30 #include "tree-inline.h"
31 #include "tree-pass.h"
32 #include "langhooks.h"
33 #include "ggc.h"
34 #include "diagnostic-core.h"
35 #include "gimple.h"
36 #include "target.h"
37 #include "cfgloop.h"
39 /* In some instances a tree and a gimple need to be stored in a same table,
40 i.e. in hash tables. This is a structure to do this. */
41 typedef union {tree *tp; tree t; gimple g;} treemple;
43 /* Nonzero if we are using EH to handle cleanups. */
44 static int using_eh_for_cleanups_p = 0;
46 void
47 using_eh_for_cleanups (void)
49 using_eh_for_cleanups_p = 1;
52 /* Misc functions used in this file. */
54 /* Remember and lookup EH landing pad data for arbitrary statements.
55 Really this means any statement that could_throw_p. We could
56 stuff this information into the stmt_ann data structure, but:
58 (1) We absolutely rely on this information being kept until
59 we get to rtl. Once we're done with lowering here, if we lose
60 the information there's no way to recover it!
62 (2) There are many more statements that *cannot* throw as
63 compared to those that can. We should be saving some amount
64 of space by only allocating memory for those that can throw. */
66 /* Add statement T in function IFUN to landing pad NUM. */
68 void
69 add_stmt_to_eh_lp_fn (struct function *ifun, gimple t, int num)
71 struct throw_stmt_node *n;
72 void **slot;
74 gcc_assert (num != 0);
76 n = ggc_alloc_throw_stmt_node ();
77 n->stmt = t;
78 n->lp_nr = num;
80 if (!get_eh_throw_stmt_table (ifun))
81 set_eh_throw_stmt_table (ifun, htab_create_ggc (31, struct_ptr_hash,
82 struct_ptr_eq,
83 ggc_free));
85 slot = htab_find_slot (get_eh_throw_stmt_table (ifun), n, INSERT);
86 gcc_assert (!*slot);
87 *slot = n;
90 /* Add statement T in the current function (cfun) to EH landing pad NUM. */
92 void
93 add_stmt_to_eh_lp (gimple t, int num)
95 add_stmt_to_eh_lp_fn (cfun, t, num);
98 /* Add statement T to the single EH landing pad in REGION. */
100 static void
101 record_stmt_eh_region (eh_region region, gimple t)
103 if (region == NULL)
104 return;
105 if (region->type == ERT_MUST_NOT_THROW)
106 add_stmt_to_eh_lp_fn (cfun, t, -region->index);
107 else
109 eh_landing_pad lp = region->landing_pads;
110 if (lp == NULL)
111 lp = gen_eh_landing_pad (region);
112 else
113 gcc_assert (lp->next_lp == NULL);
114 add_stmt_to_eh_lp_fn (cfun, t, lp->index);
119 /* Remove statement T in function IFUN from its EH landing pad. */
121 bool
122 remove_stmt_from_eh_lp_fn (struct function *ifun, gimple t)
124 struct throw_stmt_node dummy;
125 void **slot;
127 if (!get_eh_throw_stmt_table (ifun))
128 return false;
130 dummy.stmt = t;
131 slot = htab_find_slot (get_eh_throw_stmt_table (ifun), &dummy,
132 NO_INSERT);
133 if (slot)
135 htab_clear_slot (get_eh_throw_stmt_table (ifun), slot);
136 return true;
138 else
139 return false;
143 /* Remove statement T in the current function (cfun) from its
144 EH landing pad. */
146 bool
147 remove_stmt_from_eh_lp (gimple t)
149 return remove_stmt_from_eh_lp_fn (cfun, t);
152 /* Determine if statement T is inside an EH region in function IFUN.
153 Positive numbers indicate a landing pad index; negative numbers
154 indicate a MUST_NOT_THROW region index; zero indicates that the
155 statement is not recorded in the region table. */
158 lookup_stmt_eh_lp_fn (struct function *ifun, gimple t)
160 struct throw_stmt_node *p, n;
162 if (ifun->eh->throw_stmt_table == NULL)
163 return 0;
165 n.stmt = t;
166 p = (struct throw_stmt_node *) htab_find (ifun->eh->throw_stmt_table, &n);
167 return p ? p->lp_nr : 0;
170 /* Likewise, but always use the current function. */
173 lookup_stmt_eh_lp (gimple t)
175 /* We can get called from initialized data when -fnon-call-exceptions
176 is on; prevent crash. */
177 if (!cfun)
178 return 0;
179 return lookup_stmt_eh_lp_fn (cfun, t);
182 /* First pass of EH node decomposition. Build up a tree of GIMPLE_TRY_FINALLY
183 nodes and LABEL_DECL nodes. We will use this during the second phase to
184 determine if a goto leaves the body of a TRY_FINALLY_EXPR node. */
186 struct finally_tree_node
188 /* When storing a GIMPLE_TRY, we have to record a gimple. However
189 when deciding whether a GOTO to a certain LABEL_DECL (which is a
190 tree) leaves the TRY block, its necessary to record a tree in
191 this field. Thus a treemple is used. */
192 treemple child;
193 gimple parent;
196 /* Note that this table is *not* marked GTY. It is short-lived. */
197 static htab_t finally_tree;
199 static void
200 record_in_finally_tree (treemple child, gimple parent)
202 struct finally_tree_node *n;
203 void **slot;
205 n = XNEW (struct finally_tree_node);
206 n->child = child;
207 n->parent = parent;
209 slot = htab_find_slot (finally_tree, n, INSERT);
210 gcc_assert (!*slot);
211 *slot = n;
214 static void
215 collect_finally_tree (gimple stmt, gimple region);
217 /* Go through the gimple sequence. Works with collect_finally_tree to
218 record all GIMPLE_LABEL and GIMPLE_TRY statements. */
220 static void
221 collect_finally_tree_1 (gimple_seq seq, gimple region)
223 gimple_stmt_iterator gsi;
225 for (gsi = gsi_start (seq); !gsi_end_p (gsi); gsi_next (&gsi))
226 collect_finally_tree (gsi_stmt (gsi), region);
229 static void
230 collect_finally_tree (gimple stmt, gimple region)
232 treemple temp;
234 switch (gimple_code (stmt))
236 case GIMPLE_LABEL:
237 temp.t = gimple_label_label (stmt);
238 record_in_finally_tree (temp, region);
239 break;
241 case GIMPLE_TRY:
242 if (gimple_try_kind (stmt) == GIMPLE_TRY_FINALLY)
244 temp.g = stmt;
245 record_in_finally_tree (temp, region);
246 collect_finally_tree_1 (gimple_try_eval (stmt), stmt);
247 collect_finally_tree_1 (gimple_try_cleanup (stmt), region);
249 else if (gimple_try_kind (stmt) == GIMPLE_TRY_CATCH)
251 collect_finally_tree_1 (gimple_try_eval (stmt), region);
252 collect_finally_tree_1 (gimple_try_cleanup (stmt), region);
254 break;
256 case GIMPLE_CATCH:
257 collect_finally_tree_1 (gimple_catch_handler (stmt), region);
258 break;
260 case GIMPLE_EH_FILTER:
261 collect_finally_tree_1 (gimple_eh_filter_failure (stmt), region);
262 break;
264 case GIMPLE_EH_ELSE:
265 collect_finally_tree_1 (gimple_eh_else_n_body (stmt), region);
266 collect_finally_tree_1 (gimple_eh_else_e_body (stmt), region);
267 break;
269 default:
270 /* A type, a decl, or some kind of statement that we're not
271 interested in. Don't walk them. */
272 break;
277 /* Use the finally tree to determine if a jump from START to TARGET
278 would leave the try_finally node that START lives in. */
280 static bool
281 outside_finally_tree (treemple start, gimple target)
283 struct finally_tree_node n, *p;
287 n.child = start;
288 p = (struct finally_tree_node *) htab_find (finally_tree, &n);
289 if (!p)
290 return true;
291 start.g = p->parent;
293 while (start.g != target);
295 return false;
298 /* Second pass of EH node decomposition. Actually transform the GIMPLE_TRY
299 nodes into a set of gotos, magic labels, and eh regions.
300 The eh region creation is straight-forward, but frobbing all the gotos
301 and such into shape isn't. */
303 /* The sequence into which we record all EH stuff. This will be
304 placed at the end of the function when we're all done. */
305 static gimple_seq eh_seq;
307 /* Record whether an EH region contains something that can throw,
308 indexed by EH region number. */
309 static bitmap eh_region_may_contain_throw_map;
311 /* The GOTO_QUEUE is is an array of GIMPLE_GOTO and GIMPLE_RETURN
312 statements that are seen to escape this GIMPLE_TRY_FINALLY node.
313 The idea is to record a gimple statement for everything except for
314 the conditionals, which get their labels recorded. Since labels are
315 of type 'tree', we need this node to store both gimple and tree
316 objects. REPL_STMT is the sequence used to replace the goto/return
317 statement. CONT_STMT is used to store the statement that allows
318 the return/goto to jump to the original destination. */
320 struct goto_queue_node
322 treemple stmt;
323 location_t location;
324 gimple_seq repl_stmt;
325 gimple cont_stmt;
326 int index;
327 /* This is used when index >= 0 to indicate that stmt is a label (as
328 opposed to a goto stmt). */
329 int is_label;
332 /* State of the world while lowering. */
334 struct leh_state
336 /* What's "current" while constructing the eh region tree. These
337 correspond to variables of the same name in cfun->eh, which we
338 don't have easy access to. */
339 eh_region cur_region;
341 /* What's "current" for the purposes of __builtin_eh_pointer. For
342 a CATCH, this is the associated TRY. For an EH_FILTER, this is
343 the associated ALLOWED_EXCEPTIONS, etc. */
344 eh_region ehp_region;
346 /* Processing of TRY_FINALLY requires a bit more state. This is
347 split out into a separate structure so that we don't have to
348 copy so much when processing other nodes. */
349 struct leh_tf_state *tf;
352 struct leh_tf_state
354 /* Pointer to the GIMPLE_TRY_FINALLY node under discussion. The
355 try_finally_expr is the original GIMPLE_TRY_FINALLY. We need to retain
356 this so that outside_finally_tree can reliably reference the tree used
357 in the collect_finally_tree data structures. */
358 gimple try_finally_expr;
359 gimple top_p;
361 /* While lowering a top_p usually it is expanded into multiple statements,
362 thus we need the following field to store them. */
363 gimple_seq top_p_seq;
365 /* The state outside this try_finally node. */
366 struct leh_state *outer;
368 /* The exception region created for it. */
369 eh_region region;
371 /* The goto queue. */
372 struct goto_queue_node *goto_queue;
373 size_t goto_queue_size;
374 size_t goto_queue_active;
376 /* Pointer map to help in searching goto_queue when it is large. */
377 struct pointer_map_t *goto_queue_map;
379 /* The set of unique labels seen as entries in the goto queue. */
380 vec<tree> dest_array;
382 /* A label to be added at the end of the completed transformed
383 sequence. It will be set if may_fallthru was true *at one time*,
384 though subsequent transformations may have cleared that flag. */
385 tree fallthru_label;
387 /* True if it is possible to fall out the bottom of the try block.
388 Cleared if the fallthru is converted to a goto. */
389 bool may_fallthru;
391 /* True if any entry in goto_queue is a GIMPLE_RETURN. */
392 bool may_return;
394 /* True if the finally block can receive an exception edge.
395 Cleared if the exception case is handled by code duplication. */
396 bool may_throw;
399 static gimple_seq lower_eh_must_not_throw (struct leh_state *, gimple);
401 /* Search for STMT in the goto queue. Return the replacement,
402 or null if the statement isn't in the queue. */
404 #define LARGE_GOTO_QUEUE 20
406 static void lower_eh_constructs_1 (struct leh_state *state, gimple_seq *seq);
408 static gimple_seq
409 find_goto_replacement (struct leh_tf_state *tf, treemple stmt)
411 unsigned int i;
412 void **slot;
414 if (tf->goto_queue_active < LARGE_GOTO_QUEUE)
416 for (i = 0; i < tf->goto_queue_active; i++)
417 if ( tf->goto_queue[i].stmt.g == stmt.g)
418 return tf->goto_queue[i].repl_stmt;
419 return NULL;
422 /* If we have a large number of entries in the goto_queue, create a
423 pointer map and use that for searching. */
425 if (!tf->goto_queue_map)
427 tf->goto_queue_map = pointer_map_create ();
428 for (i = 0; i < tf->goto_queue_active; i++)
430 slot = pointer_map_insert (tf->goto_queue_map,
431 tf->goto_queue[i].stmt.g);
432 gcc_assert (*slot == NULL);
433 *slot = &tf->goto_queue[i];
437 slot = pointer_map_contains (tf->goto_queue_map, stmt.g);
438 if (slot != NULL)
439 return (((struct goto_queue_node *) *slot)->repl_stmt);
441 return NULL;
444 /* A subroutine of replace_goto_queue_1. Handles the sub-clauses of a
445 lowered GIMPLE_COND. If, by chance, the replacement is a simple goto,
446 then we can just splat it in, otherwise we add the new stmts immediately
447 after the GIMPLE_COND and redirect. */
449 static void
450 replace_goto_queue_cond_clause (tree *tp, struct leh_tf_state *tf,
451 gimple_stmt_iterator *gsi)
453 tree label;
454 gimple_seq new_seq;
455 treemple temp;
456 location_t loc = gimple_location (gsi_stmt (*gsi));
458 temp.tp = tp;
459 new_seq = find_goto_replacement (tf, temp);
460 if (!new_seq)
461 return;
463 if (gimple_seq_singleton_p (new_seq)
464 && gimple_code (gimple_seq_first_stmt (new_seq)) == GIMPLE_GOTO)
466 *tp = gimple_goto_dest (gimple_seq_first_stmt (new_seq));
467 return;
470 label = create_artificial_label (loc);
471 /* Set the new label for the GIMPLE_COND */
472 *tp = label;
474 gsi_insert_after (gsi, gimple_build_label (label), GSI_CONTINUE_LINKING);
475 gsi_insert_seq_after (gsi, gimple_seq_copy (new_seq), GSI_CONTINUE_LINKING);
478 /* The real work of replace_goto_queue. Returns with TSI updated to
479 point to the next statement. */
481 static void replace_goto_queue_stmt_list (gimple_seq *, struct leh_tf_state *);
483 static void
484 replace_goto_queue_1 (gimple stmt, struct leh_tf_state *tf,
485 gimple_stmt_iterator *gsi)
487 gimple_seq seq;
488 treemple temp;
489 temp.g = NULL;
491 switch (gimple_code (stmt))
493 case GIMPLE_GOTO:
494 case GIMPLE_RETURN:
495 temp.g = stmt;
496 seq = find_goto_replacement (tf, temp);
497 if (seq)
499 gsi_insert_seq_before (gsi, gimple_seq_copy (seq), GSI_SAME_STMT);
500 gsi_remove (gsi, false);
501 return;
503 break;
505 case GIMPLE_COND:
506 replace_goto_queue_cond_clause (gimple_op_ptr (stmt, 2), tf, gsi);
507 replace_goto_queue_cond_clause (gimple_op_ptr (stmt, 3), tf, gsi);
508 break;
510 case GIMPLE_TRY:
511 replace_goto_queue_stmt_list (gimple_try_eval_ptr (stmt), tf);
512 replace_goto_queue_stmt_list (gimple_try_cleanup_ptr (stmt), tf);
513 break;
514 case GIMPLE_CATCH:
515 replace_goto_queue_stmt_list (gimple_catch_handler_ptr (stmt), tf);
516 break;
517 case GIMPLE_EH_FILTER:
518 replace_goto_queue_stmt_list (gimple_eh_filter_failure_ptr (stmt), tf);
519 break;
520 case GIMPLE_EH_ELSE:
521 replace_goto_queue_stmt_list (gimple_eh_else_n_body_ptr (stmt), tf);
522 replace_goto_queue_stmt_list (gimple_eh_else_e_body_ptr (stmt), tf);
523 break;
525 default:
526 /* These won't have gotos in them. */
527 break;
530 gsi_next (gsi);
533 /* A subroutine of replace_goto_queue. Handles GIMPLE_SEQ. */
535 static void
536 replace_goto_queue_stmt_list (gimple_seq *seq, struct leh_tf_state *tf)
538 gimple_stmt_iterator gsi = gsi_start (*seq);
540 while (!gsi_end_p (gsi))
541 replace_goto_queue_1 (gsi_stmt (gsi), tf, &gsi);
544 /* Replace all goto queue members. */
546 static void
547 replace_goto_queue (struct leh_tf_state *tf)
549 if (tf->goto_queue_active == 0)
550 return;
551 replace_goto_queue_stmt_list (&tf->top_p_seq, tf);
552 replace_goto_queue_stmt_list (&eh_seq, tf);
555 /* Add a new record to the goto queue contained in TF. NEW_STMT is the
556 data to be added, IS_LABEL indicates whether NEW_STMT is a label or
557 a gimple return. */
559 static void
560 record_in_goto_queue (struct leh_tf_state *tf,
561 treemple new_stmt,
562 int index,
563 bool is_label,
564 location_t location)
566 size_t active, size;
567 struct goto_queue_node *q;
569 gcc_assert (!tf->goto_queue_map);
571 active = tf->goto_queue_active;
572 size = tf->goto_queue_size;
573 if (active >= size)
575 size = (size ? size * 2 : 32);
576 tf->goto_queue_size = size;
577 tf->goto_queue
578 = XRESIZEVEC (struct goto_queue_node, tf->goto_queue, size);
581 q = &tf->goto_queue[active];
582 tf->goto_queue_active = active + 1;
584 memset (q, 0, sizeof (*q));
585 q->stmt = new_stmt;
586 q->index = index;
587 q->location = location;
588 q->is_label = is_label;
591 /* Record the LABEL label in the goto queue contained in TF.
