re PR fortran/77506 (F2008 Standard does not allow CHARACTER(LEN=*) in array constructor)
[official-gcc.git] / gcc / tree-ssa-ccp.c
blob987130403ce40171879a021991767a2181ffdc09
1 /* Conditional constant propagation pass for the GNU compiler.
2 Copyright (C) 2000-2016 Free Software Foundation, Inc.
3 Adapted from original RTL SSA-CCP by Daniel Berlin <dberlin@dberlin.org>
4 Adapted to GIMPLE trees by Diego Novillo <dnovillo@redhat.com>
6 This file is part of GCC.
8 GCC is free software; you can redistribute it and/or modify it
9 under the terms of the GNU General Public License as published by the
10 Free Software Foundation; either version 3, or (at your option) any
11 later version.
13 GCC is distributed in the hope that it will be useful, but WITHOUT
14 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 for more details.
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
22 /* Conditional constant propagation (CCP) is based on the SSA
23 propagation engine (tree-ssa-propagate.c). Constant assignments of
24 the form VAR = CST are propagated from the assignments into uses of
25 VAR, which in turn may generate new constants. The simulation uses
26 a four level lattice to keep track of constant values associated
27 with SSA names. Given an SSA name V_i, it may take one of the
28 following values:
30 UNINITIALIZED -> the initial state of the value. This value
31 is replaced with a correct initial value
32 the first time the value is used, so the
33 rest of the pass does not need to care about
34 it. Using this value simplifies initialization
35 of the pass, and prevents us from needlessly
36 scanning statements that are never reached.
38 UNDEFINED -> V_i is a local variable whose definition
39 has not been processed yet. Therefore we
40 don't yet know if its value is a constant
41 or not.
43 CONSTANT -> V_i has been found to hold a constant
44 value C.
46 VARYING -> V_i cannot take a constant value, or if it
47 does, it is not possible to determine it
48 at compile time.
50 The core of SSA-CCP is in ccp_visit_stmt and ccp_visit_phi_node:
52 1- In ccp_visit_stmt, we are interested in assignments whose RHS
53 evaluates into a constant and conditional jumps whose predicate
54 evaluates into a boolean true or false. When an assignment of
55 the form V_i = CONST is found, V_i's lattice value is set to
56 CONSTANT and CONST is associated with it. This causes the
57 propagation engine to add all the SSA edges coming out the
58 assignment into the worklists, so that statements that use V_i
59 can be visited.
61 If the statement is a conditional with a constant predicate, we
62 mark the outgoing edges as executable or not executable
63 depending on the predicate's value. This is then used when
64 visiting PHI nodes to know when a PHI argument can be ignored.
67 2- In ccp_visit_phi_node, if all the PHI arguments evaluate to the
68 same constant C, then the LHS of the PHI is set to C. This
69 evaluation is known as the "meet operation". Since one of the
70 goals of this evaluation is to optimistically return constant
71 values as often as possible, it uses two main short cuts:
73 - If an argument is flowing in through a non-executable edge, it
74 is ignored. This is useful in cases like this:
76 if (PRED)
77 a_9 = 3;
78 else
79 a_10 = 100;
80 a_11 = PHI (a_9, a_10)
82 If PRED is known to always evaluate to false, then we can
83 assume that a_11 will always take its value from a_10, meaning
84 that instead of consider it VARYING (a_9 and a_10 have
85 different values), we can consider it CONSTANT 100.
87 - If an argument has an UNDEFINED value, then it does not affect
88 the outcome of the meet operation. If a variable V_i has an
89 UNDEFINED value, it means that either its defining statement
90 hasn't been visited yet or V_i has no defining statement, in
91 which case the original symbol 'V' is being used
92 uninitialized. Since 'V' is a local variable, the compiler
93 may assume any initial value for it.
96 After propagation, every variable V_i that ends up with a lattice
97 value of CONSTANT will have the associated constant value in the
98 array CONST_VAL[i].VALUE. That is fed into substitute_and_fold for
99 final substitution and folding.
101 This algorithm uses wide-ints at the max precision of the target.
102 This means that, with one uninteresting exception, variables with
103 UNSIGNED types never go to VARYING because the bits above the
104 precision of the type of the variable are always zero. The
105 uninteresting case is a variable of UNSIGNED type that has the
106 maximum precision of the target. Such variables can go to VARYING,
107 but this causes no loss of infomation since these variables will
108 never be extended.
110 References:
112 Constant propagation with conditional branches,
113 Wegman and Zadeck, ACM TOPLAS 13(2):181-210.
115 Building an Optimizing Compiler,
116 Robert Morgan, Butterworth-Heinemann, 1998, Section 8.9.
118 Advanced Compiler Design and Implementation,
119 Steven Muchnick, Morgan Kaufmann, 1997, Section 12.6 */
121 #include "config.h"
122 #include "system.h"
123 #include "coretypes.h"
124 #include "backend.h"
125 #include "target.h"
126 #include "tree.h"
127 #include "gimple.h"
128 #include "tree-pass.h"
129 #include "ssa.h"
130 #include "gimple-pretty-print.h"
131 #include "fold-const.h"
132 #include "gimple-fold.h"
133 #include "tree-eh.h"
134 #include "gimplify.h"
135 #include "gimple-iterator.h"
136 #include "tree-cfg.h"
137 #include "tree-ssa-propagate.h"
138 #include "dbgcnt.h"
139 #include "params.h"
140 #include "builtins.h"
141 #include "tree-chkp.h"
142 #include "cfgloop.h"
143 #include "stor-layout.h"
144 #include "optabs-query.h"
145 #include "tree-ssa-ccp.h"
147 /* Possible lattice values. */
148 typedef enum
150 UNINITIALIZED,
151 UNDEFINED,
152 CONSTANT,
153 VARYING
154 } ccp_lattice_t;
156 struct ccp_prop_value_t {
157 /* Lattice value. */
158 ccp_lattice_t lattice_val;
160 /* Propagated value. */
161 tree value;
163 /* Mask that applies to the propagated value during CCP. For X
164 with a CONSTANT lattice value X & ~mask == value & ~mask. The
165 zero bits in the mask cover constant values. The ones mean no
166 information. */
167 widest_int mask;
170 /* Array of propagated constant values. After propagation,
171 CONST_VAL[I].VALUE holds the constant value for SSA_NAME(I). If
172 the constant is held in an SSA name representing a memory store
173 (i.e., a VDEF), CONST_VAL[I].MEM_REF will contain the actual
174 memory reference used to store (i.e., the LHS of the assignment
175 doing the store). */
176 static ccp_prop_value_t *const_val;
177 static unsigned n_const_val;
179 static void canonicalize_value (ccp_prop_value_t *);
180 static bool ccp_fold_stmt (gimple_stmt_iterator *);
181 static void ccp_lattice_meet (ccp_prop_value_t *, ccp_prop_value_t *);
183 /* Dump constant propagation value VAL to file OUTF prefixed by PREFIX. */
185 static void
186 dump_lattice_value (FILE *outf, const char *prefix, ccp_prop_value_t val)
188 switch (val.lattice_val)
190 case UNINITIALIZED:
191 fprintf (outf, "%sUNINITIALIZED", prefix);
192 break;
193 case UNDEFINED:
194 fprintf (outf, "%sUNDEFINED", prefix);
195 break;
196 case VARYING:
197 fprintf (outf, "%sVARYING", prefix);
198 break;
199 case CONSTANT:
200 if (TREE_CODE (val.value) != INTEGER_CST
201 || val.mask == 0)
203 fprintf (outf, "%sCONSTANT ", prefix);
204 print_generic_expr (outf, val.value, dump_flags);
206 else
208 widest_int cval = wi::bit_and_not (wi::to_widest (val.value),
209 val.mask);
210 fprintf (outf, "%sCONSTANT ", prefix);
211 print_hex (cval, outf);
212 fprintf (outf, " (");
213 print_hex (val.mask, outf);
214 fprintf (outf, ")");
216 break;
217 default:
218 gcc_unreachable ();
223 /* Print lattice value VAL to stderr. */
225 void debug_lattice_value (ccp_prop_value_t val);
227 DEBUG_FUNCTION void
228 debug_lattice_value (ccp_prop_value_t val)
230 dump_lattice_value (stderr, "", val);
231 fprintf (stderr, "\n");
234 /* Extend NONZERO_BITS to a full mask, based on sgn. */
236 static widest_int
237 extend_mask (const wide_int &nonzero_bits, signop sgn)
239 return widest_int::from (nonzero_bits, sgn);
242 /* Compute a default value for variable VAR and store it in the
243 CONST_VAL array. The following rules are used to get default
244 values:
246 1- Global and static variables that are declared constant are
247 considered CONSTANT.
249 2- Any other value is considered UNDEFINED. This is useful when
250 considering PHI nodes. PHI arguments that are undefined do not
251 change the constant value of the PHI node, which allows for more
252 constants to be propagated.
254 3- Variables defined by statements other than assignments and PHI
255 nodes are considered VARYING.
257 4- Initial values of variables that are not GIMPLE registers are
258 considered VARYING. */
260 static ccp_prop_value_t
261 get_default_value (tree var)
263 ccp_prop_value_t val = { UNINITIALIZED, NULL_TREE, 0 };
264 gimple *stmt;
266 stmt = SSA_NAME_DEF_STMT (var);
268 if (gimple_nop_p (stmt))
270 /* Variables defined by an empty statement are those used
271 before being initialized. If VAR is a local variable, we
272 can assume initially that it is UNDEFINED, otherwise we must
273 consider it VARYING. */
274 if (!virtual_operand_p (var)
275 && SSA_NAME_VAR (var)
276 && TREE_CODE (SSA_NAME_VAR (var)) == VAR_DECL)
277 val.lattice_val = UNDEFINED;
278 else
280 val.lattice_val = VARYING;
281 val.mask = -1;
282 if (flag_tree_bit_ccp)
284 wide_int nonzero_bits = get_nonzero_bits (var);
285 if (nonzero_bits != -1)
287 val.lattice_val = CONSTANT;
288 val.value = build_zero_cst (TREE_TYPE (var));
289 val.mask = extend_mask (nonzero_bits, TYPE_SIGN (TREE_TYPE (var)));
294 else if (is_gimple_assign (stmt))
296 tree cst;
297 if (gimple_assign_single_p (stmt)
298 && DECL_P (gimple_assign_rhs1 (stmt))
299 && (cst = get_symbol_constant_value (gimple_assign_rhs1 (stmt))))
301 val.lattice_val = CONSTANT;
302 val.value = cst;
304 else
306 /* Any other variable defined by an assignment is considered
307 UNDEFINED. */
308 val.lattice_val = UNDEFINED;
311 else if ((is_gimple_call (stmt)
312 && gimple_call_lhs (stmt) != NULL_TREE)
313 || gimple_code (stmt) == GIMPLE_PHI)
315 /* A variable defined by a call or a PHI node is considered
316 UNDEFINED. */
317 val.lattice_val = UNDEFINED;
319 else
321 /* Otherwise, VAR will never take on a constant value. */
322 val.lattice_val = VARYING;
323 val.mask = -1;
326 return val;
330 /* Get the constant value associated with variable VAR. */
332 static inline ccp_prop_value_t *
333 get_value (tree var)
335 ccp_prop_value_t *val;
337 if (const_val == NULL
338 || SSA_NAME_VERSION (var) >= n_const_val)
339 return NULL;
341 val = &const_val[SSA_NAME_VERSION (var)];
342 if (val->lattice_val == UNINITIALIZED)
343 *val = get_default_value (var);
345 canonicalize_value (val);
347 return val;
350 /* Return the constant tree value associated with VAR. */
352 static inline tree
353 get_constant_value (tree var)
355 ccp_prop_value_t *val;
356 if (TREE_CODE (var) != SSA_NAME)
358 if (is_gimple_min_invariant (var))
359 return var;
360 return NULL_TREE;
362 val = get_value (var);
363 if (val
364 && val->lattice_val == CONSTANT
365 && (TREE_CODE (val->value) != INTEGER_CST
366 || val->mask == 0))
367 return val->value;
368 return NULL_TREE;
371 /* Sets the value associated with VAR to VARYING. */
373 static inline void
374 set_value_varying (tree var)
376 ccp_prop_value_t *val = &const_val[SSA_NAME_VERSION (var)];
378 val->lattice_val = VARYING;
379 val->value = NULL_TREE;
380 val->mask = -1;
383 /* For integer constants, make sure to drop TREE_OVERFLOW. */
385 static void
386 canonicalize_value (ccp_prop_value_t *val)
388 if (val->lattice_val != CONSTANT)
389 return;
391 if (TREE_OVERFLOW_P (val->value))
392 val->value = drop_tree_overflow (val->value);
395 /* Return whether the lattice transition is valid. */
397 static bool
398 valid_lattice_transition (ccp_prop_value_t old_val, ccp_prop_value_t new_val)
400 /* Lattice transitions must always be monotonically increasing in
401 value. */
402 if (old_val.lattice_val < new_val.lattice_val)
403 return true;
405 if (old_val.lattice_val != new_val.lattice_val)
406 return false;
408 if (!old_val.value && !new_val.value)
409 return true;
411 /* Now both lattice values are CONSTANT. */
413 /* Allow arbitrary copy changes as we might look through PHI <a_1, ...>
414 when only a single copy edge is executable. */
415 if (TREE_CODE (old_val.value) == SSA_NAME
416 && TREE_CODE (new_val.value) == SSA_NAME)
417 return true;
419 /* Allow transitioning from a constant to a copy. */
420 if (is_gimple_min_invariant (old_val.value)
421 && TREE_CODE (new_val.value) == SSA_NAME)
422 return true;
424 /* Allow transitioning from PHI <&x, not executable> == &x
425 to PHI <&x, &y> == common alignment. */
426 if (TREE_CODE (old_val.value) != INTEGER_CST
427 && TREE_CODE (new_val.value) == INTEGER_CST)
428 return true;
430 /* Bit-lattices have to agree in the still valid bits. */
431 if (TREE_CODE (old_val.value) == INTEGER_CST
432 && TREE_CODE (new_val.value) == INTEGER_CST)
433 return (wi::bit_and_not (wi::to_widest (old_val.value), new_val.mask)
434 == wi::bit_and_not (wi::to_widest (new_val.value), new_val.mask));
436 /* Otherwise constant values have to agree. */
437 if (operand_equal_p (old_val.value, new_val.value, 0))
438 return true;
440 /* At least the kinds and types should agree now. */
441 if (TREE_CODE (old_val.value) != TREE_CODE (new_val.value)
442 || !types_compatible_p (TREE_TYPE (old_val.value),
443 TREE_TYPE (new_val.value)))
444 return false;
446 /* For floats and !HONOR_NANS allow transitions from (partial) NaN
447 to non-NaN. */
448 tree type = TREE_TYPE (new_val.value);
449 if (SCALAR_FLOAT_TYPE_P (type)
450 && !HONOR_NANS (type))
452 if (REAL_VALUE_ISNAN (TREE_REAL_CST (old_val.value)))
453 return true;
455 else if (VECTOR_FLOAT_TYPE_P (type)
456 && !HONOR_NANS (type))
458 for (unsigned i = 0; i < VECTOR_CST_NELTS (old_val.value); ++i)
459 if (!REAL_VALUE_ISNAN
460 (TREE_REAL_CST (VECTOR_CST_ELT (old_val.value, i)))
461 && !operand_equal_p (VECTOR_CST_ELT (old_val.value, i),
462 VECTOR_CST_ELT (new_val.value, i), 0))
463 return false;
464 return true;
466 else if (COMPLEX_FLOAT_TYPE_P (type)
467 && !HONOR_NANS (type))
469 if (!REAL_VALUE_ISNAN (TREE_REAL_CST (TREE_REALPART (old_val.value)))
470 && !operand_equal_p (TREE_REALPART (old_val.value),
471 TREE_REALPART (new_val.value), 0))
472 return false;
473 if (!REAL_VALUE_ISNAN (TREE_REAL_CST (TREE_IMAGPART (old_val.value)))
474 && !operand_equal_p (TREE_IMAGPART (old_val.value),
475 TREE_IMAGPART (new_val.value), 0))
476 return false;
477 return true;
479 return false;
482 /* Set the value for variable VAR to NEW_VAL. Return true if the new
483 value is different from VAR's previous value. */
485 static bool
486 set_lattice_value (tree var, ccp_prop_value_t *new_val)
488 /* We can deal with old UNINITIALIZED values just fine here. */
489 ccp_prop_value_t *old_val = &const_val[SSA_NAME_VERSION (var)];
491 canonicalize_value (new_val);
493 /* We have to be careful to not go up the bitwise lattice
494 represented by the mask. Instead of dropping to VARYING
495 use the meet operator to retain a conservative value.
