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910fdc79 1/* Tree based points-to analysis
36dc1a88 2 Copyright (C) 2005, 2006, 2007, 2008, 2009, 2010, 2011
c75c517d 3 Free Software Foundation, Inc.
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4 Contributed by Daniel Berlin <dberlin@dberlin.org>
5
9dcd6f09 6 This file is part of GCC.
910fdc79 7
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8 GCC is free software; you can redistribute it and/or modify
9 under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3 of the License, or
11 (at your option) any later version.
910fdc79 12
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13 GCC is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
910fdc79 17
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18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
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21
22#include "config.h"
23#include "system.h"
24#include "coretypes.h"
25#include "tm.h"
26#include "ggc.h"
27#include "obstack.h"
28#include "bitmap.h"
910fdc79 29#include "flags.h"
910fdc79 30#include "basic-block.h"
910fdc79 31#include "tree.h"
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32#include "tree-flow.h"
33#include "tree-inline.h"
718f9c0f 34#include "diagnostic-core.h"
726a989a 35#include "gimple.h"
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36#include "hashtab.h"
37#include "function.h"
38#include "cgraph.h"
39#include "tree-pass.h"
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40#include "alloc-pool.h"
41#include "splay-tree.h"
a916f21d 42#include "params.h"
4ee00913 43#include "cgraph.h"
c58936b6 44#include "alias.h"
38635499 45#include "pointer-set.h"
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46
47/* The idea behind this analyzer is to generate set constraints from the
48 program, then solve the resulting constraints in order to generate the
c58936b6 49 points-to sets.
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50
51 Set constraints are a way of modeling program analysis problems that
52 involve sets. They consist of an inclusion constraint language,
53 describing the variables (each variable is a set) and operations that
54 are involved on the variables, and a set of rules that derive facts
55 from these operations. To solve a system of set constraints, you derive
56 all possible facts under the rules, which gives you the correct sets
57 as a consequence.
58
59 See "Efficient Field-sensitive pointer analysis for C" by "David
60 J. Pearce and Paul H. J. Kelly and Chris Hankin, at
61 http://citeseer.ist.psu.edu/pearce04efficient.html
62
63 Also see "Ultra-fast Aliasing Analysis using CLA: A Million Lines
64 of C Code in a Second" by ""Nevin Heintze and Olivier Tardieu" at
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65 http://citeseer.ist.psu.edu/heintze01ultrafast.html
66
67 There are three types of real constraint expressions, DEREF,
3e5937d7 68 ADDRESSOF, and SCALAR. Each constraint expression consists
c58936b6 69 of a constraint type, a variable, and an offset.
910fdc79 70
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71 SCALAR is a constraint expression type used to represent x, whether
72 it appears on the LHS or the RHS of a statement.
73 DEREF is a constraint expression type used to represent *x, whether
c58936b6 74 it appears on the LHS or the RHS of a statement.
910fdc79 75 ADDRESSOF is a constraint expression used to represent &x, whether
607fb860 76 it appears on the LHS or the RHS of a statement.
c58936b6 77
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78 Each pointer variable in the program is assigned an integer id, and
79 each field of a structure variable is assigned an integer id as well.
c58936b6 80
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81 Structure variables are linked to their list of fields through a "next
82 field" in each variable that points to the next field in offset
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83 order.
84 Each variable for a structure field has
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85
86 1. "size", that tells the size in bits of that field.
87 2. "fullsize, that tells the size in bits of the entire structure.
88 3. "offset", that tells the offset in bits from the beginning of the
89 structure to this field.
90
c58936b6 91 Thus,
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92 struct f
93 {
94 int a;
95 int b;
96 } foo;
97 int *bar;
98
99 looks like
100
101 foo.a -> id 1, size 32, offset 0, fullsize 64, next foo.b
102 foo.b -> id 2, size 32, offset 32, fullsize 64, next NULL
103 bar -> id 3, size 32, offset 0, fullsize 32, next NULL
104
c58936b6 105
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106 In order to solve the system of set constraints, the following is
107 done:
108
109 1. Each constraint variable x has a solution set associated with it,
110 Sol(x).
c58936b6 111
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112 2. Constraints are separated into direct, copy, and complex.
113 Direct constraints are ADDRESSOF constraints that require no extra
114 processing, such as P = &Q
115 Copy constraints are those of the form P = Q.
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116 Complex constraints are all the constraints involving dereferences
117 and offsets (including offsetted copies).
c58936b6 118
910fdc79 119 3. All direct constraints of the form P = &Q are processed, such
c58936b6 120 that Q is added to Sol(P)
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121
122 4. All complex constraints for a given constraint variable are stored in a
c58936b6 123 linked list attached to that variable's node.
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124
125 5. A directed graph is built out of the copy constraints. Each
c58936b6 126 constraint variable is a node in the graph, and an edge from
910fdc79 127 Q to P is added for each copy constraint of the form P = Q
c58936b6 128
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129 6. The graph is then walked, and solution sets are
130 propagated along the copy edges, such that an edge from Q to P
131 causes Sol(P) <- Sol(P) union Sol(Q).
c58936b6 132
910fdc79 133 7. As we visit each node, all complex constraints associated with
607fb860 134 that node are processed by adding appropriate copy edges to the graph, or the
c58936b6 135 appropriate variables to the solution set.
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136
137 8. The process of walking the graph is iterated until no solution
138 sets change.
139
140 Prior to walking the graph in steps 6 and 7, We perform static
c58936b6 141 cycle elimination on the constraint graph, as well
910fdc79 142 as off-line variable substitution.
c58936b6 143
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144 TODO: Adding offsets to pointer-to-structures can be handled (IE not punted
145 on and turned into anything), but isn't. You can just see what offset
146 inside the pointed-to struct it's going to access.
c58936b6 147
910fdc79 148 TODO: Constant bounded arrays can be handled as if they were structs of the
c58936b6 149 same number of elements.
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150
151 TODO: Modeling heap and incoming pointers becomes much better if we
152 add fields to them as we discover them, which we could do.
153
154 TODO: We could handle unions, but to be honest, it's probably not
155 worth the pain or slowdown. */
156
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157/* IPA-PTA optimizations possible.
158
159 When the indirect function called is ANYTHING we can add disambiguation
160 based on the function signatures (or simply the parameter count which
161 is the varinfo size). We also do not need to consider functions that
162 do not have their address taken.
163
164 The is_global_var bit which marks escape points is overly conservative
165 in IPA mode. Split it to is_escape_point and is_global_var - only
166 externally visible globals are escape points in IPA mode. This is
167 also needed to fix the pt_solution_includes_global predicate
168 (and thus ptr_deref_may_alias_global_p).
169
170 The way we introduce DECL_PT_UID to avoid fixing up all points-to
171 sets in the translation unit when we copy a DECL during inlining
172 pessimizes precision. The advantage is that the DECL_PT_UID keeps
173 compile-time and memory usage overhead low - the points-to sets
174 do not grow or get unshared as they would during a fixup phase.
175 An alternative solution is to delay IPA PTA until after all
176 inlining transformations have been applied.
177
178 The way we propagate clobber/use information isn't optimized.
179 It should use a new complex constraint that properly filters
180 out local variables of the callee (though that would make
181 the sets invalid after inlining). OTOH we might as well
182 admit defeat to WHOPR and simply do all the clobber/use analysis
183 and propagation after PTA finished but before we threw away
184 points-to information for memory variables. WHOPR and PTA
185 do not play along well anyway - the whole constraint solving
186 would need to be done in WPA phase and it will be very interesting
187 to apply the results to local SSA names during LTRANS phase.
188
189 We probably should compute a per-function unit-ESCAPE solution
190 propagating it simply like the clobber / uses solutions. The
191 solution can go alongside the non-IPA espaced solution and be
192 used to query which vars escape the unit through a function.
193
194 We never put function decls in points-to sets so we do not
195 keep the set of called functions for indirect calls.
196
197 And probably more. */
21392f19 198
910fdc79 199static bool use_field_sensitive = true;
4ee00913 200static int in_ipa_mode = 0;
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201
202/* Used for predecessor bitmaps. */
4ee00913 203static bitmap_obstack predbitmap_obstack;
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204
205/* Used for points-to sets. */
206static bitmap_obstack pta_obstack;
207
208/* Used for oldsolution members of variables. */
209static bitmap_obstack oldpta_obstack;
210
211/* Used for per-solver-iteration bitmaps. */
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212static bitmap_obstack iteration_obstack;
213
910fdc79 214static unsigned int create_variable_info_for (tree, const char *);
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215typedef struct constraint_graph *constraint_graph_t;
216static void unify_nodes (constraint_graph_t, unsigned int, unsigned int, bool);
910fdc79 217
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218struct constraint;
219typedef struct constraint *constraint_t;
220
910fdc79 221DEF_VEC_P(constraint_t);
b5efa470 222DEF_VEC_ALLOC_P(constraint_t,heap);
910fdc79 223
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224#define EXECUTE_IF_IN_NONNULL_BITMAP(a, b, c, d) \
225 if (a) \
226 EXECUTE_IF_SET_IN_BITMAP (a, b, c, d)
227
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228static struct constraint_stats
229{
230 unsigned int total_vars;
3e5937d7 231 unsigned int nonpointer_vars;
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232 unsigned int unified_vars_static;
233 unsigned int unified_vars_dynamic;
234 unsigned int iterations;
4ee00913 235 unsigned int num_edges;
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236 unsigned int num_implicit_edges;
237 unsigned int points_to_sets_created;
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238} stats;
239
240struct variable_info
241{
242 /* ID of this variable */
243 unsigned int id;
244
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245 /* True if this is a variable created by the constraint analysis, such as
246 heap variables and constraints we had to break up. */
74d27244 247 unsigned int is_artificial_var : 1;
c58936b6 248
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249 /* True if this is a special variable whose solution set should not be
250 changed. */
74d27244 251 unsigned int is_special_var : 1;
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252
253 /* True for variables whose size is not known or variable. */
74d27244 254 unsigned int is_unknown_size_var : 1;
910fdc79 255
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256 /* True for (sub-)fields that represent a whole variable. */
257 unsigned int is_full_var : 1;
258
e8ca4159 259 /* True if this is a heap variable. */
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260 unsigned int is_heap_var : 1;
261
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262 /* True if this field may contain pointers. */
263 unsigned int may_have_pointers : 1;
264
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265 /* True if this field has only restrict qualified pointers. */
266 unsigned int only_restrict_pointers : 1;
267
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268 /* True if this represents a global variable. */
269 unsigned int is_global_var : 1;
270
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271 /* True if this represents a IPA function info. */
272 unsigned int is_fn_info : 1;
273
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274 /* A link to the variable for the next field in this structure. */
275 struct variable_info *next;
276
277 /* Offset of this variable, in bits, from the base variable */
278 unsigned HOST_WIDE_INT offset;
279
280 /* Size of the variable, in bits. */
281 unsigned HOST_WIDE_INT size;
282
283 /* Full size of the base variable, in bits. */
284 unsigned HOST_WIDE_INT fullsize;
285
286 /* Name of this variable */
287 const char *name;
288
289 /* Tree that this variable is associated with. */
290 tree decl;
291
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292 /* Points-to set for this variable. */
293 bitmap solution;
294
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295 /* Old points-to set for this variable. */
296 bitmap oldsolution;
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297};
298typedef struct variable_info *varinfo_t;
299
300static varinfo_t first_vi_for_offset (varinfo_t, unsigned HOST_WIDE_INT);
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301static varinfo_t first_or_preceding_vi_for_offset (varinfo_t,
302 unsigned HOST_WIDE_INT);
0e1f4c6b 303static varinfo_t lookup_vi_for_tree (tree);
b4cf8c9d 304static inline bool type_can_have_subvars (const_tree);
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305
306/* Pool of variable info structures. */
307static alloc_pool variable_info_pool;
308
309DEF_VEC_P(varinfo_t);
310
b5efa470 311DEF_VEC_ALLOC_P(varinfo_t, heap);
910fdc79 312
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313/* Table of variable info structures for constraint variables.
314 Indexed directly by variable info id. */
b5efa470 315static VEC(varinfo_t,heap) *varmap;
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316
317/* Return the varmap element N */
318
319static inline varinfo_t
03190594 320get_varinfo (unsigned int n)
13c2c08b 321{
62e5bf5d 322 return VEC_index (varinfo_t, varmap, n);
13c2c08b 323}
910fdc79 324
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325/* Static IDs for the special variables. */
326enum { nothing_id = 0, anything_id = 1, readonly_id = 2,
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327 escaped_id = 3, nonlocal_id = 4,
328 storedanything_id = 5, integer_id = 6 };
b7091901 329
910fdc79 330/* Return a new variable info structure consisting for a variable
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331 named NAME, and using constraint graph node NODE. Append it
332 to the vector of variable info structures. */
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333
334static varinfo_t
0bbf2ffa 335new_var_info (tree t, const char *name)
910fdc79 336{
0bbf2ffa 337 unsigned index = VEC_length (varinfo_t, varmap);
c22940cd 338 varinfo_t ret = (varinfo_t) pool_alloc (variable_info_pool);
910fdc79 339
0bbf2ffa 340 ret->id = index;
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341 ret->name = name;
342 ret->decl = t;
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343 /* Vars without decl are artificial and do not have sub-variables. */
344 ret->is_artificial_var = (t == NULL_TREE);
13c2c08b 345 ret->is_special_var = false;
910fdc79 346 ret->is_unknown_size_var = false;
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347 ret->is_full_var = (t == NULL_TREE);
348 ret->is_heap_var = false;
9e39dba6 349 ret->may_have_pointers = true;
18abb35e 350 ret->only_restrict_pointers = false;
74d27244 351 ret->is_global_var = (t == NULL_TREE);
25a6a873 352 ret->is_fn_info = false;
0bbf2ffa 353 if (t && DECL_P (t))
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354 ret->is_global_var = (is_global_var (t)
355 /* We have to treat even local register variables
356 as escape points. */
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357 || (TREE_CODE (t) == VAR_DECL
358 && DECL_HARD_REGISTER (t)));
3e5937d7 359 ret->solution = BITMAP_ALLOC (&pta_obstack);
74d8fa44 360 ret->oldsolution = NULL;
910fdc79 361 ret->next = NULL;
0bbf2ffa 362
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363 stats.total_vars++;
364
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365 VEC_safe_push (varinfo_t, heap, varmap, ret);
366
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367 return ret;
368}
369
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370
371/* A map mapping call statements to per-stmt variables for uses
372 and clobbers specific to the call. */
373struct pointer_map_t *call_stmt_vars;
374
375/* Lookup or create the variable for the call statement CALL. */
376
377static varinfo_t
378get_call_vi (gimple call)
379{
380 void **slot_p;
381 varinfo_t vi, vi2;
382
383 slot_p = pointer_map_insert (call_stmt_vars, call);
384 if (*slot_p)
385 return (varinfo_t) *slot_p;
386
387 vi = new_var_info (NULL_TREE, "CALLUSED");
388 vi->offset = 0;
389 vi->size = 1;
390 vi->fullsize = 2;
391 vi->is_full_var = true;
392
393 vi->next = vi2 = new_var_info (NULL_TREE, "CALLCLOBBERED");
394 vi2->offset = 1;
395 vi2->size = 1;
396 vi2->fullsize = 2;
397 vi2->is_full_var = true;
398
399 *slot_p = (void *) vi;
400 return vi;
401}
402
403/* Lookup the variable for the call statement CALL representing
404 the uses. Returns NULL if there is nothing special about this call. */
405
406static varinfo_t
407lookup_call_use_vi (gimple call)
408{
409 void **slot_p;
410
411 slot_p = pointer_map_contains (call_stmt_vars, call);
412 if (slot_p)
413 return (varinfo_t) *slot_p;
414
415 return NULL;
416}
417
418/* Lookup the variable for the call statement CALL representing
419 the clobbers. Returns NULL if there is nothing special about this call. */
420
421static varinfo_t
422lookup_call_clobber_vi (gimple call)
423{
424 varinfo_t uses = lookup_call_use_vi (call);
425 if (!uses)
426 return NULL;
427
428 return uses->next;
429}
430
431/* Lookup or create the variable for the call statement CALL representing
432 the uses. */
433
434static varinfo_t
435get_call_use_vi (gimple call)
436{
437 return get_call_vi (call);
438}
439
440/* Lookup or create the variable for the call statement CALL representing
441 the clobbers. */
442
443static varinfo_t ATTRIBUTE_UNUSED
444get_call_clobber_vi (gimple call)
445{
446 return get_call_vi (call)->next;
447}
448
449
3e5937d7 450typedef enum {SCALAR, DEREF, ADDRESSOF} constraint_expr_type;
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451
452/* An expression that appears in a constraint. */
453
c58936b6 454struct constraint_expr
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455{
456 /* Constraint type. */
457 constraint_expr_type type;
458
459 /* Variable we are referring to in the constraint. */
460 unsigned int var;
461
462 /* Offset, in bits, of this constraint from the beginning of
463 variables it ends up referring to.
464
465 IOW, in a deref constraint, we would deref, get the result set,
466 then add OFFSET to each member. */
5006671f 467 HOST_WIDE_INT offset;
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468};
469
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470/* Use 0x8000... as special unknown offset. */
471#define UNKNOWN_OFFSET ((HOST_WIDE_INT)-1 << (HOST_BITS_PER_WIDE_INT-1))
472
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473typedef struct constraint_expr ce_s;
474DEF_VEC_O(ce_s);
475DEF_VEC_ALLOC_O(ce_s, heap);
ed6c4831 476static void get_constraint_for_1 (tree, VEC(ce_s, heap) **, bool, bool);
1d85354c 477static void get_constraint_for (tree, VEC(ce_s, heap) **);
ed6c4831 478static void get_constraint_for_rhs (tree, VEC(ce_s, heap) **);
4ee00913 479static void do_deref (VEC (ce_s, heap) **);
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480
481/* Our set constraints are made up of two constraint expressions, one
c58936b6 482 LHS, and one RHS.
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483
484 As described in the introduction, our set constraints each represent an
485 operation between set valued variables.
486*/
487struct constraint
488{
489 struct constraint_expr lhs;
490 struct constraint_expr rhs;
491};
492
493/* List of constraints that we use to build the constraint graph from. */
494
b5efa470 495static VEC(constraint_t,heap) *constraints;
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496static alloc_pool constraint_pool;
497
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498/* The constraint graph is represented as an array of bitmaps
499 containing successor nodes. */
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500
501struct constraint_graph
502{
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503 /* Size of this graph, which may be different than the number of
504 nodes in the variable map. */
505 unsigned int size;
506
507 /* Explicit successors of each node. */
57250223 508 bitmap *succs;
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509
510 /* Implicit predecessors of each node (Used for variable
511 substitution). */
512 bitmap *implicit_preds;
513
514 /* Explicit predecessors of each node (Used for variable substitution). */
57250223 515 bitmap *preds;
910fdc79 516
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517 /* Indirect cycle representatives, or -1 if the node has no indirect
518 cycles. */
519 int *indirect_cycles;
520
521 /* Representative node for a node. rep[a] == a unless the node has
522 been unified. */
523 unsigned int *rep;
524
7b765bed 525 /* Equivalence class representative for a label. This is used for
3e5937d7
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526 variable substitution. */
527 int *eq_rep;
528
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529 /* Pointer equivalence label for a node. All nodes with the same
530 pointer equivalence label can be unified together at some point
531 (either during constraint optimization or after the constraint
532 graph is built). */
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533 unsigned int *pe;
534
535 /* Pointer equivalence representative for a label. This is used to
536 handle nodes that are pointer equivalent but not location
537 equivalent. We can unite these once the addressof constraints
538 are transformed into initial points-to sets. */
539 int *pe_rep;
540
541 /* Pointer equivalence label for each node, used during variable
542 substitution. */
543 unsigned int *pointer_label;
544
545 /* Location equivalence label for each node, used during location
546 equivalence finding. */
547 unsigned int *loc_label;
548
549 /* Pointed-by set for each node, used during location equivalence
550 finding. This is pointed-by rather than pointed-to, because it
551 is constructed using the predecessor graph. */
552 bitmap *pointed_by;
553
554 /* Points to sets for pointer equivalence. This is *not* the actual
555 points-to sets for nodes. */
556 bitmap *points_to;
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557
558 /* Bitmap of nodes where the bit is set if the node is a direct
559 node. Used for variable substitution. */
560 sbitmap direct_nodes;
561
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562 /* Bitmap of nodes where the bit is set if the node is address
563 taken. Used for variable substitution. */
564 bitmap address_taken;
565
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566 /* Vector of complex constraints for each graph node. Complex
567 constraints are those involving dereferences or offsets that are
568 not 0. */
569 VEC(constraint_t,heap) **complex;
570};
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571
572static constraint_graph_t graph;
573
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574/* During variable substitution and the offline version of indirect
575 cycle finding, we create nodes to represent dereferences and
576 address taken constraints. These represent where these start and
577 end. */
578#define FIRST_REF_NODE (VEC_length (varinfo_t, varmap))
579#define LAST_REF_NODE (FIRST_REF_NODE + (FIRST_REF_NODE - 1))
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580
581/* Return the representative node for NODE, if NODE has been unioned
582 with another NODE.
583 This function performs path compression along the way to finding
584 the representative. */
585
586static unsigned int
587find (unsigned int node)
588{
589 gcc_assert (node < graph->size);
590 if (graph->rep[node] != node)
591 return graph->rep[node] = find (graph->rep[node]);
592 return node;
593}
594
595/* Union the TO and FROM nodes to the TO nodes.
