1 /* Routines for discovering and unpropagating edge equivalences.
2 Copyright (C) 2005-2015 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)
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/>. */
22 #include "coretypes.h"
27 #include "fold-const.h"
28 #include "stor-layout.h"
32 #include "hard-reg-set.h"
34 #include "dominance.h"
37 #include "basic-block.h"
38 #include "tree-ssa-alias.h"
39 #include "internal-fn.h"
40 #include "gimple-expr.h"
42 #include "gimple-iterator.h"
43 #include "gimple-ssa.h"
45 #include "tree-phinodes.h"
46 #include "ssa-iterators.h"
48 #include "tree-pass.h"
49 #include "tree-ssa-propagate.h"
51 /* The basic structure describing an equivalency created by traversing
52 an edge. Traversing the edge effectively means that we can assume
53 that we've seen an assignment LHS = RHS. */
54 struct edge_equivalency
60 /* This routine finds and records edge equivalences for every edge
63 When complete, each edge that creates an equivalency will have an
64 EDGE_EQUIVALENCY structure hanging off the edge's AUX field.
65 The caller is responsible for freeing the AUX fields. */
68 associate_equivalences_with_edges (void)
72 /* Walk over each block. If the block ends with a control statement,
73 then it might create a useful equivalence. */
74 FOR_EACH_BB_FN (bb
, cfun
)
76 gimple_stmt_iterator gsi
= gsi_last_bb (bb
);
79 /* If the block does not end with a COND_EXPR or SWITCH_EXPR
80 then there is nothing to do. */
84 stmt
= gsi_stmt (gsi
);
89 /* A COND_EXPR may create an equivalency in a variety of different
91 if (gimple_code (stmt
) == GIMPLE_COND
)
95 struct edge_equivalency
*equivalency
;
96 enum tree_code code
= gimple_cond_code (stmt
);
98 extract_true_false_edges_from_block (bb
, &true_edge
, &false_edge
);
100 /* Equality tests may create one or two equivalences. */
101 if (code
== EQ_EXPR
|| code
== NE_EXPR
)
103 tree op0
= gimple_cond_lhs (stmt
);
104 tree op1
= gimple_cond_rhs (stmt
);
106 /* Special case comparing booleans against a constant as we
107 know the value of OP0 on both arms of the branch. i.e., we
108 can record an equivalence for OP0 rather than COND. */
109 if (TREE_CODE (op0
) == SSA_NAME
110 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (op0
)
111 && TREE_CODE (TREE_TYPE (op0
)) == BOOLEAN_TYPE
112 && is_gimple_min_invariant (op1
))
116 equivalency
= XNEW (struct edge_equivalency
);
117 equivalency
->lhs
= op0
;
118 equivalency
->rhs
= (integer_zerop (op1
)
120 : boolean_true_node
);
121 true_edge
->aux
= equivalency
;
123 equivalency
= XNEW (struct edge_equivalency
);
124 equivalency
->lhs
= op0
;
125 equivalency
->rhs
= (integer_zerop (op1
)
127 : boolean_false_node
);
128 false_edge
->aux
= equivalency
;
132 equivalency
= XNEW (struct edge_equivalency
);
133 equivalency
->lhs
= op0
;
134 equivalency
->rhs
= (integer_zerop (op1
)
136 : boolean_false_node
);
137 true_edge
->aux
= equivalency
;
139 equivalency
= XNEW (struct edge_equivalency
);
140 equivalency
->lhs
= op0
;
141 equivalency
->rhs
= (integer_zerop (op1
)
143 : boolean_true_node
);
144 false_edge
->aux
= equivalency
;
148 else if (TREE_CODE (op0
) == SSA_NAME
149 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (op0
)
150 && (is_gimple_min_invariant (op1
)
151 || (TREE_CODE (op1
) == SSA_NAME
152 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (op1
))))
154 /* For IEEE, -0.0 == 0.0, so we don't necessarily know
155 the sign of a variable compared against zero. If
156 we're honoring signed zeros, then we cannot record