592 TF is not null. */
594 static void
595 record_in_goto_queue_label (struct leh_tf_state *tf, treemple stmt, tree label,
596 location_t location)
598 int index;
599 treemple temp, new_stmt;
601 if (!label)
602 return;
604 /* Computed and non-local gotos do not get processed. Given
605 their nature we can neither tell whether we've escaped the
606 finally block nor redirect them if we knew. */
607 if (TREE_CODE (label) != LABEL_DECL)
608 return;
610 /* No need to record gotos that don't leave the try block. */
611 temp.t = label;
612 if (!outside_finally_tree (temp, tf->try_finally_expr))
613 return;
615 if (! tf->dest_array.exists ())
617 tf->dest_array.create (10);
618 tf->dest_array.quick_push (label);
619 index = 0;
621 else
623 int n = tf->dest_array.length ();
624 for (index = 0; index < n; ++index)
625 if (tf->dest_array[index] == label)
626 break;
627 if (index == n)
628 tf->dest_array.safe_push (label);
631 /* In the case of a GOTO we want to record the destination label,
632 since with a GIMPLE_COND we have an easy access to the then/else
633 labels. */
634 new_stmt = stmt;
635 record_in_goto_queue (tf, new_stmt, index, true, location);
638 /* For any GIMPLE_GOTO or GIMPLE_RETURN, decide whether it leaves a try_finally
639 node, and if so record that fact in the goto queue associated with that
640 try_finally node. */
642 static void
643 maybe_record_in_goto_queue (struct leh_state *state, gimple stmt)
645 struct leh_tf_state *tf = state->tf;
646 treemple new_stmt;
648 if (!tf)
649 return;
651 switch (gimple_code (stmt))
653 case GIMPLE_COND:
654 new_stmt.tp = gimple_op_ptr (stmt, 2);
655 record_in_goto_queue_label (tf, new_stmt, gimple_cond_true_label (stmt),
656 EXPR_LOCATION (*new_stmt.tp));
657 new_stmt.tp = gimple_op_ptr (stmt, 3);
658 record_in_goto_queue_label (tf, new_stmt, gimple_cond_false_label (stmt),
659 EXPR_LOCATION (*new_stmt.tp));
660 break;
661 case GIMPLE_GOTO:
662 new_stmt.g = stmt;
663 record_in_goto_queue_label (tf, new_stmt, gimple_goto_dest (stmt),
664 gimple_location (stmt));
665 break;
667 case GIMPLE_RETURN:
668 tf->may_return = true;
669 new_stmt.g = stmt;
670 record_in_goto_queue (tf, new_stmt, -1, false, gimple_location (stmt));
671 break;
673 default:
674 gcc_unreachable ();
679 #ifdef ENABLE_CHECKING
680 /* We do not process GIMPLE_SWITCHes for now. As long as the original source
681 was in fact structured, and we've not yet done jump threading, then none
682 of the labels will leave outer GIMPLE_TRY_FINALLY nodes. Verify this. */
684 static void
685 verify_norecord_switch_expr (struct leh_state *state, gimple switch_expr)
687 struct leh_tf_state *tf = state->tf;
688 size_t i, n;
690 if (!tf)
691 return;
693 n = gimple_switch_num_labels (switch_expr);
695 for (i = 0; i < n; ++i)
697 treemple temp;
698 tree lab = CASE_LABEL (gimple_switch_label (switch_expr, i));
699 temp.t = lab;
700 gcc_assert (!outside_finally_tree (temp, tf->try_finally_expr));
703 #else
704 #define verify_norecord_switch_expr(state, switch_expr)
705 #endif
707 /* Redirect a RETURN_EXPR pointed to by Q to FINLAB. If MOD is
708 non-null, insert it before the new branch. */
710 static void
711 do_return_redirection (struct goto_queue_node *q, tree finlab, gimple_seq mod)
713 gimple x;
715 /* In the case of a return, the queue node must be a gimple statement. */
716 gcc_assert (!q->is_label);
718 /* Note that the return value may have already been computed, e.g.,
720 int x;
721 int foo (void)
723 x = 0;
724 try {
725 return x;
726 } finally {
727 x++;
731 should return 0, not 1. We don't have to do anything to make
732 this happens because the return value has been placed in the
733 RESULT_DECL already. */
735 q->cont_stmt = q->stmt.g;
737 if (mod)
738 gimple_seq_add_seq (&q->repl_stmt, mod);
740 x = gimple_build_goto (finlab);
741 gimple_set_location (x, q->location);
742 gimple_seq_add_stmt (&q->repl_stmt, x);
745 /* Similar, but easier, for GIMPLE_GOTO. */
747 static void
748 do_goto_redirection (struct goto_queue_node *q, tree finlab, gimple_seq mod,
749 struct leh_tf_state *tf)
751 gimple x;
753 gcc_assert (q->is_label);
755 q->cont_stmt = gimple_build_goto (tf->dest_array[q->index]);
757 if (mod)
758 gimple_seq_add_seq (&q->repl_stmt, mod);
760 x = gimple_build_goto (finlab);
761 gimple_set_location (x, q->location);
762 gimple_seq_add_stmt (&q->repl_stmt, x);
765 /* Emit a standard landing pad sequence into SEQ for REGION. */
767 static void
768 emit_post_landing_pad (gimple_seq *seq, eh_region region)
770 eh_landing_pad lp = region->landing_pads;
771 gimple x;
773 if (lp == NULL)
774 lp = gen_eh_landing_pad (region);
776 lp->post_landing_pad = create_artificial_label (UNKNOWN_LOCATION);
777 EH_LANDING_PAD_NR (lp->post_landing_pad) = lp->index;
779 x = gimple_build_label (lp->post_landing_pad);
780 gimple_seq_add_stmt (seq, x);
783 /* Emit a RESX statement into SEQ for REGION. */
785 static void
786 emit_resx (gimple_seq *seq, eh_region region)
788 gimple x = gimple_build_resx (region->index);
789 gimple_seq_add_stmt (seq, x);
790 if (region->outer)
791 record_stmt_eh_region (region->outer, x);
794 /* Emit an EH_DISPATCH statement into SEQ for REGION. */
796 static void
797 emit_eh_dispatch (gimple_seq *seq, eh_region region)
799 gimple x = gimple_build_eh_dispatch (region->index);
800 gimple_seq_add_stmt (seq, x);
803 /* Note that the current EH region may contain a throw, or a
804 call to a function which itself may contain a throw. */
806 static void
807 note_eh_region_may_contain_throw (eh_region region)
809 while (bitmap_set_bit (eh_region_may_contain_throw_map, region->index))
811 if (region->type == ERT_MUST_NOT_THROW)
812 break;
813 region = region->outer;
814 if (region == NULL)
815 break;
819 /* Check if REGION has been marked as containing a throw. If REGION is
820 NULL, this predicate is false. */
822 static inline bool
823 eh_region_may_contain_throw (eh_region r)
825 return r && bitmap_bit_p (eh_region_may_contain_throw_map, r->index);
828 /* We want to transform
829 try { body; } catch { stuff; }
831 normal_seqence:
832 body;
833 over:
834 eh_seqence:
835 landing_pad:
836 stuff;
837 goto over;
839 TP is a GIMPLE_TRY node. REGION is the region whose post_landing_pad
840 should be placed before the second operand, or NULL. OVER is
841 an existing label that should be put at the exit, or NULL. */
843 static gimple_seq
844 frob_into_branch_around (gimple tp, eh_region region, tree over)
846 gimple x;
847 gimple_seq cleanup, result;
848 location_t loc = gimple_location (tp);
850 cleanup = gimple_try_cleanup (tp);
851 result = gimple_try_eval (tp);
853 if (region)
854 emit_post_landing_pad (&eh_seq, region);
856 if (gimple_seq_may_fallthru (cleanup))
858 if (!over)
859 over = create_artificial_label (loc);
860 x = gimple_build_goto (over);
861 gimple_set_location (x, loc);
862 gimple_seq_add_stmt (&cleanup, x);
864 gimple_seq_add_seq (&eh_seq, cleanup);
866 if (over)
868 x = gimple_build_label (over);
869 gimple_seq_add_stmt (&result, x);
871 return result;
874 /* A subroutine of lower_try_finally. Duplicate the tree rooted at T.
875 Make sure to record all new labels found. */
877 static gimple_seq
878 lower_try_finally_dup_block (gimple_seq seq, struct leh_state *outer_state,
879 location_t loc)
881 gimple region = NULL;
882 gimple_seq new_seq;
883 gimple_stmt_iterator gsi;
885 new_seq = copy_gimple_seq_and_replace_locals (seq);
887 for (gsi = gsi_start (new_seq); !gsi_end_p (gsi); gsi_next (&gsi))
889 gimple stmt = gsi_stmt (gsi);
890 if (LOCATION_LOCUS (gimple_location (stmt)) == UNKNOWN_LOCATION)
892 tree block = gimple_block (stmt);
893 gimple_set_location (stmt, loc);
894 gimple_set_block (stmt, block);
898 if (outer_state->tf)
899 region = outer_state->tf->try_finally_expr;
900 collect_finally_tree_1 (new_seq, region);
902 return new_seq;
905 /* A subroutine of lower_try_finally. Create a fallthru label for
906 the given try_finally state. The only tricky bit here is that
907 we have to make sure to record the label in our outer context. */
909 static tree
910 lower_try_finally_fallthru_label (struct leh_tf_state *tf)
912 tree label = tf->fallthru_label;
913 treemple temp;
915 if (!label)
917 label = create_artificial_label (gimple_location (tf->try_finally_expr));
918 tf->fallthru_label = label;
919 if (tf->outer->tf)
921 temp.t = label;
922 record_in_finally_tree (temp, tf->outer->tf->try_finally_expr);
925 return label;
928 /* A subroutine of lower_try_finally. If FINALLY consits of a
929 GIMPLE_EH_ELSE node, return it. */
931 static inline gimple
932 get_eh_else (gimple_seq finally)
934 gimple x = gimple_seq_first_stmt (finally);
935 if (gimple_code (x) == GIMPLE_EH_ELSE)
937 gcc_assert (gimple_seq_singleton_p (finally));
938 return x;
940 return NULL;
943 /* A subroutine of lower_try_finally. If the eh_protect_cleanup_actions
944 langhook returns non-null, then the language requires that the exception
945 path out of a try_finally be treated specially. To wit: the code within
946 the finally block may not itself throw an exception. We have two choices
947 here. First we can duplicate the finally block and wrap it in a
948 must_not_throw region. Second, we can generate code like
950 try {
951 finally_block;
952 } catch {
953 if (fintmp == eh_edge)
954 protect_cleanup_actions;
957 where "fintmp" is the temporary used in the switch statement generation
958 alternative considered below. For the nonce, we always choose the first
959 option.
961 THIS_STATE may be null if this is a try-cleanup, not a try-finally. */
963 static void
964 honor_protect_cleanup_actions (struct leh_state *outer_state,
965 struct leh_state *this_state,
966 struct leh_tf_state *tf)
968 tree protect_cleanup_actions;
969 gimple_stmt_iterator gsi;
970 bool finally_may_fallthru;
971 gimple_seq finally;
972 gimple x, eh_else;
974 /* First check for nothing to do. */
975 if (lang_hooks.eh_protect_cleanup_actions == NULL)
976 return;
977 protect_cleanup_actions = lang_hooks.eh_protect_cleanup_actions ();
978 if (protect_cleanup_actions == NULL)
979 return;
981 finally = gimple_try_cleanup (tf->top_p);
982 eh_else = get_eh_else (finally);
984 /* Duplicate the FINALLY block. Only need to do this for try-finally,
985 and not for cleanups. If we've got an EH_ELSE, extract it now. */
986 if (eh_else)
988 finally = gimple_eh_else_e_body (eh_else);
989 gimple_try_set_cleanup (tf->top_p, gimple_eh_else_n_body (eh_else));
991 else if (this_state)
992 finally = lower_try_finally_dup_block (finally, outer_state,
993 gimple_location (tf->try_finally_expr));
994 finally_may_fallthru = gimple_seq_may_fallthru (finally);
996 /* If this cleanup consists of a TRY_CATCH_EXPR with TRY_CATCH_IS_CLEANUP
997 set, the handler of the TRY_CATCH_EXPR is another cleanup which ought
998 to be in an enclosing scope, but needs to be implemented at this level
999 to avoid a nesting violation (see wrap_temporary_cleanups in
1000 cp/decl.c). Since it's logically at an outer level, we should call
1001 terminate before we get to it, so strip it away before adding the
1002 MUST_NOT_THROW filter. */
1003 gsi = gsi_start (finally);
1004 x = gsi_stmt (gsi);
1005 if (gimple_code (x) == GIMPLE_TRY
1006 && gimple_try_kind (x) == GIMPLE_TRY_CATCH
1007 && gimple_try_catch_is_cleanup (x))
1009 gsi_insert_seq_before (&gsi, gimple_try_eval (x), GSI_SAME_STMT);
1010 gsi_remove (&gsi, false);
1013 /* Wrap the block with protect_cleanup_actions as the action. */
1014 x = gimple_build_eh_must_not_throw (protect_cleanup_actions);
1015 x = gimple_build_try (finally, gimple_seq_alloc_with_stmt (x),
1016 GIMPLE_TRY_CATCH);
1017 finally = lower_eh_must_not_throw (outer_state, x);
1019 /* Drop all of this into the exception sequence. */
1020 emit_post_landing_pad (&eh_seq, tf->region);
1021 gimple_seq_add_seq (&eh_seq, finally);
1022 if (finally_may_fallthru)
1023 emit_resx (&eh_seq, tf->region);
1025 /* Having now been handled, EH isn't to be considered with
1026 the rest of the outgoing edges. */
1027 tf->may_throw = false;
1030 /* A subroutine of lower_try_finally. We have determined that there is
1031 no fallthru edge out of the finally block. This means that there is
1032 no outgoing edge corresponding to any incoming edge. Restructure the
1033 try_finally node for this special case. */
1035 static void
1036 lower_try_finally_nofallthru (struct leh_state *state,
1037 struct leh_tf_state *tf)
1039 tree lab;
1040 gimple x, eh_else;
1041 gimple_seq finally;
1042 struct goto_queue_node *q, *qe;
1044 lab = create_artificial_label (gimple_location (tf->try_finally_expr));
1046 /* We expect that tf->top_p is a GIMPLE_TRY. */
1047 finally = gimple_try_cleanup (tf->top_p);
1048 tf->top_p_seq = gimple_try_eval (tf->top_p);
1050 x = gimple_build_label (lab);
1051 gimple_seq_add_stmt (&tf->top_p_seq, x);
1053 q = tf->goto_queue;
1054 qe = q + tf->goto_queue_active;
1055 for (; q < qe; ++q)
1056 if (q->index < 0)
1057 do_return_redirection (q, lab, NULL);
1058 else
1059 do_goto_redirection (q, lab, NULL, tf);
1061 replace_goto_queue (tf);
1063 /* Emit the finally block into the stream. Lower EH_ELSE at this time. */
1064 eh_else = get_eh_else (finally);
1065 if (eh_else)
1067 finally = gimple_eh_else_n_body (eh_else);
1068 lower_eh_constructs_1 (state, &finally);
1069 gimple_seq_add_seq (&tf->top_p_seq, finally);
1071 if (tf->may_throw)
1073 finally = gimple_eh_else_e_body (eh_else);
1074 lower_eh_constructs_1 (state, &finally);
1076 emit_post_landing_pad (&eh_seq, tf->region);
1077 gimple_seq_add_seq (&eh_seq, finally);
1080 else
1082 lower_eh_constructs_1 (state, &finally);
1083 gimple_seq_add_seq (&tf->top_p_seq, finally);
1085 if (tf->may_throw)
1087 emit_post_landing_pad (&eh_seq, tf->region);
1089 x = gimple_build_goto (lab);
1090 gimple_set_location (x, gimple_location (tf->try_finally_expr));
1091 gimple_seq_add_stmt (&eh_seq, x);
1096 /* A subroutine of lower_try_finally. We have determined that there is
1097 exactly one destination of the finally block. Restructure the
1098 try_finally node for this special case. */
1100 static void
1101 lower_try_finally_onedest (struct leh_state *state, struct leh_tf_state *tf)
1103 struct goto_queue_node *q, *qe;
1104 gimple x;
1105 gimple_seq finally;
1106 gimple_stmt_iterator gsi;
1107 tree finally_label;
1108 location_t loc = gimple_location (tf->try_finally_expr);
1110 finally = gimple_try_cleanup (tf->top_p);
1111 tf->top_p_seq = gimple_try_eval (tf->top_p);
1113 /* Since there's only one destination, and the destination edge can only
1114 either be EH or non-EH, that implies that all of our incoming edges
1115 are of the same type. Therefore we can lower EH_ELSE immediately. */
1116 x = get_eh_else (finally);
1117 if (x)
1119 if (tf->may_throw)
1120 finally = gimple_eh_else_e_body (x);
1121 else
1122 finally = gimple_eh_else_n_body (x);
1125 lower_eh_constructs_1 (state, &finally);
1127 for (gsi = gsi_start (finally); !gsi_end_p (gsi); gsi_next (&gsi))
1129 gimple stmt = gsi_stmt (gsi);
1130 if (LOCATION_LOCUS (gimple_location (stmt)) == UNKNOWN_LOCATION)
1132 tree block = gimple_block (stmt);
1133 gimple_set_location (stmt, gimple_location (tf->try_finally_expr));
1134 gimple_set_block (stmt, block);
1138 if (tf->may_throw)
1140 /* Only reachable via the exception edge. Add the given label to
1141 the head of the FINALLY block. Append a RESX at the end. */
1142 emit_post_landing_pad (&eh_seq, tf->region);
1143 gimple_seq_add_seq (&eh_seq, finally);
1144 emit_resx (&eh_seq, tf->region);
1145 return;
1148 if (tf->may_fallthru)
1150 /* Only reachable via the fallthru edge. Do nothing but let
1151 the two blocks run together; we'll fall out the bottom. */
1152 gimple_seq_add_seq (&tf->top_p_seq, finally);
1153 return;
1156 finally_label = create_artificial_label (loc);
1157 x = gimple_build_label (finally_label);
1158 gimple_seq_add_stmt (&tf->top_p_seq, x);
1160 gimple_seq_add_seq (&tf->top_p_seq, finally);
1162 q = tf->goto_queue;
1163 qe = q + tf->goto_queue_active;
1165 if (tf->may_return)
1167 /* Reachable by return expressions only. Redirect them. */
1168 for (; q < qe; ++q)
1169 do_return_redirection (q, finally_label, NULL);
1170 replace_goto_queue (tf);
1172 else
1174 /* Reachable by goto expressions only. Redirect them. */
1175 for (; q < qe; ++q)
1176 do_goto_redirection (q, finally_label, NULL, tf);
1177 replace_goto_queue (tf);
1179 if (tf->dest_array[0] == tf->fallthru_label)
1181 /* Reachable by goto to fallthru label only. Redirect it