496 Missed optimizations like PR65851 makes this necessary.
497 It also ensures we converge to a stable lattice solution. */
498 if (new_val->lattice_val == CONSTANT
499 && old_val->lattice_val == CONSTANT
500 && TREE_CODE (new_val->value) != SSA_NAME)
501 ccp_lattice_meet (new_val, old_val);
503 gcc_checking_assert (valid_lattice_transition (*old_val, *new_val));
505 /* If *OLD_VAL and NEW_VAL are the same, return false to inform the
506 caller that this was a non-transition. */
507 if (old_val->lattice_val != new_val->lattice_val
508 || (new_val->lattice_val == CONSTANT
509 && (TREE_CODE (new_val->value) != TREE_CODE (old_val->value)
510 || (TREE_CODE (new_val->value) == INTEGER_CST
511 && (new_val->mask != old_val->mask
512 || (wi::bit_and_not (wi::to_widest (old_val->value),
513 new_val->mask)
514 != wi::bit_and_not (wi::to_widest (new_val->value),
515 new_val->mask))))
516 || (TREE_CODE (new_val->value) != INTEGER_CST
517 && !operand_equal_p (new_val->value, old_val->value, 0)))))
519 /* ??? We would like to delay creation of INTEGER_CSTs from
520 partially constants here. */
522 if (dump_file && (dump_flags & TDF_DETAILS))
524 dump_lattice_value (dump_file, "Lattice value changed to ", *new_val);
525 fprintf (dump_file, ". Adding SSA edges to worklist.\n");
528 *old_val = *new_val;
530 gcc_assert (new_val->lattice_val != UNINITIALIZED);
531 return true;
534 return false;
537 static ccp_prop_value_t get_value_for_expr (tree, bool);
538 static ccp_prop_value_t bit_value_binop (enum tree_code, tree, tree, tree);
539 void bit_value_binop (enum tree_code, signop, int, widest_int *, widest_int *,
540 signop, int, const widest_int &, const widest_int &,
541 signop, int, const widest_int &, const widest_int &);
543 /* Return a widest_int that can be used for bitwise simplifications
544 from VAL. */
546 static widest_int
547 value_to_wide_int (ccp_prop_value_t val)
549 if (val.value
550 && TREE_CODE (val.value) == INTEGER_CST)
551 return wi::to_widest (val.value);
553 return 0;
556 /* Return the value for the address expression EXPR based on alignment
557 information. */
559 static ccp_prop_value_t
560 get_value_from_alignment (tree expr)
562 tree type = TREE_TYPE (expr);
563 ccp_prop_value_t val;
564 unsigned HOST_WIDE_INT bitpos;
565 unsigned int align;
567 gcc_assert (TREE_CODE (expr) == ADDR_EXPR);
569 get_pointer_alignment_1 (expr, &align, &bitpos);
570 val.mask = (POINTER_TYPE_P (type) || TYPE_UNSIGNED (type)
571 ? wi::mask <widest_int> (TYPE_PRECISION (type), false)
572 : -1).and_not (align / BITS_PER_UNIT - 1);
573 val.lattice_val
574 = wi::sext (val.mask, TYPE_PRECISION (type)) == -1 ? VARYING : CONSTANT;
575 if (val.lattice_val == CONSTANT)
576 val.value = build_int_cstu (type, bitpos / BITS_PER_UNIT);
577 else
578 val.value = NULL_TREE;
580 return val;
583 /* Return the value for the tree operand EXPR. If FOR_BITS_P is true
584 return constant bits extracted from alignment information for
585 invariant addresses. */
587 static ccp_prop_value_t
588 get_value_for_expr (tree expr, bool for_bits_p)
590 ccp_prop_value_t val;
592 if (TREE_CODE (expr) == SSA_NAME)
594 val = *get_value (expr);
595 if (for_bits_p
596 && val.lattice_val == CONSTANT
597 && TREE_CODE (val.value) == ADDR_EXPR)
598 val = get_value_from_alignment (val.value);
599 /* Fall back to a copy value. */
600 if (!for_bits_p
601 && val.lattice_val == VARYING
602 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (expr))
604 val.lattice_val = CONSTANT;
605 val.value = expr;
606 val.mask = -1;
609 else if (is_gimple_min_invariant (expr)
610 && (!for_bits_p || TREE_CODE (expr) != ADDR_EXPR))
612 val.lattice_val = CONSTANT;
613 val.value = expr;
614 val.mask = 0;
615 canonicalize_value (&val);
617 else if (TREE_CODE (expr) == ADDR_EXPR)
618 val = get_value_from_alignment (expr);
619 else
621 val.lattice_val = VARYING;
622 val.mask = -1;
623 val.value = NULL_TREE;
626 if (val.lattice_val == VARYING
627 && TYPE_UNSIGNED (TREE_TYPE (expr)))
628 val.mask = wi::zext (val.mask, TYPE_PRECISION (TREE_TYPE (expr)));
630 return val;
633 /* Return the likely CCP lattice value for STMT.
635 If STMT has no operands, then return CONSTANT.
637 Else if undefinedness of operands of STMT cause its value to be
638 undefined, then return UNDEFINED.
640 Else if any operands of STMT are constants, then return CONSTANT.
642 Else return VARYING. */
644 static ccp_lattice_t
645 likely_value (gimple *stmt)
647 bool has_constant_operand, has_undefined_operand, all_undefined_operands;
648 bool has_nsa_operand;
649 tree use;
650 ssa_op_iter iter;
651 unsigned i;
653 enum gimple_code code = gimple_code (stmt);
655 /* This function appears to be called only for assignments, calls,
656 conditionals, and switches, due to the logic in visit_stmt. */
657 gcc_assert (code == GIMPLE_ASSIGN
658 || code == GIMPLE_CALL
659 || code == GIMPLE_COND
660 || code == GIMPLE_SWITCH);
662 /* If the statement has volatile operands, it won't fold to a
663 constant value. */
664 if (gimple_has_volatile_ops (stmt))
665 return VARYING;
667 /* Arrive here for more complex cases. */
668 has_constant_operand = false;
669 has_undefined_operand = false;
670 all_undefined_operands = true;
671 has_nsa_operand = false;
672 FOR_EACH_SSA_TREE_OPERAND (use, stmt, iter, SSA_OP_USE)
674 ccp_prop_value_t *val = get_value (use);
676 if (val->lattice_val == UNDEFINED)
677 has_undefined_operand = true;
678 else
679 all_undefined_operands = false;
681 if (val->lattice_val == CONSTANT)
682 has_constant_operand = true;
684 if (SSA_NAME_IS_DEFAULT_DEF (use)
685 || !prop_simulate_again_p (SSA_NAME_DEF_STMT (use)))
686 has_nsa_operand = true;
689 /* There may be constants in regular rhs operands. For calls we
690 have to ignore lhs, fndecl and static chain, otherwise only
691 the lhs. */
692 for (i = (is_gimple_call (stmt) ? 2 : 0) + gimple_has_lhs (stmt);
693 i < gimple_num_ops (stmt); ++i)
695 tree op = gimple_op (stmt, i);
696 if (!op || TREE_CODE (op) == SSA_NAME)
697 continue;
698 if (is_gimple_min_invariant (op))
699 has_constant_operand = true;
702 if (has_constant_operand)
703 all_undefined_operands = false;
705 if (has_undefined_operand
706 && code == GIMPLE_CALL
707 && gimple_call_internal_p (stmt))
708 switch (gimple_call_internal_fn (stmt))
710 /* These 3 builtins use the first argument just as a magic
711 way how to find out a decl uid. */
712 case IFN_GOMP_SIMD_LANE:
713 case IFN_GOMP_SIMD_VF:
714 case IFN_GOMP_SIMD_LAST_LANE:
715 has_undefined_operand = false;
716 break;
717 default:
718 break;
721 /* If the operation combines operands like COMPLEX_EXPR make sure to
722 not mark the result UNDEFINED if only one part of the result is
723 undefined. */
724 if (has_undefined_operand && all_undefined_operands)
725 return UNDEFINED;
726 else if (code == GIMPLE_ASSIGN && has_undefined_operand)
728 switch (gimple_assign_rhs_code (stmt))
730 /* Unary operators are handled with all_undefined_operands. */
731 case PLUS_EXPR:
732 case MINUS_EXPR:
733 case POINTER_PLUS_EXPR:
734 /* Not MIN_EXPR, MAX_EXPR. One VARYING operand may be selected.
735 Not bitwise operators, one VARYING operand may specify the
736 result completely. Not logical operators for the same reason.
737 Not COMPLEX_EXPR as one VARYING operand makes the result partly
738 not UNDEFINED. Not *DIV_EXPR, comparisons and shifts because
739 the undefined operand may be promoted. */
740 return UNDEFINED;
742 case ADDR_EXPR:
743 /* If any part of an address is UNDEFINED, like the index
744 of an ARRAY_EXPR, then treat the result as UNDEFINED. */
745 return UNDEFINED;
747 default:
751 /* If there was an UNDEFINED operand but the result may be not UNDEFINED
752 fall back to CONSTANT. During iteration UNDEFINED may still drop
753 to CONSTANT. */
754 if (has_undefined_operand)
755 return CONSTANT;
757 /* We do not consider virtual operands here -- load from read-only
758 memory may have only VARYING virtual operands, but still be
759 constant. Also we can combine the stmt with definitions from
760 operands whose definitions are not simulated again. */
761 if (has_constant_operand
762 || has_nsa_operand
763 || gimple_references_memory_p (stmt))
764 return CONSTANT;
766 return VARYING;
769 /* Returns true if STMT cannot be constant. */
771 static bool
772 surely_varying_stmt_p (gimple *stmt)
774 /* If the statement has operands that we cannot handle, it cannot be
775 constant. */
776 if (gimple_has_volatile_ops (stmt))
777 return true;
779 /* If it is a call and does not return a value or is not a
780 builtin and not an indirect call or a call to function with
781 assume_aligned/alloc_align attribute, it is varying. */
782 if (is_gimple_call (stmt))
784 tree fndecl, fntype = gimple_call_fntype (stmt);
785 if (!gimple_call_lhs (stmt)
786 || ((fndecl = gimple_call_fndecl (stmt)) != NULL_TREE
787 && !DECL_BUILT_IN (fndecl)
788 && !lookup_attribute ("assume_aligned",
789 TYPE_ATTRIBUTES (fntype))
790 && !lookup_attribute ("alloc_align",
791 TYPE_ATTRIBUTES (fntype))))
792 return true;
795 /* Any other store operation is not interesting. */
796 else if (gimple_vdef (stmt))
797 return true;
799 /* Anything other than assignments and conditional jumps are not
800 interesting for CCP. */
801 if (gimple_code (stmt) != GIMPLE_ASSIGN
802 && gimple_code (stmt) != GIMPLE_COND
803 && gimple_code (stmt) != GIMPLE_SWITCH
804 && gimple_code (stmt) != GIMPLE_CALL)
805 return true;
807 return false;
810 /* Initialize local data structures for CCP. */
812 static void
813 ccp_initialize (void)
815 basic_block bb;
817 n_const_val = num_ssa_names;
818 const_val = XCNEWVEC (ccp_prop_value_t, n_const_val);
820 /* Initialize simulation flags for PHI nodes and statements. */
821 FOR_EACH_BB_FN (bb, cfun)
823 gimple_stmt_iterator i;
825 for (i = gsi_start_bb (bb); !gsi_end_p (i); gsi_next (&i))
827 gimple *stmt = gsi_stmt (i);
828 bool is_varying;
830 /* If the statement is a control insn, then we do not
831 want to avoid simulating the statement once. Failure
832 to do so means that those edges will never get added. */
833 if (stmt_ends_bb_p (stmt))
834 is_varying = false;
835 else
836 is_varying = surely_varying_stmt_p (stmt);
838 if (is_varying)
840 tree def;
841 ssa_op_iter iter;
843 /* If the statement will not produce a constant, mark
844 all its outputs VARYING. */
845 FOR_EACH_SSA_TREE_OPERAND (def, stmt, iter, SSA_OP_ALL_DEFS)
846 set_value_varying (def);
848 prop_set_simulate_again (stmt, !is_varying);
852 /* Now process PHI nodes. We never clear the simulate_again flag on
853 phi nodes, since we do not know which edges are executable yet,
854 except for phi nodes for virtual operands when we do not do store ccp. */
855 FOR_EACH_BB_FN (bb, cfun)
857 gphi_iterator i;
859 for (i = gsi_start_phis (bb); !gsi_end_p (i); gsi_next (&i))
861 gphi *phi = i.phi ();
863 if (virtual_operand_p (gimple_phi_result (phi)))
864 prop_set_simulate_again (phi, false);
865 else
866 prop_set_simulate_again (phi, true);
871 /* Debug count support. Reset the values of ssa names
872 VARYING when the total number ssa names analyzed is
873 beyond the debug count specified. */
875 static void
876 do_dbg_cnt (void)
878 unsigned i;
879 for (i = 0; i < num_ssa_names; i++)
881 if (!dbg_cnt (ccp))
883 const_val[i].lattice_val = VARYING;
884 const_val[i].mask = -1;
885 const_val[i].value = NULL_TREE;
891 /* Do final substitution of propagated values, cleanup the flowgraph and
892 free allocated storage. If NONZERO_P, record nonzero bits.