157 this value unless we know that the value is nonzero. */
158 if (HONOR_SIGNED_ZEROS (op0
)
159 && (TREE_CODE (op1
) != REAL_CST
160 || REAL_VALUES_EQUAL (dconst0
, TREE_REAL_CST (op1
))))
163 equivalency
= XNEW (struct edge_equivalency
);
164 equivalency
->lhs
= op0
;
165 equivalency
->rhs
= op1
;
167 true_edge
->aux
= equivalency
;
169 false_edge
->aux
= equivalency
;
174 /* ??? TRUTH_NOT_EXPR can create an equivalence too. */
177 /* For a SWITCH_EXPR, a case label which represents a single
178 value and which is the only case label which reaches the
179 target block creates an equivalence. */
180 else if (gimple_code (stmt
) == GIMPLE_SWITCH
)
182 gswitch
*switch_stmt
= as_a
<gswitch
*> (stmt
);
183 tree cond
= gimple_switch_index (switch_stmt
);
185 if (TREE_CODE (cond
) == SSA_NAME
186 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (cond
))
188 int i
, n_labels
= gimple_switch_num_labels (switch_stmt
);
189 tree
*info
= XCNEWVEC (tree
, last_basic_block_for_fn (cfun
));
191 /* Walk over the case label vector. Record blocks
192 which are reached by a single case label which represents
194 for (i
= 0; i
< n_labels
; i
++)
196 tree label
= gimple_switch_label (switch_stmt
, i
);
197 basic_block bb
= label_to_block (CASE_LABEL (label
));
199 if (CASE_HIGH (label
)
202 info
[bb
->index
] = error_mark_node
;
204 info
[bb
->index
] = label
;
207 /* Now walk over the blocks to determine which ones were
208 marked as being reached by a useful case label. */
209 for (i
= 0; i
< n_basic_blocks_for_fn (cfun
); i
++)
214 && node
!= error_mark_node
)
216 tree x
= fold_convert (TREE_TYPE (cond
), CASE_LOW (node
));
217 struct edge_equivalency
*equivalency
;
219 /* Record an equivalency on the edge from BB to basic
221 equivalency
= XNEW (struct edge_equivalency
);
222 equivalency
->rhs
= x
;
223 equivalency
->lhs
= cond
;
224 find_edge (bb
, BASIC_BLOCK_FOR_FN (cfun
, i
))->aux
=
236 /* Translating out of SSA sometimes requires inserting copies and
237 constant initializations on edges to eliminate PHI nodes.
239 In some cases those copies and constant initializations are
240 redundant because the target already has the value on the
241 RHS of the assignment.
243 We previously tried to catch these cases after translating
244 out of SSA form. However, that code often missed cases. Worse
245 yet, the cases it missed were also often missed by the RTL
246 optimizers. Thus the resulting code had redundant instructions.
248 This pass attempts to detect these situations before translating
251 The key concept that this pass is built upon is that these
252 redundant copies and constant initializations often occur
253 due to constant/copy propagating equivalences resulting from
254 COND_EXPRs and SWITCH_EXPRs.
256 We want to do those propagations as they can sometimes allow
257 the SSA optimizers to do a better job. However, in the cases
258 where such propagations do not result in further optimization,
259 we would like to "undo" the propagation to avoid the redundant
260 copies and constant initializations.
262 This pass works by first associating equivalences with edges in
263 the CFG. For example, the edge leading from a SWITCH_EXPR to
264 its associated CASE_LABEL will have an equivalency between
265 SWITCH_COND and the value in the case label.
267 Once we have found the edge equivalences, we proceed to walk
268 the CFG in dominator order. As we traverse edges we record
269 equivalences associated with those edges we traverse.