1182 to the new label (already created, sadly), and do not
1183 emit the final branch out, or the fallthru label. */
1184 tf->fallthru_label = NULL;
1185 return;
1189 /* Place the original return/goto to the original destination
1190 immediately after the finally block. */
1191 x = tf->goto_queue[0].cont_stmt;
1192 gimple_seq_add_stmt (&tf->top_p_seq, x);
1193 maybe_record_in_goto_queue (state, x);
1196 /* A subroutine of lower_try_finally. There are multiple edges incoming
1197 and outgoing from the finally block. Implement this by duplicating the
1198 finally block for every destination. */
1200 static void
1201 lower_try_finally_copy (struct leh_state *state, struct leh_tf_state *tf)
1203 gimple_seq finally;
1204 gimple_seq new_stmt;
1205 gimple_seq seq;
1206 gimple x, eh_else;
1207 tree tmp;
1208 location_t tf_loc = gimple_location (tf->try_finally_expr);
1210 finally = gimple_try_cleanup (tf->top_p);
1212 /* Notice EH_ELSE, and simplify some of the remaining code
1213 by considering FINALLY to be the normal return path only. */
1214 eh_else = get_eh_else (finally);
1215 if (eh_else)
1216 finally = gimple_eh_else_n_body (eh_else);
1218 tf->top_p_seq = gimple_try_eval (tf->top_p);
1219 new_stmt = NULL;
1221 if (tf->may_fallthru)
1223 seq = lower_try_finally_dup_block (finally, state, tf_loc);
1224 lower_eh_constructs_1 (state, &seq);
1225 gimple_seq_add_seq (&new_stmt, seq);
1227 tmp = lower_try_finally_fallthru_label (tf);
1228 x = gimple_build_goto (tmp);
1229 gimple_set_location (x, tf_loc);
1230 gimple_seq_add_stmt (&new_stmt, x);
1233 if (tf->may_throw)
1235 /* We don't need to copy the EH path of EH_ELSE,
1236 since it is only emitted once. */
1237 if (eh_else)
1238 seq = gimple_eh_else_e_body (eh_else);
1239 else
1240 seq = lower_try_finally_dup_block (finally, state, tf_loc);
1241 lower_eh_constructs_1 (state, &seq);
1243 emit_post_landing_pad (&eh_seq, tf->region);
1244 gimple_seq_add_seq (&eh_seq, seq);
1245 emit_resx (&eh_seq, tf->region);
1248 if (tf->goto_queue)
1250 struct goto_queue_node *q, *qe;
1251 int return_index, index;
1252 struct labels_s
1254 struct goto_queue_node *q;
1255 tree label;
1256 } *labels;
1258 return_index = tf->dest_array.length ();
1259 labels = XCNEWVEC (struct labels_s, return_index + 1);
1261 q = tf->goto_queue;
1262 qe = q + tf->goto_queue_active;
1263 for (; q < qe; q++)
1265 index = q->index < 0 ? return_index : q->index;
1267 if (!labels[index].q)
1268 labels[index].q = q;
1271 for (index = 0; index < return_index + 1; index++)
1273 tree lab;
1275 q = labels[index].q;
1276 if (! q)
1277 continue;
1279 lab = labels[index].label
1280 = create_artificial_label (tf_loc);
1282 if (index == return_index)
1283 do_return_redirection (q, lab, NULL);
1284 else
1285 do_goto_redirection (q, lab, NULL, tf);
1287 x = gimple_build_label (lab);
1288 gimple_seq_add_stmt (&new_stmt, x);
1290 seq = lower_try_finally_dup_block (finally, state, q->location);
1291 lower_eh_constructs_1 (state, &seq);
1292 gimple_seq_add_seq (&new_stmt, seq);
1294 gimple_seq_add_stmt (&new_stmt, q->cont_stmt);
1295 maybe_record_in_goto_queue (state, q->cont_stmt);
1298 for (q = tf->goto_queue; q < qe; q++)
1300 tree lab;
1302 index = q->index < 0 ? return_index : q->index;
1304 if (labels[index].q == q)
1305 continue;
1307 lab = labels[index].label;
1309 if (index == return_index)
1310 do_return_redirection (q, lab, NULL);
1311 else
1312 do_goto_redirection (q, lab, NULL, tf);
1315 replace_goto_queue (tf);
1316 free (labels);
1319 /* Need to link new stmts after running replace_goto_queue due
1320 to not wanting to process the same goto stmts twice. */
1321 gimple_seq_add_seq (&tf->top_p_seq, new_stmt);
1324 /* A subroutine of lower_try_finally. There are multiple edges incoming
1325 and outgoing from the finally block. Implement this by instrumenting
1326 each incoming edge and creating a switch statement at the end of the
1327 finally block that branches to the appropriate destination. */
1329 static void
1330 lower_try_finally_switch (struct leh_state *state, struct leh_tf_state *tf)
1332 struct goto_queue_node *q, *qe;
1333 tree finally_tmp, finally_label;
1334 int return_index, eh_index, fallthru_index;
1335 int nlabels, ndests, j, last_case_index;
1336 tree last_case;
1337 vec<tree> case_label_vec;
1338 gimple_seq switch_body = NULL;
1339 gimple x, eh_else;
1340 tree tmp;
1341 gimple switch_stmt;
1342 gimple_seq finally;
1343 struct pointer_map_t *cont_map = NULL;
1344 /* The location of the TRY_FINALLY stmt. */
1345 location_t tf_loc = gimple_location (tf->try_finally_expr);
1346 /* The location of the finally block. */
1347 location_t finally_loc;
1349 finally = gimple_try_cleanup (tf->top_p);
1350 eh_else = get_eh_else (finally);
1352 /* Mash the TRY block to the head of the chain. */
1353 tf->top_p_seq = gimple_try_eval (tf->top_p);
1355 /* The location of the finally is either the last stmt in the finally
1356 block or the location of the TRY_FINALLY itself. */
1357 x = gimple_seq_last_stmt (finally);
1358 finally_loc = x ? gimple_location (x) : tf_loc;
1360 /* Lower the finally block itself. */
1361 lower_eh_constructs_1 (state, &finally);
1363 /* Prepare for switch statement generation. */
1364 nlabels = tf->dest_array.length ();
1365 return_index = nlabels;
1366 eh_index = return_index + tf->may_return;
1367 fallthru_index = eh_index + (tf->may_throw && !eh_else);
1368 ndests = fallthru_index + tf->may_fallthru;
1370 finally_tmp = create_tmp_var (integer_type_node, "finally_tmp");
1371 finally_label = create_artificial_label (finally_loc);
1373 /* We use vec::quick_push on case_label_vec throughout this function,
1374 since we know the size in advance and allocate precisely as muce
1375 space as needed. */
1376 case_label_vec.create (ndests);
1377 last_case = NULL;
1378 last_case_index = 0;
1380 /* Begin inserting code for getting to the finally block. Things
1381 are done in this order to correspond to the sequence the code is
1382 laid out. */
1384 if (tf->may_fallthru)
1386 x = gimple_build_assign (finally_tmp,
1387 build_int_cst (integer_type_node,
1388 fallthru_index));
1389 gimple_seq_add_stmt (&tf->top_p_seq, x);
1391 tmp = build_int_cst (integer_type_node, fallthru_index);
1392 last_case = build_case_label (tmp, NULL,
1393 create_artificial_label (tf_loc));
1394 case_label_vec.quick_push (last_case);
1395 last_case_index++;
1397 x = gimple_build_label (CASE_LABEL (last_case));
1398 gimple_seq_add_stmt (&switch_body, x);
1400 tmp = lower_try_finally_fallthru_label (tf);
1401 x = gimple_build_goto (tmp);
1402 gimple_set_location (x, tf_loc);
1403 gimple_seq_add_stmt (&switch_body, x);
1406 /* For EH_ELSE, emit the exception path (plus resx) now, then
1407 subsequently we only need consider the normal path. */
1408 if (eh_else)
1410 if (tf->may_throw)
1412 finally = gimple_eh_else_e_body (eh_else);
1413 lower_eh_constructs_1 (state, &finally);
1415 emit_post_landing_pad (&eh_seq, tf->region);
1416 gimple_seq_add_seq (&eh_seq, finally);
1417 emit_resx (&eh_seq, tf->region);
1420 finally = gimple_eh_else_n_body (eh_else);
1422 else if (tf->may_throw)
1424 emit_post_landing_pad (&eh_seq, tf->region);
1426 x = gimple_build_assign (finally_tmp,
1427 build_int_cst (integer_type_node, eh_index));
1428 gimple_seq_add_stmt (&eh_seq, x);
1430 x = gimple_build_goto (finally_label);
1431 gimple_set_location (x, tf_loc);
1432 gimple_seq_add_stmt (&eh_seq, x);
1434 tmp = build_int_cst (integer_type_node, eh_index);
1435 last_case = build_case_label (tmp, NULL,
1436 create_artificial_label (tf_loc));
1437 case_label_vec.quick_push (last_case);
1438 last_case_index++;
1440 x = gimple_build_label (CASE_LABEL (last_case));
1441 gimple_seq_add_stmt (&eh_seq, x);
1442 emit_resx (&eh_seq, tf->region);
1445 x = gimple_build_label (finally_label);
1446 gimple_seq_add_stmt (&tf->top_p_seq, x);
1448 gimple_seq_add_seq (&tf->top_p_seq, finally);
1450 /* Redirect each incoming goto edge. */
1451 q = tf->goto_queue;
1452 qe = q + tf->goto_queue_active;
1453 j = last_case_index + tf->may_return;
1454 /* Prepare the assignments to finally_tmp that are executed upon the
1455 entrance through a particular edge. */
1456 for (; q < qe; ++q)
1458 gimple_seq mod = NULL;
1459 int switch_id;
1460 unsigned int case_index;
1462 if (q->index < 0)
1464 x = gimple_build_assign (finally_tmp,
1465 build_int_cst (integer_type_node,
1466 return_index));
1467 gimple_seq_add_stmt (&mod, x);
1468 do_return_redirection (q, finally_label, mod);
1469 switch_id = return_index;
1471 else
1473 x = gimple_build_assign (finally_tmp,
1474 build_int_cst (integer_type_node, q->index));
1475 gimple_seq_add_stmt (&mod, x);
1476 do_goto_redirection (q, finally_label, mod, tf);
1477 switch_id = q->index;
1480 case_index = j + q->index;
1481 if (case_label_vec.length () <= case_index || !case_label_vec[case_index])
1483 tree case_lab;
1484 void **slot;
1485 tmp = build_int_cst (integer_type_node, switch_id);
1486 case_lab = build_case_label (tmp, NULL,
1487 create_artificial_label (tf_loc));
1488 /* We store the cont_stmt in the pointer map, so that we can recover
1489 it in the loop below. */
1490 if (!cont_map)
1491 cont_map = pointer_map_create ();
1492 slot = pointer_map_insert (cont_map, case_lab);
1493 *slot = q->cont_stmt;
1494 case_label_vec.quick_push (case_lab);
1497 for (j = last_case_index; j < last_case_index + nlabels; j++)
1499 gimple cont_stmt;
1500 void **slot;
1502 last_case = case_label_vec[j];
1504 gcc_assert (last_case);
1505 gcc_assert (cont_map);
1507 slot = pointer_map_contains (cont_map, last_case);
1508 gcc_assert (slot);
1509 cont_stmt = *(gimple *) slot;
1511 x = gimple_build_label (CASE_LABEL (last_case));
1512 gimple_seq_add_stmt (&switch_body, x);
1513 gimple_seq_add_stmt (&switch_body, cont_stmt);
1514 maybe_record_in_goto_queue (state, cont_stmt);
1516 if (cont_map)
1517 pointer_map_destroy (cont_map);
1519 replace_goto_queue (tf);
1521 /* Make sure that the last case is the default label, as one is required.
1522 Then sort the labels, which is also required in GIMPLE. */
1523 CASE_LOW (last_case) = NULL;
1524 sort_case_labels (case_label_vec);
1526 /* Build the switch statement, setting last_case to be the default
1527 label. */
1528 switch_stmt = gimple_build_switch (finally_tmp, last_case,
1529 case_label_vec);
1530 gimple_set_location (switch_stmt, finally_loc);
1532 /* Need to link SWITCH_STMT after running replace_goto_queue
1533 due to not wanting to process the same goto stmts twice. */
1534 gimple_seq_add_stmt (&tf->top_p_seq, switch_stmt);
1535 gimple_seq_add_seq (&tf->top_p_seq, switch_body);
1538 /* Decide whether or not we are going to duplicate the finally block.
1539 There are several considerations.
1541 First, if this is Java, then the finally block contains code
1542 written by the user. It has line numbers associated with it,
1543 so duplicating the block means it's difficult to set a breakpoint.
1544 Since controlling code generation via -g is verboten, we simply
1545 never duplicate code without optimization.
1547 Second, we'd like to prevent egregious code growth. One way to
1548 do this is to estimate the size of the finally block, multiply
1549 that by the number of copies we'd need to make, and compare against
1550 the estimate of the size of the switch machinery we'd have to add. */
1552 static bool
1553 decide_copy_try_finally (int ndests, bool may_throw, gimple_seq finally)
1555 int f_estimate, sw_estimate;
1556 gimple eh_else;
1558 /* If there's an EH_ELSE involved, the exception path is separate
1559 and really doesn't come into play for this computation. */
1560 eh_else = get_eh_else (finally);
1561 if (eh_else)
1563 ndests -= may_throw;
1564 finally = gimple_eh_else_n_body (eh_else);
1567 if (!optimize)
1569 gimple_stmt_iterator gsi;
1571 if (ndests == 1)
1572 return true;
1574 for (gsi = gsi_start (finally); !gsi_end_p (gsi); gsi_next (&gsi))
1576 gimple stmt = gsi_stmt (gsi);
1577 if (!is_gimple_debug (stmt) && !gimple_clobber_p (stmt))
1578 return false;
1580 return true;
1583 /* Finally estimate N times, plus N gotos. */
1584 f_estimate = count_insns_seq (finally, &eni_size_weights);
1585 f_estimate = (f_estimate + 1) * ndests;
1587 /* Switch statement (cost 10), N variable assignments, N gotos. */
1588 sw_estimate = 10 + 2 * ndests;
1590 /* Optimize for size clearly wants our best guess. */
1591 if (optimize_function_for_size_p (cfun))
1592 return f_estimate < sw_estimate;
1594 /* ??? These numbers are completely made up so far. */
1595 if (optimize > 1)
1596 return f_estimate < 100 || f_estimate < sw_estimate * 2;
1597 else
1598 return f_estimate < 40 || f_estimate * 2 < sw_estimate * 3;
1601 /* REG is the enclosing region for a possible cleanup region, or the region
1602 itself. Returns TRUE if such a region would be unreachable.
1604 Cleanup regions within a must-not-throw region aren't actually reachable
1605 even if there are throwing stmts within them, because the personality
1606 routine will call terminate before unwinding. */
1608 static bool
1609 cleanup_is_dead_in (eh_region reg)
1611 while (reg && reg->type == ERT_CLEANUP)
1612 reg = reg->outer;
1613 return (reg && reg->type == ERT_MUST_NOT_THROW);
1616 /* A subroutine of lower_eh_constructs_1. Lower a GIMPLE_TRY_FINALLY nodes
1617 to a sequence of labels and blocks, plus the exception region trees
1618 that record all the magic. This is complicated by the need to
1619 arrange for the FINALLY block to be executed on all exits. */
1621 static gimple_seq
1622 lower_try_finally (struct leh_state *state, gimple tp)
1624 struct leh_tf_state this_tf;
1625 struct leh_state this_state;
1626 int ndests;
1627 gimple_seq old_eh_seq;
1629 /* Process the try block. */
1631 memset (&this_tf, 0, sizeof (this_tf));
1632 this_tf.try_finally_expr = tp;
1633 this_tf.top_p = tp;
1634 this_tf.outer = state;
1635 if (using_eh_for_cleanups_p && !cleanup_is_dead_in (state->cur_region))
1637 this_tf.region = gen_eh_region_cleanup (state->cur_region);
1638 this_state.cur_region = this_tf.region;
1640 else
1642 this_tf.region = NULL;
1643 this_state.cur_region = state->cur_region;
1646 this_state.ehp_region = state->ehp_region;
1647 this_state.tf = &this_tf;
1649 old_eh_seq = eh_seq;
1650 eh_seq = NULL;
1652 lower_eh_constructs_1 (&this_state, gimple_try_eval_ptr (tp));
1654 /* Determine if the try block is escaped through the bottom. */
1655 this_tf.may_fallthru = gimple_seq_may_fallthru (gimple_try_eval (tp));
1657 /* Determine if any exceptions are possible within the try block. */
1658 if (this_tf.region)
1659 this_tf.may_throw = eh_region_may_contain_throw (this_tf.region);
1660 if (this_tf.may_throw)
1661 honor_protect_cleanup_actions (state, &this_state, &this_tf);
1663 /* Determine how many edges (still) reach the finally block. Or rather,
1664 how many destinations are reached by the finally block. Use this to
1665 determine how we process the finally block itself. */
1667 ndests = this_tf.dest_array.length ();
1668 ndests += this_tf.may_fallthru;
1669 ndests += this_tf.may_return;
1670 ndests += this_tf.may_throw;
1672 /* If the FINALLY block is not reachable, dike it out. */
1673 if (ndests == 0)
1675 gimple_seq_add_seq (&this_tf.top_p_seq, gimple_try_eval (tp));
1676 gimple_try_set_cleanup (tp, NULL);
1678 /* If the finally block doesn't fall through, then any destination
1679 we might try to impose there isn't reached either. There may be
1680 some minor amount of cleanup and redirection still needed. */
1681 else if (!gimple_seq_may_fallthru (gimple_try_cleanup (tp)))
1682 lower_try_finally_nofallthru (state, &this_tf);
1684 /* We can easily special-case redirection to a single destination. */
1685 else if (ndests == 1)
1686 lower_try_finally_onedest (state, &this_tf);
1687 else if (decide_copy_try_finally (ndests, this_tf.may_throw,
1688 gimple_try_cleanup (tp)))
1689 lower_try_finally_copy (state, &this_tf);
1690 else
1691 lower_try_finally_switch (state, &this_tf);
1693 /* If someone requested we add a label at the end of the transformed
1694 block, do so. */
1695 if (this_tf.fallthru_label)
1697 /* This must be reached only if ndests == 0. */
1698 gimple x = gimple_build_label (this_tf.fallthru_label);
1699 gimple_seq_add_stmt (&this_tf.top_p_seq, x);
1702 this_tf.dest_array.release ();
1703 free (this_tf.goto_queue);
1704 if (this_tf.goto_queue_map)
1705 pointer_map_destroy (this_tf.goto_queue_map);
1707 /* If there was an old (aka outer) eh_seq, append the current eh_seq.