894 Return TRUE when something was optimized. */
896 static bool
897 ccp_finalize (bool nonzero_p)
899 bool something_changed;
900 unsigned i;
902 do_dbg_cnt ();
904 /* Derive alignment and misalignment information from partially
905 constant pointers in the lattice or nonzero bits from partially
906 constant integers. */
907 for (i = 1; i < num_ssa_names; ++i)
909 tree name = ssa_name (i);
910 ccp_prop_value_t *val;
911 unsigned int tem, align;
913 if (!name
914 || (!POINTER_TYPE_P (TREE_TYPE (name))
915 && (!INTEGRAL_TYPE_P (TREE_TYPE (name))
916 /* Don't record nonzero bits before IPA to avoid
917 using too much memory. */
918 || !nonzero_p)))
919 continue;
921 val = get_value (name);
922 if (val->lattice_val != CONSTANT
923 || TREE_CODE (val->value) != INTEGER_CST
924 || val->mask == 0)
925 continue;
927 if (POINTER_TYPE_P (TREE_TYPE (name)))
929 /* Trailing mask bits specify the alignment, trailing value
930 bits the misalignment. */
931 tem = val->mask.to_uhwi ();
932 align = (tem & -tem);
933 if (align > 1)
934 set_ptr_info_alignment (get_ptr_info (name), align,
935 (TREE_INT_CST_LOW (val->value)
936 & (align - 1)));
938 else
940 unsigned int precision = TYPE_PRECISION (TREE_TYPE (val->value));
941 wide_int nonzero_bits = wide_int::from (val->mask, precision,
942 UNSIGNED) | val->value;
943 nonzero_bits &= get_nonzero_bits (name);
944 set_nonzero_bits (name, nonzero_bits);
948 /* Perform substitutions based on the known constant values. */
949 something_changed = substitute_and_fold (get_constant_value,
950 ccp_fold_stmt, true);
952 free (const_val);
953 const_val = NULL;
954 return something_changed;;
958 /* Compute the meet operator between *VAL1 and *VAL2. Store the result
959 in VAL1.
961 any M UNDEFINED = any
962 any M VARYING = VARYING
963 Ci M Cj = Ci if (i == j)
964 Ci M Cj = VARYING if (i != j)
967 static void
968 ccp_lattice_meet (ccp_prop_value_t *val1, ccp_prop_value_t *val2)
970 if (val1->lattice_val == UNDEFINED
971 /* For UNDEFINED M SSA we can't always SSA because its definition
972 may not dominate the PHI node. Doing optimistic copy propagation
973 also causes a lot of gcc.dg/uninit-pred*.c FAILs. */
974 && (val2->lattice_val != CONSTANT
975 || TREE_CODE (val2->value) != SSA_NAME))
977 /* UNDEFINED M any = any */
978 *val1 = *val2;
980 else if (val2->lattice_val == UNDEFINED
981 /* See above. */
982 && (val1->lattice_val != CONSTANT
983 || TREE_CODE (val1->value) != SSA_NAME))
985 /* any M UNDEFINED = any
986 Nothing to do. VAL1 already contains the value we want. */
989 else if (val1->lattice_val == VARYING
990 || val2->lattice_val == VARYING)
992 /* any M VARYING = VARYING. */
993 val1->lattice_val = VARYING;
994 val1->mask = -1;
995 val1->value = NULL_TREE;
997 else if (val1->lattice_val == CONSTANT
998 && val2->lattice_val == CONSTANT
999 && TREE_CODE (val1->value) == INTEGER_CST
1000 && TREE_CODE (val2->value) == INTEGER_CST)
1002 /* Ci M Cj = Ci if (i == j)
1003 Ci M Cj = VARYING if (i != j)
1005 For INTEGER_CSTs mask unequal bits. If no equal bits remain,
1006 drop to varying. */
1007 val1->mask = (val1->mask | val2->mask
1008 | (wi::to_widest (val1->value)
1009 ^ wi::to_widest (val2->value)));
1010 if (wi::sext (val1->mask, TYPE_PRECISION (TREE_TYPE (val1->value))) == -1)
1012 val1->lattice_val = VARYING;
1013 val1->value = NULL_TREE;
1016 else if (val1->lattice_val == CONSTANT
1017 && val2->lattice_val == CONSTANT
1018 && operand_equal_p (val1->value, val2->value, 0))
1020 /* Ci M Cj = Ci if (i == j)
1021 Ci M Cj = VARYING if (i != j)
1023 VAL1 already contains the value we want for equivalent values. */
1025 else if (val1->lattice_val == CONSTANT
1026 && val2->lattice_val == CONSTANT
1027 && (TREE_CODE (val1->value) == ADDR_EXPR
1028 || TREE_CODE (val2->value) == ADDR_EXPR))
1030 /* When not equal addresses are involved try meeting for
1031 alignment. */
1032 ccp_prop_value_t tem = *val2;
1033 if (TREE_CODE (val1->value) == ADDR_EXPR)
1034 *val1 = get_value_for_expr (val1->value, true);
1035 if (TREE_CODE (val2->value) == ADDR_EXPR)
1036 tem = get_value_for_expr (val2->value, true);
1037 ccp_lattice_meet (val1, &tem);
1039 else
1041 /* Any other combination is VARYING. */
1042 val1->lattice_val = VARYING;
1043 val1->mask = -1;
1044 val1->value = NULL_TREE;
1049 /* Loop through the PHI_NODE's parameters for BLOCK and compare their
1050 lattice values to determine PHI_NODE's lattice value. The value of a
1051 PHI node is determined calling ccp_lattice_meet with all the arguments
1052 of the PHI node that are incoming via executable edges. */
1054 static enum ssa_prop_result
1055 ccp_visit_phi_node (gphi *phi)
1057 unsigned i;
1058 ccp_prop_value_t new_val;
1060 if (dump_file && (dump_flags & TDF_DETAILS))
1062 fprintf (dump_file, "\nVisiting PHI node: ");
1063 print_gimple_stmt (dump_file, phi, 0, dump_flags);
1066 new_val.lattice_val = UNDEFINED;
1067 new_val.value = NULL_TREE;
1068 new_val.mask = 0;
1070 bool first = true;
1071 bool non_exec_edge = false;
1072 for (i = 0; i < gimple_phi_num_args (phi); i++)
1074 /* Compute the meet operator over all the PHI arguments flowing
1075 through executable edges. */
1076 edge e = gimple_phi_arg_edge (phi, i);
1078 if (dump_file && (dump_flags & TDF_DETAILS))
1080 fprintf (dump_file,
1081 "\n Argument #%d (%d -> %d %sexecutable)\n",
1082 i, e->src->index, e->dest->index,
1083 (e->flags & EDGE_EXECUTABLE) ? "" : "not ");
1086 /* If the incoming edge is executable, Compute the meet operator for
1087 the existing value of the PHI node and the current PHI argument. */
1088 if (e->flags & EDGE_EXECUTABLE)
1090 tree arg = gimple_phi_arg (phi, i)->def;
1091 ccp_prop_value_t arg_val = get_value_for_expr (arg, false);
1093 if (first)
1095 new_val = arg_val;
1096 first = false;
1098 else
1099 ccp_lattice_meet (&new_val, &arg_val);
1101 if (dump_file && (dump_flags & TDF_DETAILS))
1103 fprintf (dump_file, "\t");
1104 print_generic_expr (dump_file, arg, dump_flags);
1105 dump_lattice_value (dump_file, "\tValue: ", arg_val);
1106 fprintf (dump_file, "\n");
1109 if (new_val.lattice_val == VARYING)
1110 break;
1112 else
1113 non_exec_edge = true;
1116 /* In case there were non-executable edges and the value is a copy
1117 make sure its definition dominates the PHI node. */
1118 if (non_exec_edge
1119 && new_val.lattice_val == CONSTANT
1120 && TREE_CODE (new_val.value) == SSA_NAME
1121 && ! SSA_NAME_IS_DEFAULT_DEF (new_val.value)
1122 && ! dominated_by_p (CDI_DOMINATORS, gimple_bb (phi),
1123 gimple_bb (SSA_NAME_DEF_STMT (new_val.value))))
1125 new_val.lattice_val = VARYING;
1126 new_val.value = NULL_TREE;
1127 new_val.mask = -1;
1130 if (dump_file && (dump_flags & TDF_DETAILS))
1132 dump_lattice_value (dump_file, "\n PHI node value: ", new_val);
1133 fprintf (dump_file, "\n\n");
1136 /* Make the transition to the new value. */
1137 if (set_lattice_value (gimple_phi_result (phi), &new_val))
1139 if (new_val.lattice_val == VARYING)
1140 return SSA_PROP_VARYING;
1141 else
1142 return SSA_PROP_INTERESTING;
1144 else
1145 return SSA_PROP_NOT_INTERESTING;
1148 /* Return the constant value for OP or OP otherwise. */
1150 static tree
1151 valueize_op (tree op)
1153 if (TREE_CODE (op) == SSA_NAME)
1155 tree tem = get_constant_value (op);
1156 if (tem)
1157 return tem;
1159 return op;
1162 /* Return the constant value for OP, but signal to not follow SSA
1163 edges if the definition may be simulated again. */
1165 static tree
1166 valueize_op_1 (tree op)
1168 if (TREE_CODE (op) == SSA_NAME)
1170 /* If the definition may be simulated again we cannot follow
1171 this SSA edge as the SSA propagator does not necessarily
1172 re-visit the use. */
1173 gimple *def_stmt = SSA_NAME_DEF_STMT (op);
1174 if (!gimple_nop_p (def_stmt)
1175 && prop_simulate_again_p (def_stmt))
1176 return NULL_TREE;
1177 tree tem = get_constant_value (op);
1178 if (tem)
1179 return tem;
1181 return op;
1184 /* CCP specific front-end to the non-destructive constant folding
1185 routines.
1187 Attempt to simplify the RHS of STMT knowing that one or more
1188 operands are constants.
