1 /* Optimization of PHI nodes by converting them into straightline code.
2 Copyright (C) 2004, 2005, 2006, 2007, 2008 Free Software Foundation,
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it
8 under the terms of the GNU General Public License as published by the
9 Free Software Foundation; either version 3, or (at your option) any
12 GCC is distributed in the hope that it will be useful, but WITHOUT
13 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
23 #include "coretypes.h"
30 #include "basic-block.h"
32 #include "diagnostic.h"
33 #include "tree-flow.h"
34 #include "tree-pass.h"
35 #include "tree-dump.h"
36 #include "langhooks.h"
37 #include "pointer-set.h"
40 static unsigned int tree_ssa_phiopt (void);
41 static unsigned int tree_ssa_phiopt_worker (bool);
42 static bool conditional_replacement (basic_block
, basic_block
,
43 edge
, edge
, gimple
, tree
, tree
);
44 static bool value_replacement (basic_block
, basic_block
,
45 edge
, edge
, gimple
, tree
, tree
);
46 static bool minmax_replacement (basic_block
, basic_block
,
47 edge
, edge
, gimple
, tree
, tree
);
48 static bool abs_replacement (basic_block
, basic_block
,
49 edge
, edge
, gimple
, tree
, tree
);
50 static bool cond_store_replacement (basic_block
, basic_block
, edge
, edge
,
51 struct pointer_set_t
*);
52 static struct pointer_set_t
* get_non_trapping (void);
53 static void replace_phi_edge_with_variable (basic_block
, edge
, gimple
, tree
);
55 /* This pass tries to replaces an if-then-else block with an
56 assignment. We have four kinds of transformations. Some of these
57 transformations are also performed by the ifcvt RTL optimizer.
59 Conditional Replacement
60 -----------------------
62 This transformation, implemented in conditional_replacement,
66 if (cond) goto bb2; else goto bb1;
69 x = PHI <0 (bb1), 1 (bb0), ...>;
77 x = PHI <x' (bb0), ...>;
79 We remove bb1 as it becomes unreachable. This occurs often due to
80 gimplification of conditionals.
85 This transformation, implemented in value_replacement, replaces
88 if (a != b) goto bb2; else goto bb1;
91 x = PHI <a (bb1), b (bb0), ...>;
97 x = PHI <b (bb0), ...>;
99 This opportunity can sometimes occur as a result of other
105 This transformation, implemented in abs_replacement, replaces
108 if (a >= 0) goto bb2; else goto bb1;
112 x = PHI <x (bb1), a (bb0), ...>;
119 x = PHI <x' (bb0), ...>;
124 This transformation, minmax_replacement replaces
127 if (a <= b) goto bb2; else goto bb1;
130 x = PHI <b (bb1), a (bb0), ...>;
137 x = PHI <x' (bb0), ...>;
139 A similar transformation is done for MAX_EXPR. */
142 tree_ssa_phiopt (void)
144 return tree_ssa_phiopt_worker (false);
147 /* This pass tries to transform conditional stores into unconditional
148 ones, enabling further simplifications with the simpler then and else
149 blocks. In particular it replaces this:
152 if (cond) goto bb2; else goto bb1;
160 if (cond) goto bb1; else goto bb2;
164 condtmp = PHI <RHS, condtmp'>
167 This transformation can only be done under several constraints,
171 tree_ssa_cs_elim (void)
173 return tree_ssa_phiopt_worker (true);
176 /* For conditional store replacement we need a temporary to
177 put the old contents of the memory in. */
178 static tree condstoretemp
;
180 /* The core routine of conditional store replacement and normal
181 phi optimizations. Both share much of the infrastructure in how
182 to match applicable basic block patterns. DO_STORE_ELIM is true
183 when we want to do conditional store replacement, false otherwise. */
185 tree_ssa_phiopt_worker (bool do_store_elim
)
188 basic_block
*bb_order
;
190 bool cfgchanged
= false;
191 struct pointer_set_t
*nontrap
= 0;
195 condstoretemp
= NULL_TREE
;
196 /* Calculate the set of non-trapping memory accesses. */
197 nontrap
= get_non_trapping ();
200 /* Search every basic block for COND_EXPR we may be able to optimize.
202 We walk the blocks in order that guarantees that a block with
203 a single predecessor is processed before the predecessor.