596 Note that at some point in the future, we may want to do
597 union-by-rank, in which case we are going to have to return the
598 node we unified to. */
599
600static bool
601unite (unsigned int to, unsigned int from)
602{
603 gcc_assert (to < graph->size && from < graph->size);
604 if (to != from && graph->rep[from] != to)
605 {
606 graph->rep[from] = to;
607 return true;
608 }
609 return false;
610}
611
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612/* Create a new constraint consisting of LHS and RHS expressions. */
613
c58936b6 614static constraint_t
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615new_constraint (const struct constraint_expr lhs,
616 const struct constraint_expr rhs)
617{
c22940cd 618 constraint_t ret = (constraint_t) pool_alloc (constraint_pool);
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619 ret->lhs = lhs;
620 ret->rhs = rhs;
621 return ret;
622}
623
624/* Print out constraint C to FILE. */
625
5006671f 626static void
910fdc79
DB
627dump_constraint (FILE *file, constraint_t c)
628{
629 if (c->lhs.type == ADDRESSOF)
630 fprintf (file, "&");
631 else if (c->lhs.type == DEREF)
c58936b6 632 fprintf (file, "*");
5006671f
RG
633 fprintf (file, "%s", get_varinfo (c->lhs.var)->name);
634 if (c->lhs.offset == UNKNOWN_OFFSET)
635 fprintf (file, " + UNKNOWN");
636 else if (c->lhs.offset != 0)
910fdc79
DB
637 fprintf (file, " + " HOST_WIDE_INT_PRINT_DEC, c->lhs.offset);
638 fprintf (file, " = ");
639 if (c->rhs.type == ADDRESSOF)
640 fprintf (file, "&");
641 else if (c->rhs.type == DEREF)
642 fprintf (file, "*");
5006671f
RG
643 fprintf (file, "%s", get_varinfo (c->rhs.var)->name);
644 if (c->rhs.offset == UNKNOWN_OFFSET)
645 fprintf (file, " + UNKNOWN");
646 else if (c->rhs.offset != 0)
910fdc79 647 fprintf (file, " + " HOST_WIDE_INT_PRINT_DEC, c->rhs.offset);
910fdc79
DB
648}
649
5006671f
RG
650
651void debug_constraint (constraint_t);
652void debug_constraints (void);
653void debug_constraint_graph (void);
654void debug_solution_for_var (unsigned int);
655void debug_sa_points_to_info (void);
656
910fdc79
DB
657/* Print out constraint C to stderr. */
658
24e47c76 659DEBUG_FUNCTION void
910fdc79
DB
660debug_constraint (constraint_t c)
661{
662 dump_constraint (stderr, c);
8576f20a 663 fprintf (stderr, "\n");
910fdc79
DB
664}
665
666/* Print out all constraints to FILE */
667
5006671f 668static void
25a6a873 669dump_constraints (FILE *file, int from)
910fdc79
DB
670{
671 int i;
672 constraint_t c;
25a6a873 673 for (i = from; VEC_iterate (constraint_t, constraints, i, c); i++)
8576f20a
RG
674 if (c)
675 {
676 dump_constraint (file, c);
677 fprintf (file, "\n");
678 }
910fdc79
DB
679}
680
681/* Print out all constraints to stderr. */
682
24e47c76 683DEBUG_FUNCTION void
910fdc79
DB
684debug_constraints (void)
685{
25a6a873 686 dump_constraints (stderr, 0);
910fdc79
DB
687}
688
fc93bcb6
FP
689/* Print the constraint graph in dot format. */
690
5006671f 691static void
fc93bcb6
FP
692dump_constraint_graph (FILE *file)
693{
8576f20a 694 unsigned int i;
fc93bcb6
FP
695
696 /* Only print the graph if it has already been initialized: */
697 if (!graph)
698 return;
699
fc93bcb6 700 /* Prints the header of the dot file: */
fc93bcb6
FP
701 fprintf (file, "strict digraph {\n");
702 fprintf (file, " node [\n shape = box\n ]\n");
703 fprintf (file, " edge [\n fontsize = \"12\"\n ]\n");
8576f20a
RG
704 fprintf (file, "\n // List of nodes and complex constraints in "
705 "the constraint graph:\n");
706
707 /* The next lines print the nodes in the graph together with the
708 complex constraints attached to them. */
709 for (i = 0; i < graph->size; i++)
fc93bcb6 710 {
8576f20a
RG
711 if (find (i) != i)
712 continue;
713 if (i < FIRST_REF_NODE)
714 fprintf (file, "\"%s\"", get_varinfo (i)->name);
715 else
716 fprintf (file, "\"*%s\"", get_varinfo (i - FIRST_REF_NODE)->name);
717 if (graph->complex[i])
718 {
719 unsigned j;
720 constraint_t c;
721 fprintf (file, " [label=\"\\N\\n");
722 for (j = 0; VEC_iterate (constraint_t, graph->complex[i], j, c); ++j)
723 {
724 dump_constraint (file, c);
725 fprintf (file, "\\l");
726 }
727 fprintf (file, "\"]");
728 }
729 fprintf (file, ";\n");
fc93bcb6
FP
730 }
731
8576f20a
RG
732 /* Go over the edges. */
733 fprintf (file, "\n // Edges in the constraint graph:\n");
734 for (i = 0; i < graph->size; i++)
735 {
736 unsigned j;
737 bitmap_iterator bi;
738 if (find (i) != i)
739 continue;
740 EXECUTE_IF_IN_NONNULL_BITMAP (graph->succs[i], 0, j, bi)
741 {
742 unsigned to = find (j);
743 if (i == to)
744 continue;
745 if (i < FIRST_REF_NODE)
746 fprintf (file, "\"%s\"", get_varinfo (i)->name);
747 else
748 fprintf (file, "\"*%s\"", get_varinfo (i - FIRST_REF_NODE)->name);
749 fprintf (file, " -> ");
750 if (to < FIRST_REF_NODE)
751 fprintf (file, "\"%s\"", get_varinfo (to)->name);
752 else
753 fprintf (file, "\"*%s\"", get_varinfo (to - FIRST_REF_NODE)->name);
754 fprintf (file, ";\n");
755 }
756 }
fc93bcb6 757
8576f20a
RG
758 /* Prints the tail of the dot file. */
759 fprintf (file, "}\n");
fc93bcb6
FP
760}
761
762/* Print out the constraint graph to stderr. */
763
24e47c76 764DEBUG_FUNCTION void
fc93bcb6
FP
765debug_constraint_graph (void)
766{
767 dump_constraint_graph (stderr);
768}
769
c58936b6 770/* SOLVER FUNCTIONS
910fdc79
DB
771
772 The solver is a simple worklist solver, that works on the following
773 algorithm:
c58936b6 774
3e5937d7
DB
775 sbitmap changed_nodes = all zeroes;
776 changed_count = 0;
777 For each node that is not already collapsed:
778 changed_count++;
779 set bit in changed nodes
910fdc79 780
910fdc79
DB
781 while (changed_count > 0)
782 {
783 compute topological ordering for constraint graph
c58936b6 784
910fdc79
DB
785 find and collapse cycles in the constraint graph (updating
786 changed if necessary)
c58936b6 787
910fdc79
DB
788 for each node (n) in the graph in topological order:
789 changed_count--;
790
791 Process each complex constraint associated with the node,
792 updating changed if necessary.
793
794 For each outgoing edge from n, propagate the solution from n to
795 the destination of the edge, updating changed as necessary.
796
797 } */
798
799/* Return true if two constraint expressions A and B are equal. */
800
801static bool
802constraint_expr_equal (struct constraint_expr a, struct constraint_expr b)
803{
4ee00913 804 return a.type == b.type && a.var == b.var && a.offset == b.offset;
910fdc79
DB
805}
806
807/* Return true if constraint expression A is less than constraint expression
808 B. This is just arbitrary, but consistent, in order to give them an
809 ordering. */
810
811static bool
812constraint_expr_less (struct constraint_expr a, struct constraint_expr b)
813{
814 if (a.type == b.type)
815 {
816 if (a.var == b.var)
817 return a.offset < b.offset;
818 else
819 return a.var < b.var;
820 }
821 else
822 return a.type < b.type;
823}
824
825/* Return true if constraint A is less than constraint B. This is just
826 arbitrary, but consistent, in order to give them an ordering. */
827
828static bool
829constraint_less (const constraint_t a, const constraint_t b)
830{
831 if (constraint_expr_less (a->lhs, b->lhs))
832 return true;
833 else if (constraint_expr_less (b->lhs, a->lhs))
834 return false;
835 else
836 return constraint_expr_less (a->rhs, b->rhs);
837}
838
839/* Return true if two constraints A and B are equal. */
c58936b6 840
910fdc79
DB
841static bool
842constraint_equal (struct constraint a, struct constraint b)
843{
c58936b6 844 return constraint_expr_equal (a.lhs, b.lhs)
910fdc79
DB
845 && constraint_expr_equal (a.rhs, b.rhs);
846}
847
848
849/* Find a constraint LOOKFOR in the sorted constraint vector VEC */
850
851static constraint_t
b5efa470 852constraint_vec_find (VEC(constraint_t,heap) *vec,
910fdc79
DB
853 struct constraint lookfor)
854{
c58936b6 855 unsigned int place;
910fdc79
DB
856 constraint_t found;
857
858 if (vec == NULL)
859 return NULL;
860
861 place = VEC_lower_bound (constraint_t, vec, &lookfor, constraint_less);
862 if (place >= VEC_length (constraint_t, vec))
863 return NULL;
864 found = VEC_index (constraint_t, vec, place);
865 if (!constraint_equal (*found, lookfor))
866 return NULL;
867 return found;
868}
869
870/* Union two constraint vectors, TO and FROM. Put the result in TO. */
871
872static void
b5efa470
DB
873constraint_set_union (VEC(constraint_t,heap) **to,
874 VEC(constraint_t,heap) **from)
910fdc79
DB
875{
876 int i;
877 constraint_t c;
878
ac47786e 879 FOR_EACH_VEC_ELT (constraint_t, *from, i, c)
910fdc79
DB
880 {
881 if (constraint_vec_find (*to, *c) == NULL)
882 {
883 unsigned int place = VEC_lower_bound (constraint_t, *to, c,
884 constraint_less);
b5efa470 885 VEC_safe_insert (constraint_t, heap, *to, place, c);
910fdc79
DB
886 }
887 }
888}
889
5006671f
RG
890/* Expands the solution in SET to all sub-fields of variables included.
891 Union the expanded result into RESULT. */
892
893static void
894solution_set_expand (bitmap result, bitmap set)
895{
896 bitmap_iterator bi;
897 bitmap vars = NULL;
898 unsigned j;
899
900 /* In a first pass record all variables we need to add all
901 sub-fields off. This avoids quadratic behavior. */
902 EXECUTE_IF_SET_IN_BITMAP (set, 0, j, bi)
903 {
904 varinfo_t v = get_varinfo (j);
905 if (v->is_artificial_var
906 || v->is_full_var)
907 continue;
908 v = lookup_vi_for_tree (v->decl);
909 if (vars == NULL)
910 vars = BITMAP_ALLOC (NULL);
911 bitmap_set_bit (vars, v->id);
912 }
913
914 /* In the second pass now do the addition to the solution and
915 to speed up solving add it to the delta as well. */
916 if (vars != NULL)
917 {
918 EXECUTE_IF_SET_IN_BITMAP (vars, 0, j, bi)
919 {
920 varinfo_t v = get_varinfo (j);
921 for (; v != NULL; v = v->next)
922 bitmap_set_bit (result, v->id);
923 }
924 BITMAP_FREE (vars);
925 }
926}
927
910fdc79
DB
928/* Take a solution set SET, add OFFSET to each member of the set, and
929 overwrite SET with the result when done. */
930
931static void
5006671f 932solution_set_add (bitmap set, HOST_WIDE_INT offset)
910fdc79
DB
933{
934 bitmap result = BITMAP_ALLOC (&iteration_obstack);
935 unsigned int i;
936 bitmap_iterator bi;
937
5006671f
RG
938 /* If the offset is unknown we have to expand the solution to
939 all subfields. */
940 if (offset == UNKNOWN_OFFSET)
941 {
942 solution_set_expand (set, set);
943 return;
944 }
945
910fdc79
DB
946 EXECUTE_IF_SET_IN_BITMAP (set, 0, i, bi)
947 {
e5bae89b 948 varinfo_t vi = get_varinfo (i);
c58936b6 949
e5bae89b
RG
950 /* If this is a variable with just one field just set its bit
951 in the result. */
952 if (vi->is_artificial_var
953 || vi->is_unknown_size_var
954 || vi->is_full_var)
955 bitmap_set_bit (result, i);
956 else
910fdc79 957 {
e5bae89b 958 unsigned HOST_WIDE_INT fieldoffset = vi->offset + offset;
5006671f
RG
959
960 /* If the offset makes the pointer point to before the
961 variable use offset zero for the field lookup. */
962 if (offset < 0
963 && fieldoffset > vi->offset)
964 fieldoffset = 0;
965
966 if (offset != 0)
967 vi = first_or_preceding_vi_for_offset (vi, fieldoffset);
968
969 bitmap_set_bit (result, vi->id);
e5bae89b
RG
970 /* If the result is not exactly at fieldoffset include the next
971 field as well. See get_constraint_for_ptr_offset for more
972 rationale. */
5006671f
RG
973 if (vi->offset != fieldoffset
974 && vi->next != NULL)
975 bitmap_set_bit (result, vi->next->id);
910fdc79
DB
976 }
977 }
c58936b6
DB
978
979 bitmap_copy (set, result);
910fdc79
DB
980 BITMAP_FREE (result);
981}
982
983/* Union solution sets TO and FROM, and add INC to each member of FROM in the
984 process. */
985
986static bool
5006671f 987set_union_with_increment (bitmap to, bitmap from, HOST_WIDE_INT inc)
910fdc79
DB
988{
989 if (inc == 0)
990 return bitmap_ior_into (to, from);
991 else
992 {
993 bitmap tmp;
994 bool res;
995
996 tmp = BITMAP_ALLOC (&iteration_obstack);
997 bitmap_copy (tmp, from);
998 solution_set_add (tmp, inc);
999 res = bitmap_ior_into (to, tmp);
1000 BITMAP_FREE (tmp);
1001 return res;
1002 }
1003}
1004
3e5937d7
DB
1005/* Insert constraint C into the list of complex constraints for graph
1006 node VAR. */
910fdc79
DB
1007
1008static void
3e5937d7
DB
1009insert_into_complex (constraint_graph_t graph,
1010 unsigned int var, constraint_t c)
910fdc79 1011{
3e5937d7
DB
1012 VEC (constraint_t, heap) *complex = graph->complex[var];
1013 unsigned int place = VEC_lower_bound (constraint_t, complex, c,
910fdc79 1014 constraint_less);
3e5937d7
DB
1015
1016 /* Only insert constraints that do not already exist. */
1017 if (place >= VEC_length (constraint_t, complex)
1018 || !constraint_equal (*c, *VEC_index (constraint_t, complex, place)))
1019 VEC_safe_insert (constraint_t, heap, graph->complex[var], place, c);
910fdc79
DB
1020}
1021
1022
910fdc79
DB
1023/* Condense two variable nodes into a single variable node, by moving
1024 all associated info from SRC to TO. */
1025
c58936b6 1026static void
3e5937d7
DB
1027merge_node_constraints (constraint_graph_t graph, unsigned int to,
1028 unsigned int from)
910fdc79 1029{
910fdc79
DB
1030 unsigned int i;
1031 constraint_t c;
c58936b6 1032
3e5937d7 1033 gcc_assert (find (from) == to);
c58936b6 1034
910fdc79 1035 /* Move all complex constraints from src node into to node */
ac47786e 1036 FOR_EACH_VEC_ELT (constraint_t, graph->complex[from], i, c)
910fdc79
DB
1037 {
1038 /* In complex constraints for node src, we may have either
3e5937d7
DB
1039 a = *src, and *src = a, or an offseted constraint which are
1040 always added to the rhs node's constraints. */
c58936b6 1041
910fdc79
DB
1042 if (c->rhs.type == DEREF)
1043 c->rhs.var = to;
3e5937d7 1044 else if (c->lhs.type == DEREF)
910fdc79 1045 c->lhs.var = to;
3e5937d7
DB
1046 else
1047 c->rhs.var = to;
910fdc79 1048 }
3e5937d7
DB
1049 constraint_set_union (&graph->complex[to], &graph->complex[from]);
1050 VEC_free (constraint_t, heap, graph->complex[from]);
1051 graph->complex[from] = NULL;
910fdc79
DB
1052}
1053
910fdc79
DB
1054
1055/* Remove edges involving NODE from GRAPH. */
1056
1057static void
1058clear_edges_for_node (constraint_graph_t graph, unsigned int node)
1059{
57250223 1060 if (graph->succs[node])
3e5937d7 1061 BITMAP_FREE (graph->succs[node]);
f71ef09d
DB
1062}
1063
910fdc79
DB
1064/* Merge GRAPH nodes FROM and TO into node TO. */
1065
1066static void
c58936b6 1067merge_graph_nodes (constraint_graph_t graph, unsigned int to,
910fdc79
DB
1068 unsigned int from)
1069{
3e5937d7 1070 if (graph->indirect_cycles[from] != -1)
4ee00913 1071 {
3e5937d7
DB
1072 /* If we have indirect cycles with the from node, and we have
1073 none on the to node, the to node has indirect cycles from the
1074 from node now that they are unified.
1075 If indirect cycles exist on both, unify the nodes that they
1076 are in a cycle with, since we know they are in a cycle with
1077 each other. */
1078 if (graph->indirect_cycles[to] == -1)
7b765bed 1079 graph->indirect_cycles[to] = graph->indirect_cycles[from];
4ee00913 1080 }
910fdc79 1081
57250223
DB
1082 /* Merge all the successor edges. */
1083 if (graph->succs[from])
4ee00913 1084 {
57250223 1085 if (!graph->succs[to])
3e5937d7 1086 graph->succs[to] = BITMAP_ALLOC (&pta_obstack);
c58936b6 1087 bitmap_ior_into (graph->succs[to],
57250223 1088 graph->succs[from]);
4ee00913 1089 }
4ee00913 1090
910fdc79
DB
1091 clear_edges_for_node (graph, from);
1092}
1093
3e5937d7
DB
1094
1095/* Add an indirect graph edge to GRAPH, going from TO to FROM if
1096 it doesn't exist in the graph already. */
1097
1098static void
1099add_implicit_graph_edge (constraint_graph_t graph, unsigned int to,
1100 unsigned int from)
1101{
1102 if (to == from)
1103 return;
1104
1105 if (!graph->implicit_preds[to])
1106 graph->implicit_preds[to] = BITMAP_ALLOC (&predbitmap_obstack);
1107
5f0d975b
RG
1108 if (bitmap_set_bit (graph->implicit_preds[to], from))
1109 stats.num_implicit_edges++;
3e5937d7
DB
1110}
1111
1112/* Add a predecessor graph edge to GRAPH, going from TO to FROM if
1113 it doesn't exist in the graph already.
1114 Return false if the edge already existed, true otherwise. */
1115
1116static void
1117add_pred_graph_edge (constraint_graph_t graph, unsigned int to,
1118 unsigned int from)
1119{
1120 if (!graph->preds[to])
1121 graph->preds[to] = BITMAP_ALLOC (&predbitmap_obstack);
5f0d975b 1122 bitmap_set_bit (graph->preds[to], from);
3e5937d7
DB
1123}
1124
1125/* Add a graph edge to GRAPH, going from FROM to TO if
910fdc79
DB
1126 it doesn't exist in the graph already.
1127 Return false if the edge already existed, true otherwise. */
1128
1129static bool
57250223
DB
1130add_graph_edge (constraint_graph_t graph, unsigned int to,
1131 unsigned int from)
910fdc79 1132{
57250223 1133 if (to == from)
910fdc79
DB
1134 {
1135 return false;
1136 }
1137 else
1138 {
4ee00913 1139 bool r = false;
c58936b6 1140
57250223 1141 if (!graph->succs[from])
3e5937d7 1142 graph->succs[from] = BITMAP_ALLOC (&pta_obstack);
5f0d975b 1143 if (bitmap_set_bit (graph->succs[from], to))
f71ef09d 1144 {
57250223 1145 r = true;
3e5937d7
DB
1146 if (to < FIRST_REF_NODE && from < FIRST_REF_NODE)
1147 stats.num_edges++;
f71ef09d 1148 }
910fdc79
DB
1149 return r;
1150 }
1151}
1152
1153
4ee00913 1154/* Return true if {DEST.SRC} is an existing graph edge in GRAPH. */
910fdc79
DB
1155
1156static bool
c58936b6 1157valid_graph_edge (constraint_graph_t graph, unsigned int src,
4ee00913 1158 unsigned int dest)
910fdc79 1159{
c58936b6 1160 return (graph->succs[dest]
57250223 1161 && bitmap_bit_p (graph->succs[dest], src));
4ee00913
DB
1162}
1163
7b765bed
DB
1164/* Initialize the constraint graph structure to contain SIZE nodes. */
1165
1166static void
1167init_graph (unsigned int size)
1168{
1169 unsigned int j;
1170
1171 graph = XCNEW (struct constraint_graph);
1172 graph->size = size;
1173 graph->succs = XCNEWVEC (bitmap, graph->size);
1174 graph->indirect_cycles = XNEWVEC (int, graph->size);
1175 graph->rep = XNEWVEC (unsigned int, graph->size);
1176 graph->complex = XCNEWVEC (VEC(constraint_t, heap) *, size);
aa46c8a3 1177 graph->pe = XCNEWVEC (unsigned int, graph->size);
7b765bed
DB
1178 graph->pe_rep = XNEWVEC (int, graph->size);
1179
1180 for (j = 0; j < graph->size; j++)
1181 {
1182 graph->rep[j] = j;
7b765bed
DB
1183 graph->pe_rep[j] = -1;
1184 graph->indirect_cycles[j] = -1;
1185 }
1186}
1187
3e5937d7 1188/* Build the constraint graph, adding only predecessor edges right now. */
910fdc79
DB
1189
1190static void
3e5937d7 1191build_pred_graph (void)
910fdc79 1192{
3e5937d7 1193 int i;
910fdc79 1194 constraint_t c;
3e5937d7 1195 unsigned int j;
910fdc79 1196
3e5937d7
DB
1197 graph->implicit_preds = XCNEWVEC (bitmap, graph->size);
1198 graph->preds = XCNEWVEC (bitmap, graph->size);
7b765bed
DB
1199 graph->pointer_label = XCNEWVEC (unsigned int, graph->size);
1200 graph->loc_label = XCNEWVEC (unsigned int, graph->size);
1201 graph->pointed_by = XCNEWVEC (bitmap, graph->size);
1202 graph->points_to = XCNEWVEC (bitmap, graph->size);
3e5937d7 1203 graph->eq_rep = XNEWVEC (int, graph->size);
3e5937d7 1204 graph->direct_nodes = sbitmap_alloc (graph->size);
7b765bed 1205 graph->address_taken = BITMAP_ALLOC (&predbitmap_obstack);
3e5937d7
DB
1206 sbitmap_zero (graph->direct_nodes);
1207
1208 for (j = 0; j < FIRST_REF_NODE; j++)
1209 {
1210 if (!get_varinfo (j)->is_special_var)
1211 SET_BIT (graph->direct_nodes, j);
1212 }
1213
1214 for (j = 0; j < graph->size; j++)
7b765bed 1215 graph->eq_rep[j] = -1;
3e5937d7
DB
1216
1217 for (j = 0; j < VEC_length (varinfo_t, varmap); j++)
1218 graph->indirect_cycles[j] = -1;
e8ca4159 1219
ac47786e 1220 FOR_EACH_VEC_ELT (constraint_t, constraints, i, c)
910fdc79
DB
1221 {
1222 struct constraint_expr lhs = c->lhs;
1223 struct constraint_expr rhs = c->rhs;
5006671f
RG
1224 unsigned int lhsvar = lhs.var;
1225 unsigned int rhsvar = rhs.var;
03190594 1226
910fdc79
DB
1227 if (lhs.type == DEREF)
1228 {
3e5937d7
DB
1229 /* *x = y. */
1230 if (rhs.offset == 0 && lhs.offset == 0 && rhs.type == SCALAR)
1231 add_pred_graph_edge (graph, FIRST_REF_NODE + lhsvar, rhsvar);
910fdc79
DB
1232 }
1233 else if (rhs.type == DEREF)
1234 {
3e5937d7
DB
1235 /* x = *y */
1236 if (rhs.offset == 0 && lhs.offset == 0 && lhs.type == SCALAR)
1237 add_pred_graph_edge (graph, lhsvar, FIRST_REF_NODE + rhsvar);
1238 else
1239 RESET_BIT (graph->direct_nodes, lhsvar);
910fdc79 1240 }
3e5937d7 1241 else if (rhs.type == ADDRESSOF)
910fdc79 1242 {
10bd6c5c
RG
1243 varinfo_t v;
1244
910fdc79 1245 /* x = &y */
7b765bed
DB
1246 if (graph->points_to[lhsvar] == NULL)
1247 graph->points_to[lhsvar] = BITMAP_ALLOC (&predbitmap_obstack);
1248 bitmap_set_bit (graph->points_to[lhsvar], rhsvar);
1249
1250 if (graph->pointed_by[rhsvar] == NULL)
1251 graph->pointed_by[rhsvar] = BITMAP_ALLOC (&predbitmap_obstack);
1252 bitmap_set_bit (graph->pointed_by[rhsvar], lhsvar);
1253
3e5937d7
DB
1254 /* Implicitly, *x = y */
1255 add_implicit_graph_edge (graph, FIRST_REF_NODE + lhsvar, rhsvar);
1256
10bd6c5c 1257 /* All related variables are no longer direct nodes. */
3e5937d7 1258 RESET_BIT (graph->direct_nodes, rhsvar);
5006671f
RG
1259 v = get_varinfo (rhsvar);
1260 if (!v->is_full_var)
1261 {
1262 v = lookup_vi_for_tree (v->decl);
1263 do
1264 {
1265 RESET_BIT (graph->direct_nodes, v->id);
1266 v = v->next;
1267 }
1268 while (v != NULL);
1269 }
7b765bed 1270 bitmap_set_bit (graph->address_taken, rhsvar);
910fdc79 1271 }
3e5937d7
DB
1272 else if (lhsvar > anything_id
1273 && lhsvar != rhsvar && lhs.offset == 0 && rhs.offset == 0)
910fdc79 1274 {
3e5937d7
DB
1275 /* x = y */
1276 add_pred_graph_edge (graph, lhsvar, rhsvar);
1277 /* Implicitly, *x = *y */
1278 add_implicit_graph_edge (graph, FIRST_REF_NODE + lhsvar,
1279 FIRST_REF_NODE + rhsvar);
1280 }
1281 else if (lhs.offset != 0 || rhs.offset != 0)
1282 {
1283 if (rhs.offset != 0)
1284 RESET_BIT (graph->direct_nodes, lhs.var);
7b765bed 1285 else if (lhs.offset != 0)
3e5937d7
DB
1286 RESET_BIT (graph->direct_nodes, rhs.var);
1287 }
1288 }
1289}
1290
1291/* Build the constraint graph, adding successor edges. */
1292
1293static void
1294build_succ_graph (void)
1295{
9e39dba6 1296 unsigned i, t;
3e5937d7
DB
1297 constraint_t c;
1298
ac47786e 1299 FOR_EACH_VEC_ELT (constraint_t, constraints, i, c)
3e5937d7
DB
1300 {
1301 struct constraint_expr lhs;
1302 struct constraint_expr rhs;
1303 unsigned int lhsvar;
1304 unsigned int rhsvar;
1305
1306 if (!c)
1307 continue;
c58936b6 1308
3e5937d7
DB
1309 lhs = c->lhs;
1310 rhs = c->rhs;
5006671f
RG
1311 lhsvar = find (lhs.var);
1312 rhsvar = find (rhs.var);
3e5937d7
DB
1313
1314 if (lhs.type == DEREF)
1315 {
1316 if (rhs.offset == 0 && lhs.offset == 0 && rhs.type == SCALAR)
1317 add_graph_edge (graph, FIRST_REF_NODE + lhsvar, rhsvar);
1318 }
1319 else if (rhs.type == DEREF)
1320 {
1321 if (rhs.offset == 0 && lhs.offset == 0 && lhs.type == SCALAR)
1322 add_graph_edge (graph, lhsvar, FIRST_REF_NODE + rhsvar);
1323 }
1324 else if (rhs.type == ADDRESSOF)
1325 {
1326 /* x = &y */
5006671f 1327 gcc_assert (find (rhs.var) == rhs.var);
3e5937d7
DB
1328 bitmap_set_bit (get_varinfo (lhsvar)->solution, rhsvar);
1329 }
1330 else if (lhsvar > anything_id
1331 && lhsvar != rhsvar && lhs.offset == 0 && rhs.offset == 0)
1332 {
1333 add_graph_edge (graph, lhsvar, rhsvar);
910fdc79
DB
1334 }
1335 }
9e39dba6 1336
de925a03
RG
1337 /* Add edges from STOREDANYTHING to all non-direct nodes that can
1338 receive pointers. */
9e39dba6
RG
1339 t = find (storedanything_id);
1340 for (i = integer_id + 1; i < FIRST_REF_NODE; ++i)
1341 {
de925a03
RG
1342 if (!TEST_BIT (graph->direct_nodes, i)
1343 && get_varinfo (i)->may_have_pointers)
9e39dba6
RG
1344 add_graph_edge (graph, find (i), t);
1345 }
379c6f48
RG
1346
1347 /* Everything stored to ANYTHING also potentially escapes. */
1348 add_graph_edge (graph, find (escaped_id), t);
910fdc79 1349}
e8ca4159
DN
1350
1351
910fdc79 1352/* Changed variables on the last iteration. */
648b5f85 1353static bitmap changed;
910fdc79 1354
910fdc79
DB
1355/* Strongly Connected Component visitation info. */
1356
1357struct scc_info
1358{
1359 sbitmap visited;
7b765bed 1360 sbitmap deleted;
3e5937d7
DB
1361 unsigned int *dfs;
1362 unsigned int *node_mapping;
910fdc79 1363 int current_index;
740e80e8 1364 VEC(unsigned,heap) *scc_stack;
910fdc79
DB
1365};
1366
1367
1368/* Recursive routine to find strongly connected components in GRAPH.