1708 If there was no old eh_seq, then the append is trivially already done. */
1709 if (old_eh_seq)
1711 if (eh_seq == NULL)
1712 eh_seq = old_eh_seq;
1713 else
1715 gimple_seq new_eh_seq = eh_seq;
1716 eh_seq = old_eh_seq;
1717 gimple_seq_add_seq(&eh_seq, new_eh_seq);
1721 return this_tf.top_p_seq;
1724 /* A subroutine of lower_eh_constructs_1. Lower a GIMPLE_TRY_CATCH with a
1725 list of GIMPLE_CATCH to a sequence of labels and blocks, plus the
1726 exception region trees that records all the magic. */
1728 static gimple_seq
1729 lower_catch (struct leh_state *state, gimple tp)
1731 eh_region try_region = NULL;
1732 struct leh_state this_state = *state;
1733 gimple_stmt_iterator gsi;
1734 tree out_label;
1735 gimple_seq new_seq, cleanup;
1736 gimple x;
1737 location_t try_catch_loc = gimple_location (tp);
1739 if (flag_exceptions)
1741 try_region = gen_eh_region_try (state->cur_region);
1742 this_state.cur_region = try_region;
1745 lower_eh_constructs_1 (&this_state, gimple_try_eval_ptr (tp));
1747 if (!eh_region_may_contain_throw (try_region))
1748 return gimple_try_eval (tp);
1750 new_seq = NULL;
1751 emit_eh_dispatch (&new_seq, try_region);
1752 emit_resx (&new_seq, try_region);
1754 this_state.cur_region = state->cur_region;
1755 this_state.ehp_region = try_region;
1757 out_label = NULL;
1758 cleanup = gimple_try_cleanup (tp);
1759 for (gsi = gsi_start (cleanup);
1760 !gsi_end_p (gsi);
1761 gsi_next (&gsi))
1763 eh_catch c;
1764 gimple gcatch;
1765 gimple_seq handler;
1767 gcatch = gsi_stmt (gsi);
1768 c = gen_eh_region_catch (try_region, gimple_catch_types (gcatch));
1770 handler = gimple_catch_handler (gcatch);
1771 lower_eh_constructs_1 (&this_state, &handler);
1773 c->label = create_artificial_label (UNKNOWN_LOCATION);
1774 x = gimple_build_label (c->label);
1775 gimple_seq_add_stmt (&new_seq, x);
1777 gimple_seq_add_seq (&new_seq, handler);
1779 if (gimple_seq_may_fallthru (new_seq))
1781 if (!out_label)
1782 out_label = create_artificial_label (try_catch_loc);
1784 x = gimple_build_goto (out_label);
1785 gimple_seq_add_stmt (&new_seq, x);
1787 if (!c->type_list)
1788 break;
1791 gimple_try_set_cleanup (tp, new_seq);
1793 return frob_into_branch_around (tp, try_region, out_label);
1796 /* A subroutine of lower_eh_constructs_1. Lower a GIMPLE_TRY with a
1797 GIMPLE_EH_FILTER to a sequence of labels and blocks, plus the exception
1798 region trees that record all the magic. */
1800 static gimple_seq
1801 lower_eh_filter (struct leh_state *state, gimple tp)
1803 struct leh_state this_state = *state;
1804 eh_region this_region = NULL;
1805 gimple inner, x;
1806 gimple_seq new_seq;
1808 inner = gimple_seq_first_stmt (gimple_try_cleanup (tp));
1810 if (flag_exceptions)
1812 this_region = gen_eh_region_allowed (state->cur_region,
1813 gimple_eh_filter_types (inner));
1814 this_state.cur_region = this_region;
1817 lower_eh_constructs_1 (&this_state, gimple_try_eval_ptr (tp));
1819 if (!eh_region_may_contain_throw (this_region))
1820 return gimple_try_eval (tp);
1822 new_seq = NULL;
1823 this_state.cur_region = state->cur_region;
1824 this_state.ehp_region = this_region;
1826 emit_eh_dispatch (&new_seq, this_region);
1827 emit_resx (&new_seq, this_region);
1829 this_region->u.allowed.label = create_artificial_label (UNKNOWN_LOCATION);
1830 x = gimple_build_label (this_region->u.allowed.label);
1831 gimple_seq_add_stmt (&new_seq, x);
1833 lower_eh_constructs_1 (&this_state, gimple_eh_filter_failure_ptr (inner));
1834 gimple_seq_add_seq (&new_seq, gimple_eh_filter_failure (inner));
1836 gimple_try_set_cleanup (tp, new_seq);
1838 return frob_into_branch_around (tp, this_region, NULL);
1841 /* A subroutine of lower_eh_constructs_1. Lower a GIMPLE_TRY with
1842 an GIMPLE_EH_MUST_NOT_THROW to a sequence of labels and blocks,
1843 plus the exception region trees that record all the magic. */
1845 static gimple_seq
1846 lower_eh_must_not_throw (struct leh_state *state, gimple tp)
1848 struct leh_state this_state = *state;
1850 if (flag_exceptions)
1852 gimple inner = gimple_seq_first_stmt (gimple_try_cleanup (tp));
1853 eh_region this_region;
1855 this_region = gen_eh_region_must_not_throw (state->cur_region);
1856 this_region->u.must_not_throw.failure_decl
1857 = gimple_eh_must_not_throw_fndecl (inner);
1858 this_region->u.must_not_throw.failure_loc
1859 = LOCATION_LOCUS (gimple_location (tp));
1861 /* In order to get mangling applied to this decl, we must mark it
1862 used now. Otherwise, pass_ipa_free_lang_data won't think it
1863 needs to happen. */
1864 TREE_USED (this_region->u.must_not_throw.failure_decl) = 1;
1866 this_state.cur_region = this_region;
1869 lower_eh_constructs_1 (&this_state, gimple_try_eval_ptr (tp));
1871 return gimple_try_eval (tp);
1874 /* Implement a cleanup expression. This is similar to try-finally,
1875 except that we only execute the cleanup block for exception edges. */
1877 static gimple_seq
1878 lower_cleanup (struct leh_state *state, gimple tp)
1880 struct leh_state this_state = *state;
1881 eh_region this_region = NULL;
1882 struct leh_tf_state fake_tf;
1883 gimple_seq result;
1884 bool cleanup_dead = cleanup_is_dead_in (state->cur_region);
1886 if (flag_exceptions && !cleanup_dead)
1888 this_region = gen_eh_region_cleanup (state->cur_region);
1889 this_state.cur_region = this_region;
1892 lower_eh_constructs_1 (&this_state, gimple_try_eval_ptr (tp));
1894 if (cleanup_dead || !eh_region_may_contain_throw (this_region))
1895 return gimple_try_eval (tp);
1897 /* Build enough of a try-finally state so that we can reuse
1898 honor_protect_cleanup_actions. */
1899 memset (&fake_tf, 0, sizeof (fake_tf));
1900 fake_tf.top_p = fake_tf.try_finally_expr = tp;
1901 fake_tf.outer = state;
1902 fake_tf.region = this_region;
1903 fake_tf.may_fallthru = gimple_seq_may_fallthru (gimple_try_eval (tp));
1904 fake_tf.may_throw = true;
1906 honor_protect_cleanup_actions (state, NULL, &fake_tf);
1908 if (fake_tf.may_throw)
1910 /* In this case honor_protect_cleanup_actions had nothing to do,
1911 and we should process this normally. */
1912 lower_eh_constructs_1 (state, gimple_try_cleanup_ptr (tp));
1913 result = frob_into_branch_around (tp, this_region,
1914 fake_tf.fallthru_label);
1916 else
1918 /* In this case honor_protect_cleanup_actions did nearly all of
1919 the work. All we have left is to append the fallthru_label. */
1921 result = gimple_try_eval (tp);
1922 if (fake_tf.fallthru_label)
1924 gimple x = gimple_build_label (fake_tf.fallthru_label);
1925 gimple_seq_add_stmt (&result, x);
1928 return result;
1931 /* Main loop for lowering eh constructs. Also moves gsi to the next
1932 statement. */
1934 static void
1935 lower_eh_constructs_2 (struct leh_state *state, gimple_stmt_iterator *gsi)
1937 gimple_seq replace;
1938 gimple x;
1939 gimple stmt = gsi_stmt (*gsi);
1941 switch (gimple_code (stmt))
1943 case GIMPLE_CALL:
1945 tree fndecl = gimple_call_fndecl (stmt);
1946 tree rhs, lhs;
1948 if (fndecl && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL)
1949 switch (DECL_FUNCTION_CODE (fndecl))
1951 case BUILT_IN_EH_POINTER:
1952 /* The front end may have generated a call to
1953 __builtin_eh_pointer (0) within a catch region. Replace
1954 this zero argument with the current catch region number. */
1955 if (state->ehp_region)
1957 tree nr = build_int_cst (integer_type_node,
1958 state->ehp_region->index);
1959 gimple_call_set_arg (stmt, 0, nr);
1961 else
1963 /* The user has dome something silly. Remove it. */
1964 rhs = null_pointer_node;
1965 goto do_replace;
1967 break;
1969 case BUILT_IN_EH_FILTER:
1970 /* ??? This should never appear, but since it's a builtin it
1971 is accessible to abuse by users. Just remove it and
1972 replace the use with the arbitrary value zero. */
1973 rhs = build_int_cst (TREE_TYPE (TREE_TYPE (fndecl)), 0);
1974 do_replace:
1975 lhs = gimple_call_lhs (stmt);
1976 x = gimple_build_assign (lhs, rhs);
1977 gsi_insert_before (gsi, x, GSI_SAME_STMT);
1978 /* FALLTHRU */
1980 case BUILT_IN_EH_COPY_VALUES:
1981 /* Likewise this should not appear. Remove it. */
1982 gsi_remove (gsi, true);
1983 return;
1985 default:
1986 break;
1989 /* FALLTHRU */
1991 case GIMPLE_ASSIGN:
1992 /* If the stmt can throw use a new temporary for the assignment
1993 to a LHS. This makes sure the old value of the LHS is
1994 available on the EH edge. Only do so for statements that
1995 potentially fall through (no noreturn calls e.g.), otherwise
1996 this new assignment might create fake fallthru regions. */
1997 if (stmt_could_throw_p (stmt)
1998 && gimple_has_lhs (stmt)
1999 && gimple_stmt_may_fallthru (stmt)
2000 && !tree_could_throw_p (gimple_get_lhs (stmt))
2001 && is_gimple_reg_type (TREE_TYPE (gimple_get_lhs (stmt))))
2003 tree lhs = gimple_get_lhs (stmt);
2004 tree tmp = create_tmp_var (TREE_TYPE (lhs), NULL);
2005 gimple s = gimple_build_assign (lhs, tmp);
2006 gimple_set_location (s, gimple_location (stmt));
2007 gimple_set_block (s, gimple_block (stmt));
2008 gimple_set_lhs (stmt, tmp);
2009 if (TREE_CODE (TREE_TYPE (tmp)) == COMPLEX_TYPE
2010 || TREE_CODE (TREE_TYPE (tmp)) == VECTOR_TYPE)
2011 DECL_GIMPLE_REG_P (tmp) = 1;
2012 gsi_insert_after (gsi, s, GSI_SAME_STMT);
2014 /* Look for things that can throw exceptions, and record them. */
2015 if (state->cur_region && stmt_could_throw_p (stmt))
2017 record_stmt_eh_region (state->cur_region, stmt);
2018 note_eh_region_may_contain_throw (state->cur_region);
2020 break;
2022 case GIMPLE_COND:
2023 case GIMPLE_GOTO:
2024 case GIMPLE_RETURN:
2025 maybe_record_in_goto_queue (state, stmt);
2026 break;
2028 case GIMPLE_SWITCH:
2029 verify_norecord_switch_expr (state, stmt);
2030 break;
2032 case GIMPLE_TRY:
2033 if (gimple_try_kind (stmt) == GIMPLE_TRY_FINALLY)
2034 replace = lower_try_finally (state, stmt);
2035 else
2037 x = gimple_seq_first_stmt (gimple_try_cleanup (stmt));
2038 if (!x)
2040 replace = gimple_try_eval (stmt);
2041 lower_eh_constructs_1 (state, &replace);
2043 else
2044 switch (gimple_code (x))
2046 case GIMPLE_CATCH:
2047 replace = lower_catch (state, stmt);
2048 break;
2049 case GIMPLE_EH_FILTER:
2050 replace = lower_eh_filter (state, stmt);
2051 break;
2052 case GIMPLE_EH_MUST_NOT_THROW:
2053 replace = lower_eh_must_not_throw (state, stmt);
2054 break;
2055 case GIMPLE_EH_ELSE:
2056 /* This code is only valid with GIMPLE_TRY_FINALLY. */
2057 gcc_unreachable ();
2058 default:
2059 replace = lower_cleanup (state, stmt);
2060 break;
2064 /* Remove the old stmt and insert the transformed sequence
2065 instead. */
2066 gsi_insert_seq_before (gsi, replace, GSI_SAME_STMT);
2067 gsi_remove (gsi, true);
2069 /* Return since we don't want gsi_next () */
2070 return;
2072 case GIMPLE_EH_ELSE:
2073 /* We should be eliminating this in lower_try_finally et al. */
2074 gcc_unreachable ();
2076 default:
2077 /* A type, a decl, or some kind of statement that we're not
2078 interested in. Don't walk them. */
2079 break;
2082 gsi_next (gsi);
2085 /* A helper to unwrap a gimple_seq and feed stmts to lower_eh_constructs_2. */
2087 static void
2088 lower_eh_constructs_1 (struct leh_state *state, gimple_seq *pseq)
2090 gimple_stmt_iterator gsi;
2091 for (gsi = gsi_start (*pseq); !gsi_end_p (gsi);)
2092 lower_eh_constructs_2 (state, &gsi);
2095 static unsigned int
2096 lower_eh_constructs (void)
2098 struct leh_state null_state;
2099 gimple_seq bodyp;
2101 bodyp = gimple_body (current_function_decl);
2102 if (bodyp == NULL)
2103 return 0;
2105 finally_tree = htab_create (31, struct_ptr_hash, struct_ptr_eq, free);
2106 eh_region_may_contain_throw_map = BITMAP_ALLOC (NULL);
2107 memset (&null_state, 0, sizeof (null_state));
2109 collect_finally_tree_1 (bodyp, NULL);
2110 lower_eh_constructs_1 (&null_state, &bodyp);
2111 gimple_set_body (current_function_decl, bodyp);
2113 /* We assume there's a return statement, or something, at the end of
2114 the function, and thus ploping the EH sequence afterward won't
2115 change anything. */
2116 gcc_assert (!gimple_seq_may_fallthru (bodyp));
2117 gimple_seq_add_seq (&bodyp, eh_seq);
2119 /* We assume that since BODYP already existed, adding EH_SEQ to it
2120 didn't change its value, and we don't have to re-set the function. */
2121 gcc_assert (bodyp == gimple_body (current_function_decl));
2123 htab_delete (finally_tree);
2124 BITMAP_FREE (eh_region_may_contain_throw_map);
2125 eh_seq = NULL;
2127 /* If this function needs a language specific EH personality routine
2128 and the frontend didn't already set one do so now. */
2129 if (function_needs_eh_personality (cfun) == eh_personality_lang
2130 && !DECL_FUNCTION_PERSONALITY (current_function_decl))
2131 DECL_FUNCTION_PERSONALITY (current_function_decl)
2132 = lang_hooks.eh_personality ();
2134 return 0;
2137 struct gimple_opt_pass pass_lower_eh =
2140 GIMPLE_PASS,
2141 "eh", /* name */
2142 OPTGROUP_NONE, /* optinfo_flags */
2143 NULL, /* gate */
2144 lower_eh_constructs, /* execute */
2145 NULL, /* sub */
2146 NULL, /* next */
2147 0, /* static_pass_number */
2148 TV_TREE_EH, /* tv_id */
2149 PROP_gimple_lcf, /* properties_required */
2150 PROP_gimple_leh, /* properties_provided */
2151 0, /* properties_destroyed */
2152 0, /* todo_flags_start */
2153 0 /* todo_flags_finish */
2157 /* Create the multiple edges from an EH_DISPATCH statement to all of
2158 the possible handlers for its EH region. Return true if there's
2159 no fallthru edge; false if there is. */
2161 bool
2162 make_eh_dispatch_edges (gimple stmt)
2164 eh_region r;
2165 eh_catch c;
2166 basic_block src, dst;
2168 r = get_eh_region_from_number (gimple_eh_dispatch_region (stmt));
2169 src = gimple_bb (stmt);
2171 switch (r->type)
2173 case ERT_TRY:
2174 for (c = r->u.eh_try.first_catch; c ; c = c->next_catch)
2176 dst = label_to_block (c->label);
2177 make_edge (src, dst, 0);
2179 /* A catch-all handler doesn't have a fallthru. */
2180 if (c->type_list == NULL)
2181 return false;
2183 break;
2185 case ERT_ALLOWED_EXCEPTIONS:
2186 dst = label_to_block (r->u.allowed.label);
2187 make_edge (src, dst, 0);
2188 break;
2190 default:
2191 gcc_unreachable ();
2194 return true;
2197 /* Create the single EH edge from STMT to its nearest landing pad,
2198 if there is such a landing pad within the current function. */
2200 void
2201 make_eh_edges (gimple stmt)
2203 basic_block src, dst;
2204 eh_landing_pad lp;
2205 int lp_nr;
2207 lp_nr = lookup_stmt_eh_lp (stmt);
2208 if (lp_nr <= 0)
2209 return;
2211 lp = get_eh_landing_pad_from_number (lp_nr);
2212 gcc_assert (lp != NULL);
2214 src = gimple_bb (stmt);
2215 dst = label_to_block (lp->post_landing_pad);
2216 make_edge (src, dst, EDGE_EH);
2219 /* Do the work in redirecting EDGE_IN to NEW_BB within the EH region tree;
2220 do not actually perform the final edge redirection.
2222 CHANGE_REGION is true when we're being called from cleanup_empty_eh and
2223 we intend to change the destination EH region as well; this means
2224 EH_LANDING_PAD_NR must already be set on the destination block label.
2225 If false, we're being called from generic cfg manipulation code and we
2226 should preserve our place within the region tree. */
2228 static void
2229 redirect_eh_edge_1 (edge edge_in, basic_block new_bb, bool change_region)
2231 eh_landing_pad old_lp, new_lp;
2232 basic_block old_bb;
2233 gimple throw_stmt;
2234 int old_lp_nr, new_lp_nr;
2235 tree old_label, new_label;
2236 edge_iterator ei;
2237 edge e;
2239 old_bb = edge_in->dest;
2240 old_label = gimple_block_label (old_bb);
2241 old_lp_nr = EH_LANDING_PAD_NR (old_label);
2242 gcc_assert (old_lp_nr > 0);
2243 old_lp = get_eh_landing_pad_from_number (old_lp_nr);
2245 throw_stmt = last_stmt (edge_in->src);
2246 gcc_assert (lookup_stmt_eh_lp (throw_stmt) == old_lp_nr);
2248 new_label = gimple_block_label (new_bb);
2250 /* Look for an existing region that might be using NEW_BB already. */
2251 new_lp_nr = EH_LANDING_PAD_NR (new_label);
2252 if (new_lp_nr)
2254 new_lp = get_eh_landing_pad_from_number (new_lp_nr);
2255 gcc_assert (new_lp);
2257 /* Unless CHANGE_REGION is true, the new and old landing pad
2258 had better be associated with the same EH region. */
2259 gcc_assert (change_region || new_lp->region == old_lp->region);
2261 else
2263 new_lp = NULL;
2264 gcc_assert (!change_region);
2267 /* Notice when we redirect the last EH edge away from OLD_BB. */
2268 FOR_EACH_EDGE (e, ei, old_bb->preds)
2269 if (e != edge_in && (e->flags & EDGE_EH))
2270 break;
2272 if (new_lp)
2274 /* NEW_LP already exists. If there are still edges into OLD_LP,
2275 there's nothing to do with the EH tree. If there are no more
2276 edges into OLD_LP, then we want to remove OLD_LP as it is unused.
2277 If CHANGE_REGION is true, then our caller is expecting to remove
2278 the landing pad. */
2279 if (e == NULL && !change_region)
2280 remove_eh_landing_pad (old_lp);
2282 else
2284 /* No correct landing pad exists. If there are no more edges
2285 into OLD_LP, then we can simply re-use the existing landing pad.