204 This ensures that we collapse inner ifs before visiting the
205 outer ones, and also that we do not try to visit a removed
207 bb_order
= blocks_in_phiopt_order ();
208 n
= n_basic_blocks
- NUM_FIXED_BLOCKS
;
210 for (i
= 0; i
< n
; i
++)
212 gimple cond_stmt
, phi
;
213 basic_block bb1
, bb2
;
219 cond_stmt
= last_stmt (bb
);
220 /* Check to see if the last statement is a GIMPLE_COND. */
222 || gimple_code (cond_stmt
) != GIMPLE_COND
)
225 e1
= EDGE_SUCC (bb
, 0);
227 e2
= EDGE_SUCC (bb
, 1);
230 /* We cannot do the optimization on abnormal edges. */
231 if ((e1
->flags
& EDGE_ABNORMAL
) != 0
232 || (e2
->flags
& EDGE_ABNORMAL
) != 0)
235 /* If either bb1's succ or bb2 or bb2's succ is non NULL. */
236 if (EDGE_COUNT (bb1
->succs
) == 0
238 || EDGE_COUNT (bb2
->succs
) == 0)
241 /* Find the bb which is the fall through to the other. */
242 if (EDGE_SUCC (bb1
, 0)->dest
== bb2
)
244 else if (EDGE_SUCC (bb2
, 0)->dest
== bb1
)
246 basic_block bb_tmp
= bb1
;
256 e1
= EDGE_SUCC (bb1
, 0);
258 /* Make sure that bb1 is just a fall through. */
259 if (!single_succ_p (bb1
)
260 || (e1
->flags
& EDGE_FALLTHRU
) == 0)
263 /* Also make sure that bb1 only have one predecessor and that it
265 if (!single_pred_p (bb1
)
266 || single_pred (bb1
) != bb
)
271 /* bb1 is the middle block, bb2 the join block, bb the split block,
272 e1 the fallthrough edge from bb1 to bb2. We can't do the
273 optimization if the join block has more than two predecessors. */
274 if (EDGE_COUNT (bb2
->preds
) > 2)
276 if (cond_store_replacement (bb1
, bb2
, e1
, e2
, nontrap
))
281 gimple_seq phis
= phi_nodes (bb2
);
283 /* Check to make sure that there is only one PHI node.
284 TODO: we could do it with more than one iff the other PHI nodes
285 have the same elements for these two edges. */
286 if (! gimple_seq_singleton_p (phis
))
289 phi
= gsi_stmt (gsi_start (phis
));
290 arg0
= gimple_phi_arg_def (phi
, e1
->dest_idx
);
291 arg1
= gimple_phi_arg_def (phi
, e2
->dest_idx
);
293 /* Something is wrong if we cannot find the arguments in the PHI
295 gcc_assert (arg0
!= NULL
&& arg1
!= NULL
);
297 /* Do the replacement of conditional if it can be done. */
298 if (conditional_replacement (bb
, bb1
, e1
, e2
, phi
, arg0
, arg1
))
300 else if (value_replacement (bb
, bb1
, e1
, e2
, phi
, arg0
, arg1
))
302 else if (abs_replacement (bb
, bb1
, e1
, e2
, phi
, arg0
, arg1
))
304 else if (minmax_replacement (bb
, bb1
, e1
, e2
, phi
, arg0
, arg1
))
312 pointer_set_destroy (nontrap
);
313 /* If the CFG has changed, we should cleanup the CFG. */
314 if (cfgchanged
&& do_store_elim
)
316 /* In cond-store replacement we have added some loads on edges
317 and new VOPS (as we moved the store, and created a load). */
318 gsi_commit_edge_inserts ();
319 return TODO_cleanup_cfg
| TODO_update_ssa_only_virtuals
;
322 return TODO_cleanup_cfg
;
326 /* Returns the list of basic blocks in the function in an order that guarantees
327 that if a block X has just a single predecessor Y, then Y is after X in the
331 blocks_in_phiopt_order (void)
334 basic_block
*order
= XNEWVEC (basic_block
, n_basic_blocks
);
335 unsigned n
= n_basic_blocks
- NUM_FIXED_BLOCKS
;
337 sbitmap visited
= sbitmap_alloc (last_basic_block
);
339 #define MARK_VISITED(BB) (SET_BIT (visited, (BB)->index))
340 #define VISITED_P(BB) (TEST_BIT (visited, (BB)->index))
342 sbitmap_zero (visited
);
344 MARK_VISITED (ENTRY_BLOCK_PTR
);
350 /* Walk the predecessors of x as long as they have precisely one
351 predecessor and add them to the list, so that they get stored
354 single_pred_p (y
) && !VISITED_P (single_pred (y
));
357 for (y
= x
, i
= n
- np
;
358 single_pred_p (y
) && !VISITED_P (single_pred (y
));
359 y
= single_pred (y
), i
++)
367 gcc_assert (i
== n
- 1);
371 sbitmap_free (visited
);
380 /* Return TRUE if block BB has no executable statements, otherwise return
384 empty_block_p (basic_block bb
)
386 /* BB must have no executable statements. */
387 return gsi_end_p (gsi_after_labels (bb
));
390 /* Replace PHI node element whose edge is E in block BB with variable NEW.