1190 If simplification is possible, return the simplified RHS,
1191 otherwise return the original RHS or NULL_TREE. */
1193 static tree
1194 ccp_fold (gimple *stmt)
1196 location_t loc = gimple_location (stmt);
1197 switch (gimple_code (stmt))
1199 case GIMPLE_COND:
1201 /* Handle comparison operators that can appear in GIMPLE form. */
1202 tree op0 = valueize_op (gimple_cond_lhs (stmt));
1203 tree op1 = valueize_op (gimple_cond_rhs (stmt));
1204 enum tree_code code = gimple_cond_code (stmt);
1205 return fold_binary_loc (loc, code, boolean_type_node, op0, op1);
1208 case GIMPLE_SWITCH:
1210 /* Return the constant switch index. */
1211 return valueize_op (gimple_switch_index (as_a <gswitch *> (stmt)));
1214 case GIMPLE_ASSIGN:
1215 case GIMPLE_CALL:
1216 return gimple_fold_stmt_to_constant_1 (stmt,
1217 valueize_op, valueize_op_1);
1219 default:
1220 gcc_unreachable ();
1224 /* Apply the operation CODE in type TYPE to the value, mask pair
1225 RVAL and RMASK representing a value of type RTYPE and set
1226 the value, mask pair *VAL and *MASK to the result. */
1228 void
1229 bit_value_unop (enum tree_code code, signop type_sgn, int type_precision,
1230 widest_int *val, widest_int *mask,
1231 signop rtype_sgn, int rtype_precision,
1232 const widest_int &rval, const widest_int &rmask)
1234 switch (code)
1236 case BIT_NOT_EXPR:
1237 *mask = rmask;
1238 *val = ~rval;
1239 break;
1241 case NEGATE_EXPR:
1243 widest_int temv, temm;
1244 /* Return ~rval + 1. */
1245 bit_value_unop (BIT_NOT_EXPR, type_sgn, type_precision, &temv, &temm,
1246 type_sgn, type_precision, rval, rmask);
1247 bit_value_binop (PLUS_EXPR, type_sgn, type_precision, val, mask,
1248 type_sgn, type_precision, temv, temm,
1249 type_sgn, type_precision, 1, 0);
1250 break;
1253 CASE_CONVERT:
1255 /* First extend mask and value according to the original type. */
1256 *mask = wi::ext (rmask, rtype_precision, rtype_sgn);
1257 *val = wi::ext (rval, rtype_precision, rtype_sgn);
1259 /* Then extend mask and value according to the target type. */
1260 *mask = wi::ext (*mask, type_precision, type_sgn);
1261 *val = wi::ext (*val, type_precision, type_sgn);
1262 break;
1265 default:
1266 *mask = -1;
1267 break;
1271 /* Apply the operation CODE in type TYPE to the value, mask pairs
1272 R1VAL, R1MASK and R2VAL, R2MASK representing a values of type R1TYPE
1273 and R2TYPE and set the value, mask pair *VAL and *MASK to the result. */
1275 void
1276 bit_value_binop (enum tree_code code, signop sgn, int width,
1277 widest_int *val, widest_int *mask,
1278 signop r1type_sgn, int r1type_precision,
1279 const widest_int &r1val, const widest_int &r1mask,
1280 signop r2type_sgn, int r2type_precision,
1281 const widest_int &r2val, const widest_int &r2mask)
1283 bool swap_p = false;
1285 /* Assume we'll get a constant result. Use an initial non varying
1286 value, we fall back to varying in the end if necessary. */
1287 *mask = -1;
1289 switch (code)
1291 case BIT_AND_EXPR:
1292 /* The mask is constant where there is a known not
1293 set bit, (m1 | m2) & ((v1 | m1) & (v2 | m2)) */
1294 *mask = (r1mask | r2mask) & (r1val | r1mask) & (r2val | r2mask);
1295 *val = r1val & r2val;
1296 break;
1298 case BIT_IOR_EXPR:
1299 /* The mask is constant where there is a known
1300 set bit, (m1 | m2) & ~((v1 & ~m1) | (v2 & ~m2)). */
1301 *mask = (r1mask | r2mask)
1302 .and_not (r1val.and_not (r1mask) | r2val.and_not (r2mask));
1303 *val = r1val | r2val;
1304 break;
1306 case BIT_XOR_EXPR:
1307 /* m1 | m2 */
1308 *mask = r1mask | r2mask;
1309 *val = r1val ^ r2val;
1310 break;
1312 case LROTATE_EXPR:
1313 case RROTATE_EXPR:
1314 if (r2mask == 0)
1316 widest_int shift = r2val;
1317 if (shift == 0)
1319 *mask = r1mask;
1320 *val = r1val;
1322 else
1324 if (wi::neg_p (shift))
1326 shift = -shift;
1327 if (code == RROTATE_EXPR)
1328 code = LROTATE_EXPR;
1329 else
1330 code = RROTATE_EXPR;
1332 if (code == RROTATE_EXPR)
1334 *mask = wi::rrotate (r1mask, shift, width);
1335 *val = wi::rrotate (r1val, shift, width);
1337 else
1339 *mask = wi::lrotate (r1mask, shift, width);
1340 *val = wi::lrotate (r1val, shift, width);
1344 break;
1346 case LSHIFT_EXPR:
1347 case RSHIFT_EXPR:
1348 /* ??? We can handle partially known shift counts if we know
1349 its sign. That way we can tell that (x << (y | 8)) & 255
1350 is zero. */
1351 if (r2mask == 0)
1353 widest_int shift = r2val;
1354 if (shift == 0)
1356 *mask = r1mask;
1357 *val = r1val;
1359 else
1361 if (wi::neg_p (shift))
1363 shift = -shift;
1364 if (code == RSHIFT_EXPR)
1365 code = LSHIFT_EXPR;
1366 else
1367 code = RSHIFT_EXPR;
1369 if (code == RSHIFT_EXPR)
1371 *mask = wi::rshift (wi::ext (r1mask, width, sgn), shift, sgn);
1372 *val = wi::rshift (wi::ext (r1val, width, sgn), shift, sgn);
1374 else
1376 *mask = wi::ext (r1mask << shift, width, sgn);
1377 *val = wi::ext (r1val << shift, width, sgn);
1381 break;
1383 case PLUS_EXPR:
1384 case POINTER_PLUS_EXPR:
1386 /* Do the addition with unknown bits set to zero, to give carry-ins of
1387 zero wherever possible. */
1388 widest_int lo = r1val.and_not (r1mask) + r2val.and_not (r2mask);
1389 lo = wi::ext (lo, width, sgn);
1390 /* Do the addition with unknown bits set to one, to give carry-ins of
1391 one wherever possible. */
1392 widest_int hi = (r1val | r1mask) + (r2val | r2mask);
1393 hi = wi::ext (hi, width, sgn);
1394 /* Each bit in the result is known if (a) the corresponding bits in
1395 both inputs are known, and (b) the carry-in to that bit position
1396 is known. We can check condition (b) by seeing if we got the same
1397 result with minimised carries as with maximised carries. */
1398 *mask = r1mask | r2mask | (lo ^ hi);
1399 *mask = wi::ext (*mask, width, sgn);
1400 /* It shouldn't matter whether we choose lo or hi here. */
1401 *val = lo;
1402 break;
1405 case MINUS_EXPR:
1407 widest_int temv, temm;
1408 bit_value_unop (NEGATE_EXPR, r2type_sgn, r2type_precision, &temv, &temm,
1409 r2type_sgn, r2type_precision, r2val, r2mask);
1410 bit_value_binop (PLUS_EXPR, sgn, width, val, mask,
1411 r1type_sgn, r1type_precision, r1val, r1mask,
1412 r2type_sgn, r2type_precision, temv, temm);
1413 break;
1416 case MULT_EXPR:
1418 /* Just track trailing zeros in both operands and transfer
1419 them to the other. */
1420 int r1tz = wi::ctz (r1val | r1mask);
1421 int r2tz = wi::ctz (r2val | r2mask);
1422 if (r1tz + r2tz >= width)
1424 *mask = 0;
1425 *val = 0;
1427 else if (r1tz + r2tz > 0)
1429 *mask = wi::ext (wi::mask <widest_int> (r1tz + r2tz, true),
1430 width, sgn);
1431 *val = 0;
1433 break;
1436 case EQ_EXPR:
1437 case NE_EXPR:
1439 widest_int m = r1mask | r2mask;
1440 if (r1val.and_not (m) != r2val.and_not (m))
1442 *mask = 0;
1443 *val = ((code == EQ_EXPR) ? 0 : 1);
1445 else
1447 /* We know the result of a comparison is always one or zero. */
1448 *mask = 1;
1449 *val = 0;
1451 break;
1454 case GE_EXPR:
1455 case GT_EXPR:
1456 swap_p = true;
1457 code = swap_tree_comparison (code);
1458 /* Fall through. */
1459 case LT_EXPR:
1460 case LE_EXPR:
1462 int minmax, maxmin;
1464 const widest_int &o1val = swap_p ? r2val : r1val;
1465 const widest_int &o1mask = swap_p ? r2mask : r1mask;
1466 const widest_int &o2val = swap_p ? r1val : r2val;
1467 const widest_int &o2mask = swap_p ? r1mask : r2mask;
1469 /* If the most significant bits are not known we know nothing. */
1470 if (wi::neg_p (o1mask) || wi::neg_p (o2mask))
1471 break;
1473 /* For comparisons the signedness is in the comparison operands. */
1474 sgn = r1type_sgn;
1476 /* If we know the most significant bits we know the values
1477 value ranges by means of treating varying bits as zero
1478 or one. Do a cross comparison of the max/min pairs. */
1479 maxmin = wi::cmp (o1val | o1mask, o2val.and_not (o2mask), sgn);
1480 minmax = wi::cmp (o1val.and_not (o1mask), o2val | o2mask, sgn);
1481 if (maxmin < 0) /* o1 is less than o2. */
1483 *mask = 0;
1484 *val = 1;
1486 else if (minmax > 0) /* o1 is not less or equal to o2. */
1488 *mask = 0;
1489 *val = 0;
1491 else if (maxmin == minmax) /* o1 and o2 are equal. */
1493 /* This probably should never happen as we'd have
1494 folded the thing during fully constant value folding. */
1495 *mask = 0;
1496 *val = (code == LE_EXPR ? 1 : 0);
1498 else
1500 /* We know the result of a comparison is always one or zero. */
1501 *mask = 1;
1502 *val = 0;
1504 break;
1507 default:;
1511 /* Return the propagation value when applying the operation CODE to
1512 the value RHS yielding type TYPE. */
1514 static ccp_prop_value_t
1515 bit_value_unop (enum tree_code code, tree type, tree rhs)
1517 ccp_prop_value_t rval = get_value_for_expr (rhs, true);
1518 widest_int value, mask;
1519 ccp_prop_value_t val;
1521 if (rval.lattice_val == UNDEFINED)
1522 return rval;
1524 gcc_assert ((rval.lattice_val == CONSTANT
1525 && TREE_CODE (rval.value) == INTEGER_CST)
1526 || wi::sext (rval.mask, TYPE_PRECISION (TREE_TYPE (rhs))) == -1);
1527 bit_value_unop (code, TYPE_SIGN (type), TYPE_PRECISION (type), &value, &mask,
1528 TYPE_SIGN (TREE_TYPE (rhs)), TYPE_PRECISION (TREE_TYPE (rhs)),
1529 value_to_wide_int (rval), rval.mask);
1530 if (wi::sext (mask, TYPE_PRECISION (type)) != -1)
1532 val.lattice_val = CONSTANT;
1533 val.mask = mask;
1534 /* ??? Delay building trees here. */
1535 val.value = wide_int_to_tree (type, value);
1537 else
1539 val.lattice_val = VARYING;
1540 val.value = NULL_TREE;
1541 val.mask = -1;
1543 return val;
1546 /* Return the propagation value when applying the operation CODE to
1547 the values RHS1 and RHS2 yielding type TYPE. */
1549 static ccp_prop_value_t
1550 bit_value_binop (enum tree_code code, tree type, tree rhs1, tree rhs2)
1552 ccp_prop_value_t r1val = get_value_for_expr (rhs1, true);
1553 ccp_prop_value_t r2val = get_value_for_expr (rhs2, true);
1554 widest_int value, mask;
1555 ccp_prop_value_t val;
1557 if (r1val.lattice_val == UNDEFINED
1558 || r2val.lattice_val == UNDEFINED)
1560 val.lattice_val = VARYING;
1561 val.value = NULL_TREE;
1562 val.mask = -1;
1563 return val;
1566 gcc_assert ((r1val.lattice_val == CONSTANT
1567 && TREE_CODE (r1val.value) == INTEGER_CST)
1568 || wi::sext (r1val.mask,
1569 TYPE_PRECISION (TREE_TYPE (rhs1))) == -1);
1570 gcc_assert ((r2val.lattice_val == CONSTANT
1571 && TREE_CODE (r2val.value) == INTEGER_CST)
1572 || wi::sext (r2val.mask,
1573 TYPE_PRECISION (TREE_TYPE (rhs2))) == -1);
1574 bit_value_binop (code, TYPE_SIGN (type), TYPE_PRECISION (type), &value, &mask,
1575 TYPE_SIGN (TREE_TYPE (rhs1)), TYPE_PRECISION (TREE_TYPE (rhs1)),
1576 value_to_wide_int (r1val), r1val.mask,
1577 TYPE_SIGN (TREE_TYPE (rhs2)), TYPE_PRECISION (TREE_TYPE (rhs2)),
1578 value_to_wide_int (r2val), r2val.mask);
1580 if (wi::sext (mask, TYPE_PRECISION (type)) != -1)
1582 val.lattice_val = CONSTANT;
1583 val.mask = mask;
1584 /* ??? Delay building trees here. */
1585 val.value = wide_int_to_tree (type, value);
1587 else
1589 val.lattice_val = VARYING;
1590 val.value = NULL_TREE;
1591 val.mask = -1;
1593 return val;
1596 /* Return the propagation value for __builtin_assume_aligned
1597 and functions with assume_aligned or alloc_aligned attribute.
1598 For __builtin_assume_aligned, ATTR is NULL_TREE,
1599 for assume_aligned attribute ATTR is non-NULL and ALLOC_ALIGNED
1600 is false, for alloc_aligned attribute ATTR is non-NULL and
1601 ALLOC_ALIGNED is true. */
1603 static ccp_prop_value_t
1604 bit_value_assume_aligned (gimple *stmt, tree attr, ccp_prop_value_t ptrval,
1605 bool alloc_aligned)
1607 tree align, misalign = NULL_TREE, type;
1608 unsigned HOST_WIDE_INT aligni, misaligni = 0;
1609 ccp_prop_value_t alignval;
1610 widest_int value, mask;
1611 ccp_prop_value_t val;
1613 if (attr == NULL_TREE)
1615 tree ptr = gimple_call_arg (stmt, 0);
1616 type = TREE_TYPE (ptr);
1617 ptrval = get_value_for_expr (ptr, true);
1619 else
1621 tree lhs = gimple_call_lhs (stmt);
1622 type = TREE_TYPE (lhs);
1625 if (ptrval.lattice_val == UNDEFINED)
1626 return ptrval;
1627 gcc_assert ((ptrval.lattice_val == CONSTANT
1628 && TREE_CODE (ptrval.value) == INTEGER_CST)
1629 || wi::sext (ptrval.mask, TYPE_PRECISION (type)) == -1);
1630 if (attr == NULL_TREE)
1632 /* Get aligni and misaligni from __builtin_assume_aligned. */
1633 align = gimple_call_arg (stmt, 1);
1634 if (!tree_fits_uhwi_p (align))
1635 return ptrval;
1636 aligni = tree_to_uhwi (align);
1637 if (gimple_call_num_args (stmt) > 2)
1639 misalign = gimple_call_arg (stmt, 2);
1640 if (!tree_fits_uhwi_p (misalign))
1641 return ptrval;
1642 misaligni = tree_to_uhwi (misalign);
1645 else
1647 /* Get aligni and misaligni from assume_aligned or
1648 alloc_align attributes. */
1649 if (TREE_VALUE (attr) == NULL_TREE)
1650 return ptrval;
1651 attr = TREE_VALUE (attr);
1652 align = TREE_VALUE (attr);
1653 if (!tree_fits_uhwi_p (align))
1654 return ptrval;
1655 aligni = tree_to_uhwi (align);
1656 if (alloc_aligned)
1658 if (aligni == 0 || aligni > gimple_call_num_args (stmt))
1659 return ptrval;
1660 align = gimple_call_arg (stmt, aligni - 1);
1661 if (!tree_fits_uhwi_p (align))
1662 return ptrval;
1663 aligni = tree_to_uhwi (align);
1665 else if (TREE_CHAIN (attr) && TREE_VALUE (TREE_CHAIN (attr)))
1667 misalign = TREE_VALUE (TREE_CHAIN (attr));
1668 if (!tree_fits_uhwi_p (misalign))
1669 return ptrval;
1670 misaligni = tree_to_uhwi (misalign);
1673 if (aligni <= 1 || (aligni & (aligni - 1)) != 0 || misaligni >= aligni)
1674 return ptrval;
1676 align = build_int_cst_type (type, -aligni);
1677 alignval = get_value_for_expr (align, true);
1678 bit_value_binop (BIT_AND_EXPR, TYPE_SIGN (type), TYPE_PRECISION (type), &value, &mask,
1679 TYPE_SIGN (type), TYPE_PRECISION (type), value_to_wide_int (ptrval), ptrval.mask,
1680 TYPE_SIGN (type), TYPE_PRECISION (type), value_to_wide_int (alignval), alignval.mask);
1682 if (wi::sext (mask, TYPE_PRECISION (type)) != -1)
1684 val.lattice_val = CONSTANT;
1685 val.mask = mask;
1686 gcc_assert ((mask.to_uhwi () & (aligni - 1)) == 0);
1687 gcc_assert ((value.to_uhwi () & (aligni - 1)) == 0);
1688 value |= misaligni;
1689 /* ??? Delay building trees here. */
1690 val.value = wide_int_to_tree (type, value);
1692 else
1694 val.lattice_val = VARYING;
1695 val.value = NULL_TREE;
1696 val.mask = -1;
1698 return val;
1701 /* Evaluate statement STMT.