1369 SI is the SCC info to store the information in, and N is the id of current
1370 graph node we are processing.
c58936b6 1371
910fdc79 1372 This is Tarjan's strongly connected component finding algorithm, as
c58936b6 1373 modified by Nuutila to keep only non-root nodes on the stack.
910fdc79
DB
1374 The algorithm can be found in "On finding the strongly connected
1375 connected components in a directed graph" by Esko Nuutila and Eljas
1376 Soisalon-Soininen, in Information Processing Letters volume 49,
1377 number 1, pages 9-14. */
1378
1379static void
1380scc_visit (constraint_graph_t graph, struct scc_info *si, unsigned int n)
1381{
4ee00913
DB
1382 unsigned int i;
1383 bitmap_iterator bi;
3e5937d7 1384 unsigned int my_dfs;
910fdc79 1385
910fdc79 1386 SET_BIT (si->visited, n);
3e5937d7
DB
1387 si->dfs[n] = si->current_index ++;
1388 my_dfs = si->dfs[n];
c58936b6 1389
910fdc79 1390 /* Visit all the successors. */
57250223 1391 EXECUTE_IF_IN_NONNULL_BITMAP (graph->succs[n], 0, i, bi)
910fdc79 1392 {
3e5937d7
DB
1393 unsigned int w;
1394
1395 if (i > LAST_REF_NODE)
1396 break;
1397
1398 w = find (i);
7b765bed 1399 if (TEST_BIT (si->deleted, w))
3e5937d7
DB
1400 continue;
1401
4ee00913
DB
1402 if (!TEST_BIT (si->visited, w))
1403 scc_visit (graph, si, w);
3e5937d7
DB
1404 {
1405 unsigned int t = find (w);
1406 unsigned int nnode = find (n);
62e5bf5d 1407 gcc_assert (nnode == n);
3e5937d7
DB
1408
1409 if (si->dfs[t] < si->dfs[nnode])
1410 si->dfs[n] = si->dfs[t];
1411 }
910fdc79 1412 }
c58936b6 1413
910fdc79 1414 /* See if any components have been identified. */
3e5937d7 1415 if (si->dfs[n] == my_dfs)
910fdc79 1416 {
3e5937d7
DB
1417 if (VEC_length (unsigned, si->scc_stack) > 0
1418 && si->dfs[VEC_last (unsigned, si->scc_stack)] >= my_dfs)
910fdc79 1419 {
3e5937d7 1420 bitmap scc = BITMAP_ALLOC (NULL);
3e5937d7
DB
1421 unsigned int lowest_node;
1422 bitmap_iterator bi;
910fdc79 1423
3e5937d7 1424 bitmap_set_bit (scc, n);
910fdc79 1425
3e5937d7
DB
1426 while (VEC_length (unsigned, si->scc_stack) != 0
1427 && si->dfs[VEC_last (unsigned, si->scc_stack)] >= my_dfs)
1428 {
1429 unsigned int w = VEC_pop (unsigned, si->scc_stack);
910fdc79 1430
3e5937d7 1431 bitmap_set_bit (scc, w);
3e5937d7 1432 }
4ee00913 1433
3e5937d7
DB
1434 lowest_node = bitmap_first_set_bit (scc);
1435 gcc_assert (lowest_node < FIRST_REF_NODE);
7b765bed
DB
1436
1437 /* Collapse the SCC nodes into a single node, and mark the
1438 indirect cycles. */
3e5937d7
DB
1439 EXECUTE_IF_SET_IN_BITMAP (scc, 0, i, bi)
1440 {
1441 if (i < FIRST_REF_NODE)
1442 {
3e5937d7
DB
1443 if (unite (lowest_node, i))
1444 unify_nodes (graph, lowest_node, i, false);
1445 }
1446 else
1447 {
1448 unite (lowest_node, i);
1449 graph->indirect_cycles[i - FIRST_REF_NODE] = lowest_node;
1450 }
1451 }
4ee00913 1452 }
7b765bed 1453 SET_BIT (si->deleted, n);
910fdc79 1454 }
3e5937d7
DB
1455 else
1456 VEC_safe_push (unsigned, heap, si->scc_stack, n);
910fdc79
DB
1457}
1458
3e5937d7
DB
1459/* Unify node FROM into node TO, updating the changed count if
1460 necessary when UPDATE_CHANGED is true. */
910fdc79
DB
1461
1462static void
3e5937d7
DB
1463unify_nodes (constraint_graph_t graph, unsigned int to, unsigned int from,
1464 bool update_changed)
910fdc79 1465{
910fdc79 1466
3e5937d7
DB
1467 gcc_assert (to != from && find (to) == to);
1468 if (dump_file && (dump_flags & TDF_DETAILS))
1469 fprintf (dump_file, "Unifying %s to %s\n",
1470 get_varinfo (from)->name,
1471 get_varinfo (to)->name);
910fdc79 1472
3e5937d7
DB
1473 if (update_changed)
1474 stats.unified_vars_dynamic++;
1475 else
1476 stats.unified_vars_static++;
910fdc79 1477
3e5937d7
DB
1478 merge_graph_nodes (graph, to, from);
1479 merge_node_constraints (graph, to, from);
c58936b6 1480
7b765bed
DB
1481 /* Mark TO as changed if FROM was changed. If TO was already marked
1482 as changed, decrease the changed count. */
1483
648b5f85
RG
1484 if (update_changed
1485 && bitmap_bit_p (changed, from))
910fdc79 1486 {
648b5f85
RG
1487 bitmap_clear_bit (changed, from);
1488 bitmap_set_bit (changed, to);
3e5937d7 1489 }
aa46c8a3 1490 if (get_varinfo (from)->solution)
3e5937d7 1491 {
aa46c8a3
DB
1492 /* If the solution changes because of the merging, we need to mark
1493 the variable as changed. */
1494 if (bitmap_ior_into (get_varinfo (to)->solution,
1495 get_varinfo (from)->solution))
910fdc79 1496 {
648b5f85
RG
1497 if (update_changed)
1498 bitmap_set_bit (changed, to);
aa46c8a3 1499 }
b8698a0f 1500
aa46c8a3 1501 BITMAP_FREE (get_varinfo (from)->solution);
74d8fa44
RG
1502 if (get_varinfo (from)->oldsolution)
1503 BITMAP_FREE (get_varinfo (from)->oldsolution);
b8698a0f 1504
74d8fa44
RG
1505 if (stats.iterations > 0
1506 && get_varinfo (to)->oldsolution)
1507 BITMAP_FREE (get_varinfo (to)->oldsolution);
3e5937d7 1508 }
3e5937d7
DB
1509 if (valid_graph_edge (graph, to, to))
1510 {
1511 if (graph->succs[to])
1512 bitmap_clear_bit (graph->succs[to], to);
910fdc79 1513 }
910fdc79
DB
1514}
1515
910fdc79
DB
1516/* Information needed to compute the topological ordering of a graph. */
1517
1518struct topo_info
1519{
1520 /* sbitmap of visited nodes. */
1521 sbitmap visited;
1522 /* Array that stores the topological order of the graph, *in
1523 reverse*. */
740e80e8 1524 VEC(unsigned,heap) *topo_order;
910fdc79
DB
1525};
1526
1527
1528/* Initialize and return a topological info structure. */
1529
1530static struct topo_info *
1531init_topo_info (void)
1532{
7b765bed 1533 size_t size = graph->size;
5ed6ace5 1534 struct topo_info *ti = XNEW (struct topo_info);
910fdc79
DB
1535 ti->visited = sbitmap_alloc (size);
1536 sbitmap_zero (ti->visited);
740e80e8 1537 ti->topo_order = VEC_alloc (unsigned, heap, 1);
910fdc79
DB
1538 return ti;
1539}
1540
1541
1542/* Free the topological sort info pointed to by TI. */
1543
1544static void
1545free_topo_info (struct topo_info *ti)
1546{
1547 sbitmap_free (ti->visited);
740e80e8 1548 VEC_free (unsigned, heap, ti->topo_order);
910fdc79
DB
1549 free (ti);
1550}
1551
1552/* Visit the graph in topological order, and store the order in the
1553 topo_info structure. */
1554
1555static void
1556topo_visit (constraint_graph_t graph, struct topo_info *ti,
1557 unsigned int n)
1558{
4ee00913 1559 bitmap_iterator bi;
4ee00913
DB
1560 unsigned int j;
1561
910fdc79 1562 SET_BIT (ti->visited, n);
4ee00913 1563
3e5937d7
DB
1564 if (graph->succs[n])
1565 EXECUTE_IF_SET_IN_BITMAP (graph->succs[n], 0, j, bi)
4ee00913
DB
1566 {
1567 if (!TEST_BIT (ti->visited, j))
1568 topo_visit (graph, ti, j);
1569 }
3e5937d7 1570
740e80e8 1571 VEC_safe_push (unsigned, heap, ti->topo_order, n);
910fdc79
DB
1572}
1573
5006671f
RG
1574/* Process a constraint C that represents x = *(y + off), using DELTA as the
1575 starting solution for y. */
910fdc79
DB
1576
1577static void
1578do_sd_constraint (constraint_graph_t graph, constraint_t c,
1579 bitmap delta)
1580{
7b765bed 1581 unsigned int lhs = c->lhs.var;
910fdc79
DB
1582 bool flag = false;
1583 bitmap sol = get_varinfo (lhs)->solution;
1584 unsigned int j;
1585 bitmap_iterator bi;
5006671f 1586 HOST_WIDE_INT roffset = c->rhs.offset;
4ee00913 1587
5006671f
RG
1588 /* Our IL does not allow this. */
1589 gcc_assert (c->lhs.offset == 0);
0e1f4c6b 1590
5006671f
RG
1591 /* If the solution of Y contains anything it is good enough to transfer
1592 this to the LHS. */
14c28276
RG
1593 if (bitmap_bit_p (delta, anything_id))
1594 {
1595 flag |= bitmap_set_bit (sol, anything_id);
1596 goto done;
1597 }
1598
5006671f
RG
1599 /* If we do not know at with offset the rhs is dereferenced compute
1600 the reachability set of DELTA, conservatively assuming it is
1601 dereferenced at all valid offsets. */
1602 if (roffset == UNKNOWN_OFFSET)
1603 {
1604 solution_set_expand (delta, delta);
1605 /* No further offset processing is necessary. */
1606 roffset = 0;
1607 }
1608
c58936b6 1609 /* For each variable j in delta (Sol(y)), add
910fdc79
DB
1610 an edge in the graph from j to x, and union Sol(j) into Sol(x). */
1611 EXECUTE_IF_SET_IN_BITMAP (delta, 0, j, bi)
1612 {
5006671f
RG
1613 varinfo_t v = get_varinfo (j);
1614 HOST_WIDE_INT fieldoffset = v->offset + roffset;
1615 unsigned int t;
1616
1617 if (v->is_full_var)
1618 fieldoffset = v->offset;
1619 else if (roffset != 0)
1620 v = first_vi_for_offset (v, fieldoffset);
1621 /* If the access is outside of the variable we can ignore it. */
1622 if (!v)
1623 continue;
910fdc79 1624
5006671f
RG
1625 do
1626 {
3e5937d7 1627 t = find (v->id);
4ee00913
DB
1628
1629 /* Adding edges from the special vars is pointless.
1630 They don't have sets that can change. */
b7091901 1631 if (get_varinfo (t)->is_special_var)
4ee00913 1632 flag |= bitmap_ior_into (sol, get_varinfo (t)->solution);
b7091901 1633 /* Merging the solution from ESCAPED needlessly increases
472c7fbd 1634 the set. Use ESCAPED as representative instead. */
5006671f 1635 else if (v->id == escaped_id)
6a66f28e 1636 flag |= bitmap_set_bit (sol, escaped_id);
3c323b52
RG
1637 else if (v->may_have_pointers
1638 && add_graph_edge (graph, lhs, t))
4ee00913 1639 flag |= bitmap_ior_into (sol, get_varinfo (t)->solution);
5006671f
RG
1640
1641 /* If the variable is not exactly at the requested offset
1642 we have to include the next one. */
1643 if (v->offset == (unsigned HOST_WIDE_INT)fieldoffset
1644 || v->next == NULL)
1645 break;
1646
1647 v = v->next;
1648 fieldoffset = v->offset;
910fdc79 1649 }
5006671f 1650 while (1);
910fdc79 1651 }
4cf4d6a3 1652
4ee00913 1653done:
910fdc79
DB
1654 /* If the LHS solution changed, mark the var as changed. */
1655 if (flag)
1656 {
1657 get_varinfo (lhs)->solution = sol;
648b5f85 1658 bitmap_set_bit (changed, lhs);
c58936b6 1659 }
910fdc79
DB
1660}
1661
5006671f
RG
1662/* Process a constraint C that represents *(x + off) = y using DELTA
1663 as the starting solution for x. */
910fdc79
DB
1664
1665static void
57250223 1666do_ds_constraint (constraint_t c, bitmap delta)
910fdc79 1667{
7b765bed 1668 unsigned int rhs = c->rhs.var;
910fdc79
DB
1669 bitmap sol = get_varinfo (rhs)->solution;
1670 unsigned int j;
1671 bitmap_iterator bi;
5006671f 1672 HOST_WIDE_INT loff = c->lhs.offset;
11152c95 1673 bool escaped_p = false;
910fdc79 1674
9e39dba6
RG
1675 /* Our IL does not allow this. */
1676 gcc_assert (c->rhs.offset == 0);
1677
1678 /* If the solution of y contains ANYTHING simply use the ANYTHING
1679 solution. This avoids needlessly increasing the points-to sets. */
1680 if (bitmap_bit_p (sol, anything_id))
1681 sol = get_varinfo (find (anything_id))->solution;
1682
1683 /* If the solution for x contains ANYTHING we have to merge the
1684 solution of y into all pointer variables which we do via
1685 STOREDANYTHING. */
1686 if (bitmap_bit_p (delta, anything_id))
1687 {
1688 unsigned t = find (storedanything_id);
1689 if (add_graph_edge (graph, t, rhs))
1690 {
1691 if (bitmap_ior_into (get_varinfo (t)->solution, sol))
648b5f85 1692 bitmap_set_bit (changed, t);
9e39dba6
RG
1693 }
1694 return;
1695 }
4ee00913 1696
5006671f
RG
1697 /* If we do not know at with offset the rhs is dereferenced compute
1698 the reachability set of DELTA, conservatively assuming it is
1699 dereferenced at all valid offsets. */
1700 if (loff == UNKNOWN_OFFSET)
1701 {
1702 solution_set_expand (delta, delta);
1703 loff = 0;
1704 }
1705
910fdc79
DB
1706 /* For each member j of delta (Sol(x)), add an edge from y to j and
1707 union Sol(y) into Sol(j) */
1708 EXECUTE_IF_SET_IN_BITMAP (delta, 0, j, bi)
1709 {
5006671f
RG
1710 varinfo_t v = get_varinfo (j);
1711 unsigned int t;
1712 HOST_WIDE_INT fieldoffset = v->offset + loff;
c58936b6 1713
5006671f
RG
1714 if (v->is_full_var)
1715 fieldoffset = v->offset;
1716 else if (loff != 0)
1717 v = first_vi_for_offset (v, fieldoffset);
1718 /* If the access is outside of the variable we can ignore it. */
1719 if (!v)
1720 continue;
57250223 1721
5006671f
RG
1722 do
1723 {
9e39dba6 1724 if (v->may_have_pointers)
910fdc79 1725 {
11152c95
RG
1726 /* If v is a global variable then this is an escape point. */
1727 if (v->is_global_var
1728 && !escaped_p)
1729 {
1730 t = find (escaped_id);
1731 if (add_graph_edge (graph, t, rhs)
648b5f85
RG
1732 && bitmap_ior_into (get_varinfo (t)->solution, sol))
1733 bitmap_set_bit (changed, t);
11152c95
RG
1734 /* Enough to let rhs escape once. */
1735 escaped_p = true;
1736 }
1737
1738 if (v->is_special_var)
1739 break;
1740
9e39dba6 1741 t = find (v->id);
de70bb20 1742 if (add_graph_edge (graph, t, rhs)
648b5f85
RG
1743 && bitmap_ior_into (get_varinfo (t)->solution, sol))
1744 bitmap_set_bit (changed, t);
de70bb20 1745 }
5006671f
RG
1746
1747 /* If the variable is not exactly at the requested offset
1748 we have to include the next one. */
1749 if (v->offset == (unsigned HOST_WIDE_INT)fieldoffset
1750 || v->next == NULL)
1751 break;
1752
1753 v = v->next;
1754 fieldoffset = v->offset;
57250223 1755 }
5006671f 1756 while (1);
910fdc79
DB
1757 }
1758}
1759
3e5937d7
DB
1760/* Handle a non-simple (simple meaning requires no iteration),
1761 constraint (IE *x = &y, x = *y, *x = y, and x = y with offsets involved). */
c58936b6 1762
910fdc79
DB
1763static void
1764do_complex_constraint (constraint_graph_t graph, constraint_t c, bitmap delta)
1765{
1766 if (c->lhs.type == DEREF)
1767 {
1768 if (c->rhs.type == ADDRESSOF)
1769 {
7b765bed 1770 gcc_unreachable();
910fdc79
DB
1771 }
1772 else
1773 {
1774 /* *x = y */
57250223 1775 do_ds_constraint (c, delta);
910fdc79
DB
1776 }
1777 }
57250223 1778 else if (c->rhs.type == DEREF)
910fdc79
DB
1779 {
1780 /* x = *y */
13c2c08b
DB
1781 if (!(get_varinfo (c->lhs.var)->is_special_var))
1782 do_sd_constraint (graph, c, delta);
910fdc79 1783 }
c58936b6 1784 else
57250223 1785 {
c58936b6 1786 bitmap tmp;
57250223
DB
1787 bitmap solution;
1788 bool flag = false;
57250223 1789
62e5bf5d 1790 gcc_assert (c->rhs.type == SCALAR && c->lhs.type == SCALAR);
7b765bed
DB
1791 solution = get_varinfo (c->rhs.var)->solution;
1792 tmp = get_varinfo (c->lhs.var)->solution;
57250223
DB
1793
1794 flag = set_union_with_increment (tmp, solution, c->rhs.offset);
c58936b6 1795
57250223
DB
1796 if (flag)
1797 {
7b765bed 1798 get_varinfo (c->lhs.var)->solution = tmp;
648b5f85 1799 bitmap_set_bit (changed, c->lhs.var);
57250223
DB
1800 }
1801 }
910fdc79
DB
1802}
1803
1804/* Initialize and return a new SCC info structure. */
1805
1806static struct scc_info *
3e5937d7 1807init_scc_info (size_t size)
910fdc79 1808{
5ed6ace5 1809 struct scc_info *si = XNEW (struct scc_info);
3e5937d7 1810 size_t i;
910fdc79
DB
1811
1812 si->current_index = 0;
1813 si->visited = sbitmap_alloc (size);
1814 sbitmap_zero (si->visited);
7b765bed
DB
1815 si->deleted = sbitmap_alloc (size);
1816 sbitmap_zero (si->deleted);
3e5937d7
DB
1817 si->node_mapping = XNEWVEC (unsigned int, size);
1818 si->dfs = XCNEWVEC (unsigned int, size);
1819
1820 for (i = 0; i < size; i++)
1821 si->node_mapping[i] = i;
1822
740e80e8 1823 si->scc_stack = VEC_alloc (unsigned, heap, 1);
910fdc79
DB
1824 return si;
1825}
1826
1827/* Free an SCC info structure pointed to by SI */
1828
1829static void
1830free_scc_info (struct scc_info *si)
c58936b6 1831{
910fdc79 1832 sbitmap_free (si->visited);
7b765bed 1833 sbitmap_free (si->deleted);
3e5937d7
DB
1834 free (si->node_mapping);
1835 free (si->dfs);
740e80e8 1836 VEC_free (unsigned, heap, si->scc_stack);
3e5937d7 1837 free (si);
910fdc79
DB
1838}
1839
1840
3e5937d7
DB
1841/* Find indirect cycles in GRAPH that occur, using strongly connected
1842 components, and note them in the indirect cycles map.