391 Remove the edge from COND_BLOCK which does not lead to BB (COND_BLOCK
392 is known to have two edges, one of which must reach BB). */
395 replace_phi_edge_with_variable (basic_block cond_block
,
396 edge e
, gimple phi
, tree new_tree
)
398 basic_block bb
= gimple_bb (phi
);
399 basic_block block_to_remove
;
400 gimple_stmt_iterator gsi
;
402 /* Change the PHI argument to new. */
403 SET_USE (PHI_ARG_DEF_PTR (phi
, e
->dest_idx
), new_tree
);
405 /* Remove the empty basic block. */
406 if (EDGE_SUCC (cond_block
, 0)->dest
== bb
)
408 EDGE_SUCC (cond_block
, 0)->flags
|= EDGE_FALLTHRU
;
409 EDGE_SUCC (cond_block
, 0)->flags
&= ~(EDGE_TRUE_VALUE
| EDGE_FALSE_VALUE
);
410 EDGE_SUCC (cond_block
, 0)->probability
= REG_BR_PROB_BASE
;
411 EDGE_SUCC (cond_block
, 0)->count
+= EDGE_SUCC (cond_block
, 1)->count
;
413 block_to_remove
= EDGE_SUCC (cond_block
, 1)->dest
;
417 EDGE_SUCC (cond_block
, 1)->flags
|= EDGE_FALLTHRU
;
418 EDGE_SUCC (cond_block
, 1)->flags
419 &= ~(EDGE_TRUE_VALUE
| EDGE_FALSE_VALUE
);
420 EDGE_SUCC (cond_block
, 1)->probability
= REG_BR_PROB_BASE
;
421 EDGE_SUCC (cond_block
, 1)->count
+= EDGE_SUCC (cond_block
, 0)->count
;
423 block_to_remove
= EDGE_SUCC (cond_block
, 0)->dest
;
425 delete_basic_block (block_to_remove
);
427 /* Eliminate the COND_EXPR at the end of COND_BLOCK. */
428 gsi
= gsi_last_bb (cond_block
);
429 gsi_remove (&gsi
, true);
431 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
433 "COND_EXPR in block %d and PHI in block %d converted to straightline code.\n",
438 /* The function conditional_replacement does the main work of doing the
439 conditional replacement. Return true if the replacement is done.
440 Otherwise return false.
441 BB is the basic block where the replacement is going to be done on. ARG0
442 is argument 0 from PHI. Likewise for ARG1. */
445 conditional_replacement (basic_block cond_bb
, basic_block middle_bb
,
446 edge e0
, edge e1
, gimple phi
,
447 tree arg0
, tree arg1
)
450 gimple stmt
, new_stmt
;
452 gimple_stmt_iterator gsi
;
453 edge true_edge
, false_edge
;
454 tree new_var
, new_var2
;
456 /* FIXME: Gimplification of complex type is too hard for now. */
457 if (TREE_CODE (TREE_TYPE (arg0
)) == COMPLEX_TYPE
458 || TREE_CODE (TREE_TYPE (arg1
)) == COMPLEX_TYPE
)
461 /* The PHI arguments have the constants 0 and 1, then convert
462 it to the conditional. */
463 if ((integer_zerop (arg0
) && integer_onep (arg1
))
464 || (integer_zerop (arg1
) && integer_onep (arg0
)))
469 if (!empty_block_p (middle_bb
))
472 /* At this point we know we have a GIMPLE_COND with two successors.
473 One successor is BB, the other successor is an empty block which
474 falls through into BB.
476 There is a single PHI node at the join point (BB) and its arguments
477 are constants (0, 1).
479 So, given the condition COND, and the two PHI arguments, we can
480 rewrite this PHI into non-branching code:
482 dest = (COND) or dest = COND'
484 We use the condition as-is if the argument associated with the
485 true edge has the value one or the argument associated with the
486 false edge as the value zero. Note that those conditions are not
487 the same since only one of the outgoing edges from the GIMPLE_COND
488 will directly reach BB and thus be associated with an argument. */
490 stmt
= last_stmt (cond_bb
);
491 result
= PHI_RESULT (phi
);
493 /* To handle special cases like floating point comparison, it is easier and
494 less error-prone to build a tree and gimplify it on the fly though it is
496 cond
= fold_build2 (gimple_cond_code (stmt
), boolean_type_node
,
497 gimple_cond_lhs (stmt
), gimple_cond_rhs (stmt
));
499 /* We need to know which is the true edge and which is the false
500 edge so that we know when to invert the condition below. */
501 extract_true_false_edges_from_block (cond_bb
, &true_edge
, &false_edge
);
502 if ((e0
== true_edge
&& integer_zerop (arg0
))
503 || (e0
== false_edge
&& integer_onep (arg0
))
504 || (e1
== true_edge
&& integer_zerop (arg1
))
505 || (e1
== false_edge
&& integer_onep (arg1
)))
506 cond
= fold_build1 (TRUTH_NOT_EXPR
, TREE_TYPE (cond
), cond
);
508 /* Insert our new statements at the end of conditional block before the
510 gsi
= gsi_for_stmt (stmt
);
511 new_var
= force_gimple_operand_gsi (&gsi
, cond
, true, NULL
, true,
514 if (!useless_type_conversion_p (TREE_TYPE (result
), TREE_TYPE (new_var
)))
516 source_location locus_0
, locus_1
;
518 new_var2
= create_tmp_var (TREE_TYPE (result
), NULL
);
519 add_referenced_var (new_var2
);
520 new_stmt
= gimple_build_assign_with_ops (CONVERT_EXPR
, new_var2
,
522 new_var2
= make_ssa_name (new_var2
, new_stmt
);
523 gimple_assign_set_lhs (new_stmt
, new_var2
);
524 gsi_insert_before (&gsi
, new_stmt
, GSI_SAME_STMT
);
527 /* Set the locus to the first argument, unless is doesn't have one. */
528 locus_0
= gimple_phi_arg_location (phi
, 0);
529 locus_1
= gimple_phi_arg_location (phi
, 1);
530 if (locus_0
== UNKNOWN_LOCATION
)
532 gimple_set_location (new_stmt
, locus_0
);
535 replace_phi_edge_with_variable (cond_bb
, e1
, phi
, new_var
);
537 /* Note that we optimized this PHI. */
541 /* The function value_replacement does the main work of doing the value
542 replacement. Return true if the replacement is done. Otherwise return
544 BB is the basic block where the replacement is going to be done on. ARG0
545 is argument 0 from the PHI. Likewise for ARG1. */
548 value_replacement (basic_block cond_bb
, basic_block middle_bb
,
549 edge e0
, edge e1
, gimple phi
,
550 tree arg0
, tree arg1
)
553 edge true_edge
, false_edge
;
556 /* If the type says honor signed zeros we cannot do this
558 if (HONOR_SIGNED_ZEROS (TYPE_MODE (TREE_TYPE (arg1
))))
561 if (!empty_block_p (middle_bb
))
564 cond
= last_stmt (cond_bb
);
565 code
= gimple_cond_code (cond
);
567 /* This transformation is only valid for equality comparisons. */
568 if (code
!= NE_EXPR
&& code
!= EQ_EXPR
)
571 /* We need to know which is the true edge and which is the false
572 edge so that we know if have abs or negative abs. */
573 extract_true_false_edges_from_block (cond_bb
, &true_edge
, &false_edge
);
575 /* At this point we know we have a COND_EXPR with two successors.
