1 /* Conditional constant propagation pass for the GNU compiler.
2 Copyright (C) 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007
3 Free Software Foundation, Inc.
4 Adapted from original RTL SSA-CCP by Daniel Berlin <dberlin@dberlin.org>
5 Adapted to GIMPLE trees by Diego Novillo <dnovillo@redhat.com>
7 This file is part of GCC.
9 GCC is free software; you can redistribute it and/or modify it
10 under the terms of the GNU General Public License as published by the
11 Free Software Foundation; either version 2, or (at your option) any
14 GCC is distributed in the hope that it will be useful, but WITHOUT
15 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
16 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
19 You should have received a copy of the GNU General Public License
20 along with GCC; see the file COPYING. If not, write to the Free
21 Software Foundation, 51 Franklin Street, Fifth Floor, Boston, MA
24 /* Conditional constant propagation (CCP) is based on the SSA
25 propagation engine (tree-ssa-propagate.c). Constant assignments of
26 the form VAR = CST are propagated from the assignments into uses of
27 VAR, which in turn may generate new constants. The simulation uses
28 a four level lattice to keep track of constant values associated
29 with SSA names. Given an SSA name V_i, it may take one of the
32 UNINITIALIZED -> This is the default starting value. V_i
33 has not been processed yet.
35 UNDEFINED -> V_i is a local variable whose definition
36 has not been processed yet. Therefore we
37 don't yet know if its value is a constant
40 CONSTANT -> V_i has been found to hold a constant
43 VARYING -> V_i cannot take a constant value, or if it
44 does, it is not possible to determine it
47 The core of SSA-CCP is in ccp_visit_stmt and ccp_visit_phi_node:
49 1- In ccp_visit_stmt, we are interested in assignments whose RHS
50 evaluates into a constant and conditional jumps whose predicate
51 evaluates into a boolean true or false. When an assignment of
52 the form V_i = CONST is found, V_i's lattice value is set to
53 CONSTANT and CONST is associated with it. This causes the
54 propagation engine to add all the SSA edges coming out the
55 assignment into the worklists, so that statements that use V_i
58 If the statement is a conditional with a constant predicate, we
59 mark the outgoing edges as executable or not executable
60 depending on the predicate's value. This is then used when
61 visiting PHI nodes to know when a PHI argument can be ignored.
64 2- In ccp_visit_phi_node, if all the PHI arguments evaluate to the
65 same constant C, then the LHS of the PHI is set to C. This
66 evaluation is known as the "meet operation". Since one of the
67 goals of this evaluation is to optimistically return constant
68 values as often as possible, it uses two main short cuts:
70 - If an argument is flowing in through a non-executable edge, it
71 is ignored. This is useful in cases like this:
77 a_11 = PHI (a_9, a_10)
79 If PRED is known to always evaluate to false, then we can
80 assume that a_11 will always take its value from a_10, meaning
81 that instead of consider it VARYING (a_9 and a_10 have
82 different values), we can consider it CONSTANT 100.
84 - If an argument has an UNDEFINED value, then it does not affect
85 the outcome of the meet operation. If a variable V_i has an
86 UNDEFINED value, it means that either its defining statement
87 hasn't been visited yet or V_i has no defining statement, in
88 which case the original symbol 'V' is being used
89 uninitialized. Since 'V' is a local variable, the compiler
90 may assume any initial value for it.
93 After propagation, every variable V_i that ends up with a lattice
94 value of CONSTANT will have the associated constant value in the
95 array CONST_VAL[i].VALUE. That is fed into substitute_and_fold for
96 final substitution and folding.
99 Constant propagation in stores and loads (STORE-CCP)
100 ----------------------------------------------------
102 While CCP has all the logic to propagate constants in GIMPLE
103 registers, it is missing the ability to associate constants with
104 stores and loads (i.e., pointer dereferences, structures and
105 global/aliased variables). We don't keep loads and stores in
106 SSA, but we do build a factored use-def web for them (in the
109 For instance, consider the following code fragment:
128 We should be able to deduce that the predicate 'a.a != B' is always
129 false. To achieve this, we associate constant values to the SSA
130 names in the V_MAY_DEF and V_MUST_DEF operands for each store.
131 Additionally, since we also glob partial loads/stores with the base
132 symbol, we also keep track of the memory reference where the
133 constant value was stored (in the MEM_REF field of PROP_VALUE_T).
136 # a_5 = V_MAY_DEF <a_4>
142 In the example above, CCP will associate value '2' with 'a_5', but
143 it would be wrong to replace the load from 'a.b' with '2', because
144 '2' had been stored into a.a.
146 To support STORE-CCP, it is necessary to add a new value to the
147 constant propagation lattice. When evaluating a load for a memory
148 reference we can no longer assume a value of UNDEFINED if we
149 haven't seen a preceding store to the same memory location.
150 Consider, for instance global variables:
158 # A_5 = PHI (A_4, A_2);
166 The value of A_2 cannot be assumed to be UNDEFINED, as it may have
167 been defined outside of foo. If we were to assume it UNDEFINED, we
168 would erroneously optimize the above into 'return 3;'. Therefore,
169 when doing STORE-CCP, we introduce a fifth lattice value
170 (UNKNOWN_VAL), which overrides any other value when computing the
171 meet operation in PHI nodes.
173 Though STORE-CCP is not too expensive, it does have to do more work
174 than regular CCP, so it is only enabled at -O2. Both regular CCP
175 and STORE-CCP use the exact same algorithm. The only distinction
176 is that when doing STORE-CCP, the boolean variable DO_STORE_CCP is
177 set to true. This affects the evaluation of statements and PHI
182 Constant propagation with conditional branches,
183 Wegman and Zadeck, ACM TOPLAS 13(2):181-210.
185 Building an Optimizing Compiler,
186 Robert Morgan, Butterworth-Heinemann, 1998, Section 8.9.
188 Advanced Compiler Design and Implementation,
189 Steven Muchnick, Morgan Kaufmann, 1997, Section 12.6 */
193 #include "coretypes.h"
200 #include "basic-block.h"
203 #include "function.h"
204 #include "diagnostic.h"
206 #include "tree-dump.h"
207 #include "tree-flow.h"
208 #include "tree-pass.h"
209 #include "tree-ssa-propagate.h"
210 #include "langhooks.h"
215 /* Possible lattice values. */
225 /* Array of propagated constant values. After propagation,
226 CONST_VAL[I].VALUE holds the constant value for SSA_NAME(I). If
227 the constant is held in an SSA name representing a memory store
228 (i.e., a V_MAY_DEF or V_MUST_DEF), CONST_VAL[I].MEM_REF will
229 contain the actual memory reference used to store (i.e., the LHS of
230 the assignment doing the store). */
231 static prop_value_t
*const_val
;
233 /* True if we are also propagating constants in stores and loads. */
234 static bool do_store_ccp
;
236 /* Dump constant propagation value VAL to file OUTF prefixed by PREFIX. */
239 dump_lattice_value (FILE *outf
, const char *prefix
, prop_value_t val
)
241 switch (val
.lattice_val
)
244 fprintf (outf
, "%sUNINITIALIZED", prefix
);
247 fprintf (outf
, "%sUNDEFINED", prefix
);
250 fprintf (outf
, "%sVARYING", prefix
);
253 fprintf (outf
, "%sUNKNOWN_VAL", prefix
);
256 fprintf (outf
, "%sCONSTANT ", prefix
);
257 print_generic_expr (outf
, val
.value
, dump_flags
);
265 /* Print lattice value VAL to stderr. */
267 void debug_lattice_value (prop_value_t val
);
270 debug_lattice_value (prop_value_t val
)
272 dump_lattice_value (stderr
, "", val
);
273 fprintf (stderr
, "\n");
277 /* The regular is_gimple_min_invariant does a shallow test of the object.
278 It assumes that full gimplification has happened, or will happen on the
279 object. For a value coming from DECL_INITIAL, this is not true, so we
280 have to be more strict ourselves. */
283 ccp_decl_initial_min_invariant (tree t
)
285 if (!is_gimple_min_invariant (t
))
287 if (TREE_CODE (t
) == ADDR_EXPR
)
289 /* Inline and unroll is_gimple_addressable. */
292 t
= TREE_OPERAND (t
, 0);
293 if (is_gimple_id (t
))
295 if (!handled_component_p (t
))
303 /* Compute a default value for variable VAR and store it in the
304 CONST_VAL array. The following rules are used to get default
307 1- Global and static variables that are declared constant are
310 2- Any other value is considered UNDEFINED. This is useful when
311 considering PHI nodes. PHI arguments that are undefined do not
312 change the constant value of the PHI node, which allows for more
313 constants to be propagated.
315 3- If SSA_NAME_VALUE is set and it is a constant, its value is
318 4- Variables defined by statements other than assignments and PHI
319 nodes are considered VARYING.