1843
1844 This technique comes from Ben Hardekopf and Calvin Lin,
1845 "It Pays to be Lazy: Fast and Accurate Pointer Analysis for Millions of
1846 Lines of Code", submitted to PLDI 2007. */
910fdc79
DB
1847
1848static void
3e5937d7 1849find_indirect_cycles (constraint_graph_t graph)
910fdc79
DB
1850{
1851 unsigned int i;
3e5937d7
DB
1852 unsigned int size = graph->size;
1853 struct scc_info *si = init_scc_info (size);
910fdc79 1854
3e5937d7
DB
1855 for (i = 0; i < MIN (LAST_REF_NODE, size); i ++ )
1856 if (!TEST_BIT (si->visited, i) && find (i) == i)
910fdc79 1857 scc_visit (graph, si, i);
c58936b6 1858
910fdc79
DB
1859 free_scc_info (si);
1860}
1861
1862/* Compute a topological ordering for GRAPH, and store the result in the
1863 topo_info structure TI. */
1864
c58936b6 1865static void
910fdc79
DB
1866compute_topo_order (constraint_graph_t graph,
1867 struct topo_info *ti)
1868{
1869 unsigned int i;
7b765bed 1870 unsigned int size = graph->size;
c58936b6 1871
910fdc79 1872 for (i = 0; i != size; ++i)
3e5937d7 1873 if (!TEST_BIT (ti->visited, i) && find (i) == i)
910fdc79
DB
1874 topo_visit (graph, ti, i);
1875}
1876
7b765bed
DB
1877/* Structure used to for hash value numbering of pointer equivalence
1878 classes. */
1879
1880typedef struct equiv_class_label
1881{
3691626c 1882 hashval_t hashcode;
7b765bed
DB
1883 unsigned int equivalence_class;
1884 bitmap labels;
7b765bed 1885} *equiv_class_label_t;
586de218 1886typedef const struct equiv_class_label *const_equiv_class_label_t;
7b765bed
DB
1887
1888/* A hashtable for mapping a bitmap of labels->pointer equivalence
1889 classes. */
1890static htab_t pointer_equiv_class_table;
1891
1892/* A hashtable for mapping a bitmap of labels->location equivalence
1893 classes. */
1894static htab_t location_equiv_class_table;
1895
1896/* Hash function for a equiv_class_label_t */
1897
1898static hashval_t
1899equiv_class_label_hash (const void *p)
1900{
586de218 1901 const_equiv_class_label_t const ecl = (const_equiv_class_label_t) p;
7b765bed
DB
1902 return ecl->hashcode;
1903}
1904
1905/* Equality function for two equiv_class_label_t's. */
1906
1907static int
1908equiv_class_label_eq (const void *p1, const void *p2)
1909{
586de218
KG
1910 const_equiv_class_label_t const eql1 = (const_equiv_class_label_t) p1;
1911 const_equiv_class_label_t const eql2 = (const_equiv_class_label_t) p2;
821bb7f8
RG
1912 return (eql1->hashcode == eql2->hashcode
1913 && bitmap_equal_p (eql1->labels, eql2->labels));
7b765bed
DB
1914}
1915
1916/* Lookup a equivalence class in TABLE by the bitmap of LABELS it
1917 contains. */
1918
1919static unsigned int
1920equiv_class_lookup (htab_t table, bitmap labels)
1921{
1922 void **slot;
1923 struct equiv_class_label ecl;
1924
1925 ecl.labels = labels;
1926 ecl.hashcode = bitmap_hash (labels);
c58936b6 1927
7b765bed
DB
1928 slot = htab_find_slot_with_hash (table, &ecl,
1929 ecl.hashcode, NO_INSERT);
1930 if (!slot)
1931 return 0;
1932 else
1933 return ((equiv_class_label_t) *slot)->equivalence_class;
1934}
1935
1936
1937/* Add an equivalence class named EQUIVALENCE_CLASS with labels LABELS
1938 to TABLE. */
1939
1940static void
1941equiv_class_add (htab_t table, unsigned int equivalence_class,
1942 bitmap labels)
1943{
1944 void **slot;
1945 equiv_class_label_t ecl = XNEW (struct equiv_class_label);
1946
1947 ecl->labels = labels;
1948 ecl->equivalence_class = equivalence_class;
1949 ecl->hashcode = bitmap_hash (labels);
1950
1951 slot = htab_find_slot_with_hash (table, ecl,
1952 ecl->hashcode, INSERT);
1953 gcc_assert (!*slot);
1954 *slot = (void *) ecl;
1955}
1956
1957/* Perform offline variable substitution.
910fdc79 1958
7b765bed
DB
1959 This is a worst case quadratic time way of identifying variables
1960 that must have equivalent points-to sets, including those caused by
1961 static cycles, and single entry subgraphs, in the constraint graph.
3e5937d7 1962
7b765bed
DB
1963 The technique is described in "Exploiting Pointer and Location
1964 Equivalence to Optimize Pointer Analysis. In the 14th International
1965 Static Analysis Symposium (SAS), August 2007." It is known as the
1966 "HU" algorithm, and is equivalent to value numbering the collapsed
1967 constraint graph including evaluating unions.
3e5937d7
DB
1968
1969 The general method of finding equivalence classes is as follows:
1970 Add fake nodes (REF nodes) and edges for *a = b and a = *b constraints.
7b765bed
DB
1971 Initialize all non-REF nodes to be direct nodes.
1972 For each constraint a = a U {b}, we set pts(a) = pts(a) u {fresh
1973 variable}
1974 For each constraint containing the dereference, we also do the same
1975 thing.
1976
1977 We then compute SCC's in the graph and unify nodes in the same SCC,
1978 including pts sets.
1979
1980 For each non-collapsed node x:
1981 Visit all unvisited explicit incoming edges.
1982 Ignoring all non-pointers, set pts(x) = Union of pts(a) for y
1983 where y->x.
1984 Lookup the equivalence class for pts(x).
1985 If we found one, equivalence_class(x) = found class.
1986 Otherwise, equivalence_class(x) = new class, and new_class is
1987 added to the lookup table.
3e5937d7
DB
1988
1989 All direct nodes with the same equivalence class can be replaced
1990 with a single representative node.
1991 All unlabeled nodes (label == 0) are not pointers and all edges
1992 involving them can be eliminated.
7b765bed
DB
1993 We perform these optimizations during rewrite_constraints
1994
1995 In addition to pointer equivalence class finding, we also perform
1996 location equivalence class finding. This is the set of variables
1997 that always appear together in points-to sets. We use this to
1998 compress the size of the points-to sets. */
1999
2000/* Current maximum pointer equivalence class id. */
2001static int pointer_equiv_class;
3e5937d7 2002
7b765bed
DB
2003/* Current maximum location equivalence class id. */
2004static int location_equiv_class;
3e5937d7
DB
2005
2006/* Recursive routine to find strongly connected components in GRAPH,
7b765bed 2007 and label it's nodes with DFS numbers. */
910fdc79
DB
2008
2009static void
7b765bed 2010condense_visit (constraint_graph_t graph, struct scc_info *si, unsigned int n)
910fdc79 2011{
3e5937d7
DB
2012 unsigned int i;
2013 bitmap_iterator bi;
2014 unsigned int my_dfs;
c58936b6 2015
3e5937d7
DB
2016 gcc_assert (si->node_mapping[n] == n);
2017 SET_BIT (si->visited, n);
2018 si->dfs[n] = si->current_index ++;
2019 my_dfs = si->dfs[n];
c58936b6 2020
3e5937d7
DB
2021 /* Visit all the successors. */
2022 EXECUTE_IF_IN_NONNULL_BITMAP (graph->preds[n], 0, i, bi)
910fdc79 2023 {
3e5937d7 2024 unsigned int w = si->node_mapping[i];
910fdc79 2025
7b765bed 2026 if (TEST_BIT (si->deleted, w))
910fdc79
DB
2027 continue;
2028
3e5937d7 2029 if (!TEST_BIT (si->visited, w))
7b765bed 2030 condense_visit (graph, si, w);
3e5937d7
DB
2031 {
2032 unsigned int t = si->node_mapping[w];
2033 unsigned int nnode = si->node_mapping[n];
62e5bf5d 2034 gcc_assert (nnode == n);
910fdc79 2035
3e5937d7
DB
2036 if (si->dfs[t] < si->dfs[nnode])
2037 si->dfs[n] = si->dfs[t];
2038 }
2039 }
910fdc79 2040
3e5937d7
DB
2041 /* Visit all the implicit predecessors. */
2042 EXECUTE_IF_IN_NONNULL_BITMAP (graph->implicit_preds[n], 0, i, bi)
2043 {
2044 unsigned int w = si->node_mapping[i];
2045
7b765bed 2046 if (TEST_BIT (si->deleted, w))
3e5937d7
DB
2047 continue;
2048
2049 if (!TEST_BIT (si->visited, w))
7b765bed 2050 condense_visit (graph, si, w);
3e5937d7
DB
2051 {
2052 unsigned int t = si->node_mapping[w];
2053 unsigned int nnode = si->node_mapping[n];
2054 gcc_assert (nnode == n);
2055
2056 if (si->dfs[t] < si->dfs[nnode])
2057 si->dfs[n] = si->dfs[t];
2058 }
2059 }
4ee00913 2060
3e5937d7
DB
2061 /* See if any components have been identified. */
2062 if (si->dfs[n] == my_dfs)
2063 {
2064 while (VEC_length (unsigned, si->scc_stack) != 0
2065 && si->dfs[VEC_last (unsigned, si->scc_stack)] >= my_dfs)
910fdc79 2066 {
3e5937d7
DB
2067 unsigned int w = VEC_pop (unsigned, si->scc_stack);
2068 si->node_mapping[w] = n;
2069
2070 if (!TEST_BIT (graph->direct_nodes, w))
2071 RESET_BIT (graph->direct_nodes, n);
3e5937d7 2072
7b765bed
DB
2073 /* Unify our nodes. */
2074 if (graph->preds[w])
2075 {
2076 if (!graph->preds[n])
2077 graph->preds[n] = BITMAP_ALLOC (&predbitmap_obstack);
2078 bitmap_ior_into (graph->preds[n], graph->preds[w]);
2079 }
2080 if (graph->implicit_preds[w])
2081 {
2082 if (!graph->implicit_preds[n])
2083 graph->implicit_preds[n] = BITMAP_ALLOC (&predbitmap_obstack);
2084 bitmap_ior_into (graph->implicit_preds[n],
2085 graph->implicit_preds[w]);
2086 }
2087 if (graph->points_to[w])
2088 {
2089 if (!graph->points_to[n])
2090 graph->points_to[n] = BITMAP_ALLOC (&predbitmap_obstack);
2091 bitmap_ior_into (graph->points_to[n],
2092 graph->points_to[w]);
2093 }
3e5937d7 2094 }
7b765bed 2095 SET_BIT (si->deleted, n);
3e5937d7
DB
2096 }
2097 else
2098 VEC_safe_push (unsigned, heap, si->scc_stack, n);
2099}
2100
7b765bed
DB
2101/* Label pointer equivalences. */
2102
2103static void
2104label_visit (constraint_graph_t graph, struct scc_info *si, unsigned int n)
2105{
2106 unsigned int i;
2107 bitmap_iterator bi;
2108 SET_BIT (si->visited, n);
2109
2110 if (!graph->points_to[n])
2111 graph->points_to[n] = BITMAP_ALLOC (&predbitmap_obstack);
2112
2113 /* Label and union our incoming edges's points to sets. */
2114 EXECUTE_IF_IN_NONNULL_BITMAP (graph->preds[n], 0, i, bi)
2115 {
2116 unsigned int w = si->node_mapping[i];
2117 if (!TEST_BIT (si->visited, w))
2118 label_visit (graph, si, w);
2119
2120 /* Skip unused edges */
2121 if (w == n || graph->pointer_label[w] == 0)
3dc21182
DB
2122 continue;
2123
7b765bed
DB
2124 if (graph->points_to[w])
2125 bitmap_ior_into(graph->points_to[n], graph->points_to[w]);
7b765bed
DB
2126 }
2127 /* Indirect nodes get fresh variables. */
2128 if (!TEST_BIT (graph->direct_nodes, n))
2129 bitmap_set_bit (graph->points_to[n], FIRST_REF_NODE + n);
2130
2131 if (!bitmap_empty_p (graph->points_to[n]))
2132 {
2133 unsigned int label = equiv_class_lookup (pointer_equiv_class_table,
2134 graph->points_to[n]);
2135 if (!label)
2136 {
7b765bed
DB
2137 label = pointer_equiv_class++;
2138 equiv_class_add (pointer_equiv_class_table,
2139 label, graph->points_to[n]);
2140 }
2141 graph->pointer_label[n] = label;
2142 }
2143}
2144
3e5937d7
DB
2145/* Perform offline variable substitution, discovering equivalence
2146 classes, and eliminating non-pointer variables. */
2147
2148static struct scc_info *
2149perform_var_substitution (constraint_graph_t graph)
2150{
2151 unsigned int i;
2152 unsigned int size = graph->size;
2153 struct scc_info *si = init_scc_info (size);
2154
2155 bitmap_obstack_initialize (&iteration_obstack);
7b765bed
DB
2156 pointer_equiv_class_table = htab_create (511, equiv_class_label_hash,
2157 equiv_class_label_eq, free);
2158 location_equiv_class_table = htab_create (511, equiv_class_label_hash,
2159 equiv_class_label_eq, free);
2160 pointer_equiv_class = 1;
2161 location_equiv_class = 1;
2162
2163 /* Condense the nodes, which means to find SCC's, count incoming
2164 predecessors, and unite nodes in SCC's. */
aa46c8a3 2165 for (i = 0; i < FIRST_REF_NODE; i++)
7b765bed
DB
2166 if (!TEST_BIT (si->visited, si->node_mapping[i]))
2167 condense_visit (graph, si, si->node_mapping[i]);
3e5937d7 2168
7b765bed
DB
2169 sbitmap_zero (si->visited);
2170 /* Actually the label the nodes for pointer equivalences */
aa46c8a3 2171 for (i = 0; i < FIRST_REF_NODE; i++)
3e5937d7
DB
2172 if (!TEST_BIT (si->visited, si->node_mapping[i]))
2173 label_visit (graph, si, si->node_mapping[i]);
2174
7b765bed
DB
2175 /* Calculate location equivalence labels. */
2176 for (i = 0; i < FIRST_REF_NODE; i++)
2177 {
2178 bitmap pointed_by;
2179 bitmap_iterator bi;
2180 unsigned int j;
2181 unsigned int label;
2182
2183 if (!graph->pointed_by[i])
2184 continue;
2185 pointed_by = BITMAP_ALLOC (&iteration_obstack);
2186
2187 /* Translate the pointed-by mapping for pointer equivalence
2188 labels. */
2189 EXECUTE_IF_SET_IN_BITMAP (graph->pointed_by[i], 0, j, bi)
2190 {
2191 bitmap_set_bit (pointed_by,
2192 graph->pointer_label[si->node_mapping[j]]);
2193 }
2194 /* The original pointed_by is now dead. */
2195 BITMAP_FREE (graph->pointed_by[i]);
2196
2197 /* Look up the location equivalence label if one exists, or make
2198 one otherwise. */
2199 label = equiv_class_lookup (location_equiv_class_table,
2200 pointed_by);
2201 if (label == 0)
2202 {
2203 label = location_equiv_class++;
2204 equiv_class_add (location_equiv_class_table,
2205 label, pointed_by);
2206 }
2207 else
2208 {
2209 if (dump_file && (dump_flags & TDF_DETAILS))
2210 fprintf (dump_file, "Found location equivalence for node %s\n",
2211 get_varinfo (i)->name);
2212 BITMAP_FREE (pointed_by);
2213 }
2214 graph->loc_label[i] = label;
2215
2216 }
2217
3e5937d7
DB
2218 if (dump_file && (dump_flags & TDF_DETAILS))
2219 for (i = 0; i < FIRST_REF_NODE; i++)
2220 {
2221 bool direct_node = TEST_BIT (graph->direct_nodes, i);
2222 fprintf (dump_file,
7b765bed
DB
2223 "Equivalence classes for %s node id %d:%s are pointer: %d"
2224 ", location:%d\n",
3e5937d7 2225 direct_node ? "Direct node" : "Indirect node", i,
62e5bf5d 2226 get_varinfo (i)->name,
7b765bed
DB
2227 graph->pointer_label[si->node_mapping[i]],
2228 graph->loc_label[si->node_mapping[i]]);
3e5937d7
DB
2229 }
2230
2231 /* Quickly eliminate our non-pointer variables. */
2232
2233 for (i = 0; i < FIRST_REF_NODE; i++)
2234 {
2235 unsigned int node = si->node_mapping[i];
2236
aa46c8a3 2237 if (graph->pointer_label[node] == 0)
3e5937d7 2238 {
23e73993 2239 if (dump_file && (dump_flags & TDF_DETAILS))
3e5937d7
DB
2240 fprintf (dump_file,
2241 "%s is a non-pointer variable, eliminating edges.\n",
2242 get_varinfo (node)->name);
2243 stats.nonpointer_vars++;
2244 clear_edges_for_node (graph, node);
910fdc79
DB
2245 }
2246 }
7b765bed 2247
3e5937d7
DB
2248 return si;
2249}
2250
2251/* Free information that was only necessary for variable
2252 substitution. */
910fdc79 2253
3e5937d7
DB
2254static void
2255free_var_substitution_info (struct scc_info *si)
2256{
2257 free_scc_info (si);
7b765bed
DB
2258 free (graph->pointer_label);
2259 free (graph->loc_label);
2260 free (graph->pointed_by);
2261 free (graph->points_to);
3e5937d7
DB
2262 free (graph->eq_rep);
2263 sbitmap_free (graph->direct_nodes);
7b765bed
DB
2264 htab_delete (pointer_equiv_class_table);
2265 htab_delete (location_equiv_class_table);
4ee00913 2266 bitmap_obstack_release (&iteration_obstack);
3e5937d7
DB
2267}
2268
2269/* Return an existing node that is equivalent to NODE, which has
2270 equivalence class LABEL, if one exists. Return NODE otherwise. */
2271
2272static unsigned int
2273find_equivalent_node (constraint_graph_t graph,
2274 unsigned int node, unsigned int label)
2275{
2276 /* If the address version of this variable is unused, we can
2277 substitute it for anything else with the same label.