576 One successor is BB, the other successor is an empty block which
577 falls through into BB.
579 The condition for the COND_EXPR is known to be NE_EXPR or EQ_EXPR.
581 There is a single PHI node at the join point (BB) with two arguments.
583 We now need to verify that the two arguments in the PHI node match
584 the two arguments to the equality comparison. */
586 if ((operand_equal_for_phi_arg_p (arg0
, gimple_cond_lhs (cond
))
587 && operand_equal_for_phi_arg_p (arg1
, gimple_cond_rhs (cond
)))
588 || (operand_equal_for_phi_arg_p (arg1
, gimple_cond_lhs (cond
))
589 && operand_equal_for_phi_arg_p (arg0
, gimple_cond_rhs (cond
))))
594 /* For NE_EXPR, we want to build an assignment result = arg where
595 arg is the PHI argument associated with the true edge. For
596 EQ_EXPR we want the PHI argument associated with the false edge. */
597 e
= (code
== NE_EXPR
? true_edge
: false_edge
);
599 /* Unfortunately, E may not reach BB (it may instead have gone to
600 OTHER_BLOCK). If that is the case, then we want the single outgoing
601 edge from OTHER_BLOCK which reaches BB and represents the desired
602 path from COND_BLOCK. */
603 if (e
->dest
== middle_bb
)
604 e
= single_succ_edge (e
->dest
);
606 /* Now we know the incoming edge to BB that has the argument for the
607 RHS of our new assignment statement. */
613 replace_phi_edge_with_variable (cond_bb
, e1
, phi
, arg
);
615 /* Note that we optimized this PHI. */
621 /* The function minmax_replacement does the main work of doing the minmax
622 replacement. Return true if the replacement is done. Otherwise return
624 BB is the basic block where the replacement is going to be done on. ARG0
625 is argument 0 from the PHI. Likewise for ARG1. */
628 minmax_replacement (basic_block cond_bb
, basic_block middle_bb
,
629 edge e0
, edge e1
, gimple phi
,
630 tree arg0
, tree arg1
)
633 gimple cond
, new_stmt
;
634 edge true_edge
, false_edge
;
635 enum tree_code cmp
, minmax
, ass_code
;
636 tree smaller
, larger
, arg_true
, arg_false
;
637 gimple_stmt_iterator gsi
, gsi_from
;
639 type
= TREE_TYPE (PHI_RESULT (phi
));
641 /* The optimization may be unsafe due to NaNs. */
642 if (HONOR_NANS (TYPE_MODE (type
)))
645 cond
= last_stmt (cond_bb
);
646 cmp
= gimple_cond_code (cond
);
647 result
= PHI_RESULT (phi
);
649 /* This transformation is only valid for order comparisons. Record which
650 operand is smaller/larger if the result of the comparison is true. */
651 if (cmp
== LT_EXPR
|| cmp
== LE_EXPR
)
653 smaller
= gimple_cond_lhs (cond
);
654 larger
= gimple_cond_rhs (cond
);
656 else if (cmp
== GT_EXPR
|| cmp
== GE_EXPR
)
658 smaller
= gimple_cond_rhs (cond
);
659 larger
= gimple_cond_lhs (cond
);
664 /* We need to know which is the true edge and which is the false
665 edge so that we know if have abs or negative abs. */
666 extract_true_false_edges_from_block (cond_bb
, &true_edge
, &false_edge
);
668 /* Forward the edges over the middle basic block. */
669 if (true_edge
->dest
== middle_bb
)
670 true_edge
= EDGE_SUCC (true_edge
->dest
, 0);
671 if (false_edge
->dest
== middle_bb
)
672 false_edge
= EDGE_SUCC (false_edge
->dest
, 0);
676 gcc_assert (false_edge
== e1
);
682 gcc_assert (false_edge
== e0
);
683 gcc_assert (true_edge
== e1
);
688 if (empty_block_p (middle_bb
))
690 if (operand_equal_for_phi_arg_p (arg_true
, smaller
)
691 && operand_equal_for_phi_arg_p (arg_false
, larger
))
695 if (smaller < larger)
701 else if (operand_equal_for_phi_arg_p (arg_false
, smaller
)
702 && operand_equal_for_phi_arg_p (arg_true
, larger
))
709 /* Recognize the following case, assuming d <= u:
715 This is equivalent to
720 gimple assign
= last_and_only_stmt (middle_bb
);
721 tree lhs
, op0
, op1
, bound
;
724 || gimple_code (assign
) != GIMPLE_ASSIGN
)
727 lhs
= gimple_assign_lhs (assign
);
728 ass_code
= gimple_assign_rhs_code (assign
);
729 if (ass_code
!= MAX_EXPR
&& ass_code
!= MIN_EXPR
)
731 op0
= gimple_assign_rhs1 (assign
);
732 op1
= gimple_assign_rhs2 (assign
);
734 if (true_edge
->src
== middle_bb
)