271 When we encounter a PHI node, we walk its arguments to see if we
272 have an equivalence for the PHI argument. If so, then we replace
275 Equivalences are looked up based on their value (think of it as
276 the RHS of an assignment). A value may be an SSA_NAME or an
277 invariant. We may have several SSA_NAMEs with the same value,
278 so with each value we have a list of SSA_NAMEs that have the
282 /* Main structure for recording equivalences into our hash table. */
283 struct equiv_hash_elt
285 /* The value/key of this entry. */
288 /* List of SSA_NAMEs which have the same value/key. */
289 vec
<tree
> equivalences
;
292 /* Value to ssa name equivalence hashtable helpers. */
294 struct val_ssa_equiv_hash_traits
: default_hashmap_traits
296 static inline hashval_t
hash (tree
);
297 static inline bool equal_keys (tree
, tree
);
298 template<typename T
> static inline void remove (T
&);
302 val_ssa_equiv_hash_traits::hash (tree value
)
304 return iterative_hash_expr (value
, 0);
308 val_ssa_equiv_hash_traits::equal_keys (tree value1
, tree value2
)
310 return operand_equal_p (value1
, value2
, 0);
313 /* Free an instance of equiv_hash_elt. */
317 val_ssa_equiv_hash_traits::remove (T
&elt
)
319 elt
.m_value
.release ();
322 /* Global hash table implementing a mapping from invariant values
323 to a list of SSA_NAMEs which have the same value. We might be
324 able to reuse tree-vn for this code. */
325 static hash_map
<tree
, vec
<tree
>, val_ssa_equiv_hash_traits
> *val_ssa_equiv
;
327 static void uncprop_into_successor_phis (basic_block
);
329 /* Remove the most recently recorded equivalency for VALUE. */
332 remove_equivalence (tree value
)
334 val_ssa_equiv
->get (value
)->pop ();
337 /* Record EQUIVALENCE = VALUE into our hash table. */
340 record_equiv (tree value
, tree equivalence
)
342 val_ssa_equiv
->get_or_insert (value
).safe_push (equivalence
);
345 class uncprop_dom_walker
: public dom_walker
348 uncprop_dom_walker (cdi_direction direction
) : dom_walker (direction
) {}
350 virtual void before_dom_children (basic_block
);
351 virtual void after_dom_children (basic_block
);
355 /* As we enter each block we record the value for any edge equivalency
356 leading to this block. If no such edge equivalency exists, then we
357 record NULL. These equivalences are live until we leave the dominator
358 subtree rooted at the block where we record the equivalency. */
359 auto_vec
<tree
, 2> m_equiv_stack
;
362 /* We have finished processing the dominator children of BB, perform
363 any finalization actions in preparation for leaving this node in
364 the dominator tree. */
367 uncprop_dom_walker::after_dom_children (basic_block bb ATTRIBUTE_UNUSED
)
369 /* Pop the topmost value off the equiv stack. */
370 tree value
= m_equiv_stack
.pop ();
372 /* If that value was non-null, then pop the topmost equivalency off
373 its equivalency stack. */
375 remove_equivalence (value
);
378 /* Unpropagate values from PHI nodes in successor blocks of BB. */
381 uncprop_into_successor_phis (basic_block bb
)
386 /* For each successor edge, first temporarily record any equivalence
387 on that edge. Then unpropagate values in any PHI nodes at the
388 destination of the edge. Then remove the temporary equivalence. */
389 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
391 gimple_seq phis
= phi_nodes (e
->dest
);
392 gimple_stmt_iterator gsi
;
394 /* If there are no PHI nodes in this destination, then there is
395 no sense in recording any equivalences. */
396 if (gimple_seq_empty_p (phis
))
399 /* Record any equivalency associated with E. */
402 struct edge_equivalency
*equiv
= (struct edge_equivalency
*) e
->aux
;
403 record_equiv (equiv
->rhs
, equiv
->lhs
);
406 /* Walk over the PHI nodes, unpropagating values. */
407 for (gsi
= gsi_start (phis
) ; !gsi_end_p (gsi
); gsi_next (&gsi
))
409 gimple phi
= gsi_stmt (gsi
);
410 tree arg
= PHI_ARG_DEF (phi
, e
->dest_idx
);
411 tree res
= PHI_RESULT (phi