2278 Otherwise, we know the pointers are equivalent, but not the
7b765bed 2279 locations, and we can unite them later. */
3e5937d7 2280
7b765bed 2281 if (!bitmap_bit_p (graph->address_taken, node))
3e5937d7
DB
2282 {
2283 gcc_assert (label < graph->size);
2284
2285 if (graph->eq_rep[label] != -1)
2286 {
2287 /* Unify the two variables since we know they are equivalent. */
2288 if (unite (graph->eq_rep[label], node))
2289 unify_nodes (graph, graph->eq_rep[label], node, false);
2290 return graph->eq_rep[label];
2291 }
2292 else
2293 {
2294 graph->eq_rep[label] = node;
7b765bed 2295 graph->pe_rep[label] = node;
3e5937d7
DB
2296 }
2297 }
7b765bed
DB
2298 else
2299 {
2300 gcc_assert (label < graph->size);
2301 graph->pe[node] = label;
2302 if (graph->pe_rep[label] == -1)
2303 graph->pe_rep[label] = node;
2304 }
2305
3e5937d7
DB
2306 return node;
2307}
2308
7b765bed
DB
2309/* Unite pointer equivalent but not location equivalent nodes in
2310 GRAPH. This may only be performed once variable substitution is
2311 finished. */
2312
2313static void
2314unite_pointer_equivalences (constraint_graph_t graph)
2315{
2316 unsigned int i;
2317
2318 /* Go through the pointer equivalences and unite them to their
2319 representative, if they aren't already. */
aa46c8a3 2320 for (i = 0; i < FIRST_REF_NODE; i++)
7b765bed
DB
2321 {
2322 unsigned int label = graph->pe[i];
aa46c8a3
DB
2323 if (label)
2324 {
2325 int label_rep = graph->pe_rep[label];
b8698a0f 2326
aa46c8a3
DB
2327 if (label_rep == -1)
2328 continue;
b8698a0f 2329
aa46c8a3
DB
2330 label_rep = find (label_rep);
2331 if (label_rep >= 0 && unite (label_rep, find (i)))
2332 unify_nodes (graph, label_rep, i, false);
2333 }
7b765bed
DB
2334 }
2335}
2336
2337/* Move complex constraints to the GRAPH nodes they belong to. */
3e5937d7
DB
2338
2339static void
7b765bed
DB
2340move_complex_constraints (constraint_graph_t graph)
2341{
2342 int i;
2343 constraint_t c;
2344
ac47786e 2345 FOR_EACH_VEC_ELT (constraint_t, constraints, i, c)
7b765bed
DB
2346 {
2347 if (c)
2348 {
2349 struct constraint_expr lhs = c->lhs;
2350 struct constraint_expr rhs = c->rhs;
2351
2352 if (lhs.type == DEREF)
2353 {
2354 insert_into_complex (graph, lhs.var, c);
2355 }
2356 else if (rhs.type == DEREF)
2357 {
2358 if (!(get_varinfo (lhs.var)->is_special_var))
2359 insert_into_complex (graph, rhs.var, c);
2360 }
2361 else if (rhs.type != ADDRESSOF && lhs.var > anything_id
2362 && (lhs.offset != 0 || rhs.offset != 0))
2363 {
2364 insert_into_complex (graph, rhs.var, c);
2365 }
2366 }
2367 }
2368}
2369
2370
2371/* Optimize and rewrite complex constraints while performing
2372 collapsing of equivalent nodes. SI is the SCC_INFO that is the
2373 result of perform_variable_substitution. */
2374
2375static void
2376rewrite_constraints (constraint_graph_t graph,
2377 struct scc_info *si)
3e5937d7
DB
2378{
2379 int i;
2380 unsigned int j;
2381 constraint_t c;
2382
2383 for (j = 0; j < graph->size; j++)
2384 gcc_assert (find (j) == j);
2385
ac47786e 2386 FOR_EACH_VEC_ELT (constraint_t, constraints, i, c)
3e5937d7
DB
2387 {
2388 struct constraint_expr lhs = c->lhs;
2389 struct constraint_expr rhs = c->rhs;
5006671f
RG
2390 unsigned int lhsvar = find (lhs.var);
2391 unsigned int rhsvar = find (rhs.var);
3e5937d7
DB
2392 unsigned int lhsnode, rhsnode;
2393 unsigned int lhslabel, rhslabel;
2394
2395 lhsnode = si->node_mapping[lhsvar];
2396 rhsnode = si->node_mapping[rhsvar];
7b765bed
DB
2397 lhslabel = graph->pointer_label[lhsnode];
2398 rhslabel = graph->pointer_label[rhsnode];
3e5937d7
DB
2399
2400 /* See if it is really a non-pointer variable, and if so, ignore
2401 the constraint. */
2402 if (lhslabel == 0)
2403 {
aa46c8a3 2404 if (dump_file && (dump_flags & TDF_DETAILS))
3e5937d7 2405 {
b8698a0f 2406
aa46c8a3
DB
2407 fprintf (dump_file, "%s is a non-pointer variable,"
2408 "ignoring constraint:",
2409 get_varinfo (lhs.var)->name);
2410 dump_constraint (dump_file, c);
8576f20a 2411 fprintf (dump_file, "\n");
3e5937d7 2412 }
aa46c8a3
DB
2413 VEC_replace (constraint_t, constraints, i, NULL);
2414 continue;
3e5937d7
DB
2415 }
2416
2417 if (rhslabel == 0)
2418 {
aa46c8a3 2419 if (dump_file && (dump_flags & TDF_DETAILS))
3e5937d7 2420 {
b8698a0f 2421
aa46c8a3
DB
2422 fprintf (dump_file, "%s is a non-pointer variable,"
2423 "ignoring constraint:",
2424 get_varinfo (rhs.var)->name);
2425 dump_constraint (dump_file, c);
8576f20a 2426 fprintf (dump_file, "\n");
3e5937d7 2427 }
aa46c8a3
DB
2428 VEC_replace (constraint_t, constraints, i, NULL);
2429 continue;
3e5937d7
DB
2430 }
2431
2432 lhsvar = find_equivalent_node (graph, lhsvar, lhslabel);
2433 rhsvar = find_equivalent_node (graph, rhsvar, rhslabel);
2434 c->lhs.var = lhsvar;
2435 c->rhs.var = rhsvar;
2436
3e5937d7
DB
2437 }
2438}
2439
2440/* Eliminate indirect cycles involving NODE. Return true if NODE was
2441 part of an SCC, false otherwise. */
2442
2443static bool
2444eliminate_indirect_cycles (unsigned int node)
2445{
2446 if (graph->indirect_cycles[node] != -1
2447 && !bitmap_empty_p (get_varinfo (node)->solution))
2448 {
2449 unsigned int i;
2450 VEC(unsigned,heap) *queue = NULL;
2451 int queuepos;
2452 unsigned int to = find (graph->indirect_cycles[node]);
2453 bitmap_iterator bi;
2454
2455 /* We can't touch the solution set and call unify_nodes
2456 at the same time, because unify_nodes is going to do
2457 bitmap unions into it. */
2458
2459 EXECUTE_IF_SET_IN_BITMAP (get_varinfo (node)->solution, 0, i, bi)
2460 {
2461 if (find (i) == i && i != to)
2462 {
2463 if (unite (to, i))
2464 VEC_safe_push (unsigned, heap, queue, i);
2465 }
2466 }
2467
2468 for (queuepos = 0;
2469 VEC_iterate (unsigned, queue, queuepos, i);
2470 queuepos++)
2471 {
2472 unify_nodes (graph, to, i, true);
2473 }
2474 VEC_free (unsigned, heap, queue);
2475 return true;
2476 }
2477 return false;
910fdc79
DB
2478}
2479
910fdc79
DB
2480/* Solve the constraint graph GRAPH using our worklist solver.
2481 This is based on the PW* family of solvers from the "Efficient Field
2482 Sensitive Pointer Analysis for C" paper.
2483 It works by iterating over all the graph nodes, processing the complex
2484 constraints and propagating the copy constraints, until everything stops
2485 changed. This corresponds to steps 6-8 in the solving list given above. */
2486
2487static void
2488solve_graph (constraint_graph_t graph)
2489{
7b765bed 2490 unsigned int size = graph->size;
910fdc79 2491 unsigned int i;
3e5937d7 2492 bitmap pts;
910fdc79 2493
648b5f85 2494 changed = BITMAP_ALLOC (NULL);
c58936b6 2495
3e5937d7 2496 /* Mark all initial non-collapsed nodes as changed. */
910fdc79 2497 for (i = 0; i < size; i++)
3e5937d7
DB
2498 {
2499 varinfo_t ivi = get_varinfo (i);
2500 if (find (i) == i && !bitmap_empty_p (ivi->solution)
2501 && ((graph->succs[i] && !bitmap_empty_p (graph->succs[i]))
2502 || VEC_length (constraint_t, graph->complex[i]) > 0))
648b5f85 2503 bitmap_set_bit (changed, i);
3e5937d7
DB
2504 }
2505
2506 /* Allocate a bitmap to be used to store the changed bits. */
2507 pts = BITMAP_ALLOC (&pta_obstack);
c58936b6 2508
648b5f85 2509 while (!bitmap_empty_p (changed))
910fdc79
DB
2510 {
2511 unsigned int i;
2512 struct topo_info *ti = init_topo_info ();
2513 stats.iterations++;
4ee00913 2514
910fdc79 2515 bitmap_obstack_initialize (&iteration_obstack);
c58936b6 2516
910fdc79
DB
2517 compute_topo_order (graph, ti);
2518
740e80e8 2519 while (VEC_length (unsigned, ti->topo_order) != 0)
910fdc79 2520 {
3e5937d7 2521
740e80e8 2522 i = VEC_pop (unsigned, ti->topo_order);
3e5937d7
DB
2523
2524 /* If this variable is not a representative, skip it. */
2525 if (find (i) != i)
2526 continue;
2527
d3c36974
DB
2528 /* In certain indirect cycle cases, we may merge this
2529 variable to another. */
62e5bf5d 2530 if (eliminate_indirect_cycles (i) && find (i) != i)
d3c36974 2531 continue;
910fdc79
DB
2532
2533 /* If the node has changed, we need to process the
2534 complex constraints and outgoing edges again. */
648b5f85 2535 if (bitmap_clear_bit (changed, i))
910fdc79
DB
2536 {
2537 unsigned int j;
2538 constraint_t c;
910fdc79 2539 bitmap solution;
3e5937d7 2540 VEC(constraint_t,heap) *complex = graph->complex[i];
74d8fa44 2541 varinfo_t vi = get_varinfo (i);
21392f19 2542 bool solution_empty;
48e540b0 2543
3e5937d7 2544 /* Compute the changed set of solution bits. */
74d8fa44
RG
2545 if (vi->oldsolution)
2546 bitmap_and_compl (pts, vi->solution, vi->oldsolution);
2547 else
2548 bitmap_copy (pts, vi->solution);
3e5937d7
DB
2549
2550 if (bitmap_empty_p (pts))
2551 continue;
2552
74d8fa44
RG
2553 if (vi->oldsolution)
2554 bitmap_ior_into (vi->oldsolution, pts);
2555 else
2556 {
2557 vi->oldsolution = BITMAP_ALLOC (&oldpta_obstack);
2558 bitmap_copy (vi->oldsolution, pts);
2559 }
3e5937d7 2560
74d8fa44 2561 solution = vi->solution;
21392f19
DB
2562 solution_empty = bitmap_empty_p (solution);
2563
2564 /* Process the complex constraints */
ac47786e 2565 FOR_EACH_VEC_ELT (constraint_t, complex, j, c)
21392f19 2566 {
7b765bed
DB
2567 /* XXX: This is going to unsort the constraints in
2568 some cases, which will occasionally add duplicate
2569 constraints during unification. This does not
2570 affect correctness. */
2571 c->lhs.var = find (c->lhs.var);
2572 c->rhs.var = find (c->rhs.var);
2573
21392f19
DB
2574 /* The only complex constraint that can change our
2575 solution to non-empty, given an empty solution,
2576 is a constraint where the lhs side is receiving
2577 some set from elsewhere. */
2578 if (!solution_empty || c->lhs.type != DEREF)
3e5937d7 2579 do_complex_constraint (graph, c, pts);
21392f19 2580 }
910fdc79 2581
21392f19
DB
2582 solution_empty = bitmap_empty_p (solution);
2583
5006671f 2584 if (!solution_empty)
4ee00913 2585 {
3e5937d7 2586 bitmap_iterator bi;
5006671f 2587 unsigned eff_escaped_id = find (escaped_id);
3e5937d7 2588
21392f19 2589 /* Propagate solution to all successors. */
c58936b6 2590 EXECUTE_IF_IN_NONNULL_BITMAP (graph->succs[i],
21392f19 2591 0, j, bi)
4ee00913 2592 {
3e5937d7
DB
2593 bitmap tmp;
2594 bool flag;
2595
2596 unsigned int to = find (j);
2597 tmp = get_varinfo (to)->solution;
2598 flag = false;
c58936b6 2599
3e5937d7
DB
2600 /* Don't try to propagate to ourselves. */
2601 if (to == i)
2602 continue;
c58936b6 2603
5006671f
RG
2604 /* If we propagate from ESCAPED use ESCAPED as
2605 placeholder. */
2606 if (i == eff_escaped_id)
2607 flag = bitmap_set_bit (tmp, escaped_id);
2608 else
2609 flag = set_union_with_increment (tmp, pts, 0);
c58936b6 2610
21392f19 2611 if (flag)
4ee00913 2612 {
3e5937d7 2613 get_varinfo (to)->solution = tmp;
648b5f85 2614 bitmap_set_bit (changed, to);
4ee00913
DB
2615 }
2616 }
910fdc79
DB
2617 }
2618 }
2619 }
2620 free_topo_info (ti);
2621 bitmap_obstack_release (&iteration_obstack);
2622 }
c58936b6 2623
3e5937d7 2624 BITMAP_FREE (pts);
648b5f85 2625 BITMAP_FREE (changed);
3e5937d7 2626 bitmap_obstack_release (&oldpta_obstack);
910fdc79
DB
2627}
2628
3e5937d7 2629/* Map from trees to variable infos. */
15814ba0 2630static struct pointer_map_t *vi_for_tree;
910fdc79 2631
910fdc79 2632
15814ba0 2633/* Insert ID as the variable id for tree T in the vi_for_tree map. */
910fdc79 2634
c58936b6 2635static void
3e5937d7 2636insert_vi_for_tree (tree t, varinfo_t vi)
910fdc79 2637{
15814ba0
PB
2638 void **slot = pointer_map_insert (vi_for_tree, t);
2639 gcc_assert (vi);
910fdc79 2640 gcc_assert (*slot == NULL);
15814ba0 2641 *slot = vi;
910fdc79
DB
2642}
2643
3e5937d7 2644/* Find the variable info for tree T in VI_FOR_TREE. If T does not
15814ba0 2645 exist in the map, return NULL, otherwise, return the varinfo we found. */
910fdc79 2646
15814ba0
PB
2647static varinfo_t
2648lookup_vi_for_tree (tree t)
910fdc79 2649{
15814ba0
PB
2650 void **slot = pointer_map_contains (vi_for_tree, t);
2651 if (slot == NULL)
2652 return NULL;
910fdc79 2653
15814ba0 2654 return (varinfo_t) *slot;
910fdc79
DB
2655}
2656
2657/* Return a printable name for DECL */
2658
2659static const char *
2660alias_get_name (tree decl)
2661{
70b5e7dc 2662 const char *res = NULL;
910fdc79
DB
2663 char *temp;
2664 int num_printed = 0;
2665
4f6c9110 2666 if (!dump_file)
70b5e7dc 2667 return "NULL";
4f6c9110 2668
910fdc79
DB
2669 if (TREE_CODE (decl) == SSA_NAME)
2670 {
70b5e7dc
RG
2671 res = get_name (decl);
2672 if (res)
2673 num_printed = asprintf (&temp, "%s_%u", res, SSA_NAME_VERSION (decl));
2674 else
2675 num_printed = asprintf (&temp, "_%u", SSA_NAME_VERSION (decl));
2676 if (num_printed > 0)
2677 {
2678 res = ggc_strdup (temp);
2679 free (temp);
2680 }
910fdc79
DB
2681 }
2682 else if (DECL_P (decl))
2683 {
70b5e7dc
RG
2684 if (DECL_ASSEMBLER_NAME_SET_P (decl))
2685 res = IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (decl));
2686 else
2687 {
2688 res = get_name (decl);
2689 if (!res)
2690 {
2691 num_printed = asprintf (&temp, "D.%u", DECL_UID (decl));
2692 if (num_printed > 0)
2693 {
2694 res = ggc_strdup (temp);
2695 free (temp);
2696 }
2697 }
2698 }
910fdc79 2699 }
70b5e7dc
RG
2700 if (res != NULL)
2701 return res;
2702
2703 return "NULL";
910fdc79
DB
2704}
2705
15814ba0
PB
2706/* Find the variable id for tree T in the map.
2707 If T doesn't exist in the map, create an entry for it and return it. */
910fdc79 2708
3e5937d7
DB
2709static varinfo_t
2710get_vi_for_tree (tree t)
910fdc79 2711{
15814ba0
PB
2712 void **slot = pointer_map_contains (vi_for_tree, t);
2713 if (slot == NULL)
3e5937d7 2714 return get_varinfo (create_variable_info_for (t, alias_get_name (t)));
c58936b6 2715
15814ba0 2716 return (varinfo_t) *slot;
910fdc79
DB
2717}
2718
b14e9388 2719/* Get a scalar constraint expression for a new temporary variable. */
910fdc79
DB
2720
2721static struct constraint_expr
b14e9388 2722new_scalar_tmp_constraint_exp (const char *name)
910fdc79 2723{
b14e9388 2724 struct constraint_expr tmp;
b14e9388 2725 varinfo_t vi;
910fdc79 2726
0bbf2ffa 2727 vi = new_var_info (NULL_TREE, name);
b14e9388
RG
2728 vi->offset = 0;
2729 vi->size = -1;
2730 vi->fullsize = -1;
2731 vi->is_full_var = 1;
c0d459f0 2732
b14e9388
RG
2733 tmp.var = vi->id;
2734 tmp.type = SCALAR;
2735 tmp.offset = 0;
c0d459f0 2736
b14e9388 2737 return tmp;
c0d459f0
RG
2738}
2739
2740/* Get a constraint expression vector from an SSA_VAR_P node.
2741 If address_p is true, the result will be taken its address of. */
2742
2743static void
2744get_constraint_for_ssa_var (tree t, VEC(ce_s, heap) **results, bool address_p)
2745{
2746 struct constraint_expr cexpr;
2747 varinfo_t vi;
2748
2749 /* We allow FUNCTION_DECLs here even though it doesn't make much sense. */
b2ec94d4 2750 gcc_assert (TREE_CODE (t) == SSA_NAME || DECL_P (t));
910fdc79
DB
2751
2752 /* For parameters, get at the points-to set for the actual parm
2753 decl. */
c58936b6 2754 if (TREE_CODE (t) == SSA_NAME
b2ec94d4 2755 && SSA_NAME_IS_DEFAULT_DEF (t)
6938f93f 2756 && (TREE_CODE (SSA_NAME_VAR (t)) == PARM_DECL
b2ec94d4 2757 || TREE_CODE (SSA_NAME_VAR (t)) == RESULT_DECL))
c0d459f0
RG
2758 {
2759 get_constraint_for_ssa_var (SSA_NAME_VAR (t), results, address_p);
2760 return;
2761 }
910fdc79 2762
9c7c9f10
RG
2763 /* For global variables resort to the alias target. */
2764 if (TREE_CODE (t) == VAR_DECL
2765 && (TREE_STATIC (t) || DECL_EXTERNAL (t)))
2766 {
2767 struct varpool_node *node = varpool_get_node (t);
2768 if (node && node->alias)
2769 {
2770 node = varpool_variable_node (node, NULL);
960bfb69 2771 t = node->symbol.decl;
9c7c9f10
RG
2772 }
2773 }
2774
c0d459f0
RG
2775 vi = get_vi_for_tree (t);
2776 cexpr.var = vi->id;
910fdc79 2777 cexpr.type = SCALAR;
c0d459f0 2778 cexpr.offset = 0;
47bcb538
DB
2779 /* If we determine the result is "anything", and we know this is readonly,
2780 say it points to readonly memory instead. */
2781 if (cexpr.var == anything_id && TREE_READONLY (t))
910fdc79 2782 {
c0d459f0 2783 gcc_unreachable ();
3e5937d7 2784 cexpr.type = ADDRESSOF;
910fdc79
DB
2785 cexpr.var = readonly_id;
2786 }
c58936b6 2787
c0d459f0
RG
2788 /* If we are not taking the address of the constraint expr, add all
2789 sub-fiels of the variable as well. */
de925a03
RG
2790 if (!address_p
2791 && !vi->is_full_var)
c0d459f0
RG
2792 {
2793 for (; vi; vi = vi->next)
2794 {
2795 cexpr.var = vi->id;
2796 VEC_safe_push (ce_s, heap, *results, &cexpr);
2797 }
2798 return;
2799 }
2800
2801 VEC_safe_push (ce_s, heap, *results, &cexpr);
910fdc79
DB
2802}
2803
faf2ecc5
RG
2804/* Process constraint T, performing various simplifications and then
2805 adding it to our list of overall constraints. */
910fdc79
DB
2806
2807static void
faf2ecc5 2808process_constraint (constraint_t t)
910fdc79
DB
2809{
2810 struct constraint_expr rhs = t->rhs;
2811 struct constraint_expr lhs = t->lhs;
c58936b6 2812
910fdc79
DB
2813 gcc_assert (rhs.var < VEC_length (varinfo_t, varmap));
2814 gcc_assert (lhs.var < VEC_length (varinfo_t, varmap));
2815
5006671f
RG
2816 /* If we didn't get any useful constraint from the lhs we get
2817 &ANYTHING as fallback from get_constraint_for. Deal with
2818 it here by turning it into *ANYTHING. */
2819 if (lhs.type == ADDRESSOF
2820 && lhs.var == anything_id)
2821 lhs.type = DEREF;
2822
2823 /* ADDRESSOF on the lhs is invalid. */
2824 gcc_assert (lhs.type != ADDRESSOF);
910fdc79 2825
3c323b52
RG
2826 /* We shouldn't add constraints from things that cannot have pointers.
2827 It's not completely trivial to avoid in the callers, so do it here. */
2828 if (rhs.type != ADDRESSOF
2829 && !get_varinfo (rhs.var)->may_have_pointers)
2830 return;
2831
2832 /* Likewise adding to the solution of a non-pointer var isn't useful. */
2833 if (!get_varinfo (lhs.var)->may_have_pointers)
2834 return;
2835
910fdc79 2836 /* This can happen in our IR with things like n->a = *p */
5006671f 2837 if (rhs.type == DEREF && lhs.type == DEREF && rhs.var != anything_id)
910fdc79
DB
2838 {
2839 /* Split into tmp = *rhs, *lhs = tmp */
b14e9388
RG
2840 struct constraint_expr tmplhs;
2841 tmplhs = new_scalar_tmp_constraint_exp ("doubledereftmp");
faf2ecc5
RG
2842 process_constraint (new_constraint (tmplhs, rhs));
2843 process_constraint (new_constraint (lhs, tmplhs));
7b765bed
DB
2844 }
2845 else if (rhs.type == ADDRESSOF && lhs.type == DEREF)
2846 {
2847 /* Split into tmp = &rhs, *lhs = tmp */
b14e9388
RG
2848 struct constraint_expr tmplhs;
2849 tmplhs = new_scalar_tmp_constraint_exp ("derefaddrtmp");
faf2ecc5
RG
2850 process_constraint (new_constraint (tmplhs, rhs));
2851 process_constraint (new_constraint (lhs, tmplhs));
910fdc79 2852 }
910fdc79
DB
2853 else
2854 {
3e5937d7 2855 gcc_assert (rhs.type != ADDRESSOF || rhs.offset == 0);
b5efa470 2856 VEC_safe_push (constraint_t, heap, constraints, t);
910fdc79
DB
2857 }
2858}
2859
2860
2861/* Return the position, in bits, of FIELD_DECL from the beginning of its
2862 structure. */
2863
ee7d4b57 2864static HOST_WIDE_INT
910fdc79
DB
2865bitpos_of_field (const tree fdecl)
2866{
ee7d4b57
RG
2867 if (!host_integerp (DECL_FIELD_OFFSET (fdecl), 0)
2868 || !host_integerp (DECL_FIELD_BIT_OFFSET (fdecl), 0))
910fdc79 2869 return -1;
c58936b6 2870
ea57f573 2871 return (TREE_INT_CST_LOW (DECL_FIELD_OFFSET (fdecl)) * BITS_PER_UNIT
ee7d4b57 2872 + TREE_INT_CST_LOW (DECL_FIELD_BIT_OFFSET (fdecl)));
910fdc79
DB
2873}
2874
2875
e5bae89b
RG
2876/* Get constraint expressions for offsetting PTR by OFFSET. Stores the
2877 resulting constraint expressions in *RESULTS. */
2878
2879static void
2880get_constraint_for_ptr_offset (tree ptr, tree offset,
2881 VEC (ce_s, heap) **results)
2882{
bd02b3a0 2883 struct constraint_expr c;
e5bae89b 2884 unsigned int j, n;
97919ae7 2885 HOST_WIDE_INT rhsoffset;
e5bae89b
RG
2886
2887 /* If we do not do field-sensitive PTA adding offsets to pointers
2888 does not change the points-to solution. */
2889 if (!use_field_sensitive)
2890 {
ed6c4831 2891 get_constraint_for_rhs (ptr, results);
e5bae89b
RG
2892 return;
2893 }
2894
2895 /* If the offset is not a non-negative integer constant that fits
2896 in a HOST_WIDE_INT, we have to fall back to a conservative
2897 solution which includes all sub-fields of all pointed-to
5006671f 2898 variables of ptr. */
779704e7 2899 if (offset == NULL_TREE
97919ae7 2900 || TREE_CODE (offset) != INTEGER_CST)
5006671f
RG
2901 rhsoffset = UNKNOWN_OFFSET;
2902 else
e5bae89b 2903 {
97919ae7
RG
2904 /* Sign-extend the offset. */
2905 double_int soffset
2906 = double_int_sext (tree_to_double_int (offset),
2907 TYPE_PRECISION (TREE_TYPE (offset)));
2908 if (!double_int_fits_in_shwi_p (soffset))
5006671f 2909 rhsoffset = UNKNOWN_OFFSET;
97919ae7
RG
2910 else
2911 {
2912 /* Make sure the bit-offset also fits. */
2913 HOST_WIDE_INT rhsunitoffset = soffset.low;
2914 rhsoffset = rhsunitoffset * BITS_PER_UNIT;
2915 if (rhsunitoffset != rhsoffset / BITS_PER_UNIT)
2916 rhsoffset = UNKNOWN_OFFSET;
2917 }
e5bae89b
RG
2918 }
2919
ed6c4831 2920 get_constraint_for_rhs (ptr, results);
e5bae89b
RG
2921 if (rhsoffset == 0)
2922 return;
2923
2924 /* As we are eventually appending to the solution do not use
2925 VEC_iterate here. */
2926 n = VEC_length (ce_s, *results);
2927 for (j = 0; j < n; j++)
2928 {
2929 varinfo_t curr;
0823efed 2930 c = VEC_index (ce_s, *results, j);
bd02b3a0 2931 curr = get_varinfo (c.var);
e5bae89b 2932
bd02b3a0 2933 if (c.type == ADDRESSOF
5006671f
RG
2934 /* If this varinfo represents a full variable just use it. */
2935 && curr->is_full_var)
bd02b3a0
RG
2936 c.offset = 0;
2937 else if (c.type == ADDRESSOF
5006671f
RG
2938 /* If we do not know the offset add all subfields. */
2939 && rhsoffset == UNKNOWN_OFFSET)
2940 {
2941 varinfo_t temp = lookup_vi_for_tree (curr->decl);
2942 do
2943 {
2944 struct constraint_expr c2;
2945 c2.var = temp->id;
2946 c2.type = ADDRESSOF;
2947 c2.offset = 0;
bd02b3a0 2948 if (c2.var != c.var)
779704e7 2949 VEC_safe_push (ce_s, heap, *results, &c2);
5006671f
RG
2950 temp = temp->next;
2951 }
2952 while (temp);
2953 }
bd02b3a0 2954 else if (c.type == ADDRESSOF)
e5bae89b 2955 {
5006671f
RG
2956 varinfo_t temp;
2957 unsigned HOST_WIDE_INT offset = curr->offset + rhsoffset;
e5bae89b
RG
2958
2959 /* Search the sub-field which overlaps with the
5006671f
RG
2960 pointed-to offset. If the result is outside of the variable
2961 we have to provide a conservative result, as the variable is
2962 still reachable from the resulting pointer (even though it
2963 technically cannot point to anything). The last and first
2964 sub-fields are such conservative results.