736 /* We got here if the condition is true, i.e., SMALLER < LARGER. */
737 if (!operand_equal_for_phi_arg_p (lhs
, arg_true
))
740 if (operand_equal_for_phi_arg_p (arg_false
, larger
))
744 if (smaller < larger)
746 r' = MAX_EXPR (smaller, bound)
748 r = PHI <r', larger> --> to be turned to MIN_EXPR. */
749 if (ass_code
!= MAX_EXPR
)
753 if (operand_equal_for_phi_arg_p (op0
, smaller
))
755 else if (operand_equal_for_phi_arg_p (op1
, smaller
))
760 /* We need BOUND <= LARGER. */
761 if (!integer_nonzerop (fold_build2 (LE_EXPR
, boolean_type_node
,
765 else if (operand_equal_for_phi_arg_p (arg_false
, smaller
))
769 if (smaller < larger)
771 r' = MIN_EXPR (larger, bound)
773 r = PHI <r', smaller> --> to be turned to MAX_EXPR. */
774 if (ass_code
!= MIN_EXPR
)
778 if (operand_equal_for_phi_arg_p (op0
, larger
))
780 else if (operand_equal_for_phi_arg_p (op1
, larger
))
785 /* We need BOUND >= SMALLER. */
786 if (!integer_nonzerop (fold_build2 (GE_EXPR
, boolean_type_node
,
795 /* We got here if the condition is false, i.e., SMALLER > LARGER. */
796 if (!operand_equal_for_phi_arg_p (lhs
, arg_false
))
799 if (operand_equal_for_phi_arg_p (arg_true
, larger
))
803 if (smaller > larger)
805 r' = MIN_EXPR (smaller, bound)
807 r = PHI <r', larger> --> to be turned to MAX_EXPR. */
808 if (ass_code
!= MIN_EXPR
)
812 if (operand_equal_for_phi_arg_p (op0
, smaller
))
814 else if (operand_equal_for_phi_arg_p (op1
, smaller
))
819 /* We need BOUND >= LARGER. */
820 if (!integer_nonzerop (fold_build2 (GE_EXPR
, boolean_type_node
,
824 else if (operand_equal_for_phi_arg_p (arg_true
, smaller
))
828 if (smaller > larger)
830 r' = MAX_EXPR (larger, bound)
832 r = PHI <r', smaller> --> to be turned to MIN_EXPR. */
833 if (ass_code
!= MAX_EXPR
)
837 if (operand_equal_for_phi_arg_p (op0
, larger
))
839 else if (operand_equal_for_phi_arg_p (op1
, larger
))
844 /* We need BOUND <= SMALLER. */
845 if (!integer_nonzerop (fold_build2 (LE_EXPR
, boolean_type_node
,
853 /* Move the statement from the middle block. */
854 gsi
= gsi_last_bb (cond_bb
);
855 gsi_from
= gsi_last_bb (middle_bb
);
856 gsi_move_before (&gsi_from
, &gsi
);
859 /* Emit the statement to compute min/max. */
860 result
= duplicate_ssa_name (PHI_RESULT (phi
), NULL
);
861 new_stmt
= gimple_build_assign_with_ops (minmax
, result
, arg0
, arg1
);
862 gsi
= gsi_last_bb (cond_bb
);
863 gsi_insert_before (&gsi
, new_stmt
, GSI_NEW_STMT
);
865 replace_phi_edge_with_variable (cond_bb
, e1
, phi
, result
);
869 /* The function absolute_replacement does the main work of doing the absolute
870 replacement. Return true if the replacement is done. Otherwise return
872 bb is the basic block where the replacement is going to be done on. arg0
873 is argument 0 from the phi. Likewise for arg1. */
876 abs_replacement (basic_block cond_bb
, basic_block middle_bb
,
877 edge e0 ATTRIBUTE_UNUSED
, edge e1
,
878 gimple phi
, tree arg0
, tree arg1
)
881 gimple new_stmt
, cond
;
882 gimple_stmt_iterator gsi
;
883 edge true_edge
, false_edge
;
888 enum tree_code cond_code
;
890 /* If the type says honor signed zeros we cannot do this
892 if (HONOR_SIGNED_ZEROS (TYPE_MODE (TREE_TYPE (arg1
))))
895 /* OTHER_BLOCK must have only one executable statement which must have the
896 form arg0 = -arg1 or arg1 = -arg0. */
898 assign
= last_and_only_stmt (middle_bb
);
899 /* If we did not find the proper negation assignment, then we can not
904 /* If we got here, then we have found the only executable statement
905 in OTHER_BLOCK. If it is anything other than arg = -arg1 or
906 arg1 = -arg0, then we can not optimize. */
907 if (gimple_code (assign
) != GIMPLE_ASSIGN
)
910 lhs
= gimple_assign_lhs (assign
);
912 if (gimple_assign_rhs_code (assign
) != NEGATE_EXPR
)
915 rhs
= gimple_assign_rhs1 (assign
);
917 /* The assignment has to be arg0 = -arg1 or arg1 = -arg0. */
918 if (!(lhs
== arg0
&& rhs
== arg1
)
919 && !(lhs
== arg1
&& rhs
== arg0
))
922 cond
= last_stmt (cond_bb
);
923 result
= PHI_RESULT (phi
);
925 /* Only relationals comparing arg[01] against zero are interesting. */