321 5- Variables that are not GIMPLE registers are considered
322 UNKNOWN_VAL, which is really a stronger version of UNDEFINED.
323 It's used to avoid the short circuit evaluation implied by
324 UNDEFINED in ccp_lattice_meet. */
327 get_default_value (tree var
)
329 tree sym
= SSA_NAME_VAR (var
);
330 prop_value_t val
= { UNINITIALIZED
, NULL_TREE
, NULL_TREE
};
332 if (!do_store_ccp
&& !is_gimple_reg (var
))
334 /* Short circuit for regular CCP. We are not interested in any
335 non-register when DO_STORE_CCP is false. */
336 val
.lattice_val
= VARYING
;
338 else if (SSA_NAME_VALUE (var
)
339 && is_gimple_min_invariant (SSA_NAME_VALUE (var
)))
341 val
.lattice_val
= CONSTANT
;
342 val
.value
= SSA_NAME_VALUE (var
);
344 else if (TREE_STATIC (sym
)
345 && TREE_READONLY (sym
)
347 && DECL_INITIAL (sym
)
348 && ccp_decl_initial_min_invariant (DECL_INITIAL (sym
)))
350 /* Globals and static variables declared 'const' take their
352 val
.lattice_val
= CONSTANT
;
353 val
.value
= DECL_INITIAL (sym
);
358 tree stmt
= SSA_NAME_DEF_STMT (var
);
360 if (IS_EMPTY_STMT (stmt
))
362 /* Variables defined by an empty statement are those used
363 before being initialized. If VAR is a local variable, we
364 can assume initially that it is UNDEFINED. If we are
365 doing STORE-CCP, function arguments and non-register
366 variables are initially UNKNOWN_VAL, because we cannot
367 discard the value incoming from outside of this function
368 (see ccp_lattice_meet for details). */
369 if (is_gimple_reg (sym
) && TREE_CODE (sym
) != PARM_DECL
)
370 val
.lattice_val
= UNDEFINED
;
371 else if (do_store_ccp
)
372 val
.lattice_val
= UNKNOWN_VAL
;
374 val
.lattice_val
= VARYING
;
376 else if (TREE_CODE (stmt
) == MODIFY_EXPR
377 || TREE_CODE (stmt
) == PHI_NODE
)
379 /* Any other variable defined by an assignment or a PHI node
380 is considered UNDEFINED (or UNKNOWN_VAL if VAR is not a
382 val
.lattice_val
= is_gimple_reg (sym
) ? UNDEFINED
: UNKNOWN_VAL
;
386 /* Otherwise, VAR will never take on a constant value. */
387 val
.lattice_val
= VARYING
;
395 /* Get the constant value associated with variable VAR. If
396 MAY_USE_DEFAULT_P is true, call get_default_value on variables that
397 have the lattice value UNINITIALIZED. */
399 static prop_value_t
*
400 get_value (tree var
, bool may_use_default_p
)
402 prop_value_t
*val
= &const_val
[SSA_NAME_VERSION (var
)];
403 if (may_use_default_p
&& val
->lattice_val
== UNINITIALIZED
)
404 *val
= get_default_value (var
);
410 /* Set the value for variable VAR to NEW_VAL. Return true if the new
411 value is different from VAR's previous value. */
414 set_lattice_value (tree var
, prop_value_t new_val
)
416 prop_value_t
*old_val
= get_value (var
, false);
418 /* Lattice transitions must always be monotonically increasing in
419 value. We allow two exceptions:
421 1- If *OLD_VAL and NEW_VAL are the same, return false to
422 inform the caller that this was a non-transition.
424 2- If we are doing store-ccp (i.e., DOING_STORE_CCP is true),
425 allow CONSTANT->UNKNOWN_VAL. The UNKNOWN_VAL state is a
426 special type of UNDEFINED state which prevents the short
427 circuit evaluation of PHI arguments (see ccp_visit_phi_node
428 and ccp_lattice_meet). */
429 gcc_assert (old_val
->lattice_val
<= new_val
.lattice_val
430 || (old_val
->lattice_val
== new_val
.lattice_val
431 && old_val
->value
== new_val
.value
432 && old_val
->mem_ref
== new_val
.mem_ref
)
434 && old_val
->lattice_val
== CONSTANT
435 && new_val
.lattice_val
== UNKNOWN_VAL
));
437 if (old_val
->lattice_val
!= new_val
.lattice_val
)
439 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
441 dump_lattice_value (dump_file
, "Lattice value changed to ", new_val
);
442 fprintf (dump_file
, ". %sdding SSA edges to worklist.\n",
443 new_val
.lattice_val
!= UNDEFINED
? "A" : "Not a");
448 /* Transitions UNINITIALIZED -> UNDEFINED are never interesting
449 for propagation purposes. In these cases return false to
450 avoid doing useless work. */
451 return (new_val
.lattice_val
!= UNDEFINED
);
458 /* Return the likely CCP lattice value for STMT.
460 If STMT has no operands, then return CONSTANT.
462 Else if any operands of STMT are undefined, then return UNDEFINED.
464 Else if any operands of STMT are constants, then return CONSTANT.
466 Else return VARYING. */
469 likely_value (tree stmt
)
476 ann
= stmt_ann (stmt
);
478 /* If the statement has volatile operands, it won't fold to a
480 if (ann
->has_volatile_ops
)
483 /* If we are not doing store-ccp, statements with loads
484 and/or stores will never fold into a constant. */
486 && !ZERO_SSA_OPERANDS (stmt
, SSA_OP_ALL_VIRTUALS
))
490 /* A CALL_EXPR is assumed to be varying. NOTE: This may be overly
491 conservative, in the presence of const and pure calls. */
492 if (get_call_expr_in (stmt
) != NULL_TREE
)
495 /* Anything other than assignments and conditional jumps are not
496 interesting for CCP. */
497 if (TREE_CODE (stmt
) != MODIFY_EXPR
498 && TREE_CODE (stmt
) != COND_EXPR
499 && TREE_CODE (stmt
) != SWITCH_EXPR
)
502 if (is_gimple_min_invariant (get_rhs (stmt
)))
505 found_constant
= false;
506 FOR_EACH_SSA_TREE_OPERAND (use
, stmt
, iter
, SSA_OP_USE
|SSA_OP_VUSE
)
508 prop_value_t
*val
= get_value (use
, true);
510 if (val
->lattice_val
== VARYING
)
513 if (val
->lattice_val
== UNKNOWN_VAL
)
515 /* UNKNOWN_VAL is invalid when not doing STORE-CCP. */
516 gcc_assert (do_store_ccp
);
520 if (val
->lattice_val
== CONSTANT
)
521 found_constant
= true;
525 || ZERO_SSA_OPERANDS (stmt
, SSA_OP_USE
)
526 || ZERO_SSA_OPERANDS (stmt
, SSA_OP_VUSE
))
533 /* Initialize local data structures for CCP. */
536 ccp_initialize (void)
540 const_val
= XNEWVEC (prop_value_t
, num_ssa_names
);
541 memset (const_val
, 0, num_ssa_names
* sizeof (*const_val
));
543 /* Initialize simulation flags for PHI nodes and statements. */
546 block_stmt_iterator i
;
548 for (i
= bsi_start (bb
); !bsi_end_p (i
); bsi_next (&i
))
550 bool is_varying
= false;
551 tree stmt
= bsi_stmt (i
);
553 if (likely_value (stmt
) == VARYING
)
559 /* If the statement will not produce a constant, mark
560 all its outputs VARYING. */
561 FOR_EACH_SSA_TREE_OPERAND (def
, stmt
, iter
, SSA_OP_ALL_DEFS
)
562 get_value (def
, false)->lattice_val
= VARYING
;
564 /* Never mark conditional jumps with DONT_SIMULATE_AGAIN,
565 otherwise the propagator will never add the outgoing
567 if (TREE_CODE (stmt
) != COND_EXPR
568 && TREE_CODE (stmt
) != SWITCH_EXPR
)
572 DONT_SIMULATE_AGAIN (stmt
) = is_varying
;
576 /* Now process PHI nodes. */
581 for (phi
= phi_nodes (bb
); phi
; phi
= PHI_CHAIN (phi
))
585 prop_value_t
*val
= get_value (PHI_RESULT (phi
), false);
587 for (i
= 0; i
< PHI_NUM_ARGS (phi
); i
++)
589 arg
= PHI_ARG_DEF (phi
, i
);
591 if (TREE_CODE (arg
) == SSA_NAME
592 && get_value (arg
, false)->lattice_val
== VARYING
)
594 val
->lattice_val
= VARYING
;
599 DONT_SIMULATE_AGAIN (phi
) = (val
->lattice_val
== VARYING
);
605 /* Do final substitution of propagated values, cleanup the flowgraph and
606 free allocated storage. */
611 /* Perform substitutions based on the known constant values. */
612 substitute_and_fold (const_val
, false);
618 /* Compute the meet operator between *VAL1 and *VAL2. Store the result
621 any M UNDEFINED = any
622 any M UNKNOWN_VAL = UNKNOWN_VAL
623 any M VARYING = VARYING
624 Ci M Cj = Ci if (i == j)
625 Ci M Cj = VARYING if (i != j)
627 Lattice values UNKNOWN_VAL and UNDEFINED are similar but have
628 different semantics at PHI nodes. Both values imply that we don't
629 know whether the variable is constant or not. However, UNKNOWN_VAL
630 values override all others. For instance, suppose that A is a
640 | A_3 = PHI (A_2, A_1)
645 If the edge into A_2 is not executable, the first visit to A_3 will
646 yield the constant 4. But the second visit to A_3 will be with A_2
647 in state UNKNOWN_VAL. We can no longer conclude that A_3 is 4
648 because A_2 may have been set in another function. If we had used
649 the lattice value UNDEFINED, we would have had wrongly concluded
654 ccp_lattice_meet (prop_value_t
*val1
, prop_value_t
*val2
)
656 if (val1
->lattice_val
== UNDEFINED
)
658 /* UNDEFINED M any = any */
661 else if (val2
->lattice_val
== UNDEFINED
)
663 /* any M UNDEFINED = any
664 Nothing to do. VAL1 already contains the value we want. */
667 else if (val1
->lattice_val
== UNKNOWN_VAL
668 || val2
->lattice_val
== UNKNOWN_VAL
)
670 /* UNKNOWN_VAL values are invalid if we are not doing STORE-CCP. */
671 gcc_assert (do_store_ccp
);
673 /* any M UNKNOWN_VAL = UNKNOWN_VAL. */
674 val1
->lattice_val
= UNKNOWN_VAL
;
675 val1
->value
= NULL_TREE
;
676 val1
->mem_ref
= NULL_TREE
;
678 else if (val1
->lattice_val
== VARYING
679 || val2
->lattice_val
== VARYING
)
681 /* any M VARYING = VARYING. */
682 val1
->lattice_val
= VARYING
;
683 val1
->value
= NULL_TREE
;
684 val1
->mem_ref
= NULL_TREE
;
686 else if (val1