1702 Valid only for assignments, calls, conditionals, and switches. */
1704 static ccp_prop_value_t
1705 evaluate_stmt (gimple *stmt)
1707 ccp_prop_value_t val;
1708 tree simplified = NULL_TREE;
1709 ccp_lattice_t likelyvalue = likely_value (stmt);
1710 bool is_constant = false;
1711 unsigned int align;
1713 if (dump_file && (dump_flags & TDF_DETAILS))
1715 fprintf (dump_file, "which is likely ");
1716 switch (likelyvalue)
1718 case CONSTANT:
1719 fprintf (dump_file, "CONSTANT");
1720 break;
1721 case UNDEFINED:
1722 fprintf (dump_file, "UNDEFINED");
1723 break;
1724 case VARYING:
1725 fprintf (dump_file, "VARYING");
1726 break;
1727 default:;
1729 fprintf (dump_file, "\n");
1732 /* If the statement is likely to have a CONSTANT result, then try
1733 to fold the statement to determine the constant value. */
1734 /* FIXME. This is the only place that we call ccp_fold.
1735 Since likely_value never returns CONSTANT for calls, we will
1736 not attempt to fold them, including builtins that may profit. */
1737 if (likelyvalue == CONSTANT)
1739 fold_defer_overflow_warnings ();
1740 simplified = ccp_fold (stmt);
1741 if (simplified && TREE_CODE (simplified) == SSA_NAME)
1743 val = *get_value (simplified);
1744 if (val.lattice_val != VARYING)
1746 fold_undefer_overflow_warnings (true, stmt, 0);
1747 return val;
1750 is_constant = simplified && is_gimple_min_invariant (simplified);
1751 fold_undefer_overflow_warnings (is_constant, stmt, 0);
1752 if (is_constant)
1754 /* The statement produced a constant value. */
1755 val.lattice_val = CONSTANT;
1756 val.value = simplified;
1757 val.mask = 0;
1758 return val;
1761 /* If the statement is likely to have a VARYING result, then do not
1762 bother folding the statement. */
1763 else if (likelyvalue == VARYING)
1765 enum gimple_code code = gimple_code (stmt);
1766 if (code == GIMPLE_ASSIGN)
1768 enum tree_code subcode = gimple_assign_rhs_code (stmt);
1770 /* Other cases cannot satisfy is_gimple_min_invariant
1771 without folding. */
1772 if (get_gimple_rhs_class (subcode) == GIMPLE_SINGLE_RHS)
1773 simplified = gimple_assign_rhs1 (stmt);
1775 else if (code == GIMPLE_SWITCH)
1776 simplified = gimple_switch_index (as_a <gswitch *> (stmt));
1777 else
1778 /* These cannot satisfy is_gimple_min_invariant without folding. */
1779 gcc_assert (code == GIMPLE_CALL || code == GIMPLE_COND);
1780 is_constant = simplified && is_gimple_min_invariant (simplified);
1781 if (is_constant)
1783 /* The statement produced a constant value. */
1784 val.lattice_val = CONSTANT;
1785 val.value = simplified;
1786 val.mask = 0;
1789 /* If the statement result is likely UNDEFINED, make it so. */
1790 else if (likelyvalue == UNDEFINED)
1792 val.lattice_val = UNDEFINED;
1793 val.value = NULL_TREE;
1794 val.mask = 0;
1795 return val;
1798 /* Resort to simplification for bitwise tracking. */
1799 if (flag_tree_bit_ccp
1800 && (likelyvalue == CONSTANT || is_gimple_call (stmt)
1801 || (gimple_assign_single_p (stmt)
1802 && gimple_assign_rhs_code (stmt) == ADDR_EXPR))
1803 && !is_constant)
1805 enum gimple_code code = gimple_code (stmt);
1806 val.lattice_val = VARYING;
1807 val.value = NULL_TREE;
1808 val.mask = -1;
1809 if (code == GIMPLE_ASSIGN)
1811 enum tree_code subcode = gimple_assign_rhs_code (stmt);
1812 tree rhs1 = gimple_assign_rhs1 (stmt);
1813 tree lhs = gimple_assign_lhs (stmt);
1814 if ((INTEGRAL_TYPE_P (TREE_TYPE (lhs))
1815 || POINTER_TYPE_P (TREE_TYPE (lhs)))
1816 && (INTEGRAL_TYPE_P (TREE_TYPE (rhs1))
1817 || POINTER_TYPE_P (TREE_TYPE (rhs1))))
1818 switch (get_gimple_rhs_class (subcode))
1820 case GIMPLE_SINGLE_RHS:
1821 val = get_value_for_expr (rhs1, true);
1822 break;
1824 case GIMPLE_UNARY_RHS:
1825 val = bit_value_unop (subcode, TREE_TYPE (lhs), rhs1);
1826 break;
1828 case GIMPLE_BINARY_RHS:
1829 val = bit_value_binop (subcode, TREE_TYPE (lhs), rhs1,
1830 gimple_assign_rhs2 (stmt));
1831 break;
1833 default:;
1836 else if (code == GIMPLE_COND)
1838 enum tree_code code = gimple_cond_code (stmt);
1839 tree rhs1 = gimple_cond_lhs (stmt);
1840 tree rhs2 = gimple_cond_rhs (stmt);
1841 if (INTEGRAL_TYPE_P (TREE_TYPE (rhs1))
1842 || POINTER_TYPE_P (TREE_TYPE (rhs1)))
1843 val = bit_value_binop (code, TREE_TYPE (rhs1), rhs1, rhs2);
1845 else if (gimple_call_builtin_p (stmt, BUILT_IN_NORMAL))
1847 tree fndecl = gimple_call_fndecl (stmt);
1848 switch (DECL_FUNCTION_CODE (fndecl))
1850 case BUILT_IN_MALLOC:
1851 case BUILT_IN_REALLOC:
1852 case BUILT_IN_CALLOC:
1853 case BUILT_IN_STRDUP:
1854 case BUILT_IN_STRNDUP:
1855 val.lattice_val = CONSTANT;
1856 val.value = build_int_cst (TREE_TYPE (gimple_get_lhs (stmt)), 0);
1857 val.mask = ~((HOST_WIDE_INT) MALLOC_ABI_ALIGNMENT
1858 / BITS_PER_UNIT - 1);
1859 break;
1861 case BUILT_IN_ALLOCA:
1862 case BUILT_IN_ALLOCA_WITH_ALIGN:
1863 align = (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_ALLOCA_WITH_ALIGN
1864 ? TREE_INT_CST_LOW (gimple_call_arg (stmt, 1))
1865 : BIGGEST_ALIGNMENT);
1866 val.lattice_val = CONSTANT;
1867 val.value = build_int_cst (TREE_TYPE (gimple_get_lhs (stmt)), 0);
1868 val.mask = ~((HOST_WIDE_INT) align / BITS_PER_UNIT - 1);
1869 break;
1871 /* These builtins return their first argument, unmodified. */
1872 case BUILT_IN_MEMCPY:
1873 case BUILT_IN_MEMMOVE:
1874 case BUILT_IN_MEMSET:
1875 case BUILT_IN_STRCPY:
1876 case BUILT_IN_STRNCPY:
1877 case BUILT_IN_MEMCPY_CHK:
1878 case BUILT_IN_MEMMOVE_CHK:
1879 case BUILT_IN_MEMSET_CHK:
1880 case BUILT_IN_STRCPY_CHK:
1881 case BUILT_IN_STRNCPY_CHK:
1882 val = get_value_for_expr (gimple_call_arg (stmt, 0), true);
1883 break;
1885 case BUILT_IN_ASSUME_ALIGNED:
1886 val = bit_value_assume_aligned (stmt, NULL_TREE, val, false);
1887 break;
1889 case BUILT_IN_ALIGNED_ALLOC:
1891 tree align = get_constant_value (gimple_call_arg (stmt, 0));
1892 if (align
1893 && tree_fits_uhwi_p (align))
1895 unsigned HOST_WIDE_INT aligni = tree_to_uhwi (align);
1896 if (aligni > 1
1897 /* align must be power-of-two */
1898 && (aligni & (aligni - 1)) == 0)
1900 val.lattice_val = CONSTANT;
1901 val.value = build_int_cst (ptr_type_node, 0);
1902 val.mask = -aligni;
1905 break;
1908 default:;
1911 if (is_gimple_call (stmt) && gimple_call_lhs (stmt))
1913 tree fntype = gimple_call_fntype (stmt);
1914 if (fntype)
1916 tree attrs = lookup_attribute ("assume_aligned",
1917 TYPE_ATTRIBUTES (fntype));
1918 if (attrs)
1919 val = bit_value_assume_aligned (stmt, attrs, val, false);
1920 attrs = lookup_attribute ("alloc_align",
1921 TYPE_ATTRIBUTES (fntype));
1922 if (attrs)
1923 val = bit_value_assume_aligned (stmt, attrs, val, true);
1926 is_constant = (val.lattice_val == CONSTANT);
1929 if (flag_tree_bit_ccp
1930 && ((is_constant && TREE_CODE (val.value) == INTEGER_CST)
1931 || !is_constant)
1932 && gimple_get_lhs (stmt)
1933 && TREE_CODE (gimple_get_lhs (stmt)) == SSA_NAME)
1935 tree lhs = gimple_get_lhs (stmt);
1936 wide_int nonzero_bits = get_nonzero_bits (lhs);
1937 if (nonzero_bits != -1)
1939 if (!is_constant)
1941 val.lattice_val = CONSTANT;
1942 val.value = build_zero_cst (TREE_TYPE (lhs));
1943 val.mask = extend_mask (nonzero_bits, TYPE_SIGN (TREE_TYPE (lhs)));
1944 is_constant = true;
1946 else
1948 if (wi::bit_and_not (val.value, nonzero_bits) != 0)
1949 val.value = wide_int_to_tree (TREE_TYPE (lhs),
1950 nonzero_bits & val.value);
1951 if (nonzero_bits == 0)
1952 val.mask = 0;
1953 else
1954 val.mask = val.mask & extend_mask (nonzero_bits,
1955 TYPE_SIGN (TREE_TYPE (lhs)));
1960 /* The statement produced a nonconstant value. */
1961 if (!is_constant)
1963 /* The statement produced a copy. */
1964 if (simplified && TREE_CODE (simplified) == SSA_NAME
1965 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (simplified))
1967 val.lattice_val = CONSTANT;
1968 val.value = simplified;
1969 val.mask = -1;
1971 /* The statement is VARYING. */
1972 else
1974 val.lattice_val = VARYING;
1975 val.value = NULL_TREE;
1976 val.mask = -1;
1980 return val;
1983 typedef hash_table<nofree_ptr_hash<gimple> > gimple_htab;
1985 /* Given a BUILT_IN_STACK_SAVE value SAVED_VAL, insert a clobber of VAR before
1986 each matching BUILT_IN_STACK_RESTORE. Mark visited phis in VISITED. */
1988 static void
1989 insert_clobber_before_stack_restore (tree saved_val, tree var,
1990 gimple_htab **visited)
1992 gimple *stmt;
1993 gassign *clobber_stmt;
1994 tree clobber;
1995 imm_use_iterator iter;
1996 gimple_stmt_iterator i;
1997 gimple **slot;
1999 FOR_EACH_IMM_USE_STMT (stmt, iter, saved_val)
2000 if (gimple_call_builtin_p (stmt, BUILT_IN_STACK_RESTORE))
2002 clobber = build_constructor (TREE_TYPE (var),
2003 NULL);
2004 TREE_THIS_VOLATILE (clobber) = 1;
2005 clobber_stmt = gimple_build_assign (var, clobber);
2007 i = gsi_for_stmt (stmt);
2008 gsi_insert_before (&i, clobber_stmt, GSI_SAME_STMT);
2010 else if (gimple_code (stmt) == GIMPLE_PHI)
2012 if (!*visited)
2013 *visited = new gimple_htab (10);
2015 slot = (*visited)->find_slot (stmt, INSERT);
2016 if (*slot != NULL)
2017 continue;
2019 *slot = stmt;
2020 insert_clobber_before_stack_restore (gimple_phi_result (stmt), var,
2021 visited);
2023 else if (gimple_assign_ssa_name_copy_p (stmt))
2024 insert_clobber_before_stack_restore (gimple_assign_lhs (stmt), var,
2025 visited);
2026 else if (chkp_gimple_call_builtin_p (stmt, BUILT_IN_CHKP_BNDRET))
2027 continue;
2028 else
2029 gcc_assert (is_gimple_debug (stmt));
2032 /* Advance the iterator to the previous non-debug gimple statement in the same
2033 or dominating basic block. */
2035 static inline void
2036 gsi_prev_dom_bb_nondebug (gimple_stmt_iterator *i)
2038 basic_block dom;
2040 gsi_prev_nondebug (i);
2041 while (gsi_end_p (*i))
2043 dom = get_immediate_dominator (CDI_DOMINATORS, i->bb);
2044 if (dom == NULL || dom == ENTRY_BLOCK_PTR_FOR_FN (cfun))
2045 return;
2047 *i = gsi_last_bb (dom);
2051 /* Find a BUILT_IN_STACK_SAVE dominating gsi_stmt (I), and insert
2052 a clobber of VAR before each matching BUILT_IN_STACK_RESTORE.
