1 /* Tree based points-to analysis
2 Copyright (C) 2005-2016 Free Software Foundation, Inc.
3 Contributed by Daniel Berlin <dberlin@dberlin.org>
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify
8 under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
12 GCC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
23 #include "coretypes.h"
28 #include "alloc-pool.h"
29 #include "tree-pass.h"
32 #include "tree-pretty-print.h"
33 #include "diagnostic-core.h"
34 #include "fold-const.h"
35 #include "stor-layout.h"
37 #include "gimple-iterator.h"
38 #include "tree-into-ssa.h"
41 #include "gimple-walk.h"
43 /* The idea behind this analyzer is to generate set constraints from the
44 program, then solve the resulting constraints in order to generate the
47 Set constraints are a way of modeling program analysis problems that
48 involve sets. They consist of an inclusion constraint language,
49 describing the variables (each variable is a set) and operations that
50 are involved on the variables, and a set of rules that derive facts
51 from these operations. To solve a system of set constraints, you derive
52 all possible facts under the rules, which gives you the correct sets
55 See "Efficient Field-sensitive pointer analysis for C" by "David
56 J. Pearce and Paul H. J. Kelly and Chris Hankin, at
57 http://citeseer.ist.psu.edu/pearce04efficient.html
59 Also see "Ultra-fast Aliasing Analysis using CLA: A Million Lines
60 of C Code in a Second" by ""Nevin Heintze and Olivier Tardieu" at
61 http://citeseer.ist.psu.edu/heintze01ultrafast.html
63 There are three types of real constraint expressions, DEREF,
64 ADDRESSOF, and SCALAR. Each constraint expression consists
65 of a constraint type, a variable, and an offset.
67 SCALAR is a constraint expression type used to represent x, whether
68 it appears on the LHS or the RHS of a statement.
69 DEREF is a constraint expression type used to represent *x, whether
70 it appears on the LHS or the RHS of a statement.
71 ADDRESSOF is a constraint expression used to represent &x, whether
72 it appears on the LHS or the RHS of a statement.
74 Each pointer variable in the program is assigned an integer id, and
75 each field of a structure variable is assigned an integer id as well.
77 Structure variables are linked to their list of fields through a "next
78 field" in each variable that points to the next field in offset
80 Each variable for a structure field has
82 1. "size", that tells the size in bits of that field.
83 2. "fullsize, that tells the size in bits of the entire structure.
84 3. "offset", that tells the offset in bits from the beginning of the
85 structure to this field.
97 foo.a -> id 1, size 32, offset 0, fullsize 64, next foo.b
98 foo.b -> id 2, size 32, offset 32, fullsize 64, next NULL
99 bar -> id 3, size 32, offset 0, fullsize 32, next NULL
102 In order to solve the system of set constraints, the following is
105 1. Each constraint variable x has a solution set associated with it,
108 2. Constraints are separated into direct, copy, and complex.
109 Direct constraints are ADDRESSOF constraints that require no extra
110 processing, such as P = &Q
111 Copy constraints are those of the form P = Q.
112 Complex constraints are all the constraints involving dereferences
113 and offsets (including offsetted copies).
115 3. All direct constraints of the form P = &Q are processed, such
116 that Q is added to Sol(P)
118 4. All complex constraints for a given constraint variable are stored in a
119 linked list attached to that variable's node.
121 5. A directed graph is built out of the copy constraints. Each
122 constraint variable is a node in the graph, and an edge from
123 Q to P is added for each copy constraint of the form P = Q
125 6. The graph is then walked, and solution sets are
126 propagated along the copy edges, such that an edge from Q to P
127 causes Sol(P) <- Sol(P) union Sol(Q).
129 7. As we visit each node, all complex constraints associated with
130 that node are processed by adding appropriate copy edges to the graph, or the
131 appropriate variables to the solution set.
133 8. The process of walking the graph is iterated until no solution
136 Prior to walking the graph in steps 6 and 7, We perform static
137 cycle elimination on the constraint graph, as well
138 as off-line variable substitution.
140 TODO: Adding offsets to pointer-to-structures can be handled (IE not punted
141 on and turned into anything), but isn't. You can just see what offset
142 inside the pointed-to struct it's going to access.
144 TODO: Constant bounded arrays can be handled as if they were structs of the
145 same number of elements.
147 TODO: Modeling heap and incoming pointers becomes much better if we
148 add fields to them as we discover them, which we could do.
150 TODO: We could handle unions, but to be honest, it's probably not
151 worth the pain or slowdown. */
153 /* IPA-PTA optimizations possible.
155 When the indirect function called is ANYTHING we can add disambiguation
156 based on the function signatures (or simply the parameter count which
157 is the varinfo size). We also do not need to consider functions that
158 do not have their address taken.
160 The is_global_var bit which marks escape points is overly conservative
161 in IPA mode. Split it to is_escape_point and is_global_var - only
162 externally visible globals are escape points in IPA mode.
163 There is now is_ipa_escape_point but this is only used in a few
166 The way we introduce DECL_PT_UID to avoid fixing up all points-to
167 sets in the translation unit when we copy a DECL during inlining
168 pessimizes precision. The advantage is that the DECL_PT_UID keeps
169 compile-time and memory usage overhead low - the points-to sets
170 do not grow or get unshared as they would during a fixup phase.
171 An alternative solution is to delay IPA PTA until after all
172 inlining transformations have been applied.
174 The way we propagate clobber/use information isn't optimized.
175 It should use a new complex constraint that properly filters
176 out local variables of the callee (though that would make
177 the sets invalid after inlining). OTOH we might as well
178 admit defeat to WHOPR and simply do all the clobber/use analysis
179 and propagation after PTA finished but before we threw away
180 points-to information for memory variables. WHOPR and PTA
181 do not play along well anyway - the whole constraint solving
182 would need to be done in WPA phase and it will be very interesting
183 to apply the results to local SSA names during LTRANS phase.
185 We probably should compute a per-function unit-ESCAPE solution
186 propagating it simply like the clobber / uses solutions. The
187 solution can go alongside the non-IPA espaced solution and be
188 used to query which vars escape the unit through a function.
189 This is also required to make the escaped-HEAP trick work in IPA mode.
191 We never put function decls in points-to sets so we do not
192 keep the set of called functions for indirect calls.
194 And probably more. */
196 static bool use_field_sensitive
= true;
197 static int in_ipa_mode
= 0;
199 /* Used for predecessor bitmaps. */
200 static bitmap_obstack predbitmap_obstack
;
202 /* Used for points-to sets. */
203 static bitmap_obstack pta_obstack
;
205 /* Used for oldsolution members of variables. */
206 static bitmap_obstack oldpta_obstack
;
208 /* Used for per-solver-iteration bitmaps. */
209 static bitmap_obstack iteration_obstack
;
211 static unsigned int create_variable_info_for (tree
, const char *, bool);
212 typedef struct constraint_graph
*constraint_graph_t
;
213 static void unify_nodes (constraint_graph_t
, unsigned int, unsigned int, bool);
216 typedef struct constraint
*constraint_t
;
219 #define EXECUTE_IF_IN_NONNULL_BITMAP(a, b, c, d) \
221 EXECUTE_IF_SET_IN_BITMAP (a, b, c, d)
223 static struct constraint_stats
225 unsigned int total_vars
;
226 unsigned int nonpointer_vars
;
227 unsigned int unified_vars_static
;
228 unsigned int unified_vars_dynamic
;
229 unsigned int iterations
;
230 unsigned int num_edges
;
231 unsigned int num_implicit_edges
;
232 unsigned int points_to_sets_created
;
237 /* ID of this variable */
240 /* True if this is a variable created by the constraint analysis, such as
241 heap variables and constraints we had to break up. */
242 unsigned int is_artificial_var
: 1;
244 /* True if this is a special variable whose solution set should not be
246 unsigned int is_special_var
: 1;
248 /* True for variables whose size is not known or variable. */
249 unsigned int is_unknown_size_var
: 1;
251 /* True for (sub-)fields that represent a whole variable. */
252 unsigned int is_full_var
: 1;
254 /* True if this is a heap variable. */
255 unsigned int is_heap_var
: 1;
257 /* True if this field may contain pointers. */
258 unsigned int may_have_pointers
: 1;
260 /* True if this field has only restrict qualified pointers. */
261 unsigned int only_restrict_pointers
: 1;
263 /* True if this represents a heap var created for a restrict qualified
265 unsigned int is_restrict_var
: 1;
267 /* True if this represents a global variable. */
268 unsigned int is_global_var
: 1;
270 /* True if this represents a module escape point for IPA analysis. */
271 unsigned int is_ipa_escape_point
: 1;
273 /* True if this represents a IPA function info. */
274 unsigned int is_fn_info
: 1;
276 /* ??? Store somewhere better. */
279 /* The ID of the variable for the next field in this structure
280 or zero for the last field in this structure. */
283 /* The ID of the variable for the first field in this structure. */
286 /* Offset of this variable, in bits, from the base variable */
287 unsigned HOST_WIDE_INT offset
;
289 /* Size of the variable, in bits. */
290 unsigned HOST_WIDE_INT size
;
292 /* Full size of the base variable, in bits. */
293 unsigned HOST_WIDE_INT fullsize
;
295 /* Name of this variable */
298 /* Tree that this variable is associated with. */
301 /* Points-to set for this variable. */
304 /* Old points-to set for this variable. */
307 typedef struct variable_info
*varinfo_t
;
309 static varinfo_t
first_vi_for_offset (varinfo_t
, unsigned HOST_WIDE_INT
);
310 static varinfo_t
first_or_preceding_vi_for_offset (varinfo_t
,
311 unsigned HOST_WIDE_INT
);
312 static varinfo_t
lookup_vi_for_tree (tree
);
313 static inline bool type_can_have_subvars (const_tree
);
314 static void make_param_constraints (varinfo_t
);
316 /* Pool of variable info structures. */
317 static object_allocator
<variable_info
> variable_info_pool
318 ("Variable info pool");
320 /* Map varinfo to final pt_solution. */
321 static hash_map
<varinfo_t
, pt_solution
*> *final_solutions
;
322 struct obstack final_solutions_obstack
;
324 /* Table of variable info structures for constraint variables.
325 Indexed directly by variable info id. */
326 static vec
<varinfo_t
> varmap
;
328 /* Return the varmap element N */
330 static inline varinfo_t
331 get_varinfo (unsigned int n
)
336 /* Return the next variable in the list of sub-variables of VI
337 or NULL if VI is the last sub-variable. */
339 static inline varinfo_t
340 vi_next (varinfo_t vi
)
342 return get_varinfo (vi
->next
);
345 /* Static IDs for the special variables. Variable ID zero is unused
346 and used as terminator for the sub-variable chain. */
347 enum { nothing_id
= 1, anything_id
= 2, string_id
= 3,
348 escaped_id
= 4, nonlocal_id
= 5,
349 storedanything_id
= 6, integer_id
= 7 };
351 /* Return a new variable info structure consisting for a variable
352 named NAME, and using constraint graph node NODE. Append it
353 to the vector of variable info structures. */
356 new_var_info (tree t
, const char *name
, bool add_id
)
358 unsigned index
= varmap
.length ();
359 varinfo_t ret
= variable_info_pool
.allocate ();
361 if (dump_file
&& add_id
)
363 char *tempname
= xasprintf ("%s(%d)", name
, index
);
364 name
= ggc_strdup (tempname
);
371 /* Vars without decl are artificial and do not have sub-variables. */
372 ret
->is_artificial_var
= (t
== NULL_TREE
);
373 ret
->is_special_var
= false;
374 ret
->is_unknown_size_var
= false;
375 ret
->is_full_var
= (t
== NULL_TREE
);
376 ret
->is_heap_var
= false;
377 ret
->may_have_pointers
= true;
378 ret
->only_restrict_pointers
= false;
379 ret
->is_restrict_var
= false;
381 ret
->is_global_var
= (t
== NULL_TREE
);
382 ret
->is_ipa_escape_point
= false;
383 ret
->is_fn_info
= false;
385 ret
->is_global_var
= (is_global_var (t
)
386 /* We have to treat even local register variables
388 || (TREE_CODE (t
) == VAR_DECL
389 && DECL_HARD_REGISTER (t
)));
390 ret
->solution
= BITMAP_ALLOC (&pta_obstack
);
391 ret
->oldsolution
= NULL
;
397 varmap
.safe_push (ret
);
402 /* A map mapping call statements to per-stmt variables for uses
403 and clobbers specific to the call. */
404 static hash_map
<gimple
*, varinfo_t
> *call_stmt_vars
;
406 /* Lookup or create the variable for the call statement CALL. */
409 get_call_vi (gcall
*call
)
414 varinfo_t
*slot_p
= &call_stmt_vars
->get_or_insert (call
, &existed
);
418 vi
= new_var_info (NULL_TREE
, "CALLUSED", true);
422 vi
->is_full_var
= true;
424 vi2
= new_var_info (NULL_TREE
, "CALLCLOBBERED", true);
428 vi2
->is_full_var
= true;
436 /* Lookup the variable for the call statement CALL representing
437 the uses. Returns NULL if there is nothing special about this call. */
440 lookup_call_use_vi (gcall
*call
)
442 varinfo_t
*slot_p
= call_stmt_vars
->get (call
);
449 /* Lookup the variable for the call statement CALL representing
450 the clobbers. Returns NULL if there is nothing special about this call. */
453 lookup_call_clobber_vi (gcall
*call
)
455 varinfo_t uses
= lookup_call_use_vi (call
);
459 return vi_next (uses
);
462 /* Lookup or create the variable for the call statement CALL representing
466 get_call_use_vi (gcall
*call
)
468 return get_call_vi (call
);
471 /* Lookup or create the variable for the call statement CALL representing
474 static varinfo_t ATTRIBUTE_UNUSED
475 get_call_clobber_vi (gcall
*call
)
477 return vi_next (get_call_vi (call
));
481 enum constraint_expr_type
{SCALAR
, DEREF
, ADDRESSOF
};
483 /* An expression that appears in a constraint. */
485 struct constraint_expr
487 /* Constraint type. */
488 constraint_expr_type type
;
490 /* Variable we are referring to in the constraint. */
493 /* Offset, in bits, of this constraint from the beginning of
494 variables it ends up referring to.
496 IOW, in a deref constraint, we would deref, get the result set,
497 then add OFFSET to each member. */
498 HOST_WIDE_INT offset
;
501 /* Use 0x8000... as special unknown offset. */
502 #define UNKNOWN_OFFSET HOST_WIDE_INT_MIN
504 typedef struct constraint_expr ce_s
;
505 static void get_constraint_for_1 (tree
, vec
<ce_s
> *, bool, bool);
506 static void get_constraint_for (tree
, vec
<ce_s
> *);
507 static void get_constraint_for_rhs (tree
, vec
<ce_s
> *);
508 static void do_deref (vec
<ce_s
> *);
510 /* Our set constraints are made up of two constraint expressions, one
513 As described in the introduction, our set constraints each represent an
514 operation between set valued variables.
518 struct constraint_expr lhs
;
519 struct constraint_expr rhs
;
522 /* List of constraints that we use to build the constraint graph from. */
524 static vec
<constraint_t
> constraints
;
525 static object_allocator
<constraint
> constraint_pool ("Constraint pool");
527 /* The constraint graph is represented as an array of bitmaps
528 containing successor nodes. */
530 struct constraint_graph
532 /* Size of this graph, which may be different than the number of
533 nodes in the variable map. */
536 /* Explicit successors of each node. */
539 /* Implicit predecessors of each node (Used for variable
541 bitmap
*implicit_preds
;
543 /* Explicit predecessors of each node (Used for variable substitution). */
546 /* Indirect cycle representatives, or -1 if the node has no indirect
548 int *indirect_cycles
;
550 /* Representative node for a node. rep[a] == a unless the node has
554 /* Equivalence class representative for a label. This is used for
555 variable substitution. */
558 /* Pointer equivalence label for a node. All nodes with the same
559 pointer equivalence label can be unified together at some point
560 (either during constraint optimization or after the constraint
564 /* Pointer equivalence representative for a label. This is used to
565 handle nodes that are pointer equivalent but not location
566 equivalent. We can unite these once the addressof constraints
567 are transformed into initial points-to sets. */
570 /* Pointer equivalence label for each node, used during variable
572 unsigned int *pointer_label
;
574 /* Location equivalence label for each node, used during location
575 equivalence finding. */
576 unsigned int *loc_label
;
578 /* Pointed-by set for each node, used during location equivalence
579 finding. This is pointed-by rather than pointed-to, because it
580 is constructed using the predecessor graph. */
583 /* Points to sets for pointer equivalence. This is *not* the actual
584 points-to sets for nodes. */
587 /* Bitmap of nodes where the bit is set if the node is a direct
588 node. Used for variable substitution. */
589 sbitmap direct_nodes
;
591 /* Bitmap of nodes where the bit is set if the node is address
592 taken. Used for variable substitution. */
593 bitmap address_taken
;
595 /* Vector of complex constraints for each graph node. Complex
596 constraints are those involving dereferences or offsets that are
598 vec
<constraint_t
> *complex;
601 static constraint_graph_t graph
;
603 /* During variable substitution and the offline version of indirect
604 cycle finding, we create nodes to represent dereferences and
605 address taken constraints. These represent where these start and
607 #define FIRST_REF_NODE (varmap).length ()
608 #define LAST_REF_NODE (FIRST_REF_NODE + (FIRST_REF_NODE - 1))
610 /* Return the representative node for NODE, if NODE has been unioned
612 This function performs path compression along the way to finding
613 the representative. */
616 find (unsigned int node
)
618 gcc_checking_assert (node
< graph
->size
);
619 if (graph
->rep
[node
] != node
)
620 return graph
->rep
[node
] = find (graph
->rep
[node
]);
624 /* Union the TO and FROM nodes to the TO nodes.
625 Note that at some point in the future, we may want to do
626 union-by-rank, in which case we are going to have to return the
627 node we unified to. */
630 unite (unsigned int to
, unsigned int from
)
632 gcc_checking_assert (to
< graph
->size
&& from
< graph
->size
);
633 if (to
!= from
&& graph
->rep
[from
] != to
)
635 graph
->rep
[from
] = to
;
641 /* Create a new constraint consisting of LHS and RHS expressions. */
644 new_constraint (const struct constraint_expr lhs
,
645 const struct constraint_expr rhs
)
647 constraint_t ret
= constraint_pool
.allocate ();
653 /* Print out constraint C to FILE. */
656 dump_constraint (FILE *file
, constraint_t c
)
658 if (c
->lhs
.type
== ADDRESSOF
)
660 else if (c
->lhs
.type
== DEREF
)
662 fprintf (file
, "%s", get_varinfo (c
->lhs
.var
)->name
);
663 if (c
->lhs
.offset
== UNKNOWN_OFFSET
)
664 fprintf (file
, " + UNKNOWN");
665 else if (c
->lhs
.offset
!= 0)
666 fprintf (file
, " + " HOST_WIDE_INT_PRINT_DEC
, c
->lhs
.offset
);
667 fprintf (file
, " = ");
668 if (c
->rhs
.type
== ADDRESSOF
)
670 else if (c
->rhs
.type
== DEREF
)
672 fprintf (file
, "%s", get_varinfo (c
->rhs
.var
)->name
);
673 if (c
->rhs
.offset
== UNKNOWN_OFFSET
)
674 fprintf (file
, " + UNKNOWN");
675 else if (c
->rhs
.offset
!= 0)
676 fprintf (file
, " + " HOST_WIDE_INT_PRINT_DEC
, c
->rhs
.offset
);
680 void debug_constraint (constraint_t
);
681 void debug_constraints (void);
682 void debug_constraint_graph (void);
683 void debug_solution_for_var (unsigned int);
684 void debug_sa_points_to_info (void);
686 /* Print out constraint C to stderr. */
689 debug_constraint (constraint_t c
)
691 dump_constraint (stderr
, c
);
692 fprintf (stderr
, "\n");
695 /* Print out all constraints to FILE */
698 dump_constraints (FILE *file
, int from
)
702 for (i
= from
; constraints
.iterate (i
, &c
); i
++)
705 dump_constraint (file
, c
);
706 fprintf (file
, "\n");
710 /* Print out all constraints to stderr. */
713 debug_constraints (void)
715 dump_constraints (stderr
, 0);
718 /* Print the constraint graph in dot format. */
721 dump_constraint_graph (FILE *file
)
725 /* Only print the graph if it has already been initialized: */
729 /* Prints the header of the dot file: */
730 fprintf (file
, "strict digraph {\n");
731 fprintf (file
, " node [\n shape = box\n ]\n");
732 fprintf (file
, " edge [\n fontsize = \"12\"\n ]\n");
733 fprintf (file
, "\n // List of nodes and complex constraints in "
734 "the constraint graph:\n");
736 /* The next lines print the nodes in the graph together with the
737 complex constraints attached to them. */
738 for (i
= 1; i
< graph
->size
; i
++)
740 if (i
== FIRST_REF_NODE
)
744 if (i
< FIRST_REF_NODE
)
745 fprintf (file
, "\"%s\"", get_varinfo (i
)->name
);
747 fprintf (file
, "\"*%s\"", get_varinfo (i
- FIRST_REF_NODE
)->name
);
748 if (graph
->complex[i
].exists ())
752 fprintf (file
, " [label=\"\\N\\n");
753 for (j
= 0; graph
->complex[i
].iterate (j
, &c
); ++j
)
755 dump_constraint (file
, c
);
756 fprintf (file
, "\\l");
758 fprintf (file
, "\"]");
760 fprintf (file
, ";\n");
763 /* Go over the edges. */
764 fprintf (file
, "\n // Edges in the constraint graph:\n");
765 for (i
= 1; i
< graph
->size
; i
++)
771 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->succs
[i
], 0, j
, bi
)
773 unsigned to
= find (j
);
776 if (i
< FIRST_REF_NODE
)
777 fprintf (file
, "\"%s\"", get_varinfo (i
)->name
);
779 fprintf (file
, "\"*%s\"", get_varinfo (i
- FIRST_REF_NODE
)->name
);
780 fprintf (file
, " -> ");
781 if (to
< FIRST_REF_NODE
)
782 fprintf (file
, "\"%s\"", get_varinfo (to
)->name
);
784 fprintf (file
, "\"*%s\"", get_varinfo (to
- FIRST_REF_NODE
)->name
);
785 fprintf (file
, ";\n");
789 /* Prints the tail of the dot file. */
790 fprintf (file
, "}\n");
793 /* Print out the constraint graph to stderr. */
796 debug_constraint_graph (void)
798 dump_constraint_graph (stderr
);
803 The solver is a simple worklist solver, that works on the following
806 sbitmap changed_nodes = all zeroes;
808 For each node that is not already collapsed:
810 set bit in changed nodes
812 while (changed_count > 0)
814 compute topological ordering for constraint graph
816 find and collapse cycles in the constraint graph (updating
817 changed if necessary)
819 for each node (n) in the graph in topological order:
822 Process each complex constraint associated with the node,
823 updating changed if necessary.
825 For each outgoing edge from n, propagate the solution from n to
826 the destination of the edge, updating changed as necessary.
830 /* Return true if two constraint expressions A and B are equal. */
833 constraint_expr_equal (struct constraint_expr a
, struct constraint_expr b
)
835 return a
.type
== b
.type
&& a
.var
== b
.var
&& a
.offset
== b
.offset
;
838 /* Return true if constraint expression A is less than constraint expression
839 B. This is just arbitrary, but consistent, in order to give them an
843 constraint_expr_less (struct constraint_expr a
, struct constraint_expr b
)
845 if (a
.type
== b
.type
)
848 return a
.offset
< b
.offset
;
850 return a
.var
< b
.var
;
853 return a
.type
< b
.type
;
856 /* Return true if constraint A is less than constraint B. This is just
857 arbitrary, but consistent, in order to give them an ordering. */
860 constraint_less (const constraint_t
&a
, const constraint_t
&b
)
862 if (constraint_expr_less (a
->lhs
, b
->lhs
))
864 else if (constraint_expr_less (b
->lhs
, a
->lhs
))
867 return constraint_expr_less (a
->rhs
, b
->rhs
);
870 /* Return true if two constraints A and B are equal. */
873 constraint_equal (struct constraint a
, struct constraint b
)
875 return constraint_expr_equal (a
.lhs
, b
.lhs
)
876 && constraint_expr_equal (a
.rhs
, b
.rhs
);
880 /* Find a constraint LOOKFOR in the sorted constraint vector VEC */
883 constraint_vec_find (vec
<constraint_t
> vec
,
884 struct constraint lookfor
)
892 place
= vec
.lower_bound (&lookfor
, constraint_less
);
893 if (place
>= vec
.length ())
896 if (!constraint_equal (*found
, lookfor
))
901 /* Union two constraint vectors, TO and FROM. Put the result in TO.
902 Returns true of TO set is changed. */
905 constraint_set_union (vec
<constraint_t
> *to
,
906 vec
<constraint_t
> *from
)
910 bool any_change
= false;
912 FOR_EACH_VEC_ELT (*from
, i
, c
)
914 if (constraint_vec_find (*to
, *c
) == NULL
)
916 unsigned int place
= to
->lower_bound (c
, constraint_less
);
917 to
->safe_insert (place
, c
);
924 /* Expands the solution in SET to all sub-fields of variables included. */
927 solution_set_expand (bitmap set
, bitmap
*expanded
)
935 *expanded
= BITMAP_ALLOC (&iteration_obstack
);
937 /* In a first pass expand to the head of the variables we need to
938 add all sub-fields off. This avoids quadratic behavior. */
939 EXECUTE_IF_SET_IN_BITMAP (set
, 0, j
, bi
)
941 varinfo_t v
= get_varinfo (j
);
942 if (v
->is_artificial_var
945 bitmap_set_bit (*expanded
, v
->head
);
948 /* In the second pass now expand all head variables with subfields. */
949 EXECUTE_IF_SET_IN_BITMAP (*expanded
, 0, j
, bi
)
951 varinfo_t v
= get_varinfo (j
);
954 for (v
= vi_next (v
); v
!= NULL
; v
= vi_next (v
))
955 bitmap_set_bit (*expanded
, v
->id
);
958 /* And finally set the rest of the bits from SET. */
959 bitmap_ior_into (*expanded
, set
);
964 /* Union solution sets TO and DELTA, and add INC to each member of DELTA in the
968 set_union_with_increment (bitmap to
, bitmap delta
, HOST_WIDE_INT inc
,
969 bitmap
*expanded_delta
)
971 bool changed
= false;
975 /* If the solution of DELTA contains anything it is good enough to transfer
977 if (bitmap_bit_p (delta
, anything_id
))
978 return bitmap_set_bit (to
, anything_id
);
980 /* If the offset is unknown we have to expand the solution to
982 if (inc
== UNKNOWN_OFFSET
)
984 delta
= solution_set_expand (delta
, expanded_delta
);
985 changed
|= bitmap_ior_into (to
, delta
);
989 /* For non-zero offset union the offsetted solution into the destination. */
990 EXECUTE_IF_SET_IN_BITMAP (delta
, 0, i
, bi
)
992 varinfo_t vi
= get_varinfo (i
);
994 /* If this is a variable with just one field just set its bit
996 if (vi
->is_artificial_var
997 || vi
->is_unknown_size_var
999 changed
|= bitmap_set_bit (to
, i
);
1002 HOST_WIDE_INT fieldoffset
= vi
->offset
+ inc
;
1003 unsigned HOST_WIDE_INT size
= vi
->size
;
1005 /* If the offset makes the pointer point to before the
1006 variable use offset zero for the field lookup. */
1007 if (fieldoffset
< 0)
1008 vi
= get_varinfo (vi
->head
);
1010 vi
= first_or_preceding_vi_for_offset (vi
, fieldoffset
);
1014 changed
|= bitmap_set_bit (to
, vi
->id
);
1019 /* We have to include all fields that overlap the current field
1023 while (vi
->offset
< fieldoffset
+ size
);
1030 /* Insert constraint C into the list of complex constraints for graph
1034 insert_into_complex (constraint_graph_t graph
,
1035 unsigned int var
, constraint_t c
)
1037 vec
<constraint_t
> complex = graph
->complex[var
];
1038 unsigned int place
= complex.lower_bound (c
, constraint_less
);
1040 /* Only insert constraints that do not already exist. */
1041 if (place
>= complex.length ()
1042 || !constraint_equal (*c
, *complex[place
]))
1043 graph
->complex[var
].safe_insert (place
, c
);
1047 /* Condense two variable nodes into a single variable node, by moving
1048 all associated info from FROM to TO. Returns true if TO node's
1049 constraint set changes after the merge. */
1052 merge_node_constraints (constraint_graph_t graph
, unsigned int to
,
1057 bool any_change
= false;
1059 gcc_checking_assert (find (from
) == to
);
1061 /* Move all complex constraints from src node into to node */
1062 FOR_EACH_VEC_ELT (graph
->complex[from
], i
, c
)
1064 /* In complex constraints for node FROM, we may have either
1065 a = *FROM, and *FROM = a, or an offseted constraint which are
1066 always added to the rhs node's constraints. */
1068 if (c
->rhs
.type
== DEREF
)
1070 else if (c
->lhs
.type
== DEREF
)
1076 any_change
= constraint_set_union (&graph
->complex[to
],
1077 &graph
->complex[from
]);
1078 graph
->complex[from
].release ();
1083 /* Remove edges involving NODE from GRAPH. */
1086 clear_edges_for_node (constraint_graph_t graph
, unsigned int node
)
1088 if (graph
->succs
[node
])
1089 BITMAP_FREE (graph
->succs
[node
]);
1092 /* Merge GRAPH nodes FROM and TO into node TO. */
1095 merge_graph_nodes (constraint_graph_t graph
, unsigned int to
,
1098 if (graph
->indirect_cycles
[from
] != -1)
1100 /* If we have indirect cycles with the from node, and we have
1101 none on the to node, the to node has indirect cycles from the
1102 from node now that they are unified.
1103 If indirect cycles exist on both, unify the nodes that they
1104 are in a cycle with, since we know they are in a cycle with
1106 if (graph
->indirect_cycles
[to
] == -1)
1107 graph
->indirect_cycles
[to
] = graph
->indirect_cycles
[from
];
1110 /* Merge all the successor edges. */
1111 if (graph
->succs
[from
])
1113 if (!graph
->succs
[to
])
1114 graph
->succs
[to
] = BITMAP_ALLOC (&pta_obstack
);
1115 bitmap_ior_into (graph
->succs
[to
],
1116 graph
->succs
[from
]);
1119 clear_edges_for_node (graph
, from
);
1123 /* Add an indirect graph edge to GRAPH, going from TO to FROM if
1124 it doesn't exist in the graph already. */
1127 add_implicit_graph_edge (constraint_graph_t graph
, unsigned int to
,
1133 if (!graph
->implicit_preds
[to
])
1134 graph
->implicit_preds
[to
] = BITMAP_ALLOC (&predbitmap_obstack
);
1136 if (bitmap_set_bit (graph
->implicit_preds
[to
], from
))
1137 stats
.num_implicit_edges
++;
1140 /* Add a predecessor graph edge to GRAPH, going from TO to FROM if
1141 it doesn't exist in the graph already.