->lattice_val
== CONSTANT
687 && val2
->lattice_val
== CONSTANT
688 && simple_cst_equal (val1
->value
, val2
->value
) == 1
690 || (val1
->mem_ref
&& val2
->mem_ref
691 && operand_equal_p (val1
->mem_ref
, val2
->mem_ref
, 0))))
693 /* Ci M Cj = Ci if (i == j)
694 Ci M Cj = VARYING if (i != j)
696 If these two values come from memory stores, make sure that
697 they come from the same memory reference. */
698 val1
->lattice_val
= CONSTANT
;
699 val1
->value
= val1
->value
;
700 val1
->mem_ref
= val1
->mem_ref
;
704 /* Any other combination is VARYING. */
705 val1
->lattice_val
= VARYING
;
706 val1
->value
= NULL_TREE
;
707 val1
->mem_ref
= NULL_TREE
;
712 /* Loop through the PHI_NODE's parameters for BLOCK and compare their
713 lattice values to determine PHI_NODE's lattice value. The value of a
714 PHI node is determined calling ccp_lattice_meet with all the arguments
715 of the PHI node that are incoming via executable edges. */
717 static enum ssa_prop_result
718 ccp_visit_phi_node (tree phi
)
721 prop_value_t
*old_val
, new_val
;
723 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
725 fprintf (dump_file
, "\nVisiting PHI node: ");
726 print_generic_expr (dump_file
, phi
, dump_flags
);
729 old_val
= get_value (PHI_RESULT (phi
), false);
730 switch (old_val
->lattice_val
)
733 return SSA_PROP_VARYING
;
740 /* To avoid the default value of UNKNOWN_VAL overriding
741 that of its possible constant arguments, temporarily
742 set the PHI node's default lattice value to be
743 UNDEFINED. If the PHI node's old value was UNKNOWN_VAL and
744 the new value is UNDEFINED, then we prevent the invalid
745 transition by not calling set_lattice_value. */
746 gcc_assert (do_store_ccp
);
752 new_val
.lattice_val
= UNDEFINED
;
753 new_val
.value
= NULL_TREE
;
754 new_val
.mem_ref
= NULL_TREE
;
761 for (i
= 0; i
< PHI_NUM_ARGS (phi
); i
++)
763 /* Compute the meet operator over all the PHI arguments flowing
764 through executable edges. */
765 edge e
= PHI_ARG_EDGE (phi
, i
);
767 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
770 "\n Argument #%d (%d -> %d %sexecutable)\n",
771 i
, e
->src
->index
, e
->dest
->index
,
772 (e
->flags
& EDGE_EXECUTABLE
) ? "" : "not ");
775 /* If the incoming edge is executable, Compute the meet operator for
776 the existing value of the PHI node and the current PHI argument. */
777 if (e
->flags
& EDGE_EXECUTABLE
)
779 tree arg
= PHI_ARG_DEF (phi
, i
);
780 prop_value_t arg_val
;
782 if (is_gimple_min_invariant (arg
))
784 arg_val
.lattice_val
= CONSTANT
;
786 arg_val
.mem_ref
= NULL_TREE
;
789 arg_val
= *(get_value (arg
, true));
791 ccp_lattice_meet (&new_val
, &arg_val
);
793 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
795 fprintf (dump_file
, "\t");
796 print_generic_expr (dump_file
, arg
, dump_flags
);
797 dump_lattice_value (dump_file
, "\tValue: ", arg_val
);
798 fprintf (dump_file
, "\n");
801 if (new_val
.lattice_val
== VARYING
)
806 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
808 dump_lattice_value (dump_file
, "\n PHI node value: ", new_val
);
809 fprintf (dump_file
, "\n\n");
812 /* Check for an invalid change from UNKNOWN_VAL to UNDEFINED. */
814 && old_val
->lattice_val
== UNKNOWN_VAL
815 && new_val
.lattice_val
== UNDEFINED
)
816 return SSA_PROP_NOT_INTERESTING
;
818 /* Otherwise, make the transition to the new value. */
819 if (set_lattice_value (PHI_RESULT (phi
), new_val
))
821 if (new_val
.lattice_val
== VARYING
)
822 return SSA_PROP_VARYING
;
824 return SSA_PROP_INTERESTING
;
827 return SSA_PROP_NOT_INTERESTING
;
831 /* CCP specific front-end to the non-destructive constant folding
834 Attempt to simplify the RHS of STMT knowing that one or more
835 operands are constants.
837 If simplification is possible, return the simplified RHS,
838 otherwise return the original RHS. */
843 tree rhs
= get_rhs (stmt
);
844 enum tree_code code
= TREE_CODE (rhs
);
845 enum tree_code_class kind
= TREE_CODE_CLASS (code
);
846 tree retval
= NULL_TREE
;
848 if (TREE_CODE (rhs
) == SSA_NAME
)
850 /* If the RHS is an SSA_NAME, return its known constant value,
852 return get_value (rhs
, true)->value
;
854 else if (do_store_ccp
&& stmt_makes_single_load (stmt
))
856 /* If the RHS is a memory load, see if the VUSEs associated with
857 it are a valid constant for that memory load. */
858 prop_value_t
*val
= get_value_loaded_by (stmt
, const_val
);
859 if (val
&& val
->mem_ref
)
861 if (operand_equal_p (val
->mem_ref
, rhs
, 0))
864 /* If RHS is extracting REALPART_EXPR or IMAGPART_EXPR of a
865 complex type with a known constant value, return it. */
866 if ((TREE_CODE (rhs
) == REALPART_EXPR
867 || TREE_CODE (rhs
) == IMAGPART_EXPR
)
868 && operand_equal_p (val
->mem_ref
, TREE_OPERAND (rhs
, 0), 0))
869 return fold_build1 (TREE_CODE (rhs
), TREE_TYPE (rhs
), val
->value
);
874 /* Unary operators. Note that we know the single operand must
875 be a constant. So this should almost always return a
877 if (kind
== tcc_unary
)
879 /* Handle unary operators which can appear in GIMPLE form. */
880 tree op0
= TREE_OPERAND (rhs
, 0);
882 /* Simplify the operand down to a constant. */
883 if (TREE_CODE (op0
) == SSA_NAME
)
885 prop_value_t
*val
= get_value (op0
, true);
886 if (val
->lattice_val
== CONSTANT
)
887 op0
= get_value (op0
, true)->value
;
890 if ((code
== NOP_EXPR
|| code
== CONVERT_EXPR
)
891 && tree_ssa_useless_type_conversion_1 (TREE_TYPE (rhs
),
894 return fold_unary (code
, TREE_TYPE (rhs
), op0
);
897 /* Binary and comparison operators. We know one or both of the
898 operands are constants. */
899 else if (kind
== tcc_binary
900 || kind
== tcc_comparison
901 || code
== TRUTH_AND_EXPR
902 || code
== TRUTH_OR_EXPR
903 || code
== TRUTH_XOR_EXPR
)
905 /* Handle binary and comparison operators that can appear in
907 tree op0
= TREE_OPERAND (rhs
, 0);
908 tree op1
= TREE_OPERAND (rhs
, 1);
910 /* Simplify the operands down to constants when appropriate. */
911 if (TREE_CODE (op0
) == SSA_NAME
)
913 prop_value_t
*val
= get_value (op0
, true);
914 if (val
->lattice_val
== CONSTANT
)
918 if (TREE_CODE (op1
) == SSA_NAME
)
920 prop_value_t
*val
= get_value (op1
, true);
921 if (val
->lattice_val
== CONSTANT
)
925 return fold_binary (code
, TREE_TYPE (rhs
), op0
, op1
);
928 /* We may be able to fold away calls to builtin functions if their
929 arguments are constants. */
930 else if (code
== CALL_EXPR
931 && TREE_CODE (TREE_OPERAND (rhs
, 0)) == ADDR_EXPR
932 && (TREE_CODE (TREE_OPERAND (TREE_OPERAND (rhs
, 0), 0))
934 && DECL_BUILT_IN (TREE_OPERAND (TREE_OPERAND (rhs
, 0), 0)))
936 if (!ZERO_SSA_OPERANDS (stmt
, SSA_OP_USE
))
939 tree fndecl
, arglist
;
944 /* Preserve the original values of every operand. */
945 orig
= XNEWVEC (tree
, NUM_SSA_OPERANDS (stmt
, SSA_OP_USE
));
946 FOR_EACH_SSA_TREE_OPERAND (var
, stmt
, iter
, SSA_OP_USE
)
949 /* Substitute operands with their values and try to fold. */
950 replace_uses_in (stmt
, NULL
, const_val
);
951 fndecl
= get_callee_fndecl (rhs
);
952 arglist
= TREE_OPERAND (rhs
, 1);
953 retval
= fold_builtin (fndecl
, arglist
, false);
955 /* Restore operands to their original form. */
957 FOR_EACH_SSA_USE_OPERAND (var_p
, stmt
, iter
, SSA_OP_USE
)
958 SET_USE (var_p
, orig
[i
++]);
965 /* If we got a simplified form, see if we need to convert its type. */
967 return fold_convert (TREE_TYPE (rhs
), retval
);
969 /* No simplification was possible. */
974 /* Return the tree representing the element referenced by T if T is an
975 ARRAY_REF or COMPONENT_REF into constant aggregates. Return
976 NULL_TREE otherwise. */
979 fold_const_aggregate_ref (tree t
)
982 tree base
, ctor
, idx
, field
;
983 unsigned HOST_WIDE_INT cnt
;
986 switch (TREE_CODE (t
))
989 /* Get a CONSTRUCTOR. If BASE is a VAR_DECL, get its
990 DECL_INITIAL. If BASE is a nested reference into another
991 ARRAY_REF or COMPONENT_REF, make a recursive call to resolve
992 the inner reference. */
993 base
= TREE_OPERAND (t
, 0);
994 switch (TREE_CODE (base
))
997 if (!TREE_READONLY (base
)
998 || TREE_CODE (TREE_TYPE (base
)) != ARRAY_TYPE
999 || !targetm
.binds_local_p (base
))
1002 ctor
= DECL_INITIAL (base
);
1007 ctor
= fold_const_aggregate_ref (base
);
1014 if (ctor
== NULL_TREE
1015 || (TREE_CODE (ctor
) != CONSTRUCTOR
1016 && TREE_CODE (ctor
) != STRING_CST
)
1017 || !TREE_STATIC (ctor
))
1020 /* Get the index. If we have an SSA_NAME, try to resolve it
1021 with the current lattice value for the SSA_NAME. */
1022 idx
= TREE_OPERAND (t
, 1);
1023 switch (TREE_CODE (idx
))
1026 if ((value
= get_value (idx
, true))
1027 && value
->lattice_val
== CONSTANT
1028 && TREE_CODE (value
->value
) == INTEGER_CST
)
1041 /* Fold read from constant string. */
1042 if (TREE_CODE (ctor
) == STRING_CST
)
1044 if ((TYPE_MODE (TREE_TYPE (t
))
1045 == TYPE_MODE (TREE_TYPE (TREE_TYPE (ctor
))))
1046 && (GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_TYPE (ctor