e5bae89b
RG
2965 ??? If we always had a sub-field for &object + 1 then
2966 we could represent this in a more precise way. */
5006671f
RG
2967 if (rhsoffset < 0
2968 && curr->offset < offset)
2969 offset = 0;
2970 temp = first_or_preceding_vi_for_offset (curr, offset);
e5bae89b
RG
2971
2972 /* If the found variable is not exactly at the pointed to
2973 result, we have to include the next variable in the
2974 solution as well. Otherwise two increments by offset / 2
2975 do not result in the same or a conservative superset
2976 solution. */
5006671f 2977 if (temp->offset != offset
e5bae89b
RG
2978 && temp->next != NULL)
2979 {
2980 struct constraint_expr c2;
2981 c2.var = temp->next->id;
2982 c2.type = ADDRESSOF;
2983 c2.offset = 0;
2984 VEC_safe_push (ce_s, heap, *results, &c2);
2985 }
bd02b3a0
RG
2986 c.var = temp->id;
2987 c.offset = 0;
e5bae89b 2988 }
e5bae89b 2989 else
bd02b3a0
RG
2990 c.offset = rhsoffset;
2991
0823efed 2992 VEC_replace (ce_s, *results, j, c);
e5bae89b
RG
2993 }
2994}
2995
2996
c0d459f0 2997/* Given a COMPONENT_REF T, return the constraint_expr vector for it.
ed6c4831
RG
2998 If address_p is true the result will be taken its address of.
2999 If lhs_p is true then the constraint expression is assumed to be used
3000 as the lhs. */
910fdc79 3001
4ee00913 3002static void
c0d459f0 3003get_constraint_for_component_ref (tree t, VEC(ce_s, heap) **results,
ed6c4831 3004 bool address_p, bool lhs_p)
910fdc79 3005{
4ee00913 3006 tree orig_t = t;
b1347638 3007 HOST_WIDE_INT bitsize = -1;
6bec9271 3008 HOST_WIDE_INT bitmaxsize = -1;
910fdc79 3009 HOST_WIDE_INT bitpos;
910fdc79 3010 tree forzero;
4ee00913 3011 struct constraint_expr *result;
910fdc79
DB
3012
3013 /* Some people like to do cute things like take the address of
3014 &0->a.b */
3015 forzero = t;
2ea9dc64 3016 while (handled_component_p (forzero)
70f34814
RG
3017 || INDIRECT_REF_P (forzero)
3018 || TREE_CODE (forzero) == MEM_REF)
4ee00913 3019 forzero = TREE_OPERAND (forzero, 0);
910fdc79 3020
c58936b6 3021 if (CONSTANT_CLASS_P (forzero) && integer_zerop (forzero))
910fdc79 3022 {
4ee00913 3023 struct constraint_expr temp;
c58936b6 3024
4ee00913
DB
3025 temp.offset = 0;
3026 temp.var = integer_id;
3027 temp.type = SCALAR;
3028 VEC_safe_push (ce_s, heap, *results, &temp);
3029 return;
910fdc79 3030 }
c58936b6 3031
ed6c4831
RG
3032 /* Handle type-punning through unions. If we are extracting a pointer
3033 from a union via a possibly type-punning access that pointer
3034 points to anything, similar to a conversion of an integer to
3035 a pointer. */
3036 if (!lhs_p)
3037 {
3038 tree u;
3039 for (u = t;
3040 TREE_CODE (u) == COMPONENT_REF || TREE_CODE (u) == ARRAY_REF;
3041 u = TREE_OPERAND (u, 0))
3042 if (TREE_CODE (u) == COMPONENT_REF
3043 && TREE_CODE (TREE_TYPE (TREE_OPERAND (u, 0))) == UNION_TYPE)
3044 {
3045 struct constraint_expr temp;
3046
3047 temp.offset = 0;
3048 temp.var = anything_id;
3049 temp.type = ADDRESSOF;
3050 VEC_safe_push (ce_s, heap, *results, &temp);
3051 return;
3052 }
3053 }
3054
6bec9271 3055 t = get_ref_base_and_extent (t, &bitpos, &bitsize, &bitmaxsize);
21392f19 3056
c0d459f0
RG
3057 /* Pretend to take the address of the base, we'll take care of
3058 adding the required subset of sub-fields below. */
ed6c4831 3059 get_constraint_for_1 (t, results, true, lhs_p);
c0d459f0 3060 gcc_assert (VEC_length (ce_s, *results) == 1);
0823efed 3061 result = &VEC_last (ce_s, *results);
910fdc79 3062
e5bae89b
RG
3063 if (result->type == SCALAR
3064 && get_varinfo (result->var)->is_full_var)
3065 /* For single-field vars do not bother about the offset. */
3066 result->offset = 0;
3067 else if (result->type == SCALAR)
910fdc79
DB
3068 {
3069 /* In languages like C, you can access one past the end of an
3070 array. You aren't allowed to dereference it, so we can
3071 ignore this constraint. When we handle pointer subtraction,
3072 we may have to do something cute here. */
c58936b6 3073
c0d459f0 3074 if ((unsigned HOST_WIDE_INT)bitpos < get_varinfo (result->var)->fullsize
18455d17 3075 && bitmaxsize != 0)
dd68d988
DB
3076 {
3077 /* It's also not true that the constraint will actually start at the
3078 right offset, it may start in some padding. We only care about
3079 setting the constraint to the first actual field it touches, so
c58936b6 3080 walk to find it. */
c0d459f0 3081 struct constraint_expr cexpr = *result;
dd68d988 3082 varinfo_t curr;
c0d459f0
RG
3083 VEC_pop (ce_s, *results);
3084 cexpr.offset = 0;
3085 for (curr = get_varinfo (cexpr.var); curr; curr = curr->next)
dd68d988 3086 {
63d195d5 3087 if (ranges_overlap_p (curr->offset, curr->size,
c0d459f0 3088 bitpos, bitmaxsize))
dd68d988 3089 {
c0d459f0
RG
3090 cexpr.var = curr->id;
3091 VEC_safe_push (ce_s, heap, *results, &cexpr);
3092 if (address_p)
3093 break;
dd68d988
DB
3094 }
3095 }
e5bae89b
RG
3096 /* If we are going to take the address of this field then
3097 to be able to compute reachability correctly add at least
3098 the last field of the variable. */
3099 if (address_p
3100 && VEC_length (ce_s, *results) == 0)
3101 {
3102 curr = get_varinfo (cexpr.var);
3103 while (curr->next != NULL)
3104 curr = curr->next;
3105 cexpr.var = curr->id;
3106 VEC_safe_push (ce_s, heap, *results, &cexpr);
3107 }
0ba0772b 3108 else if (VEC_length (ce_s, *results) == 0)
e5bae89b
RG
3109 /* Assert that we found *some* field there. The user couldn't be
3110 accessing *only* padding. */
3111 /* Still the user could access one past the end of an array
3112 embedded in a struct resulting in accessing *only* padding. */
0ba0772b
RB
3113 /* Or accessing only padding via type-punning to a type
3114 that has a filed just in padding space. */
3115 {
3116 cexpr.type = SCALAR;
3117 cexpr.var = anything_id;
3118 cexpr.offset = 0;
3119 VEC_safe_push (ce_s, heap, *results, &cexpr);
3120 }
dd68d988 3121 }
18455d17
RG
3122 else if (bitmaxsize == 0)
3123 {
3124 if (dump_file && (dump_flags & TDF_DETAILS))
3125 fprintf (dump_file, "Access to zero-sized part of variable,"
3126 "ignoring\n");
3127 }
910fdc79
DB
3128 else
3129 if (dump_file && (dump_flags & TDF_DETAILS))
3130 fprintf (dump_file, "Access to past the end of variable, ignoring\n");
910fdc79 3131 }
5006671f 3132 else if (result->type == DEREF)
7b765bed 3133 {
5006671f
RG
3134 /* If we do not know exactly where the access goes say so. Note
3135 that only for non-structure accesses we know that we access
3136 at most one subfiled of any variable. */
3137 if (bitpos == -1
3138 || bitsize != bitmaxsize
1c09321c
RG
3139 || AGGREGATE_TYPE_P (TREE_TYPE (orig_t))
3140 || result->offset == UNKNOWN_OFFSET)
5006671f
RG
3141 result->offset = UNKNOWN_OFFSET;
3142 else
1c09321c 3143 result->offset += bitpos;
7b765bed 3144 }
b51605c4
RG
3145 else if (result->type == ADDRESSOF)
3146 {
3147 /* We can end up here for component references on a
3148 VIEW_CONVERT_EXPR <>(&foobar). */
3149 result->type = SCALAR;
3150 result->var = anything_id;
3151 result->offset = 0;
3152 }
c0d459f0 3153 else
5006671f 3154 gcc_unreachable ();
910fdc79
DB
3155}
3156
3157
3158/* Dereference the constraint expression CONS, and return the result.
3159 DEREF (ADDRESSOF) = SCALAR
3160 DEREF (SCALAR) = DEREF
3161 DEREF (DEREF) = (temp = DEREF1; result = DEREF(temp))
3162 This is needed so that we can handle dereferencing DEREF constraints. */
3163
4ee00913
DB
3164static void
3165do_deref (VEC (ce_s, heap) **constraints)
910fdc79 3166{
4ee00913
DB
3167 struct constraint_expr *c;
3168 unsigned int i = 0;
c58936b6 3169
ac47786e 3170 FOR_EACH_VEC_ELT (ce_s, *constraints, i, c)
910fdc79 3171 {
4ee00913
DB
3172 if (c->type == SCALAR)
3173 c->type = DEREF;
3174 else if (c->type == ADDRESSOF)
3175 c->type = SCALAR;
3176 else if (c->type == DEREF)
3177 {
b14e9388
RG
3178 struct constraint_expr tmplhs;
3179 tmplhs = new_scalar_tmp_constraint_exp ("dereftmp");
4ee00913
DB
3180 process_constraint (new_constraint (tmplhs, *c));
3181 c->var = tmplhs.var;
3182 }
3183 else
3184 gcc_unreachable ();
910fdc79 3185 }
910fdc79
DB
3186}
3187
1d24fdd9
RG
3188/* Given a tree T, return the constraint expression for taking the
3189 address of it. */
3190
3191static void
3192get_constraint_for_address_of (tree t, VEC (ce_s, heap) **results)
3193{
3194 struct constraint_expr *c;
3195 unsigned int i;
3196
ed6c4831 3197 get_constraint_for_1 (t, results, true, true);
1d24fdd9 3198
ac47786e 3199 FOR_EACH_VEC_ELT (ce_s, *results, i, c)
1d24fdd9
RG
3200 {
3201 if (c->type == DEREF)
3202 c->type = SCALAR;
3203 else
3204 c->type = ADDRESSOF;
3205 }
3206}
3207
910fdc79
DB
3208/* Given a tree T, return the constraint expression for it. */
3209
4ee00913 3210static void
ed6c4831
RG
3211get_constraint_for_1 (tree t, VEC (ce_s, heap) **results, bool address_p,
3212 bool lhs_p)
910fdc79
DB
3213{
3214 struct constraint_expr temp;
3215
3216 /* x = integer is all glommed to a single variable, which doesn't
3217 point to anything by itself. That is, of course, unless it is an
3218 integer constant being treated as a pointer, in which case, we
3219 will return that this is really the addressof anything. This
3220 happens below, since it will fall into the default case. The only
3221 case we know something about an integer treated like a pointer is
3222 when it is the NULL pointer, and then we just say it points to
89ebafc6
PB
3223 NULL.
3224
3225 Do not do that if -fno-delete-null-pointer-checks though, because
3226 in that case *NULL does not fail, so it _should_ alias *anything.
3227 It is not worth adding a new option or renaming the existing one,
3228 since this case is relatively obscure. */
8eb7bc3c
RG
3229 if ((TREE_CODE (t) == INTEGER_CST
3230 && integer_zerop (t))
3231 /* The only valid CONSTRUCTORs in gimple with pointer typed
3232 elements are zero-initializer. But in IPA mode we also
3233 process global initializers, so verify at least. */
3234 || (TREE_CODE (t) == CONSTRUCTOR
3235 && CONSTRUCTOR_NELTS (t) == 0))
3236 {
3237 if (flag_delete_null_pointer_checks)
3238 temp.var = nothing_id;
3239 else
1f181fde 3240 temp.var = nonlocal_id;
910fdc79
DB
3241 temp.type = ADDRESSOF;
3242 temp.offset = 0;
4ee00913
DB
3243 VEC_safe_push (ce_s, heap, *results, &temp);
3244 return;
910fdc79
DB
3245 }
3246
bd1f29d9
EB
3247 /* String constants are read-only. */
3248 if (TREE_CODE (t) == STRING_CST)
3249 {
3250 temp.var = readonly_id;
3251 temp.type = SCALAR;
3252 temp.offset = 0;
3253 VEC_safe_push (ce_s, heap, *results, &temp);
3254 return;
3255 }
3256
910fdc79
DB
3257 switch (TREE_CODE_CLASS (TREE_CODE (t)))
3258 {
3259 case tcc_expression:
3260 {
3261 switch (TREE_CODE (t))
3262 {
3263 case ADDR_EXPR:
1d24fdd9
RG
3264 get_constraint_for_address_of (TREE_OPERAND (t, 0), results);
3265 return;
e5bae89b 3266 default:;
910fdc79 3267 }
e5bae89b 3268 break;
910fdc79
DB
3269 }
3270 case tcc_reference:
3271 {
3272 switch (TREE_CODE (t))
3273 {
70f34814 3274 case MEM_REF:
910fdc79 3275 {
de2184c0 3276 struct constraint_expr cs;
343b2efc 3277 varinfo_t vi, curr;
97919ae7
RG
3278 get_constraint_for_ptr_offset (TREE_OPERAND (t, 0),
3279 TREE_OPERAND (t, 1), results);
4ee00913 3280 do_deref (results);
343b2efc
RG
3281
3282 /* If we are not taking the address then make sure to process
3283 all subvariables we might access. */
1a5d20a4
RG
3284 if (address_p)
3285 return;
3286
0823efed 3287 cs = VEC_last (ce_s, *results);
b4cf8c9d
RG
3288 if (cs.type == DEREF
3289 && type_can_have_subvars (TREE_TYPE (t)))
1a5d20a4
RG
3290 {
3291 /* For dereferences this means we have to defer it
3292 to solving time. */
0823efed 3293 VEC_last (ce_s, *results).offset = UNKNOWN_OFFSET;
1a5d20a4
RG
3294 return;
3295 }
3296 if (cs.type != SCALAR)
343b2efc
RG
3297 return;
3298
de2184c0 3299 vi = get_varinfo (cs.var);
343b2efc
RG
3300 curr = vi->next;
3301 if (!vi->is_full_var
3302 && curr)
3303 {
3304 unsigned HOST_WIDE_INT size;
3305 if (host_integerp (TYPE_SIZE (TREE_TYPE (t)), 1))
3306 size = TREE_INT_CST_LOW (TYPE_SIZE (TREE_TYPE (t)));
3307 else
3308 size = -1;
3309 for (; curr; curr = curr->next)
3310 {
3311 if (curr->offset - vi->offset < size)
3312 {
343b2efc
RG
3313 cs.var = curr->id;
3314 VEC_safe_push (ce_s, heap, *results, &cs);
3315 }
3316 else
3317 break;
3318 }
3319 }
4ee00913 3320 return;
910fdc79
DB
3321 }
3322 case ARRAY_REF:
32961db5 3323 case ARRAY_RANGE_REF:
910fdc79 3324 case COMPONENT_REF:
ed6c4831 3325 get_constraint_for_component_ref (t, results, address_p, lhs_p);
4ee00913 3326 return;
5006671f 3327 case VIEW_CONVERT_EXPR:
ed6c4831
RG
3328 get_constraint_for_1 (TREE_OPERAND (t, 0), results, address_p,
3329 lhs_p);
5006671f
RG
3330 return;
3331 /* We are missing handling for TARGET_MEM_REF here. */
e5bae89b 3332 default:;
910fdc79 3333 }
e5bae89b 3334 break;
910fdc79 3335 }
910fdc79
DB
3336 case tcc_exceptional:
3337 {
3338 switch (TREE_CODE (t))
3339 {
910fdc79 3340 case SSA_NAME:
4ee00913 3341 {
c0d459f0 3342 get_constraint_for_ssa_var (t, results, address_p);
4ee00913
DB
3343 return;
3344 }
47d8a903
RG
3345 case CONSTRUCTOR:
3346 {
3347 unsigned int i;
3348 tree val;
3349 VEC (ce_s, heap) *tmp = NULL;
3350 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (t), i, val)
3351 {
3352 struct constraint_expr *rhsp;
3353 unsigned j;
ed6c4831 3354 get_constraint_for_1 (val, &tmp, address_p, lhs_p);
ac47786e 3355 FOR_EACH_VEC_ELT (ce_s, tmp, j, rhsp)
47d8a903
RG
3356 VEC_safe_push (ce_s, heap, *results, rhsp);
3357 VEC_truncate (ce_s, tmp, 0);
3358 }
3359 VEC_free (ce_s, heap, tmp);
3360 /* We do not know whether the constructor was complete,
3361 so technically we have to add &NOTHING or &ANYTHING
3362 like we do for an empty constructor as well. */
3363 return;
3364 }
e5bae89b 3365 default:;
910fdc79 3366 }
e5bae89b 3367 break;
910fdc79
DB
3368 }
3369 case tcc_declaration:
4ee00913 3370 {
c0d459f0 3371 get_constraint_for_ssa_var (t, results, address_p);
4ee00913
DB
3372 return;
3373 }
1f181fde
RG
3374 case tcc_constant:
3375 {
3376 /* We cannot refer to automatic variables through constants. */
3377 temp.type = ADDRESSOF;
3378 temp.var = nonlocal_id;
3379 temp.offset = 0;
3380 VEC_safe_push (ce_s, heap, *results, &temp);
3381 return;
3382 }
e5bae89b 3383 default:;
910fdc79 3384 }
e5bae89b
RG
3385
3386 /* The default fallback is a constraint from anything. */
3387 temp.type = ADDRESSOF;
3388 temp.var = anything_id;
3389 temp.offset = 0;
3390 VEC_safe_push (ce_s, heap, *results, &temp);
910fdc79
DB
3391}
3392
c0d459f0
RG
3393/* Given a gimple tree T, return the constraint expression vector for it. */
3394
3395static void
3396get_constraint_for (tree t, VEC (ce_s, heap) **results)
3397{
3398 gcc_assert (VEC_length (ce_s, *results) == 0);
3399
ed6c4831
RG
3400 get_constraint_for_1 (t, results, false, true);
3401}
3402
3403/* Given a gimple tree T, return the constraint expression vector for it
3404 to be used as the rhs of a constraint. */
3405
3406static void
3407get_constraint_for_rhs (tree t, VEC (ce_s, heap) **results)
3408{
3409 gcc_assert (VEC_length (ce_s, *results) == 0);
3410
3411 get_constraint_for_1 (t, results, false, false);
c0d459f0 3412}
910fdc79 3413
779704e7
RG
3414
3415/* Efficiently generates constraints from all entries in *RHSC to all
3416 entries in *LHSC. */
3417
3418static void
3419process_all_all_constraints (VEC (ce_s, heap) *lhsc, VEC (ce_s, heap) *rhsc)
3420{
3421 struct constraint_expr *lhsp, *rhsp;
3422 unsigned i, j;
3423
3424 if (VEC_length (ce_s, lhsc) <= 1
3425 || VEC_length (ce_s, rhsc) <= 1)
3426 {
ac47786e
NF
3427 FOR_EACH_VEC_ELT (ce_s, lhsc, i, lhsp)
3428 FOR_EACH_VEC_ELT (ce_s, rhsc, j, rhsp)
779704e7
RG
3429 process_constraint (new_constraint (*lhsp, *rhsp));
3430 }
3431 else
3432 {
3433 struct constraint_expr tmp;
b14e9388 3434 tmp = new_scalar_tmp_constraint_exp ("allalltmp");
ac47786e 3435 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
779704e7 3436 process_constraint (new_constraint (tmp, *rhsp));
ac47786e 3437 FOR_EACH_VEC_ELT (ce_s, lhsc, i, lhsp)
779704e7
RG
3438 process_constraint (new_constraint (*lhsp, tmp));
3439 }
3440}
3441
910fdc79
DB
3442/* Handle aggregate copies by expanding into copies of the respective
3443 fields of the structures. */
3444
3445static void
3446do_structure_copy (tree lhsop, tree rhsop)
3447{
5006671f 3448 struct constraint_expr *lhsp, *rhsp;
4ee00913 3449 VEC (ce_s, heap) *lhsc = NULL, *rhsc = NULL;
5006671f
RG
3450 unsigned j;
3451
3452 get_constraint_for (lhsop, &lhsc);
ed6c4831 3453 get_constraint_for_rhs (rhsop, &rhsc);
0823efed
DN
3454 lhsp = &VEC_index (ce_s, lhsc, 0);
3455 rhsp = &VEC_index (ce_s, rhsc, 0);
5006671f
RG
3456 if (lhsp->type == DEREF
3457 || (lhsp->type == ADDRESSOF && lhsp->var == anything_id)
3458 || rhsp->type == DEREF)
b28ae58f
RG
3459 {
3460 if (lhsp->type == DEREF)
3461 {
3462 gcc_assert (VEC_length (ce_s, lhsc) == 1);
3463 lhsp->offset = UNKNOWN_OFFSET;
3464 }
3465 if (rhsp->type == DEREF)
3466 {
3467 gcc_assert (VEC_length (ce_s, rhsc) == 1);
3468 rhsp->offset = UNKNOWN_OFFSET;
3469 }
3470 process_all_all_constraints (lhsc, rhsc);
3471 }
5006671f
RG
3472 else if (lhsp->type == SCALAR
3473 && (rhsp->type == SCALAR
3474 || rhsp->type == ADDRESSOF))
910fdc79 3475 {
5006671f
RG
3476 HOST_WIDE_INT lhssize, lhsmaxsize, lhsoffset;
3477 HOST_WIDE_INT rhssize, rhsmaxsize, rhsoffset;
3478 unsigned k = 0;
0f900dfa
JJ
3479 get_ref_base_and_extent (lhsop, &lhsoffset, &lhssize, &lhsmaxsize);
3480 get_ref_base_and_extent (rhsop, &rhsoffset, &rhssize, &rhsmaxsize);
5006671f 3481 for (j = 0; VEC_iterate (ce_s, lhsc, j, lhsp);)
910fdc79 3482 {
5006671f 3483 varinfo_t lhsv, rhsv;
0823efed 3484 rhsp = &VEC_index (ce_s, rhsc, k);
5006671f
RG
3485 lhsv = get_varinfo (lhsp->var);
3486 rhsv = get_varinfo (rhsp->var);
3487 if (lhsv->may_have_pointers
c636a4fb
RG
3488 && (lhsv->is_full_var
3489 || rhsv->is_full_var
3490 || ranges_overlap_p (lhsv->offset + rhsoffset, lhsv->size,
3491 rhsv->offset + lhsoffset, rhsv->size)))
5006671f 3492 process_constraint (new_constraint (*lhsp, *rhsp));
c636a4fb
RG
3493 if (!rhsv->is_full_var
3494 && (lhsv->is_full_var
3495 || (lhsv->offset + rhsoffset + lhsv->size
3496 > rhsv->offset + lhsoffset + rhsv->size)))
5006671f
RG
3497 {
3498 ++k;
3499 if (k >= VEC_length (ce_s, rhsc))
3500 break;
3501 }
910fdc79 3502 else
5006671f 3503 ++j;
910fdc79
DB
3504 }
3505 }
3506 else
5006671f 3507 gcc_unreachable ();
a5eadacc 3508
5006671f
RG
3509 VEC_free (ce_s, heap, lhsc);
3510 VEC_free (ce_s, heap, rhsc);
910fdc79
DB
3511}
3512
cb89b4b0 3513/* Create constraints ID = { rhsc }. */
b7091901
RG
3514
3515static void
cb89b4b0 3516make_constraints_to (unsigned id, VEC(ce_s, heap) *rhsc)
b7091901 3517{
b7091901
RG
3518 struct constraint_expr *c;
3519 struct constraint_expr includes;
3520 unsigned int j;
3521
3522 includes.var = id;
3523 includes.offset = 0;
3524 includes.type = SCALAR;
3525
ac47786e 3526 FOR_EACH_VEC_ELT (ce_s, rhsc, j, c)
faf2ecc5 3527 process_constraint (new_constraint (includes, *c));
cb89b4b0
RG
3528}
3529
3530/* Create a constraint ID = OP. */
3531
3532static void
3533make_constraint_to (unsigned id, tree op)
3534{
3535 VEC(ce_s, heap) *rhsc = NULL;
3536 get_constraint_for_rhs (op, &rhsc);
3537 make_constraints_to (id, rhsc);
b7091901
RG
3538 VEC_free (ce_s, heap, rhsc);
3539}
3540
74d27244
RG
3541/* Create a constraint ID = &FROM. */
3542
3543static void
3544make_constraint_from (varinfo_t vi, int from)
3545{
3546 struct constraint_expr lhs, rhs;
3547
3548 lhs.var = vi->id;
3549 lhs.offset = 0;
3550 lhs.type = SCALAR;
3551
3552 rhs.var = from;
3553 rhs.offset = 0;
3554 rhs.type = ADDRESSOF;
3555 process_constraint (new_constraint (lhs, rhs));
3556}
3557
3558/* Create a constraint ID = FROM. */
3559
3560static void
3561make_copy_constraint (varinfo_t vi, int from)
3562{
3563 struct constraint_expr lhs, rhs;
3564
3565 lhs.var = vi->id;
3566 lhs.offset = 0;
3567 lhs.type = SCALAR;
3568
3569 rhs.var = from;
3570 rhs.offset = 0;
3571 rhs.type = SCALAR;
3572 process_constraint (new_constraint (lhs, rhs));
3573}
3574
b7091901
RG
3575/* Make constraints necessary to make OP escape. */
3576
3577static void
3578make_escape_constraint (tree op)
3579{
3580 make_constraint_to (escaped_id, op);
3581}
3582
3e8542ca
RG
3583/* Add constraints to that the solution of VI is transitively closed. */
3584
3585static void
3586make_transitive_closure_constraints (varinfo_t vi)
3587{
3588 struct constraint_expr lhs, rhs;
3589
3590 /* VAR = *VAR; */
3591 lhs.type = SCALAR;
3592 lhs.var = vi->id;
3593 lhs.offset = 0;
3594 rhs.type = DEREF;
3595 rhs.var = vi->id;
3596 rhs.offset = 0;
3597 process_constraint (new_constraint (lhs, rhs));
3598
3599 /* VAR = VAR + UNKNOWN; */
3600 lhs.type = SCALAR;
3601 lhs.var = vi->id;
3602 lhs.offset = 0;
3603 rhs.type = SCALAR;
3604 rhs.var = vi->id;
3605 rhs.offset = UNKNOWN_OFFSET;
3606 process_constraint (new_constraint (lhs, rhs));
3607}
3608
7d6e2521
RG
3609/* Temporary storage for fake var decls. */
3610struct obstack fake_var_decl_obstack;
3611
3612/* Build a fake VAR_DECL acting as referrer to a DECL_UID. */
3613
3614static tree
3615build_fake_var_decl (tree type)
3616{
3617 tree decl = (tree) XOBNEW (&fake_var_decl_obstack, struct tree_var_decl);
3618 memset (decl, 0, sizeof (struct tree_var_decl));
3619 TREE_SET_CODE (decl, VAR_DECL);
3620 TREE_TYPE (decl) = type;
3621 DECL_UID (decl) = allocate_decl_uid ();
3622 SET_DECL_PT_UID (decl, -1);
3623 layout_decl (decl, 0);
3624 return decl;
3625}
3626
0b7b376d
RG
3627/* Create a new artificial heap variable with NAME.