2286 Otherwise, we have to create a new landing pad. */
2287 if (e == NULL)
2289 EH_LANDING_PAD_NR (old_lp->post_landing_pad) = 0;
2290 new_lp = old_lp;
2292 else
2293 new_lp = gen_eh_landing_pad (old_lp->region);
2294 new_lp->post_landing_pad = new_label;
2295 EH_LANDING_PAD_NR (new_label) = new_lp->index;
2298 /* Maybe move the throwing statement to the new region. */
2299 if (old_lp != new_lp)
2301 remove_stmt_from_eh_lp (throw_stmt);
2302 add_stmt_to_eh_lp (throw_stmt, new_lp->index);
2306 /* Redirect EH edge E to NEW_BB. */
2308 edge
2309 redirect_eh_edge (edge edge_in, basic_block new_bb)
2311 redirect_eh_edge_1 (edge_in, new_bb, false);
2312 return ssa_redirect_edge (edge_in, new_bb);
2315 /* This is a subroutine of gimple_redirect_edge_and_branch. Update the
2316 labels for redirecting a non-fallthru EH_DISPATCH edge E to NEW_BB.
2317 The actual edge update will happen in the caller. */
2319 void
2320 redirect_eh_dispatch_edge (gimple stmt, edge e, basic_block new_bb)
2322 tree new_lab = gimple_block_label (new_bb);
2323 bool any_changed = false;
2324 basic_block old_bb;
2325 eh_region r;
2326 eh_catch c;
2328 r = get_eh_region_from_number (gimple_eh_dispatch_region (stmt));
2329 switch (r->type)
2331 case ERT_TRY:
2332 for (c = r->u.eh_try.first_catch; c ; c = c->next_catch)
2334 old_bb = label_to_block (c->label);
2335 if (old_bb == e->dest)
2337 c->label = new_lab;
2338 any_changed = true;
2341 break;
2343 case ERT_ALLOWED_EXCEPTIONS:
2344 old_bb = label_to_block (r->u.allowed.label);
2345 gcc_assert (old_bb == e->dest);
2346 r->u.allowed.label = new_lab;
2347 any_changed = true;
2348 break;
2350 default:
2351 gcc_unreachable ();
2354 gcc_assert (any_changed);
2357 /* Helper function for operation_could_trap_p and stmt_could_throw_p. */
2359 bool
2360 operation_could_trap_helper_p (enum tree_code op,
2361 bool fp_operation,
2362 bool honor_trapv,
2363 bool honor_nans,
2364 bool honor_snans,
2365 tree divisor,
2366 bool *handled)
2368 *handled = true;
2369 switch (op)
2371 case TRUNC_DIV_EXPR:
2372 case CEIL_DIV_EXPR:
2373 case FLOOR_DIV_EXPR:
2374 case ROUND_DIV_EXPR:
2375 case EXACT_DIV_EXPR:
2376 case CEIL_MOD_EXPR:
2377 case FLOOR_MOD_EXPR:
2378 case ROUND_MOD_EXPR:
2379 case TRUNC_MOD_EXPR:
2380 case RDIV_EXPR:
2381 if (honor_snans || honor_trapv)
2382 return true;
2383 if (fp_operation)
2384 return flag_trapping_math;
2385 if (!TREE_CONSTANT (divisor) || integer_zerop (divisor))
2386 return true;
2387 return false;
2389 case LT_EXPR:
2390 case LE_EXPR:
2391 case GT_EXPR:
2392 case GE_EXPR:
2393 case LTGT_EXPR:
2394 /* Some floating point comparisons may trap. */
2395 return honor_nans;
2397 case EQ_EXPR:
2398 case NE_EXPR:
2399 case UNORDERED_EXPR:
2400 case ORDERED_EXPR:
2401 case UNLT_EXPR:
2402 case UNLE_EXPR:
2403 case UNGT_EXPR:
2404 case UNGE_EXPR:
2405 case UNEQ_EXPR:
2406 return honor_snans;
2408 case CONVERT_EXPR:
2409 case FIX_TRUNC_EXPR:
2410 /* Conversion of floating point might trap. */
2411 return honor_nans;
2413 case NEGATE_EXPR:
2414 case ABS_EXPR:
2415 case CONJ_EXPR:
2416 /* These operations don't trap with floating point. */
2417 if (honor_trapv)
2418 return true;
2419 return false;
2421 case PLUS_EXPR:
2422 case MINUS_EXPR:
2423 case MULT_EXPR:
2424 /* Any floating arithmetic may trap. */
2425 if (fp_operation && flag_trapping_math)
2426 return true;
2427 if (honor_trapv)
2428 return true;
2429 return false;
2431 case COMPLEX_EXPR:
2432 case CONSTRUCTOR:
2433 /* Constructing an object cannot trap. */
2434 return false;
2436 default:
2437 /* Any floating arithmetic may trap. */
2438 if (fp_operation && flag_trapping_math)
2439 return true;
2441 *handled = false;
2442 return false;
2446 /* Return true if operation OP may trap. FP_OPERATION is true if OP is applied
2447 on floating-point values. HONOR_TRAPV is true if OP is applied on integer
2448 type operands that may trap. If OP is a division operator, DIVISOR contains
2449 the value of the divisor. */
2451 bool
2452 operation_could_trap_p (enum tree_code op, bool fp_operation, bool honor_trapv,
2453 tree divisor)
2455 bool honor_nans = (fp_operation && flag_trapping_math
2456 && !flag_finite_math_only);
2457 bool honor_snans = fp_operation && flag_signaling_nans != 0;
2458 bool handled;
2460 if (TREE_CODE_CLASS (op) != tcc_comparison
2461 && TREE_CODE_CLASS (op) != tcc_unary
2462 && TREE_CODE_CLASS (op) != tcc_binary)
2463 return false;
2465 return operation_could_trap_helper_p (op, fp_operation, honor_trapv,
2466 honor_nans, honor_snans, divisor,
2467 &handled);
2470 /* Return true if EXPR can trap, as in dereferencing an invalid pointer
2471 location or floating point arithmetic. C.f. the rtl version, may_trap_p.
2472 This routine expects only GIMPLE lhs or rhs input. */
2474 bool
2475 tree_could_trap_p (tree expr)
2477 enum tree_code code;
2478 bool fp_operation = false;
2479 bool honor_trapv = false;
2480 tree t, base, div = NULL_TREE;
2482 if (!expr)
2483 return false;
2485 code = TREE_CODE (expr);
2486 t = TREE_TYPE (expr);
2488 if (t)
2490 if (COMPARISON_CLASS_P (expr))
2491 fp_operation = FLOAT_TYPE_P (TREE_TYPE (TREE_OPERAND (expr, 0)));
2492 else
2493 fp_operation = FLOAT_TYPE_P (t);
2494 honor_trapv = INTEGRAL_TYPE_P (t) && TYPE_OVERFLOW_TRAPS (t);
2497 if (TREE_CODE_CLASS (code) == tcc_binary)
2498 div = TREE_OPERAND (expr, 1);
2499 if (operation_could_trap_p (code, fp_operation, honor_trapv, div))
2500 return true;
2502 restart:
2503 switch (code)
2505 case TARGET_MEM_REF:
2506 if (TREE_CODE (TMR_BASE (expr)) == ADDR_EXPR
2507 && !TMR_INDEX (expr) && !TMR_INDEX2 (expr))
2508 return false;
2509 return !TREE_THIS_NOTRAP (expr);
2511 case COMPONENT_REF:
2512 case REALPART_EXPR:
2513 case IMAGPART_EXPR:
2514 case BIT_FIELD_REF:
2515 case VIEW_CONVERT_EXPR:
2516 case WITH_SIZE_EXPR:
2517 expr = TREE_OPERAND (expr, 0);
2518 code = TREE_CODE (expr);
2519 goto restart;
2521 case ARRAY_RANGE_REF:
2522 base = TREE_OPERAND (expr, 0);
2523 if (tree_could_trap_p (base))
2524 return true;
2525 if (TREE_THIS_NOTRAP (expr))
2526 return false;
2527 return !range_in_array_bounds_p (expr);
2529 case ARRAY_REF:
2530 base = TREE_OPERAND (expr, 0);
2531 if (tree_could_trap_p (base))
2532 return true;
2533 if (TREE_THIS_NOTRAP (expr))
2534 return false;
2535 return !in_array_bounds_p (expr);
2537 case MEM_REF:
2538 if (TREE_CODE (TREE_OPERAND (expr, 0)) == ADDR_EXPR)
2539 return false;
2540 /* Fallthru. */
2541 case INDIRECT_REF:
2542 return !TREE_THIS_NOTRAP (expr);
2544 case ASM_EXPR:
2545 return TREE_THIS_VOLATILE (expr);
2547 case CALL_EXPR:
2548 t = get_callee_fndecl (expr);
2549 /* Assume that calls to weak functions may trap. */
2550 if (!t || !DECL_P (t))
2551 return true;
2552 if (DECL_WEAK (t))
2553 return tree_could_trap_p (t);
2554 return false;
2556 case FUNCTION_DECL:
2557 /* Assume that accesses to weak functions may trap, unless we know
2558 they are certainly defined in current TU or in some other
2559 LTO partition. */
2560 if (DECL_WEAK (expr))
2562 struct cgraph_node *node;
2563 if (!DECL_EXTERNAL (expr))
2564 return false;
2565 node = cgraph_function_node (cgraph_get_node (expr), NULL);
2566 if (node && node->symbol.in_other_partition)
2567 return false;
2568 return true;
2570 return false;
2572 case VAR_DECL:
2573 /* Assume that accesses to weak vars may trap, unless we know
2574 they are certainly defined in current TU or in some other
2575 LTO partition. */
2576 if (DECL_WEAK (expr))
2578 struct varpool_node *node;
2579 if (!DECL_EXTERNAL (expr))
2580 return false;
2581 node = varpool_variable_node (varpool_get_node (expr), NULL);
2582 if (node && node->symbol.in_other_partition)
2583 return false;
2584 return true;
2586 return false;
2588 default:
2589 return false;
2594 /* Helper for stmt_could_throw_p. Return true if STMT (assumed to be a
2595 an assignment or a conditional) may throw. */
2597 static bool
2598 stmt_could_throw_1_p (gimple stmt)
2600 enum tree_code code = gimple_expr_code (stmt);
2601 bool honor_nans = false;
2602 bool honor_snans = false;
2603 bool fp_operation = false;
2604 bool honor_trapv = false;
2605 tree t;
2606 size_t i;
2607 bool handled, ret;
2609 if (TREE_CODE_CLASS (code) == tcc_comparison
2610 || TREE_CODE_CLASS (code) == tcc_unary
2611 || TREE_CODE_CLASS (code) == tcc_binary)
2613 if (is_gimple_assign (stmt)
2614 && TREE_CODE_CLASS (code) == tcc_comparison)
2615 t = TREE_TYPE (gimple_assign_rhs1 (stmt));
2616 else if (gimple_code (stmt) == GIMPLE_COND)
2617 t = TREE_TYPE (gimple_cond_lhs (stmt));
2618 else
2619 t = gimple_expr_type (stmt);
2620 fp_operation = FLOAT_TYPE_P (t);
2621 if (fp_operation)
2623 honor_nans = flag_trapping_math && !flag_finite_math_only;
2624 honor_snans = flag_signaling_nans != 0;
2626 else if (INTEGRAL_TYPE_P (t) && TYPE_OVERFLOW_TRAPS (t))
2627 honor_trapv = true;
2630 /* Check if the main expression may trap. */
2631 t = is_gimple_assign (stmt) ? gimple_assign_rhs2 (stmt) : NULL;
2632 ret = operation_could_trap_helper_p (code, fp_operation, honor_trapv,
2633 honor_nans, honor_snans, t,
2634 &handled);
2635 if (handled)
2636 return ret;
2638 /* If the expression does not trap, see if any of the individual operands may
2639 trap. */
2640 for (i = 0; i < gimple_num_ops (stmt); i++)
2641 if (tree_could_trap_p (gimple_op (stmt, i)))
2642 return true;
2644 return false;
2648 /* Return true if statement STMT could throw an exception. */
2650 bool
2651 stmt_could_throw_p (gimple stmt)
2653 if (!flag_exceptions)
2654 return false;
2656 /* The only statements that can throw an exception are assignments,
2657 conditionals, calls, resx, and asms. */
2658 switch (gimple_code (stmt))
2660 case GIMPLE_RESX:
2661 return true;
2663 case GIMPLE_CALL:
2664 return !gimple_call_nothrow_p (stmt);
2666 case GIMPLE_ASSIGN:
2667 case GIMPLE_COND:
2668 if (!cfun->can_throw_non_call_exceptions)
2669 return false;
2670 return stmt_could_throw_1_p (stmt);
2672 case GIMPLE_ASM:
2673 if (!cfun->can_throw_non_call_exceptions)
2674 return false;
2675 return gimple_asm_volatile_p (stmt);
2677 default:
2678 return false;
2683 /* Return true if expression T could throw an exception. */
2685 bool
2686 tree_could_throw_p (tree t)
2688 if (!flag_exceptions)
2689 return false;
2690 if (TREE_CODE (t) == MODIFY_EXPR)
2692 if (cfun->can_throw_non_call_exceptions
2693 && tree_could_trap_p (TREE_OPERAND (t, 0)))
2694 return true;
2695 t = TREE_OPERAND (t, 1);
2698 if (TREE_CODE (t) == WITH_SIZE_EXPR)
2699 t = TREE_OPERAND (t, 0);
2700 if (TREE_CODE (t) == CALL_EXPR)
2701 return (call_expr_flags (t) & ECF_NOTHROW) == 0;
2702 if (cfun->can_throw_non_call_exceptions)
2703 return tree_could_trap_p (t);
2704 return false;
2707 /* Return true if STMT can throw an exception that is not caught within
2708 the current function (CFUN). */
2710 bool
2711 stmt_can_throw_external (gimple stmt)
2713 int lp_nr;
2715 if (!stmt_could_throw_p (stmt))
2716 return false;
2718 lp_nr = lookup_stmt_eh_lp (stmt);
2719 return lp_nr == 0;
2722 /* Return true if STMT can throw an exception that is caught within
2723 the current function (CFUN). */
2725 bool
2726 stmt_can_throw_internal (gimple stmt)
2728 int lp_nr;
2730 if (!stmt_could_throw_p (stmt))
2731 return false;
2733 lp_nr = lookup_stmt_eh_lp (stmt);
2734 return lp_nr > 0;
2737 /* Given a statement STMT in IFUN, if STMT can no longer throw, then
2738 remove any entry it might have from the EH table. Return true if
2739 any change was made. */
2741 bool
2742 maybe_clean_eh_stmt_fn (struct function *ifun, gimple stmt)
2744 if (stmt_could_throw_p (stmt))
2745 return false;
2746 return remove_stmt_from_eh_lp_fn (ifun, stmt);
2749 /* Likewise, but always use the current function. */
2751 bool
2752 maybe_clean_eh_stmt (gimple stmt)
2754 return maybe_clean_eh_stmt_fn (cfun, stmt);
2757 /* Given a statement OLD_STMT and a new statement NEW_STMT that has replaced
2758 OLD_STMT in the function, remove OLD_STMT from the EH table and put NEW_STMT
2759 in the table if it should be in there. Return TRUE if a replacement was
2760 done that my require an EH edge purge. */
2762 bool
2763 maybe_clean_or_replace_eh_stmt (gimple old_stmt, gimple new_stmt)
2765 int lp_nr = lookup_stmt_eh_lp (old_stmt);
2767 if (lp_nr != 0)
2769 bool new_stmt_could_throw = stmt_could_throw_p (new_stmt);
2771 if (new_stmt == old_stmt && new_stmt_could_throw)
2772 return false;
2774 remove_stmt_from_eh_lp (old_stmt);
2775 if (new_stmt_could_throw)
2777 add_stmt_to_eh_lp (new_stmt, lp_nr);
2778 return false;
2780 else
2781 return true;
2784 return false;
2787 /* Given a statement OLD_STMT in OLD_FUN and a duplicate statement NEW_STMT
2788 in NEW_FUN, copy the EH table data from OLD_STMT to NEW_STMT. The MAP
2789 operand is the return value of duplicate_eh_regions. */
2791 bool
2792 maybe_duplicate_eh_stmt_fn (struct function *new_fun, gimple new_stmt,
2793 struct function *old_fun, gimple old_stmt,
2794 struct pointer_map_t *map, int default_lp_nr)
2796 int old_lp_nr, new_lp_nr;
2797 void **slot;
2799 if (!stmt_could_throw_p (new_stmt))
2800 return false;
2802 old_lp_nr = lookup_stmt_eh_lp_fn (old_fun, old_stmt);
2803 if (old_lp_nr == 0)
2805 if (default_lp_nr == 0)
2806 return false;
2807 new_lp_nr = default_lp_nr;
2809 else if (old_lp_nr > 0)
2811 eh_landing_pad old_lp, new_lp;
2813 old_lp = (*old_fun->eh->lp_array)[old_lp_nr];
2814 slot = pointer_map_contains (map, old_lp);
2815 new_lp = (eh_landing_pad) *slot;
2816 new_lp_nr = new_lp->index;
2818 else
2820 eh_region old_r, new_r;
2822 old_r = (*old_fun->eh->region_array)[-old_lp_nr];
2823 slot = pointer_map_contains (map, old_r);
2824 new_r = (eh_region) *slot;
2825 new_lp_nr = -new_r->index;
2828 add_stmt_to_eh_lp_fn (new_fun, new_stmt, new_lp_nr);
2829 return true;
2832 /* Similar, but both OLD_STMT and NEW_STMT are within the current function,
2833 and thus no remapping is required. */
2835 bool
2836 maybe_duplicate_eh_stmt (gimple new_stmt, gimple old_stmt)
2838 int lp_nr;
2840 if (!stmt_could_throw_p (new_stmt))
2841 return false;
2843 lp_nr = lookup_stmt_eh_lp (old_stmt);
2844 if (lp_nr == 0)
2845 return false;
2847 add_stmt_to_eh_lp (new_stmt, lp_nr);
2848 return true;
2851 /* Returns TRUE if oneh and twoh are exception handlers (gimple_try_cleanup of
2852 GIMPLE_TRY) that are similar enough to be considered the same. Currently
2853 this only handles handlers consisting of a single call, as that's the
2854 important case for C++: a destructor call for a particular object showing
2855 up in multiple handlers. */
2857 static bool
2858 same_handler_p (gimple_seq oneh, gimple_seq twoh)
2860 gimple_stmt_iterator gsi;
2861 gimple ones, twos;
2862 unsigned int ai;
2864 gsi = gsi_start (oneh);
2865 if (!gsi_one_before_end_p (gsi))
2866 return false;
2867 ones = gsi_stmt (gsi);
2869 gsi = gsi_start (twoh);
2870 if (!gsi_one_before_end_p (gsi))
2871 return false;
2872 twos = gsi_stmt (gsi);
2874 if (!is_gimple_call (ones)
2875 || !is_gimple_call (twos)
2876 || gimple_call_lhs (ones)
2877 || gimple_call_lhs (twos)
2878 || gimple_call_chain (ones)