))))
1048 && GET_MODE_SIZE (TYPE_MODE (TREE_TYPE (TREE_TYPE (ctor
)))) == 1
1049 && compare_tree_int (idx
, TREE_STRING_LENGTH (ctor
)) < 0)
1050 return build_int_cst (TREE_TYPE (t
), (TREE_STRING_POINTER (ctor
)
1051 [TREE_INT_CST_LOW (idx
)]));
1055 /* Whoo-hoo! I'll fold ya baby. Yeah! */
1056 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (ctor
), cnt
, cfield
, cval
)
1057 if (tree_int_cst_equal (cfield
, idx
))
1062 /* Get a CONSTRUCTOR. If BASE is a VAR_DECL, get its
1063 DECL_INITIAL. If BASE is a nested reference into another
1064 ARRAY_REF or COMPONENT_REF, make a recursive call to resolve
1065 the inner reference. */
1066 base
= TREE_OPERAND (t
, 0);
1067 switch (TREE_CODE (base
))
1070 if (!TREE_READONLY (base
)
1071 || TREE_CODE (TREE_TYPE (base
)) != RECORD_TYPE
1072 || !targetm
.binds_local_p (base
))
1075 ctor
= DECL_INITIAL (base
);
1080 ctor
= fold_const_aggregate_ref (base
);
1087 if (ctor
== NULL_TREE
1088 || TREE_CODE (ctor
) != CONSTRUCTOR
1089 || !TREE_STATIC (ctor
))
1092 field
= TREE_OPERAND (t
, 1);
1094 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (ctor
), cnt
, cfield
, cval
)
1096 /* FIXME: Handle bit-fields. */
1097 && ! DECL_BIT_FIELD (cfield
))
1104 tree c
= fold_const_aggregate_ref (TREE_OPERAND (t
, 0));
1105 if (c
&& TREE_CODE (c
) == COMPLEX_CST
)
1106 return fold_build1 (TREE_CODE (t
), TREE_TYPE (t
), c
);
1117 /* Evaluate statement STMT. */
1120 evaluate_stmt (tree stmt
)
1123 tree simplified
= NULL_TREE
;
1124 ccp_lattice_t likelyvalue
= likely_value (stmt
);
1127 val
.mem_ref
= NULL_TREE
;
1129 fold_defer_overflow_warnings ();
1131 /* If the statement is likely to have a CONSTANT result, then try
1132 to fold the statement to determine the constant value. */
1133 if (likelyvalue
== CONSTANT
)
1134 simplified
= ccp_fold (stmt
);
1135 /* If the statement is likely to have a VARYING result, then do not
1136 bother folding the statement. */
1137 if (likelyvalue
== VARYING
)
1138 simplified
= get_rhs (stmt
);
1139 /* If the statement is an ARRAY_REF or COMPONENT_REF into constant
1140 aggregates, extract the referenced constant. Otherwise the
1141 statement is likely to have an UNDEFINED value, and there will be
1142 nothing to do. Note that fold_const_aggregate_ref returns
1143 NULL_TREE if the first case does not match. */
1144 else if (!simplified
)
1145 simplified
= fold_const_aggregate_ref (get_rhs (stmt
));
1147 is_constant
= simplified
&& is_gimple_min_invariant (simplified
);
1149 fold_undefer_overflow_warnings (is_constant
, stmt
, 0);
1153 /* The statement produced a constant value. */
1154 val
.lattice_val
= CONSTANT
;
1155 val
.value
= simplified
;
1159 /* The statement produced a nonconstant value. If the statement
1160 had UNDEFINED operands, then the result of the statement
1161 should be UNDEFINED. Otherwise, the statement is VARYING. */
1162 if (likelyvalue
== UNDEFINED
|| likelyvalue
== UNKNOWN_VAL
)
1163 val
.lattice_val
= likelyvalue
;
1165 val
.lattice_val
= VARYING
;
1167 val
.value
= NULL_TREE
;
1174 /* Visit the assignment statement STMT. Set the value of its LHS to the
1175 value computed by the RHS and store LHS in *OUTPUT_P. If STMT
1176 creates virtual definitions, set the value of each new name to that
1177 of the RHS (if we can derive a constant out of the RHS). */
1179 static enum ssa_prop_result
1180 visit_assignment (tree stmt
, tree
*output_p
)
1184 enum ssa_prop_result retval
;
1186 lhs
= TREE_OPERAND (stmt
, 0);
1187 rhs
= TREE_OPERAND (stmt
, 1);
1189 if (TREE_CODE (rhs
) == SSA_NAME
)
1191 /* For a simple copy operation, we copy the lattice values. */
1192 prop_value_t
*nval
= get_value (rhs
, true);
1195 else if (do_store_ccp
&& stmt_makes_single_load (stmt
))
1197 /* Same as above, but the RHS is not a gimple register and yet
1198 has a known VUSE. If STMT is loading from the same memory
1199 location that created the SSA_NAMEs for the virtual operands,
1200 we can propagate the value on the RHS. */
1201 prop_value_t
*nval
= get_value_loaded_by (stmt
, const_val
);
1203 if (nval
&& nval
->mem_ref
1204 && operand_equal_p (nval
->mem_ref
, rhs
, 0))
1207 val
= evaluate_stmt (stmt
);
1210 /* Evaluate the statement. */
1211 val
= evaluate_stmt (stmt
);
1213 /* If the original LHS was a VIEW_CONVERT_EXPR, modify the constant
1214 value to be a VIEW_CONVERT_EXPR of the old constant value.
1216 ??? Also, if this was a definition of a bitfield, we need to widen
1217 the constant value into the type of the destination variable. This
1218 should not be necessary if GCC represented bitfields properly. */
1220 tree orig_lhs
= TREE_OPERAND (stmt
, 0);
1222 if (TREE_CODE (orig_lhs
) == VIEW_CONVERT_EXPR
1223 && val
.lattice_val
== CONSTANT
)
1225 tree w
= fold_unary (VIEW_CONVERT_EXPR
,
1226 TREE_TYPE (TREE_OPERAND (orig_lhs
, 0)),
1229 orig_lhs
= TREE_OPERAND (orig_lhs
, 0);
1230 if (w
&& is_gimple_min_invariant (w
))
1234 val
.lattice_val
= VARYING
;
1239 if (val
.lattice_val
== CONSTANT
1240 && TREE_CODE (orig_lhs
) == COMPONENT_REF
1241 && DECL_BIT_FIELD (TREE_OPERAND (orig_lhs
, 1)))
1243 tree w
= widen_bitfield (val
.value
, TREE_OPERAND (orig_lhs
, 1),
1246 if (w
&& is_gimple_min_invariant (w
))
1250 val
.lattice_val
= VARYING
;
1251 val
.value
= NULL_TREE
;
1252 val
.mem_ref
= NULL_TREE
;
1257 retval
= SSA_PROP_NOT_INTERESTING
;
1259 /* Set the lattice value of the statement's output. */
1260 if (TREE_CODE (lhs
) == SSA_NAME
)
1262 /* If STMT is an assignment to an SSA_NAME, we only have one
1264 if (set_lattice_value (lhs
, val
))
1267 if (val
.lattice_val
== VARYING
)
1268 retval
= SSA_PROP_VARYING
;
1270 retval
= SSA_PROP_INTERESTING
;
1273 else if (do_store_ccp
&& stmt_makes_single_store (stmt
))
1275 /* Otherwise, set the names in V_MAY_DEF/V_MUST_DEF operands
1276 to the new constant value and mark the LHS as the memory
1277 reference associated with VAL. */
1282 /* Stores cannot take on an UNDEFINED value. */
1283 if (val
.lattice_val
== UNDEFINED
)
1284 val
.lattice_val
= UNKNOWN_VAL
;
1286 /* Mark VAL as stored in the LHS of this assignment. */
1289 /* Set the value of every VDEF to VAL. */
1291 FOR_EACH_SSA_TREE_OPERAND (vdef
, stmt
, i
, SSA_OP_VIRTUAL_DEFS
)
1292 changed
|= set_lattice_value (vdef
, val
);
1294 /* Note that for propagation purposes, we are only interested in
1295 visiting statements that load the exact same memory reference
1296 stored here. Those statements will have the exact same list
1297 of virtual uses, so it is enough to set the output of this
1298 statement to be its first virtual definition. */
1299 *output_p
= first_vdef (stmt
);
1302 if (val
.lattice_val
== VARYING
)
1303 retval
= SSA_PROP_VARYING
;
1305 retval
= SSA_PROP_INTERESTING
;
1313 /* Visit the conditional statement STMT. Return SSA_PROP_INTERESTING
1314 if it can determine which edge will be taken. Otherwise, return
1315 SSA_PROP_VARYING. */
1317 static enum ssa_prop_result
1318 visit_cond_stmt (tree stmt
, edge
*taken_edge_p
)
1323 block
= bb_for_stmt (stmt
);
1324 val
= evaluate_stmt (stmt
);
1326 /* Find which edge out of the conditional block will be taken and add it
1327 to the worklist. If no single edge can be determined statically,
1328 return SSA_PROP_VARYING to feed all the outgoing edges to the
1329 propagation engine. */
1330 *taken_edge_p
= val
.value
? find_taken_edge (block
, val
.value
) : 0;
1332 return SSA_PROP_INTERESTING
;
1334 return SSA_PROP_VARYING
;
1338 /* Evaluate statement STMT. If the statement produces an output value and
1339 its evaluation changes the lattice value of its output, return
1340 SSA_PROP_INTERESTING and set *OUTPUT_P to the SSA_NAME holding the
1343 If STMT is a conditional branch and we can determine its truth
1344 value, set *TAKEN_EDGE_P accordingly. If STMT produces a varying
1345 value, return SSA_PROP_VARYING. */
1347 static enum ssa_prop_result
1348 ccp_visit_stmt (tree stmt
, edge
*taken_edge_p
, tree
*output_p
)
1353 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
1355 fprintf (dump_file
, "\nVisiting statement:\n");
1356 print_generic_stmt (dump_file
, stmt
, dump_flags
);
1357 fprintf (dump_file
, "\n");
1360 if (TREE_CODE (stmt
) == MODIFY_EXPR
)
1362 /* If the statement is an assignment that produces a single
1363 output value, evaluate its RHS to see if the lattice value of
1364 its output has changed. */
1365 return visit_assignment (stmt
, output_p
);
1367 else if (TREE_CODE (stmt
) == COND_EXPR
|| TREE_CODE (stmt
) == SWITCH_EXPR
)
1369 /* If STMT is a conditional branch, see if we can determine
1370 which branch will be taken. */
1371 return visit_cond_stmt (stmt
, taken_edge_p
);
1374 /* Any other kind of statement is not interesting for constant
1375 propagation and, therefore, not worth simulating. */
1376 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
1377 fprintf (dump_file
, "No interesting values produced. Marked VARYING.\n");