2054 It is possible that BUILT_IN_STACK_SAVE cannot be find in a dominator when a
2055 previous pass (such as DOM) duplicated it along multiple paths to a BB. In
2056 that case the function gives up without inserting the clobbers. */
2058 static void
2059 insert_clobbers_for_var (gimple_stmt_iterator i, tree var)
2061 gimple *stmt;
2062 tree saved_val;
2063 gimple_htab *visited = NULL;
2065 for (; !gsi_end_p (i); gsi_prev_dom_bb_nondebug (&i))
2067 stmt = gsi_stmt (i);
2069 if (!gimple_call_builtin_p (stmt, BUILT_IN_STACK_SAVE))
2070 continue;
2072 saved_val = gimple_call_lhs (stmt);
2073 if (saved_val == NULL_TREE)
2074 continue;
2076 insert_clobber_before_stack_restore (saved_val, var, &visited);
2077 break;
2080 delete visited;
2083 /* Detects a __builtin_alloca_with_align with constant size argument. Declares
2084 fixed-size array and returns the address, if found, otherwise returns
2085 NULL_TREE. */
2087 static tree
2088 fold_builtin_alloca_with_align (gimple *stmt)
2090 unsigned HOST_WIDE_INT size, threshold, n_elem;
2091 tree lhs, arg, block, var, elem_type, array_type;
2093 /* Get lhs. */
2094 lhs = gimple_call_lhs (stmt);
2095 if (lhs == NULL_TREE)
2096 return NULL_TREE;
2098 /* Detect constant argument. */
2099 arg = get_constant_value (gimple_call_arg (stmt, 0));
2100 if (arg == NULL_TREE
2101 || TREE_CODE (arg) != INTEGER_CST
2102 || !tree_fits_uhwi_p (arg))
2103 return NULL_TREE;
2105 size = tree_to_uhwi (arg);
2107 /* Heuristic: don't fold large allocas. */
2108 threshold = (unsigned HOST_WIDE_INT)PARAM_VALUE (PARAM_LARGE_STACK_FRAME);
2109 /* In case the alloca is located at function entry, it has the same lifetime
2110 as a declared array, so we allow a larger size. */
2111 block = gimple_block (stmt);
2112 if (!(cfun->after_inlining
2113 && block
2114 && TREE_CODE (BLOCK_SUPERCONTEXT (block)) == FUNCTION_DECL))
2115 threshold /= 10;
2116 if (size > threshold)
2117 return NULL_TREE;
2119 /* Declare array. */
2120 elem_type = build_nonstandard_integer_type (BITS_PER_UNIT, 1);
2121 n_elem = size * 8 / BITS_PER_UNIT;
2122 array_type = build_array_type_nelts (elem_type, n_elem);
2123 var = create_tmp_var (array_type);
2124 SET_DECL_ALIGN (var, TREE_INT_CST_LOW (gimple_call_arg (stmt, 1)));
2126 struct ptr_info_def *pi = SSA_NAME_PTR_INFO (lhs);
2127 if (pi != NULL && !pi->pt.anything)
2129 bool singleton_p;
2130 unsigned uid;
2131 singleton_p = pt_solution_singleton_p (&pi->pt, &uid);
2132 gcc_assert (singleton_p);
2133 SET_DECL_PT_UID (var, uid);
2137 /* Fold alloca to the address of the array. */
2138 return fold_convert (TREE_TYPE (lhs), build_fold_addr_expr (var));
2141 /* Fold the stmt at *GSI with CCP specific information that propagating
2142 and regular folding does not catch. */
2144 static bool
2145 ccp_fold_stmt (gimple_stmt_iterator *gsi)
2147 gimple *stmt = gsi_stmt (*gsi);
2149 switch (gimple_code (stmt))
2151 case GIMPLE_COND:
2153 gcond *cond_stmt = as_a <gcond *> (stmt);
2154 ccp_prop_value_t val;
2155 /* Statement evaluation will handle type mismatches in constants
2156 more gracefully than the final propagation. This allows us to
2157 fold more conditionals here. */
2158 val = evaluate_stmt (stmt);
2159 if (val.lattice_val != CONSTANT
2160 || val.mask != 0)
2161 return false;
2163 if (dump_file)
2165 fprintf (dump_file, "Folding predicate ");
2166 print_gimple_expr (dump_file, stmt, 0, 0);
2167 fprintf (dump_file, " to ");
2168 print_generic_expr (dump_file, val.value, 0);
2169 fprintf (dump_file, "\n");
2172 if (integer_zerop (val.value))
2173 gimple_cond_make_false (cond_stmt);
2174 else
2175 gimple_cond_make_true (cond_stmt);
2177 return true;
2180 case GIMPLE_CALL:
2182 tree lhs = gimple_call_lhs (stmt);
2183 int flags = gimple_call_flags (stmt);
2184 tree val;
2185 tree argt;
2186 bool changed = false;
2187 unsigned i;
2189 /* If the call was folded into a constant make sure it goes
2190 away even if we cannot propagate into all uses because of
2191 type issues. */
2192 if (lhs
2193 && TREE_CODE (lhs) == SSA_NAME
2194 && (val = get_constant_value (lhs))
2195 /* Don't optimize away calls that have side-effects. */
2196 && (flags & (ECF_CONST|ECF_PURE)) != 0
2197 && (flags & ECF_LOOPING_CONST_OR_PURE) == 0)
2199 tree new_rhs = unshare_expr (val);
2200 bool res;
2201 if (!useless_type_conversion_p (TREE_TYPE (lhs),
2202 TREE_TYPE (new_rhs)))
2203 new_rhs = fold_convert (TREE_TYPE (lhs), new_rhs);
2204 res = update_call_from_tree (gsi, new_rhs);
2205 gcc_assert (res);
2206 return true;
2209 /* Internal calls provide no argument types, so the extra laxity
2210 for normal calls does not apply. */
2211 if (gimple_call_internal_p (stmt))
2212 return false;
2214 /* The heuristic of fold_builtin_alloca_with_align differs before and
2215 after inlining, so we don't require the arg to be changed into a
2216 constant for folding, but just to be constant. */
2217 if (gimple_call_builtin_p (stmt, BUILT_IN_ALLOCA_WITH_ALIGN))
2219 tree new_rhs = fold_builtin_alloca_with_align (stmt);
2220 if (new_rhs)
2222 bool res = update_call_from_tree (gsi, new_rhs);
2223 tree var = TREE_OPERAND (TREE_OPERAND (new_rhs, 0),0);
2224 gcc_assert (res);
2225 insert_clobbers_for_var (*gsi, var);
2226 return true;
2230 /* Propagate into the call arguments. Compared to replace_uses_in
2231 this can use the argument slot types for type verification
2232 instead of the current argument type. We also can safely
2233 drop qualifiers here as we are dealing with constants anyway. */
2234 argt = TYPE_ARG_TYPES (gimple_call_fntype (stmt));
2235 for (i = 0; i < gimple_call_num_args (stmt) && argt;
2236 ++i, argt = TREE_CHAIN (argt))
2238 tree arg = gimple_call_arg (stmt, i);
2239 if (TREE_CODE (arg) == SSA_NAME
2240 && (val = get_constant_value (arg))
2241 && useless_type_conversion_p
2242 (TYPE_MAIN_VARIANT (TREE_VALUE (argt)),
2243 TYPE_MAIN_VARIANT (TREE_TYPE (val))))
2245 gimple_call_set_arg (stmt, i, unshare_expr (val));
2246 changed = true;
2250 return changed;
2253 case GIMPLE_ASSIGN:
2255 tree lhs = gimple_assign_lhs (stmt);
2256 tree val;
2258 /* If we have a load that turned out to be constant replace it
2259 as we cannot propagate into all uses in all cases. */
2260 if (gimple_assign_single_p (stmt)
2261 && TREE_CODE (lhs) == SSA_NAME
2262 && (val = get_constant_value (lhs)))
2264 tree rhs = unshare_expr (val);
2265 if (!useless_type_conversion_p (TREE_TYPE (lhs), TREE_TYPE (rhs)))
2266 rhs = fold_build1 (VIEW_CONVERT_EXPR, TREE_TYPE (lhs), rhs);
2267 gimple_assign_set_rhs_from_tree (gsi, rhs);
2268 return true;
2271 return false;
2274 default:
2275 return false;
2279 /* Visit the assignment statement STMT. Set the value of its LHS to the
2280 value computed by the RHS and store LHS in *OUTPUT_P. If STMT
2281 creates virtual definitions, set the value of each new name to that
2282 of the RHS (if we can derive a constant out of the RHS).
2283 Value-returning call statements also perform an assignment, and
2284 are handled here. */
2286 static enum ssa_prop_result
2287 visit_assignment (gimple *stmt, tree *output_p)
2289 ccp_prop_value_t val;
2290 enum ssa_prop_result retval = SSA_PROP_NOT_INTERESTING;
2292 tree lhs = gimple_get_lhs (stmt);
2293 if (TREE_CODE (lhs) == SSA_NAME)
2295 /* Evaluate the statement, which could be
2296 either a GIMPLE_ASSIGN or a GIMPLE_CALL. */
2297 val = evaluate_stmt (stmt);
2299 /* If STMT is an assignment to an SSA_NAME, we only have one
2300 value to set. */
2301 if (set_lattice_value (lhs, &val))
2303 *output_p = lhs;
2304 if (val.lattice_val == VARYING)
2305 retval = SSA_PROP_VARYING;
2306 else
2307 retval = SSA_PROP_INTERESTING;
2311 return retval;
2315 /* Visit the conditional statement STMT. Return SSA_PROP_INTERESTING
2316 if it can determine which edge will be taken. Otherwise, return
2317 SSA_PROP_VARYING. */
2319 static enum ssa_prop_result
2320 visit_cond_stmt (gimple *stmt, edge *taken_edge_p)
2322 ccp_prop_value_t val;
2323 basic_block block;
2325 block = gimple_bb (stmt);
2326 val = evaluate_stmt (stmt);
2327 if (val.lattice_val != CONSTANT
2328 || val.mask != 0)
2329 return SSA_PROP_VARYING;
2331 /* Find which edge out of the conditional block will be taken and add it
2332 to the worklist. If no single edge can be determined statically,
2333 return SSA_PROP_VARYING to feed all the outgoing edges to the
2334 propagation engine. */
2335 *taken_edge_p = find_taken_edge (block, val.value);
2336 if (*taken_edge_p)
2337 return SSA_PROP_INTERESTING;
2338 else
2339 return SSA_PROP_VARYING;
2343 /* Evaluate statement STMT. If the statement produces an output value and
2344 its evaluation changes the lattice value of its output, return
2345 SSA_PROP_INTERESTING and set *OUTPUT_P to the SSA_NAME holding the
2346 output value.
2348 If STMT is a conditional branch and we can determine its truth
2349 value, set *TAKEN_EDGE_P accordingly. If STMT produces a varying
2350 value, return SSA_PROP_VARYING. */
2352 static enum ssa_prop_result
2353 ccp_visit_stmt (gimple *stmt, edge *taken_edge_p, tree *output_p)
2355 tree def;
2356 ssa_op_iter iter;
2358 if (dump_file && (dump_flags & TDF_DETAILS))
2360 fprintf (dump_file, "\nVisiting statement:\n");
2361 print_gimple_stmt (dump_file, stmt, 0, dump_flags);
2364 switch (gimple_code (stmt))
2366 case GIMPLE_ASSIGN:
2367 /* If the statement is an assignment that produces a single
2368 output value, evaluate its RHS to see if the lattice value of
2369 its output has changed. */
2370 return visit_assignment (stmt, output_p);
2372 case GIMPLE_CALL:
2373 /* A value-returning call also performs an assignment. */
2374 if (gimple_call_lhs (stmt) != NULL_TREE)
2375 return visit_assignment (stmt, output_p);
2376 break;
2378 case GIMPLE_COND:
2379 case GIMPLE_SWITCH:
2380 /* If STMT is a conditional branch, see if we can determine
2381 which branch will be taken. */
2382 /* FIXME. It appears that we should be able to optimize
2383 computed GOTOs here as well. */
2384 return visit_cond_stmt (stmt, taken_edge_p);
2386 default:
2387 break;
2390 /* Any other kind of statement is not interesting for constant
2391 propagation and, therefore, not worth simulating. */
2392 if (dump_file && (dump_flags & TDF_DETAILS))
2393 fprintf (dump_file, "No interesting values produced. Marked VARYING.\n");