3628 Return the created variable. */
74d27244
RG
3629
3630static varinfo_t
7d6e2521 3631make_heapvar (const char *name)
74d27244
RG
3632{
3633 varinfo_t vi;
7d6e2521
RG
3634 tree heapvar;
3635
3636 heapvar = build_fake_var_decl (ptr_type_node);
3637 DECL_EXTERNAL (heapvar) = 1;
74d27244
RG
3638
3639 vi = new_var_info (heapvar, name);
3640 vi->is_artificial_var = true;
3641 vi->is_heap_var = true;
3642 vi->is_unknown_size_var = true;
b41e33fe 3643 vi->offset = 0;
74d27244
RG
3644 vi->fullsize = ~0;
3645 vi->size = ~0;
3646 vi->is_full_var = true;
3647 insert_vi_for_tree (heapvar, vi);
3648
0b7b376d
RG
3649 return vi;
3650}
3651
3652/* Create a new artificial heap variable with NAME and make a
d3553615
RG
3653 constraint from it to LHS. Set flags according to a tag used
3654 for tracking restrict pointers. */
0b7b376d
RG
3655
3656static varinfo_t
d3553615 3657make_constraint_from_restrict (varinfo_t lhs, const char *name)
0b7b376d 3658{
7d6e2521 3659 varinfo_t vi = make_heapvar (name);
d3553615
RG
3660 vi->is_global_var = 1;
3661 vi->may_have_pointers = 1;
74d27244 3662 make_constraint_from (lhs, vi->id);
74d27244
RG
3663 return vi;
3664}
3665
3666/* Create a new artificial heap variable with NAME and make a
3667 constraint from it to LHS. Set flags according to a tag used
d3553615
RG
3668 for tracking restrict pointers and make the artificial heap
3669 point to global memory. */
74d27244 3670
d3553615
RG
3671static varinfo_t
3672make_constraint_from_global_restrict (varinfo_t lhs, const char *name)
74d27244 3673{
d3553615
RG
3674 varinfo_t vi = make_constraint_from_restrict (lhs, name);
3675 make_copy_constraint (vi, nonlocal_id);
3676 return vi;
74d27244
RG
3677}
3678
25a6a873
RG
3679/* In IPA mode there are varinfos for different aspects of reach
3680 function designator. One for the points-to set of the return
3681 value, one for the variables that are clobbered by the function,
3682 one for its uses and one for each parameter (including a single
3683 glob for remaining variadic arguments). */
3684
3685enum { fi_clobbers = 1, fi_uses = 2,
3686 fi_static_chain = 3, fi_result = 4, fi_parm_base = 5 };
3687
3688/* Get a constraint for the requested part of a function designator FI
3689 when operating in IPA mode. */
3690
3691static struct constraint_expr
3692get_function_part_constraint (varinfo_t fi, unsigned part)
3693{
3694 struct constraint_expr c;
3695
3696 gcc_assert (in_ipa_mode);
3697
3698 if (fi->id == anything_id)
3699 {
3700 /* ??? We probably should have a ANYFN special variable. */
3701 c.var = anything_id;
3702 c.offset = 0;
3703 c.type = SCALAR;
3704 }
3705 else if (TREE_CODE (fi->decl) == FUNCTION_DECL)
3706 {
3707 varinfo_t ai = first_vi_for_offset (fi, part);
18abb35e
RG
3708 if (ai)
3709 c.var = ai->id;
3710 else
3711 c.var = anything_id;
25a6a873
RG
3712 c.offset = 0;
3713 c.type = SCALAR;
3714 }
3715 else
3716 {
3717 c.var = fi->id;
3718 c.offset = part;
3719 c.type = DEREF;
3720 }
3721
3722 return c;
3723}
3724
7b765bed
DB
3725/* For non-IPA mode, generate constraints necessary for a call on the
3726 RHS. */
3727
3728static void
472c7fbd 3729handle_rhs_call (gimple stmt, VEC(ce_s, heap) **results)
7b765bed 3730{
472c7fbd 3731 struct constraint_expr rhsc;
726a989a 3732 unsigned i;
0b7b376d 3733 bool returns_uses = false;
7b765bed 3734
726a989a
RB
3735 for (i = 0; i < gimple_call_num_args (stmt); ++i)
3736 {
3737 tree arg = gimple_call_arg (stmt, i);
0b7b376d 3738 int flags = gimple_call_arg_flags (stmt, i);
726a989a 3739
0f8d6231
RG
3740 /* If the argument is not used we can ignore it. */
3741 if (flags & EAF_UNUSED)
0b7b376d
RG
3742 continue;
3743
3744 /* As we compute ESCAPED context-insensitive we do not gain
3745 any precision with just EAF_NOCLOBBER but not EAF_NOESCAPE
3746 set. The argument would still get clobbered through the
3747 escape solution.
3748 ??? We might get away with less (and more precise) constraints
3749 if using a temporary for transitively closing things. */
3750 if ((flags & EAF_NOCLOBBER)
3751 && (flags & EAF_NOESCAPE))
3752 {
3753 varinfo_t uses = get_call_use_vi (stmt);
3754 if (!(flags & EAF_DIRECT))
3755 make_transitive_closure_constraints (uses);
3756 make_constraint_to (uses->id, arg);
3757 returns_uses = true;
3758 }
3759 else if (flags & EAF_NOESCAPE)
3760 {
3761 varinfo_t uses = get_call_use_vi (stmt);
3762 varinfo_t clobbers = get_call_clobber_vi (stmt);
3763 if (!(flags & EAF_DIRECT))
3764 {
3765 make_transitive_closure_constraints (uses);
3766 make_transitive_closure_constraints (clobbers);
3767 }
3768 make_constraint_to (uses->id, arg);
3769 make_constraint_to (clobbers->id, arg);
3770 returns_uses = true;
3771 }
3772 else
726a989a
RB
3773 make_escape_constraint (arg);
3774 }
b7091901 3775
0b7b376d
RG
3776 /* If we added to the calls uses solution make sure we account for
3777 pointers to it to be returned. */
3778 if (returns_uses)
3779 {
3780 rhsc.var = get_call_use_vi (stmt)->id;
3781 rhsc.offset = 0;
3782 rhsc.type = SCALAR;
3783 VEC_safe_push (ce_s, heap, *results, &rhsc);
3784 }
3785
b7091901 3786 /* The static chain escapes as well. */
726a989a
RB
3787 if (gimple_call_chain (stmt))
3788 make_escape_constraint (gimple_call_chain (stmt));
472c7fbd 3789
1d24fdd9
RG
3790 /* And if we applied NRV the address of the return slot escapes as well. */
3791 if (gimple_call_return_slot_opt_p (stmt)
3792 && gimple_call_lhs (stmt) != NULL_TREE
4d61856d 3793 && TREE_ADDRESSABLE (TREE_TYPE (gimple_call_lhs (stmt))))
1d24fdd9
RG
3794 {
3795 VEC(ce_s, heap) *tmpc = NULL;
3796 struct constraint_expr lhsc, *c;
3797 get_constraint_for_address_of (gimple_call_lhs (stmt), &tmpc);
3798 lhsc.var = escaped_id;
3799 lhsc.offset = 0;
3800 lhsc.type = SCALAR;
ac47786e 3801 FOR_EACH_VEC_ELT (ce_s, tmpc, i, c)
1d24fdd9
RG
3802 process_constraint (new_constraint (lhsc, *c));
3803 VEC_free(ce_s, heap, tmpc);
3804 }
3805
5006671f
RG
3806 /* Regular functions return nonlocal memory. */
3807 rhsc.var = nonlocal_id;
472c7fbd 3808 rhsc.offset = 0;
5006671f 3809 rhsc.type = SCALAR;
472c7fbd 3810 VEC_safe_push (ce_s, heap, *results, &rhsc);
7b765bed 3811}
e8ca4159 3812
af947da7
RG
3813/* For non-IPA mode, generate constraints necessary for a call
3814 that returns a pointer and assigns it to LHS. This simply makes
b7091901 3815 the LHS point to global and escaped variables. */
af947da7
RG
3816
3817static void
0b7b376d
RG
3818handle_lhs_call (gimple stmt, tree lhs, int flags, VEC(ce_s, heap) *rhsc,
3819 tree fndecl)
af947da7
RG
3820{
3821 VEC(ce_s, heap) *lhsc = NULL;
af947da7 3822
b7091901 3823 get_constraint_for (lhs, &lhsc);
0b7b376d
RG
3824 /* If the store is to a global decl make sure to
3825 add proper escape constraints. */
3826 lhs = get_base_address (lhs);
3827 if (lhs
3828 && DECL_P (lhs)
3829 && is_global_var (lhs))
3830 {
3831 struct constraint_expr tmpc;
3832 tmpc.var = escaped_id;
3833 tmpc.offset = 0;
3834 tmpc.type = SCALAR;
3835 VEC_safe_push (ce_s, heap, lhsc, &tmpc);
3836 }
183ae595 3837
0b7b376d
RG
3838 /* If the call returns an argument unmodified override the rhs
3839 constraints. */
3840 flags = gimple_call_return_flags (stmt);
3841 if (flags & ERF_RETURNS_ARG
3842 && (flags & ERF_RETURN_ARG_MASK) < gimple_call_num_args (stmt))
3843 {
3844 tree arg;
3845 rhsc = NULL;
3846 arg = gimple_call_arg (stmt, flags & ERF_RETURN_ARG_MASK);
3847 get_constraint_for (arg, &rhsc);
3848 process_all_all_constraints (lhsc, rhsc);
3849 VEC_free (ce_s, heap, rhsc);
3850 }
3851 else if (flags & ERF_NOALIAS)
183ae595 3852 {
183ae595 3853 varinfo_t vi;
0b7b376d
RG
3854 struct constraint_expr tmpc;
3855 rhsc = NULL;
7d6e2521 3856 vi = make_heapvar ("HEAP");
14c41b9b
RG
3857 /* We delay marking allocated storage global until we know if
3858 it escapes. */
91deb937 3859 DECL_EXTERNAL (vi->decl) = 0;
14c41b9b 3860 vi->is_global_var = 0;
72d182d3 3861 /* If this is not a real malloc call assume the memory was
0b7b376d 3862 initialized and thus may point to global memory. All
72d182d3
RG
3863 builtin functions with the malloc attribute behave in a sane way. */
3864 if (!fndecl
3865 || DECL_BUILT_IN_CLASS (fndecl) != BUILT_IN_NORMAL)
3866 make_constraint_from (vi, nonlocal_id);
0b7b376d
RG
3867 tmpc.var = vi->id;
3868 tmpc.offset = 0;
3869 tmpc.type = ADDRESSOF;
3870 VEC_safe_push (ce_s, heap, rhsc, &tmpc);
f5843d08
RG
3871 process_all_all_constraints (lhsc, rhsc);
3872 VEC_free (ce_s, heap, rhsc);
183ae595 3873 }
f5843d08
RG
3874 else
3875 process_all_all_constraints (lhsc, rhsc);
0b7b376d 3876
b7091901
RG
3877 VEC_free (ce_s, heap, lhsc);
3878}
3879
3880/* For non-IPA mode, generate constraints necessary for a call of a
3881 const function that returns a pointer in the statement STMT. */
3882
3883static void
472c7fbd 3884handle_const_call (gimple stmt, VEC(ce_s, heap) **results)
b7091901 3885{
b14e9388 3886 struct constraint_expr rhsc;
472c7fbd 3887 unsigned int k;
b7091901 3888
472c7fbd
RG
3889 /* Treat nested const functions the same as pure functions as far
3890 as the static chain is concerned. */
726a989a 3891 if (gimple_call_chain (stmt))
b7091901 3892 {
3e8542ca
RG
3893 varinfo_t uses = get_call_use_vi (stmt);
3894 make_transitive_closure_constraints (uses);
3895 make_constraint_to (uses->id, gimple_call_chain (stmt));
3896 rhsc.var = uses->id;
b7091901 3897 rhsc.offset = 0;
472c7fbd
RG
3898 rhsc.type = SCALAR;
3899 VEC_safe_push (ce_s, heap, *results, &rhsc);
b7091901
RG
3900 }
3901
b7091901 3902 /* May return arguments. */
726a989a
RB
3903 for (k = 0; k < gimple_call_num_args (stmt); ++k)
3904 {
3905 tree arg = gimple_call_arg (stmt, k);
0f8d6231
RG
3906 VEC(ce_s, heap) *argc = NULL;
3907 unsigned i;
3908 struct constraint_expr *argp;
3909 get_constraint_for_rhs (arg, &argc);
3910 FOR_EACH_VEC_ELT (ce_s, argc, i, argp)
3911 VEC_safe_push (ce_s, heap, *results, argp);
3912 VEC_free(ce_s, heap, argc);
726a989a 3913 }
b7091901 3914
472c7fbd
RG
3915 /* May return addresses of globals. */
3916 rhsc.var = nonlocal_id;
3917 rhsc.offset = 0;
3918 rhsc.type = ADDRESSOF;
3919 VEC_safe_push (ce_s, heap, *results, &rhsc);
af947da7
RG
3920}
3921
15c15196
RG
3922/* For non-IPA mode, generate constraints necessary for a call to a
3923 pure function in statement STMT. */
3924
3925static void
472c7fbd 3926handle_pure_call (gimple stmt, VEC(ce_s, heap) **results)
15c15196 3927{
472c7fbd 3928 struct constraint_expr rhsc;
726a989a 3929 unsigned i;
3e8542ca 3930 varinfo_t uses = NULL;
15c15196
RG
3931
3932 /* Memory reached from pointer arguments is call-used. */
726a989a
RB
3933 for (i = 0; i < gimple_call_num_args (stmt); ++i)
3934 {
3935 tree arg = gimple_call_arg (stmt, i);
0f8d6231 3936 if (!uses)
472c7fbd 3937 {
0f8d6231
RG
3938 uses = get_call_use_vi (stmt);
3939 make_transitive_closure_constraints (uses);
472c7fbd 3940 }
0f8d6231 3941 make_constraint_to (uses->id, arg);
726a989a 3942 }
15c15196
RG
3943
3944 /* The static chain is used as well. */
726a989a 3945 if (gimple_call_chain (stmt))
15c15196 3946 {
3e8542ca
RG
3947 if (!uses)
3948 {
3949 uses = get_call_use_vi (stmt);
3950 make_transitive_closure_constraints (uses);
3951 }
3952 make_constraint_to (uses->id, gimple_call_chain (stmt));
472c7fbd 3953 }
15c15196 3954
3e8542ca
RG
3955 /* Pure functions may return call-used and nonlocal memory. */
3956 if (uses)
472c7fbd 3957 {
3e8542ca 3958 rhsc.var = uses->id;
15c15196 3959 rhsc.offset = 0;
472c7fbd
RG
3960 rhsc.type = SCALAR;
3961 VEC_safe_push (ce_s, heap, *results, &rhsc);
15c15196 3962 }
5006671f 3963 rhsc.var = nonlocal_id;
472c7fbd 3964 rhsc.offset = 0;
5006671f 3965 rhsc.type = SCALAR;
472c7fbd 3966 VEC_safe_push (ce_s, heap, *results, &rhsc);
15c15196
RG
3967}
3968
25a6a873
RG
3969
3970/* Return the varinfo for the callee of CALL. */
3971
3972static varinfo_t
3973get_fi_for_callee (gimple call)
3974{
5c04e9f4 3975 tree decl, fn = gimple_call_fn (call);
25a6a873 3976
5c04e9f4
RG
3977 if (fn && TREE_CODE (fn) == OBJ_TYPE_REF)
3978 fn = OBJ_TYPE_REF_EXPR (fn);
25583c4f 3979
25a6a873
RG
3980 /* If we can directly resolve the function being called, do so.