1379 /* Definitions made by statements other than assignments to
1380 SSA_NAMEs represent unknown modifications to their outputs.
1381 Mark them VARYING. */
1382 FOR_EACH_SSA_TREE_OPERAND (def
, stmt
, iter
, SSA_OP_ALL_DEFS
)
1384 prop_value_t v
= { VARYING
, NULL_TREE
, NULL_TREE
};
1385 set_lattice_value (def
, v
);
1388 return SSA_PROP_VARYING
;
1392 /* Main entry point for SSA Conditional Constant Propagation. */
1395 execute_ssa_ccp (bool store_ccp
)
1397 do_store_ccp
= store_ccp
;
1399 ssa_propagate (ccp_visit_stmt
, ccp_visit_phi_node
);
1407 execute_ssa_ccp (false);
1415 return flag_tree_ccp
!= 0;
1419 struct tree_opt_pass pass_ccp
=
1422 gate_ccp
, /* gate */
1423 do_ssa_ccp
, /* execute */
1426 0, /* static_pass_number */
1427 TV_TREE_CCP
, /* tv_id */
1428 PROP_cfg
| PROP_ssa
| PROP_alias
, /* properties_required */
1429 0, /* properties_provided */
1430 PROP_smt_usage
, /* properties_destroyed */
1431 0, /* todo_flags_start */
1432 TODO_cleanup_cfg
| TODO_dump_func
| TODO_update_ssa
1433 | TODO_ggc_collect
| TODO_verify_ssa
1434 | TODO_verify_stmts
| TODO_update_smt_usage
, /* todo_flags_finish */
1440 do_ssa_store_ccp (void)
1442 /* If STORE-CCP is not enabled, we just run regular CCP. */
1443 execute_ssa_ccp (flag_tree_store_ccp
!= 0);
1448 gate_store_ccp (void)
1450 /* STORE-CCP is enabled only with -ftree-store-ccp, but when
1451 -fno-tree-store-ccp is specified, we should run regular CCP.
1452 That's why the pass is enabled with either flag. */
1453 return flag_tree_store_ccp
!= 0 || flag_tree_ccp
!= 0;
1457 struct tree_opt_pass pass_store_ccp
=
1459 "store_ccp", /* name */
1460 gate_store_ccp
, /* gate */
1461 do_ssa_store_ccp
, /* execute */
1464 0, /* static_pass_number */
1465 TV_TREE_STORE_CCP
, /* tv_id */
1466 PROP_cfg
| PROP_ssa
| PROP_alias
, /* properties_required */
1467 0, /* properties_provided */
1468 PROP_smt_usage
, /* properties_destroyed */
1469 0, /* todo_flags_start */
1470 TODO_dump_func
| TODO_update_ssa
1471 | TODO_ggc_collect
| TODO_verify_ssa
1473 | TODO_verify_stmts
| TODO_update_smt_usage
, /* todo_flags_finish */
1477 /* Given a constant value VAL for bitfield FIELD, and a destination
1478 variable VAR, return VAL appropriately widened to fit into VAR. If
1479 FIELD is wider than HOST_WIDE_INT, NULL is returned. */
1482 widen_bitfield (tree val
, tree field
, tree var
)
1484 unsigned HOST_WIDE_INT var_size
, field_size
;
1486 unsigned HOST_WIDE_INT mask
;
1489 /* We can only do this if the size of the type and field and VAL are
1490 all constants representable in HOST_WIDE_INT. */
1491 if (!host_integerp (TYPE_SIZE (TREE_TYPE (var
)), 1)
1492 || !host_integerp (DECL_SIZE (field
), 1)
1493 || !host_integerp (val
, 0))
1496 var_size
= tree_low_cst (TYPE_SIZE (TREE_TYPE (var
)), 1);
1497 field_size
= tree_low_cst (DECL_SIZE (field
), 1);
1499 /* Give up if either the bitfield or the variable are too wide. */
1500 if (field_size
> HOST_BITS_PER_WIDE_INT
|| var_size
> HOST_BITS_PER_WIDE_INT
)
1503 gcc_assert (var_size
>= field_size
);
1505 /* If the sign bit of the value is not set or the field's type is unsigned,
1506 just mask off the high order bits of the value. */
1507 if (DECL_UNSIGNED (field
)
1508 || !(tree_low_cst (val
, 0) & (((HOST_WIDE_INT
)1) << (field_size
- 1))))
1510 /* Zero extension. Build a mask with the lower 'field_size' bits
1511 set and a BIT_AND_EXPR node to clear the high order bits of
1513 for (i
= 0, mask
= 0; i
< field_size
; i
++)
1514 mask
|= ((HOST_WIDE_INT
) 1) << i
;
1516 wide_val
= fold_build2 (BIT_AND_EXPR
, TREE_TYPE (var
), val
,
1517 build_int_cst (TREE_TYPE (var
), mask
));
1521 /* Sign extension. Create a mask with the upper 'field_size'
1522 bits set and a BIT_IOR_EXPR to set the high order bits of the
1524 for (i
= 0, mask
= 0; i
< (var_size
- field_size
); i
++)
1525 mask
|= ((HOST_WIDE_INT
) 1) << (var_size
- i
- 1);
1527 wide_val
= fold_build2 (BIT_IOR_EXPR
, TREE_TYPE (var
), val
,
1528 build_int_cst (TREE_TYPE (var
), mask
));
1535 /* A subroutine of fold_stmt_r. Attempts to fold *(A+O) to A[X].
1536 BASE is an array type. OFFSET is a byte displacement. ORIG_TYPE
1537 is the desired result type. */
1540 maybe_fold_offset_to_array_ref (tree base
, tree offset
, tree orig_type
)
1542 tree min_idx
, idx
, elt_offset
= integer_zero_node
;
1543 tree array_type
, elt_type
, elt_size
;
1545 /* If BASE is an ARRAY_REF, we can pick up another offset (this time
1546 measured in units of the size of elements type) from that ARRAY_REF).
1547 We can't do anything if either is variable.
1549 The case we handle here is *(&A[N]+O). */
1550 if (TREE_CODE (base
) == ARRAY_REF
)
1552 tree low_bound
= array_ref_low_bound (base
);
1554 elt_offset
= TREE_OPERAND (base
, 1);
1555 if (TREE_CODE (low_bound
) != INTEGER_CST
1556 || TREE_CODE (elt_offset
) != INTEGER_CST
)
1559 elt_offset
= int_const_binop (MINUS_EXPR
, elt_offset
, low_bound
, 0);
1560 base
= TREE_OPERAND (base
, 0);
1563 /* Ignore stupid user tricks of indexing non-array variables. */
1564 array_type
= TREE_TYPE (base
);
1565 if (TREE_CODE (array_type
) != ARRAY_TYPE
)
1567 elt_type
= TREE_TYPE (array_type
);
1568 if (!lang_hooks
.types_compatible_p (orig_type
, elt_type
))
1571 /* If OFFSET and ELT_OFFSET are zero, we don't care about the size of the
1572 element type (so we can use the alignment if it's not constant).
1573 Otherwise, compute the offset as an index by using a division. If the
1574 division isn't exact, then don't do anything. */
1575 elt_size
= TYPE_SIZE_UNIT (elt_type
);
1576 if (integer_zerop (offset
))
1578 if (TREE_CODE (elt_size
) != INTEGER_CST
)
1579 elt_size
= size_int (TYPE_ALIGN (elt_type
));
1581 idx
= integer_zero_node
;
1585 unsigned HOST_WIDE_INT lquo
, lrem
;
1586 HOST_WIDE_INT hquo
, hrem
;
1588 if (TREE_CODE (elt_size
) != INTEGER_CST
1589 || div_and_round_double (TRUNC_DIV_EXPR
, 1,
1590 TREE_INT_CST_LOW (offset
),
1591 TREE_INT_CST_HIGH (offset
),
1592 TREE_INT_CST_LOW (elt_size
),
1593 TREE_INT_CST_HIGH (elt_size
),
1594 &lquo
, &hquo
, &lrem
, &hrem
)
1598 idx
= build_int_cst_wide (NULL_TREE
, lquo
, hquo
);
1601 /* Assume the low bound is zero. If there is a domain type, get the
1602 low bound, if any, convert the index into that type, and add the
1604 min_idx
= integer_zero_node
;
1605 if (TYPE_DOMAIN (array_type
))
1607 if (TYPE_MIN_VALUE (TYPE_DOMAIN (array_type
)))
1608 min_idx
= TYPE_MIN_VALUE (TYPE_DOMAIN (array_type
));
1610 min_idx
= fold_convert (TYPE_DOMAIN (array_type
), min_idx
);
1612 if (TREE_CODE (min_idx
) != INTEGER_CST
)
1615 idx
= fold_convert (TYPE_DOMAIN (array_type
), idx
);
1616 elt_offset
= fold_convert (TYPE_DOMAIN (array_type
), elt_offset
);
1619 if (!integer_zerop (min_idx
))
1620 idx
= int_const_binop (PLUS_EXPR
, idx
, min_idx
, 0);
1621 if (!integer_zerop (elt_offset
))
1622 idx
= int_const_binop (PLUS_EXPR
, idx
, elt_offset
, 0);
1624 return build4 (ARRAY_REF
, orig_type
, base
, idx
, min_idx
,
1625 size_int (tree_low_cst (elt_size
, 1)
1626 / (TYPE_ALIGN_UNIT (elt_type
))));
1630 /* A subroutine of fold_stmt_r. Attempts to fold *(S+O) to S.X.