1142 Return false if the edge already existed, true otherwise. */
1145 add_pred_graph_edge (constraint_graph_t graph
, unsigned int to
,
1148 if (!graph
->preds
[to
])
1149 graph
->preds
[to
] = BITMAP_ALLOC (&predbitmap_obstack
);
1150 bitmap_set_bit (graph
->preds
[to
], from
);
1153 /* Add a graph edge to GRAPH, going from FROM to TO if
1154 it doesn't exist in the graph already.
1155 Return false if the edge already existed, true otherwise. */
1158 add_graph_edge (constraint_graph_t graph
, unsigned int to
,
1169 if (!graph
->succs
[from
])
1170 graph
->succs
[from
] = BITMAP_ALLOC (&pta_obstack
);
1171 if (bitmap_set_bit (graph
->succs
[from
], to
))
1174 if (to
< FIRST_REF_NODE
&& from
< FIRST_REF_NODE
)
1182 /* Initialize the constraint graph structure to contain SIZE nodes. */
1185 init_graph (unsigned int size
)
1189 graph
= XCNEW (struct constraint_graph
);
1191 graph
->succs
= XCNEWVEC (bitmap
, graph
->size
);
1192 graph
->indirect_cycles
= XNEWVEC (int, graph
->size
);
1193 graph
->rep
= XNEWVEC (unsigned int, graph
->size
);
1194 /* ??? Macros do not support template types with multiple arguments,
1195 so we use a typedef to work around it. */
1196 typedef vec
<constraint_t
> vec_constraint_t_heap
;
1197 graph
->complex = XCNEWVEC (vec_constraint_t_heap
, size
);
1198 graph
->pe
= XCNEWVEC (unsigned int, graph
->size
);
1199 graph
->pe_rep
= XNEWVEC (int, graph
->size
);
1201 for (j
= 0; j
< graph
->size
; j
++)
1204 graph
->pe_rep
[j
] = -1;
1205 graph
->indirect_cycles
[j
] = -1;
1209 /* Build the constraint graph, adding only predecessor edges right now. */
1212 build_pred_graph (void)
1218 graph
->implicit_preds
= XCNEWVEC (bitmap
, graph
->size
);
1219 graph
->preds
= XCNEWVEC (bitmap
, graph
->size
);
1220 graph
->pointer_label
= XCNEWVEC (unsigned int, graph
->size
);
1221 graph
->loc_label
= XCNEWVEC (unsigned int, graph
->size
);
1222 graph
->pointed_by
= XCNEWVEC (bitmap
, graph
->size
);
1223 graph
->points_to
= XCNEWVEC (bitmap
, graph
->size
);
1224 graph
->eq_rep
= XNEWVEC (int, graph
->size
);
1225 graph
->direct_nodes
= sbitmap_alloc (graph
->size
);
1226 graph
->address_taken
= BITMAP_ALLOC (&predbitmap_obstack
);
1227 bitmap_clear (graph
->direct_nodes
);
1229 for (j
= 1; j
< FIRST_REF_NODE
; j
++)
1231 if (!get_varinfo (j
)->is_special_var
)
1232 bitmap_set_bit (graph
->direct_nodes
, j
);
1235 for (j
= 0; j
< graph
->size
; j
++)
1236 graph
->eq_rep
[j
] = -1;
1238 for (j
= 0; j
< varmap
.length (); j
++)
1239 graph
->indirect_cycles
[j
] = -1;
1241 FOR_EACH_VEC_ELT (constraints
, i
, c
)
1243 struct constraint_expr lhs
= c
->lhs
;
1244 struct constraint_expr rhs
= c
->rhs
;
1245 unsigned int lhsvar
= lhs
.var
;
1246 unsigned int rhsvar
= rhs
.var
;
1248 if (lhs
.type
== DEREF
)
1251 if (rhs
.offset
== 0 && lhs
.offset
== 0 && rhs
.type
== SCALAR
)
1252 add_pred_graph_edge (graph
, FIRST_REF_NODE
+ lhsvar
, rhsvar
);
1254 else if (rhs
.type
== DEREF
)
1257 if (rhs
.offset
== 0 && lhs
.offset
== 0 && lhs
.type
== SCALAR
)
1258 add_pred_graph_edge (graph
, lhsvar
, FIRST_REF_NODE
+ rhsvar
);
1260 bitmap_clear_bit (graph
->direct_nodes
, lhsvar
);
1262 else if (rhs
.type
== ADDRESSOF
)
1267 if (graph
->points_to
[lhsvar
] == NULL
)
1268 graph
->points_to
[lhsvar
] = BITMAP_ALLOC (&predbitmap_obstack
);
1269 bitmap_set_bit (graph
->points_to
[lhsvar
], rhsvar
);
1271 if (graph
->pointed_by
[rhsvar
] == NULL
)
1272 graph
->pointed_by
[rhsvar
] = BITMAP_ALLOC (&predbitmap_obstack
);
1273 bitmap_set_bit (graph
->pointed_by
[rhsvar
], lhsvar
);
1275 /* Implicitly, *x = y */
1276 add_implicit_graph_edge (graph
, FIRST_REF_NODE
+ lhsvar
, rhsvar
);
1278 /* All related variables are no longer direct nodes. */
1279 bitmap_clear_bit (graph
->direct_nodes
, rhsvar
);
1280 v
= get_varinfo (rhsvar
);
1281 if (!v
->is_full_var
)
1283 v
= get_varinfo (v
->head
);
1286 bitmap_clear_bit (graph
->direct_nodes
, v
->id
);
1291 bitmap_set_bit (graph
->address_taken
, rhsvar
);
1293 else if (lhsvar
> anything_id
1294 && lhsvar
!= rhsvar
&& lhs
.offset
== 0 && rhs
.offset
== 0)
1297 add_pred_graph_edge (graph
, lhsvar
, rhsvar
);
1298 /* Implicitly, *x = *y */
1299 add_implicit_graph_edge (graph
, FIRST_REF_NODE
+ lhsvar
,
1300 FIRST_REF_NODE
+ rhsvar
);
1302 else if (lhs
.offset
!= 0 || rhs
.offset
!= 0)
1304 if (rhs
.offset
!= 0)
1305 bitmap_clear_bit (graph
->direct_nodes
, lhs
.var
);
1306 else if (lhs
.offset
!= 0)
1307 bitmap_clear_bit (graph
->direct_nodes
, rhs
.var
);
1312 /* Build the constraint graph, adding successor edges. */
1315 build_succ_graph (void)
1320 FOR_EACH_VEC_ELT (constraints
, i
, c
)
1322 struct constraint_expr lhs
;
1323 struct constraint_expr rhs
;
1324 unsigned int lhsvar
;
1325 unsigned int rhsvar
;
1332 lhsvar
= find (lhs
.var
);
1333 rhsvar
= find (rhs
.var
);
1335 if (lhs
.type
== DEREF
)
1337 if (rhs
.offset
== 0 && lhs
.offset
== 0 && rhs
.type
== SCALAR
)
1338 add_graph_edge (graph
, FIRST_REF_NODE
+ lhsvar
, rhsvar
);
1340 else if (rhs
.type
== DEREF
)
1342 if (rhs
.offset
== 0 && lhs
.offset
== 0 && lhs
.type
== SCALAR
)
1343 add_graph_edge (graph
, lhsvar
, FIRST_REF_NODE
+ rhsvar
);
1345 else if (rhs
.type
== ADDRESSOF
)
1348 gcc_checking_assert (find (rhs
.var
) == rhs
.var
);
1349 bitmap_set_bit (get_varinfo (lhsvar
)->solution
, rhsvar
);
1351 else if (lhsvar
> anything_id
1352 && lhsvar
!= rhsvar
&& lhs
.offset
== 0 && rhs
.offset
== 0)
1354 add_graph_edge (graph
, lhsvar
, rhsvar
);
1358 /* Add edges from STOREDANYTHING to all non-direct nodes that can
1359 receive pointers. */
1360 t
= find (storedanything_id
);
1361 for (i
= integer_id
+ 1; i
< FIRST_REF_NODE
; ++i
)
1363 if (!bitmap_bit_p (graph
->direct_nodes
, i
)
1364 && get_varinfo (i
)->may_have_pointers
)
1365 add_graph_edge (graph
, find (i
), t
);
1368 /* Everything stored to ANYTHING also potentially escapes. */
1369 add_graph_edge (graph
, find (escaped_id
), t
);
1373 /* Changed variables on the last iteration. */
1374 static bitmap changed
;
1376 /* Strongly Connected Component visitation info. */
1383 unsigned int *node_mapping
;
1385 vec
<unsigned> scc_stack
;
1389 /* Recursive routine to find strongly connected components in GRAPH.
1390 SI is the SCC info to store the information in, and N is the id of current
1391 graph node we are processing.
1393 This is Tarjan's strongly connected component finding algorithm, as
1394 modified by Nuutila to keep only non-root nodes on the stack.
1395 The algorithm can be found in "On finding the strongly connected
1396 connected components in a directed graph" by Esko Nuutila and Eljas
1397 Soisalon-Soininen, in Information Processing Letters volume 49,
1398 number 1, pages 9-14. */
1401 scc_visit (constraint_graph_t graph
, struct scc_info
*si
, unsigned int n
)
1405 unsigned int my_dfs
;
1407 bitmap_set_bit (si
->visited
, n
);
1408 si
->dfs
[n
] = si
->current_index
++;
1409 my_dfs
= si
->dfs
[n
];
1411 /* Visit all the successors. */
1412 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->succs
[n
], 0, i
, bi
)
1416 if (i
> LAST_REF_NODE
)
1420 if (bitmap_bit_p (si
->deleted
, w
))
1423 if (!bitmap_bit_p (si
->visited
, w
))
1424 scc_visit (graph
, si
, w
);
1426 unsigned int t
= find (w
);
1427 gcc_checking_assert (find (n
) == n
);
1428 if (si
->dfs
[t
] < si
->dfs
[n
])
1429 si
->dfs
[n
] = si
->dfs
[t
];
1432 /* See if any components have been identified. */
1433 if (si
->dfs
[n
] == my_dfs
)
1435 if (si
->scc_stack
.length () > 0
1436 && si
->dfs
[si
->scc_stack
.last ()] >= my_dfs
)
1438 bitmap scc
= BITMAP_ALLOC (NULL
);
1439 unsigned int lowest_node
;
1442 bitmap_set_bit (scc
, n
);
1444 while (si
->scc_stack
.length () != 0
1445 && si
->dfs
[si
->scc_stack
.last ()] >= my_dfs
)
1447 unsigned int w
= si
->scc_stack
.pop ();
1449 bitmap_set_bit (scc
, w
);
1452 lowest_node
= bitmap_first_set_bit (scc
);
1453 gcc_assert (lowest_node
< FIRST_REF_NODE
);
1455 /* Collapse the SCC nodes into a single node, and mark the
1457 EXECUTE_IF_SET_IN_BITMAP (scc
, 0, i
, bi
)
1459 if (i
< FIRST_REF_NODE
)
1461 if (unite (lowest_node
, i
))
1462 unify_nodes (graph
, lowest_node
, i
, false);
1466 unite (lowest_node
, i
);
1467 graph
->indirect_cycles
[i
- FIRST_REF_NODE
] = lowest_node
;
1471 bitmap_set_bit (si
->deleted
, n
);
1474 si
->scc_stack
.safe_push (n
);
1477 /* Unify node FROM into node TO, updating the changed count if
1478 necessary when UPDATE_CHANGED is true. */
1481 unify_nodes (constraint_graph_t graph
, unsigned int to
, unsigned int from
,
1482 bool update_changed
)
1484 gcc_checking_assert (to
!= from
&& find (to
) == to
);
1486 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
1487 fprintf (dump_file
, "Unifying %s to %s\n",
1488 get_varinfo (from
)->name
,
1489 get_varinfo (to
)->name
);
1492 stats
.unified_vars_dynamic
++;
1494 stats
.unified_vars_static
++;
1496 merge_graph_nodes (graph
, to
, from
);
1497 if (merge_node_constraints (graph
, to
, from
))
1500 bitmap_set_bit (changed
, to
);
1503 /* Mark TO as changed if FROM was changed. If TO was already marked
1504 as changed, decrease the changed count. */
1507 && bitmap_clear_bit (changed
, from
))
1508 bitmap_set_bit (changed
, to
);
1509 varinfo_t fromvi
= get_varinfo (from
);
1510 if (fromvi
->solution
)
1512 /* If the solution changes because of the merging, we need to mark
1513 the variable as changed. */
1514 varinfo_t tovi
= get_varinfo (to
);
1515 if (bitmap_ior_into (tovi
->solution
, fromvi
->solution
))
1518 bitmap_set_bit (changed
, to
);
1521 BITMAP_FREE (fromvi
->solution
);
1522 if (fromvi
->oldsolution
)
1523 BITMAP_FREE (fromvi
->oldsolution
);
1525 if (stats
.iterations
> 0
1526 && tovi
->oldsolution
)
1527 BITMAP_FREE (tovi
->oldsolution
);
1529 if (graph
->succs
[to
])
1530 bitmap_clear_bit (graph
->succs
[to
], to
);
1533 /* Information needed to compute the topological ordering of a graph. */
1537 /* sbitmap of visited nodes. */
1539 /* Array that stores the topological order of the graph, *in
1541 vec
<unsigned> topo_order
;
1545 /* Initialize and return a topological info structure. */
1547 static struct topo_info
*
1548 init_topo_info (void)
1550 size_t size
= graph
->size
;
1551 struct topo_info
*ti
= XNEW (struct topo_info
);
1552 ti
->visited
= sbitmap_alloc (size
);
1553 bitmap_clear (ti
->visited
);
1554 ti
->topo_order
.create (1);
1559 /* Free the topological sort info pointed to by TI. */
1562 free_topo_info (struct topo_info
*ti
)
1564 sbitmap_free (ti
->visited
);
1565 ti
->topo_order
.release ();
1569 /* Visit the graph in topological order, and store the order in the
1570 topo_info structure. */
1573 topo_visit (constraint_graph_t graph
, struct topo_info
*ti
,
1579 bitmap_set_bit (ti
->visited
, n
);
1581 if (graph
->succs
[n
])
1582 EXECUTE_IF_SET_IN_BITMAP (graph
->succs
[n
], 0, j
, bi
)
1584 if (!bitmap_bit_p (ti
->visited
, j
))
1585 topo_visit (graph
, ti
, j
);
1588 ti
->topo_order
.safe_push (n
);
1591 /* Process a constraint C that represents x = *(y + off), using DELTA as the
1592 starting solution for y. */
1595 do_sd_constraint (constraint_graph_t graph
, constraint_t c
,
1596 bitmap delta
, bitmap
*expanded_delta
)
1598 unsigned int lhs
= c
->lhs
.var
;
1600 bitmap sol
= get_varinfo (lhs
)->solution
;
1603 HOST_WIDE_INT roffset
= c
->rhs
.offset
;
1605 /* Our IL does not allow this. */
1606 gcc_checking_assert (c
->lhs
.offset
== 0);
1608 /* If the solution of Y contains anything it is good enough to transfer
1610 if (bitmap_bit_p (delta
, anything_id
))
1612 flag
|= bitmap_set_bit (sol
, anything_id
);
1616 /* If we do not know at with offset the rhs is dereferenced compute
1617 the reachability set of DELTA, conservatively assuming it is
1618 dereferenced at all valid offsets. */
1619 if (roffset
== UNKNOWN_OFFSET
)
1621 delta
= solution_set_expand (delta
, expanded_delta
);
1622 /* No further offset processing is necessary. */
1626 /* For each variable j in delta (Sol(y)), add
1627 an edge in the graph from j to x, and union Sol(j) into Sol(x). */
1628 EXECUTE_IF_SET_IN_BITMAP (delta
, 0, j
, bi
)
1630 varinfo_t v
= get_varinfo (j
);
1631 HOST_WIDE_INT fieldoffset
= v
->offset
+ roffset
;
1632 unsigned HOST_WIDE_INT size
= v
->size
;
1637 else if (roffset
!= 0)
1639 if (fieldoffset
< 0)
1640 v
= get_varinfo (v
->head
);
1642 v
= first_or_preceding_vi_for_offset (v
, fieldoffset
);
1645 /* We have to include all fields that overlap the current field
1646 shifted by roffset. */
1651 /* Adding edges from the special vars is pointless.
1652 They don't have sets that can change. */
1653 if (get_varinfo (t
)->is_special_var
)
1654 flag
|= bitmap_ior_into (sol
, get_varinfo (t
)->solution
);
1655 /* Merging the solution from ESCAPED needlessly increases
1656 the set. Use ESCAPED as representative instead. */
1657 else if (v
->id
== escaped_id
)
1658 flag
|= bitmap_set_bit (sol
, escaped_id
);
1659 else if (v
->may_have_pointers
1660 && add_graph_edge (graph
, lhs
, t
))
1661 flag
|= bitmap_ior_into (sol
, get_varinfo (t
)->solution
);
1669 while (v
->offset
< fieldoffset
+ size
);
1673 /* If the LHS solution changed, mark the var as changed. */
1676 get_varinfo (lhs
)->solution
= sol
;
1677 bitmap_set_bit (changed
, lhs
);
1681 /* Process a constraint C that represents *(x + off) = y using DELTA
1682 as the starting solution for x. */
1685 do_ds_constraint (constraint_t c
, bitmap delta
, bitmap
*expanded_delta
)
1687 unsigned int rhs
= c
->rhs
.var
;
1688 bitmap sol
= get_varinfo (rhs
)->solution
;
1691 HOST_WIDE_INT loff
= c
->lhs
.offset
;
1692 bool escaped_p
= false;
1694 /* Our IL does not allow this. */
1695 gcc_checking_assert (c
->rhs
.offset
== 0);
1697 /* If the solution of y contains ANYTHING simply use the ANYTHING
1698 solution. This avoids needlessly increasing the points-to sets. */
1699 if (bitmap_bit_p (sol
, anything_id
))
1700 sol
= get_varinfo (find (anything_id
))->solution
;
1702 /* If the solution for x contains ANYTHING we have to merge the
1703 solution of y into all pointer variables which we do via
1705 if (bitmap_bit_p (delta
, anything_id
))
1707 unsigned t
= find (storedanything_id
);
1708 if (add_graph_edge (graph
, t
, rhs
))
1710 if (bitmap_ior_into (get_varinfo (t
)->solution
, sol
))
1711 bitmap_set_bit (changed
, t
);
1716 /* If we do not know at with offset the rhs is dereferenced compute
1717 the reachability set of DELTA, conservatively assuming it is
1718 dereferenced at all valid offsets. */
1719 if (loff
== UNKNOWN_OFFSET
)
1721 delta
= solution_set_expand (delta
, expanded_delta
);
1725 /* For each member j of delta (Sol(x)), add an edge from y to j and
1726 union Sol(y) into Sol(j) */
1727 EXECUTE_IF_SET_IN_BITMAP (delta
, 0, j
, bi
)
1729 varinfo_t v
= get_varinfo (j
);
1731 HOST_WIDE_INT fieldoffset
= v
->offset
+ loff
;
1732 unsigned HOST_WIDE_INT size
= v
->size
;
1738 if (fieldoffset
< 0)
1739 v
= get_varinfo (v
->head
);
1741 v
= first_or_preceding_vi_for_offset (v
, fieldoffset
);
1744 /* We have to include all fields that overlap the current field
1748 if (v
->may_have_pointers
)
1750 /* If v is a global variable then this is an escape point. */
1751 if (v
->is_global_var
1754 t
= find (escaped_id
);
1755 if (add_graph_edge (graph
, t
, rhs
)
1756 && bitmap_ior_into (get_varinfo (t
)->solution
, sol
))
1757 bitmap_set_bit (changed
, t
);
1758 /* Enough to let rhs escape once. */
1762 if (v
->is_special_var
)
1766 if (add_graph_edge (graph
, t
, rhs
)
1767 && bitmap_ior_into (get_varinfo (t
)->solution
, sol
))
1768 bitmap_set_bit (changed
, t
);
1777 while (v
->offset
< fieldoffset
+ size
);
1781 /* Handle a non-simple (simple meaning requires no iteration),
1782 constraint (IE *x = &y, x = *y, *x = y, and x = y with offsets involved). */
1785 do_complex_constraint (constraint_graph_t graph
, constraint_t c
, bitmap delta
,
1786 bitmap
*expanded_delta
)
1788 if (c
->lhs
.type
== DEREF
)
1790 if (c
->rhs
.type
== ADDRESSOF
)
1797 do_ds_constraint (c
, delta
, expanded_delta
);
1800 else if (c
->rhs
.type
== DEREF
)
1803 if (!(get_varinfo (c
->lhs
.var
)->is_special_var
))
1804 do_sd_constraint (graph
, c
, delta
, expanded_delta
);
1811 gcc_checking_assert (c
->rhs
.type
== SCALAR
&& c
->lhs
.type
== SCALAR
1812 && c
->rhs
.offset
!= 0 && c
->lhs
.offset
== 0);
1813 tmp
= get_varinfo (c
->lhs
.var
)->solution
;
1815 flag
= set_union_with_increment (tmp
, delta
, c
->rhs
.offset
,
1819 bitmap_set_bit (changed
, c
->lhs
.var
);
1823 /* Initialize and return a new SCC info structure. */
1825 static struct scc_info
*
1826 init_scc_info (size_t size
)
1828 struct scc_info
*si
= XNEW (struct scc_info
);
1831 si
->current_index
= 0;
1832 si
->visited
= sbitmap_alloc (size
);
1833 bitmap_clear (si
->visited
);
1834 si
->deleted
= sbitmap_alloc (size
);
1835 bitmap_clear (si
->deleted
);
1836 si
->node_mapping
= XNEWVEC (unsigned int, size
);
1837 si
->dfs
= XCNEWVEC (unsigned int, size
);
1839 for (i
= 0; i
< size
; i
++)
1840 si
->node_mapping
[i
] = i
;
1842 si
->scc_stack
.create (1);
1846 /* Free an SCC info structure pointed to by SI */
1849 free_scc_info (struct scc_info
*si
)
1851 sbitmap_free (si
->visited
);
1852 sbitmap_free (si
->deleted
);
1853 free (si
->node_mapping
);
1855 si
->scc_stack
.release ();
1860 /* Find indirect cycles in GRAPH that occur, using strongly connected
1861 components, and note them in the indirect cycles map.
1863 This technique comes from Ben Hardekopf and Calvin Lin,
1864 "It Pays to be Lazy: Fast and Accurate Pointer Analysis for Millions of
1865 Lines of Code", submitted to PLDI 2007. */
1868 find_indirect_cycles (constraint_graph_t graph
)
1871 unsigned int size
= graph
->size
;
1872 struct scc_info
*si
= init_scc_info (size
);
1874 for (i
= 0; i
< MIN (LAST_REF_NODE
, size
); i
++ )
1875 if (!bitmap_bit_p (si
->visited
, i
) && find (i
) == i
)
1876 scc_visit (graph
, si
, i
);
1881 /* Compute a topological ordering for GRAPH, and store the result in the
1882 topo_info structure TI. */
1885 compute_topo_order (constraint_graph_t graph
,
1886 struct topo_info
*ti
)
1889 unsigned int size
= graph
->size
;
1891 for (i
= 0; i
!= size
; ++i
)
1892 if (!bitmap_bit_p (ti
->visited
, i
) && find (i
) == i
)
1893 topo_visit (graph
, ti
, i
);
1896 /* Structure used to for hash value numbering of pointer equivalence
1899 typedef struct equiv_class_label
1902 unsigned int equivalence_class
;
1904 } *equiv_class_label_t
;
1905 typedef const struct equiv_class_label
*const_equiv_class_label_t
;
1907 /* Equiv_class_label hashtable helpers. */
1909 struct equiv_class_hasher
: free_ptr_hash
<equiv_class_label
>
1911 static inline hashval_t
hash (const equiv_class_label
*);
1912 static inline bool equal (const equiv_class_label
*,
1913 const equiv_class_label
*);
1916 /* Hash function for a equiv_class_label_t */
1919 equiv_class_hasher::hash (const equiv_class_label
*ecl
)
1921 return ecl
->hashcode
;
1924 /* Equality function for two equiv_class_label_t's. */
1927 equiv_class_hasher::equal (const equiv_class_label
*eql1
,
1928 const equiv_class_label
*eql2
)
1930 return (eql1
->hashcode
== eql2
->hashcode
1931 && bitmap_equal_p (eql1
->labels
, eql2
->labels
));
1934 /* A hashtable for mapping a bitmap of labels->pointer equivalence
1936 static hash_table
<equiv_class_hasher
> *pointer_equiv_class_table
;
1938 /* A hashtable for mapping a bitmap of labels->location equivalence
1940 static hash_table
<equiv_class_hasher
> *location_equiv_class_table
;
1942 /* Lookup a equivalence class in TABLE by the bitmap of LABELS with
1943 hash HAS it contains. Sets *REF_LABELS to the bitmap LABELS
1944 is equivalent to. */
1946 static equiv_class_label
*
1947 equiv_class_lookup_or_add (hash_table
<equiv_class_hasher
> *table
,
1950 equiv_class_label
**slot
;
1951 equiv_class_label ecl
;
1953 ecl
.labels
= labels
;
1954 ecl
.hashcode
= bitmap_hash (labels
);
1955 slot
= table
->find_slot (&ecl
, INSERT
);
1958 *slot
= XNEW (struct equiv_class_label
);
1959 (*slot
)->labels
= labels
;
1960 (*slot
)->hashcode
= ecl
.hashcode
;
1961 (*slot
)->equivalence_class
= 0;
1967 /* Perform offline variable substitution.
1969 This is a worst case quadratic time way of identifying variables
1970 that must have equivalent points-to sets, including those caused by
1971 static cycles, and single entry subgraphs, in the constraint graph.
1973 The technique is described in "Exploiting Pointer and Location
1974 Equivalence to Optimize Pointer Analysis. In the 14th International
1975 Static Analysis Symposium (SAS), August 2007." It is known as the
1976 "HU" algorithm, and is equivalent to value numbering the collapsed
1977 constraint graph including evaluating unions.
1979 The general method of finding equivalence classes is as follows:
1980 Add fake nodes (REF nodes) and edges for *a = b and a = *b constraints.
1981 Initialize all non-REF nodes to be direct nodes.
1982 For each constraint a = a U {b}, we set pts(a) = pts(a) u {fresh
1984 For each constraint containing the dereference, we also do the same
1987 We then compute SCC's in the graph and unify nodes in the same SCC,
1990 For each non-collapsed node x:
1991 Visit all unvisited explicit incoming edges.
1992 Ignoring all non-pointers, set pts(x) = Union of pts(a) for y
1994 Lookup the equivalence class for pts(x).
1995 If we found one, equivalence_class(x) = found class.
1996 Otherwise, equivalence_class(x) = new class, and new_class is
1997 added to the lookup table.
1999 All direct nodes with the same equivalence class can be replaced
2000 with a single representative node.
2001 All unlabeled nodes (label == 0) are not pointers and all edges
2002 involving them can be eliminated.
2003 We perform these optimizations during rewrite_constraints
2005 In addition to pointer equivalence class finding, we also perform
2006 location equivalence class finding. This is the set of variables
2007 that always appear together in points-to sets. We use this to
2008 compress the size of the points-to sets. */
2010 /* Current maximum pointer equivalence class id. */
2011 static int pointer_equiv_class
;
2013 /* Current maximum location equivalence class id. */
2014 static int location_equiv_class
;
2016 /* Recursive routine to find strongly connected components in GRAPH,
2017 and label it's nodes with DFS numbers. */
2020 condense_visit (constraint_graph_t graph
, struct scc_info
*si
, unsigned int n
)
2024 unsigned int my_dfs
;
2026 gcc_checking_assert (si
->node_mapping
[n
] == n
);
2027 bitmap_set_bit (si
->visited
, n
);
2028 si
->dfs
[n
] = si
->current_index
++;
2029 my_dfs
= si
->dfs
[n
];
2031 /* Visit all the successors. */
2032 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->preds
[n
], 0, i
, bi
)
2034 unsigned int w
= si
->node_mapping
[i
];
2036 if (bitmap_bit_p (si
->deleted
, w
))
2039 if (!bitmap_bit_p (si
->visited
, w
))
2040 condense_visit (graph
, si
, w
);
2042 unsigned int t
= si
->node_mapping
[w
];
2043 gcc_checking_assert (si
->node_mapping
[n
] == n
);
2044 if (si
->dfs
[t
] < si
->dfs
[n
])
2045 si
->dfs
[n
] = si
->dfs
[t
];
2048 /* Visit all the implicit predecessors. */
2049 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->implicit_preds
[n
], 0, i
, bi
)
2051 unsigned int w
= si
->node_mapping
[i
];
2053 if (bitmap_bit_p (si
->deleted
, w
))
2056 if (!bitmap_bit_p (si
->visited
, w
))
2057 condense_visit (graph
, si
, w
);
2059 unsigned int t
= si
->node_mapping
[w
];
2060 gcc_assert (si
->node_mapping
[n
] == n
);
2061 if (si
->dfs
[t
] < si
->dfs
[n
])
2062 si
->dfs
[n
] = si
->dfs
[t
];
2065 /* See if any components have been identified. */
2066 if (si
->dfs
[n
] == my_dfs
)
2068 while (si
->scc_stack
.length () != 0
2069 && si
->dfs
[si
->scc_stack
.last ()] >= my_dfs
)
2071 unsigned int w
= si
->scc_stack
.pop ();
2072 si
->node_mapping
[w
] = n
;
2074 if (!bitmap_bit_p (graph
->direct_nodes
, w
))
2075 bitmap_clear_bit (graph
->direct_nodes
, n
);
2077 /* Unify our nodes. */
2078 if (graph
->preds
[w
])
2080 if (!graph
->preds
[n
])
2081 graph
->preds
[n
] = BITMAP_ALLOC (&predbitmap_obstack
);
2082 bitmap_ior_into (graph
->preds
[n
], graph
->preds
[w
]);
2084 if (graph
->implicit_preds
[w
])
2086 if (!graph
->implicit_preds
[n
])
2087 graph
->implicit_preds
[n
] = BITMAP_ALLOC (&predbitmap_obstack
);
2088 bitmap_ior_into (graph
->implicit_preds
[n
],
2089 graph
->implicit_preds
[w
]);
2091 if (graph
->points_to
[w
])
2093 if (!graph
->points_to
[n
])
2094 graph
->points_to
[n
] = BITMAP_ALLOC (&predbitmap_obstack
);
2095 bitmap_ior_into (graph
->points_to
[n
],
2096 graph
->points_to
[w
]);
2099 bitmap_set_bit (si
->deleted
, n
);
2102 si
->scc_stack
.safe_push (n
);
2105 /* Label pointer equivalences.