2395 /* Definitions made by statements other than assignments to
2396 SSA_NAMEs represent unknown modifications to their outputs.
2397 Mark them VARYING. */
2398 FOR_EACH_SSA_TREE_OPERAND (def, stmt, iter, SSA_OP_ALL_DEFS)
2399 set_value_varying (def);
2401 return SSA_PROP_VARYING;
2405 /* Main entry point for SSA Conditional Constant Propagation. If NONZERO_P,
2406 record nonzero bits. */
2408 static unsigned int
2409 do_ssa_ccp (bool nonzero_p)
2411 unsigned int todo = 0;
2412 calculate_dominance_info (CDI_DOMINATORS);
2414 ccp_initialize ();
2415 ssa_propagate (ccp_visit_stmt, ccp_visit_phi_node);
2416 if (ccp_finalize (nonzero_p || flag_ipa_bit_cp))
2418 todo = (TODO_cleanup_cfg | TODO_update_ssa);
2420 /* ccp_finalize does not preserve loop-closed ssa. */
2421 loops_state_clear (LOOP_CLOSED_SSA);
2424 free_dominance_info (CDI_DOMINATORS);
2425 return todo;
2429 namespace {
2431 const pass_data pass_data_ccp =
2433 GIMPLE_PASS, /* type */
2434 "ccp", /* name */
2435 OPTGROUP_NONE, /* optinfo_flags */
2436 TV_TREE_CCP, /* tv_id */
2437 ( PROP_cfg | PROP_ssa ), /* properties_required */
2438 0, /* properties_provided */
2439 0, /* properties_destroyed */
2440 0, /* todo_flags_start */
2441 TODO_update_address_taken, /* todo_flags_finish */
2444 class pass_ccp : public gimple_opt_pass
2446 public:
2447 pass_ccp (gcc::context *ctxt)
2448 : gimple_opt_pass (pass_data_ccp, ctxt), nonzero_p (false)
2451 /* opt_pass methods: */
2452 opt_pass * clone () { return new pass_ccp (m_ctxt); }
2453 void set_pass_param (unsigned int n, bool param)
2455 gcc_assert (n == 0);
2456 nonzero_p = param;
2458 virtual bool gate (function *) { return flag_tree_ccp != 0; }
2459 virtual unsigned int execute (function *) { return do_ssa_ccp (nonzero_p); }
2461 private:
2462 /* Determines whether the pass instance records nonzero bits. */
2463 bool nonzero_p;
2464 }; // class pass_ccp
2466 } // anon namespace
2468 gimple_opt_pass *
2469 make_pass_ccp (gcc::context *ctxt)
2471 return new pass_ccp (ctxt);
2476 /* Try to optimize out __builtin_stack_restore. Optimize it out
2477 if there is another __builtin_stack_restore in the same basic
2478 block and no calls or ASM_EXPRs are in between, or if this block's
2479 only outgoing edge is to EXIT_BLOCK and there are no calls or
2480 ASM_EXPRs after this __builtin_stack_restore. */
2482 static tree
2483 optimize_stack_restore (gimple_stmt_iterator i)
2485 tree callee;
2486 gimple *stmt;
2488 basic_block bb = gsi_bb (i);
2489 gimple *call = gsi_stmt (i);
2491 if (gimple_code (call) != GIMPLE_CALL
2492 || gimple_call_num_args (call) != 1
2493 || TREE_CODE (gimple_call_arg (call, 0)) != SSA_NAME
2494 || !POINTER_TYPE_P (TREE_TYPE (gimple_call_arg (call, 0))))
2495 return NULL_TREE;
2497 for (gsi_next (&i); !gsi_end_p (i); gsi_next (&i))
2499 stmt = gsi_stmt (i);
2500 if (gimple_code (stmt) == GIMPLE_ASM)
2501 return NULL_TREE;
2502 if (gimple_code (stmt) != GIMPLE_CALL)
2503 continue;
2505 callee = gimple_call_fndecl (stmt);
2506 if (!callee
2507 || DECL_BUILT_IN_CLASS (callee) != BUILT_IN_NORMAL
2508 /* All regular builtins are ok, just obviously not alloca. */
2509 || DECL_FUNCTION_CODE (callee) == BUILT_IN_ALLOCA
2510 || DECL_FUNCTION_CODE (callee) == BUILT_IN_ALLOCA_WITH_ALIGN)
2511 return NULL_TREE;
2513 if (DECL_FUNCTION_CODE (callee) == BUILT_IN_STACK_RESTORE)
2514 goto second_stack_restore;
2517 if (!gsi_end_p (i))
2518 return NULL_TREE;
2520 /* Allow one successor of the exit block, or zero successors. */
2521 switch (EDGE_COUNT (bb->succs))
2523 case 0:
2524 break;
2525 case 1:
2526 if (single_succ_edge (bb)->dest != EXIT_BLOCK_PTR_FOR_FN (cfun))
2527 return NULL_TREE;
2528 break;
2529 default:
2530 return NULL_TREE;
2532 second_stack_restore:
2534 /* If there's exactly one use, then zap the call to __builtin_stack_save.
2535 If there are multiple uses, then the last one should remove the call.
2536 In any case, whether the call to __builtin_stack_save can be removed
2537 or not is irrelevant to removing the call to __builtin_stack_restore. */
2538 if (has_single_use (gimple_call_arg (call, 0)))
2540 gimple *stack_save = SSA_NAME_DEF_STMT (gimple_call_arg (call, 0));
2541 if (is_gimple_call (stack_save))
2543 callee = gimple_call_fndecl (stack_save);
2544 if (callee
2545 && DECL_BUILT_IN_CLASS (callee) == BUILT_IN_NORMAL
2546 && DECL_FUNCTION_CODE (callee) == BUILT_IN_STACK_SAVE)
2548 gimple_stmt_iterator stack_save_gsi;
2549 tree rhs;
2551 stack_save_gsi = gsi_for_stmt (stack_save);
2552 rhs = build_int_cst (TREE_TYPE (gimple_call_arg (call, 0)), 0);
2553 update_call_from_tree (&stack_save_gsi, rhs);
2558 /* No effect, so the statement will be deleted. */
2559 return integer_zero_node;
2562 /* If va_list type is a simple pointer and nothing special is needed,
2563 optimize __builtin_va_start (&ap, 0) into ap = __builtin_next_arg (0),
2564 __builtin_va_end (&ap) out as NOP and __builtin_va_copy into a simple
2565 pointer assignment. */
2567 static tree
2568 optimize_stdarg_builtin (gimple *call)
2570 tree callee, lhs, rhs, cfun_va_list;
2571 bool va_list_simple_ptr;
2572 location_t loc = gimple_location (call);
2574 if (gimple_code (call) != GIMPLE_CALL)
2575 return NULL_TREE;
2577 callee = gimple_call_fndecl (call);
2579 cfun_va_list = targetm.fn_abi_va_list (callee);
2580 va_list_simple_ptr = POINTER_TYPE_P (cfun_va_list)
2581 && (TREE_TYPE (cfun_va_list) == void_type_node
2582 || TREE_TYPE (cfun_va_list) == char_type_node);
2584 switch (DECL_FUNCTION_CODE (callee))
2586 case BUILT_IN_VA_START:
2587 if (!va_list_simple_ptr
2588 || targetm.expand_builtin_va_start != NULL
2589 || !builtin_decl_explicit_p (BUILT_IN_NEXT_ARG))
2590 return NULL_TREE;
2592 if (gimple_call_num_args (call) != 2)
2593 return NULL_TREE;
2595 lhs = gimple_call_arg (call, 0);
2596 if (!POINTER_TYPE_P (TREE_TYPE (lhs))
2597 || TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (lhs)))
2598 != TYPE_MAIN_VARIANT (cfun_va_list))
2599 return NULL_TREE;
2601 lhs = build_fold_indirect_ref_loc (loc, lhs);
2602 rhs = build_call_expr_loc (loc, builtin_decl_explicit (BUILT_IN_NEXT_ARG),
2603 1, integer_zero_node);
2604 rhs = fold_convert_loc (loc, TREE_TYPE (lhs), rhs);
2605 return build2 (MODIFY_EXPR, TREE_TYPE (lhs), lhs, rhs);
2607 case BUILT_IN_VA_COPY:
2608 if (!va_list_simple_ptr)
2609 return NULL_TREE;
2611 if (gimple_call_num_args (call) != 2)
2612 return NULL_TREE;
2614 lhs = gimple_call_arg (call, 0);
2615 if (!POINTER_TYPE_P (TREE_TYPE (lhs))
2616 || TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (lhs)))
2617 != TYPE_MAIN_VARIANT (cfun_va_list))
2618 return NULL_TREE;
2620 lhs = build_fold_indirect_ref_loc (loc, lhs);
2621 rhs = gimple_call_arg (call, 1);
2622 if (TYPE_MAIN_VARIANT (TREE_TYPE (rhs))
2623 != TYPE_MAIN_VARIANT (cfun_va_list))
2624 return NULL_TREE;
2626 rhs = fold_convert_loc (loc, TREE_TYPE (lhs), rhs);
2627 return build2 (MODIFY_EXPR, TREE_TYPE (lhs), lhs, rhs);
2629 case BUILT_IN_VA_END:
2630 /* No effect, so the statement will be deleted. */
2631 return integer_zero_node;
2633 default:
2634 gcc_unreachable ();
2638 /* Attemp to make the block of __builtin_unreachable I unreachable by changing
2639 the incoming jumps. Return true if at least one jump was changed. */
2641 static bool
2642 optimize_unreachable (gimple_stmt_iterator i)
2644 basic_block bb = gsi_bb (i);
2645 gimple_stmt_iterator gsi;
2646 gimple *stmt;
2647 edge_iterator ei;
2648 edge e;
2649 bool ret;
2651 if (flag_sanitize & SANITIZE_UNREACHABLE)
2652 return false;
2654 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2656 stmt = gsi_stmt (gsi);
2658 if (is_gimple_debug (stmt))
2659 continue;
2661 if (glabel *label_stmt = dyn_cast <glabel *> (stmt))
2663 /* Verify we do not need to preserve the label. */
2664 if (FORCED_LABEL (gimple_label_label (label_stmt)))
2665 return false;
2667 continue;
2670 /* Only handle the case that __builtin_unreachable is the first statement
2671 in the block. We rely on DCE to remove stmts without side-effects
2672 before __builtin_unreachable. */
2673 if (gsi_stmt (gsi) != gsi_stmt (i))
2674 return false;
2677 ret = false;
2678 FOR_EACH_EDGE (e, ei, bb->preds)
2680 gsi = gsi_last_bb (e->src);
2681 if (gsi_end_p (gsi))
2682 continue;
2684 stmt = gsi_stmt (gsi);
2685 if (gcond *cond_stmt = dyn_cast <gcond *> (stmt))
2687 if (e->flags & EDGE_TRUE_VALUE)
2688 gimple_cond_make_false (cond_stmt);
2689 else if (e->flags & EDGE_FALSE_VALUE)
2690 gimple_cond_make_true (cond_stmt);
2691 else
2692 gcc_unreachable ();
2693 update_stmt (cond_stmt);
2695 else
2697 /* Todo: handle other cases, f.i. switch statement. */
2698 continue;
2701 ret = true;
2704 return ret;
2707 /* Optimize
2708 mask_2 = 1 << cnt_1;
2709 _4 = __atomic_fetch_or_* (ptr_6, mask_2, _3);
2710 _5 = _4 & mask_2;
2712 _4 = ATOMIC_BIT_TEST_AND_SET (ptr_6, cnt_1, 0, _3);
2713 _5 = _4;
2714 If _5 is only used in _5 != 0 or _5 == 0 comparisons, 1
2715 is passed instead of 0, and the builtin just returns a zero
2716 or 1 value instead of the actual bit.
2717 Similarly for __sync_fetch_and_or_* (without the ", _3" part
2718 in there), and/or if mask_2 is a power of 2 constant.