1631 BASE is a record type. OFFSET is a byte displacement. ORIG_TYPE
1632 is the desired result type. */
1633 /* ??? This doesn't handle class inheritance. */
1636 maybe_fold_offset_to_component_ref (tree record_type
, tree base
, tree offset
,
1637 tree orig_type
, bool base_is_ptr
)
1639 tree f
, t
, field_type
, tail_array_field
, field_offset
;
1641 if (TREE_CODE (record_type
) != RECORD_TYPE
1642 && TREE_CODE (record_type
) != UNION_TYPE
1643 && TREE_CODE (record_type
) != QUAL_UNION_TYPE
)
1646 /* Short-circuit silly cases. */
1647 if (lang_hooks
.types_compatible_p (record_type
, orig_type
))
1650 tail_array_field
= NULL_TREE
;
1651 for (f
= TYPE_FIELDS (record_type
); f
; f
= TREE_CHAIN (f
))
1655 if (TREE_CODE (f
) != FIELD_DECL
)
1657 if (DECL_BIT_FIELD (f
))
1660 field_offset
= byte_position (f
);
1661 if (TREE_CODE (field_offset
) != INTEGER_CST
)
1664 /* ??? Java creates "interesting" fields for representing base classes.
1665 They have no name, and have no context. With no context, we get into
1666 trouble with nonoverlapping_component_refs_p. Skip them. */
1667 if (!DECL_FIELD_CONTEXT (f
))
1670 /* The previous array field isn't at the end. */
1671 tail_array_field
= NULL_TREE
;
1673 /* Check to see if this offset overlaps with the field. */
1674 cmp
= tree_int_cst_compare (field_offset
, offset
);
1678 field_type
= TREE_TYPE (f
);
1680 /* Here we exactly match the offset being checked. If the types match,
1681 then we can return that field. */
1683 && lang_hooks
.types_compatible_p (orig_type
, field_type
))
1686 base
= build1 (INDIRECT_REF
, record_type
, base
);
1687 t
= build3 (COMPONENT_REF
, field_type
, base
, f
, NULL_TREE
);
1691 /* Don't care about offsets into the middle of scalars. */
1692 if (!AGGREGATE_TYPE_P (field_type
))
1695 /* Check for array at the end of the struct. This is often
1696 used as for flexible array members. We should be able to
1697 turn this into an array access anyway. */
1698 if (TREE_CODE (field_type
) == ARRAY_TYPE
)
1699 tail_array_field
= f
;
1701 /* Check the end of the field against the offset. */
1702 if (!DECL_SIZE_UNIT (f
)
1703 || TREE_CODE (DECL_SIZE_UNIT (f
)) != INTEGER_CST
)
1705 t
= int_const_binop (MINUS_EXPR
, offset
, field_offset
, 1);
1706 if (!tree_int_cst_lt (t
, DECL_SIZE_UNIT (f
)))
1709 /* If we matched, then set offset to the displacement into
1715 if (!tail_array_field
)
1718 f
= tail_array_field
;
1719 field_type
= TREE_TYPE (f
);
1720 offset
= int_const_binop (MINUS_EXPR
, offset
, byte_position (f
), 1);
1723 /* If we get here, we've got an aggregate field, and a possibly
1724 nonzero offset into them. Recurse and hope for a valid match. */
1726 base
= build1 (INDIRECT_REF
, record_type
, base
);
1727 base
= build3 (COMPONENT_REF
, field_type
, base
, f
, NULL_TREE
);
1729 t
= maybe_fold_offset_to_array_ref (base
, offset
, orig_type
);
1732 return maybe_fold_offset_to_component_ref (field_type
, base
, offset
,
1737 /* A subroutine of fold_stmt_r. Attempt to simplify *(BASE+OFFSET).
1738 Return the simplified expression, or NULL if nothing could be done. */
1741 maybe_fold_stmt_indirect (tree expr
, tree base
, tree offset
)
1745 /* We may well have constructed a double-nested PLUS_EXPR via multiple
1746 substitutions. Fold that down to one. Remove NON_LVALUE_EXPRs that
1747 are sometimes added. */
1749 STRIP_TYPE_NOPS (base
);
1750 TREE_OPERAND (expr
, 0) = base
;
1752 /* One possibility is that the address reduces to a string constant. */
1753 t
= fold_read_from_constant_string (expr
);
1757 /* Add in any offset from a PLUS_EXPR. */
1758 if (TREE_CODE (base
) == PLUS_EXPR
)
1762 offset2
= TREE_OPERAND (base
, 1);
1763 if (TREE_CODE (offset2
) != INTEGER_CST
)
1765 base
= TREE_OPERAND (base
, 0);
1767 offset
= int_const_binop (PLUS_EXPR
, offset
, offset2
, 1);
1770 if (TREE_CODE (base
) == ADDR_EXPR
)
1772 /* Strip the ADDR_EXPR. */
1773 base
= TREE_OPERAND (base
, 0);
1775 /* Fold away CONST_DECL to its value, if the type is scalar. */
1776 if (TREE_CODE (base
) == CONST_DECL
1777 && ccp_decl_initial_min_invariant (DECL_INITIAL (base
)))
1778 return DECL_INITIAL (base
);
1780 /* Try folding *(&B+O) to B[X]. */
1781 t
= maybe_fold_offset_to_array_ref (base
, offset
, TREE_TYPE (expr
));
1785 /* Try folding *(&B+O) to B.X. */
1786 t
= maybe_fold_offset_to_component_ref (TREE_TYPE (base
), base
, offset
,
1787 TREE_TYPE (expr
), false);
1791 /* Fold *&B to B. We can only do this if EXPR is the same type
1792 as BASE. We can't do this if EXPR is the element type of an array
1793 and BASE is the array. */
1794 if (integer_zerop (offset
)
1795 && lang_hooks
.types_compatible_p (TREE_TYPE (base
),
1801 /* We can get here for out-of-range string constant accesses,
1802 such as "_"[3]. Bail out of the entire substitution search
1803 and arrange for the entire statement to be replaced by a
1804 call to __builtin_trap. In all likelihood this will all be
1805 constant-folded away, but in the meantime we can't leave with
1806 something that get_expr_operands can't understand. */
1810 if (TREE_CODE (t
) == ADDR_EXPR
1811 && TREE_CODE (TREE_OPERAND (t
, 0)) == STRING_CST
)
1813 /* FIXME: Except that this causes problems elsewhere with dead
1814 code not being deleted, and we die in the rtl expanders
1815 because we failed to remove some ssa_name. In the meantime,
1816 just return zero. */
1817 /* FIXME2: This condition should be signaled by
1818 fold_read_from_constant_string directly, rather than
1819 re-checking for it here. */
1820 return integer_zero_node
;
1823 /* Try folding *(B+O) to B->X. Still an improvement. */
1824 if (POINTER_TYPE_P (TREE_TYPE (base
)))
1826 t
= maybe_fold_offset_to_component_ref (TREE_TYPE (TREE_TYPE (base
)),
1828 TREE_TYPE (expr
), true);
1834 /* Otherwise we had an offset that we could not simplify. */
1839 /* A subroutine of fold_stmt_r. EXPR is a PLUS_EXPR.
1841 A quaint feature extant in our address arithmetic is that there
1842 can be hidden type changes here. The type of the result need
1843 not be the same as the type of the input pointer.
1845 What we're after here is an expression of the form
1846 (T *)(&array + const)
1847 where the cast doesn't actually exist, but is implicit in the
1848 type of the PLUS_EXPR. We'd like to turn this into
1850 which may be able to propagate further. */
1853 maybe_fold_stmt_addition (tree expr
)
1855 tree op0
= TREE_OPERAND (expr
, 0);
1856 tree op1
= TREE_OPERAND (expr
, 1);
1857 tree ptr_type
= TREE_TYPE (expr
);
1860 bool subtract
= (TREE_CODE (expr
) == MINUS_EXPR
);
1862 /* We're only interested in pointer arithmetic. */
1863 if (!POINTER_TYPE_P (ptr_type
))
1865 /* Canonicalize the integral operand to op1. */
1866 if (INTEGRAL_TYPE_P (TREE_TYPE (op0
)))
1870 t
= op0
, op0
= op1
, op1
= t
;
1872 /* It had better be a constant. */
1873 if (TREE_CODE (op1
) != INTEGER_CST
)
1875 /* The first operand should be an ADDR_EXPR. */
1876 if (TREE_CODE (op0
) != ADDR_EXPR
)
1878 op0
= TREE_OPERAND (op0
, 0);
1880 /* If the first operand is an ARRAY_REF, expand it so that we can fold
1881 the offset into it. */
1882 while (TREE_CODE (op0
) == ARRAY_REF
)
1884 tree array_obj
= TREE_OPERAND (op0
, 0);
1885 tree array_idx
= TREE_OPERAND (op0
, 1);
1886 tree elt_type
= TREE_TYPE (op0
);
1887 tree elt_size
= TYPE_SIZE_UNIT (elt_type
);
1890 if (TREE_CODE (array_idx
) != INTEGER_CST
)
1892 if (TREE_CODE (elt_size
) != INTEGER_CST
)
1895 /* Un-bias the index by the min index of the array type. */
1896 min_idx
= TYPE_DOMAIN (TREE_TYPE (array_obj
));
1899 min_idx
= TYPE_MIN_VALUE (min_idx
);
1902 if (TREE_CODE (min_idx
) != INTEGER_CST
)
1905 array_idx
= fold_convert (TREE_TYPE (min_idx
), array_idx
);
1906 if (!integer_zerop (min_idx
))
1907 array_idx
= int_const_binop (MINUS_EXPR
, array_idx
,
1912 /* Convert the index to a byte offset. */
1913 array_idx
= fold_convert (sizetype
, array_idx
);
1914 array_idx
= int_const_binop (MULT_EXPR
, array_idx
, elt_size
, 0);
1916 /* Update the operands for the next round, or for folding. */
1917 /* If we're manipulating unsigned types, then folding into negative
1918 values can produce incorrect results. Particularly if the type
1919 is smaller than the width of the pointer. */
1921 && TYPE_UNSIGNED (TREE_TYPE (op1
))
1922 && tree_int_cst_lt (array_idx
, op1
))
1924 op1
= int_const_binop (subtract
? MINUS_EXPR
: PLUS_EXPR
,
1930 /* If we weren't able to fold the subtraction into another array reference,
1931 canonicalize the integer for passing to the array and component ref
1932 simplification functions. */
1935 if (TYPE_UNSIGNED (TREE_TYPE (op1
)))
1937 op1
= fold_unary (NEGATE_EXPR
, TREE_TYPE (op1
), op1
);
1938 /* ??? In theory fold should always produce another integer. */
1939 if (op1
== NULL
|| TREE_CODE (op1
) != INTEGER_CST
)
1943 ptd_type
= TREE_TYPE (ptr_type
);
1945 /* At which point we can try some of the same things as for indirects. */
1946 t
= maybe_fold_offset_to_array_ref (op0
, op1
, ptd_type
);
1948 t
= maybe_fold_offset_to_component_ref (TREE_TYPE (op0
), op0
, op1
,
1951 t
= build1 (ADDR_EXPR
, ptr_type
, t
);
1956 /* For passing state through walk_tree into fold_stmt_r and its
1959 struct fold_stmt_r_data
1963 bool *inside_addr_expr_p
;
1966 /* Subroutine of fold_stmt called via walk_tree. We perform several
1967 simplifications of EXPR_P, mostly having to do with pointer arithmetic. */
1970 fold_stmt_r (tree
*expr_p
, int *walk_subtrees
, void *data
)
1972 struct fold_stmt_r_data
*fold_stmt_r_data
= (struct fold_stmt_r_data
*) data
;
1973 bool *inside_addr_expr_p
= fold_stmt_r_data
->inside_addr_expr_p
;
1974 bool *changed_p
= fold_stmt_r_data
->changed_p
;
1975 tree expr
= *expr_p
, t
;
1977 /* ??? It'd be nice if walk_tree had a pre-order option. */
1978 switch (TREE_CODE (expr
))
1981 t
= walk_tree (&TREE_OPERAND (expr
, 0), fold_stmt_r
, data
, NULL
);
1986 t
= maybe_fold_stmt_indirect (expr
, TREE_OPERAND (expr
, 0),
1990 /* ??? Could handle more ARRAY_REFs here, as a variant of INDIRECT_REF.