926 cond_code
= gimple_cond_code (cond
);
927 if (cond_code
!= GT_EXPR
&& cond_code
!= GE_EXPR
928 && cond_code
!= LT_EXPR
&& cond_code
!= LE_EXPR
)
931 /* Make sure the conditional is arg[01] OP y. */
932 if (gimple_cond_lhs (cond
) != rhs
)
935 if (FLOAT_TYPE_P (TREE_TYPE (gimple_cond_rhs (cond
)))
936 ? real_zerop (gimple_cond_rhs (cond
))
937 : integer_zerop (gimple_cond_rhs (cond
)))
942 /* We need to know which is the true edge and which is the false
943 edge so that we know if have abs or negative abs. */
944 extract_true_false_edges_from_block (cond_bb
, &true_edge
, &false_edge
);
946 /* For GT_EXPR/GE_EXPR, if the true edge goes to OTHER_BLOCK, then we
947 will need to negate the result. Similarly for LT_EXPR/LE_EXPR if
948 the false edge goes to OTHER_BLOCK. */
949 if (cond_code
== GT_EXPR
|| cond_code
== GE_EXPR
)
954 if (e
->dest
== middle_bb
)
959 result
= duplicate_ssa_name (result
, NULL
);
963 tree tmp
= create_tmp_var (TREE_TYPE (result
), NULL
);
964 add_referenced_var (tmp
);
965 lhs
= make_ssa_name (tmp
, NULL
);
970 /* Build the modify expression with abs expression. */
971 new_stmt
= gimple_build_assign_with_ops (ABS_EXPR
, lhs
, rhs
, NULL
);
973 gsi
= gsi_last_bb (cond_bb
);
974 gsi_insert_before (&gsi
, new_stmt
, GSI_NEW_STMT
);
978 /* Get the right GSI. We want to insert after the recently
979 added ABS_EXPR statement (which we know is the first statement
981 new_stmt
= gimple_build_assign_with_ops (NEGATE_EXPR
, result
, lhs
, NULL
);
983 gsi_insert_after (&gsi
, new_stmt
, GSI_NEW_STMT
);
986 replace_phi_edge_with_variable (cond_bb
, e1
, phi
, result
);
988 /* Note that we optimized this PHI. */
992 /* Auxiliary functions to determine the set of memory accesses which
993 can't trap because they are preceded by accesses to the same memory
994 portion. We do that for INDIRECT_REFs, so we only need to track
995 the SSA_NAME of the pointer indirectly referenced. The algorithm
996 simply is a walk over all instructions in dominator order. When
997 we see an INDIRECT_REF we determine if we've already seen a same
998 ref anywhere up to the root of the dominator tree. If we do the
999 current access can't trap. If we don't see any dominating access
1000 the current access might trap, but might also make later accesses
1001 non-trapping, so we remember it. We need to be careful with loads
1002 or stores, for instance a load might not trap, while a store would,
1003 so if we see a dominating read access this doesn't mean that a later
1004 write access would not trap. Hence we also need to differentiate the
1005 type of access(es) seen.
1007 ??? We currently are very conservative and assume that a load might
1008 trap even if a store doesn't (write-only memory). This probably is
1009 overly conservative. */
1011 /* A hash-table of SSA_NAMEs, and in which basic block an INDIRECT_REF
1012 through it was seen, which would constitute a no-trap region for
1021 /* The hash table for remembering what we've seen. */
1022 static htab_t seen_ssa_names
;
1024 /* The set of INDIRECT_REFs which can't trap. */
1025 static struct pointer_set_t
*nontrap_set
;
1027 /* The hash function, based on the pointer to the pointer SSA_NAME. */
1029 name_to_bb_hash (const void *p
)
1031 const_tree n
= ((const struct name_to_bb
*)p
)->ssa_name
;
1032 return htab_hash_pointer (n
) ^ ((const struct name_to_bb
*)p
)->store
;
1035 /* The equality function of *P1 and *P2. SSA_NAMEs are shared, so
1036 it's enough to simply compare them for equality. */
1038 name_to_bb_eq (const void *p1
, const void *p2
)
1040 const struct name_to_bb
*n1
= (const struct name_to_bb
*)p1
;
1041 const struct name_to_bb
*n2
= (const struct name_to_bb
*)p2
;
1043 return n1
->ssa_name
== n2
->ssa_name
&& n1
->store
== n2
->store
;
1046 /* We see the expression EXP in basic block BB. If it's an interesting
1047 expression (an INDIRECT_REF through an SSA_NAME) possibly insert the
1048 expression into the set NONTRAP or the hash table of seen expressions.