2107 This performs a value numbering of the constraint graph to
2108 discover which variables will always have the same points-to sets
2109 under the current set of constraints.
2111 The way it value numbers is to store the set of points-to bits
2112 generated by the constraints and graph edges. This is just used as a
2113 hash and equality comparison. The *actual set of points-to bits* is
2114 completely irrelevant, in that we don't care about being able to
2117 The equality values (currently bitmaps) just have to satisfy a few
2118 constraints, the main ones being:
2119 1. The combining operation must be order independent.
2120 2. The end result of a given set of operations must be unique iff the
2121 combination of input values is unique
2125 label_visit (constraint_graph_t graph
, struct scc_info
*si
, unsigned int n
)
2127 unsigned int i
, first_pred
;
2130 bitmap_set_bit (si
->visited
, n
);
2132 /* Label and union our incoming edges's points to sets. */
2134 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->preds
[n
], 0, i
, bi
)
2136 unsigned int w
= si
->node_mapping
[i
];
2137 if (!bitmap_bit_p (si
->visited
, w
))
2138 label_visit (graph
, si
, w
);
2140 /* Skip unused edges */
2141 if (w
== n
|| graph
->pointer_label
[w
] == 0)
2144 if (graph
->points_to
[w
])
2146 if (!graph
->points_to
[n
])
2148 if (first_pred
== -1U)
2152 graph
->points_to
[n
] = BITMAP_ALLOC (&predbitmap_obstack
);
2153 bitmap_ior (graph
->points_to
[n
],
2154 graph
->points_to
[first_pred
],
2155 graph
->points_to
[w
]);
2159 bitmap_ior_into (graph
->points_to
[n
], graph
->points_to
[w
]);
2163 /* Indirect nodes get fresh variables and a new pointer equiv class. */
2164 if (!bitmap_bit_p (graph
->direct_nodes
, n
))
2166 if (!graph
->points_to
[n
])
2168 graph
->points_to
[n
] = BITMAP_ALLOC (&predbitmap_obstack
);
2169 if (first_pred
!= -1U)
2170 bitmap_copy (graph
->points_to
[n
], graph
->points_to
[first_pred
]);
2172 bitmap_set_bit (graph
->points_to
[n
], FIRST_REF_NODE
+ n
);
2173 graph
->pointer_label
[n
] = pointer_equiv_class
++;
2174 equiv_class_label_t ecl
;
2175 ecl
= equiv_class_lookup_or_add (pointer_equiv_class_table
,
2176 graph
->points_to
[n
]);
2177 ecl
->equivalence_class
= graph
->pointer_label
[n
];
2181 /* If there was only a single non-empty predecessor the pointer equiv
2182 class is the same. */
2183 if (!graph
->points_to
[n
])
2185 if (first_pred
!= -1U)
2187 graph
->pointer_label
[n
] = graph
->pointer_label
[first_pred
];
2188 graph
->points_to
[n
] = graph
->points_to
[first_pred
];
2193 if (!bitmap_empty_p (graph
->points_to
[n
]))
2195 equiv_class_label_t ecl
;
2196 ecl
= equiv_class_lookup_or_add (pointer_equiv_class_table
,
2197 graph
->points_to
[n
]);
2198 if (ecl
->equivalence_class
== 0)
2199 ecl
->equivalence_class
= pointer_equiv_class
++;
2202 BITMAP_FREE (graph
->points_to
[n
]);
2203 graph
->points_to
[n
] = ecl
->labels
;
2205 graph
->pointer_label
[n
] = ecl
->equivalence_class
;
2209 /* Print the pred graph in dot format. */
2212 dump_pred_graph (struct scc_info
*si
, FILE *file
)
2216 /* Only print the graph if it has already been initialized: */
2220 /* Prints the header of the dot file: */
2221 fprintf (file
, "strict digraph {\n");
2222 fprintf (file
, " node [\n shape = box\n ]\n");
2223 fprintf (file
, " edge [\n fontsize = \"12\"\n ]\n");
2224 fprintf (file
, "\n // List of nodes and complex constraints in "
2225 "the constraint graph:\n");
2227 /* The next lines print the nodes in the graph together with the
2228 complex constraints attached to them. */
2229 for (i
= 1; i
< graph
->size
; i
++)
2231 if (i
== FIRST_REF_NODE
)
2233 if (si
->node_mapping
[i
] != i
)
2235 if (i
< FIRST_REF_NODE
)
2236 fprintf (file
, "\"%s\"", get_varinfo (i
)->name
);
2238 fprintf (file
, "\"*%s\"", get_varinfo (i
- FIRST_REF_NODE
)->name
);
2239 if (graph
->points_to
[i
]
2240 && !bitmap_empty_p (graph
->points_to
[i
]))
2242 fprintf (file
, "[label=\"%s = {", get_varinfo (i
)->name
);
2245 EXECUTE_IF_SET_IN_BITMAP (graph
->points_to
[i
], 0, j
, bi
)
2246 fprintf (file
, " %d", j
);
2247 fprintf (file
, " }\"]");
2249 fprintf (file
, ";\n");
2252 /* Go over the edges. */
2253 fprintf (file
, "\n // Edges in the constraint graph:\n");
2254 for (i
= 1; i
< graph
->size
; i
++)
2258 if (si
->node_mapping
[i
] != i
)
2260 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->preds
[i
], 0, j
, bi
)
2262 unsigned from
= si
->node_mapping
[j
];
2263 if (from
< FIRST_REF_NODE
)
2264 fprintf (file
, "\"%s\"", get_varinfo (from
)->name
);
2266 fprintf (file
, "\"*%s\"", get_varinfo (from
- FIRST_REF_NODE
)->name
);
2267 fprintf (file
, " -> ");
2268 if (i
< FIRST_REF_NODE
)
2269 fprintf (file
, "\"%s\"", get_varinfo (i
)->name
);
2271 fprintf (file
, "\"*%s\"", get_varinfo (i
- FIRST_REF_NODE
)->name
);
2272 fprintf (file
, ";\n");
2276 /* Prints the tail of the dot file. */
2277 fprintf (file
, "}\n");
2280 /* Perform offline variable substitution, discovering equivalence
2281 classes, and eliminating non-pointer variables. */
2283 static struct scc_info
*
2284 perform_var_substitution (constraint_graph_t graph
)
2287 unsigned int size
= graph
->size
;
2288 struct scc_info
*si
= init_scc_info (size
);
2290 bitmap_obstack_initialize (&iteration_obstack
);
2291 pointer_equiv_class_table
= new hash_table
<equiv_class_hasher
> (511);
2292 location_equiv_class_table
2293 = new hash_table
<equiv_class_hasher
> (511);
2294 pointer_equiv_class
= 1;
2295 location_equiv_class
= 1;
2297 /* Condense the nodes, which means to find SCC's, count incoming
2298 predecessors, and unite nodes in SCC's. */
2299 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
2300 if (!bitmap_bit_p (si
->visited
, si
->node_mapping
[i
]))
2301 condense_visit (graph
, si
, si
->node_mapping
[i
]);
2303 if (dump_file
&& (dump_flags
& TDF_GRAPH
))
2305 fprintf (dump_file
, "\n\n// The constraint graph before var-substitution "
2306 "in dot format:\n");
2307 dump_pred_graph (si
, dump_file
);
2308 fprintf (dump_file
, "\n\n");
2311 bitmap_clear (si
->visited
);
2312 /* Actually the label the nodes for pointer equivalences */
2313 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
2314 if (!bitmap_bit_p (si
->visited
, si
->node_mapping
[i
]))
2315 label_visit (graph
, si
, si
->node_mapping
[i
]);
2317 /* Calculate location equivalence labels. */
2318 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
2324 if (!graph
->pointed_by
[i
])
2326 pointed_by
= BITMAP_ALLOC (&iteration_obstack
);
2328 /* Translate the pointed-by mapping for pointer equivalence
2330 EXECUTE_IF_SET_IN_BITMAP (graph
->pointed_by
[i
], 0, j
, bi
)
2332 bitmap_set_bit (pointed_by
,
2333 graph
->pointer_label
[si
->node_mapping
[j
]]);
2335 /* The original pointed_by is now dead. */
2336 BITMAP_FREE (graph
->pointed_by
[i
]);
2338 /* Look up the location equivalence label if one exists, or make
2340 equiv_class_label_t ecl
;
2341 ecl
= equiv_class_lookup_or_add (location_equiv_class_table
, pointed_by
);
2342 if (ecl
->equivalence_class
== 0)
2343 ecl
->equivalence_class
= location_equiv_class
++;
2346 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2347 fprintf (dump_file
, "Found location equivalence for node %s\n",
2348 get_varinfo (i
)->name
);
2349 BITMAP_FREE (pointed_by
);
2351 graph
->loc_label
[i
] = ecl
->equivalence_class
;
2355 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2356 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
2358 unsigned j
= si
->node_mapping
[i
];
2361 fprintf (dump_file
, "%s node id %d ",
2362 bitmap_bit_p (graph
->direct_nodes
, i
)
2363 ? "Direct" : "Indirect", i
);
2364 if (i
< FIRST_REF_NODE
)
2365 fprintf (dump_file
, "\"%s\"", get_varinfo (i
)->name
);
2367 fprintf (dump_file
, "\"*%s\"",
2368 get_varinfo (i
- FIRST_REF_NODE
)->name
);
2369 fprintf (dump_file
, " mapped to SCC leader node id %d ", j
);
2370 if (j
< FIRST_REF_NODE
)
2371 fprintf (dump_file
, "\"%s\"\n", get_varinfo (j
)->name
);
2373 fprintf (dump_file
, "\"*%s\"\n",
2374 get_varinfo (j
- FIRST_REF_NODE
)->name
);
2379 "Equivalence classes for %s node id %d ",
2380 bitmap_bit_p (graph
->direct_nodes
, i
)
2381 ? "direct" : "indirect", i
);
2382 if (i
< FIRST_REF_NODE
)
2383 fprintf (dump_file
, "\"%s\"", get_varinfo (i
)->name
);
2385 fprintf (dump_file
, "\"*%s\"",
2386 get_varinfo (i
- FIRST_REF_NODE
)->name
);
2388 ": pointer %d, location %d\n",
2389 graph
->pointer_label
[i
], graph
->loc_label
[i
]);
2393 /* Quickly eliminate our non-pointer variables. */
2395 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
2397 unsigned int node
= si
->node_mapping
[i
];
2399 if (graph
->pointer_label
[node
] == 0)
2401 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2403 "%s is a non-pointer variable, eliminating edges.\n",
2404 get_varinfo (node
)->name
);
2405 stats
.nonpointer_vars
++;
2406 clear_edges_for_node (graph
, node
);
2413 /* Free information that was only necessary for variable
2417 free_var_substitution_info (struct scc_info
*si
)
2420 free (graph
->pointer_label
);
2421 free (graph
->loc_label
);
2422 free (graph
->pointed_by
);
2423 free (graph
->points_to
);
2424 free (graph
->eq_rep
);
2425 sbitmap_free (graph
->direct_nodes
);
2426 delete pointer_equiv_class_table
;
2427 pointer_equiv_class_table
= NULL
;
2428 delete location_equiv_class_table
;
2429 location_equiv_class_table
= NULL
;
2430 bitmap_obstack_release (&iteration_obstack
);
2433 /* Return an existing node that is equivalent to NODE, which has
2434 equivalence class LABEL, if one exists. Return NODE otherwise. */
2437 find_equivalent_node (constraint_graph_t graph
,
2438 unsigned int node
, unsigned int label
)
2440 /* If the address version of this variable is unused, we can
2441 substitute it for anything else with the same label.
2442 Otherwise, we know the pointers are equivalent, but not the
2443 locations, and we can unite them later. */
2445 if (!bitmap_bit_p (graph
->address_taken
, node
))
2447 gcc_checking_assert (label
< graph
->size
);
2449 if (graph
->eq_rep
[label
] != -1)
2451 /* Unify the two variables since we know they are equivalent. */
2452 if (unite (graph
->eq_rep
[label
], node
))
2453 unify_nodes (graph
, graph
->eq_rep
[label
], node
, false);
2454 return graph
->eq_rep
[label
];
2458 graph
->eq_rep
[label
] = node
;
2459 graph
->pe_rep
[label
] = node
;
2464 gcc_checking_assert (label
< graph
->size
);
2465 graph
->pe
[node
] = label
;
2466 if (graph
->pe_rep
[label
] == -1)
2467 graph
->pe_rep
[label
] = node
;
2473 /* Unite pointer equivalent but not location equivalent nodes in
2474 GRAPH. This may only be performed once variable substitution is
2478 unite_pointer_equivalences (constraint_graph_t graph
)
2482 /* Go through the pointer equivalences and unite them to their
2483 representative, if they aren't already. */
2484 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
2486 unsigned int label
= graph
->pe
[i
];
2489 int label_rep
= graph
->pe_rep
[label
];
2491 if (label_rep
== -1)
2494 label_rep
= find (label_rep
);
2495 if (label_rep
>= 0 && unite (label_rep
, find (i
)))
2496 unify_nodes (graph
, label_rep
, i
, false);
2501 /* Move complex constraints to the GRAPH nodes they belong to. */
2504 move_complex_constraints (constraint_graph_t graph
)
2509 FOR_EACH_VEC_ELT (constraints
, i
, c
)
2513 struct constraint_expr lhs
= c
->lhs
;
2514 struct constraint_expr rhs
= c
->rhs
;
2516 if (lhs
.type
== DEREF
)
2518 insert_into_complex (graph
, lhs
.var
, c
);
2520 else if (rhs
.type
== DEREF
)
2522 if (!(get_varinfo (lhs
.var
)->is_special_var
))
2523 insert_into_complex (graph
, rhs
.var
, c
);
2525 else if (rhs
.type
!= ADDRESSOF
&& lhs
.var
> anything_id
2526 && (lhs
.offset
!= 0 || rhs
.offset
!= 0))
2528 insert_into_complex (graph
, rhs
.var
, c
);
2535 /* Optimize and rewrite complex constraints while performing
2536 collapsing of equivalent nodes. SI is the SCC_INFO that is the
2537 result of perform_variable_substitution. */
2540 rewrite_constraints (constraint_graph_t graph
,
2541 struct scc_info
*si
)
2548 for (unsigned int j
= 0; j
< graph
->size
; j
++)
2549 gcc_assert (find (j
) == j
);
2552 FOR_EACH_VEC_ELT (constraints
, i
, c
)
2554 struct constraint_expr lhs
= c
->lhs
;
2555 struct constraint_expr rhs
= c
->rhs
;
2556 unsigned int lhsvar
= find (lhs
.var
);
2557 unsigned int rhsvar
= find (rhs
.var
);
2558 unsigned int lhsnode
, rhsnode
;
2559 unsigned int lhslabel
, rhslabel
;
2561 lhsnode
= si
->node_mapping
[lhsvar
];
2562 rhsnode
= si
->node_mapping
[rhsvar
];
2563 lhslabel
= graph
->pointer_label
[lhsnode
];
2564 rhslabel
= graph
->pointer_label
[rhsnode
];
2566 /* See if it is really a non-pointer variable, and if so, ignore
2570 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2573 fprintf (dump_file
, "%s is a non-pointer variable,"
2574 "ignoring constraint:",
2575 get_varinfo (lhs
.var
)->name
);
2576 dump_constraint (dump_file
, c
);
2577 fprintf (dump_file
, "\n");
2579 constraints
[i
] = NULL
;
2585 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
2588 fprintf (dump_file
, "%s is a non-pointer variable,"
2589 "ignoring constraint:",
2590 get_varinfo (rhs
.var
)->name
);
2591 dump_constraint (dump_file
, c
);
2592 fprintf (dump_file
, "\n");
2594 constraints
[i
] = NULL
;
2598 lhsvar
= find_equivalent_node (graph
, lhsvar
, lhslabel
);
2599 rhsvar
= find_equivalent_node (graph
, rhsvar
, rhslabel
);
2600 c
->lhs
.var
= lhsvar
;
2601 c
->rhs
.var
= rhsvar
;
2605 /* Eliminate indirect cycles involving NODE. Return true if NODE was
2606 part of an SCC, false otherwise. */
2609 eliminate_indirect_cycles (unsigned int node
)
2611 if (graph
->indirect_cycles
[node
] != -1
2612 && !bitmap_empty_p (get_varinfo (node
)->solution
))
2615 auto_vec
<unsigned> queue
;
2617 unsigned int to
= find (graph
->indirect_cycles
[node
]);
2620 /* We can't touch the solution set and call unify_nodes
2621 at the same time, because unify_nodes is going to do
2622 bitmap unions into it. */
2624 EXECUTE_IF_SET_IN_BITMAP (get_varinfo (node
)->solution
, 0, i
, bi
)
2626 if (find (i
) == i
&& i
!= to
)
2629 queue
.safe_push (i
);
2634 queue
.iterate (queuepos
, &i
);
2637 unify_nodes (graph
, to
, i
, true);
2644 /* Solve the constraint graph GRAPH using our worklist solver.
2645 This is based on the PW* family of solvers from the "Efficient Field
2646 Sensitive Pointer Analysis for C" paper.
2647 It works by iterating over all the graph nodes, processing the complex
2648 constraints and propagating the copy constraints, until everything stops
2649 changed. This corresponds to steps 6-8 in the solving list given above. */
2652 solve_graph (constraint_graph_t graph
)
2654 unsigned int size
= graph
->size
;
2658 changed
= BITMAP_ALLOC (NULL
);
2660 /* Mark all initial non-collapsed nodes as changed. */
2661 for (i
= 1; i
< size
; i
++)
2663 varinfo_t ivi
= get_varinfo (i
);
2664 if (find (i
) == i
&& !bitmap_empty_p (ivi
->solution
)
2665 && ((graph
->succs
[i
] && !bitmap_empty_p (graph
->succs
[i
]))
2666 || graph
->complex[i
].length () > 0))
2667 bitmap_set_bit (changed
, i
);
2670 /* Allocate a bitmap to be used to store the changed bits. */
2671 pts
= BITMAP_ALLOC (&pta_obstack
);
2673 while (!bitmap_empty_p (changed
))
2676 struct topo_info
*ti
= init_topo_info ();
2679 bitmap_obstack_initialize (&iteration_obstack
);
2681 compute_topo_order (graph
, ti
);
2683 while (ti
->topo_order
.length () != 0)
2686 i
= ti
->topo_order
.pop ();
2688 /* If this variable is not a representative, skip it. */
2692 /* In certain indirect cycle cases, we may merge this
2693 variable to another. */
2694 if (eliminate_indirect_cycles (i
) && find (i
) != i
)
2697 /* If the node has changed, we need to process the
2698 complex constraints and outgoing edges again. */
2699 if (bitmap_clear_bit (changed
, i
))
2704 vec
<constraint_t
> complex = graph
->complex[i
];
2705 varinfo_t vi
= get_varinfo (i
);
2706 bool solution_empty
;
2708 /* Compute the changed set of solution bits. If anything
2709 is in the solution just propagate that. */
2710 if (bitmap_bit_p (vi
->solution
, anything_id
))
2712 /* If anything is also in the old solution there is
2714 ??? But we shouldn't ended up with "changed" set ... */
2716 && bitmap_bit_p (vi
->oldsolution
, anything_id
))
2718 bitmap_copy (pts
, get_varinfo (find (anything_id
))->solution
);
2720 else if (vi
->oldsolution
)
2721 bitmap_and_compl (pts
, vi
->solution
, vi
->oldsolution
);
2723 bitmap_copy (pts
, vi
->solution
);
2725 if (bitmap_empty_p (pts
))
2728 if (vi
->oldsolution
)
2729 bitmap_ior_into (vi
->oldsolution
, pts
);
2732 vi
->oldsolution
= BITMAP_ALLOC (&oldpta_obstack
);
2733 bitmap_copy (vi
->oldsolution
, pts
);
2736 solution
= vi
->solution
;
2737 solution_empty
= bitmap_empty_p (solution
);
2739 /* Process the complex constraints */
2740 bitmap expanded_pts
= NULL
;
2741 FOR_EACH_VEC_ELT (complex, j
, c
)
2743 /* XXX: This is going to unsort the constraints in
2744 some cases, which will occasionally add duplicate
2745 constraints during unification. This does not
2746 affect correctness. */
2747 c
->lhs
.var
= find (c
->lhs
.var
);
2748 c
->rhs
.var
= find (c
->rhs
.var
);
2750 /* The only complex constraint that can change our
2751 solution to non-empty, given an empty solution,
2752 is a constraint where the lhs side is receiving
2753 some set from elsewhere. */
2754 if (!solution_empty
|| c
->lhs
.type
!= DEREF
)
2755 do_complex_constraint (graph
, c
, pts
, &expanded_pts
);
2757 BITMAP_FREE (expanded_pts
);
2759 solution_empty
= bitmap_empty_p (solution
);
2761 if (!solution_empty
)
2764 unsigned eff_escaped_id
= find (escaped_id
);
2766 /* Propagate solution to all successors. */
2767 EXECUTE_IF_IN_NONNULL_BITMAP (graph
->succs
[i
],
2773 unsigned int to
= find (j
);
2774 tmp
= get_varinfo (to
)->solution
;
2777 /* Don't try to propagate to ourselves. */
2781 /* If we propagate from ESCAPED use ESCAPED as
2783 if (i
== eff_escaped_id
)
2784 flag
= bitmap_set_bit (tmp
, escaped_id
);
2786 flag
= bitmap_ior_into (tmp
, pts
);
2789 bitmap_set_bit (changed
, to
);
2794 free_topo_info (ti
);
2795 bitmap_obstack_release (&iteration_obstack
);
2799 BITMAP_FREE (changed
);
2800 bitmap_obstack_release (&oldpta_obstack
);
2803 /* Map from trees to variable infos. */
2804 static hash_map
<tree
, varinfo_t
> *vi_for_tree
;
2807 /* Insert ID as the variable id for tree T in the vi_for_tree map. */
2810 insert_vi_for_tree (tree t
, varinfo_t vi
)
2813 gcc_assert (!vi_for_tree
->put (t
, vi
));
2816 /* Find the variable info for tree T in VI_FOR_TREE. If T does not
2817 exist in the map, return NULL, otherwise, return the varinfo we found. */
2820 lookup_vi_for_tree (tree t
)
2822 varinfo_t
*slot
= vi_for_tree
->get (t
);
2829 /* Return a printable name for DECL */
2832 alias_get_name (tree decl
)
2834 const char *res
= NULL
;
2836 int num_printed
= 0;
2841 if (TREE_CODE (decl
) == SSA_NAME
)
2843 res
= get_name (decl
);
2845 num_printed
= asprintf (&temp
, "%s_%u", res
, SSA_NAME_VERSION (decl
));
2847 num_printed
= asprintf (&temp
, "_%u", SSA_NAME_VERSION (decl
));
2848 if (num_printed
> 0)
2850 res
= ggc_strdup (temp
);
2854 else if (DECL_P (decl
))
2856 if (DECL_ASSEMBLER_NAME_SET_P (decl
))
2857 res
= IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (decl
));
2860 res
= get_name (decl
);
2863 num_printed
= asprintf (&temp
, "D.%u", DECL_UID (decl
));
2864 if (num_printed
> 0)
2866 res
= ggc_strdup (temp
);
2878 /* Find the variable id for tree T in the map.
2879 If T doesn't exist in the map, create an entry for it and return it. */
2882 get_vi_for_tree (tree t
)
2884 varinfo_t
*slot
= vi_for_tree
->get (t
);
2887 unsigned int id
= create_variable_info_for (t
, alias_get_name (t
), false);
2888 return get_varinfo (id
);
2894 /* Get a scalar constraint expression for a new temporary variable. */
2896 static struct constraint_expr
2897 new_scalar_tmp_constraint_exp (const char *name
, bool add_id
)
2899 struct constraint_expr tmp
;
2902 vi
= new_var_info (NULL_TREE
, name
, add_id
);
2906 vi
->is_full_var
= 1;
2915 /* Get a constraint expression vector from an SSA_VAR_P node.
2916 If address_p is true, the result will be taken its address of. */
2919 get_constraint_for_ssa_var (tree t
, vec
<ce_s
> *results
, bool address_p
)
2921 struct constraint_expr cexpr
;
2924 /* We allow FUNCTION_DECLs here even though it doesn't make much sense. */
2925 gcc_assert (TREE_CODE (t
) == SSA_NAME
|| DECL_P (t
));
2927 /* For parameters, get at the points-to set for the actual parm
2929 if (TREE_CODE (t
) == SSA_NAME
2930 && SSA_NAME_IS_DEFAULT_DEF (t
)
2931 && (TREE_CODE (SSA_NAME_VAR (t
)) == PARM_DECL
2932 || TREE_CODE (SSA_NAME_VAR (t
)) == RESULT_DECL
))
2934 get_constraint_for_ssa_var (SSA_NAME_VAR (t
), results
, address_p
);
2938 /* For global variables resort to the alias target. */
2939 if (TREE_CODE (t
) == VAR_DECL
2940 && (TREE_STATIC (t
) || DECL_EXTERNAL (t
)))
2942 varpool_node
*node
= varpool_node::get (t
);
2943 if (node
&& node
->alias
&& node
->analyzed
)
2945 node
= node
->ultimate_alias_target ();
2950 vi
= get_vi_for_tree (t
);
2952 cexpr
.type
= SCALAR
;
2955 /* If we are not taking the address of the constraint expr, add all
2956 sub-fiels of the variable as well. */
2958 && !vi
->is_full_var
)
2960 for (; vi
; vi
= vi_next (vi
))
2963 results
->safe_push (cexpr
);
2968 results
->safe_push (cexpr
);
2971 /* Process constraint T, performing various simplifications and then
2972 adding it to our list of overall constraints. */
2975 process_constraint (constraint_t t
)
2977 struct constraint_expr rhs
= t
->rhs
;
2978 struct constraint_expr lhs
= t
->lhs
;
2980 gcc_assert (rhs
.var
< varmap
.length ());
2981 gcc_assert (lhs
.var
< varmap
.length ());
2983 /* If we didn't get any useful constraint from the lhs we get
2984 &ANYTHING as fallback from get_constraint_for. Deal with
2985 it here by turning it into *ANYTHING. */
2986 if (lhs
.type
== ADDRESSOF
2987 && lhs
.var
== anything_id
)
2990 /* ADDRESSOF on the lhs is invalid. */
2991 gcc_assert (lhs
.type
!= ADDRESSOF
);
2993 /* We shouldn't add constraints from things that cannot have pointers.
2994 It's not completely trivial to avoid in the callers, so do it here. */
2995 if (rhs
.type
!= ADDRESSOF
2996 && !get_varinfo (rhs
.var
)->may_have_pointers
)
2999 /* Likewise adding to the solution of a non-pointer var isn't useful. */
3000 if (!get_varinfo (lhs
.var
)->may_have_pointers
)
3003 /* This can happen in our IR with things like n->a = *p */
3004 if (rhs
.type
== DEREF
&& lhs
.type
== DEREF
&& rhs
.var
!= anything_id
)
3006 /* Split into tmp = *rhs, *lhs = tmp */
3007 struct constraint_expr tmplhs
;
3008 tmplhs
= new_scalar_tmp_constraint_exp ("doubledereftmp", true);
3009 process_constraint (new_constraint (tmplhs
, rhs
));
3010 process_constraint (new_constraint (lhs
, tmplhs
));
3012 else if (rhs
.type
== ADDRESSOF
&& lhs
.type
== DEREF
)
3014 /* Split into tmp = &rhs, *lhs = tmp */
3015 struct constraint_expr tmplhs
;
3016 tmplhs
= new_scalar_tmp_constraint_exp ("derefaddrtmp", true);
3017 process_constraint (new_constraint (tmplhs
, rhs
));
3018 process_constraint (new_constraint (lhs
, tmplhs
));
3022 gcc_assert (rhs
.type
!= ADDRESSOF
|| rhs
.offset
== 0);
3023 constraints
.safe_push (t
);
3028 /* Return the position, in bits, of FIELD_DECL from the beginning of its
3031 static HOST_WIDE_INT
3032 bitpos_of_field (const tree fdecl
)
3034 if (!tree_fits_shwi_p (DECL_FIELD_OFFSET (fdecl
))
3035 || !tree_fits_shwi_p (DECL_FIELD_BIT_OFFSET (fdecl
)))
3038 return (tree_to_shwi (DECL_FIELD_OFFSET (fdecl
)) * BITS_PER_UNIT
3039 + tree_to_shwi (DECL_FIELD_BIT_OFFSET (fdecl
)));
3043 /* Get constraint expressions for offsetting PTR by OFFSET. Stores the
3044 resulting constraint expressions in *RESULTS. */
3047 get_constraint_for_ptr_offset (tree ptr
, tree offset
,
3050 struct constraint_expr c
;
3052 HOST_WIDE_INT rhsoffset
;
3054 /* If we do not do field-sensitive PTA adding offsets to pointers
3055 does not change the points-to solution. */
3056 if (!use_field_sensitive
)
3058 get_constraint_for_rhs (ptr
, results
);
3062 /* If the offset is not a non-negative integer constant that fits
3063 in a HOST_WIDE_INT, we have to fall back to a conservative
3064 solution which includes all sub-fields of all pointed-to
3065 variables of ptr. */
3066 if (offset
== NULL_TREE
3067 || TREE_CODE (offset
) != INTEGER_CST
)
3068 rhsoffset
= UNKNOWN_OFFSET
;
3071 /* Sign-extend the offset. */
3072 offset_int soffset
= offset_int::from (offset
, SIGNED
);
3073 if (!wi::fits_shwi_p (soffset
))
3074 rhsoffset
= UNKNOWN_OFFSET
;
3077 /* Make sure the bit-offset also fits. */
3078 HOST_WIDE_INT rhsunitoffset
= soffset
.to_shwi ();
3079 rhsoffset
= rhsunitoffset
* BITS_PER_UNIT
;
3080 if (rhsunitoffset
!= rhsoffset
/ BITS_PER_UNIT
)
3081 rhsoffset
= UNKNOWN_OFFSET
;
3085 get_constraint_for_rhs (ptr
, results
);
3089 /* As we are eventually appending to the solution do not use
3090 vec::iterate here. */
3091 n
= results
->length ();
3092 for (j
= 0; j
< n
; j
++)
3096 curr
= get_varinfo (c
.var
);
3098 if (c
.type
== ADDRESSOF
3099 /* If this varinfo represents a full variable just use it. */
3100 && curr
->is_full_var
)
3102 else if (c
.type
== ADDRESSOF
3103 /* If we do not know the offset add all subfields. */
3104 && rhsoffset
== UNKNOWN_OFFSET
)
3106 varinfo_t temp
= get_varinfo (curr
->head
);
3109 struct constraint_expr c2
;
3111 c2
.type
= ADDRESSOF
;
3113 if (c2
.var
!= c
.var
)
3114 results
->safe_push (c2
);
3115 temp
= vi_next (temp
);
3119 else if (c
.type
== ADDRESSOF
)
3122 unsigned HOST_WIDE_INT offset
= curr
->offset
+ rhsoffset
;
3124 /* If curr->offset + rhsoffset is less than zero adjust it. */
3126 && curr
->offset
< offset
)
3129 /* We have to include all fields that overlap the current
3130 field shifted by rhsoffset. And we include at least
3131 the last or the first field of the variable to represent
3132 reachability of off-bound addresses, in particular &object + 1,
3133 conservatively correct. */
3134 temp
= first_or_preceding_vi_for_offset (curr
, offset
);
3137 temp
= vi_next (temp
);
3139 && temp
->offset
< offset
+ curr
->size
)
3141 struct constraint_expr c2
;
3143 c2
.type
= ADDRESSOF
;
3145 results
->safe_push (c2
);
3146 temp
= vi_next (temp
);
3149 else if (c
.type
== SCALAR
)
3151 gcc_assert (c
.offset
== 0);
3152 c
.offset
= rhsoffset
;
3155 /* We shouldn't get any DEREFs here. */
3163 /* Given a COMPONENT_REF T, return the constraint_expr vector for it.