2879 || gimple_call_chain (twos)
2880 || !gimple_call_same_target_p (ones, twos)
2881 || gimple_call_num_args (ones) != gimple_call_num_args (twos))
2882 return false;
2884 for (ai = 0; ai < gimple_call_num_args (ones); ++ai)
2885 if (!operand_equal_p (gimple_call_arg (ones, ai),
2886 gimple_call_arg (twos, ai), 0))
2887 return false;
2889 return true;
2892 /* Optimize
2893 try { A() } finally { try { ~B() } catch { ~A() } }
2894 try { ... } finally { ~A() }
2895 into
2896 try { A() } catch { ~B() }
2897 try { ~B() ... } finally { ~A() }
2899 This occurs frequently in C++, where A is a local variable and B is a
2900 temporary used in the initializer for A. */
2902 static void
2903 optimize_double_finally (gimple one, gimple two)
2905 gimple oneh;
2906 gimple_stmt_iterator gsi;
2907 gimple_seq cleanup;
2909 cleanup = gimple_try_cleanup (one);
2910 gsi = gsi_start (cleanup);
2911 if (!gsi_one_before_end_p (gsi))
2912 return;
2914 oneh = gsi_stmt (gsi);
2915 if (gimple_code (oneh) != GIMPLE_TRY
2916 || gimple_try_kind (oneh) != GIMPLE_TRY_CATCH)
2917 return;
2919 if (same_handler_p (gimple_try_cleanup (oneh), gimple_try_cleanup (two)))
2921 gimple_seq seq = gimple_try_eval (oneh);
2923 gimple_try_set_cleanup (one, seq);
2924 gimple_try_set_kind (one, GIMPLE_TRY_CATCH);
2925 seq = copy_gimple_seq_and_replace_locals (seq);
2926 gimple_seq_add_seq (&seq, gimple_try_eval (two));
2927 gimple_try_set_eval (two, seq);
2931 /* Perform EH refactoring optimizations that are simpler to do when code
2932 flow has been lowered but EH structures haven't. */
2934 static void
2935 refactor_eh_r (gimple_seq seq)
2937 gimple_stmt_iterator gsi;
2938 gimple one, two;
2940 one = NULL;
2941 two = NULL;
2942 gsi = gsi_start (seq);
2943 while (1)
2945 one = two;
2946 if (gsi_end_p (gsi))
2947 two = NULL;
2948 else
2949 two = gsi_stmt (gsi);
2950 if (one
2951 && two
2952 && gimple_code (one) == GIMPLE_TRY
2953 && gimple_code (two) == GIMPLE_TRY
2954 && gimple_try_kind (one) == GIMPLE_TRY_FINALLY
2955 && gimple_try_kind (two) == GIMPLE_TRY_FINALLY)
2956 optimize_double_finally (one, two);
2957 if (one)
2958 switch (gimple_code (one))
2960 case GIMPLE_TRY:
2961 refactor_eh_r (gimple_try_eval (one));
2962 refactor_eh_r (gimple_try_cleanup (one));
2963 break;
2964 case GIMPLE_CATCH:
2965 refactor_eh_r (gimple_catch_handler (one));
2966 break;
2967 case GIMPLE_EH_FILTER:
2968 refactor_eh_r (gimple_eh_filter_failure (one));
2969 break;
2970 case GIMPLE_EH_ELSE:
2971 refactor_eh_r (gimple_eh_else_n_body (one));
2972 refactor_eh_r (gimple_eh_else_e_body (one));
2973 break;
2974 default:
2975 break;
2977 if (two)
2978 gsi_next (&gsi);
2979 else
2980 break;
2984 static unsigned
2985 refactor_eh (void)
2987 refactor_eh_r (gimple_body (current_function_decl));
2988 return 0;
2991 static bool
2992 gate_refactor_eh (void)
2994 return flag_exceptions != 0;
2997 struct gimple_opt_pass pass_refactor_eh =
3000 GIMPLE_PASS,
3001 "ehopt", /* name */
3002 OPTGROUP_NONE, /* optinfo_flags */
3003 gate_refactor_eh, /* gate */
3004 refactor_eh, /* execute */
3005 NULL, /* sub */
3006 NULL, /* next */
3007 0, /* static_pass_number */
3008 TV_TREE_EH, /* tv_id */
3009 PROP_gimple_lcf, /* properties_required */
3010 0, /* properties_provided */
3011 0, /* properties_destroyed */
3012 0, /* todo_flags_start */
3013 0 /* todo_flags_finish */
3017 /* At the end of gimple optimization, we can lower RESX. */
3019 static bool
3020 lower_resx (basic_block bb, gimple stmt, struct pointer_map_t *mnt_map)
3022 int lp_nr;
3023 eh_region src_r, dst_r;
3024 gimple_stmt_iterator gsi;
3025 gimple x;
3026 tree fn, src_nr;
3027 bool ret = false;
3029 lp_nr = lookup_stmt_eh_lp (stmt);
3030 if (lp_nr != 0)
3031 dst_r = get_eh_region_from_lp_number (lp_nr);
3032 else
3033 dst_r = NULL;
3035 src_r = get_eh_region_from_number (gimple_resx_region (stmt));
3036 gsi = gsi_last_bb (bb);
3038 if (src_r == NULL)
3040 /* We can wind up with no source region when pass_cleanup_eh shows
3041 that there are no entries into an eh region and deletes it, but
3042 then the block that contains the resx isn't removed. This can
3043 happen without optimization when the switch statement created by
3044 lower_try_finally_switch isn't simplified to remove the eh case.
3046 Resolve this by expanding the resx node to an abort. */
3048 fn = builtin_decl_implicit (BUILT_IN_TRAP);
3049 x = gimple_build_call (fn, 0);
3050 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3052 while (EDGE_COUNT (bb->succs) > 0)
3053 remove_edge (EDGE_SUCC (bb, 0));
3055 else if (dst_r)
3057 /* When we have a destination region, we resolve this by copying
3058 the excptr and filter values into place, and changing the edge
3059 to immediately after the landing pad. */
3060 edge e;
3062 if (lp_nr < 0)
3064 basic_block new_bb;
3065 void **slot;
3066 tree lab;
3068 /* We are resuming into a MUST_NOT_CALL region. Expand a call to
3069 the failure decl into a new block, if needed. */
3070 gcc_assert (dst_r->type == ERT_MUST_NOT_THROW);
3072 slot = pointer_map_contains (mnt_map, dst_r);
3073 if (slot == NULL)
3075 gimple_stmt_iterator gsi2;
3077 new_bb = create_empty_bb (bb);
3078 if (current_loops)
3079 add_bb_to_loop (new_bb, bb->loop_father);
3080 lab = gimple_block_label (new_bb);
3081 gsi2 = gsi_start_bb (new_bb);
3083 fn = dst_r->u.must_not_throw.failure_decl;
3084 x = gimple_build_call (fn, 0);
3085 gimple_set_location (x, dst_r->u.must_not_throw.failure_loc);
3086 gsi_insert_after (&gsi2, x, GSI_CONTINUE_LINKING);
3088 slot = pointer_map_insert (mnt_map, dst_r);
3089 *slot = lab;
3091 else
3093 lab = (tree) *slot;
3094 new_bb = label_to_block (lab);
3097 gcc_assert (EDGE_COUNT (bb->succs) == 0);
3098 e = make_edge (bb, new_bb, EDGE_FALLTHRU);
3099 e->count = bb->count;
3100 e->probability = REG_BR_PROB_BASE;
3102 else
3104 edge_iterator ei;
3105 tree dst_nr = build_int_cst (integer_type_node, dst_r->index);
3107 fn = builtin_decl_implicit (BUILT_IN_EH_COPY_VALUES);
3108 src_nr = build_int_cst (integer_type_node, src_r->index);
3109 x = gimple_build_call (fn, 2, dst_nr, src_nr);
3110 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3112 /* Update the flags for the outgoing edge. */
3113 e = single_succ_edge (bb);
3114 gcc_assert (e->flags & EDGE_EH);
3115 e->flags = (e->flags & ~EDGE_EH) | EDGE_FALLTHRU;
3117 /* If there are no more EH users of the landing pad, delete it. */
3118 FOR_EACH_EDGE (e, ei, e->dest->preds)
3119 if (e->flags & EDGE_EH)
3120 break;
3121 if (e == NULL)
3123 eh_landing_pad lp = get_eh_landing_pad_from_number (lp_nr);
3124 remove_eh_landing_pad (lp);
3128 ret = true;
3130 else
3132 tree var;
3134 /* When we don't have a destination region, this exception escapes
3135 up the call chain. We resolve this by generating a call to the
3136 _Unwind_Resume library function. */
3138 /* The ARM EABI redefines _Unwind_Resume as __cxa_end_cleanup
3139 with no arguments for C++ and Java. Check for that. */
3140 if (src_r->use_cxa_end_cleanup)
3142 fn = builtin_decl_implicit (BUILT_IN_CXA_END_CLEANUP);
3143 x = gimple_build_call (fn, 0);
3144 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3146 else
3148 fn = builtin_decl_implicit (BUILT_IN_EH_POINTER);
3149 src_nr = build_int_cst (integer_type_node, src_r->index);
3150 x = gimple_build_call (fn, 1, src_nr);
3151 var = create_tmp_var (ptr_type_node, NULL);
3152 var = make_ssa_name (var, x);
3153 gimple_call_set_lhs (x, var);
3154 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3156 fn = builtin_decl_implicit (BUILT_IN_UNWIND_RESUME);
3157 x = gimple_build_call (fn, 1, var);
3158 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3161 gcc_assert (EDGE_COUNT (bb->succs) == 0);
3164 gsi_remove (&gsi, true);
3166 return ret;
3169 static unsigned
3170 execute_lower_resx (void)
3172 basic_block bb;
3173 struct pointer_map_t *mnt_map;
3174 bool dominance_invalidated = false;
3175 bool any_rewritten = false;
3177 mnt_map = pointer_map_create ();
3179 FOR_EACH_BB (bb)
3181 gimple last = last_stmt (bb);
3182 if (last && is_gimple_resx (last))
3184 dominance_invalidated |= lower_resx (bb, last, mnt_map);
3185 any_rewritten = true;
3189 pointer_map_destroy (mnt_map);
3191 if (dominance_invalidated)
3193 free_dominance_info (CDI_DOMINATORS);
3194 free_dominance_info (CDI_POST_DOMINATORS);
3197 return any_rewritten ? TODO_update_ssa_only_virtuals : 0;
3200 static bool
3201 gate_lower_resx (void)
3203 return flag_exceptions != 0;
3206 struct gimple_opt_pass pass_lower_resx =
3209 GIMPLE_PASS,
3210 "resx", /* name */
3211 OPTGROUP_NONE, /* optinfo_flags */
3212 gate_lower_resx, /* gate */
3213 execute_lower_resx, /* execute */
3214 NULL, /* sub */
3215 NULL, /* next */
3216 0, /* static_pass_number */
3217 TV_TREE_EH, /* tv_id */
3218 PROP_gimple_lcf, /* properties_required */
3219 0, /* properties_provided */
3220 0, /* properties_destroyed */
3221 0, /* todo_flags_start */
3222 TODO_verify_flow /* todo_flags_finish */
3226 /* Try to optimize var = {v} {CLOBBER} stmts followed just by
3227 external throw. */
3229 static void
3230 optimize_clobbers (basic_block bb)
3232 gimple_stmt_iterator gsi = gsi_last_bb (bb);
3233 bool any_clobbers = false;
3234 bool seen_stack_restore = false;
3235 edge_iterator ei;
3236 edge e;
3238 /* Only optimize anything if the bb contains at least one clobber,
3239 ends with resx (checked by caller), optionally contains some
3240 debug stmts or labels, or at most one __builtin_stack_restore
3241 call, and has an incoming EH edge. */
3242 for (gsi_prev (&gsi); !gsi_end_p (gsi); gsi_prev (&gsi))
3244 gimple stmt = gsi_stmt (gsi);
3245 if (is_gimple_debug (stmt))
3246 continue;
3247 if (gimple_clobber_p (stmt))
3249 any_clobbers = true;
3250 continue;
3252 if (!seen_stack_restore
3253 && gimple_call_builtin_p (stmt, BUILT_IN_STACK_RESTORE))
3255 seen_stack_restore = true;
3256 continue;
3258 if (gimple_code (stmt) == GIMPLE_LABEL)
3259 break;
3260 return;
3262 if (!any_clobbers)
3263 return;
3264 FOR_EACH_EDGE (e, ei, bb->preds)
3265 if (e->flags & EDGE_EH)
3266 break;
3267 if (e == NULL)
3268 return;
3269 gsi = gsi_last_bb (bb);
3270 for (gsi_prev (&gsi); !gsi_end_p (gsi); gsi_prev (&gsi))
3272 gimple stmt = gsi_stmt (gsi);
3273 if (!gimple_clobber_p (stmt))
3274 continue;
3275 unlink_stmt_vdef (stmt);
3276 gsi_remove (&gsi, true);
3277 release_defs (stmt);
3281 /* Try to sink var = {v} {CLOBBER} stmts followed just by
3282 internal throw to successor BB. */
3284 static int
3285 sink_clobbers (basic_block bb)
3287 edge e;
3288 edge_iterator ei;
3289 gimple_stmt_iterator gsi, dgsi;
3290 basic_block succbb;
3291 bool any_clobbers = false;
3293 /* Only optimize if BB has a single EH successor and
3294 all predecessor edges are EH too. */
3295 if (!single_succ_p (bb)
3296 || (single_succ_edge (bb)->flags & EDGE_EH) == 0)
3297 return 0;
3299 FOR_EACH_EDGE (e, ei, bb->preds)
3301 if ((e->flags & EDGE_EH) == 0)
3302 return 0;
3305 /* And BB contains only CLOBBER stmts before the final
3306 RESX. */
3307 gsi = gsi_last_bb (bb);
3308 for (gsi_prev (&gsi); !gsi_end_p (gsi); gsi_prev (&gsi))
3310 gimple stmt = gsi_stmt (gsi);
3311 if (is_gimple_debug (stmt))
3312 continue;
3313 if (gimple_code (stmt) == GIMPLE_LABEL)
3314 break;
3315 if (!gimple_clobber_p (stmt))
3316 return 0;
3317 any_clobbers = true;
3319 if (!any_clobbers)
3320 return 0;
3322 succbb = single_succ (bb);
3323 dgsi = gsi_after_labels (succbb);
3324 gsi = gsi_last_bb (bb);
3325 for (gsi_prev (&gsi); !gsi_end_p (gsi); gsi_prev (&gsi))
3327 gimple stmt = gsi_stmt (gsi);
3328 tree lhs;
3329 if (is_gimple_debug (stmt))
3330 continue;
3331 if (gimple_code (stmt) == GIMPLE_LABEL)
3332 break;
3333 unlink_stmt_vdef (stmt);
3334 lhs = gimple_assign_lhs (stmt);
3335 /* Unfortunately we don't have dominance info updated at this
3336 point, so checking if
3337 dominated_by_p (CDI_DOMINATORS, succbb,
3338 gimple_bb (SSA_NAME_DEF_STMT (TREE_OPERAND (lhs, 0)))
3339 would be too costly. Thus, avoid sinking any clobbers that
3340 refer to non-(D) SSA_NAMEs. */
3341 if (TREE_CODE (lhs) == MEM_REF
3342 && TREE_CODE (TREE_OPERAND (lhs, 0)) == SSA_NAME
3343 && !SSA_NAME_IS_DEFAULT_DEF (TREE_OPERAND (lhs, 0)))
3345 gsi_remove (&gsi, true);
3346 release_defs (stmt);
3347 continue;
3349 gsi_remove (&gsi, false);
3350 /* Trigger the operand scanner to cause renaming for virtual
3351 operands for this statement.
3352 ??? Given the simple structure of this code manually
3353 figuring out the reaching definition should not be too hard. */
3354 if (gimple_vuse (stmt))
3355 gimple_set_vuse (stmt, NULL_TREE);
3356 gsi_insert_before (&dgsi, stmt, GSI_SAME_STMT);
3359 return TODO_update_ssa_only_virtuals;
3362 /* At the end of inlining, we can lower EH_DISPATCH. Return true when
3363 we have found some duplicate labels and removed some edges. */
3365 static bool
3366 lower_eh_dispatch (basic_block src, gimple stmt)
3368 gimple_stmt_iterator gsi;
3369 int region_nr;
3370 eh_region r;
3371 tree filter, fn;
3372 gimple x;
3373 bool redirected = false;
3375 region_nr = gimple_eh_dispatch_region (stmt);
3376 r = get_eh_region_from_number (region_nr);
3378 gsi = gsi_last_bb (src);
3380 switch (r->type)
3382 case ERT_TRY:
3384 vec<tree> labels = vNULL;
3385 tree default_label = NULL;
3386 eh_catch c;
3387 edge_iterator ei;
3388 edge e;
3389 struct pointer_set_t *seen_values = pointer_set_create ();
3391 /* Collect the labels for a switch. Zero the post_landing_pad
3392 field becase we'll no longer have anything keeping these labels
3393 in existence and the optimizer will be free to merge these
3394 blocks at will. */
3395 for (c = r->u.eh_try.first_catch; c ; c = c->next_catch)
3397 tree tp_node, flt_node, lab = c->label;
3398 bool have_label = false;
3400 c->label = NULL;
3401 tp_node = c->type_list;
3402 flt_node = c->filter_list;
3404 if (tp_node == NULL)
3406 default_label = lab;
3407 break;
3411 /* Filter out duplicate labels that arise when this handler
3412 is shadowed by an earlier one. When no labels are
3413 attached to the handler anymore, we remove
3414 the corresponding edge and then we delete unreachable
3415 blocks at the end of this pass. */
3416 if (! pointer_set_contains (seen_values, TREE_VALUE (flt_node)))
3418 tree t = build_case_label (TREE_VALUE (flt_node),
3419 NULL, lab);
3420 labels.safe_push (t);
3421 pointer_set_insert (seen_values, TREE_VALUE (flt_node));
3422 have_label = true;
3425 tp_node = TREE_CHAIN (tp_node);
3426 flt_node = TREE_CHAIN (flt_node);
3428 while (tp_node);
3429 if (! have_label)
3431 remove_edge (find_edge (src, label_to_block (lab)));
3432 redirected = true;
3436 /* Clean up the edge flags. */
3437 FOR_EACH_EDGE (e, ei, src->succs)
3439 if (e->flags & EDGE_FALLTHRU)
3441 /* If there was no catch-all, use the fallthru edge. */
3442 if (default_label == NULL)
3443 default_label = gimple_block_label (e->dest);
3444 e->flags &= ~EDGE_FALLTHRU;
3447 gcc_assert (default_label != NULL);
3449 /* Don't generate a switch if there's only a default case.