1049 STORE is true if this expression is on the LHS, otherwise it's on
1052 add_or_mark_expr (basic_block bb
, tree exp
,
1053 struct pointer_set_t
*nontrap
, bool store
)
1055 if (INDIRECT_REF_P (exp
)
1056 && TREE_CODE (TREE_OPERAND (exp
, 0)) == SSA_NAME
)
1058 tree name
= TREE_OPERAND (exp
, 0);
1059 struct name_to_bb map
;
1061 struct name_to_bb
*n2bb
;
1062 basic_block found_bb
= 0;
1064 /* Try to find the last seen INDIRECT_REF through the same
1065 SSA_NAME, which can trap. */
1066 map
.ssa_name
= name
;
1069 slot
= htab_find_slot (seen_ssa_names
, &map
, INSERT
);
1070 n2bb
= (struct name_to_bb
*) *slot
;
1072 found_bb
= n2bb
->bb
;
1074 /* If we've found a trapping INDIRECT_REF, _and_ it dominates EXP
1075 (it's in a basic block on the path from us to the dominator root)
1076 then we can't trap. */
1077 if (found_bb
&& found_bb
->aux
== (void *)1)
1079 pointer_set_insert (nontrap
, exp
);
1083 /* EXP might trap, so insert it into the hash table. */
1090 n2bb
= XNEW (struct name_to_bb
);
1091 n2bb
->ssa_name
= name
;
1093 n2bb
->store
= store
;
1100 /* Called by walk_dominator_tree, when entering the block BB. */
1102 nt_init_block (struct dom_walk_data
*data ATTRIBUTE_UNUSED
, basic_block bb
)
1104 gimple_stmt_iterator gsi
;
1105 /* Mark this BB as being on the path to dominator root. */
1108 /* And walk the statements in order. */
1109 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
1111 gimple stmt
= gsi_stmt (gsi
);
1113 if (is_gimple_assign (stmt
))
1115 add_or_mark_expr (bb
, gimple_assign_lhs (stmt
), nontrap_set
, true);
1116 add_or_mark_expr (bb
, gimple_assign_rhs1 (stmt
), nontrap_set
, false);
1117 if (get_gimple_rhs_num_ops (gimple_assign_rhs_code (stmt
)) > 1)
1118 add_or_mark_expr (bb
, gimple_assign_rhs2 (stmt
), nontrap_set
,
1124 /* Called by walk_dominator_tree, when basic block BB is exited. */
1126 nt_fini_block (struct dom_walk_data
*data ATTRIBUTE_UNUSED
, basic_block bb
)
1128 /* This BB isn't on the path to dominator root anymore. */
1132 /* This is the entry point of gathering non trapping memory accesses.
1133 It will do a dominator walk over the whole function, and it will
1134 make use of the bb->aux pointers. It returns a set of trees
1135 (the INDIRECT_REFs itself) which can't trap. */
1136 static struct pointer_set_t
*
1137 get_non_trapping (void)
1139 struct pointer_set_t
*nontrap
;
1140 struct dom_walk_data walk_data
;
1142 nontrap
= pointer_set_create ();
1143 seen_ssa_names
= htab_create (128, name_to_bb_hash
, name_to_bb_eq
,
1145 /* We're going to do a dominator walk, so ensure that we have
1146 dominance information. */
1147 calculate_dominance_info (CDI_DOMINATORS
);
1149 /* Setup callbacks for the generic dominator tree walker. */
1150 nontrap_set
= nontrap
;
1151 walk_data
.dom_direction
= CDI_DOMINATORS
;
1152 walk_data
.initialize_block_local_data
= NULL
;
1153 walk_data
.before_dom_children
= nt_init_block
;
1154 walk_data
.after_dom_children
= nt_fini_block
;
1155 walk_data
.global_data
= NULL
;
1156 walk_data
.block_local_data_size
= 0;
1158 init_walk_dominator_tree (&walk_data
);
1159 walk_dominator_tree (&walk_data
, ENTRY_BLOCK_PTR
);
1160 fini_walk_dominator_tree (&walk_data
);
1161 htab_delete (seen_ssa_names
);
1166 /* Do the main work of conditional store replacement. We already know
1167 that the recognized pattern looks like so:
1170 if (cond) goto MIDDLE_BB; else goto JOIN_BB (edge E1)
1173 fallthrough (edge E0)
1177 We check that MIDDLE_BB contains only one store, that that store
1178 doesn't trap (not via NOTRAP, but via checking if an access to the same
1179 memory location dominates us) and that the store has a "simple" RHS. */
1182 cond_store_replacement (basic_block middle_bb
, basic_block join_bb
,
1183 edge e0
, edge e1