3164 If address_p is true the result will be taken its address of.
3165 If lhs_p is true then the constraint expression is assumed to be used
3169 get_constraint_for_component_ref (tree t
, vec
<ce_s
> *results
,
3170 bool address_p
, bool lhs_p
)
3173 HOST_WIDE_INT bitsize
= -1;
3174 HOST_WIDE_INT bitmaxsize
= -1;
3175 HOST_WIDE_INT bitpos
;
3179 /* Some people like to do cute things like take the address of
3182 while (handled_component_p (forzero
)
3183 || INDIRECT_REF_P (forzero
)
3184 || TREE_CODE (forzero
) == MEM_REF
)
3185 forzero
= TREE_OPERAND (forzero
, 0);
3187 if (CONSTANT_CLASS_P (forzero
) && integer_zerop (forzero
))
3189 struct constraint_expr temp
;
3192 temp
.var
= integer_id
;
3194 results
->safe_push (temp
);
3198 t
= get_ref_base_and_extent (t
, &bitpos
, &bitsize
, &bitmaxsize
, &reverse
);
3200 /* Pretend to take the address of the base, we'll take care of
3201 adding the required subset of sub-fields below. */
3202 get_constraint_for_1 (t
, results
, true, lhs_p
);
3203 gcc_assert (results
->length () == 1);
3204 struct constraint_expr
&result
= results
->last ();
3206 if (result
.type
== SCALAR
3207 && get_varinfo (result
.var
)->is_full_var
)
3208 /* For single-field vars do not bother about the offset. */
3210 else if (result
.type
== SCALAR
)
3212 /* In languages like C, you can access one past the end of an
3213 array. You aren't allowed to dereference it, so we can
3214 ignore this constraint. When we handle pointer subtraction,
3215 we may have to do something cute here. */
3217 if ((unsigned HOST_WIDE_INT
)bitpos
< get_varinfo (result
.var
)->fullsize
3220 /* It's also not true that the constraint will actually start at the
3221 right offset, it may start in some padding. We only care about
3222 setting the constraint to the first actual field it touches, so
3224 struct constraint_expr cexpr
= result
;
3228 for (curr
= get_varinfo (cexpr
.var
); curr
; curr
= vi_next (curr
))
3230 if (ranges_overlap_p (curr
->offset
, curr
->size
,
3231 bitpos
, bitmaxsize
))
3233 cexpr
.var
= curr
->id
;
3234 results
->safe_push (cexpr
);
3239 /* If we are going to take the address of this field then
3240 to be able to compute reachability correctly add at least
3241 the last field of the variable. */
3242 if (address_p
&& results
->length () == 0)
3244 curr
= get_varinfo (cexpr
.var
);
3245 while (curr
->next
!= 0)
3246 curr
= vi_next (curr
);
3247 cexpr
.var
= curr
->id
;
3248 results
->safe_push (cexpr
);
3250 else if (results
->length () == 0)
3251 /* Assert that we found *some* field there. The user couldn't be
3252 accessing *only* padding. */
3253 /* Still the user could access one past the end of an array
3254 embedded in a struct resulting in accessing *only* padding. */
3255 /* Or accessing only padding via type-punning to a type
3256 that has a filed just in padding space. */
3258 cexpr
.type
= SCALAR
;
3259 cexpr
.var
= anything_id
;
3261 results
->safe_push (cexpr
);
3264 else if (bitmaxsize
== 0)
3266 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
3267 fprintf (dump_file
, "Access to zero-sized part of variable,"
3271 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
3272 fprintf (dump_file
, "Access to past the end of variable, ignoring\n");
3274 else if (result
.type
== DEREF
)
3276 /* If we do not know exactly where the access goes say so. Note
3277 that only for non-structure accesses we know that we access
3278 at most one subfiled of any variable. */
3280 || bitsize
!= bitmaxsize
3281 || AGGREGATE_TYPE_P (TREE_TYPE (orig_t
))
3282 || result
.offset
== UNKNOWN_OFFSET
)
3283 result
.offset
= UNKNOWN_OFFSET
;
3285 result
.offset
+= bitpos
;
3287 else if (result
.type
== ADDRESSOF
)
3289 /* We can end up here for component references on a
3290 VIEW_CONVERT_EXPR <>(&foobar). */
3291 result
.type
= SCALAR
;
3292 result
.var
= anything_id
;
3300 /* Dereference the constraint expression CONS, and return the result.
3301 DEREF (ADDRESSOF) = SCALAR
3302 DEREF (SCALAR) = DEREF
3303 DEREF (DEREF) = (temp = DEREF1; result = DEREF(temp))
3304 This is needed so that we can handle dereferencing DEREF constraints. */
3307 do_deref (vec
<ce_s
> *constraints
)
3309 struct constraint_expr
*c
;
3312 FOR_EACH_VEC_ELT (*constraints
, i
, c
)
3314 if (c
->type
== SCALAR
)
3316 else if (c
->type
== ADDRESSOF
)
3318 else if (c
->type
== DEREF
)
3320 struct constraint_expr tmplhs
;
3321 tmplhs
= new_scalar_tmp_constraint_exp ("dereftmp", true);
3322 process_constraint (new_constraint (tmplhs
, *c
));
3323 c
->var
= tmplhs
.var
;
3330 /* Given a tree T, return the constraint expression for taking the
3334 get_constraint_for_address_of (tree t
, vec
<ce_s
> *results
)
3336 struct constraint_expr
*c
;
3339 get_constraint_for_1 (t
, results
, true, true);
3341 FOR_EACH_VEC_ELT (*results
, i
, c
)
3343 if (c
->type
== DEREF
)
3346 c
->type
= ADDRESSOF
;
3350 /* Given a tree T, return the constraint expression for it. */
3353 get_constraint_for_1 (tree t
, vec
<ce_s
> *results
, bool address_p
,
3356 struct constraint_expr temp
;
3358 /* x = integer is all glommed to a single variable, which doesn't
3359 point to anything by itself. That is, of course, unless it is an
3360 integer constant being treated as a pointer, in which case, we
3361 will return that this is really the addressof anything. This
3362 happens below, since it will fall into the default case. The only
3363 case we know something about an integer treated like a pointer is
3364 when it is the NULL pointer, and then we just say it points to
3367 Do not do that if -fno-delete-null-pointer-checks though, because
3368 in that case *NULL does not fail, so it _should_ alias *anything.
3369 It is not worth adding a new option or renaming the existing one,
3370 since this case is relatively obscure. */
3371 if ((TREE_CODE (t
) == INTEGER_CST
3372 && integer_zerop (t
))
3373 /* The only valid CONSTRUCTORs in gimple with pointer typed
3374 elements are zero-initializer. But in IPA mode we also
3375 process global initializers, so verify at least. */
3376 || (TREE_CODE (t
) == CONSTRUCTOR
3377 && CONSTRUCTOR_NELTS (t
) == 0))
3379 if (flag_delete_null_pointer_checks
)
3380 temp
.var
= nothing_id
;
3382 temp
.var
= nonlocal_id
;
3383 temp
.type
= ADDRESSOF
;
3385 results
->safe_push (temp
);
3389 /* String constants are read-only, ideally we'd have a CONST_DECL
3391 if (TREE_CODE (t
) == STRING_CST
)
3393 temp
.var
= string_id
;
3396 results
->safe_push (temp
);
3400 switch (TREE_CODE_CLASS (TREE_CODE (t
)))
3402 case tcc_expression
:
3404 switch (TREE_CODE (t
))
3407 get_constraint_for_address_of (TREE_OPERAND (t
, 0), results
);
3415 switch (TREE_CODE (t
))
3419 struct constraint_expr cs
;
3421 get_constraint_for_ptr_offset (TREE_OPERAND (t
, 0),
3422 TREE_OPERAND (t
, 1), results
);
3425 /* If we are not taking the address then make sure to process
3426 all subvariables we might access. */
3430 cs
= results
->last ();
3431 if (cs
.type
== DEREF
3432 && type_can_have_subvars (TREE_TYPE (t
)))
3434 /* For dereferences this means we have to defer it
3436 results
->last ().offset
= UNKNOWN_OFFSET
;
3439 if (cs
.type
!= SCALAR
)
3442 vi
= get_varinfo (cs
.var
);
3443 curr
= vi_next (vi
);
3444 if (!vi
->is_full_var
3447 unsigned HOST_WIDE_INT size
;
3448 if (tree_fits_uhwi_p (TYPE_SIZE (TREE_TYPE (t
))))
3449 size
= tree_to_uhwi (TYPE_SIZE (TREE_TYPE (t
)));
3452 for (; curr
; curr
= vi_next (curr
))
3454 if (curr
->offset
- vi
->offset
< size
)
3457 results
->safe_push (cs
);
3466 case ARRAY_RANGE_REF
:
3471 get_constraint_for_component_ref (t
, results
, address_p
, lhs_p
);
3473 case VIEW_CONVERT_EXPR
:
3474 get_constraint_for_1 (TREE_OPERAND (t
, 0), results
, address_p
,
3477 /* We are missing handling for TARGET_MEM_REF here. */
3482 case tcc_exceptional
:
3484 switch (TREE_CODE (t
))
3488 get_constraint_for_ssa_var (t
, results
, address_p
);
3496 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (t
), i
, val
)
3498 struct constraint_expr
*rhsp
;
3500 get_constraint_for_1 (val
, &tmp
, address_p
, lhs_p
);
3501 FOR_EACH_VEC_ELT (tmp
, j
, rhsp
)
3502 results
->safe_push (*rhsp
);
3505 /* We do not know whether the constructor was complete,
3506 so technically we have to add &NOTHING or &ANYTHING
3507 like we do for an empty constructor as well. */
3514 case tcc_declaration
:
3516 get_constraint_for_ssa_var (t
, results
, address_p
);
3521 /* We cannot refer to automatic variables through constants. */
3522 temp
.type
= ADDRESSOF
;
3523 temp
.var
= nonlocal_id
;
3525 results
->safe_push (temp
);
3531 /* The default fallback is a constraint from anything. */
3532 temp
.type
= ADDRESSOF
;
3533 temp
.var
= anything_id
;
3535 results
->safe_push (temp
);
3538 /* Given a gimple tree T, return the constraint expression vector for it. */
3541 get_constraint_for (tree t
, vec
<ce_s
> *results
)
3543 gcc_assert (results
->length () == 0);
3545 get_constraint_for_1 (t
, results
, false, true);
3548 /* Given a gimple tree T, return the constraint expression vector for it
3549 to be used as the rhs of a constraint. */
3552 get_constraint_for_rhs (tree t
, vec
<ce_s
> *results
)
3554 gcc_assert (results
->length () == 0);
3556 get_constraint_for_1 (t
, results
, false, false);
3560 /* Efficiently generates constraints from all entries in *RHSC to all
3561 entries in *LHSC. */
3564 process_all_all_constraints (vec
<ce_s
> lhsc
,
3567 struct constraint_expr
*lhsp
, *rhsp
;
3570 if (lhsc
.length () <= 1 || rhsc
.length () <= 1)
3572 FOR_EACH_VEC_ELT (lhsc
, i
, lhsp
)
3573 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
3574 process_constraint (new_constraint (*lhsp
, *rhsp
));
3578 struct constraint_expr tmp
;
3579 tmp
= new_scalar_tmp_constraint_exp ("allalltmp", true);
3580 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
3581 process_constraint (new_constraint (tmp
, *rhsp
));
3582 FOR_EACH_VEC_ELT (lhsc
, i
, lhsp
)
3583 process_constraint (new_constraint (*lhsp
, tmp
));
3587 /* Handle aggregate copies by expanding into copies of the respective
3588 fields of the structures. */
3591 do_structure_copy (tree lhsop
, tree rhsop
)
3593 struct constraint_expr
*lhsp
, *rhsp
;
3594 auto_vec
<ce_s
> lhsc
;
3595 auto_vec
<ce_s
> rhsc
;
3598 get_constraint_for (lhsop
, &lhsc
);
3599 get_constraint_for_rhs (rhsop
, &rhsc
);
3602 if (lhsp
->type
== DEREF
3603 || (lhsp
->type
== ADDRESSOF
&& lhsp
->var
== anything_id
)
3604 || rhsp
->type
== DEREF
)
3606 if (lhsp
->type
== DEREF
)
3608 gcc_assert (lhsc
.length () == 1);
3609 lhsp
->offset
= UNKNOWN_OFFSET
;
3611 if (rhsp
->type
== DEREF
)
3613 gcc_assert (rhsc
.length () == 1);
3614 rhsp
->offset
= UNKNOWN_OFFSET
;
3616 process_all_all_constraints (lhsc
, rhsc
);
3618 else if (lhsp
->type
== SCALAR
3619 && (rhsp
->type
== SCALAR
3620 || rhsp
->type
== ADDRESSOF
))
3622 HOST_WIDE_INT lhssize
, lhsmaxsize
, lhsoffset
;
3623 HOST_WIDE_INT rhssize
, rhsmaxsize
, rhsoffset
;
3626 get_ref_base_and_extent (lhsop
, &lhsoffset
, &lhssize
, &lhsmaxsize
,
3628 get_ref_base_and_extent (rhsop
, &rhsoffset
, &rhssize
, &rhsmaxsize
,
3630 for (j
= 0; lhsc
.iterate (j
, &lhsp
);)
3632 varinfo_t lhsv
, rhsv
;
3634 lhsv
= get_varinfo (lhsp
->var
);
3635 rhsv
= get_varinfo (rhsp
->var
);
3636 if (lhsv
->may_have_pointers
3637 && (lhsv
->is_full_var
3638 || rhsv
->is_full_var
3639 || ranges_overlap_p (lhsv
->offset
+ rhsoffset
, lhsv
->size
,
3640 rhsv
->offset
+ lhsoffset
, rhsv
->size
)))
3641 process_constraint (new_constraint (*lhsp
, *rhsp
));
3642 if (!rhsv
->is_full_var
3643 && (lhsv
->is_full_var
3644 || (lhsv
->offset
+ rhsoffset
+ lhsv
->size
3645 > rhsv
->offset
+ lhsoffset
+ rhsv
->size
)))
3648 if (k
>= rhsc
.length ())
3659 /* Create constraints ID = { rhsc }. */
3662 make_constraints_to (unsigned id
, vec
<ce_s
> rhsc
)
3664 struct constraint_expr
*c
;
3665 struct constraint_expr includes
;
3669 includes
.offset
= 0;
3670 includes
.type
= SCALAR
;
3672 FOR_EACH_VEC_ELT (rhsc
, j
, c
)
3673 process_constraint (new_constraint (includes
, *c
));
3676 /* Create a constraint ID = OP. */
3679 make_constraint_to (unsigned id
, tree op
)
3681 auto_vec
<ce_s
> rhsc
;
3682 get_constraint_for_rhs (op
, &rhsc
);
3683 make_constraints_to (id
, rhsc
);
3686 /* Create a constraint ID = &FROM. */
3689 make_constraint_from (varinfo_t vi
, int from
)
3691 struct constraint_expr lhs
, rhs
;
3699 rhs
.type
= ADDRESSOF
;
3700 process_constraint (new_constraint (lhs
, rhs
));
3703 /* Create a constraint ID = FROM. */
3706 make_copy_constraint (varinfo_t vi
, int from
)
3708 struct constraint_expr lhs
, rhs
;
3717 process_constraint (new_constraint (lhs
, rhs
));
3720 /* Make constraints necessary to make OP escape. */
3723 make_escape_constraint (tree op
)
3725 make_constraint_to (escaped_id
, op
);
3728 /* Add constraints to that the solution of VI is transitively closed. */
3731 make_transitive_closure_constraints (varinfo_t vi
)
3733 struct constraint_expr lhs
, rhs
;
3741 rhs
.offset
= UNKNOWN_OFFSET
;
3742 process_constraint (new_constraint (lhs
, rhs
));
3745 /* Temporary storage for fake var decls. */
3746 struct obstack fake_var_decl_obstack
;
3748 /* Build a fake VAR_DECL acting as referrer to a DECL_UID. */
3751 build_fake_var_decl (tree type
)
3753 tree decl
= (tree
) XOBNEW (&fake_var_decl_obstack
, struct tree_var_decl
);
3754 memset (decl
, 0, sizeof (struct tree_var_decl
));
3755 TREE_SET_CODE (decl
, VAR_DECL
);
3756 TREE_TYPE (decl
) = type
;
3757 DECL_UID (decl
) = allocate_decl_uid ();
3758 SET_DECL_PT_UID (decl
, -1);
3759 layout_decl (decl
, 0);
3763 /* Create a new artificial heap variable with NAME.
3764 Return the created variable. */
3767 make_heapvar (const char *name
, bool add_id
)
3772 heapvar
= build_fake_var_decl (ptr_type_node
);
3773 DECL_EXTERNAL (heapvar
) = 1;
3775 vi
= new_var_info (heapvar
, name
, add_id
);
3776 vi
->is_artificial_var
= true;
3777 vi
->is_heap_var
= true;
3778 vi
->is_unknown_size_var
= true;
3782 vi
->is_full_var
= true;
3783 insert_vi_for_tree (heapvar
, vi
);
3788 /* Create a new artificial heap variable with NAME and make a
3789 constraint from it to LHS. Set flags according to a tag used
3790 for tracking restrict pointers. */
3793 make_constraint_from_restrict (varinfo_t lhs
, const char *name
, bool add_id
)
3795 varinfo_t vi
= make_heapvar (name
, add_id
);
3796 vi
->is_restrict_var
= 1;
3797 vi
->is_global_var
= 1;
3798 vi
->may_have_pointers
= 1;
3799 make_constraint_from (lhs
, vi
->id
);
3803 /* Create a new artificial heap variable with NAME and make a
3804 constraint from it to LHS. Set flags according to a tag used
3805 for tracking restrict pointers and make the artificial heap
3806 point to global memory. */
3809 make_constraint_from_global_restrict (varinfo_t lhs
, const char *name
,
3812 varinfo_t vi
= make_constraint_from_restrict (lhs
, name
, add_id
);
3813 make_copy_constraint (vi
, nonlocal_id
);
3817 /* In IPA mode there are varinfos for different aspects of reach
3818 function designator. One for the points-to set of the return
3819 value, one for the variables that are clobbered by the function,
3820 one for its uses and one for each parameter (including a single
3821 glob for remaining variadic arguments). */
3823 enum { fi_clobbers
= 1, fi_uses
= 2,
3824 fi_static_chain
= 3, fi_result
= 4, fi_parm_base
= 5 };
3826 /* Get a constraint for the requested part of a function designator FI
3827 when operating in IPA mode. */
3829 static struct constraint_expr
3830 get_function_part_constraint (varinfo_t fi
, unsigned part
)
3832 struct constraint_expr c
;
3834 gcc_assert (in_ipa_mode
);
3836 if (fi
->id
== anything_id
)
3838 /* ??? We probably should have a ANYFN special variable. */
3839 c
.var
= anything_id
;
3843 else if (TREE_CODE (fi
->decl
) == FUNCTION_DECL
)
3845 varinfo_t ai
= first_vi_for_offset (fi
, part
);
3849 c
.var
= anything_id
;
3863 /* For non-IPA mode, generate constraints necessary for a call on the
3867 handle_rhs_call (gcall
*stmt
, vec
<ce_s
> *results
)
3869 struct constraint_expr rhsc
;
3871 bool returns_uses
= false;
3873 for (i
= 0; i
< gimple_call_num_args (stmt
); ++i
)
3875 tree arg
= gimple_call_arg (stmt
, i
);
3876 int flags
= gimple_call_arg_flags (stmt
, i
);
3878 /* If the argument is not used we can ignore it. */
3879 if (flags
& EAF_UNUSED
)
3882 /* As we compute ESCAPED context-insensitive we do not gain
3883 any precision with just EAF_NOCLOBBER but not EAF_NOESCAPE
3884 set. The argument would still get clobbered through the
3886 if ((flags
& EAF_NOCLOBBER
)
3887 && (flags
& EAF_NOESCAPE
))
3889 varinfo_t uses
= get_call_use_vi (stmt
);
3890 if (!(flags
& EAF_DIRECT
))
3892 varinfo_t tem
= new_var_info (NULL_TREE
, "callarg", true);
3893 make_constraint_to (tem
->id
, arg
);
3894 make_transitive_closure_constraints (tem
);
3895 make_copy_constraint (uses
, tem
->id
);
3898 make_constraint_to (uses
->id
, arg
);
3899 returns_uses
= true;
3901 else if (flags
& EAF_NOESCAPE
)
3903 struct constraint_expr lhs
, rhs
;
3904 varinfo_t uses
= get_call_use_vi (stmt
);
3905 varinfo_t clobbers
= get_call_clobber_vi (stmt
);
3906 varinfo_t tem
= new_var_info (NULL_TREE
, "callarg", true);
3907 make_constraint_to (tem
->id
, arg
);
3908 if (!(flags
& EAF_DIRECT
))
3909 make_transitive_closure_constraints (tem
);
3910 make_copy_constraint (uses
, tem
->id
);
3911 make_copy_constraint (clobbers
, tem
->id
);
3912 /* Add *tem = nonlocal, do not add *tem = callused as
3913 EAF_NOESCAPE parameters do not escape to other parameters
3914 and all other uses appear in NONLOCAL as well. */
3919 rhs
.var
= nonlocal_id
;
3921 process_constraint (new_constraint (lhs
, rhs
));
3922 returns_uses
= true;
3925 make_escape_constraint (arg
);
3928 /* If we added to the calls uses solution make sure we account for
3929 pointers to it to be returned. */
3932 rhsc
.var
= get_call_use_vi (stmt
)->id
;
3935 results
->safe_push (rhsc
);
3938 /* The static chain escapes as well. */
3939 if (gimple_call_chain (stmt
))
3940 make_escape_constraint (gimple_call_chain (stmt
));
3942 /* And if we applied NRV the address of the return slot escapes as well. */
3943 if (gimple_call_return_slot_opt_p (stmt
)
3944 && gimple_call_lhs (stmt
) != NULL_TREE
3945 && TREE_ADDRESSABLE (TREE_TYPE (gimple_call_lhs (stmt
))))
3947 auto_vec
<ce_s
> tmpc
;
3948 struct constraint_expr lhsc
, *c
;
3949 get_constraint_for_address_of (gimple_call_lhs (stmt
), &tmpc
);
3950 lhsc
.var
= escaped_id
;
3953 FOR_EACH_VEC_ELT (tmpc
, i
, c
)
3954 process_constraint (new_constraint (lhsc
, *c
));
3957 /* Regular functions return nonlocal memory. */
3958 rhsc
.var
= nonlocal_id
;
3961 results
->safe_push (rhsc
);
3964 /* For non-IPA mode, generate constraints necessary for a call
3965 that returns a pointer and assigns it to LHS. This simply makes
3966 the LHS point to global and escaped variables. */
3969 handle_lhs_call (gcall
*stmt
, tree lhs
, int flags
, vec
<ce_s
> rhsc
,
3972 auto_vec
<ce_s
> lhsc
;
3974 get_constraint_for (lhs
, &lhsc
);
3975 /* If the store is to a global decl make sure to
3976 add proper escape constraints. */
3977 lhs
= get_base_address (lhs
);
3980 && is_global_var (lhs
))
3982 struct constraint_expr tmpc
;
3983 tmpc
.var
= escaped_id
;
3986 lhsc
.safe_push (tmpc
);
3989 /* If the call returns an argument unmodified override the rhs
3991 if (flags
& ERF_RETURNS_ARG
3992 && (flags
& ERF_RETURN_ARG_MASK
) < gimple_call_num_args (stmt
))
3996 arg
= gimple_call_arg (stmt
, flags
& ERF_RETURN_ARG_MASK
);
3997 get_constraint_for (arg
, &rhsc
);
3998 process_all_all_constraints (lhsc
, rhsc
);
4001 else if (flags
& ERF_NOALIAS
)
4004 struct constraint_expr tmpc
;
4006 vi
= make_heapvar ("HEAP", true);
4007 /* We are marking allocated storage local, we deal with it becoming
4008 global by escaping and setting of vars_contains_escaped_heap. */
4009 DECL_EXTERNAL (vi
->decl
) = 0;
4010 vi
->is_global_var
= 0;
4011 /* If this is not a real malloc call assume the memory was
4012 initialized and thus may point to global memory. All
4013 builtin functions with the malloc attribute behave in a sane way. */
4015 || DECL_BUILT_IN_CLASS (fndecl
) != BUILT_IN_NORMAL
)
4016 make_constraint_from (vi
, nonlocal_id
);
4019 tmpc
.type
= ADDRESSOF
;
4020 rhsc
.safe_push (tmpc
);
4021 process_all_all_constraints (lhsc
, rhsc
);
4025 process_all_all_constraints (lhsc
, rhsc
);
4028 /* For non-IPA mode, generate constraints necessary for a call of a
4029 const function that returns a pointer in the statement STMT. */
4032 handle_const_call (gcall
*stmt
, vec
<ce_s
> *results
)
4034 struct constraint_expr rhsc
;
4037 /* Treat nested const functions the same as pure functions as far
4038 as the static chain is concerned. */
4039 if (gimple_call_chain (stmt
))
4041 varinfo_t uses
= get_call_use_vi (stmt
);
4042 make_transitive_closure_constraints (uses
);
4043 make_constraint_to (uses
->id
, gimple_call_chain (stmt
));
4044 rhsc
.var
= uses
->id
;
4047 results
->safe_push (rhsc
);
4050 /* May return arguments. */
4051 for (k
= 0; k
< gimple_call_num_args (stmt
); ++k
)
4053 tree arg
= gimple_call_arg (stmt
, k
);
4054 auto_vec
<ce_s
> argc
;
4056 struct constraint_expr
*argp
;
4057 get_constraint_for_rhs (arg
, &argc
);
4058 FOR_EACH_VEC_ELT (argc
, i
, argp
)
4059 results
->safe_push (*argp
);
4062 /* May return addresses of globals. */
4063 rhsc
.var
= nonlocal_id
;
4065 rhsc
.type
= ADDRESSOF
;
4066 results
->safe_push (rhsc
);
4069 /* For non-IPA mode, generate constraints necessary for a call to a
4070 pure function in statement STMT. */
4073 handle_pure_call (gcall
*stmt
, vec
<ce_s
> *results
)
4075 struct constraint_expr rhsc
;
4077 varinfo_t uses
= NULL
;
4079 /* Memory reached from pointer arguments is call-used. */
4080 for (i
= 0; i
< gimple_call_num_args (stmt
); ++i
)
4082 tree arg
= gimple_call_arg (stmt
, i
);
4085 uses
= get_call_use_vi (stmt
);
4086 make_transitive_closure_constraints (uses
);
4088 make_constraint_to (uses
->id
, arg
);
4091 /* The static chain is used as well. */
4092 if (gimple_call_chain (stmt
))
4096 uses
= get_call_use_vi (stmt
);
4097 make_transitive_closure_constraints (uses
);
4099 make_constraint_to (uses
->id
, gimple_call_chain (stmt
));
4102 /* Pure functions may return call-used and nonlocal memory. */
4105 rhsc
.var
= uses
->id
;
4108 results
->safe_push (rhsc
);
4110 rhsc
.var
= nonlocal_id
;
4113 results
->safe_push (rhsc
);
4117 /* Return the varinfo for the callee of CALL. */
4120 get_fi_for_callee (gcall
*call
)
4122 tree decl
, fn
= gimple_call_fn (call
);
4124 if (fn
&& TREE_CODE (fn
) == OBJ_TYPE_REF
)
4125 fn
= OBJ_TYPE_REF_EXPR (fn
);
4127 /* If we can directly resolve the function being called, do so.