1991 We'd only want to bother decomposing an existing ARRAY_REF if
1992 the base array is found to have another offset contained within.
1993 Otherwise we'd be wasting time. */
1995 /* If we are not processing expressions found within an
1996 ADDR_EXPR, then we can fold constant array references. */
1997 if (!*inside_addr_expr_p
)
1998 t
= fold_read_from_constant_string (expr
);
2004 *inside_addr_expr_p
= true;
2005 t
= walk_tree (&TREE_OPERAND (expr
, 0), fold_stmt_r
, data
, NULL
);
2006 *inside_addr_expr_p
= false;
2011 /* Set TREE_INVARIANT properly so that the value is properly
2012 considered constant, and so gets propagated as expected. */
2014 recompute_tree_invariant_for_addr_expr (expr
);
2019 t
= walk_tree (&TREE_OPERAND (expr
, 0), fold_stmt_r
, data
, NULL
);
2022 t
= walk_tree (&TREE_OPERAND (expr
, 1), fold_stmt_r
, data
, NULL
);
2027 t
= maybe_fold_stmt_addition (expr
);
2031 t
= walk_tree (&TREE_OPERAND (expr
, 0), fold_stmt_r
, data
, NULL
);
2036 /* Make sure the FIELD_DECL is actually a field in the type on the lhs.
2037 We've already checked that the records are compatible, so we should
2038 come up with a set of compatible fields. */
2040 tree expr_record
= TREE_TYPE (TREE_OPERAND (expr
, 0));
2041 tree expr_field
= TREE_OPERAND (expr
, 1);
2043 if (DECL_FIELD_CONTEXT (expr_field
) != TYPE_MAIN_VARIANT (expr_record
))
2045 expr_field
= find_compatible_field (expr_record
, expr_field
);
2046 TREE_OPERAND (expr
, 1) = expr_field
;
2051 case TARGET_MEM_REF
:
2052 t
= maybe_fold_tmr (expr
);
2056 if (COMPARISON_CLASS_P (TREE_OPERAND (expr
, 0)))
2058 tree op0
= TREE_OPERAND (expr
, 0);
2062 fold_defer_overflow_warnings ();
2063 tem
= fold_binary (TREE_CODE (op0
), TREE_TYPE (op0
),
2064 TREE_OPERAND (op0
, 0),
2065 TREE_OPERAND (op0
, 1));
2066 set
= tem
&& is_gimple_condexpr (tem
);
2067 fold_undefer_overflow_warnings (set
, fold_stmt_r_data
->stmt
, 0);
2069 TREE_OPERAND (expr
, 0) = tem
;
2088 /* Return the string length, maximum string length or maximum value of
2090 If ARG is an SSA name variable, follow its use-def chains. If LENGTH
2091 is not NULL and, for TYPE == 0, its value is not equal to the length
2092 we determine or if we are unable to determine the length or value,
2093 return false. VISITED is a bitmap of visited variables.
2094 TYPE is 0 if string length should be returned, 1 for maximum string
2095 length and 2 for maximum value ARG can have. */
2098 get_maxval_strlen (tree arg
, tree
*length
, bitmap visited
, int type
)
2100 tree var
, def_stmt
, val
;
2102 if (TREE_CODE (arg
) != SSA_NAME
)
2107 if (TREE_CODE (val
) != INTEGER_CST
2108 || tree_int_cst_sgn (val
) < 0)
2112 val
= c_strlen (arg
, 1);
2120 if (TREE_CODE (*length
) != INTEGER_CST
2121 || TREE_CODE (val
) != INTEGER_CST
)
2124 if (tree_int_cst_lt (*length
, val
))
2128 else if (simple_cst_equal (val
, *length
) != 1)
2136 /* If we were already here, break the infinite cycle. */
2137 if (bitmap_bit_p (visited
, SSA_NAME_VERSION (arg
)))
2139 bitmap_set_bit (visited
, SSA_NAME_VERSION (arg
));
2142 def_stmt
= SSA_NAME_DEF_STMT (var
);
2144 switch (TREE_CODE (def_stmt
))
2150 /* The RHS of the statement defining VAR must either have a
2151 constant length or come from another SSA_NAME with a constant
2153 rhs
= TREE_OPERAND (def_stmt
, 1);
2155 return get_maxval_strlen (rhs
, length
, visited
, type
);
2160 /* All the arguments of the PHI node must have the same constant
2164 for (i
= 0; i
< PHI_NUM_ARGS (def_stmt
); i
++)
2166 tree arg
= PHI_ARG_DEF (def_stmt
, i
);
2168 /* If this PHI has itself as an argument, we cannot
2169 determine the string length of this argument. However,
2170 if we can find a constant string length for the other
2171 PHI args then we can still be sure that this is a
2172 constant string length. So be optimistic and just
2173 continue with the next argument. */
2174 if (arg
== PHI_RESULT (def_stmt
))
2177 if (!get_maxval_strlen (arg
, length
, visited
, type
))
2193 /* Fold builtin call FN in statement STMT. If it cannot be folded into a
2194 constant, return NULL_TREE. Otherwise, return its constant value. */
2197 ccp_fold_builtin (tree stmt
, tree fn
)
2199 tree result
, val
[3];
2200 tree callee
, arglist
, a
;
2201 int arg_mask
, i
, type
;
2205 ignore
= TREE_CODE (stmt
) != MODIFY_EXPR
;
2207 /* First try the generic builtin folder. If that succeeds, return the
2209 callee
= get_callee_fndecl (fn
);
2210 arglist
= TREE_OPERAND (fn
, 1);
2211 result
= fold_builtin (callee
, arglist
, ignore
);
2215 STRIP_NOPS (result
);
2219 /* Ignore MD builtins. */
2220 if (DECL_BUILT_IN_CLASS (callee
) == BUILT_IN_MD
)
2223 /* If the builtin could not be folded, and it has no argument list,
2228 /* Limit the work only for builtins we know how to simplify. */
2229 switch (DECL_FUNCTION_CODE (callee
))
2231 case BUILT_IN_STRLEN
:
2232 case BUILT_IN_FPUTS
:
2233 case BUILT_IN_FPUTS_UNLOCKED
:
2237 case BUILT_IN_STRCPY
:
2238 case BUILT_IN_STRNCPY
:
2242 case BUILT_IN_MEMCPY_CHK
:
2243 case BUILT_IN_MEMPCPY_CHK
:
2244 case BUILT_IN_MEMMOVE_CHK
:
2245 case BUILT_IN_MEMSET_CHK
:
2246 case BUILT_IN_STRNCPY_CHK
:
2250 case BUILT_IN_STRCPY_CHK
:
2251 case BUILT_IN_STPCPY_CHK
:
2255 case BUILT_IN_SNPRINTF_CHK
:
2256 case BUILT_IN_VSNPRINTF_CHK
:
2264 /* Try to use the dataflow information gathered by the CCP process. */
2265 visited
= BITMAP_ALLOC (NULL
);
2267 memset (val
, 0, sizeof (val
));
2268 for (i
= 0, a
= arglist
;
2270 i
++, arg_mask
>>= 1, a
= TREE_CHAIN (a
))
2273 bitmap_clear (visited
);
2274 if (!get_maxval_strlen (TREE_VALUE (a
), &val
[i
], visited
, type
))
2278 BITMAP_FREE (visited
);
2281 switch (DECL_FUNCTION_CODE (callee
))
2283 case BUILT_IN_STRLEN
:
2286 tree
new = fold_convert (TREE_TYPE (fn
), val
[0]);
2288 /* If the result is not a valid gimple value, or not a cast
2289 of a valid gimple value, then we can not use the result. */
2290 if (is_gimple_val (new)
2291 || (is_gimple_cast (new)
2292 && is_gimple_val (TREE_OPERAND (new, 0))))
2297 case BUILT_IN_STRCPY
:
2298 if (val
[1] && is_gimple_val (val
[1]))
2299 result
= fold_builtin_strcpy (callee
, arglist
, val
[1]);
2302 case BUILT_IN_STRNCPY
:
2303 if (val
[1] && is_gimple_val (val
[1]))
2304 result
= fold_builtin_strncpy (callee
, arglist
, val
[1]);
2307 case BUILT_IN_FPUTS
:
2308 result
= fold_builtin_fputs (arglist
,
2309 TREE_CODE (stmt
) != MODIFY_EXPR
, 0,
2313 case BUILT_IN_FPUTS_UNLOCKED
:
2314 result
= fold_builtin_fputs (arglist
,
2315 TREE_CODE (stmt
) != MODIFY_EXPR
, 1,
2319 case BUILT_IN_MEMCPY_CHK
:
2320 case BUILT_IN_MEMPCPY_CHK
:
2321 case BUILT_IN_MEMMOVE_CHK
:
2322 case BUILT_IN_MEMSET_CHK
:
2323 if (val
[2] && is_gimple_val (val
[2]))
2324 result
= fold_builtin_memory_chk (callee
, arglist
, val
[2], ignore
,
2325 DECL_FUNCTION_CODE (callee
));
2328 case BUILT_IN_STRCPY_CHK
:
2329 case BUILT_IN_STPCPY_CHK
:
2330 if (val
[1] && is_gimple_val (val
[1]))
2331 result
= fold_builtin_stxcpy_chk (callee
, arglist
, val
[1], ignore
,
2332 DECL_FUNCTION_CODE (callee
));
2335 case BUILT_IN_STRNCPY_CHK
:
2336 if (val
[2] && is_gimple_val (val
[2]))