, struct pointer_set_t
*nontrap
)
1185 gimple assign
= last_and_only_stmt (middle_bb
);
1186 tree lhs
, rhs
, name
;
1187 gimple newphi
, new_stmt
;
1188 gimple_stmt_iterator gsi
;
1189 source_location locus
;
1190 enum tree_code code
;
1192 /* Check if middle_bb contains of only one store. */
1194 || gimple_code (assign
) != GIMPLE_ASSIGN
)
1197 locus
= gimple_location (assign
);
1198 lhs
= gimple_assign_lhs (assign
);
1199 rhs
= gimple_assign_rhs1 (assign
);
1200 if (!INDIRECT_REF_P (lhs
))
1203 /* RHS is either a single SSA_NAME or a constant. */
1204 code
= gimple_assign_rhs_code (assign
);
1205 if (get_gimple_rhs_class (code
) != GIMPLE_SINGLE_RHS
1206 || (code
!= SSA_NAME
&& !is_gimple_min_invariant (rhs
)))
1208 /* Prove that we can move the store down. We could also check
1209 TREE_THIS_NOTRAP here, but in that case we also could move stores,
1210 whose value is not available readily, which we want to avoid. */
1211 if (!pointer_set_contains (nontrap
, lhs
))
1214 /* Now we've checked the constraints, so do the transformation:
1215 1) Remove the single store. */
1216 mark_symbols_for_renaming (assign
);
1217 gsi
= gsi_for_stmt (assign
);
1218 gsi_remove (&gsi
, true);
1220 /* 2) Create a temporary where we can store the old content
1221 of the memory touched by the store, if we need to. */
1222 if (!condstoretemp
|| TREE_TYPE (lhs
) != TREE_TYPE (condstoretemp
))
1224 condstoretemp
= create_tmp_var (TREE_TYPE (lhs
), "cstore");
1225 get_var_ann (condstoretemp
);
1226 if (TREE_CODE (TREE_TYPE (lhs
)) == COMPLEX_TYPE
1227 || TREE_CODE (TREE_TYPE (lhs
)) == VECTOR_TYPE
)
1228 DECL_GIMPLE_REG_P (condstoretemp
) = 1;
1230 add_referenced_var (condstoretemp
);
1232 /* 3) Insert a load from the memory of the store to the temporary
1233 on the edge which did not contain the store. */
1234 lhs
= unshare_expr (lhs
);
1235 new_stmt
= gimple_build_assign (condstoretemp
, lhs
);
1236 name
= make_ssa_name (condstoretemp
, new_stmt
);
1237 gimple_assign_set_lhs (new_stmt
, name
);
1238 gimple_set_location (new_stmt
, locus
);
1239 mark_symbols_for_renaming (new_stmt
);
1240 gsi_insert_on_edge (e1
, new_stmt
);
1242 /* 4) Create a PHI node at the join block, with one argument
1243 holding the old RHS, and the other holding the temporary
1244 where we stored the old memory contents. */
1245 newphi
= create_phi_node (condstoretemp
, join_bb
);
1246 add_phi_arg (newphi
, rhs
, e0
, locus
);
1247 add_phi_arg (newphi
, name
, e1
, locus
);
1249 lhs
= unshare_expr (lhs
);
1250 new_stmt
= gimple_build_assign (lhs
, PHI_RESULT (newphi
));
1251 mark_symbols_for_renaming (new_stmt
);
1253 /* 5) Insert that PHI node. */
1254 gsi
= gsi_after_labels (join_bb
);
1255 if (gsi_end_p (gsi
))
1257 gsi
= gsi_last_bb (join_bb
);
1258 gsi_insert_after (&gsi
, new_stmt
, GSI_NEW_STMT
);
1261 gsi_insert_before (&gsi
, new_stmt
, GSI_NEW_STMT
);
1266 /* Always do these optimizations if we have SSA
1267 trees to work on. */
1274 struct gimple_opt_pass pass_phiopt
=
1278 "phiopt", /* name */
1279 gate_phiopt
, /* gate */
1280 tree_ssa_phiopt
, /* execute */
1283 0, /* static_pass_number */
1284 TV_TREE_PHIOPT
, /* tv_id */
1285 PROP_cfg
| PROP_ssa
, /* properties_required */
1286 0, /* properties_provided */
1287 0, /* properties_destroyed */
1288 0, /* todo_flags_start */
1293 | TODO_verify_stmts
/* todo_flags_finish */
1300 return flag_tree_cselim
;
1303 struct gimple_opt_pass pass_cselim
=
1307 "cselim", /* name */
1308 gate_cselim
, /* gate */
1309 tree_ssa_cs_elim
, /* execute */
1312 0, /* static_pass_number */
1313 TV_TREE_PHIOPT
, /* tv_id */
1314 PROP_cfg
| PROP_ssa
, /* properties_required */
1315 0, /* properties_provided */
1316 0, /* properties_destroyed */
1317 0, /* todo_flags_start */
1322 | TODO_verify_stmts
/* todo_flags_finish */