4128 Otherwise, it must be some sort of indirect expression that
4129 we should still be able to handle. */
4130 decl
= gimple_call_addr_fndecl (fn
);
4132 return get_vi_for_tree (decl
);
4134 /* If the function is anything other than a SSA name pointer we have no
4135 clue and should be getting ANYFN (well, ANYTHING for now). */
4136 if (!fn
|| TREE_CODE (fn
) != SSA_NAME
)
4137 return get_varinfo (anything_id
);
4139 if (SSA_NAME_IS_DEFAULT_DEF (fn
)
4140 && (TREE_CODE (SSA_NAME_VAR (fn
)) == PARM_DECL
4141 || TREE_CODE (SSA_NAME_VAR (fn
)) == RESULT_DECL
))
4142 fn
= SSA_NAME_VAR (fn
);
4144 return get_vi_for_tree (fn
);
4147 /* Create constraints for assigning call argument ARG to the incoming parameter
4148 INDEX of function FI. */
4151 find_func_aliases_for_call_arg (varinfo_t fi
, unsigned index
, tree arg
)
4153 struct constraint_expr lhs
;
4154 lhs
= get_function_part_constraint (fi
, fi_parm_base
+ index
);
4156 auto_vec
<ce_s
, 2> rhsc
;
4157 get_constraint_for_rhs (arg
, &rhsc
);
4160 struct constraint_expr
*rhsp
;
4161 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
4162 process_constraint (new_constraint (lhs
, *rhsp
));
4165 /* Create constraints for the builtin call T. Return true if the call
4166 was handled, otherwise false. */
4169 find_func_aliases_for_builtin_call (struct function
*fn
, gcall
*t
)
4171 tree fndecl
= gimple_call_fndecl (t
);
4172 auto_vec
<ce_s
, 2> lhsc
;
4173 auto_vec
<ce_s
, 4> rhsc
;
4176 if (gimple_call_builtin_p (t
, BUILT_IN_NORMAL
))
4177 /* ??? All builtins that are handled here need to be handled
4178 in the alias-oracle query functions explicitly! */
4179 switch (DECL_FUNCTION_CODE (fndecl
))
4181 /* All the following functions return a pointer to the same object
4182 as their first argument points to. The functions do not add
4183 to the ESCAPED solution. The functions make the first argument
4184 pointed to memory point to what the second argument pointed to
4185 memory points to. */
4186 case BUILT_IN_STRCPY
:
4187 case BUILT_IN_STRNCPY
:
4188 case BUILT_IN_BCOPY
:
4189 case BUILT_IN_MEMCPY
:
4190 case BUILT_IN_MEMMOVE
:
4191 case BUILT_IN_MEMPCPY
:
4192 case BUILT_IN_STPCPY
:
4193 case BUILT_IN_STPNCPY
:
4194 case BUILT_IN_STRCAT
:
4195 case BUILT_IN_STRNCAT
:
4196 case BUILT_IN_STRCPY_CHK
:
4197 case BUILT_IN_STRNCPY_CHK
:
4198 case BUILT_IN_MEMCPY_CHK
:
4199 case BUILT_IN_MEMMOVE_CHK
:
4200 case BUILT_IN_MEMPCPY_CHK
:
4201 case BUILT_IN_STPCPY_CHK
:
4202 case BUILT_IN_STPNCPY_CHK
:
4203 case BUILT_IN_STRCAT_CHK
:
4204 case BUILT_IN_STRNCAT_CHK
:
4205 case BUILT_IN_TM_MEMCPY
:
4206 case BUILT_IN_TM_MEMMOVE
:
4208 tree res
= gimple_call_lhs (t
);
4209 tree dest
= gimple_call_arg (t
, (DECL_FUNCTION_CODE (fndecl
)
4210 == BUILT_IN_BCOPY
? 1 : 0));
4211 tree src
= gimple_call_arg (t
, (DECL_FUNCTION_CODE (fndecl
)
4212 == BUILT_IN_BCOPY
? 0 : 1));
4213 if (res
!= NULL_TREE
)
4215 get_constraint_for (res
, &lhsc
);
4216 if (DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_MEMPCPY
4217 || DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_STPCPY
4218 || DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_STPNCPY
4219 || DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_MEMPCPY_CHK
4220 || DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_STPCPY_CHK
4221 || DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_STPNCPY_CHK
)
4222 get_constraint_for_ptr_offset (dest
, NULL_TREE
, &rhsc
);
4224 get_constraint_for (dest
, &rhsc
);
4225 process_all_all_constraints (lhsc
, rhsc
);
4229 get_constraint_for_ptr_offset (dest
, NULL_TREE
, &lhsc
);
4230 get_constraint_for_ptr_offset (src
, NULL_TREE
, &rhsc
);
4233 process_all_all_constraints (lhsc
, rhsc
);
4236 case BUILT_IN_MEMSET
:
4237 case BUILT_IN_MEMSET_CHK
:
4238 case BUILT_IN_TM_MEMSET
:
4240 tree res
= gimple_call_lhs (t
);
4241 tree dest
= gimple_call_arg (t
, 0);
4244 struct constraint_expr ac
;
4245 if (res
!= NULL_TREE
)
4247 get_constraint_for (res
, &lhsc
);
4248 get_constraint_for (dest
, &rhsc
);
4249 process_all_all_constraints (lhsc
, rhsc
);
4252 get_constraint_for_ptr_offset (dest
, NULL_TREE
, &lhsc
);
4254 if (flag_delete_null_pointer_checks
4255 && integer_zerop (gimple_call_arg (t
, 1)))
4257 ac
.type
= ADDRESSOF
;
4258 ac
.var
= nothing_id
;
4263 ac
.var
= integer_id
;
4266 FOR_EACH_VEC_ELT (lhsc
, i
, lhsp
)
4267 process_constraint (new_constraint (*lhsp
, ac
));
4270 case BUILT_IN_POSIX_MEMALIGN
:
4272 tree ptrptr
= gimple_call_arg (t
, 0);
4273 get_constraint_for (ptrptr
, &lhsc
);
4275 varinfo_t vi
= make_heapvar ("HEAP", true);
4276 /* We are marking allocated storage local, we deal with it becoming
4277 global by escaping and setting of vars_contains_escaped_heap. */
4278 DECL_EXTERNAL (vi
->decl
) = 0;
4279 vi
->is_global_var
= 0;
4280 struct constraint_expr tmpc
;
4283 tmpc
.type
= ADDRESSOF
;
4284 rhsc
.safe_push (tmpc
);
4285 process_all_all_constraints (lhsc
, rhsc
);
4288 case BUILT_IN_ASSUME_ALIGNED
:
4290 tree res
= gimple_call_lhs (t
);
4291 tree dest
= gimple_call_arg (t
, 0);
4292 if (res
!= NULL_TREE
)
4294 get_constraint_for (res
, &lhsc
);
4295 get_constraint_for (dest
, &rhsc
);
4296 process_all_all_constraints (lhsc
, rhsc
);
4300 /* All the following functions do not return pointers, do not
4301 modify the points-to sets of memory reachable from their
4302 arguments and do not add to the ESCAPED solution. */
4303 case BUILT_IN_SINCOS
:
4304 case BUILT_IN_SINCOSF
:
4305 case BUILT_IN_SINCOSL
:
4306 case BUILT_IN_FREXP
:
4307 case BUILT_IN_FREXPF
:
4308 case BUILT_IN_FREXPL
:
4309 case BUILT_IN_GAMMA_R
:
4310 case BUILT_IN_GAMMAF_R
:
4311 case BUILT_IN_GAMMAL_R
:
4312 case BUILT_IN_LGAMMA_R
:
4313 case BUILT_IN_LGAMMAF_R
:
4314 case BUILT_IN_LGAMMAL_R
:
4316 case BUILT_IN_MODFF
:
4317 case BUILT_IN_MODFL
:
4318 case BUILT_IN_REMQUO
:
4319 case BUILT_IN_REMQUOF
:
4320 case BUILT_IN_REMQUOL
:
4323 case BUILT_IN_STRDUP
:
4324 case BUILT_IN_STRNDUP
:
4325 case BUILT_IN_REALLOC
:
4326 if (gimple_call_lhs (t
))
4328 handle_lhs_call (t
, gimple_call_lhs (t
),
4329 gimple_call_return_flags (t
) | ERF_NOALIAS
,
4331 get_constraint_for_ptr_offset (gimple_call_lhs (t
),
4333 get_constraint_for_ptr_offset (gimple_call_arg (t
, 0),
4337 process_all_all_constraints (lhsc
, rhsc
);
4340 /* For realloc the resulting pointer can be equal to the
4341 argument as well. But only doing this wouldn't be
4342 correct because with ptr == 0 realloc behaves like malloc. */
4343 if (DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_REALLOC
)
4345 get_constraint_for (gimple_call_lhs (t
), &lhsc
);
4346 get_constraint_for (gimple_call_arg (t
, 0), &rhsc
);
4347 process_all_all_constraints (lhsc
, rhsc
);
4352 /* String / character search functions return a pointer into the
4353 source string or NULL. */
4354 case BUILT_IN_INDEX
:
4355 case BUILT_IN_STRCHR
:
4356 case BUILT_IN_STRRCHR
:
4357 case BUILT_IN_MEMCHR
:
4358 case BUILT_IN_STRSTR
:
4359 case BUILT_IN_STRPBRK
:
4360 if (gimple_call_lhs (t
))
4362 tree src
= gimple_call_arg (t
, 0);
4363 get_constraint_for_ptr_offset (src
, NULL_TREE
, &rhsc
);
4364 constraint_expr nul
;
4365 nul
.var
= nothing_id
;
4367 nul
.type
= ADDRESSOF
;
4368 rhsc
.safe_push (nul
);
4369 get_constraint_for (gimple_call_lhs (t
), &lhsc
);
4370 process_all_all_constraints (lhsc
, rhsc
);
4373 /* Trampolines are special - they set up passing the static
4375 case BUILT_IN_INIT_TRAMPOLINE
:
4377 tree tramp
= gimple_call_arg (t
, 0);
4378 tree nfunc
= gimple_call_arg (t
, 1);
4379 tree frame
= gimple_call_arg (t
, 2);
4381 struct constraint_expr lhs
, *rhsp
;
4384 varinfo_t nfi
= NULL
;
4385 gcc_assert (TREE_CODE (nfunc
) == ADDR_EXPR
);
4386 nfi
= lookup_vi_for_tree (TREE_OPERAND (nfunc
, 0));
4389 lhs
= get_function_part_constraint (nfi
, fi_static_chain
);
4390 get_constraint_for (frame
, &rhsc
);
4391 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
4392 process_constraint (new_constraint (lhs
, *rhsp
));
4395 /* Make the frame point to the function for
4396 the trampoline adjustment call. */
4397 get_constraint_for (tramp
, &lhsc
);
4399 get_constraint_for (nfunc
, &rhsc
);
4400 process_all_all_constraints (lhsc
, rhsc
);
4405 /* Else fallthru to generic handling which will let
4406 the frame escape. */
4409 case BUILT_IN_ADJUST_TRAMPOLINE
:
4411 tree tramp
= gimple_call_arg (t
, 0);
4412 tree res
= gimple_call_lhs (t
);
4413 if (in_ipa_mode
&& res
)
4415 get_constraint_for (res
, &lhsc
);
4416 get_constraint_for (tramp
, &rhsc
);
4418 process_all_all_constraints (lhsc
, rhsc
);
4422 CASE_BUILT_IN_TM_STORE (1):
4423 CASE_BUILT_IN_TM_STORE (2):
4424 CASE_BUILT_IN_TM_STORE (4):
4425 CASE_BUILT_IN_TM_STORE (8):
4426 CASE_BUILT_IN_TM_STORE (FLOAT
):
4427 CASE_BUILT_IN_TM_STORE (DOUBLE
):
4428 CASE_BUILT_IN_TM_STORE (LDOUBLE
):
4429 CASE_BUILT_IN_TM_STORE (M64
):
4430 CASE_BUILT_IN_TM_STORE (M128
):
4431 CASE_BUILT_IN_TM_STORE (M256
):
4433 tree addr
= gimple_call_arg (t
, 0);
4434 tree src
= gimple_call_arg (t
, 1);
4436 get_constraint_for (addr
, &lhsc
);
4438 get_constraint_for (src
, &rhsc
);
4439 process_all_all_constraints (lhsc
, rhsc
);
4442 CASE_BUILT_IN_TM_LOAD (1):
4443 CASE_BUILT_IN_TM_LOAD (2):
4444 CASE_BUILT_IN_TM_LOAD (4):
4445 CASE_BUILT_IN_TM_LOAD (8):
4446 CASE_BUILT_IN_TM_LOAD (FLOAT
):
4447 CASE_BUILT_IN_TM_LOAD (DOUBLE
):
4448 CASE_BUILT_IN_TM_LOAD (LDOUBLE
):
4449 CASE_BUILT_IN_TM_LOAD (M64
):
4450 CASE_BUILT_IN_TM_LOAD (M128
):
4451 CASE_BUILT_IN_TM_LOAD (M256
):
4453 tree dest
= gimple_call_lhs (t
);
4454 tree addr
= gimple_call_arg (t
, 0);
4456 get_constraint_for (dest
, &lhsc
);
4457 get_constraint_for (addr
, &rhsc
);
4459 process_all_all_constraints (lhsc
, rhsc
);
4462 /* Variadic argument handling needs to be handled in IPA
4464 case BUILT_IN_VA_START
:
4466 tree valist
= gimple_call_arg (t
, 0);
4467 struct constraint_expr rhs
, *lhsp
;
4469 get_constraint_for (valist
, &lhsc
);
4471 /* The va_list gets access to pointers in variadic
4472 arguments. Which we know in the case of IPA analysis
4473 and otherwise are just all nonlocal variables. */
4476 fi
= lookup_vi_for_tree (fn
->decl
);
4477 rhs
= get_function_part_constraint (fi
, ~0);
4478 rhs
.type
= ADDRESSOF
;
4482 rhs
.var
= nonlocal_id
;
4483 rhs
.type
= ADDRESSOF
;
4486 FOR_EACH_VEC_ELT (lhsc
, i
, lhsp
)
4487 process_constraint (new_constraint (*lhsp
, rhs
));
4488 /* va_list is clobbered. */
4489 make_constraint_to (get_call_clobber_vi (t
)->id
, valist
);
4492 /* va_end doesn't have any effect that matters. */
4493 case BUILT_IN_VA_END
:
4495 /* Alternate return. Simply give up for now. */
4496 case BUILT_IN_RETURN
:
4500 || !(fi
= get_vi_for_tree (fn
->decl
)))
4501 make_constraint_from (get_varinfo (escaped_id
), anything_id
);
4502 else if (in_ipa_mode
4505 struct constraint_expr lhs
, rhs
;
4506 lhs
= get_function_part_constraint (fi
, fi_result
);
4507 rhs
.var
= anything_id
;
4510 process_constraint (new_constraint (lhs
, rhs
));
4514 case BUILT_IN_GOMP_PARALLEL
:
4515 case BUILT_IN_GOACC_PARALLEL
:
4519 unsigned int fnpos
, argpos
;
4520 switch (DECL_FUNCTION_CODE (fndecl
))
4522 case BUILT_IN_GOMP_PARALLEL
:
4523 /* __builtin_GOMP_parallel (fn, data, num_threads, flags). */
4527 case BUILT_IN_GOACC_PARALLEL
:
4528 /* __builtin_GOACC_parallel (device, fn, mapnum, hostaddrs,
4529 sizes, kinds, ...). */
4537 tree fnarg
= gimple_call_arg (t
, fnpos
);
4538 gcc_assert (TREE_CODE (fnarg
) == ADDR_EXPR
);
4539 tree fndecl
= TREE_OPERAND (fnarg
, 0);
4540 tree arg
= gimple_call_arg (t
, argpos
);
4542 varinfo_t fi
= get_vi_for_tree (fndecl
);
4543 find_func_aliases_for_call_arg (fi
, 0, arg
);
4546 /* Else fallthru to generic call handling. */
4549 /* printf-style functions may have hooks to set pointers to
4550 point to somewhere into the generated string. Leave them
4551 for a later exercise... */
4553 /* Fallthru to general call handling. */;
4559 /* Create constraints for the call T. */
4562 find_func_aliases_for_call (struct function
*fn
, gcall
*t
)
4564 tree fndecl
= gimple_call_fndecl (t
);
4567 if (fndecl
!= NULL_TREE
4568 && DECL_BUILT_IN (fndecl
)
4569 && find_func_aliases_for_builtin_call (fn
, t
))
4572 fi
= get_fi_for_callee (t
);
4574 || (fndecl
&& !fi
->is_fn_info
))
4576 auto_vec
<ce_s
, 16> rhsc
;
4577 int flags
= gimple_call_flags (t
);
4579 /* Const functions can return their arguments and addresses
4580 of global memory but not of escaped memory. */
4581 if (flags
& (ECF_CONST
|ECF_NOVOPS
))
4583 if (gimple_call_lhs (t
))
4584 handle_const_call (t
, &rhsc
);
4586 /* Pure functions can return addresses in and of memory
4587 reachable from their arguments, but they are not an escape
4588 point for reachable memory of their arguments. */
4589 else if (flags
& (ECF_PURE
|ECF_LOOPING_CONST_OR_PURE
))
4590 handle_pure_call (t
, &rhsc
);
4592 handle_rhs_call (t
, &rhsc
);
4593 if (gimple_call_lhs (t
))
4594 handle_lhs_call (t
, gimple_call_lhs (t
),
4595 gimple_call_return_flags (t
), rhsc
, fndecl
);
4599 auto_vec
<ce_s
, 2> rhsc
;
4603 /* Assign all the passed arguments to the appropriate incoming
4604 parameters of the function. */
4605 for (j
= 0; j
< gimple_call_num_args (t
); j
++)
4607 tree arg
= gimple_call_arg (t
, j
);
4608 find_func_aliases_for_call_arg (fi
, j
, arg
);
4611 /* If we are returning a value, assign it to the result. */
4612 lhsop
= gimple_call_lhs (t
);
4615 auto_vec
<ce_s
, 2> lhsc
;
4616 struct constraint_expr rhs
;
4617 struct constraint_expr
*lhsp
;
4619 get_constraint_for (lhsop
, &lhsc
);
4620 rhs
= get_function_part_constraint (fi
, fi_result
);
4622 && DECL_RESULT (fndecl
)
4623 && DECL_BY_REFERENCE (DECL_RESULT (fndecl
)))
4625 auto_vec
<ce_s
, 2> tem
;
4626 tem
.quick_push (rhs
);
4628 gcc_checking_assert (tem
.length () == 1);
4631 FOR_EACH_VEC_ELT (lhsc
, j
, lhsp
)
4632 process_constraint (new_constraint (*lhsp
, rhs
));
4635 /* If we pass the result decl by reference, honor that. */
4638 && DECL_RESULT (fndecl
)
4639 && DECL_BY_REFERENCE (DECL_RESULT (fndecl
)))
4641 struct constraint_expr lhs
;
4642 struct constraint_expr
*rhsp
;
4644 get_constraint_for_address_of (lhsop
, &rhsc
);
4645 lhs
= get_function_part_constraint (fi
, fi_result
);
4646 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
4647 process_constraint (new_constraint (lhs
, *rhsp
));
4651 /* If we use a static chain, pass it along. */
4652 if (gimple_call_chain (t
))
4654 struct constraint_expr lhs
;
4655 struct constraint_expr
*rhsp
;
4657 get_constraint_for (gimple_call_chain (t
), &rhsc
);
4658 lhs
= get_function_part_constraint (fi
, fi_static_chain
);
4659 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
4660 process_constraint (new_constraint (lhs
, *rhsp
));
4665 /* Walk statement T setting up aliasing constraints according to the
4666 references found in T. This function is the main part of the
4667 constraint builder. AI points to auxiliary alias information used
4668 when building alias sets and computing alias grouping heuristics. */
4671 find_func_aliases (struct function
*fn
, gimple
*origt
)
4674 auto_vec
<ce_s
, 16> lhsc
;
4675 auto_vec
<ce_s
, 16> rhsc
;
4676 struct constraint_expr
*c
;
4679 /* Now build constraints expressions. */
4680 if (gimple_code (t
) == GIMPLE_PHI
)
4685 /* For a phi node, assign all the arguments to
4687 get_constraint_for (gimple_phi_result (t
), &lhsc
);
4688 for (i
= 0; i
< gimple_phi_num_args (t
); i
++)
4690 tree strippedrhs
= PHI_ARG_DEF (t
, i
);
4692 STRIP_NOPS (strippedrhs
);
4693 get_constraint_for_rhs (gimple_phi_arg_def (t
, i
), &rhsc
);
4695 FOR_EACH_VEC_ELT (lhsc
, j
, c
)
4697 struct constraint_expr
*c2
;
4698 while (rhsc
.length () > 0)
4701 process_constraint (new_constraint (*c
, *c2
));
4707 /* In IPA mode, we need to generate constraints to pass call
4708 arguments through their calls. There are two cases,
4709 either a GIMPLE_CALL returning a value, or just a plain
4710 GIMPLE_CALL when we are not.
4712 In non-ipa mode, we need to generate constraints for each
4713 pointer passed by address. */
4714 else if (is_gimple_call (t
))
4715 find_func_aliases_for_call (fn
, as_a
<gcall
*> (t
));
4717 /* Otherwise, just a regular assignment statement. Only care about
4718 operations with pointer result, others are dealt with as escape
4719 points if they have pointer operands. */
4720 else if (is_gimple_assign (t
))
4722 /* Otherwise, just a regular assignment statement. */
4723 tree lhsop
= gimple_assign_lhs (t
);
4724 tree rhsop
= (gimple_num_ops (t
) == 2) ? gimple_assign_rhs1 (t
) : NULL
;
4726 if (rhsop
&& TREE_CLOBBER_P (rhsop
))
4727 /* Ignore clobbers, they don't actually store anything into
4730 else if (rhsop
&& AGGREGATE_TYPE_P (TREE_TYPE (lhsop
)))
4731 do_structure_copy (lhsop
, rhsop
);
4734 enum tree_code code
= gimple_assign_rhs_code (t
);
4736 get_constraint_for (lhsop
, &lhsc
);
4738 if (code
== POINTER_PLUS_EXPR
)
4739 get_constraint_for_ptr_offset (gimple_assign_rhs1 (t
),
4740 gimple_assign_rhs2 (t
), &rhsc
);
4741 else if (code
== BIT_AND_EXPR
4742 && TREE_CODE (gimple_assign_rhs2 (t
)) == INTEGER_CST
)
4744 /* Aligning a pointer via a BIT_AND_EXPR is offsetting
4745 the pointer. Handle it by offsetting it by UNKNOWN. */
4746 get_constraint_for_ptr_offset (gimple_assign_rhs1 (t
),
4749 else if ((CONVERT_EXPR_CODE_P (code
)
4750 && !(POINTER_TYPE_P (gimple_expr_type (t
))
4751 && !POINTER_TYPE_P (TREE_TYPE (rhsop
))))
4752 || gimple_assign_single_p (t
))
4753 get_constraint_for_rhs (rhsop
, &rhsc
);
4754 else if (code
== COND_EXPR
)
4756 /* The result is a merge of both COND_EXPR arms. */
4757 auto_vec
<ce_s
, 2> tmp
;
4758 struct constraint_expr
*rhsp
;
4760 get_constraint_for_rhs (gimple_assign_rhs2 (t
), &rhsc
);
4761 get_constraint_for_rhs (gimple_assign_rhs3 (t
), &tmp
);
4762 FOR_EACH_VEC_ELT (tmp
, i
, rhsp
)
4763 rhsc
.safe_push (*rhsp
);
4765 else if (truth_value_p (code
))
4766 /* Truth value results are not pointer (parts). Or at least
4767 very unreasonable obfuscation of a part. */
4771 /* All other operations are merges. */
4772 auto_vec
<ce_s
, 4> tmp
;
4773 struct constraint_expr
*rhsp
;
4775 get_constraint_for_rhs (gimple_assign_rhs1 (t
), &rhsc
);
4776 for (i
= 2; i
< gimple_num_ops (t
); ++i
)
4778 get_constraint_for_rhs (gimple_op (t
, i
), &tmp
);
4779 FOR_EACH_VEC_ELT (tmp
, j
, rhsp
)
4780 rhsc
.safe_push (*rhsp
);
4784 process_all_all_constraints (lhsc
, rhsc
);
4786 /* If there is a store to a global variable the rhs escapes. */
4787 if ((lhsop
= get_base_address (lhsop
)) != NULL_TREE
4790 varinfo_t vi
= get_vi_for_tree (lhsop
);
4791 if ((! in_ipa_mode
&& vi
->is_global_var
)
4792 || vi
->is_ipa_escape_point
)
4793 make_escape_constraint (rhsop
);
4796 /* Handle escapes through return. */
4797 else if (gimple_code (t
) == GIMPLE_RETURN
4798 && gimple_return_retval (as_a
<greturn
*> (t
)) != NULL_TREE
)
4800 greturn
*return_stmt
= as_a
<greturn
*> (t
);
4803 || !(fi
= get_vi_for_tree (fn
->decl
)))
4804 make_escape_constraint (gimple_return_retval (return_stmt
));
4805 else if (in_ipa_mode
)
4807 struct constraint_expr lhs
;
4808 struct constraint_expr
*rhsp
;
4811 lhs
= get_function_part_constraint (fi
, fi_result
);
4812 get_constraint_for_rhs (gimple_return_retval (return_stmt
), &rhsc
);
4813 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
4814 process_constraint (new_constraint (lhs
, *rhsp
));
4817 /* Handle asms conservatively by adding escape constraints to everything. */
4818 else if (gasm
*asm_stmt
= dyn_cast
<gasm
*> (t
))
4820 unsigned i
, noutputs
;
4821 const char **oconstraints
;
4822 const char *constraint
;
4823 bool allows_mem
, allows_reg
, is_inout
;
4825 noutputs
= gimple_asm_noutputs (asm_stmt
);
4826 oconstraints
= XALLOCAVEC (const char *, noutputs
);
4828 for (i
= 0; i
< noutputs
; ++i
)
4830 tree link
= gimple_asm_output_op (asm_stmt
, i
);
4831 tree op
= TREE_VALUE (link
);
4833 constraint
= TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (link
)));
4834 oconstraints
[i
] = constraint
;
4835 parse_output_constraint (&constraint
, i
, 0, 0, &allows_mem
,
4836 &allows_reg
, &is_inout
);
4838 /* A memory constraint makes the address of the operand escape. */
4839 if (!allows_reg
&& allows_mem
)
4840 make_escape_constraint (build_fold_addr_expr (op
));
4842 /* The asm may read global memory, so outputs may point to
4843 any global memory. */
4846 auto_vec
<ce_s
, 2> lhsc
;
4847 struct constraint_expr rhsc
, *lhsp
;
4849 get_constraint_for (op
, &lhsc
);
4850 rhsc
.var
= nonlocal_id
;
4853 FOR_EACH_VEC_ELT (lhsc
, j
, lhsp
)
4854 process_constraint (new_constraint (*lhsp
, rhsc
));
4857 for (i
= 0; i
< gimple_asm_ninputs (asm_stmt
); ++i
)
4859 tree link
= gimple_asm_input_op (asm_stmt
, i
);
4860 tree op
= TREE_VALUE (link
);
4862 constraint
= TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (link
)));
4864 parse_input_constraint (&constraint
, 0, 0, noutputs
, 0, oconstraints
,
4865 &allows_mem
, &allows_reg
);
4867 /* A memory constraint makes the address of the operand escape. */
4868 if (!allows_reg
&& allows_mem
)
4869 make_escape_constraint (build_fold_addr_expr (op
));
4870 /* Strictly we'd only need the constraint to ESCAPED if
4871 the asm clobbers memory, otherwise using something
4872 along the lines of per-call clobbers/uses would be enough. */
4874 make_escape_constraint (op
);
4880 /* Create a constraint adding to the clobber set of FI the memory
4881 pointed to by PTR. */
4884 process_ipa_clobber (varinfo_t fi
, tree ptr
)
4886 vec
<ce_s
> ptrc
= vNULL
;
4887 struct constraint_expr
*c
, lhs
;
4889 get_constraint_for_rhs (ptr
, &ptrc
);
4890 lhs
= get_function_part_constraint (fi
, fi_clobbers
);
4891 FOR_EACH_VEC_ELT (ptrc
, i
, c
)
4892 process_constraint (new_constraint (lhs
, *c
));
4896 /* Walk statement T setting up clobber and use constraints according to the
4897 references found in T. This function is a main part of the
4898 IPA constraint builder. */
4901 find_func_clobbers (struct function
*fn
, gimple
*origt
)
4904 auto_vec
<ce_s
, 16> lhsc
;
4905 auto_vec
<ce_s
, 16> rhsc
;
4908 /* Add constraints for clobbered/used in IPA mode.