3450 This is common in the form of try { A; } catch (...) { B; }. */
3451 if (!labels.exists ())
3453 e = single_succ_edge (src);
3454 e->flags |= EDGE_FALLTHRU;
3456 else
3458 fn = builtin_decl_implicit (BUILT_IN_EH_FILTER);
3459 x = gimple_build_call (fn, 1, build_int_cst (integer_type_node,
3460 region_nr));
3461 filter = create_tmp_var (TREE_TYPE (TREE_TYPE (fn)), NULL);
3462 filter = make_ssa_name (filter, x);
3463 gimple_call_set_lhs (x, filter);
3464 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3466 /* Turn the default label into a default case. */
3467 default_label = build_case_label (NULL, NULL, default_label);
3468 sort_case_labels (labels);
3470 x = gimple_build_switch (filter, default_label, labels);
3471 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3473 labels.release ();
3475 pointer_set_destroy (seen_values);
3477 break;
3479 case ERT_ALLOWED_EXCEPTIONS:
3481 edge b_e = BRANCH_EDGE (src);
3482 edge f_e = FALLTHRU_EDGE (src);
3484 fn = builtin_decl_implicit (BUILT_IN_EH_FILTER);
3485 x = gimple_build_call (fn, 1, build_int_cst (integer_type_node,
3486 region_nr));
3487 filter = create_tmp_var (TREE_TYPE (TREE_TYPE (fn)), NULL);
3488 filter = make_ssa_name (filter, x);
3489 gimple_call_set_lhs (x, filter);
3490 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3492 r->u.allowed.label = NULL;
3493 x = gimple_build_cond (EQ_EXPR, filter,
3494 build_int_cst (TREE_TYPE (filter),
3495 r->u.allowed.filter),
3496 NULL_TREE, NULL_TREE);
3497 gsi_insert_before (&gsi, x, GSI_SAME_STMT);
3499 b_e->flags = b_e->flags | EDGE_TRUE_VALUE;
3500 f_e->flags = (f_e->flags & ~EDGE_FALLTHRU) | EDGE_FALSE_VALUE;
3502 break;
3504 default:
3505 gcc_unreachable ();
3508 /* Replace the EH_DISPATCH with the SWITCH or COND generated above. */
3509 gsi_remove (&gsi, true);
3510 return redirected;
3513 static unsigned
3514 execute_lower_eh_dispatch (void)
3516 basic_block bb;
3517 int flags = 0;
3518 bool redirected = false;
3520 assign_filter_values ();
3522 FOR_EACH_BB (bb)
3524 gimple last = last_stmt (bb);
3525 if (last == NULL)
3526 continue;
3527 if (gimple_code (last) == GIMPLE_EH_DISPATCH)
3529 redirected |= lower_eh_dispatch (bb, last);
3530 flags |= TODO_update_ssa_only_virtuals;
3532 else if (gimple_code (last) == GIMPLE_RESX)
3534 if (stmt_can_throw_external (last))
3535 optimize_clobbers (bb);
3536 else
3537 flags |= sink_clobbers (bb);
3541 if (redirected)
3542 delete_unreachable_blocks ();
3543 return flags;
3546 static bool
3547 gate_lower_eh_dispatch (void)
3549 return cfun->eh->region_tree != NULL;
3552 struct gimple_opt_pass pass_lower_eh_dispatch =
3555 GIMPLE_PASS,
3556 "ehdisp", /* name */
3557 OPTGROUP_NONE, /* optinfo_flags */
3558 gate_lower_eh_dispatch, /* gate */
3559 execute_lower_eh_dispatch, /* execute */
3560 NULL, /* sub */
3561 NULL, /* next */
3562 0, /* static_pass_number */
3563 TV_TREE_EH, /* tv_id */
3564 PROP_gimple_lcf, /* properties_required */
3565 0, /* properties_provided */
3566 0, /* properties_destroyed */
3567 0, /* todo_flags_start */
3568 TODO_verify_flow /* todo_flags_finish */
3572 /* Walk statements, see what regions and, optionally, landing pads
3573 are really referenced.
3575 Returns in R_REACHABLEP an sbitmap with bits set for reachable regions,
3576 and in LP_REACHABLE an sbitmap with bits set for reachable landing pads.
3578 Passing NULL for LP_REACHABLE is valid, in this case only reachable
3579 regions are marked.
3581 The caller is responsible for freeing the returned sbitmaps. */
3583 static void
3584 mark_reachable_handlers (sbitmap *r_reachablep, sbitmap *lp_reachablep)
3586 sbitmap r_reachable, lp_reachable;
3587 basic_block bb;
3588 bool mark_landing_pads = (lp_reachablep != NULL);
3589 gcc_checking_assert (r_reachablep != NULL);
3591 r_reachable = sbitmap_alloc (cfun->eh->region_array->length ());
3592 bitmap_clear (r_reachable);
3593 *r_reachablep = r_reachable;
3595 if (mark_landing_pads)
3597 lp_reachable = sbitmap_alloc (cfun->eh->lp_array->length ());
3598 bitmap_clear (lp_reachable);
3599 *lp_reachablep = lp_reachable;
3601 else
3602 lp_reachable = NULL;
3604 FOR_EACH_BB (bb)
3606 gimple_stmt_iterator gsi;
3608 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
3610 gimple stmt = gsi_stmt (gsi);
3612 if (mark_landing_pads)
3614 int lp_nr = lookup_stmt_eh_lp (stmt);
3616 /* Negative LP numbers are MUST_NOT_THROW regions which
3617 are not considered BB enders. */
3618 if (lp_nr < 0)
3619 bitmap_set_bit (r_reachable, -lp_nr);
3621 /* Positive LP numbers are real landing pads, and BB enders. */
3622 else if (lp_nr > 0)
3624 gcc_assert (gsi_one_before_end_p (gsi));
3625 eh_region region = get_eh_region_from_lp_number (lp_nr);
3626 bitmap_set_bit (r_reachable, region->index);
3627 bitmap_set_bit (lp_reachable, lp_nr);
3631 /* Avoid removing regions referenced from RESX/EH_DISPATCH. */
3632 switch (gimple_code (stmt))
3634 case GIMPLE_RESX:
3635 bitmap_set_bit (r_reachable, gimple_resx_region (stmt));
3636 break;
3637 case GIMPLE_EH_DISPATCH:
3638 bitmap_set_bit (r_reachable, gimple_eh_dispatch_region (stmt));
3639 break;
3640 default:
3641 break;
3647 /* Remove unreachable handlers and unreachable landing pads. */
3649 static void
3650 remove_unreachable_handlers (void)
3652 sbitmap r_reachable, lp_reachable;
3653 eh_region region;
3654 eh_landing_pad lp;
3655 unsigned i;
3657 mark_reachable_handlers (&r_reachable, &lp_reachable);
3659 if (dump_file)
3661 fprintf (dump_file, "Before removal of unreachable regions:\n");
3662 dump_eh_tree (dump_file, cfun);
3663 fprintf (dump_file, "Reachable regions: ");
3664 dump_bitmap_file (dump_file, r_reachable);
3665 fprintf (dump_file, "Reachable landing pads: ");
3666 dump_bitmap_file (dump_file, lp_reachable);
3669 if (dump_file)
3671 FOR_EACH_VEC_SAFE_ELT (cfun->eh->region_array, i, region)
3672 if (region && !bitmap_bit_p (r_reachable, region->index))
3673 fprintf (dump_file,
3674 "Removing unreachable region %d\n",
3675 region->index);
3678 remove_unreachable_eh_regions (r_reachable);
3680 FOR_EACH_VEC_SAFE_ELT (cfun->eh->lp_array, i, lp)
3681 if (lp && !bitmap_bit_p (lp_reachable, lp->index))
3683 if (dump_file)
3684 fprintf (dump_file,
3685 "Removing unreachable landing pad %d\n",
3686 lp->index);
3687 remove_eh_landing_pad (lp);
3690 if (dump_file)
3692 fprintf (dump_file, "\n\nAfter removal of unreachable regions:\n");
3693 dump_eh_tree (dump_file, cfun);
3694 fprintf (dump_file, "\n\n");
3697 sbitmap_free (r_reachable);
3698 sbitmap_free (lp_reachable);
3700 #ifdef ENABLE_CHECKING
3701 verify_eh_tree (cfun);
3702 #endif
3705 /* Remove unreachable handlers if any landing pads have been removed after
3706 last ehcleanup pass (due to gimple_purge_dead_eh_edges). */
3708 void
3709 maybe_remove_unreachable_handlers (void)
3711 eh_landing_pad lp;
3712 unsigned i;
3714 if (cfun->eh == NULL)
3715 return;
3717 FOR_EACH_VEC_SAFE_ELT (cfun->eh->lp_array, i, lp)
3718 if (lp && lp->post_landing_pad)
3720 if (label_to_block (lp->post_landing_pad) == NULL)
3722 remove_unreachable_handlers ();
3723 return;
3728 /* Remove regions that do not have landing pads. This assumes
3729 that remove_unreachable_handlers has already been run, and
3730 that we've just manipulated the landing pads since then.
3732 Preserve regions with landing pads and regions that prevent
3733 exceptions from propagating further, even if these regions
3734 are not reachable. */
3736 static void
3737 remove_unreachable_handlers_no_lp (void)
3739 eh_region region;
3740 sbitmap r_reachable;
3741 unsigned i;
3743 mark_reachable_handlers (&r_reachable, /*lp_reachablep=*/NULL);
3745 FOR_EACH_VEC_SAFE_ELT (cfun->eh->region_array, i, region)
3747 if (! region)
3748 continue;
3750 if (region->landing_pads != NULL
3751 || region->type == ERT_MUST_NOT_THROW)
3752 bitmap_set_bit (r_reachable, region->index);
3754 if (dump_file
3755 && !bitmap_bit_p (r_reachable, region->index))
3756 fprintf (dump_file,
3757 "Removing unreachable region %d\n",
3758 region->index);
3761 remove_unreachable_eh_regions (r_reachable);
3763 sbitmap_free (r_reachable);
3766 /* Undo critical edge splitting on an EH landing pad. Earlier, we
3767 optimisticaly split all sorts of edges, including EH edges. The
3768 optimization passes in between may not have needed them; if not,
3769 we should undo the split.
3771 Recognize this case by having one EH edge incoming to the BB and
3772 one normal edge outgoing; BB should be empty apart from the
3773 post_landing_pad label.
3775 Note that this is slightly different from the empty handler case
3776 handled by cleanup_empty_eh, in that the actual handler may yet
3777 have actual code but the landing pad has been separated from the
3778 handler. As such, cleanup_empty_eh relies on this transformation
3779 having been done first. */
3781 static bool
3782 unsplit_eh (eh_landing_pad lp)
3784 basic_block bb = label_to_block (lp->post_landing_pad);
3785 gimple_stmt_iterator gsi;
3786 edge e_in, e_out;
3788 /* Quickly check the edge counts on BB for singularity. */
3789 if (!single_pred_p (bb) || !single_succ_p (bb))
3790 return false;
3791 e_in = single_pred_edge (bb);
3792 e_out = single_succ_edge (bb);
3794 /* Input edge must be EH and output edge must be normal. */
3795 if ((e_in->flags & EDGE_EH) == 0 || (e_out->flags & EDGE_EH) != 0)
3796 return false;
3798 /* The block must be empty except for the labels and debug insns. */
3799 gsi = gsi_after_labels (bb);
3800 if (!gsi_end_p (gsi) && is_gimple_debug (gsi_stmt (gsi)))
3801 gsi_next_nondebug (&gsi);
3802 if (!gsi_end_p (gsi))
3803 return false;
3805 /* The destination block must not already have a landing pad
3806 for a different region. */
3807 for (gsi = gsi_start_bb (e_out->dest); !gsi_end_p (gsi); gsi_next (&gsi))
3809 gimple stmt = gsi_stmt (gsi);
3810 tree lab;
3811 int lp_nr;
3813 if (gimple_code (stmt) != GIMPLE_LABEL)
3814 break;
3815 lab = gimple_label_label (stmt);
3816 lp_nr = EH_LANDING_PAD_NR (lab);
3817 if (lp_nr && get_eh_region_from_lp_number (lp_nr) != lp->region)
3818 return false;
3821 /* The new destination block must not already be a destination of
3822 the source block, lest we merge fallthru and eh edges and get
3823 all sorts of confused. */
3824 if (find_edge (e_in->src, e_out->dest))
3825 return false;
3827 /* ??? We can get degenerate phis due to cfg cleanups. I would have
3828 thought this should have been cleaned up by a phicprop pass, but
3829 that doesn't appear to handle virtuals. Propagate by hand. */
3830 if (!gimple_seq_empty_p (phi_nodes (bb)))
3832 for (gsi = gsi_start_phis (bb); !gsi_end_p (gsi); )
3834 gimple use_stmt, phi = gsi_stmt (gsi);
3835 tree lhs = gimple_phi_result (phi);
3836 tree rhs = gimple_phi_arg_def (phi, 0);
3837 use_operand_p use_p;
3838 imm_use_iterator iter;
3840 FOR_EACH_IMM_USE_STMT (use_stmt, iter, lhs)
3842 FOR_EACH_IMM_USE_ON_STMT (use_p, iter)
3843 SET_USE (use_p, rhs);
3846 if (SSA_NAME_OCCURS_IN_ABNORMAL_PHI (lhs))
3847 SSA_NAME_OCCURS_IN_ABNORMAL_PHI (rhs) = 1;
3849 remove_phi_node (&gsi, true);
3853 if (dump_file && (dump_flags & TDF_DETAILS))
3854 fprintf (dump_file, "Unsplit EH landing pad %d to block %i.\n",
3855 lp->index, e_out->dest->index);
3857 /* Redirect the edge. Since redirect_eh_edge_1 expects to be moving
3858 a successor edge, humor it. But do the real CFG change with the
3859 predecessor of E_OUT in order to preserve the ordering of arguments
3860 to the PHI nodes in E_OUT->DEST. */
3861 redirect_eh_edge_1 (e_in, e_out->dest, false);
3862 redirect_edge_pred (e_out, e_in->src);
3863 e_out->flags = e_in->flags;
3864 e_out->probability = e_in->probability;
3865 e_out->count = e_in->count;
3866 remove_edge (e_in);
3868 return true;
3871 /* Examine each landing pad block and see if it matches unsplit_eh. */
3873 static bool
3874 unsplit_all_eh (void)
3876 bool changed = false;
3877 eh_landing_pad lp;
3878 int i;
3880 for (i = 1; vec_safe_iterate (cfun->eh->lp_array, i, &lp); ++i)
3881 if (lp)
3882 changed |= unsplit_eh (lp);
3884 return changed;
3887 /* A subroutine of cleanup_empty_eh. Redirect all EH edges incoming
3888 to OLD_BB to NEW_BB; return true on success, false on failure.
3890 OLD_BB_OUT is the edge into NEW_BB from OLD_BB, so if we miss any
3891 PHI variables from OLD_BB we can pick them up from OLD_BB_OUT.
3892 Virtual PHIs may be deleted and marked for renaming. */
3894 static bool
3895 cleanup_empty_eh_merge_phis (basic_block new_bb, basic_block old_bb,
3896 edge old_bb_out, bool change_region)
3898 gimple_stmt_iterator ngsi, ogsi;
3899 edge_iterator ei;
3900 edge e;
3901 bitmap rename_virts;
3902 bitmap ophi_handled;
3904 /* The destination block must not be a regular successor for any
3905 of the preds of the landing pad. Thus, avoid turning
3906 <..>
3907 | \ EH
3908 | <..>
3910 <..>
3911 into
3912 <..>
3913 | | EH
3914 <..>
3915 which CFG verification would choke on. See PR45172 and PR51089. */
3916 FOR_EACH_EDGE (e, ei, old_bb->preds)
3917 if (find_edge (e->src, new_bb))
3918 return false;
3920 FOR_EACH_EDGE (e, ei, old_bb->preds)
3921 redirect_edge_var_map_clear (e);
3923 ophi_handled = BITMAP_ALLOC (NULL);
3924 rename_virts = BITMAP_ALLOC (NULL);
3926 /* First, iterate through the PHIs on NEW_BB and set up the edge_var_map
3927 for the edges we're going to move. */
3928 for (ngsi = gsi_start_phis (new_bb); !gsi_end_p (ngsi); gsi_next (&ngsi))
3930 gimple ophi, nphi = gsi_stmt (ngsi);
3931 tree nresult, nop;
3933 nresult = gimple_phi_result (nphi);
3934 nop = gimple_phi_arg_def (nphi, old_bb_out->dest_idx);
3936 /* Find the corresponding PHI in OLD_BB so we can forward-propagate
3937 the source ssa_name. */
3938 ophi = NULL;
3939 for (ogsi = gsi_start_phis (old_bb); !gsi_end_p (ogsi); gsi_next (&ogsi))
3941 ophi = gsi_stmt (ogsi);
3942 if (gimple_phi_result (ophi) == nop)
3943 break;
3944 ophi = NULL;
3947 /* If we did find the corresponding PHI, copy those inputs. */
3948 if (ophi)
3950 /* If NOP is used somewhere else beyond phis in new_bb, give up. */
3951 if (!has_single_use (nop))
3953 imm_use_iterator imm_iter;
3954 use_operand_p use_p;
3956 FOR_EACH_IMM_USE_FAST (use_p, imm_iter, nop)
3958 if (!gimple_debug_bind_p (USE_STMT (use_p))
3959 && (gimple_code (USE_STMT (use_p)) != GIMPLE_PHI
3960 || gimple_bb (USE_STMT (use_p)) != new_bb))
3961 goto fail;
3964 bitmap_set_bit (ophi_handled, SSA_NAME_VERSION (nop));
3965 FOR_EACH_EDGE (e, ei, old_bb->preds)
3967 location_t oloc;
3968 tree oop;
3970 if ((e->flags & EDGE_EH) == 0)
3971 continue;
3972 oop = gimple_phi_arg_def (ophi, e->dest_idx);
3973 oloc = gimple_phi_arg_location (ophi, e->dest_idx);
3974 redirect_edge_var_map_add (e, nresult, oop, oloc);
3977 /* If we didn't find the PHI, but it's a VOP, remember to rename
3978 it later, assuming all other tests succeed. */
3979 else if (virtual_operand_p (nresult))
3980 bitmap_set_bit (rename_virts, SSA_NAME_VERSION (nresult));
3981 /* If we didn't find the PHI, and it's a real variable, we know
3982 from the fact that OLD_BB is tree_empty_eh_handler_p that the
3983 variable is unchanged from input to the block and we can simply
3984 re-use the input to NEW_BB from the OLD_BB_OUT edge. */
3985 else
3987 location_t nloc
3988 = gimple_phi_arg_location (nphi, old_bb_out->dest_idx);
3989 FOR_EACH_EDGE (e, ei, old_bb->preds)
3990 redirect_edge_var_map_add (e, nresult, nop, nloc);
3994 /* Second, verify that all PHIs from OLD_BB have been handled. If not,
3995 we don't know what values from the other edges into NEW_BB to use. */
3996 for (ogsi = gsi_start_phis (old_bb); !gsi_end_p (ogsi); gsi_next (&ogsi))
3998 gimple ophi = gsi_stmt (ogsi);
3999 tree oresult = gimple_phi_result (ophi);
4000 if (!bitmap_bit_p (ophi_handled, SSA_NAME_VERSION (oresult)))
4001 goto fail;
4004 /* At this point we know that the merge will succeed. Remove the PHI
4005 nodes for the virtuals that we want to rename. */
4006 if (!bitmap_empty_p (rename_virts))
4008 for (ngsi = gsi_start_phis (new_bb); !gsi_end_p (ngsi); )
4010 gimple nphi = gsi_stmt (ngsi);
4011 tree nresult = gimple_phi_result (nphi);
4012 if (bitmap_bit_p (rename_virts, SSA_NAME_VERSION (nresult)))
4014 mark_virtual_phi_result_for_renaming (nphi);
4015 remove_phi_node (&ngsi, true);
4017 else
4018 gsi_next (&ngsi);
4022 /* Finally, move the edges and update the PHIs. */
4023 for (ei = ei_start (old_bb->preds); (e = ei_safe_edge (ei)); )
4024 if (e->flags & EDGE_EH)
4026 /* ??? CFG manipluation routines do not try to update loop
4027 form on edge redirection. Do so manually here for now. */
4028 /* If we redirect a loop entry or latch edge that will either create
4029 a multiple entry loop or rotate the loop. If the loops merge
4030 we may have created a loop with multiple latches.