2337 result
= fold_builtin_strncpy_chk (arglist
, val
[2]);
2340 case BUILT_IN_SNPRINTF_CHK
:
2341 case BUILT_IN_VSNPRINTF_CHK
:
2342 if (val
[1] && is_gimple_val (val
[1]))
2343 result
= fold_builtin_snprintf_chk (arglist
, val
[1],
2344 DECL_FUNCTION_CODE (callee
));
2351 if (result
&& ignore
)
2352 result
= fold_ignored_result (result
);
2357 /* Fold the statement pointed to by STMT_P. In some cases, this function may
2358 replace the whole statement with a new one. Returns true iff folding
2359 makes any changes. */
2362 fold_stmt (tree
*stmt_p
)
2364 tree rhs
, result
, stmt
;
2365 struct fold_stmt_r_data fold_stmt_r_data
;
2366 bool changed
= false;
2367 bool inside_addr_expr
= false;
2371 fold_stmt_r_data
.stmt
= stmt
;
2372 fold_stmt_r_data
.changed_p
= &changed
;
2373 fold_stmt_r_data
.inside_addr_expr_p
= &inside_addr_expr
;
2375 /* If we replaced constants and the statement makes pointer dereferences,
2376 then we may need to fold instances of *&VAR into VAR, etc. */
2377 if (walk_tree (stmt_p
, fold_stmt_r
, &fold_stmt_r_data
, NULL
))
2380 = build_function_call_expr (implicit_built_in_decls
[BUILT_IN_TRAP
],
2385 rhs
= get_rhs (stmt
);
2390 if (TREE_CODE (rhs
) == CALL_EXPR
)
2394 /* Check for builtins that CCP can handle using information not
2395 available in the generic fold routines. */
2396 callee
= get_callee_fndecl (rhs
);
2397 if (callee
&& DECL_BUILT_IN (callee
))
2398 result
= ccp_fold_builtin (stmt
, rhs
);
2401 /* Check for resolvable OBJ_TYPE_REF. The only sorts we can resolve
2402 here are when we've propagated the address of a decl into the
2404 /* ??? Should perhaps do this in fold proper. However, doing it
2405 there requires that we create a new CALL_EXPR, and that requires
2406 copying EH region info to the new node. Easier to just do it
2407 here where we can just smash the call operand. Also
2408 CALL_EXPR_RETURN_SLOT_OPT needs to be handled correctly and
2409 copied, fold_ternary does not have not information. */
2410 callee
= TREE_OPERAND (rhs
, 0);
2411 if (TREE_CODE (callee
) == OBJ_TYPE_REF
2412 && lang_hooks
.fold_obj_type_ref
2413 && TREE_CODE (OBJ_TYPE_REF_OBJECT (callee
)) == ADDR_EXPR
2414 && DECL_P (TREE_OPERAND
2415 (OBJ_TYPE_REF_OBJECT (callee
), 0)))
2419 /* ??? Caution: Broken ADDR_EXPR semantics means that
2420 looking at the type of the operand of the addr_expr
2421 can yield an array type. See silly exception in
2422 check_pointer_types_r. */
2424 t
= TREE_TYPE (TREE_TYPE (OBJ_TYPE_REF_OBJECT (callee
)));
2425 t
= lang_hooks
.fold_obj_type_ref (callee
, t
);
2428 TREE_OPERAND (rhs
, 0) = t
;
2435 /* If we couldn't fold the RHS, hand over to the generic fold routines. */
2436 if (result
== NULL_TREE
)
2437 result
= fold (rhs
);
2439 /* Strip away useless type conversions. Both the NON_LVALUE_EXPR that
2440 may have been added by fold, and "useless" type conversions that might
2441 now be apparent due to propagation. */
2442 STRIP_USELESS_TYPE_CONVERSION (result
);
2445 changed
|= set_rhs (stmt_p
, result
);
2450 /* Perform the minimal folding on statement STMT. Only operations like
2451 *&x created by constant propagation are handled. The statement cannot
2452 be replaced with a new one. */
2455 fold_stmt_inplace (tree stmt
)
2457 tree old_stmt
= stmt
, rhs
, new_rhs
;
2458 struct fold_stmt_r_data fold_stmt_r_data
;
2459 bool changed
= false;
2460 bool inside_addr_expr
= false;
2462 fold_stmt_r_data
.stmt
= stmt
;
2463 fold_stmt_r_data
.changed_p
= &changed
;
2464 fold_stmt_r_data
.inside_addr_expr_p
= &inside_addr_expr
;
2466 walk_tree (&stmt
, fold_stmt_r
, &fold_stmt_r_data
, NULL
);
2467 gcc_assert (stmt
== old_stmt
);
2469 rhs
= get_rhs (stmt
);
2470 if (!rhs
|| rhs
== stmt
)
2473 new_rhs
= fold (rhs
);
2474 STRIP_USELESS_TYPE_CONVERSION (new_rhs
);
2478 changed
|= set_rhs (&stmt
, new_rhs
);
2479 gcc_assert (stmt
== old_stmt
);
2484 /* Convert EXPR into a GIMPLE value suitable for substitution on the
2485 RHS of an assignment. Insert the necessary statements before
2489 convert_to_gimple_builtin (block_stmt_iterator
*si_p
, tree expr
)
2491 tree_stmt_iterator ti
;
2492 tree stmt
= bsi_stmt (*si_p
);
2493 tree tmp
, stmts
= NULL
;
2495 push_gimplify_context ();
2496 tmp
= get_initialized_tmp_var (expr
, &stmts
, NULL
);
2497 pop_gimplify_context (NULL
);
2499 if (EXPR_HAS_LOCATION (stmt
))
2500 annotate_all_with_locus (&stmts
, EXPR_LOCATION (stmt
));
2502 /* The replacement can expose previously unreferenced variables. */
2503 for (ti
= tsi_start (stmts
); !tsi_end_p (ti
); tsi_next (&ti
))
2505 tree new_stmt
= tsi_stmt (ti
);
2506 find_new_referenced_vars (tsi_stmt_ptr (ti
));
2507 bsi_insert_before (si_p
, new_stmt
, BSI_NEW_STMT
);
2508 mark_new_vars_to_rename (bsi_stmt (*si_p
));
2516 /* A simple pass that attempts to fold all builtin functions. This pass
2517 is run after we've propagated as many constants as we can. */
2520 execute_fold_all_builtins (void)
2522 bool cfg_changed
= false;
2526 block_stmt_iterator i
;
2527 for (i
= bsi_start (bb
); !bsi_end_p (i
); )
2529 tree
*stmtp
= bsi_stmt_ptr (i
);
2530 tree old_stmt
= *stmtp
;
2531 tree call
= get_rhs (*stmtp
);
2532 tree callee
, result
;
2533 enum built_in_function fcode
;
2535 if (!call
|| TREE_CODE (call
) != CALL_EXPR
)
2540 callee
= get_callee_fndecl (call
);
2541 if (!callee
|| DECL_BUILT_IN_CLASS (callee
) != BUILT_IN_NORMAL
)
2546 fcode
= DECL_FUNCTION_CODE (callee
);
2548 result
= ccp_fold_builtin (*stmtp
, call
);
2550 switch (DECL_FUNCTION_CODE (callee
))
2552 case BUILT_IN_CONSTANT_P
:
2553 /* Resolve __builtin_constant_p. If it hasn't been
2554 folded to integer_one_node by now, it's fairly
2555 certain that the value simply isn't constant. */
2556 result
= integer_zero_node
;
2564 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2566 fprintf (dump_file
, "Simplified\n ");
2567 print_generic_stmt (dump_file
, *stmtp
, dump_flags
);
2570 if (!set_rhs (stmtp
, result
))
2572 result
= convert_to_gimple_builtin (&i
, result
);
2575 bool ok
= set_rhs (stmtp
, result
);
2580 mark_new_vars_to_rename (*stmtp
);
2581 if (maybe_clean_or_replace_eh_stmt (old_stmt
, *stmtp
)
2582 && tree_purge_dead_eh_edges (bb
))
2585 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2587 fprintf (dump_file
, "to\n ");
2588 print_generic_stmt (dump_file
, *stmtp
, dump_flags
);
2589 fprintf (dump_file
, "\n");
2592 /* Retry the same statement if it changed into another
2593 builtin, there might be new opportunities now. */
2594 call
= get_rhs (*stmtp
);
2595 if (!call
|| TREE_CODE (call
) != CALL_EXPR
)
2600 callee
= get_callee_fndecl (call
);
2602 || DECL_BUILT_IN_CLASS (callee
) != BUILT_IN_NORMAL
2603 || DECL_FUNCTION_CODE (callee
) == fcode
)
2608 /* Delete unreachable blocks. */
2610 cleanup_tree_cfg ();
2615 struct tree_opt_pass pass_fold_builtins
=
2619 execute_fold_all_builtins
, /* execute */
2622 0, /* static_pass_number */
2624 PROP_cfg
| PROP_ssa
| PROP_alias
, /* properties_required */
2625 0, /* properties_provided */
2626 0, /* properties_destroyed */
2627 0, /* todo_flags_start */
2630 | TODO_update_ssa
, /* todo_flags_finish */