4909 We are not interested in what automatic variables are clobbered
4910 or used as we only use the information in the caller to which
4911 they do not escape. */
4912 gcc_assert (in_ipa_mode
);
4914 /* If the stmt refers to memory in any way it better had a VUSE. */
4915 if (gimple_vuse (t
) == NULL_TREE
)
4918 /* We'd better have function information for the current function. */
4919 fi
= lookup_vi_for_tree (fn
->decl
);
4920 gcc_assert (fi
!= NULL
);
4922 /* Account for stores in assignments and calls. */
4923 if (gimple_vdef (t
) != NULL_TREE
4924 && gimple_has_lhs (t
))
4926 tree lhs
= gimple_get_lhs (t
);
4928 while (handled_component_p (tem
))
4929 tem
= TREE_OPERAND (tem
, 0);
4931 && !auto_var_in_fn_p (tem
, fn
->decl
))
4932 || INDIRECT_REF_P (tem
)
4933 || (TREE_CODE (tem
) == MEM_REF
4934 && !(TREE_CODE (TREE_OPERAND (tem
, 0)) == ADDR_EXPR
4936 (TREE_OPERAND (TREE_OPERAND (tem
, 0), 0), fn
->decl
))))
4938 struct constraint_expr lhsc
, *rhsp
;
4940 lhsc
= get_function_part_constraint (fi
, fi_clobbers
);
4941 get_constraint_for_address_of (lhs
, &rhsc
);
4942 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
4943 process_constraint (new_constraint (lhsc
, *rhsp
));
4948 /* Account for uses in assigments and returns. */
4949 if (gimple_assign_single_p (t
)
4950 || (gimple_code (t
) == GIMPLE_RETURN
4951 && gimple_return_retval (as_a
<greturn
*> (t
)) != NULL_TREE
))
4953 tree rhs
= (gimple_assign_single_p (t
)
4954 ? gimple_assign_rhs1 (t
)
4955 : gimple_return_retval (as_a
<greturn
*> (t
)));
4957 while (handled_component_p (tem
))
4958 tem
= TREE_OPERAND (tem
, 0);
4960 && !auto_var_in_fn_p (tem
, fn
->decl
))
4961 || INDIRECT_REF_P (tem
)
4962 || (TREE_CODE (tem
) == MEM_REF
4963 && !(TREE_CODE (TREE_OPERAND (tem
, 0)) == ADDR_EXPR
4965 (TREE_OPERAND (TREE_OPERAND (tem
, 0), 0), fn
->decl
))))
4967 struct constraint_expr lhs
, *rhsp
;
4969 lhs
= get_function_part_constraint (fi
, fi_uses
);
4970 get_constraint_for_address_of (rhs
, &rhsc
);
4971 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
4972 process_constraint (new_constraint (lhs
, *rhsp
));
4977 if (gcall
*call_stmt
= dyn_cast
<gcall
*> (t
))
4979 varinfo_t cfi
= NULL
;
4980 tree decl
= gimple_call_fndecl (t
);
4981 struct constraint_expr lhs
, rhs
;
4984 /* For builtins we do not have separate function info. For those
4985 we do not generate escapes for we have to generate clobbers/uses. */
4986 if (gimple_call_builtin_p (t
, BUILT_IN_NORMAL
))
4987 switch (DECL_FUNCTION_CODE (decl
))
4989 /* The following functions use and clobber memory pointed to
4990 by their arguments. */
4991 case BUILT_IN_STRCPY
:
4992 case BUILT_IN_STRNCPY
:
4993 case BUILT_IN_BCOPY
:
4994 case BUILT_IN_MEMCPY
:
4995 case BUILT_IN_MEMMOVE
:
4996 case BUILT_IN_MEMPCPY
:
4997 case BUILT_IN_STPCPY
:
4998 case BUILT_IN_STPNCPY
:
4999 case BUILT_IN_STRCAT
:
5000 case BUILT_IN_STRNCAT
:
5001 case BUILT_IN_STRCPY_CHK
:
5002 case BUILT_IN_STRNCPY_CHK
:
5003 case BUILT_IN_MEMCPY_CHK
:
5004 case BUILT_IN_MEMMOVE_CHK
:
5005 case BUILT_IN_MEMPCPY_CHK
:
5006 case BUILT_IN_STPCPY_CHK
:
5007 case BUILT_IN_STPNCPY_CHK
:
5008 case BUILT_IN_STRCAT_CHK
:
5009 case BUILT_IN_STRNCAT_CHK
:
5011 tree dest
= gimple_call_arg (t
, (DECL_FUNCTION_CODE (decl
)
5012 == BUILT_IN_BCOPY
? 1 : 0));
5013 tree src
= gimple_call_arg (t
, (DECL_FUNCTION_CODE (decl
)
5014 == BUILT_IN_BCOPY
? 0 : 1));
5016 struct constraint_expr
*rhsp
, *lhsp
;
5017 get_constraint_for_ptr_offset (dest
, NULL_TREE
, &lhsc
);
5018 lhs
= get_function_part_constraint (fi
, fi_clobbers
);
5019 FOR_EACH_VEC_ELT (lhsc
, i
, lhsp
)
5020 process_constraint (new_constraint (lhs
, *lhsp
));
5021 get_constraint_for_ptr_offset (src
, NULL_TREE
, &rhsc
);
5022 lhs
= get_function_part_constraint (fi
, fi_uses
);
5023 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
5024 process_constraint (new_constraint (lhs
, *rhsp
));
5027 /* The following function clobbers memory pointed to by
5029 case BUILT_IN_MEMSET
:
5030 case BUILT_IN_MEMSET_CHK
:
5031 case BUILT_IN_POSIX_MEMALIGN
:
5033 tree dest
= gimple_call_arg (t
, 0);
5036 get_constraint_for_ptr_offset (dest
, NULL_TREE
, &lhsc
);
5037 lhs
= get_function_part_constraint (fi
, fi_clobbers
);
5038 FOR_EACH_VEC_ELT (lhsc
, i
, lhsp
)
5039 process_constraint (new_constraint (lhs
, *lhsp
));
5042 /* The following functions clobber their second and third
5044 case BUILT_IN_SINCOS
:
5045 case BUILT_IN_SINCOSF
:
5046 case BUILT_IN_SINCOSL
:
5048 process_ipa_clobber (fi
, gimple_call_arg (t
, 1));
5049 process_ipa_clobber (fi
, gimple_call_arg (t
, 2));
5052 /* The following functions clobber their second argument. */
5053 case BUILT_IN_FREXP
:
5054 case BUILT_IN_FREXPF
:
5055 case BUILT_IN_FREXPL
:
5056 case BUILT_IN_LGAMMA_R
:
5057 case BUILT_IN_LGAMMAF_R
:
5058 case BUILT_IN_LGAMMAL_R
:
5059 case BUILT_IN_GAMMA_R
:
5060 case BUILT_IN_GAMMAF_R
:
5061 case BUILT_IN_GAMMAL_R
:
5063 case BUILT_IN_MODFF
:
5064 case BUILT_IN_MODFL
:
5066 process_ipa_clobber (fi
, gimple_call_arg (t
, 1));
5069 /* The following functions clobber their third argument. */
5070 case BUILT_IN_REMQUO
:
5071 case BUILT_IN_REMQUOF
:
5072 case BUILT_IN_REMQUOL
:
5074 process_ipa_clobber (fi
, gimple_call_arg (t
, 2));
5077 /* The following functions neither read nor clobber memory. */
5078 case BUILT_IN_ASSUME_ALIGNED
:
5081 /* Trampolines are of no interest to us. */
5082 case BUILT_IN_INIT_TRAMPOLINE
:
5083 case BUILT_IN_ADJUST_TRAMPOLINE
:
5085 case BUILT_IN_VA_START
:
5086 case BUILT_IN_VA_END
:
5088 case BUILT_IN_GOMP_PARALLEL
:
5089 case BUILT_IN_GOACC_PARALLEL
:
5091 unsigned int fnpos
, argpos
;
5092 unsigned int implicit_use_args
[2];
5093 unsigned int num_implicit_use_args
= 0;
5094 switch (DECL_FUNCTION_CODE (decl
))
5096 case BUILT_IN_GOMP_PARALLEL
:
5097 /* __builtin_GOMP_parallel (fn, data, num_threads, flags). */
5101 case BUILT_IN_GOACC_PARALLEL
:
5102 /* __builtin_GOACC_parallel (device, fn, mapnum, hostaddrs,
5103 sizes, kinds, ...). */
5106 implicit_use_args
[num_implicit_use_args
++] = 4;
5107 implicit_use_args
[num_implicit_use_args
++] = 5;
5113 tree fnarg
= gimple_call_arg (t
, fnpos
);
5114 gcc_assert (TREE_CODE (fnarg
) == ADDR_EXPR
);
5115 tree fndecl
= TREE_OPERAND (fnarg
, 0);
5116 varinfo_t cfi
= get_vi_for_tree (fndecl
);
5118 tree arg
= gimple_call_arg (t
, argpos
);
5120 /* Parameter passed by value is used. */
5121 lhs
= get_function_part_constraint (fi
, fi_uses
);
5122 struct constraint_expr
*rhsp
;
5123 get_constraint_for (arg
, &rhsc
);
5124 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
5125 process_constraint (new_constraint (lhs
, *rhsp
));
5128 /* Handle parameters used by the call, but not used in cfi, as
5129 implicitly used by cfi. */
5130 lhs
= get_function_part_constraint (cfi
, fi_uses
);
5131 for (unsigned i
= 0; i
< num_implicit_use_args
; ++i
)
5133 tree arg
= gimple_call_arg (t
, implicit_use_args
[i
]);
5134 get_constraint_for (arg
, &rhsc
);
5135 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
5136 process_constraint (new_constraint (lhs
, *rhsp
));
5140 /* The caller clobbers what the callee does. */
5141 lhs
= get_function_part_constraint (fi
, fi_clobbers
);
5142 rhs
= get_function_part_constraint (cfi
, fi_clobbers
);
5143 process_constraint (new_constraint (lhs
, rhs
));
5145 /* The caller uses what the callee does. */
5146 lhs
= get_function_part_constraint (fi
, fi_uses
);
5147 rhs
= get_function_part_constraint (cfi
, fi_uses
);
5148 process_constraint (new_constraint (lhs
, rhs
));
5152 /* printf-style functions may have hooks to set pointers to
5153 point to somewhere into the generated string. Leave them
5154 for a later exercise... */
5156 /* Fallthru to general call handling. */;
5159 /* Parameters passed by value are used. */
5160 lhs
= get_function_part_constraint (fi
, fi_uses
);
5161 for (i
= 0; i
< gimple_call_num_args (t
); i
++)
5163 struct constraint_expr
*rhsp
;
5164 tree arg
= gimple_call_arg (t
, i
);
5166 if (TREE_CODE (arg
) == SSA_NAME
5167 || is_gimple_min_invariant (arg
))
5170 get_constraint_for_address_of (arg
, &rhsc
);
5171 FOR_EACH_VEC_ELT (rhsc
, j
, rhsp
)
5172 process_constraint (new_constraint (lhs
, *rhsp
));
5176 /* Build constraints for propagating clobbers/uses along the
5178 cfi
= get_fi_for_callee (call_stmt
);
5179 if (cfi
->id
== anything_id
)
5181 if (gimple_vdef (t
))
5182 make_constraint_from (first_vi_for_offset (fi
, fi_clobbers
),
5184 make_constraint_from (first_vi_for_offset (fi
, fi_uses
),
5189 /* For callees without function info (that's external functions),
5190 ESCAPED is clobbered and used. */
5191 if (gimple_call_fndecl (t
)
5192 && !cfi
->is_fn_info
)
5196 if (gimple_vdef (t
))
5197 make_copy_constraint (first_vi_for_offset (fi
, fi_clobbers
),
5199 make_copy_constraint (first_vi_for_offset (fi
, fi_uses
), escaped_id
);
5201 /* Also honor the call statement use/clobber info. */
5202 if ((vi
= lookup_call_clobber_vi (call_stmt
)) != NULL
)
5203 make_copy_constraint (first_vi_for_offset (fi
, fi_clobbers
),
5205 if ((vi
= lookup_call_use_vi (call_stmt
)) != NULL
)
5206 make_copy_constraint (first_vi_for_offset (fi
, fi_uses
),
5211 /* Otherwise the caller clobbers and uses what the callee does.
5212 ??? This should use a new complex constraint that filters
5213 local variables of the callee. */
5214 if (gimple_vdef (t
))
5216 lhs
= get_function_part_constraint (fi
, fi_clobbers
);
5217 rhs
= get_function_part_constraint (cfi
, fi_clobbers
);
5218 process_constraint (new_constraint (lhs
, rhs
));
5220 lhs
= get_function_part_constraint (fi
, fi_uses
);
5221 rhs
= get_function_part_constraint (cfi
, fi_uses
);
5222 process_constraint (new_constraint (lhs
, rhs
));
5224 else if (gimple_code (t
) == GIMPLE_ASM
)
5226 /* ??? Ick. We can do better. */
5227 if (gimple_vdef (t
))
5228 make_constraint_from (first_vi_for_offset (fi
, fi_clobbers
),
5230 make_constraint_from (first_vi_for_offset (fi
, fi_uses
),
5236 /* Find the first varinfo in the same variable as START that overlaps with
5237 OFFSET. Return NULL if we can't find one. */
5240 first_vi_for_offset (varinfo_t start
, unsigned HOST_WIDE_INT offset
)
5242 /* If the offset is outside of the variable, bail out. */
5243 if (offset
>= start
->fullsize
)
5246 /* If we cannot reach offset from start, lookup the first field
5247 and start from there. */
5248 if (start
->offset
> offset
)
5249 start
= get_varinfo (start
->head
);
5253 /* We may not find a variable in the field list with the actual
5254 offset when we have glommed a structure to a variable.
5255 In that case, however, offset should still be within the size
5257 if (offset
>= start
->offset
5258 && (offset
- start
->offset
) < start
->size
)
5261 start
= vi_next (start
);
5267 /* Find the first varinfo in the same variable as START that overlaps with
5268 OFFSET. If there is no such varinfo the varinfo directly preceding
5269 OFFSET is returned. */
5272 first_or_preceding_vi_for_offset (varinfo_t start
,
5273 unsigned HOST_WIDE_INT offset
)
5275 /* If we cannot reach offset from start, lookup the first field
5276 and start from there. */
5277 if (start
->offset
> offset
)
5278 start
= get_varinfo (start
->head
);
5280 /* We may not find a variable in the field list with the actual
5281 offset when we have glommed a structure to a variable.
5282 In that case, however, offset should still be within the size
5284 If we got beyond the offset we look for return the field
5285 directly preceding offset which may be the last field. */
5287 && offset
>= start
->offset
5288 && !((offset
- start
->offset
) < start
->size
))
5289 start
= vi_next (start
);
5295 /* This structure is used during pushing fields onto the fieldstack
5296 to track the offset of the field, since bitpos_of_field gives it
5297 relative to its immediate containing type, and we want it relative
5298 to the ultimate containing object. */
5302 /* Offset from the base of the base containing object to this field. */
5303 HOST_WIDE_INT offset
;
5305 /* Size, in bits, of the field. */
5306 unsigned HOST_WIDE_INT size
;
5308 unsigned has_unknown_size
: 1;
5310 unsigned must_have_pointers
: 1;
5312 unsigned may_have_pointers
: 1;
5314 unsigned only_restrict_pointers
: 1;
5316 tree restrict_pointed_type
;
5318 typedef struct fieldoff fieldoff_s
;
5321 /* qsort comparison function for two fieldoff's PA and PB */
5324 fieldoff_compare (const void *pa
, const void *pb
)
5326 const fieldoff_s
*foa
= (const fieldoff_s
*)pa
;
5327 const fieldoff_s
*fob
= (const fieldoff_s
*)pb
;
5328 unsigned HOST_WIDE_INT foasize
, fobsize
;
5330 if (foa
->offset
< fob
->offset
)
5332 else if (foa
->offset
> fob
->offset
)
5335 foasize
= foa
->size
;
5336 fobsize
= fob
->size
;
5337 if (foasize
< fobsize
)
5339 else if (foasize
> fobsize
)
5344 /* Sort a fieldstack according to the field offset and sizes. */
5346 sort_fieldstack (vec
<fieldoff_s
> fieldstack
)
5348 fieldstack
.qsort (fieldoff_compare
);
5351 /* Return true if T is a type that can have subvars. */
5354 type_can_have_subvars (const_tree t
)
5356 /* Aggregates without overlapping fields can have subvars. */
5357 return TREE_CODE (t
) == RECORD_TYPE
;
5360 /* Return true if V is a tree that we can have subvars for.
5361 Normally, this is any aggregate type. Also complex
5362 types which are not gimple registers can have subvars. */
5365 var_can_have_subvars (const_tree v
)
5367 /* Volatile variables should never have subvars. */
5368 if (TREE_THIS_VOLATILE (v
))
5371 /* Non decls or memory tags can never have subvars. */
5375 return type_can_have_subvars (TREE_TYPE (v
));
5378 /* Return true if T is a type that does contain pointers. */
5381 type_must_have_pointers (tree type
)
5383 if (POINTER_TYPE_P (type
))
5386 if (TREE_CODE (type
) == ARRAY_TYPE
)
5387 return type_must_have_pointers (TREE_TYPE (type
));
5389 /* A function or method can have pointers as arguments, so track
5390 those separately. */
5391 if (TREE_CODE (type
) == FUNCTION_TYPE
5392 || TREE_CODE (type
) == METHOD_TYPE
)
5399 field_must_have_pointers (tree t
)
5401 return type_must_have_pointers (TREE_TYPE (t
));
5404 /* Given a TYPE, and a vector of field offsets FIELDSTACK, push all
5405 the fields of TYPE onto fieldstack, recording their offsets along
5408 OFFSET is used to keep track of the offset in this entire
5409 structure, rather than just the immediately containing structure.
5410 Returns false if the caller is supposed to handle the field we
5414 push_fields_onto_fieldstack (tree type
, vec
<fieldoff_s
> *fieldstack
,
5415 HOST_WIDE_INT offset
)
5418 bool empty_p
= true;
5420 if (TREE_CODE (type
) != RECORD_TYPE
)
5423 /* If the vector of fields is growing too big, bail out early.
5424 Callers check for vec::length <= MAX_FIELDS_FOR_FIELD_SENSITIVE, make
5426 if (fieldstack
->length () > MAX_FIELDS_FOR_FIELD_SENSITIVE
)
5429 for (field
= TYPE_FIELDS (type
); field
; field
= DECL_CHAIN (field
))
5430 if (TREE_CODE (field
) == FIELD_DECL
)
5433 HOST_WIDE_INT foff
= bitpos_of_field (field
);
5434 tree field_type
= TREE_TYPE (field
);
5436 if (!var_can_have_subvars (field
)
5437 || TREE_CODE (field_type
) == QUAL_UNION_TYPE
5438 || TREE_CODE (field_type
) == UNION_TYPE
)
5440 else if (!push_fields_onto_fieldstack
5441 (field_type
, fieldstack
, offset
+ foff
)
5442 && (DECL_SIZE (field
)
5443 && !integer_zerop (DECL_SIZE (field
))))
5444 /* Empty structures may have actual size, like in C++. So
5445 see if we didn't push any subfields and the size is
5446 nonzero, push the field onto the stack. */
5451 fieldoff_s
*pair
= NULL
;
5452 bool has_unknown_size
= false;
5453 bool must_have_pointers_p
;
5455 if (!fieldstack
->is_empty ())
5456 pair
= &fieldstack
->last ();
5458 /* If there isn't anything at offset zero, create sth. */
5460 && offset
+ foff
!= 0)
5463 = {0, offset
+ foff
, false, false, false, false, NULL_TREE
};
5464 pair
= fieldstack
->safe_push (e
);
5467 if (!DECL_SIZE (field
)
5468 || !tree_fits_uhwi_p (DECL_SIZE (field
)))
5469 has_unknown_size
= true;
5471 /* If adjacent fields do not contain pointers merge them. */
5472 must_have_pointers_p
= field_must_have_pointers (field
);
5474 && !has_unknown_size
5475 && !must_have_pointers_p
5476 && !pair
->must_have_pointers
5477 && !pair
->has_unknown_size
5478 && pair
->offset
+ (HOST_WIDE_INT
)pair
->size
== offset
+ foff
)
5480 pair
->size
+= tree_to_uhwi (DECL_SIZE (field
));
5485 e
.offset
= offset
+ foff
;
5486 e
.has_unknown_size
= has_unknown_size
;
5487 if (!has_unknown_size
)
5488 e
.size
= tree_to_uhwi (DECL_SIZE (field
));
5491 e
.must_have_pointers
= must_have_pointers_p
;
5492 e
.may_have_pointers
= true;
5493 e
.only_restrict_pointers
5494 = (!has_unknown_size
5495 && POINTER_TYPE_P (field_type
)
5496 && TYPE_RESTRICT (field_type
));
5497 if (e
.only_restrict_pointers
)
5498 e
.restrict_pointed_type
= TREE_TYPE (field_type
);
5499 fieldstack
->safe_push (e
);
5509 /* Count the number of arguments DECL has, and set IS_VARARGS to true
5510 if it is a varargs function. */
5513 count_num_arguments (tree decl
, bool *is_varargs
)
5515 unsigned int num
= 0;
5518 /* Capture named arguments for K&R functions. They do not
5519 have a prototype and thus no TYPE_ARG_TYPES. */
5520 for (t
= DECL_ARGUMENTS (decl
); t
; t
= DECL_CHAIN (t
))
5523 /* Check if the function has variadic arguments. */
5524 for (t
= TYPE_ARG_TYPES (TREE_TYPE (decl
)); t
; t
= TREE_CHAIN (t
))
5525 if (TREE_VALUE (t
) == void_type_node
)
5533 /* Creation function node for DECL, using NAME, and return the index
5534 of the variable we've created for the function. If NONLOCAL_p, create
5535 initial constraints. */
5538 create_function_info_for (tree decl
, const char *name
, bool add_id
,
5541 struct function
*fn
= DECL_STRUCT_FUNCTION (decl
);
5542 varinfo_t vi
, prev_vi
;
5545 bool is_varargs
= false;
5546 unsigned int num_args
= count_num_arguments (decl
, &is_varargs
);
5548 /* Create the variable info. */
5550 vi
= new_var_info (decl
, name
, add_id
);
5553 vi
->fullsize
= fi_parm_base
+ num_args
;
5555 vi
->may_have_pointers
= false;
5558 insert_vi_for_tree (vi
->decl
, vi
);
5562 /* Create a variable for things the function clobbers and one for
5563 things the function uses. */
5565 varinfo_t clobbervi
, usevi
;
5566 const char *newname
;
5569 tempname
= xasprintf ("%s.clobber", name
);
5570 newname
= ggc_strdup (tempname
);
5573 clobbervi
= new_var_info (NULL
, newname
, false);
5574 clobbervi
->offset
= fi_clobbers
;
5575 clobbervi
->size
= 1;
5576 clobbervi
->fullsize
= vi
->fullsize
;
5577 clobbervi
->is_full_var
= true;
5578 clobbervi
->is_global_var
= false;
5580 gcc_assert (prev_vi
->offset
< clobbervi
->offset
);
5581 prev_vi
->next
= clobbervi
->id
;
5582 prev_vi
= clobbervi
;
5584 tempname
= xasprintf ("%s.use", name
);
5585 newname
= ggc_strdup (tempname
);
5588 usevi
= new_var_info (NULL
, newname
, false);
5589 usevi
->offset
= fi_uses
;
5591 usevi
->fullsize
= vi
->fullsize
;
5592 usevi
->is_full_var
= true;
5593 usevi
->is_global_var
= false;
5595 gcc_assert (prev_vi
->offset
< usevi
->offset
);
5596 prev_vi
->next
= usevi
->id
;
5600 /* And one for the static chain. */
5601 if (fn
->static_chain_decl
!= NULL_TREE
)
5604 const char *newname
;
5607 tempname
= xasprintf ("%s.chain", name
);
5608 newname
= ggc_strdup (tempname
);
5611 chainvi
= new_var_info (fn
->static_chain_decl
, newname
, false);
5612 chainvi
->offset
= fi_static_chain
;
5614 chainvi
->fullsize
= vi
->fullsize
;
5615 chainvi
->is_full_var
= true;
5616 chainvi
->is_global_var
= false;
5618 insert_vi_for_tree (fn
->static_chain_decl
, chainvi
);
5621 && chainvi
->may_have_pointers
)
5622 make_constraint_from (chainvi
, nonlocal_id
);
5624 gcc_assert (prev_vi
->offset
< chainvi
->offset
);
5625 prev_vi
->next
= chainvi
->id
;
5629 /* Create a variable for the return var. */
5630 if (DECL_RESULT (decl
) != NULL
5631 || !VOID_TYPE_P (TREE_TYPE (TREE_TYPE (decl
))))
5634 const char *newname
;
5636 tree resultdecl
= decl
;
5638 if (DECL_RESULT (decl
))
5639 resultdecl
= DECL_RESULT (decl
);
5641 tempname
= xasprintf ("%s.result", name
);
5642 newname
= ggc_strdup (tempname
);
5645 resultvi
= new_var_info (resultdecl
, newname
, false);
5646 resultvi
->offset
= fi_result
;
5648 resultvi
->fullsize
= vi
->fullsize
;
5649 resultvi
->is_full_var
= true;
5650 if (DECL_RESULT (decl
))
5651 resultvi
->may_have_pointers
= true;
5653 if (DECL_RESULT (decl
))
5654 insert_vi_for_tree (DECL_RESULT (decl
), resultvi
);
5657 && DECL_RESULT (decl
)
5658 && DECL_BY_REFERENCE (DECL_RESULT (decl
)))
5659 make_constraint_from (resultvi
, nonlocal_id
);
5661 gcc_assert (prev_vi
->offset
< resultvi
->offset
);
5662 prev_vi
->next
= resultvi
->id
;
5666 /* We also need to make function return values escape. Nothing
5667 escapes by returning from main though. */
5669 && !MAIN_NAME_P (DECL_NAME (decl
)))
5672 fi
= lookup_vi_for_tree (decl
);
5673 rvi
= first_vi_for_offset (fi
, fi_result
);
5674 if (rvi
&& rvi
->offset
== fi_result
)
5675 make_copy_constraint (get_varinfo (escaped_id
), rvi
->id
);
5678 /* Set up variables for each argument. */
5679 arg
= DECL_ARGUMENTS (decl
);
5680 for (i
= 0; i
< num_args
; i
++)
5683 const char *newname
;
5685 tree argdecl
= decl
;
5690 tempname
= xasprintf ("%s.arg%d", name
, i
);
5691 newname
= ggc_strdup (tempname
);
5694 argvi
= new_var_info (argdecl
, newname
, false);
5695 argvi
->offset
= fi_parm_base
+ i
;
5697 argvi
->is_full_var
= true;
5698 argvi
->fullsize
= vi
->fullsize
;
5700 argvi
->may_have_pointers
= true;
5703 insert_vi_for_tree (arg
, argvi
);
5706 && argvi
->may_have_pointers
)
5707 make_constraint_from (argvi
, nonlocal_id
);
5709 gcc_assert (prev_vi
->offset
< argvi
->offset
);
5710 prev_vi
->next
= argvi
->id
;
5713 arg
= DECL_CHAIN (arg
);
5716 /* Add one representative for all further args. */
5720 const char *newname
;
5724 tempname
= xasprintf ("%s.varargs", name
);
5725 newname
= ggc_strdup (tempname
);
5728 /* We need sth that can be pointed to for va_start. */
5729 decl
= build_fake_var_decl (ptr_type_node
);
5731 argvi
= new_var_info (decl
, newname
, false);
5732 argvi
->offset
= fi_parm_base
+ num_args
;
5734 argvi
->is_full_var
= true;
5735 argvi
->is_heap_var
= true;
5736 argvi
->fullsize
= vi
->fullsize
;
5739 && argvi
->may_have_pointers
)
5740 make_constraint_from (argvi
, nonlocal_id
);
5742 gcc_assert (prev_vi
->offset
< argvi
->offset
);
5743 prev_vi
->next
= argvi
->id
;
5751 /* Return true if FIELDSTACK contains fields that overlap.
5752 FIELDSTACK is assumed to be sorted by offset. */
5755 check_for_overlaps (vec
<fieldoff_s
> fieldstack
)
5757 fieldoff_s
*fo
= NULL
;
5759 HOST_WIDE_INT lastoffset
= -1;
5761 FOR_EACH_VEC_ELT (fieldstack
, i
, fo
)
5763 if (fo
->offset
== lastoffset
)
5765 lastoffset
= fo
->offset
;
5770 /* Create a varinfo structure for NAME and DECL, and add it to VARMAP.
5771 This will also create any varinfo structures necessary for fields
5772 of DECL. DECL is a function parameter if HANDLE_PARAM is set.
5773 HANDLED_STRUCT_TYPE is used to register struct types reached by following
5774 restrict pointers. This is needed to prevent infinite recursion. */
5777 create_variable_info_for_1 (tree decl
, const char *name
, bool add_id
,
5778 bool handle_param
, bitmap handled_struct_type
)
5780 varinfo_t vi
, newvi
;
5781 tree decl_type
= TREE_TYPE (decl
);
5782 tree declsize
= DECL_P (decl
) ? DECL_SIZE (decl
) : TYPE_SIZE (decl_type
);
5783 auto_vec
<fieldoff_s
> fieldstack
;
5788 || !tree_fits_uhwi_p (declsize
))
5790 vi
= new_var_info (decl
, name
, add_id
);
5794 vi
->is_unknown_size_var
= true;
5795 vi
->is_full_var
= true;
5796 vi
->may_have_pointers
= true;
5800 /* Collect field information. */
5801 if (use_field_sensitive
5802 && var_can_have_subvars (decl
)
5803 /* ??? Force us to not use subfields for globals in IPA mode.