4031 All of this isn't easily fixed thus cancel the affected loop
4032 and mark the other loop as possibly having multiple latches. */
4033 if (current_loops
4034 && e->dest == e->dest->loop_father->header)
4036 e->dest->loop_father->header = NULL;
4037 e->dest->loop_father->latch = NULL;
4038 new_bb->loop_father->latch = NULL;
4039 loops_state_set (LOOPS_NEED_FIXUP|LOOPS_MAY_HAVE_MULTIPLE_LATCHES);
4041 redirect_eh_edge_1 (e, new_bb, change_region);
4042 redirect_edge_succ (e, new_bb);
4043 flush_pending_stmts (e);
4045 else
4046 ei_next (&ei);
4048 BITMAP_FREE (ophi_handled);
4049 BITMAP_FREE (rename_virts);
4050 return true;
4052 fail:
4053 FOR_EACH_EDGE (e, ei, old_bb->preds)
4054 redirect_edge_var_map_clear (e);
4055 BITMAP_FREE (ophi_handled);
4056 BITMAP_FREE (rename_virts);
4057 return false;
4060 /* A subroutine of cleanup_empty_eh. Move a landing pad LP from its
4061 old region to NEW_REGION at BB. */
4063 static void
4064 cleanup_empty_eh_move_lp (basic_block bb, edge e_out,
4065 eh_landing_pad lp, eh_region new_region)
4067 gimple_stmt_iterator gsi;
4068 eh_landing_pad *pp;
4070 for (pp = &lp->region->landing_pads; *pp != lp; pp = &(*pp)->next_lp)
4071 continue;
4072 *pp = lp->next_lp;
4074 lp->region = new_region;
4075 lp->next_lp = new_region->landing_pads;
4076 new_region->landing_pads = lp;
4078 /* Delete the RESX that was matched within the empty handler block. */
4079 gsi = gsi_last_bb (bb);
4080 unlink_stmt_vdef (gsi_stmt (gsi));
4081 gsi_remove (&gsi, true);
4083 /* Clean up E_OUT for the fallthru. */
4084 e_out->flags = (e_out->flags & ~EDGE_EH) | EDGE_FALLTHRU;
4085 e_out->probability = REG_BR_PROB_BASE;
4088 /* A subroutine of cleanup_empty_eh. Handle more complex cases of
4089 unsplitting than unsplit_eh was prepared to handle, e.g. when
4090 multiple incoming edges and phis are involved. */
4092 static bool
4093 cleanup_empty_eh_unsplit (basic_block bb, edge e_out, eh_landing_pad lp)
4095 gimple_stmt_iterator gsi;
4096 tree lab;
4098 /* We really ought not have totally lost everything following
4099 a landing pad label. Given that BB is empty, there had better
4100 be a successor. */
4101 gcc_assert (e_out != NULL);
4103 /* The destination block must not already have a landing pad
4104 for a different region. */
4105 lab = NULL;
4106 for (gsi = gsi_start_bb (e_out->dest); !gsi_end_p (gsi); gsi_next (&gsi))
4108 gimple stmt = gsi_stmt (gsi);
4109 int lp_nr;
4111 if (gimple_code (stmt) != GIMPLE_LABEL)
4112 break;
4113 lab = gimple_label_label (stmt);
4114 lp_nr = EH_LANDING_PAD_NR (lab);
4115 if (lp_nr && get_eh_region_from_lp_number (lp_nr) != lp->region)
4116 return false;
4119 /* Attempt to move the PHIs into the successor block. */
4120 if (cleanup_empty_eh_merge_phis (e_out->dest, bb, e_out, false))
4122 if (dump_file && (dump_flags & TDF_DETAILS))
4123 fprintf (dump_file,
4124 "Unsplit EH landing pad %d to block %i "
4125 "(via cleanup_empty_eh).\n",
4126 lp->index, e_out->dest->index);
4127 return true;
4130 return false;
4133 /* Return true if edge E_FIRST is part of an empty infinite loop
4134 or leads to such a loop through a series of single successor
4135 empty bbs. */
4137 static bool
4138 infinite_empty_loop_p (edge e_first)
4140 bool inf_loop = false;
4141 edge e;
4143 if (e_first->dest == e_first->src)
4144 return true;
4146 e_first->src->aux = (void *) 1;
4147 for (e = e_first; single_succ_p (e->dest); e = single_succ_edge (e->dest))
4149 gimple_stmt_iterator gsi;
4150 if (e->dest->aux)
4152 inf_loop = true;
4153 break;
4155 e->dest->aux = (void *) 1;
4156 gsi = gsi_after_labels (e->dest);
4157 if (!gsi_end_p (gsi) && is_gimple_debug (gsi_stmt (gsi)))
4158 gsi_next_nondebug (&gsi);
4159 if (!gsi_end_p (gsi))
4160 break;
4162 e_first->src->aux = NULL;
4163 for (e = e_first; e->dest->aux; e = single_succ_edge (e->dest))
4164 e->dest->aux = NULL;
4166 return inf_loop;
4169 /* Examine the block associated with LP to determine if it's an empty
4170 handler for its EH region. If so, attempt to redirect EH edges to
4171 an outer region. Return true the CFG was updated in any way. This
4172 is similar to jump forwarding, just across EH edges. */
4174 static bool
4175 cleanup_empty_eh (eh_landing_pad lp)
4177 basic_block bb = label_to_block (lp->post_landing_pad);
4178 gimple_stmt_iterator gsi;
4179 gimple resx;
4180 eh_region new_region;
4181 edge_iterator ei;
4182 edge e, e_out;
4183 bool has_non_eh_pred;
4184 bool ret = false;
4185 int new_lp_nr;
4187 /* There can be zero or one edges out of BB. This is the quickest test. */
4188 switch (EDGE_COUNT (bb->succs))
4190 case 0:
4191 e_out = NULL;
4192 break;
4193 case 1:
4194 e_out = single_succ_edge (bb);
4195 break;
4196 default:
4197 return false;
4200 resx = last_stmt (bb);
4201 if (resx && is_gimple_resx (resx))
4203 if (stmt_can_throw_external (resx))
4204 optimize_clobbers (bb);
4205 else if (sink_clobbers (bb))
4206 ret = true;
4209 gsi = gsi_after_labels (bb);
4211 /* Make sure to skip debug statements. */
4212 if (!gsi_end_p (gsi) && is_gimple_debug (gsi_stmt (gsi)))
4213 gsi_next_nondebug (&gsi);
4215 /* If the block is totally empty, look for more unsplitting cases. */
4216 if (gsi_end_p (gsi))
4218 /* For the degenerate case of an infinite loop bail out. */
4219 if (infinite_empty_loop_p (e_out))
4220 return ret;
4222 return ret | cleanup_empty_eh_unsplit (bb, e_out, lp);
4225 /* The block should consist only of a single RESX statement, modulo a
4226 preceding call to __builtin_stack_restore if there is no outgoing
4227 edge, since the call can be eliminated in this case. */
4228 resx = gsi_stmt (gsi);
4229 if (!e_out && gimple_call_builtin_p (resx, BUILT_IN_STACK_RESTORE))
4231 gsi_next (&gsi);
4232 resx = gsi_stmt (gsi);
4234 if (!is_gimple_resx (resx))
4235 return ret;
4236 gcc_assert (gsi_one_before_end_p (gsi));
4238 /* Determine if there are non-EH edges, or resx edges into the handler. */
4239 has_non_eh_pred = false;
4240 FOR_EACH_EDGE (e, ei, bb->preds)
4241 if (!(e->flags & EDGE_EH))
4242 has_non_eh_pred = true;
4244 /* Find the handler that's outer of the empty handler by looking at
4245 where the RESX instruction was vectored. */
4246 new_lp_nr = lookup_stmt_eh_lp (resx);
4247 new_region = get_eh_region_from_lp_number (new_lp_nr);
4249 /* If there's no destination region within the current function,
4250 redirection is trivial via removing the throwing statements from
4251 the EH region, removing the EH edges, and allowing the block
4252 to go unreachable. */
4253 if (new_region == NULL)
4255 gcc_assert (e_out == NULL);
4256 for (ei = ei_start (bb->preds); (e = ei_safe_edge (ei)); )
4257 if (e->flags & EDGE_EH)
4259 gimple stmt = last_stmt (e->src);
4260 remove_stmt_from_eh_lp (stmt);
4261 remove_edge (e);
4263 else
4264 ei_next (&ei);
4265 goto succeed;
4268 /* If the destination region is a MUST_NOT_THROW, allow the runtime
4269 to handle the abort and allow the blocks to go unreachable. */
4270 if (new_region->type == ERT_MUST_NOT_THROW)
4272 for (ei = ei_start (bb->preds); (e = ei_safe_edge (ei)); )
4273 if (e->flags & EDGE_EH)
4275 gimple stmt = last_stmt (e->src);
4276 remove_stmt_from_eh_lp (stmt);
4277 add_stmt_to_eh_lp (stmt, new_lp_nr);
4278 remove_edge (e);
4280 else
4281 ei_next (&ei);
4282 goto succeed;
4285 /* Try to redirect the EH edges and merge the PHIs into the destination
4286 landing pad block. If the merge succeeds, we'll already have redirected
4287 all the EH edges. The handler itself will go unreachable if there were
4288 no normal edges. */
4289 if (cleanup_empty_eh_merge_phis (e_out->dest, bb, e_out, true))
4290 goto succeed;
4292 /* Finally, if all input edges are EH edges, then we can (potentially)
4293 reduce the number of transfers from the runtime by moving the landing
4294 pad from the original region to the new region. This is a win when
4295 we remove the last CLEANUP region along a particular exception
4296 propagation path. Since nothing changes except for the region with
4297 which the landing pad is associated, the PHI nodes do not need to be
4298 adjusted at all. */
4299 if (!has_non_eh_pred)
4301 cleanup_empty_eh_move_lp (bb, e_out, lp, new_region);
4302 if (dump_file && (dump_flags & TDF_DETAILS))
4303 fprintf (dump_file, "Empty EH handler %i moved to EH region %i.\n",
4304 lp->index, new_region->index);
4306 /* ??? The CFG didn't change, but we may have rendered the
4307 old EH region unreachable. Trigger a cleanup there. */
4308 return true;
4311 return ret;
4313 succeed:
4314 if (dump_file && (dump_flags & TDF_DETAILS))
4315 fprintf (dump_file, "Empty EH handler %i removed.\n", lp->index);
4316 remove_eh_landing_pad (lp);
4317 return true;
4320 /* Do a post-order traversal of the EH region tree. Examine each
4321 post_landing_pad block and see if we can eliminate it as empty. */
4323 static bool
4324 cleanup_all_empty_eh (void)
4326 bool changed = false;
4327 eh_landing_pad lp;
4328 int i;
4330 for (i = 1; vec_safe_iterate (cfun->eh->lp_array, i, &lp); ++i)
4331 if (lp)
4332 changed |= cleanup_empty_eh (lp);
4334 return changed;
4337 /* Perform cleanups and lowering of exception handling
4338 1) cleanups regions with handlers doing nothing are optimized out
4339 2) MUST_NOT_THROW regions that became dead because of 1) are optimized out
4340 3) Info about regions that are containing instructions, and regions
4341 reachable via local EH edges is collected
4342 4) Eh tree is pruned for regions no longer neccesary.
4344 TODO: Push MUST_NOT_THROW regions to the root of the EH tree.
4345 Unify those that have the same failure decl and locus.
4348 static unsigned int
4349 execute_cleanup_eh_1 (void)
4351 /* Do this first: unsplit_all_eh and cleanup_all_empty_eh can die
4352 looking up unreachable landing pads. */
4353 remove_unreachable_handlers ();
4355 /* Watch out for the region tree vanishing due to all unreachable. */
4356 if (cfun->eh->region_tree && optimize)
4358 bool changed = false;
4360 changed |= unsplit_all_eh ();
4361 changed |= cleanup_all_empty_eh ();
4363 if (changed)
4365 free_dominance_info (CDI_DOMINATORS);
4366 free_dominance_info (CDI_POST_DOMINATORS);
4368 /* We delayed all basic block deletion, as we may have performed
4369 cleanups on EH edges while non-EH edges were still present. */
4370 delete_unreachable_blocks ();
4372 /* We manipulated the landing pads. Remove any region that no
4373 longer has a landing pad. */
4374 remove_unreachable_handlers_no_lp ();
4376 return TODO_cleanup_cfg | TODO_update_ssa_only_virtuals;
4380 return 0;
4383 static unsigned int
4384 execute_cleanup_eh (void)
4386 int ret = execute_cleanup_eh_1 ();
4388 /* If the function no longer needs an EH personality routine
4389 clear it. This exposes cross-language inlining opportunities
4390 and avoids references to a never defined personality routine. */
4391 if (DECL_FUNCTION_PERSONALITY (current_function_decl)
4392 && function_needs_eh_personality (cfun) != eh_personality_lang)
4393 DECL_FUNCTION_PERSONALITY (current_function_decl) = NULL_TREE;
4395 return ret;
4398 static bool
4399 gate_cleanup_eh (void)
4401 return cfun->eh != NULL && cfun->eh->region_tree != NULL;
4404 struct gimple_opt_pass pass_cleanup_eh = {
4406 GIMPLE_PASS,
4407 "ehcleanup", /* name */
4408 OPTGROUP_NONE, /* optinfo_flags */
4409 gate_cleanup_eh, /* gate */
4410 execute_cleanup_eh, /* execute */
4411 NULL, /* sub */
4412 NULL, /* next */
4413 0, /* static_pass_number */
4414 TV_TREE_EH, /* tv_id */
4415 PROP_gimple_lcf, /* properties_required */
4416 0, /* properties_provided */
4417 0, /* properties_destroyed */
4418 0, /* todo_flags_start */
4419 0 /* todo_flags_finish */
4423 /* Verify that BB containing STMT as the last statement, has precisely the
4424 edge that make_eh_edges would create. */
4426 DEBUG_FUNCTION bool
4427 verify_eh_edges (gimple stmt)
4429 basic_block bb = gimple_bb (stmt);
4430 eh_landing_pad lp = NULL;
4431 int lp_nr;
4432 edge_iterator ei;
4433 edge e, eh_edge;
4435 lp_nr = lookup_stmt_eh_lp (stmt);
4436 if (lp_nr > 0)
4437 lp = get_eh_landing_pad_from_number (lp_nr);
4439 eh_edge = NULL;
4440 FOR_EACH_EDGE (e, ei, bb->succs)
4442 if (e->flags & EDGE_EH)
4444 if (eh_edge)
4446 error ("BB %i has multiple EH edges", bb->index);
4447 return true;
4449 else
4450 eh_edge = e;
4454 if (lp == NULL)
4456 if (eh_edge)
4458 error ("BB %i can not throw but has an EH edge", bb->index);
4459 return true;
4461 return false;
4464 if (!stmt_could_throw_p (stmt))
4466 error ("BB %i last statement has incorrectly set lp", bb->index);
4467 return true;
4470 if (eh_edge == NULL)
4472 error ("BB %i is missing an EH edge", bb->index);
4473 return true;
4476 if (eh_edge->dest != label_to_block (lp->post_landing_pad))
4478 error ("Incorrect EH edge %i->%i", bb->index, eh_edge->dest->index);
4479 return true;
4482 return false;
4485 /* Similarly, but handle GIMPLE_EH_DISPATCH specifically. */
4487 DEBUG_FUNCTION bool
4488 verify_eh_dispatch_edge (gimple stmt)
4490 eh_region r;
4491 eh_catch c;
4492 basic_block src, dst;
4493 bool want_fallthru = true;
4494 edge_iterator ei;
4495 edge e, fall_edge;
4497 r = get_eh_region_from_number (gimple_eh_dispatch_region (stmt));
4498 src = gimple_bb (stmt);
4500 FOR_EACH_EDGE (e, ei, src->succs)
4501 gcc_assert (e->aux == NULL);
4503 switch (r->type)
4505 case ERT_TRY:
4506 for (c = r->u.eh_try.first_catch; c ; c = c->next_catch)
4508 dst = label_to_block (c->label);
4509 e = find_edge (src, dst);
4510 if (e == NULL)
4512 error ("BB %i is missing an edge", src->index);
4513 return true;
4515 e->aux = (void *)e;
4517 /* A catch-all handler doesn't have a fallthru. */
4518 if (c->type_list == NULL)
4520 want_fallthru = false;
4521 break;
4524 break;
4526 case ERT_ALLOWED_EXCEPTIONS:
4527 dst = label_to_block (r->u.allowed.label);
4528 e = find_edge (src, dst);
4529 if (e == NULL)
4531 error ("BB %i is missing an edge", src->index);
4532 return true;
4534 e->aux = (void *)e;
4535 break;
4537 default:
4538 gcc_unreachable ();
4541 fall_edge = NULL;
4542 FOR_EACH_EDGE (e, ei, src->succs)
4544 if (e->flags & EDGE_FALLTHRU)
4546 if (fall_edge != NULL)
4548 error ("BB %i too many fallthru edges", src->index);
4549 return true;
4551 fall_edge = e;
4553 else if (e->aux)
4554 e->aux = NULL;
4555 else
4557 error ("BB %i has incorrect edge", src->index);
4558 return true;
4561 if ((fall_edge != NULL) ^ want_fallthru)
4563 error ("BB %i has incorrect fallthru edge", src->index);
4564 return true;
4567 return false;