);
413 /* If the argument is not an invariant and can be potentially
414 coalesced with the result, then there's no point in
415 un-propagating the argument. */
416 if (!is_gimple_min_invariant (arg
)
417 && gimple_can_coalesce_p (arg
, res
))
420 /* Lookup this argument's value in the hash table. */
421 vec
<tree
> *equivalences
= val_ssa_equiv
->get (arg
);
424 /* Walk every equivalence with the same value. If we find
425 one that can potentially coalesce with the PHI rsult,
426 then replace the value in the argument with its equivalent
427 SSA_NAME. Use the most recent equivalence as hopefully
428 that results in shortest lifetimes. */
429 for (int j
= equivalences
->length () - 1; j
>= 0; j
--)
431 tree equiv
= (*equivalences
)[j
];
433 if (gimple_can_coalesce_p (equiv
, res
))
435 SET_PHI_ARG_DEF (phi
, e
->dest_idx
, equiv
);
442 /* If we had an equivalence associated with this edge, remove it. */
445 struct edge_equivalency
*equiv
= (struct edge_equivalency
*) e
->aux
;
446 remove_equivalence (equiv
->rhs
);
451 /* Ignoring loop backedges, if BB has precisely one incoming edge then
452 return that edge. Otherwise return NULL. */
454 single_incoming_edge_ignoring_loop_edges (basic_block bb
)
460 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
462 /* A loop back edge can be identified by the destination of
463 the edge dominating the source of the edge. */
464 if (dominated_by_p (CDI_DOMINATORS
, e
->src
, e
->dest
))
467 /* If we have already seen a non-loop edge, then we must have
468 multiple incoming non-loop edges and thus we return NULL. */
472 /* This is the first non-loop incoming edge we have found. Record
481 uncprop_dom_walker::before_dom_children (basic_block bb
)
485 bool recorded
= false;
487 /* If this block is dominated by a single incoming edge and that edge
488 has an equivalency, then record the equivalency and push the
489 VALUE onto EQUIV_STACK. Else push a NULL entry on EQUIV_STACK. */
490 parent
= get_immediate_dominator (CDI_DOMINATORS
, bb
);
493 e
= single_incoming_edge_ignoring_loop_edges (bb
);
495 if (e
&& e
->src
== parent
&& e
->aux
)
497 struct edge_equivalency
*equiv
= (struct edge_equivalency
*) e
->aux
;
499 record_equiv (equiv
->rhs
, equiv
->lhs
);
500 m_equiv_stack
.safe_push (equiv
->rhs
);
506 m_equiv_stack
.safe_push (NULL_TREE
);
508 uncprop_into_successor_phis (bb
);
513 const pass_data pass_data_uncprop
=
515 GIMPLE_PASS
, /* type */
516 "uncprop", /* name */
517 OPTGROUP_NONE
, /* optinfo_flags */
518 TV_TREE_SSA_UNCPROP
, /* tv_id */
519 ( PROP_cfg
| PROP_ssa
), /* properties_required */
520 0, /* properties_provided */
521 0, /* properties_destroyed */
522 0, /* todo_flags_start */
523 0, /* todo_flags_finish */
526 class pass_uncprop
: public gimple_opt_pass
529 pass_uncprop (gcc::context
*ctxt
)
530 : gimple_opt_pass (pass_data_uncprop
, ctxt
)
533 /* opt_pass methods: */
534 opt_pass
* clone () { return new pass_uncprop (m_ctxt
); }
535 virtual bool gate (function
*) { return flag_tree_dom
!= 0; }
536 virtual unsigned int execute (function
*);
538 }; // class pass_uncprop
541 pass_uncprop::execute (function
*fun
)
545 associate_equivalences_with_edges ();
547 /* Create our global data structures. */
549 = new hash_map
<tree
, vec
<tree
>, val_ssa_equiv_hash_traits
> (1024);
551 /* We're going to do a dominator walk, so ensure that we have
552 dominance information. */
553 calculate_dominance_info (CDI_DOMINATORS
);
555 /* Recursively walk the dominator tree undoing unprofitable
556 constant/copy propagations. */
557 uncprop_dom_walker (CDI_DOMINATORS
).walk (fun
->cfg
->x_entry_block_ptr
);
559 /* we just need to empty elements out of the hash table, and cleanup the
560 AUX field on the edges. */
561 delete val_ssa_equiv
;
562 val_ssa_equiv
= NULL
;
563 FOR_EACH_BB_FN (bb
, fun
)
568 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
583 make_pass_uncprop (gcc::context
*ctxt
)
585 return new pass_uncprop (ctxt
);