2719 Similarly for xor instead of or, use ATOMIC_BIT_TEST_AND_COMPLEMENT
2720 in that case. And similarly for and instead of or, except that
2721 the second argument to the builtin needs to be one's complement
2722 of the mask instead of mask. */
2724 static void
2725 optimize_atomic_bit_test_and (gimple_stmt_iterator *gsip,
2726 enum internal_fn fn, bool has_model_arg,
2727 bool after)
2729 gimple *call = gsi_stmt (*gsip);
2730 tree lhs = gimple_call_lhs (call);
2731 use_operand_p use_p;
2732 gimple *use_stmt;
2733 tree mask, bit;
2734 optab optab;
2736 if (!flag_inline_atomics
2737 || optimize_debug
2738 || !gimple_call_builtin_p (call, BUILT_IN_NORMAL)
2739 || !lhs
2740 || SSA_NAME_OCCURS_IN_ABNORMAL_PHI (lhs)
2741 || !single_imm_use (lhs, &use_p, &use_stmt)
2742 || !is_gimple_assign (use_stmt)
2743 || gimple_assign_rhs_code (use_stmt) != BIT_AND_EXPR
2744 || !gimple_vdef (call))
2745 return;
2747 switch (fn)
2749 case IFN_ATOMIC_BIT_TEST_AND_SET:
2750 optab = atomic_bit_test_and_set_optab;
2751 break;
2752 case IFN_ATOMIC_BIT_TEST_AND_COMPLEMENT:
2753 optab = atomic_bit_test_and_complement_optab;
2754 break;
2755 case IFN_ATOMIC_BIT_TEST_AND_RESET:
2756 optab = atomic_bit_test_and_reset_optab;
2757 break;
2758 default:
2759 return;
2762 if (optab_handler (optab, TYPE_MODE (TREE_TYPE (lhs))) == CODE_FOR_nothing)
2763 return;
2765 mask = gimple_call_arg (call, 1);
2766 tree use_lhs = gimple_assign_lhs (use_stmt);
2767 if (!use_lhs)
2768 return;
2770 if (TREE_CODE (mask) == INTEGER_CST)
2772 if (fn == IFN_ATOMIC_BIT_TEST_AND_RESET)
2773 mask = const_unop (BIT_NOT_EXPR, TREE_TYPE (mask), mask);
2774 mask = fold_convert (TREE_TYPE (lhs), mask);
2775 int ibit = tree_log2 (mask);
2776 if (ibit < 0)
2777 return;
2778 bit = build_int_cst (TREE_TYPE (lhs), ibit);
2780 else if (TREE_CODE (mask) == SSA_NAME)
2782 gimple *g = SSA_NAME_DEF_STMT (mask);
2783 if (fn == IFN_ATOMIC_BIT_TEST_AND_RESET)
2785 if (!is_gimple_assign (g)
2786 || gimple_assign_rhs_code (g) != BIT_NOT_EXPR)
2787 return;
2788 mask = gimple_assign_rhs1 (g);
2789 if (TREE_CODE (mask) != SSA_NAME)
2790 return;
2791 g = SSA_NAME_DEF_STMT (mask);
2793 if (!is_gimple_assign (g)
2794 || gimple_assign_rhs_code (g) != LSHIFT_EXPR
2795 || !integer_onep (gimple_assign_rhs1 (g)))
2796 return;
2797 bit = gimple_assign_rhs2 (g);
2799 else
2800 return;
2802 if (gimple_assign_rhs1 (use_stmt) == lhs)
2804 if (!operand_equal_p (gimple_assign_rhs2 (use_stmt), mask, 0))
2805 return;
2807 else if (gimple_assign_rhs2 (use_stmt) != lhs
2808 || !operand_equal_p (gimple_assign_rhs1 (use_stmt), mask, 0))
2809 return;
2811 bool use_bool = true;
2812 bool has_debug_uses = false;
2813 imm_use_iterator iter;
2814 gimple *g;
2816 if (SSA_NAME_OCCURS_IN_ABNORMAL_PHI (use_lhs))
2817 use_bool = false;
2818 FOR_EACH_IMM_USE_STMT (g, iter, use_lhs)
2820 enum tree_code code = ERROR_MARK;
2821 tree op0, op1;
2822 if (is_gimple_debug (g))
2824 has_debug_uses = true;
2825 continue;
2827 else if (is_gimple_assign (g))
2828 switch (gimple_assign_rhs_code (g))
2830 case COND_EXPR:
2831 op1 = gimple_assign_rhs1 (g);
2832 code = TREE_CODE (op1);
2833 op0 = TREE_OPERAND (op1, 0);
2834 op1 = TREE_OPERAND (op1, 1);
2835 break;
2836 case EQ_EXPR:
2837 case NE_EXPR:
2838 code = gimple_assign_rhs_code (g);
2839 op0 = gimple_assign_rhs1 (g);
2840 op1 = gimple_assign_rhs2 (g);
2841 break;
2842 default:
2843 break;
2845 else if (gimple_code (g) == GIMPLE_COND)
2847 code = gimple_cond_code (g);
2848 op0 = gimple_cond_lhs (g);
2849 op1 = gimple_cond_rhs (g);
2852 if ((code == EQ_EXPR || code == NE_EXPR)
2853 && op0 == use_lhs
2854 && integer_zerop (op1))
2856 use_operand_p use_p;
2857 int n = 0;
2858 FOR_EACH_IMM_USE_ON_STMT (use_p, iter)
2859 n++;
2860 if (n == 1)
2861 continue;
2864 use_bool = false;
2865 BREAK_FROM_IMM_USE_STMT (iter);
2868 tree new_lhs = make_ssa_name (TREE_TYPE (lhs));
2869 tree flag = build_int_cst (TREE_TYPE (lhs), use_bool);
2870 if (has_model_arg)
2871 g = gimple_build_call_internal (fn, 4, gimple_call_arg (call, 0),
2872 bit, flag, gimple_call_arg (call, 2));
2873 else
2874 g = gimple_build_call_internal (fn, 3, gimple_call_arg (call, 0),
2875 bit, flag);
2876 gimple_call_set_lhs (g, new_lhs);
2877 gimple_set_location (g, gimple_location (call));
2878 gimple_set_vuse (g, gimple_vuse (call));
2879 gimple_set_vdef (g, gimple_vdef (call));
2880 SSA_NAME_DEF_STMT (gimple_vdef (call)) = g;
2881 gimple_stmt_iterator gsi = *gsip;
2882 gsi_insert_after (&gsi, g, GSI_NEW_STMT);
2883 if (after)
2885 /* The internal function returns the value of the specified bit
2886 before the atomic operation. If we are interested in the value
2887 of the specified bit after the atomic operation (makes only sense
2888 for xor, otherwise the bit content is compile time known),
2889 we need to invert the bit. */
2890 g = gimple_build_assign (make_ssa_name (TREE_TYPE (lhs)),
2891 BIT_XOR_EXPR, new_lhs,
2892 use_bool ? build_int_cst (TREE_TYPE (lhs), 1)
2893 : mask);
2894 new_lhs = gimple_assign_lhs (g);
2895 gsi_insert_after (&gsi, g, GSI_NEW_STMT);
2897 if (use_bool && has_debug_uses)
2899 tree temp = make_node (DEBUG_EXPR_DECL);
2900 DECL_ARTIFICIAL (temp) = 1;
2901 TREE_TYPE (temp) = TREE_TYPE (lhs);
2902 DECL_MODE (temp) = TYPE_MODE (TREE_TYPE (lhs));
2903 tree t = build2 (LSHIFT_EXPR, TREE_TYPE (lhs), new_lhs, bit);
2904 g = gimple_build_debug_bind (temp, t, g);
2905 gsi_insert_after (&gsi, g, GSI_NEW_STMT);
2906 FOR_EACH_IMM_USE_STMT (g, iter, use_lhs)
2907 if (is_gimple_debug (g))
2909 use_operand_p use_p;
2910 FOR_EACH_IMM_USE_ON_STMT (use_p, iter)
2911 SET_USE (use_p, temp);
2912 update_stmt (g);
2915 SSA_NAME_OCCURS_IN_ABNORMAL_PHI (new_lhs)
2916 = SSA_NAME_OCCURS_IN_ABNORMAL_PHI (use_lhs);
2917 replace_uses_by (use_lhs, new_lhs);
2918 gsi = gsi_for_stmt (use_stmt);
2919 gsi_remove (&gsi, true);
2920 release_defs (use_stmt);
2921 gsi_remove (gsip, true);
2922 release_ssa_name (lhs);
2925 /* A simple pass that attempts to fold all builtin functions. This pass
2926 is run after we've propagated as many constants as we can. */
2928 namespace {
2930 const pass_data pass_data_fold_builtins =
2932 GIMPLE_PASS, /* type */
2933 "fab", /* name */
2934 OPTGROUP_NONE, /* optinfo_flags */
2935 TV_NONE, /* tv_id */
2936 ( PROP_cfg | PROP_ssa ), /* properties_required */
2937 0, /* properties_provided */
2938 0, /* properties_destroyed */
2939 0, /* todo_flags_start */
2940 TODO_update_ssa, /* todo_flags_finish */
2943 class pass_fold_builtins : public gimple_opt_pass
2945 public:
2946 pass_fold_builtins (gcc::context *ctxt)
2947 : gimple_opt_pass (pass_data_fold_builtins, ctxt)
2950 /* opt_pass methods: */
2951 opt_pass * clone () { return new pass_fold_builtins (m_ctxt); }
2952 virtual unsigned int execute (function *);
2954 }; // class pass_fold_builtins
2956 unsigned int
2957 pass_fold_builtins::execute (function *fun)
2959 bool cfg_changed = false;
2960 basic_block bb;
2961 unsigned int todoflags = 0;
2963 FOR_EACH_BB_FN (bb, fun)
2965 gimple_stmt_iterator i;
2966 for (i = gsi_start_bb (bb); !gsi_end_p (i); )
2968 gimple *stmt, *old_stmt;
2969 tree callee;
2970 enum built_in_function fcode;
2972 stmt = gsi_stmt (i);
2974 if (gimple_code (stmt) != GIMPLE_CALL)
2976 /* Remove all *ssaname_N ={v} {CLOBBER}; stmts,
2977 after the last GIMPLE DSE they aren't needed and might
2978 unnecessarily keep the SSA_NAMEs live. */
2979 if (gimple_clobber_p (stmt))
2981 tree lhs = gimple_assign_lhs (stmt);
2982 if (TREE_CODE (lhs) == MEM_REF
2983 && TREE_CODE (TREE_OPERAND (lhs, 0)) == SSA_NAME)
2985 unlink_stmt_vdef (stmt);
2986 gsi_remove (&i, true);
2987 release_defs (stmt);
2988 continue;
2991 gsi_next (&i);
2992 continue;
2995 callee = gimple_call_fndecl (stmt);
2996 if (!callee || DECL_BUILT_IN_CLASS (callee) != BUILT_IN_NORMAL)
2998 gsi_next (&i);
2999 continue;
3002 fcode = DECL_FUNCTION_CODE (callee);
3003 if (fold_stmt (&i))
3005 else
3007 tree result = NULL_TREE;
3008 switch (DECL_FUNCTION_CODE (callee))
3010 case BUILT_IN_CONSTANT_P:
3011 /* Resolve __builtin_constant_p. If it hasn't been
3012 folded to integer_one_node by now, it's fairly
3013 certain that the value simply isn't constant. */
3014 result = integer_zero_node;
3015 break;
3017 case BUILT_IN_ASSUME_ALIGNED:
3018 /* Remove __builtin_assume_aligned. */
3019 result = gimple_call_arg (stmt, 0);
3020 break;
3022 case BUILT_IN_STACK_RESTORE:
3023 result = optimize_stack_restore (i);
3024 if (result)
3025 break;
3026 gsi_next (&i);
3027 continue;
3029 case BUILT_IN_UNREACHABLE:
3030 if (optimize_unreachable (i))
3031 cfg_changed = true;
3032 break;
3034 case BUILT_IN_ATOMIC_FETCH_OR_1:
3035 case BUILT_IN_ATOMIC_FETCH_OR_2:
3036 case BUILT_IN_ATOMIC_FETCH_OR_4:
3037 case BUILT_IN_ATOMIC_FETCH_OR_8:
3038 case BUILT_IN_ATOMIC_FETCH_OR_16:
3039 optimize_atomic_bit_test_and (&i,
3040 IFN_ATOMIC_BIT_TEST_AND_SET,
3041 true, false);
3042 break;
3043 case BUILT_IN_SYNC_FETCH_AND_OR_1:
3044 case BUILT_IN_SYNC_FETCH_AND_OR_2:
3045 case BUILT_IN_SYNC_FETCH_AND_OR_4:
3046 case BUILT_IN_SYNC_FETCH_AND_OR_8:
3047 case BUILT_IN_SYNC_FETCH_AND_OR_16:
3048 optimize_atomic_bit_test_and (&i,
3049 IFN_ATOMIC_BIT_TEST_AND_SET,
3050 false, false);
3051 break;
3053 case BUILT_IN_ATOMIC_FETCH_XOR_1:
3054 case BUILT_IN_ATOMIC_FETCH_XOR_2:
3055 case BUILT_IN_ATOMIC_FETCH_XOR_4:
3056 case BUILT_IN_ATOMIC_FETCH_XOR_8:
3057 case BUILT_IN_ATOMIC_FETCH_XOR_16:
3058 optimize_atomic_bit_test_and
3059 (&i, IFN_ATOMIC_BIT_TEST_AND_COMPLEMENT, true, false);
3060 break;
3061 case BUILT_IN_SYNC_FETCH_AND_XOR_1:
3062 case BUILT_IN_SYNC_FETCH_AND_XOR_2:
3063 case BUILT_IN_SYNC_FETCH_AND_XOR_4:
3064 case BUILT_IN_SYNC_FETCH_AND_XOR_8:
3065 case BUILT_IN_SYNC_FETCH_AND_XOR_16:
3066 optimize_atomic_bit_test_and
3067 (&i, IFN_ATOMIC_BIT_TEST_AND_COMPLEMENT, false, false);
3068 break;
3070 case BUILT_IN_ATOMIC_XOR_FETCH_1:
3071 case BUILT_IN_ATOMIC_XOR_FETCH_2:
3072 case BUILT_IN_ATOMIC_XOR_FETCH_4:
3073 case BUILT_IN_ATOMIC_XOR_FETCH_8:
3074 case BUILT_IN_ATOMIC_XOR_FETCH_16:
3075 optimize_atomic_bit_test_and
3076 (&i, IFN_ATOMIC_BIT_TEST_AND_COMPLEMENT, true, true);
3077 break;
3078 case BUILT_IN_SYNC_XOR_AND_FETCH_1:
3079 case BUILT_IN_SYNC_XOR_AND_FETCH_2:
3080 case BUILT_IN_SYNC_XOR_AND_FETCH_4:
3081 case BUILT_IN_SYNC_XOR_AND_FETCH_8:
3082 case BUILT_IN_SYNC_XOR_AND_FETCH_16:
3083 optimize_atomic_bit_test_and
3084 (&i, IFN_ATOMIC_BIT_TEST_AND_COMPLEMENT, false, true);
3085 break;
3087 case BUILT_IN_ATOMIC_FETCH_AND_1:
3088 case BUILT_IN_ATOMIC_FETCH_AND_2:
3089 case BUILT_IN_ATOMIC_FETCH_AND_4:
3090 case BUILT_IN_ATOMIC_FETCH_AND_8:
3091 case BUILT_IN_ATOMIC_FETCH_AND_16:
3092 optimize_atomic_bit_test_and (&i,
3093 IFN_ATOMIC_BIT_TEST_AND_RESET,
3094 true, false);
3095 break;
3096 case BUILT_IN_SYNC_FETCH_AND_AND_1:
3097 case BUILT_IN_SYNC_FETCH_AND_AND_2:
3098 case BUILT_IN_SYNC_FETCH_AND_AND_4:
3099 case BUILT_IN_SYNC_FETCH_AND_AND_8:
3100 case BUILT_IN_SYNC_FETCH_AND_AND_16:
3101 optimize_atomic_bit_test_and (&i,
3102 IFN_ATOMIC_BIT_TEST_AND_RESET,
3103 false, false);
3104 break;
3106 case BUILT_IN_VA_START:
3107 case BUILT_IN_VA_END:
3108 case BUILT_IN_VA_COPY:
3109 /* These shouldn't be folded before pass_stdarg. */
3110 result = optimize_stdarg_builtin (stmt);
3111 if (result)
3112 break;
3113 /* FALLTHRU */
3115 default:;
3118 if (!result)
3120 gsi_next (&i);
3121 continue;
3124 if (!update_call_from_tree (&i, result))
3125 gimplify_and_update_call_from_tree (&i, result);
3128 todoflags |= TODO_update_address_taken;
3130 if (dump_file && (dump_flags & TDF_DETAILS))
3132 fprintf (dump_file, "Simplified\n ");
3133 print_gimple_stmt (dump_file, stmt, 0, dump_flags);
3136 old_stmt = stmt;
3137 stmt = gsi_stmt (i);
3138 update_stmt (stmt);
3140 if (maybe_clean_or_replace_eh_stmt (old_stmt, stmt)
3141 && gimple_purge_dead_eh_edges (bb))
3142 cfg_changed = true;
3144 if (dump_file && (dump_flags & TDF_DETAILS))
3146 fprintf (dump_file, "to\n ");
3147 print_gimple_stmt (dump_file, stmt, 0, dump_flags);
3148 fprintf (dump_file, "\n");
3151 /* Retry the same statement if it changed into another
3152 builtin, there might be new opportunities now. */
3153 if (gimple_code (stmt) != GIMPLE_CALL)
3155 gsi_next (&i);
3156 continue;
3158 callee = gimple_call_fndecl (stmt);
3159 if (!callee
3160 || DECL_BUILT_IN_CLASS (callee) != BUILT_IN_NORMAL
3161 || DECL_FUNCTION_CODE (callee) == fcode)
3162 gsi_next (&i);
3166 /* Delete unreachable blocks. */
3167 if (cfg_changed)
3168 todoflags |= TODO_cleanup_cfg;
3170 return todoflags;
3173 } // anon namespace
3175 gimple_opt_pass *
3176 make_pass_fold_builtins (gcc::context *ctxt)
3178 return new pass_fold_builtins (ctxt);