5804 Else we'd have to parse arbitrary initializers. */
5806 && is_global_var (decl
)))
5808 fieldoff_s
*fo
= NULL
;
5809 bool notokay
= false;
5812 push_fields_onto_fieldstack (decl_type
, &fieldstack
, 0);
5814 for (i
= 0; !notokay
&& fieldstack
.iterate (i
, &fo
); i
++)
5815 if (fo
->has_unknown_size
5822 /* We can't sort them if we have a field with a variable sized type,
5823 which will make notokay = true. In that case, we are going to return
5824 without creating varinfos for the fields anyway, so sorting them is a
5828 sort_fieldstack (fieldstack
);
5829 /* Due to some C++ FE issues, like PR 22488, we might end up
5830 what appear to be overlapping fields even though they,
5831 in reality, do not overlap. Until the C++ FE is fixed,
5832 we will simply disable field-sensitivity for these cases. */
5833 notokay
= check_for_overlaps (fieldstack
);
5837 fieldstack
.release ();
5840 /* If we didn't end up collecting sub-variables create a full
5841 variable for the decl. */
5842 if (fieldstack
.length () == 0
5843 || fieldstack
.length () > MAX_FIELDS_FOR_FIELD_SENSITIVE
)
5845 vi
= new_var_info (decl
, name
, add_id
);
5847 vi
->may_have_pointers
= true;
5848 vi
->fullsize
= tree_to_uhwi (declsize
);
5849 vi
->size
= vi
->fullsize
;
5850 vi
->is_full_var
= true;
5851 if (POINTER_TYPE_P (decl_type
)
5852 && TYPE_RESTRICT (decl_type
))
5853 vi
->only_restrict_pointers
= 1;
5854 if (vi
->only_restrict_pointers
5855 && !type_contains_placeholder_p (TREE_TYPE (decl_type
))
5857 && !bitmap_bit_p (handled_struct_type
,
5858 TYPE_UID (TREE_TYPE (decl_type
))))
5861 tree heapvar
= build_fake_var_decl (TREE_TYPE (decl_type
));
5862 DECL_EXTERNAL (heapvar
) = 1;
5863 if (var_can_have_subvars (heapvar
))
5864 bitmap_set_bit (handled_struct_type
,
5865 TYPE_UID (TREE_TYPE (decl_type
)));
5866 rvi
= create_variable_info_for_1 (heapvar
, "PARM_NOALIAS", true,
5867 true, handled_struct_type
);
5868 if (var_can_have_subvars (heapvar
))
5869 bitmap_clear_bit (handled_struct_type
,
5870 TYPE_UID (TREE_TYPE (decl_type
)));
5871 rvi
->is_restrict_var
= 1;
5872 insert_vi_for_tree (heapvar
, rvi
);
5873 make_constraint_from (vi
, rvi
->id
);
5874 make_param_constraints (rvi
);
5876 fieldstack
.release ();
5880 vi
= new_var_info (decl
, name
, add_id
);
5881 vi
->fullsize
= tree_to_uhwi (declsize
);
5882 if (fieldstack
.length () == 1)
5883 vi
->is_full_var
= true;
5884 for (i
= 0, newvi
= vi
;
5885 fieldstack
.iterate (i
, &fo
);
5886 ++i
, newvi
= vi_next (newvi
))
5888 const char *newname
= NULL
;
5893 if (fieldstack
.length () != 1)
5896 = xasprintf ("%s." HOST_WIDE_INT_PRINT_DEC
5897 "+" HOST_WIDE_INT_PRINT_DEC
, name
,
5898 fo
->offset
, fo
->size
);
5899 newname
= ggc_strdup (tempname
);
5907 newvi
->name
= newname
;
5908 newvi
->offset
= fo
->offset
;
5909 newvi
->size
= fo
->size
;
5910 newvi
->fullsize
= vi
->fullsize
;
5911 newvi
->may_have_pointers
= fo
->may_have_pointers
;
5912 newvi
->only_restrict_pointers
= fo
->only_restrict_pointers
;
5914 && newvi
->only_restrict_pointers
5915 && !type_contains_placeholder_p (fo
->restrict_pointed_type
)
5916 && !bitmap_bit_p (handled_struct_type
,
5917 TYPE_UID (fo
->restrict_pointed_type
)))
5920 tree heapvar
= build_fake_var_decl (fo
->restrict_pointed_type
);
5921 DECL_EXTERNAL (heapvar
) = 1;
5922 if (var_can_have_subvars (heapvar
))
5923 bitmap_set_bit (handled_struct_type
,
5924 TYPE_UID (fo
->restrict_pointed_type
));
5925 rvi
= create_variable_info_for_1 (heapvar
, "PARM_NOALIAS", true,
5926 true, handled_struct_type
);
5927 if (var_can_have_subvars (heapvar
))
5928 bitmap_clear_bit (handled_struct_type
,
5929 TYPE_UID (fo
->restrict_pointed_type
));
5930 rvi
->is_restrict_var
= 1;
5931 insert_vi_for_tree (heapvar
, rvi
);
5932 make_constraint_from (newvi
, rvi
->id
);
5933 make_param_constraints (rvi
);
5935 if (i
+ 1 < fieldstack
.length ())
5937 varinfo_t tem
= new_var_info (decl
, name
, false);
5938 newvi
->next
= tem
->id
;
5947 create_variable_info_for (tree decl
, const char *name
, bool add_id
)
5949 varinfo_t vi
= create_variable_info_for_1 (decl
, name
, add_id
, false, NULL
);
5950 unsigned int id
= vi
->id
;
5952 insert_vi_for_tree (decl
, vi
);
5954 if (TREE_CODE (decl
) != VAR_DECL
)
5957 /* Create initial constraints for globals. */
5958 for (; vi
; vi
= vi_next (vi
))
5960 if (!vi
->may_have_pointers
5961 || !vi
->is_global_var
)
5964 /* Mark global restrict qualified pointers. */
5965 if ((POINTER_TYPE_P (TREE_TYPE (decl
))
5966 && TYPE_RESTRICT (TREE_TYPE (decl
)))
5967 || vi
->only_restrict_pointers
)
5970 = make_constraint_from_global_restrict (vi
, "GLOBAL_RESTRICT",
5972 /* ??? For now exclude reads from globals as restrict sources
5973 if those are not (indirectly) from incoming parameters. */
5974 rvi
->is_restrict_var
= false;
5978 /* In non-IPA mode the initializer from nonlocal is all we need. */
5980 || DECL_HARD_REGISTER (decl
))
5981 make_copy_constraint (vi
, nonlocal_id
);
5983 /* In IPA mode parse the initializer and generate proper constraints
5987 varpool_node
*vnode
= varpool_node::get (decl
);
5989 /* For escaped variables initialize them from nonlocal. */
5990 if (!vnode
->all_refs_explicit_p ())
5991 make_copy_constraint (vi
, nonlocal_id
);
5993 /* If this is a global variable with an initializer and we are in
5994 IPA mode generate constraints for it. */
5996 for (unsigned idx
= 0; vnode
->iterate_reference (idx
, ref
); ++idx
)
5998 auto_vec
<ce_s
> rhsc
;
5999 struct constraint_expr lhs
, *rhsp
;
6001 get_constraint_for_address_of (ref
->referred
->decl
, &rhsc
);
6005 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
6006 process_constraint (new_constraint (lhs
, *rhsp
));
6007 /* If this is a variable that escapes from the unit
6008 the initializer escapes as well. */
6009 if (!vnode
->all_refs_explicit_p ())
6011 lhs
.var
= escaped_id
;
6014 FOR_EACH_VEC_ELT (rhsc
, i
, rhsp
)
6015 process_constraint (new_constraint (lhs
, *rhsp
));
6024 /* Print out the points-to solution for VAR to FILE. */
6027 dump_solution_for_var (FILE *file
, unsigned int var
)
6029 varinfo_t vi
= get_varinfo (var
);
6033 /* Dump the solution for unified vars anyway, this avoids difficulties
6034 in scanning dumps in the testsuite. */
6035 fprintf (file
, "%s = { ", vi
->name
);
6036 vi
= get_varinfo (find (var
));
6037 EXECUTE_IF_SET_IN_BITMAP (vi
->solution
, 0, i
, bi
)
6038 fprintf (file
, "%s ", get_varinfo (i
)->name
);
6039 fprintf (file
, "}");
6041 /* But note when the variable was unified. */
6043 fprintf (file
, " same as %s", vi
->name
);
6045 fprintf (file
, "\n");
6048 /* Print the points-to solution for VAR to stderr. */
6051 debug_solution_for_var (unsigned int var
)
6053 dump_solution_for_var (stderr
, var
);
6056 /* Register the constraints for function parameter related VI. */
6059 make_param_constraints (varinfo_t vi
)
6061 for (; vi
; vi
= vi_next (vi
))
6063 if (vi
->only_restrict_pointers
)
6065 else if (vi
->may_have_pointers
)
6066 make_constraint_from (vi
, nonlocal_id
);
6068 if (vi
->is_full_var
)
6073 /* Create varinfo structures for all of the variables in the
6074 function for intraprocedural mode. */
6077 intra_create_variable_infos (struct function
*fn
)
6080 bitmap handled_struct_type
= NULL
;
6082 /* For each incoming pointer argument arg, create the constraint ARG
6083 = NONLOCAL or a dummy variable if it is a restrict qualified
6084 passed-by-reference argument. */
6085 for (t
= DECL_ARGUMENTS (fn
->decl
); t
; t
= DECL_CHAIN (t
))
6087 if (handled_struct_type
== NULL
)
6088 handled_struct_type
= BITMAP_ALLOC (NULL
);
6091 = create_variable_info_for_1 (t
, alias_get_name (t
), false, true,
6092 handled_struct_type
);
6093 insert_vi_for_tree (t
, p
);
6095 make_param_constraints (p
);
6098 if (handled_struct_type
!= NULL
)
6099 BITMAP_FREE (handled_struct_type
);
6101 /* Add a constraint for a result decl that is passed by reference. */
6102 if (DECL_RESULT (fn
->decl
)
6103 && DECL_BY_REFERENCE (DECL_RESULT (fn
->decl
)))
6105 varinfo_t p
, result_vi
= get_vi_for_tree (DECL_RESULT (fn
->decl
));
6107 for (p
= result_vi
; p
; p
= vi_next (p
))
6108 make_constraint_from (p
, nonlocal_id
);
6111 /* Add a constraint for the incoming static chain parameter. */
6112 if (fn
->static_chain_decl
!= NULL_TREE
)
6114 varinfo_t p
, chain_vi
= get_vi_for_tree (fn
->static_chain_decl
);
6116 for (p
= chain_vi
; p
; p
= vi_next (p
))
6117 make_constraint_from (p
, nonlocal_id
);
6121 /* Structure used to put solution bitmaps in a hashtable so they can
6122 be shared among variables with the same points-to set. */
6124 typedef struct shared_bitmap_info
6128 } *shared_bitmap_info_t
;
6129 typedef const struct shared_bitmap_info
*const_shared_bitmap_info_t
;
6131 /* Shared_bitmap hashtable helpers. */
6133 struct shared_bitmap_hasher
: free_ptr_hash
<shared_bitmap_info
>
6135 static inline hashval_t
hash (const shared_bitmap_info
*);
6136 static inline bool equal (const shared_bitmap_info
*,
6137 const shared_bitmap_info
*);
6140 /* Hash function for a shared_bitmap_info_t */
6143 shared_bitmap_hasher::hash (const shared_bitmap_info
*bi
)
6145 return bi
->hashcode
;
6148 /* Equality function for two shared_bitmap_info_t's. */
6151 shared_bitmap_hasher::equal (const shared_bitmap_info
*sbi1
,
6152 const shared_bitmap_info
*sbi2
)
6154 return bitmap_equal_p (sbi1
->pt_vars
, sbi2
->pt_vars
);
6157 /* Shared_bitmap hashtable. */
6159 static hash_table
<shared_bitmap_hasher
> *shared_bitmap_table
;
6161 /* Lookup a bitmap in the shared bitmap hashtable, and return an already
6162 existing instance if there is one, NULL otherwise. */
6165 shared_bitmap_lookup (bitmap pt_vars
)
6167 shared_bitmap_info
**slot
;
6168 struct shared_bitmap_info sbi
;
6170 sbi
.pt_vars
= pt_vars
;
6171 sbi
.hashcode
= bitmap_hash (pt_vars
);
6173 slot
= shared_bitmap_table
->find_slot (&sbi
, NO_INSERT
);
6177 return (*slot
)->pt_vars
;
6181 /* Add a bitmap to the shared bitmap hashtable. */
6184 shared_bitmap_add (bitmap pt_vars
)
6186 shared_bitmap_info
**slot
;
6187 shared_bitmap_info_t sbi
= XNEW (struct shared_bitmap_info
);
6189 sbi
->pt_vars
= pt_vars
;
6190 sbi
->hashcode
= bitmap_hash (pt_vars
);
6192 slot
= shared_bitmap_table
->find_slot (sbi
, INSERT
);
6193 gcc_assert (!*slot
);
6198 /* Set bits in INTO corresponding to the variable uids in solution set FROM. */
6201 set_uids_in_ptset (bitmap into
, bitmap from
, struct pt_solution
*pt
,
6206 varinfo_t escaped_vi
= get_varinfo (find (escaped_id
));
6207 bool everything_escaped
6208 = escaped_vi
->solution
&& bitmap_bit_p (escaped_vi
->solution
, anything_id
);
6210 EXECUTE_IF_SET_IN_BITMAP (from
, 0, i
, bi
)
6212 varinfo_t vi
= get_varinfo (i
);
6214 /* The only artificial variables that are allowed in a may-alias
6215 set are heap variables. */
6216 if (vi
->is_artificial_var
&& !vi
->is_heap_var
)
6219 if (everything_escaped
6220 || (escaped_vi
->solution
6221 && bitmap_bit_p (escaped_vi
->solution
, i
)))
6223 pt
->vars_contains_escaped
= true;
6224 pt
->vars_contains_escaped_heap
= vi
->is_heap_var
;
6227 if (TREE_CODE (vi
->decl
) == VAR_DECL
6228 || TREE_CODE (vi
->decl
) == PARM_DECL
6229 || TREE_CODE (vi
->decl
) == RESULT_DECL
)
6231 /* If we are in IPA mode we will not recompute points-to
6232 sets after inlining so make sure they stay valid. */
6234 && !DECL_PT_UID_SET_P (vi
->decl
))
6235 SET_DECL_PT_UID (vi
->decl
, DECL_UID (vi
->decl
));
6237 /* Add the decl to the points-to set. Note that the points-to
6238 set contains global variables. */
6239 bitmap_set_bit (into
, DECL_PT_UID (vi
->decl
));
6240 if (vi
->is_global_var
6241 /* In IPA mode the escaped_heap trick doesn't work as
6242 ESCAPED is escaped from the unit but
6243 pt_solution_includes_global needs to answer true for
6244 all variables not automatic within a function.
6245 For the same reason is_global_var is not the
6246 correct flag to track - local variables from other
6247 functions also need to be considered global.
6248 Conveniently all HEAP vars are not put in function
6252 && ! auto_var_in_fn_p (vi
->decl
, fndecl
)))
6253 pt
->vars_contains_nonlocal
= true;
6259 /* Compute the points-to solution *PT for the variable VI. */
6261 static struct pt_solution
6262 find_what_var_points_to (tree fndecl
, varinfo_t orig_vi
)
6266 bitmap finished_solution
;
6269 struct pt_solution
*pt
;
6271 /* This variable may have been collapsed, let's get the real
6273 vi
= get_varinfo (find (orig_vi
->id
));
6275 /* See if we have already computed the solution and return it. */
6276 pt_solution
**slot
= &final_solutions
->get_or_insert (vi
);
6280 *slot
= pt
= XOBNEW (&final_solutions_obstack
, struct pt_solution
);
6281 memset (pt
, 0, sizeof (struct pt_solution
));
6283 /* Translate artificial variables into SSA_NAME_PTR_INFO
6285 EXECUTE_IF_SET_IN_BITMAP (vi
->solution
, 0, i
, bi
)
6287 varinfo_t vi
= get_varinfo (i
);
6289 if (vi
->is_artificial_var
)
6291 if (vi
->id
== nothing_id
)
6293 else if (vi
->id
== escaped_id
)
6296 pt
->ipa_escaped
= 1;
6299 /* Expand some special vars of ESCAPED in-place here. */
6300 varinfo_t evi
= get_varinfo (find (escaped_id
));
6301 if (bitmap_bit_p (evi
->solution
, nonlocal_id
))
6304 else if (vi
->id
== nonlocal_id
)
6306 else if (vi
->is_heap_var
)
6307 /* We represent heapvars in the points-to set properly. */
6309 else if (vi
->id
== string_id
)
6310 /* Nobody cares - STRING_CSTs are read-only entities. */
6312 else if (vi
->id
== anything_id
6313 || vi
->id
== integer_id
)
6318 /* Instead of doing extra work, simply do not create
6319 elaborate points-to information for pt_anything pointers. */
6323 /* Share the final set of variables when possible. */
6324 finished_solution
= BITMAP_GGC_ALLOC ();
6325 stats
.points_to_sets_created
++;
6327 set_uids_in_ptset (finished_solution
, vi
->solution
, pt
, fndecl
);
6328 result
= shared_bitmap_lookup (finished_solution
);
6331 shared_bitmap_add (finished_solution
);
6332 pt
->vars
= finished_solution
;
6337 bitmap_clear (finished_solution
);
6343 /* Given a pointer variable P, fill in its points-to set. */
6346 find_what_p_points_to (tree fndecl
, tree p
)
6348 struct ptr_info_def
*pi
;
6352 /* For parameters, get at the points-to set for the actual parm
6354 if (TREE_CODE (p
) == SSA_NAME
6355 && SSA_NAME_IS_DEFAULT_DEF (p
)
6356 && (TREE_CODE (SSA_NAME_VAR (p
)) == PARM_DECL
6357 || TREE_CODE (SSA_NAME_VAR (p
)) == RESULT_DECL
))
6358 lookup_p
= SSA_NAME_VAR (p
);
6360 vi
= lookup_vi_for_tree (lookup_p
);
6364 pi
= get_ptr_info (p
);
6365 pi
->pt
= find_what_var_points_to (fndecl
, vi
);
6369 /* Query statistics for points-to solutions. */
6372 unsigned HOST_WIDE_INT pt_solution_includes_may_alias
;
6373 unsigned HOST_WIDE_INT pt_solution_includes_no_alias
;
6374 unsigned HOST_WIDE_INT pt_solutions_intersect_may_alias
;
6375 unsigned HOST_WIDE_INT pt_solutions_intersect_no_alias
;
6379 dump_pta_stats (FILE *s
)
6381 fprintf (s
, "\nPTA query stats:\n");
6382 fprintf (s
, " pt_solution_includes: "
6383 HOST_WIDE_INT_PRINT_DEC
" disambiguations, "
6384 HOST_WIDE_INT_PRINT_DEC
" queries\n",
6385 pta_stats
.pt_solution_includes_no_alias
,
6386 pta_stats
.pt_solution_includes_no_alias
6387 + pta_stats
.pt_solution_includes_may_alias
);
6388 fprintf (s
, " pt_solutions_intersect: "
6389 HOST_WIDE_INT_PRINT_DEC
" disambiguations, "
6390 HOST_WIDE_INT_PRINT_DEC
" queries\n",
6391 pta_stats
.pt_solutions_intersect_no_alias
,
6392 pta_stats
.pt_solutions_intersect_no_alias
6393 + pta_stats
.pt_solutions_intersect_may_alias
);
6397 /* Reset the points-to solution *PT to a conservative default
6398 (point to anything). */
6401 pt_solution_reset (struct pt_solution
*pt
)
6403 memset (pt
, 0, sizeof (struct pt_solution
));
6404 pt
->anything
= true;
6407 /* Set the points-to solution *PT to point only to the variables
6408 in VARS. VARS_CONTAINS_GLOBAL specifies whether that contains
6409 global variables and VARS_CONTAINS_RESTRICT specifies whether
6410 it contains restrict tag variables. */
6413 pt_solution_set (struct pt_solution
*pt
, bitmap vars
,
6414 bool vars_contains_nonlocal
)
6416 memset (pt
, 0, sizeof (struct pt_solution
));
6418 pt
->vars_contains_nonlocal
= vars_contains_nonlocal
;
6419 pt
->vars_contains_escaped
6420 = (cfun
->gimple_df
->escaped
.anything
6421 || bitmap_intersect_p (cfun
->gimple_df
->escaped
.vars
, vars
));
6424 /* Set the points-to solution *PT to point only to the variable VAR. */
6427 pt_solution_set_var (struct pt_solution
*pt
, tree var
)
6429 memset (pt
, 0, sizeof (struct pt_solution
));
6430 pt
->vars
= BITMAP_GGC_ALLOC ();
6431 bitmap_set_bit (pt
->vars
, DECL_PT_UID (var
));
6432 pt
->vars_contains_nonlocal
= is_global_var (var
);
6433 pt
->vars_contains_escaped
6434 = (cfun
->gimple_df
->escaped
.anything
6435 || bitmap_bit_p (cfun
->gimple_df
->escaped
.vars
, DECL_PT_UID (var
)));
6438 /* Computes the union of the points-to solutions *DEST and *SRC and
6439 stores the result in *DEST. This changes the points-to bitmap
6440 of *DEST and thus may not be used if that might be shared.
6441 The points-to bitmap of *SRC and *DEST will not be shared after
6442 this function if they were not before. */
6445 pt_solution_ior_into (struct pt_solution
*dest
, struct pt_solution
*src
)
6447 dest
->anything
|= src
->anything
;
6450 pt_solution_reset (dest
);
6454 dest
->nonlocal
|= src
->nonlocal
;
6455 dest
->escaped
|= src
->escaped
;
6456 dest
->ipa_escaped
|= src
->ipa_escaped
;
6457 dest
->null
|= src
->null
;
6458 dest
->vars_contains_nonlocal
|= src
->vars_contains_nonlocal
;
6459 dest
->vars_contains_escaped
|= src
->vars_contains_escaped
;
6460 dest
->vars_contains_escaped_heap
|= src
->vars_contains_escaped_heap
;
6465 dest
->vars
= BITMAP_GGC_ALLOC ();
6466 bitmap_ior_into (dest
->vars
, src
->vars
);
6469 /* Return true if the points-to solution *PT is empty. */
6472 pt_solution_empty_p (struct pt_solution
*pt
)
6479 && !bitmap_empty_p (pt
->vars
))
6482 /* If the solution includes ESCAPED, check if that is empty. */
6484 && !pt_solution_empty_p (&cfun
->gimple_df
->escaped
))
6487 /* If the solution includes ESCAPED, check if that is empty. */
6489 && !pt_solution_empty_p (&ipa_escaped_pt
))
6495 /* Return true if the points-to solution *PT only point to a single var, and
6496 return the var uid in *UID. */
6499 pt_solution_singleton_p (struct pt_solution
*pt
, unsigned *uid
)
6501 if (pt
->anything
|| pt
->nonlocal
|| pt
->escaped
|| pt
->ipa_escaped
6502 || pt
->null
|| pt
->vars
== NULL
6503 || !bitmap_single_bit_set_p (pt
->vars
))
6506 *uid
= bitmap_first_set_bit (pt
->vars
);
6510 /* Return true if the points-to solution *PT includes global memory. */
6513 pt_solution_includes_global (struct pt_solution
*pt
)
6517 || pt
->vars_contains_nonlocal
6518 /* The following is a hack to make the malloc escape hack work.
6519 In reality we'd need different sets for escaped-through-return
6520 and escaped-to-callees and passes would need to be updated. */
6521 || pt
->vars_contains_escaped_heap
)
6524 /* 'escaped' is also a placeholder so we have to look into it. */
6526 return pt_solution_includes_global (&cfun
->gimple_df
->escaped
);
6528 if (pt
->ipa_escaped
)
6529 return pt_solution_includes_global (&ipa_escaped_pt
);
6534 /* Return true if the points-to solution *PT includes the variable
6535 declaration DECL. */
6538 pt_solution_includes_1 (struct pt_solution
*pt
, const_tree decl
)
6544 && is_global_var (decl
))
6548 && bitmap_bit_p (pt
->vars
, DECL_PT_UID (decl
)))
6551 /* If the solution includes ESCAPED, check it. */
6553 && pt_solution_includes_1 (&cfun
->gimple_df
->escaped
, decl
))
6556 /* If the solution includes ESCAPED, check it. */
6558 && pt_solution_includes_1 (&ipa_escaped_pt
, decl
))
6565 pt_solution_includes (struct pt_solution
*pt
, const_tree decl
)
6567 bool res
= pt_solution_includes_1 (pt
, decl
);
6569 ++pta_stats
.pt_solution_includes_may_alias
;
6571 ++pta_stats
.pt_solution_includes_no_alias
;
6575 /* Return true if both points-to solutions PT1 and PT2 have a non-empty
6579 pt_solutions_intersect_1 (struct pt_solution
*pt1
, struct pt_solution
*pt2
)
6581 if (pt1
->anything
|| pt2
->anything
)
6584 /* If either points to unknown global memory and the other points to
6585 any global memory they alias. */
6588 || pt2
->vars_contains_nonlocal
))
6590 && pt1
->vars_contains_nonlocal
))
6593 /* If either points to all escaped memory and the other points to
6594 any escaped memory they alias. */
6597 || pt2
->vars_contains_escaped
))
6599 && pt1
->vars_contains_escaped
))
6602 /* Check the escaped solution if required.
6603 ??? Do we need to check the local against the IPA escaped sets? */
6604 if ((pt1
->ipa_escaped
|| pt2
->ipa_escaped
)
6605 && !pt_solution_empty_p (&ipa_escaped_pt
))
6607 /* If both point to escaped memory and that solution
6608 is not empty they alias. */
6609 if (pt1
->ipa_escaped
&& pt2
->ipa_escaped
)
6612 /* If either points to escaped memory see if the escaped solution
6613 intersects with the other. */
6614 if ((pt1
->ipa_escaped
6615 && pt_solutions_intersect_1 (&ipa_escaped_pt
, pt2
))
6616 || (pt2
->ipa_escaped
6617 && pt_solutions_intersect_1 (&ipa_escaped_pt
, pt1
)))
6621 /* Now both pointers alias if their points-to solution intersects. */
6624 && bitmap_intersect_p (pt1
->vars
, pt2
->vars
));
6628 pt_solutions_intersect (struct pt_solution
*pt1
, struct pt_solution
*pt2
)
6630 bool res
= pt_solutions_intersect_1 (pt1
, pt2
);
6632 ++pta_stats
.pt_solutions_intersect_may_alias
;
6634 ++pta_stats
.pt_solutions_intersect_no_alias
;
6639 /* Dump points-to information to OUTFILE. */
6642 dump_sa_points_to_info (FILE *outfile
)
6646 fprintf (outfile
, "\nPoints-to sets\n\n");
6648 if (dump_flags
& TDF_STATS
)
6650 fprintf (outfile
, "Stats:\n");
6651 fprintf (outfile
, "Total vars: %d\n", stats
.total_vars
);
6652 fprintf (outfile
, "Non-pointer vars: %d\n",
6653 stats
.nonpointer_vars
);
6654 fprintf (outfile
, "Statically unified vars: %d\n",
6655 stats
.unified_vars_static
);
6656 fprintf (outfile
, "Dynamically unified vars: %d\n",
6657 stats
.unified_vars_dynamic
);
6658 fprintf (outfile
, "Iterations: %d\n", stats
.iterations
);
6659 fprintf (outfile
, "Number of edges: %d\n", stats
.num_edges
);
6660 fprintf (outfile
, "Number of implicit edges: %d\n",
6661 stats
.num_implicit_edges
);
6664 for (i
= 1; i
< varmap
.length (); i
++)
6666 varinfo_t vi
= get_varinfo (i
);
6667 if (!vi
->may_have_pointers
)
6669 dump_solution_for_var (outfile
, i
);
6674 /* Debug points-to information to stderr. */
6677 debug_sa_points_to_info (void)
6679 dump_sa_points_to_info (stderr
);
6683 /* Initialize the always-existing constraint variables for NULL
6684 ANYTHING, READONLY, and INTEGER */
6687 init_base_vars (void)
6689 struct constraint_expr lhs
, rhs
;
6690 varinfo_t var_anything
;
6691 varinfo_t var_nothing
;
6692 varinfo_t var_string
;
6693 varinfo_t var_escaped
;
6694 varinfo_t var_nonlocal
;
6695 varinfo_t var_storedanything
;
6696 varinfo_t var_integer
;
6698 /* Variable ID zero is reserved and should be NULL. */
6699 varmap
.safe_push (NULL
);
6701 /* Create the NULL variable, used to represent that a variable points
6703 var_nothing
= new_var_info (NULL_TREE
, "NULL", false);
6704 gcc_assert (var_nothing
->id
== nothing_id
);
6705 var_nothing
->is_artificial_var
= 1;
6706 var_nothing
->offset
= 0;
6707 var_nothing
->size
= ~0;
6708 var_nothing
->fullsize
= ~0;
6709 var_nothing
->is_special_var
= 1;
6710 var_nothing
->may_have_pointers
= 0;
6711 var_nothing
->is_global_var
= 0;
6713 /* Create the ANYTHING variable, used to represent that a variable
6714 points to some unknown piece of memory. */
6715 var_anything
= new_var_info (NULL_TREE
, "ANYTHING", false);
6716 gcc_assert (var_anything
->id
== anything_id
);
6717 var_anything
->is_artificial_var
= 1;
6718 var_anything
->size
= ~0;
6719 var_anything
->offset
= 0;
6720 var_anything
->fullsize
= ~0;
6721 var_anything
->is_special_var
= 1;
6723 /* Anything points to anything. This makes deref constraints just
6724 work in the presence of linked list and other p = *p type loops,
6725 by saying that *ANYTHING = ANYTHING. */
6727 lhs
.var
= anything_id
;
6729 rhs
.type
= ADDRESSOF
;
6730 rhs
.var
= anything_id
;
6733 /* This specifically does not use process_constraint because
6734 process_constraint ignores all anything = anything constraints, since all
6735 but this one are redundant. */
6736 constraints
.safe_push (new_constraint (lhs
, rhs
));
6738 /* Create the STRING variable, used to represent that a variable
6739 points to a string literal. String literals don't contain
6740 pointers so STRING doesn't point to anything. */
6741 var_string
= new_var_info (NULL_TREE
, "STRING", false);
6742 gcc_assert (var_string
->id
== string_id
);
6743 var_string
->is_artificial_var
= 1;
6744 var_string
->offset
= 0;
6745 var_string
->size
= ~0;
6746 var_string
->fullsize
= ~0;
6747 var_string
->is_special_var
= 1;
6748 var_string
->may_have_pointers
= 0;
6750 /* Create the ESCAPED variable, used to represent the set of escaped
6752 var_escaped
= new_var_info (NULL_TREE
, "ESCAPED", false);
6753 gcc_assert (var_escaped
->id
== escaped_id
);
6754 var_escaped
->is_artificial_var
= 1;
6755 var_escaped
->offset
= 0;
6756 var_escaped
->size
= ~0;
6757 var_escaped
->fullsize
= ~0;
6758 var_escaped
->is_special_var
= 0;
6760 /* Create the NONLOCAL variable, used to represent the set of nonlocal
6762 var_nonlocal
= new_var_info (NULL_TREE
, "NONLOCAL", false);
6763 gcc_assert (var_nonlocal
->id
== nonlocal_id
);
6764 var_nonlocal
->is_artificial_var
= 1;
6765 var_nonlocal
->offset
= 0;
6766 var_nonlocal
->size
= ~0;
6767 var_nonlocal
->fullsize
= ~0;
6768 var_nonlocal
->is_special_var
= 1;
6770 /* ESCAPED = *ESCAPED, because escaped is may-deref'd at calls, etc. */
6772 lhs
.var
= escaped_id
;
6775 rhs
.var
= escaped_id
;
6777 process_constraint (new_constraint (lhs
, rhs
));
6779 /* ESCAPED = ESCAPED + UNKNOWN_OFFSET, because if a sub-field escapes the
6780 whole variable escapes. */
6782 lhs
.var
= escaped_id
;
6785 rhs
.var
= escaped_id
;
6786 rhs
.offset
= UNKNOWN_OFFSET
;
6787 process_constraint (new_constraint (lhs
, rhs
));
6789 /* *ESCAPED = NONLOCAL. This is true because we have to assume
6790 everything pointed to by escaped points to what global memory can
6793 lhs
.var
= escaped_id
;
6796 rhs
.var
= nonlocal_id
;
6798 process_constraint (new_constraint (lhs
, rhs
));
6800 /* NONLOCAL = &NONLOCAL, NONLOCAL = &ESCAPED. This is true because
6801 global memory may point to global memory and escaped memory. */
6803 lhs
.var
= nonlocal_id
;
6805 rhs
.type
= ADDRESSOF
;
6806 rhs
.var
= nonlocal_id
;
6808 process_constraint (new_constraint (lhs
, rhs
));
6809 rhs
.type
= ADDRESSOF
;
6810 rhs
.var
= escaped_id
;
6812 process_constraint (new_constraint (lhs
, rhs
));
6814 /* Create the STOREDANYTHING variable, used to represent the set of
6815 variables stored to *ANYTHING. */
6816 var_storedanything
= new_var_info (NULL_TREE
, "STOREDANYTHING", false);
6817 gcc_assert (var_storedanything
->id
== storedanything_id
);
6818 var_storedanything
->is_artificial_var
= 1;
6819 var_storedanything
->offset
= 0;
6820 var_storedanything
->size
= ~0;
6821 var_storedanything
->fullsize
= ~0;
6822 var_storedanything
->is_special_var
= 0;
6824 /* Create the INTEGER variable, used to represent that a variable points
6825 to what an INTEGER "points to". */
6826 var_integer
= new_var_info (NULL_TREE
, "INTEGER", false);
6827 gcc_assert (var_integer
->id
== integer_id
);
6828 var_integer
->is_artificial_var
= 1;
6829 var_integer
->size
= ~0;
6830 var_integer
->fullsize
= ~0;
6831 var_integer
->offset
= 0;
6832 var_integer
->is_special_var
= 1;
6834 /* INTEGER = ANYTHING, because we don't know where a dereference of
6835 a random integer will point to. */
6837 lhs
.var
= integer_id
;
6839 rhs
.type
= ADDRESSOF
;
6840 rhs
.var
= anything_id
;
6842 process_constraint (new_constraint (lhs
, rhs
));
6845 /* Initialize things necessary to perform PTA */
6848 init_alias_vars (void)
6850 use_field_sensitive
= (MAX_FIELDS_FOR_FIELD_SENSITIVE
> 1);
6852 bitmap_obstack_initialize (&pta_obstack
);
6853 bitmap_obstack_initialize (&oldpta_obstack
);
6854 bitmap_obstack_initialize (&predbitmap_obstack
);
6856 constraints
.create (8);
6858 vi_for_tree
= new hash_map
<tree
, varinfo_t
>;
6859 call_stmt_vars
= new hash_map
<gimple
*, varinfo_t
>;
6861 memset (&stats
, 0, sizeof (stats
));
6862 shared_bitmap_table
= new hash_table
<shared_bitmap_hasher
> (511);
6865 gcc_obstack_init (&fake_var_decl_obstack
);
6867 final_solutions
= new hash_map
<varinfo_t
, pt_solution
*>;
6868 gcc_obstack_init (&final_solutions_obstack
);
6871 /* Remove the REF and ADDRESS edges from GRAPH, as well as all the
6872 predecessor edges. */
6875 remove_preds_and_fake_succs (constraint_graph_t graph
)
6879 /* Clear the implicit ref and address nodes from the successor
6881 for (i
= 1; i
< FIRST_REF_NODE
; i
++)
6883 if (graph
->succs
[i
])
6884 bitmap_clear_range (graph
->succs
[i
], FIRST_REF_NODE
,
6885 FIRST_REF_NODE
* 2);
6888 /* Free the successor list for the non-ref nodes. */
6889 for (i
= FIRST_REF_NODE
+ 1; i
< graph
->size
; i
++)
6891 if (graph
->succs
[i
])
6892 BITMAP_FREE (graph
->succs
[i
]);
6895 /* Now reallocate the size of the successor list as, and blow away
6896 the predecessor bitmaps. */
6897 graph
->size
= varmap
.length ();
6898 graph
->succs
= XRESIZEVEC (bitmap
, graph
->succs
, graph
->size
);
6900 free (graph
->implicit_preds
);
6901 graph
->implicit_preds
= NULL
;
6902 free (graph
->preds
);
6903 graph
->preds
= NULL
;
6904 bitmap_obstack_release (&predbitmap_obstack
);
6907 /* Solve the constraint set. */
6910 solve_constraints (void)
6912 struct scc_info
*si
;
6916 "\nCollapsing static cycles and doing variable "
6919 init_graph (varmap
.length () * 2);
6922 fprintf (dump_file
, "Building predecessor graph\n");
6923 build_pred_graph ();
6926 fprintf (dump_file
, "Detecting pointer and location "
6928 si
= perform_var_substitution (graph
);
6931 fprintf (dump_file
, "Rewriting constraints and unifying "
6933 rewrite_constraints (graph
, si
);
6935 build_succ_graph ();
6937 free_var_substitution_info (si
);
6939 /* Attach complex constraints to graph nodes. */
6940 move_complex_constraints (graph
);
6943 fprintf (dump_file
, "Uniting pointer but not location equivalent "
6945 unite_pointer_equivalences (graph
);
6948 fprintf (dump_file
, "Finding indirect cycles\n");
6949 find_indirect_cycles (graph
);
6951 /* Implicit nodes and predecessors are no longer necessary at this
6953 remove_preds_and_fake_succs (graph
);
6955 if (dump_file
&& (dump_flags
& TDF_GRAPH
))
6957 fprintf (dump_file
, "\n\n// The constraint graph before solve-graph "
6958 "in dot format:\n");
6959 dump_constraint_graph (dump_file
);
6960 fprintf (dump_file
, "\n\n");
6964 fprintf (dump_file
, "Solving graph\n");
6966 solve_graph (graph
);
6968 if (dump_file
&& (dump_flags
& TDF_GRAPH
))
6970 fprintf (dump_file
, "\n\n// The constraint graph after solve-graph "
6971 "in dot format:\n");
6972 dump_constraint_graph (dump_file
);
6973 fprintf (dump_file
, "\n\n");
6977 dump_sa_points_to_info (dump_file
);
6980 /* Create points-to sets for the current function. See the comments
6981 at the start of the file for an algorithmic overview. */
6984 compute_points_to_sets (void)
6990 timevar_push (TV_TREE_PTA
);
6994 intra_create_variable_infos (cfun
);
6996 /* Now walk all statements and build the constraint set. */
6997 FOR_EACH_BB_FN (bb
, cfun
)
6999 for (gphi_iterator gsi
= gsi_start_phis (bb
); !gsi_end_p (gsi
);
7002 gphi
*phi
= gsi
.phi ();
7004 if (! virtual_operand_p (gimple_phi_result (phi
)))
7005 find_func_aliases (cfun
, phi
);
7008 for (gimple_stmt_iterator gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
);
7011 gimple
*stmt
= gsi_stmt (gsi
);
7013 find_func_aliases (cfun
, stmt
);
7019 fprintf (dump_file
, "Points-to analysis\n\nConstraints:\n\n");
7020 dump_constraints (dump_file
, 0);
7023 /* From the constraints compute the points-to sets. */
7024 solve_constraints ();
7026 /* Compute the points-to set for ESCAPED used for call-clobber analysis. */
7027 cfun
->gimple_df
->escaped
= find_what_var_points_to (cfun
->decl
,
7028 get_varinfo (escaped_id
));
7030 /* Make sure the ESCAPED solution (which is used as placeholder in
7031 other solutions) does not reference itself. This simplifies
7032 points-to solution queries. */
7033 cfun
->gimple_df
->escaped
.escaped
= 0;
7035 /* Compute the points-to sets for pointer SSA_NAMEs. */
7036 for (i
= 0; i
< num_ssa_names
; ++i
)
7038 tree ptr
= ssa_name (i
);
7040 && POINTER_TYPE_P (TREE_TYPE (ptr
)))
7041 find_what_p_points_to (cfun
->decl
, ptr
);
7044 /* Compute the call-used/clobbered sets. */
7045 FOR_EACH_BB_FN (bb
, cfun
)
7047 gimple_stmt_iterator gsi
;
7049 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
7052 struct pt_solution
*pt
;
7054 stmt
= dyn_cast
<gcall
*> (gsi_stmt (gsi
));
7058 pt
= gimple_call_use_set (stmt
);
7059 if (gimple_call_flags (stmt
) & ECF_CONST
)
7060 memset (pt
, 0, sizeof (struct pt_solution
));
7061 else if ((vi
= lookup_call_use_vi (stmt
)) != NULL
)
7063 *pt
= find_what_var_points_to (cfun
->decl
, vi
);
7064 /* Escaped (and thus nonlocal) variables are always
7065 implicitly used by calls. */
7066 /* ??? ESCAPED can be empty even though NONLOCAL
7073 /* If there is nothing special about this call then
7074 we have made everything that is used also escape. */
7075 *pt
= cfun
->gimple_df
->escaped
;
7079 pt
= gimple_call_clobber_set (stmt
);
7080 if (gimple_call_flags (stmt
) & (ECF_CONST
|ECF_PURE
|ECF_NOVOPS
))
7081 memset (pt
, 0, sizeof (struct pt_solution
));
7082 else if ((vi
= lookup_call_clobber_vi (stmt
)) != NULL
)
7084 *pt
= find_what_var_points_to (cfun
->decl
, vi
);
7085 /* Escaped (and thus nonlocal) variables are always
7086 implicitly clobbered by calls. */
7087 /* ??? ESCAPED can be empty even though NONLOCAL
7094 /* If there is nothing special about this call then
7095 we have made everything that is used also escape. */
7096 *pt
= cfun
->gimple_df
->escaped
;
7102 timevar_pop (TV_TREE_PTA
);
7106 /* Delete created points-to sets. */
7109 delete_points_to_sets (void)
7113 delete shared_bitmap_table
;
7114 shared_bitmap_table
= NULL
;
7115 if (dump_file
&& (dump_flags
& TDF_STATS
))
7116 fprintf (dump_file
, "Points to sets created:%d\n",
7117 stats
.points_to_sets_created
);
7120 delete call_stmt_vars
;
7121 bitmap_obstack_release (&pta_obstack
);
7122 constraints
.release ();
7124 for (i
= 0; i
< graph
->size
; i
++)
7125 graph
->complex[i
].release ();
7126 free (graph
->complex);
7129 free (graph
->succs
);
7131 free (graph
->pe_rep
);
7132 free (graph
->indirect_cycles
);
7136 variable_info_pool
.release ();
7137 constraint_pool
.release ();
7139 obstack_free (&fake_var_decl_obstack
, NULL
);
7141 delete final_solutions
;
7142 obstack_free (&final_solutions_obstack
, NULL
);
7145 /* Mark "other" loads and stores as belonging to CLIQUE and with
7149 visit_loadstore (gimple
*, tree base
, tree ref
, void *clique_
)
7151 unsigned short clique
= (uintptr_t)clique_
;
7152 if (TREE_CODE (base
) == MEM_REF
7153 || TREE_CODE (base
) == TARGET_MEM_REF
)
7155 tree ptr
= TREE_OPERAND (base
, 0);
7156 if (TREE_CODE (ptr
) == SSA_NAME
7157 && ! SSA_NAME_IS_DEFAULT_DEF (ptr
))
7159 /* ??? We need to make sure 'ptr' doesn't include any of
7160 the restrict tags we added bases for in its points-to set. */
7164 /* For now let decls through. */
7166 /* Do not overwrite existing cliques (that includes clique, base
7167 pairs we just set). */
7168 if (MR_DEPENDENCE_CLIQUE (base
) == 0)
7170 MR_DEPENDENCE_CLIQUE (base
) = clique
;
7171 MR_DEPENDENCE_BASE (base
) = 0;
7175 /* For plain decl accesses see whether they are accesses to globals
7176 and rewrite them to MEM_REFs with { clique, 0 }. */
7177 if (TREE_CODE (base
) == VAR_DECL
7178 && is_global_var (base
)
7179 /* ??? We can't rewrite a plain decl with the walk_stmt_load_store
7184 while (handled_component_p (*basep
))
7185 basep
= &TREE_OPERAND (*basep
, 0);
7186 gcc_assert (TREE_CODE (*basep
) == VAR_DECL
);
7187 tree ptr
= build_fold_addr_expr (*basep
);
7188 tree zero
= build_int_cst (TREE_TYPE (ptr
), 0);
7189 *basep
= build2 (MEM_REF
, TREE_TYPE (*basep
), ptr
, zero
);
7190 MR_DEPENDENCE_CLIQUE (*basep
) = clique
;
7191 MR_DEPENDENCE_BASE (*basep
) = 0;
7197 /* If REF is a MEM_REF then assign a clique, base pair to it, updating
7198 CLIQUE, *RESTRICT_VAR and LAST_RUID. Return whether dependence info
7199 was assigned to REF. */
7202 maybe_set_dependence_info (tree ref
, tree ptr
,
7203 unsigned short &clique
, varinfo_t restrict_var
,
7204 unsigned short &last_ruid
)
7206 while (handled_component_p (ref
))
7207 ref
= TREE_OPERAND (ref
, 0);
7208 if ((TREE_CODE (ref
) == MEM_REF
7209 || TREE_CODE (ref
) == TARGET_MEM_REF
)
7210 && TREE_OPERAND (ref
, 0) == ptr
)
7212 /* Do not overwrite existing cliques. This avoids overwriting dependence
7213 info inlined from a function with restrict parameters inlined
7214 into a function with restrict parameters. This usually means we
7215 prefer to be precise in innermost loops. */
7216 if (MR_DEPENDENCE_CLIQUE (ref
) == 0)
7219 clique
= ++cfun
->last_clique
;
7220 if (restrict_var
->ruid
== 0)
7221 restrict_var
->ruid
= ++last_ruid
;
7222 MR_DEPENDENCE_CLIQUE (ref
) = clique
;
7223 MR_DEPENDENCE_BASE (ref
) = restrict_var
->ruid
;
7230 /* Compute the set of independend memory references based on restrict
7231 tags and their conservative propagation to the points-to sets. */
7234 compute_dependence_clique (void)
7236 unsigned short clique
= 0;
7237 unsigned short last_ruid
= 0;
7238 for (unsigned i
= 0; i
< num_ssa_names
; ++i
)
7240 tree ptr
= ssa_name (i
);
7241 if (!ptr
|| !POINTER_TYPE_P (TREE_TYPE (ptr
)))
7244 /* Avoid all this when ptr is not dereferenced? */
7246 if (SSA_NAME_IS_DEFAULT_DEF (ptr
)
7247 && (TREE_CODE (SSA_NAME_VAR (ptr
)) == PARM_DECL
7248 || TREE_CODE (SSA_NAME_VAR (ptr
)) == RESULT_DECL
))
7249 p
= SSA_NAME_VAR (ptr
);
7250 varinfo_t vi
= lookup_vi_for_tree (p
);
7253 vi
= get_varinfo (find (vi
->id
));
7256 varinfo_t restrict_var
= NULL
;
7257 EXECUTE_IF_SET_IN_BITMAP (vi
->solution
, 0, j
, bi
)
7259 varinfo_t oi
= get_varinfo (j
);
7260 if (oi
->is_restrict_var
)
7264 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
7266 fprintf (dump_file
, "found restrict pointed-to "
7268 print_generic_expr (dump_file
, ptr
, 0);
7269 fprintf (dump_file
, " but not exclusively\n");
7271 restrict_var
= NULL
;
7276 /* NULL is the only other valid points-to entry. */
7277 else if (oi
->id
!= nothing_id
)
7279 restrict_var
= NULL
;
7283 /* Ok, found that ptr must(!) point to a single(!) restrict
7285 /* ??? PTA isn't really a proper propagation engine to compute
7287 ??? We could handle merging of two restricts by unifying them. */
7290 /* Now look at possible dereferences of ptr. */
7291 imm_use_iterator ui
;
7293 FOR_EACH_IMM_USE_STMT (use_stmt
, ui
, ptr
)
7295 /* ??? Calls and asms. */
7296 if (!gimple_assign_single_p (use_stmt
))
7298 maybe_set_dependence_info (gimple_assign_lhs (use_stmt
), ptr
,
7299 clique
, restrict_var
, last_ruid
);
7300 maybe_set_dependence_info (gimple_assign_rhs1 (use_stmt
), ptr
,
7301 clique
, restrict_var
, last_ruid
);
7309 /* Assign the BASE id zero to all accesses not based on a restrict
7310 pointer. That way they get disabiguated against restrict
7311 accesses but not against each other. */
7312 /* ??? For restricts derived from globals (thus not incoming
7313 parameters) we can't restrict scoping properly thus the following
7314 is too aggressive there. For now we have excluded those globals from
7315 getting into the MR_DEPENDENCE machinery. */
7317 FOR_EACH_BB_FN (bb
, cfun
)
7318 for (gimple_stmt_iterator gsi
= gsi_start_bb (bb
);
7319 !gsi_end_p (gsi
); gsi_next (&gsi
))
7321 gimple
*stmt
= gsi_stmt (gsi
);
7322 walk_stmt_load_store_ops (stmt
, (void *)(uintptr_t)clique
,
7323 visit_loadstore
, visit_loadstore
);
7327 /* Compute points-to information for every SSA_NAME pointer in the
7328 current function and compute the transitive closure of escaped
7329 variables to re-initialize the call-clobber states of local variables. */
7332 compute_may_aliases (void)
7334 if (cfun
->gimple_df
->ipa_pta
)
7338 fprintf (dump_file
, "\nNot re-computing points-to information "
7339 "because IPA points-to information is available.\n\n");
7341 /* But still dump what we have remaining it. */
7342 dump_alias_info (dump_file
);
7348 /* For each pointer P_i, determine the sets of variables that P_i may
7349 point-to. Compute the reachability set of escaped and call-used
7351 compute_points_to_sets ();
7353 /* Debugging dumps. */
7355 dump_alias_info (dump_file
);
7357 /* Compute restrict-based memory disambiguations. */
7358 compute_dependence_clique ();
7360 /* Deallocate memory used by aliasing data structures and the internal
7361 points-to solution. */
7362 delete_points_to_sets ();
7364 gcc_assert (!need_ssa_update_p (cfun
));
7369 /* A dummy pass to cause points-to information to be computed via
7370 TODO_rebuild_alias. */
7374 const pass_data pass_data_build_alias
=
7376 GIMPLE_PASS
, /* type */
7378 OPTGROUP_NONE
, /* optinfo_flags */
7379 TV_NONE
, /* tv_id */
7380 ( PROP_cfg
| PROP_ssa
), /* properties_required */
7381 0, /* properties_provided */
7382 0, /* properties_destroyed */
7383 0, /* todo_flags_start */
7384 TODO_rebuild_alias
, /* todo_flags_finish */
7387 class pass_build_alias
: public gimple_opt_pass
7390 pass_build_alias (gcc::context
*ctxt
)
7391 : gimple_opt_pass (pass_data_build_alias
, ctxt
)
7394 /* opt_pass methods: */
7395 virtual bool gate (function
*) { return flag_tree_pta
; }
7397 }; // class pass_build_alias
7402 make_pass_build_alias (gcc::context
*ctxt
)
7404 return new pass_build_alias (ctxt
);
7407 /* A dummy pass to cause points-to information to be computed via
7408 TODO_rebuild_alias. */
7412 const pass_data pass_data_build_ealias
=
7414 GIMPLE_PASS
, /* type */
7415 "ealias", /* name */
7416 OPTGROUP_NONE
, /* optinfo_flags */
7417 TV_NONE
, /* tv_id */
7418 ( PROP_cfg
| PROP_ssa
), /* properties_required */
7419 0, /* properties_provided */
7420 0, /* properties_destroyed */
7421 0, /* todo_flags_start */
7422 TODO_rebuild_alias
, /* todo_flags_finish */
7425 class pass_build_ealias
: public gimple_opt_pass
7428 pass_build_ealias (gcc::context
*ctxt
)
7429 : gimple_opt_pass (pass_data_build_ealias
, ctxt
)
7432 /* opt_pass methods: */
7433 virtual bool gate (function
*) { return flag_tree_pta
; }
7435 }; // class pass_build_ealias
7440 make_pass_build_ealias (gcc::context
*ctxt
)
7442 return new pass_build_ealias (ctxt
);
7446 /* IPA PTA solutions for ESCAPED. */
7447 struct pt_solution ipa_escaped_pt
7448 = { true, false, false, false, false, false, false, false, NULL
};
7450 /* Associate node with varinfo DATA. Worker for
7451 cgraph_for_node_and_aliases. */
7453 associate_varinfo_to_alias (struct cgraph_node
*node
, void *data
)
7455 if ((node
->alias
|| node
->thunk
.thunk_p
)
7457 insert_vi_for_tree (node
->decl
, (varinfo_t
)data
);
7461 /* Execute the driver for IPA PTA. */
7463 ipa_pta_execute (void)
7465 struct cgraph_node
*node
;
7467 unsigned int from
= 0;
7473 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
7475 symtab_node::dump_table (dump_file
);
7476 fprintf (dump_file
, "\n");
7481 fprintf (dump_file
, "Generating generic constraints\n\n");
7482 dump_constraints (dump_file
, from
);
7483 fprintf (dump_file
, "\n");
7484 from
= constraints
.length ();
7487 /* Build the constraints. */
7488 FOR_EACH_DEFINED_FUNCTION (node
)
7491 /* Nodes without a body are not interesting. Especially do not
7492 visit clones at this point for now - we get duplicate decls
7493 there for inline clones at least. */
7494 if (!node
->has_gimple_body_p () || node
->global
.inlined_to
)
7498 gcc_assert (!node
->clone_of
);
7500 /* When parallelizing a code region, we split the region off into a
7501 separate function, to be run by several threads in parallel. So for a
7502 function foo, we split off a region into a function
7503 foo._0 (void *foodata), and replace the region with some variant of a
7504 function call run_on_threads (&foo._0, data). The '&foo._0' sets the
7505 address_taken bit for function foo._0, which would make it non-local.
7506 But for the purpose of ipa-pta, we can regard the run_on_threads call
7507 as a local call foo._0 (data), so we ignore address_taken on nodes
7508 with parallelized_function set. */
7509 bool node_address_taken
= (node
->address_taken
7510 && !node
->parallelized_function
);
7512 /* For externally visible or attribute used annotated functions use
7513 local constraints for their arguments.
7514 For local functions we see all callers and thus do not need initial
7515 constraints for parameters. */
7516 bool nonlocal_p
= (node
->used_from_other_partition
7517 || node
->externally_visible
7518 || node
->force_output
7519 || node_address_taken
);
7521 vi
= create_function_info_for (node
->decl
,
7522 alias_get_name (node
->decl
), false,
7525 && from
!= constraints
.length ())
7528 "Generating intial constraints for %s", node
->name ());
7529 if (DECL_ASSEMBLER_NAME_SET_P (node
->decl
))
7530 fprintf (dump_file
, " (%s)",
7532 (DECL_ASSEMBLER_NAME (node
->decl
)));
7533 fprintf (dump_file
, "\n\n");
7534 dump_constraints (dump_file
, from
);
7535 fprintf (dump_file
, "\n");
7537 from
= constraints
.length ();
7540 node
->call_for_symbol_thunks_and_aliases
7541 (associate_varinfo_to_alias
, vi
, true);
7544 /* Create constraints for global variables and their initializers. */
7545 FOR_EACH_VARIABLE (var
)
7547 if (var
->alias
&& var
->analyzed
)
7550 varinfo_t vi
= get_vi_for_tree (var
->decl
);
7552 /* For the purpose of IPA PTA unit-local globals are not
7554 bool nonlocal_p
= (var
->used_from_other_partition
7555 || var
->externally_visible
7556 || var
->force_output
);
7558 vi
->is_ipa_escape_point
= true;
7562 && from
!= constraints
.length ())
7565 "Generating constraints for global initializers\n\n");
7566 dump_constraints (dump_file
, from
);
7567 fprintf (dump_file
, "\n");
7568 from
= constraints
.length ();
7571 FOR_EACH_DEFINED_FUNCTION (node
)
7573 struct function
*func
;
7576 /* Nodes without a body are not interesting. */
7577 if (!node
->has_gimple_body_p () || node
->clone_of
)
7583 "Generating constraints for %s", node
->name ());
7584 if (DECL_ASSEMBLER_NAME_SET_P (node
->decl
))
7585 fprintf (dump_file
, " (%s)",
7587 (DECL_ASSEMBLER_NAME (node
->decl
)));
7588 fprintf (dump_file
, "\n");
7591 func
= DECL_STRUCT_FUNCTION (node
->decl
);
7592 gcc_assert (cfun
== NULL
);
7594 /* Build constriants for the function body. */
7595 FOR_EACH_BB_FN (bb
, func
)
7597 for (gphi_iterator gsi
= gsi_start_phis (bb
); !gsi_end_p (gsi
);
7600 gphi
*phi
= gsi
.phi ();
7602 if (! virtual_operand_p (gimple_phi_result (phi
)))
7603 find_func_aliases (func
, phi
);
7606 for (gimple_stmt_iterator gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
);
7609 gimple
*stmt
= gsi_stmt (gsi
);
7611 find_func_aliases (func
, stmt
);
7612 find_func_clobbers (func
, stmt
);
7618 fprintf (dump_file
, "\n");
7619 dump_constraints (dump_file
, from
);
7620 fprintf (dump_file
, "\n");
7621 from
= constraints
.length ();
7625 /* From the constraints compute the points-to sets. */
7626 solve_constraints ();
7628 /* Compute the global points-to sets for ESCAPED.
7629 ??? Note that the computed escape set is not correct
7630 for the whole unit as we fail to consider graph edges to
7631 externally visible functions. */
7632 ipa_escaped_pt
= find_what_var_points_to (NULL
, get_varinfo (escaped_id
));
7634 /* Make sure the ESCAPED solution (which is used as placeholder in
7635 other solutions) does not reference itself. This simplifies
7636 points-to solution queries. */
7637 ipa_escaped_pt
.ipa_escaped
= 0;
7639 /* Assign the points-to sets to the SSA names in the unit. */
7640 FOR_EACH_DEFINED_FUNCTION (node
)
7643 struct function
*fn
;
7647 /* Nodes without a body are not interesting. */
7648 if (!node
->has_gimple_body_p () || node
->clone_of
)
7651 fn
= DECL_STRUCT_FUNCTION (node
->decl
);
7653 /* Compute the points-to sets for pointer SSA_NAMEs. */
7654 FOR_EACH_VEC_ELT (*fn
->gimple_df
->ssa_names
, i
, ptr
)
7657 && POINTER_TYPE_P (TREE_TYPE (ptr
)))
7658 find_what_p_points_to (node
->decl
, ptr
);
7661 /* Compute the call-use and call-clobber sets for indirect calls
7662 and calls to external functions. */
7663 FOR_EACH_BB_FN (bb
, fn
)
7665 gimple_stmt_iterator gsi
;
7667 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
7670 struct pt_solution
*pt
;
7674 stmt
= dyn_cast
<gcall
*> (gsi_stmt (gsi
));
7678 /* Handle direct calls to functions with body. */
7679 if (gimple_call_builtin_p (stmt
, BUILT_IN_GOMP_PARALLEL
))
7680 decl
= TREE_OPERAND (gimple_call_arg (stmt
, 0), 0);
7681 else if (gimple_call_builtin_p (stmt
, BUILT_IN_GOACC_PARALLEL
))
7682 decl
= TREE_OPERAND (gimple_call_arg (stmt
, 1), 0);
7684 decl
= gimple_call_fndecl (stmt
);
7687 && (fi
= lookup_vi_for_tree (decl
))
7690 *gimple_call_clobber_set (stmt
)
7691 = find_what_var_points_to
7692 (node
->decl
, first_vi_for_offset (fi
, fi_clobbers
));
7693 *gimple_call_use_set (stmt
)
7694 = find_what_var_points_to
7695 (node
->decl
, first_vi_for_offset (fi
, fi_uses
));
7697 /* Handle direct calls to external functions. */
7700 pt
= gimple_call_use_set (stmt
);
7701 if (gimple_call_flags (stmt
) & ECF_CONST
)
7702 memset (pt
, 0, sizeof (struct pt_solution
));
7703 else if ((vi
= lookup_call_use_vi (stmt
)) != NULL
)
7705 *pt
= find_what_var_points_to (node
->decl
, vi
);
7706 /* Escaped (and thus nonlocal) variables are always
7707 implicitly used by calls. */
7708 /* ??? ESCAPED can be empty even though NONLOCAL
7711 pt
->ipa_escaped
= 1;
7715 /* If there is nothing special about this call then
7716 we have made everything that is used also escape. */
7717 *pt
= ipa_escaped_pt
;
7721 pt
= gimple_call_clobber_set (stmt
);
7722 if (gimple_call_flags (stmt
) & (ECF_CONST
|ECF_PURE
|ECF_NOVOPS
))
7723 memset (pt
, 0, sizeof (struct pt_solution
));
7724 else if ((vi
= lookup_call_clobber_vi (stmt
)) != NULL
)
7726 *pt
= find_what_var_points_to (node
->decl
, vi
);
7727 /* Escaped (and thus nonlocal) variables are always
7728 implicitly clobbered by calls. */
7729 /* ??? ESCAPED can be empty even though NONLOCAL
7732 pt
->ipa_escaped
= 1;
7736 /* If there is nothing special about this call then
7737 we have made everything that is used also escape. */
7738 *pt
= ipa_escaped_pt
;
7742 /* Handle indirect calls. */
7744 && (fi
= get_fi_for_callee (stmt
)))
7746 /* We need to accumulate all clobbers/uses of all possible
7748 fi
= get_varinfo (find (fi
->id
));
7749 /* If we cannot constrain the set of functions we'll end up
7750 calling we end up using/clobbering everything. */
7751 if (bitmap_bit_p (fi
->solution
, anything_id
)
7752 || bitmap_bit_p (fi
->solution
, nonlocal_id
)
7753 || bitmap_bit_p (fi
->solution
, escaped_id
))
7755 pt_solution_reset (gimple_call_clobber_set (stmt
));
7756 pt_solution_reset (gimple_call_use_set (stmt
));
7762 struct pt_solution
*uses
, *clobbers
;
7764 uses
= gimple_call_use_set (stmt
);
7765 clobbers
= gimple_call_clobber_set (stmt
);
7766 memset (uses
, 0, sizeof (struct pt_solution
));
7767 memset (clobbers
, 0, sizeof (struct pt_solution
));
7768 EXECUTE_IF_SET_IN_BITMAP (fi
->solution
, 0, i
, bi
)
7770 struct pt_solution sol
;
7772 vi
= get_varinfo (i
);
7773 if (!vi
->is_fn_info
)
7775 /* ??? We could be more precise here? */
7777 uses
->ipa_escaped
= 1;
7778 clobbers
->nonlocal
= 1;
7779 clobbers
->ipa_escaped
= 1;
7783 if (!uses
->anything
)
7785 sol
= find_what_var_points_to
7787 first_vi_for_offset (vi
, fi_uses
));
7788 pt_solution_ior_into (uses
, &sol
);
7790 if (!clobbers
->anything
)
7792 sol
= find_what_var_points_to
7794 first_vi_for_offset (vi
, fi_clobbers
));
7795 pt_solution_ior_into (clobbers
, &sol
);
7803 fn
->gimple_df
->ipa_pta
= true;
7805 /* We have to re-set the final-solution cache after each function
7806 because what is a "global" is dependent on function context. */
7807 final_solutions
->empty ();
7808 obstack_free (&final_solutions_obstack
, NULL
);
7809 gcc_obstack_init (&final_solutions_obstack
);
7812 delete_points_to_sets ();
7821 const pass_data pass_data_ipa_pta
=
7823 SIMPLE_IPA_PASS
, /* type */
7825 OPTGROUP_NONE
, /* optinfo_flags */
7826 TV_IPA_PTA
, /* tv_id */
7827 0, /* properties_required */
7828 0, /* properties_provided */
7829 0, /* properties_destroyed */
7830 0, /* todo_flags_start */
7831 0, /* todo_flags_finish */
7834 class pass_ipa_pta
: public simple_ipa_opt_pass
7837 pass_ipa_pta (gcc::context
*ctxt
)
7838 : simple_ipa_opt_pass (pass_data_ipa_pta
, ctxt
)
7841 /* opt_pass methods: */
7842 virtual bool gate (function
*)
7846 /* Don't bother doing anything if the program has errors. */
7850 opt_pass
* clone () { return new pass_ipa_pta (m_ctxt
); }
7852 virtual unsigned int execute (function
*) { return ipa_pta_execute (); }
7854 }; // class pass_ipa_pta
7858 simple_ipa_opt_pass
*
7859 make_pass_ipa_pta (gcc::context
*ctxt
)
7861 return new pass_ipa_pta (ctxt
);