3981 Otherwise, it must be some sort of indirect expression that
3982 we should still be able to handle. */
5c04e9f4 3983 decl = gimple_call_addr_fndecl (fn);
25a6a873
RG
3984 if (decl)
3985 return get_vi_for_tree (decl);
3986
5c04e9f4 3987 /* If the function is anything other than a SSA name pointer we have no
25a6a873 3988 clue and should be getting ANYFN (well, ANYTHING for now). */
5c04e9f4 3989 if (!fn || TREE_CODE (fn) != SSA_NAME)
25a6a873 3990 return get_varinfo (anything_id);
5c04e9f4 3991
67386041
RG
3992 if (SSA_NAME_IS_DEFAULT_DEF (fn)
3993 && (TREE_CODE (SSA_NAME_VAR (fn)) == PARM_DECL
3994 || TREE_CODE (SSA_NAME_VAR (fn)) == RESULT_DECL))
5c04e9f4
RG
3995 fn = SSA_NAME_VAR (fn);
3996
3997 return get_vi_for_tree (fn);
25a6a873
RG
3998}
3999
e38811ce
RG
4000/* Create constraints for the builtin call T. Return true if the call
4001 was handled, otherwise false. */
910fdc79 4002
e38811ce
RG
4003static bool
4004find_func_aliases_for_builtin_call (gimple t)
910fdc79 4005{
e38811ce 4006 tree fndecl = gimple_call_fndecl (t);
4ee00913
DB
4007 VEC(ce_s, heap) *lhsc = NULL;
4008 VEC(ce_s, heap) *rhsc = NULL;
25a6a873 4009 varinfo_t fi;
910fdc79 4010
e38811ce
RG
4011 if (fndecl != NULL_TREE
4012 && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL)
4013 /* ??? All builtins that are handled here need to be handled
4014 in the alias-oracle query functions explicitly! */
4015 switch (DECL_FUNCTION_CODE (fndecl))
4016 {
4017 /* All the following functions return a pointer to the same object
4018 as their first argument points to. The functions do not add
4019 to the ESCAPED solution. The functions make the first argument
4020 pointed to memory point to what the second argument pointed to
4021 memory points to. */
4022 case BUILT_IN_STRCPY:
4023 case BUILT_IN_STRNCPY:
4024 case BUILT_IN_BCOPY:
4025 case BUILT_IN_MEMCPY:
4026 case BUILT_IN_MEMMOVE:
4027 case BUILT_IN_MEMPCPY:
4028 case BUILT_IN_STPCPY:
4029 case BUILT_IN_STPNCPY:
4030 case BUILT_IN_STRCAT:
4031 case BUILT_IN_STRNCAT:
36dc1a88
JJ
4032 case BUILT_IN_STRCPY_CHK:
4033 case BUILT_IN_STRNCPY_CHK:
4034 case BUILT_IN_MEMCPY_CHK:
4035 case BUILT_IN_MEMMOVE_CHK:
4036 case BUILT_IN_MEMPCPY_CHK:
4037 case BUILT_IN_STPCPY_CHK:
f3fc9b80 4038 case BUILT_IN_STPNCPY_CHK:
36dc1a88
JJ
4039 case BUILT_IN_STRCAT_CHK:
4040 case BUILT_IN_STRNCAT_CHK:
0a35513e
AH
4041 case BUILT_IN_TM_MEMCPY:
4042 case BUILT_IN_TM_MEMMOVE:
e8ca4159 4043 {
e38811ce
RG
4044 tree res = gimple_call_lhs (t);
4045 tree dest = gimple_call_arg (t, (DECL_FUNCTION_CODE (fndecl)
4046 == BUILT_IN_BCOPY ? 1 : 0));
4047 tree src = gimple_call_arg (t, (DECL_FUNCTION_CODE (fndecl)
4048 == BUILT_IN_BCOPY ? 0 : 1));
4049 if (res != NULL_TREE)
0f8d6231 4050 {
e38811ce
RG
4051 get_constraint_for (res, &lhsc);
4052 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_MEMPCPY
4053 || DECL_FUNCTION_CODE (fndecl) == BUILT_IN_STPCPY
ce7e54ff
JJ
4054 || DECL_FUNCTION_CODE (fndecl) == BUILT_IN_STPNCPY
4055 || DECL_FUNCTION_CODE (fndecl) == BUILT_IN_MEMPCPY_CHK
f3fc9b80
RG
4056 || DECL_FUNCTION_CODE (fndecl) == BUILT_IN_STPCPY_CHK
4057 || DECL_FUNCTION_CODE (fndecl) == BUILT_IN_STPNCPY_CHK)
e38811ce
RG
4058 get_constraint_for_ptr_offset (dest, NULL_TREE, &rhsc);
4059 else
4060 get_constraint_for (dest, &rhsc);
4061 process_all_all_constraints (lhsc, rhsc);
4062 VEC_free (ce_s, heap, lhsc);
4063 VEC_free (ce_s, heap, rhsc);
c58936b6 4064 }
e38811ce
RG
4065 get_constraint_for_ptr_offset (dest, NULL_TREE, &lhsc);
4066 get_constraint_for_ptr_offset (src, NULL_TREE, &rhsc);
4067 do_deref (&lhsc);
4068 do_deref (&rhsc);
4069 process_all_all_constraints (lhsc, rhsc);
4070 VEC_free (ce_s, heap, lhsc);
4071 VEC_free (ce_s, heap, rhsc);
4072 return true;
4ee00913 4073 }
e38811ce 4074 case BUILT_IN_MEMSET:
36dc1a88 4075 case BUILT_IN_MEMSET_CHK:
0a35513e 4076 case BUILT_IN_TM_MEMSET:
e38811ce
RG
4077 {
4078 tree res = gimple_call_lhs (t);
4079 tree dest = gimple_call_arg (t, 0);
4080 unsigned i;
4081 ce_s *lhsp;
4082 struct constraint_expr ac;
4083 if (res != NULL_TREE)
779704e7 4084 {
e38811ce
RG
4085 get_constraint_for (res, &lhsc);
4086 get_constraint_for (dest, &rhsc);
779704e7
RG
4087 process_all_all_constraints (lhsc, rhsc);
4088 VEC_free (ce_s, heap, lhsc);
4089 VEC_free (ce_s, heap, rhsc);
779704e7 4090 }
e38811ce
RG
4091 get_constraint_for_ptr_offset (dest, NULL_TREE, &lhsc);
4092 do_deref (&lhsc);
4093 if (flag_delete_null_pointer_checks
4094 && integer_zerop (gimple_call_arg (t, 1)))
779704e7 4095 {
e38811ce
RG
4096 ac.type = ADDRESSOF;
4097 ac.var = nothing_id;
779704e7 4098 }
e38811ce 4099 else
25a6a873 4100 {
e38811ce
RG
4101 ac.type = SCALAR;
4102 ac.var = integer_id;
25a6a873 4103 }
e38811ce
RG
4104 ac.offset = 0;
4105 FOR_EACH_VEC_ELT (ce_s, lhsc, i, lhsp)
4106 process_constraint (new_constraint (*lhsp, ac));
4107 VEC_free (ce_s, heap, lhsc);
4108 return true;
4109 }
d9048d16
JJ
4110 case BUILT_IN_ASSUME_ALIGNED:
4111 {
4112 tree res = gimple_call_lhs (t);
4113 tree dest = gimple_call_arg (t, 0);
4114 if (res != NULL_TREE)
4115 {
4116 get_constraint_for (res, &lhsc);
4117 get_constraint_for (dest, &rhsc);
4118 process_all_all_constraints (lhsc, rhsc);
4119 VEC_free (ce_s, heap, lhsc);
4120 VEC_free (ce_s, heap, rhsc);
4121 }
4122 return true;
4123 }
e38811ce
RG
4124 /* All the following functions do not return pointers, do not
4125 modify the points-to sets of memory reachable from their
4126 arguments and do not add to the ESCAPED solution. */
4127 case BUILT_IN_SINCOS:
4128 case BUILT_IN_SINCOSF:
4129 case BUILT_IN_SINCOSL:
4130 case BUILT_IN_FREXP:
4131 case BUILT_IN_FREXPF:
4132 case BUILT_IN_FREXPL:
4133 case BUILT_IN_GAMMA_R:
4134 case BUILT_IN_GAMMAF_R:
4135 case BUILT_IN_GAMMAL_R:
4136 case BUILT_IN_LGAMMA_R:
4137 case BUILT_IN_LGAMMAF_R:
4138 case BUILT_IN_LGAMMAL_R:
4139 case BUILT_IN_MODF:
4140 case BUILT_IN_MODFF:
4141 case BUILT_IN_MODFL:
4142 case BUILT_IN_REMQUO:
4143 case BUILT_IN_REMQUOF:
4144 case BUILT_IN_REMQUOL:
4145 case BUILT_IN_FREE:
4146 return true;
915afed6
JJ
4147 case BUILT_IN_STRDUP:
4148 case BUILT_IN_STRNDUP:
4149 if (gimple_call_lhs (t))
4150 {
4151 handle_lhs_call (t, gimple_call_lhs (t), gimple_call_flags (t),
4152 NULL, fndecl);
4153 get_constraint_for_ptr_offset (gimple_call_lhs (t),
4154 NULL_TREE, &lhsc);
4155 get_constraint_for_ptr_offset (gimple_call_arg (t, 0),
4156 NULL_TREE, &rhsc);
4157 do_deref (&lhsc);
4158 do_deref (&rhsc);
4159 process_all_all_constraints (lhsc, rhsc);
4160 VEC_free (ce_s, heap, lhsc);
4161 VEC_free (ce_s, heap, rhsc);
4162 return true;
4163 }
4164 break;
e38811ce
RG
4165 /* Trampolines are special - they set up passing the static
4166 frame. */
4167 case BUILT_IN_INIT_TRAMPOLINE:
4168 {
4169 tree tramp = gimple_call_arg (t, 0);
4170 tree nfunc = gimple_call_arg (t, 1);
4171 tree frame = gimple_call_arg (t, 2);
4172 unsigned i;
4173 struct constraint_expr lhs, *rhsp;
4174 if (in_ipa_mode)
25a6a873 4175 {
e38811ce
RG
4176 varinfo_t nfi = NULL;
4177 gcc_assert (TREE_CODE (nfunc) == ADDR_EXPR);
4178 nfi = lookup_vi_for_tree (TREE_OPERAND (nfunc, 0));
4179 if (nfi)
25a6a873 4180 {
e38811ce
RG
4181 lhs = get_function_part_constraint (nfi, fi_static_chain);
4182 get_constraint_for (frame, &rhsc);
4183 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
4184 process_constraint (new_constraint (lhs, *rhsp));
4185 VEC_free (ce_s, heap, rhsc);
4186
4187 /* Make the frame point to the function for
4188 the trampoline adjustment call. */
4189 get_constraint_for (tramp, &lhsc);
4190 do_deref (&lhsc);
4191 get_constraint_for (nfunc, &rhsc);
25a6a873
RG
4192 process_all_all_constraints (lhsc, rhsc);
4193 VEC_free (ce_s, heap, rhsc);
4194 VEC_free (ce_s, heap, lhsc);
e38811ce
RG
4195
4196 return true;
25a6a873 4197 }
25a6a873 4198 }
e38811ce
RG
4199 /* Else fallthru to generic handling which will let
4200 the frame escape. */
4201 break;
4202 }
4203 case BUILT_IN_ADJUST_TRAMPOLINE:
4204 {
4205 tree tramp = gimple_call_arg (t, 0);
4206 tree res = gimple_call_lhs (t);
4207 if (in_ipa_mode && res)
25a6a873 4208 {
e38811ce
RG
4209 get_constraint_for (res, &lhsc);
4210 get_constraint_for (tramp, &rhsc);
4211 do_deref (&rhsc);
4212 process_all_all_constraints (lhsc, rhsc);
4213 VEC_free (ce_s, heap, rhsc);
4214 VEC_free (ce_s, heap, lhsc);
25a6a873 4215 }
e38811ce
RG
4216 return true;
4217 }
0a35513e
AH
4218 CASE_BUILT_IN_TM_STORE (1):
4219 CASE_BUILT_IN_TM_STORE (2):
4220 CASE_BUILT_IN_TM_STORE (4):
4221 CASE_BUILT_IN_TM_STORE (8):
4222 CASE_BUILT_IN_TM_STORE (FLOAT):
4223 CASE_BUILT_IN_TM_STORE (DOUBLE):
4224 CASE_BUILT_IN_TM_STORE (LDOUBLE):
4225 CASE_BUILT_IN_TM_STORE (M64):
4226 CASE_BUILT_IN_TM_STORE (M128):
4227 CASE_BUILT_IN_TM_STORE (M256):
4228 {
4229 tree addr = gimple_call_arg (t, 0);
4230 tree src = gimple_call_arg (t, 1);
4231
4232 get_constraint_for (addr, &lhsc);
4233 do_deref (&lhsc);
4234 get_constraint_for (src, &rhsc);
4235 process_all_all_constraints (lhsc, rhsc);
4236 VEC_free (ce_s, heap, lhsc);
4237 VEC_free (ce_s, heap, rhsc);
4238 return true;
4239 }
4240 CASE_BUILT_IN_TM_LOAD (1):
4241 CASE_BUILT_IN_TM_LOAD (2):
4242 CASE_BUILT_IN_TM_LOAD (4):
4243 CASE_BUILT_IN_TM_LOAD (8):
4244 CASE_BUILT_IN_TM_LOAD (FLOAT):
4245 CASE_BUILT_IN_TM_LOAD (DOUBLE):
4246 CASE_BUILT_IN_TM_LOAD (LDOUBLE):
4247 CASE_BUILT_IN_TM_LOAD (M64):
4248 CASE_BUILT_IN_TM_LOAD (M128):
4249 CASE_BUILT_IN_TM_LOAD (M256):
4250 {
4251 tree dest = gimple_call_lhs (t);
4252 tree addr = gimple_call_arg (t, 0);
4253
4254 get_constraint_for (dest, &lhsc);
4255 get_constraint_for (addr, &rhsc);
4256 do_deref (&rhsc);
4257 process_all_all_constraints (lhsc, rhsc);
4258 VEC_free (ce_s, heap, lhsc);
4259 VEC_free (ce_s, heap, rhsc);
4260 return true;
4261 }
e38811ce
RG
4262 /* Variadic argument handling needs to be handled in IPA
4263 mode as well. */
4264 case BUILT_IN_VA_START:
4265 {
df2f6100
RG
4266 tree valist = gimple_call_arg (t, 0);
4267 struct constraint_expr rhs, *lhsp;
4268 unsigned i;
4269 get_constraint_for (valist, &lhsc);
4270 do_deref (&lhsc);
4271 /* The va_list gets access to pointers in variadic
4272 arguments. Which we know in the case of IPA analysis
4273 and otherwise are just all nonlocal variables. */
e38811ce 4274 if (in_ipa_mode)
a4c9bc15 4275 {
e38811ce 4276 fi = lookup_vi_for_tree (cfun->decl);
e38811ce
RG
4277 rhs = get_function_part_constraint (fi, ~0);
4278 rhs.type = ADDRESSOF;
a4c9bc15 4279 }
df2f6100
RG
4280 else
4281 {
4282 rhs.var = nonlocal_id;
4283 rhs.type = ADDRESSOF;
4284 rhs.offset = 0;
4285 }
4286 FOR_EACH_VEC_ELT (ce_s, lhsc, i, lhsp)
4287 process_constraint (new_constraint (*lhsp, rhs));
4288 VEC_free (ce_s, heap, lhsc);
4289 /* va_list is clobbered. */
4290 make_constraint_to (get_call_clobber_vi (t)->id, valist);
4291 return true;
e38811ce
RG
4292 }
4293 /* va_end doesn't have any effect that matters. */
4294 case BUILT_IN_VA_END:
4295 return true;
4296 /* Alternate return. Simply give up for now. */
4297 case BUILT_IN_RETURN:
4ee00913 4298 {
e38811ce
RG
4299 fi = NULL;
4300 if (!in_ipa_mode
4301 || !(fi = get_vi_for_tree (cfun->decl)))
4302 make_constraint_from (get_varinfo (escaped_id), anything_id);
4303 else if (in_ipa_mode
4304 && fi != NULL)
b7091901 4305 {
e38811ce
RG
4306 struct constraint_expr lhs, rhs;
4307 lhs = get_function_part_constraint (fi, fi_result);
4308 rhs.var = anything_id;
4309 rhs.offset = 0;
4310 rhs.type = SCALAR;
4311 process_constraint (new_constraint (lhs, rhs));
b7091901 4312 }
e38811ce
RG
4313 return true;
4314 }
4315 /* printf-style functions may have hooks to set pointers to
4316 point to somewhere into the generated string. Leave them
4317 for a later excercise... */
4318 default:
4319 /* Fallthru to general call handling. */;
4320 }
4321
4322 return false;
4323}
4324
4325/* Create constraints for the call T. */
4326
4327static void
4328find_func_aliases_for_call (gimple t)
4329{
4330 tree fndecl = gimple_call_fndecl (t);
4331 VEC(ce_s, heap) *lhsc = NULL;
4332 VEC(ce_s, heap) *rhsc = NULL;
4333 varinfo_t fi;
4334
4335 if (fndecl != NULL_TREE
4336 && DECL_BUILT_IN (fndecl)
4337 && find_func_aliases_for_builtin_call (t))
4338 return;
4339
5c04e9f4 4340 fi = get_fi_for_callee (t);
e38811ce 4341 if (!in_ipa_mode
5c04e9f4 4342 || (fndecl && !fi->is_fn_info))
e38811ce
RG
4343 {
4344 VEC(ce_s, heap) *rhsc = NULL;
4345 int flags = gimple_call_flags (t);
4346
4347 /* Const functions can return their arguments and addresses
4348 of global memory but not of escaped memory. */
4349 if (flags & (ECF_CONST|ECF_NOVOPS))
4350 {
cb89b4b0 4351 if (gimple_call_lhs (t))
e38811ce 4352 handle_const_call (t, &rhsc);
4ee00913 4353 }
e38811ce
RG
4354 /* Pure functions can return addresses in and of memory
4355 reachable from their arguments, but they are not an escape
4356 point for reachable memory of their arguments. */
4357 else if (flags & (ECF_PURE|ECF_LOOPING_CONST_OR_PURE))
4358 handle_pure_call (t, &rhsc);
4ee00913 4359 else
e38811ce
RG
4360 handle_rhs_call (t, &rhsc);
4361 if (gimple_call_lhs (t))
4362 handle_lhs_call (t, gimple_call_lhs (t), flags, rhsc, fndecl);
4363 VEC_free (ce_s, heap, rhsc);
4364 }
4365 else
4366 {
4367 tree lhsop;
4368 unsigned j;
6e7e772d 4369
e38811ce
RG
4370 /* Assign all the passed arguments to the appropriate incoming
4371 parameters of the function. */
4372 for (j = 0; j < gimple_call_num_args (t); j++)
4373 {
4374 struct constraint_expr lhs ;
4375 struct constraint_expr *rhsp;
4376 tree arg = gimple_call_arg (t, j);
7b765bed 4377
e38811ce
RG
4378 get_constraint_for_rhs (arg, &rhsc);
4379 lhs = get_function_part_constraint (fi, fi_parm_base + j);
4380 while (VEC_length (ce_s, rhsc) != 0)
4ee00913 4381 {
0823efed 4382 rhsp = &VEC_last (ce_s, rhsc);
e38811ce
RG
4383 process_constraint (new_constraint (lhs, *rhsp));
4384 VEC_pop (ce_s, rhsc);
4ee00913 4385 }
e38811ce
RG
4386 }
4387
4388 /* If we are returning a value, assign it to the result. */
4389 lhsop = gimple_call_lhs (t);
4390 if (lhsop)
4391 {
4392 struct constraint_expr rhs;
4393 struct constraint_expr *lhsp;
25a6a873 4394
e38811ce
RG
4395 get_constraint_for (lhsop, &lhsc);
4396 rhs = get_function_part_constraint (fi, fi_result);
4397 if (fndecl
25a6a873
RG
4398 && DECL_RESULT (fndecl)
4399 && DECL_BY_REFERENCE (DECL_RESULT (fndecl)))
4400 {
e38811ce
RG
4401 VEC(ce_s, heap) *tem = NULL;
4402 VEC_safe_push (ce_s, heap, tem, &rhs);
4403 do_deref (&tem);
0823efed 4404 rhs = VEC_index (ce_s, tem, 0);
e38811ce 4405 VEC_free(ce_s, heap, tem);
25a6a873 4406 }
e38811ce 4407 FOR_EACH_VEC_ELT (ce_s, lhsc, j, lhsp)
5c04e9f4 4408 process_constraint (new_constraint (*lhsp, rhs));
e38811ce 4409 }
25a6a873 4410
e38811ce
RG
4411 /* If we pass the result decl by reference, honor that. */
4412 if (lhsop
4413 && fndecl
4414 && DECL_RESULT (fndecl)
4415 && DECL_BY_REFERENCE (DECL_RESULT (fndecl)))
4416 {
4417 struct constraint_expr lhs;
4418 struct constraint_expr *rhsp;
4419
4420 get_constraint_for_address_of (lhsop, &rhsc);
4421 lhs = get_function_part_constraint (fi, fi_result);
4422 FOR_EACH_VEC_ELT (ce_s, rhsc, j, rhsp)
5c04e9f4 4423 process_constraint (new_constraint (lhs, *rhsp));
e38811ce
RG
4424 VEC_free (ce_s, heap, rhsc);
4425 }
25a6a873 4426
e38811ce
RG
4427 /* If we use a static chain, pass it along. */
4428 if (gimple_call_chain (t))
4429 {
4430 struct constraint_expr lhs;
4431 struct constraint_expr *rhsp;
4432
4433 get_constraint_for (gimple_call_chain (t), &rhsc);
4434 lhs = get_function_part_constraint (fi, fi_static_chain);
4435 FOR_EACH_VEC_ELT (ce_s, rhsc, j, rhsp)
5c04e9f4 4436 process_constraint (new_constraint (lhs, *rhsp));
e38811ce
RG
4437 }
4438 }
4439}
4440
4441/* Walk statement T setting up aliasing constraints according to the
4442 references found in T. This function is the main part of the
4443 constraint builder. AI points to auxiliary alias information used
4444 when building alias sets and computing alias grouping heuristics. */
4445
4446static void
4447find_func_aliases (gimple origt)
4448{
4449 gimple t = origt;
4450 VEC(ce_s, heap) *lhsc = NULL;
4451 VEC(ce_s, heap) *rhsc = NULL;
4452 struct constraint_expr *c;
4453 varinfo_t fi;
4454
4455 /* Now build constraints expressions. */
4456 if (gimple_code (t) == GIMPLE_PHI)
4457 {
4458 size_t i;
4459 unsigned int j;
4460
4461 /* For a phi node, assign all the arguments to
4462 the result. */
4463 get_constraint_for (gimple_phi_result (t), &lhsc);
4464 for (i = 0; i < gimple_phi_num_args (t); i++)
4465 {
4466 tree strippedrhs = PHI_ARG_DEF (t, i);
4467
4468 STRIP_NOPS (strippedrhs);
4469 get_constraint_for_rhs (gimple_phi_arg_def (t, i), &rhsc);
4470
4471 FOR_EACH_VEC_ELT (ce_s, lhsc, j, c)
4472 {
4473 struct constraint_expr *c2;
4474 while (VEC_length (ce_s, rhsc) > 0)
4475 {
0823efed 4476 c2 = &VEC_last (ce_s, rhsc);
e38811ce
RG
4477 process_constraint (new_constraint (*c, *c2));
4478 VEC_pop (ce_s, rhsc);
4479 }
25a6a873 4480 }
c58936b6 4481 }
e8ca4159 4482 }
e38811ce
RG
4483 /* In IPA mode, we need to generate constraints to pass call
4484 arguments through their calls. There are two cases,
4485 either a GIMPLE_CALL returning a value, or just a plain
4486 GIMPLE_CALL when we are not.
4487
4488 In non-ipa mode, we need to generate constraints for each
4489 pointer passed by address. */
4490 else if (is_gimple_call (t))
4491 find_func_aliases_for_call (t);
4492
e5bae89b
RG
4493 /* Otherwise, just a regular assignment statement. Only care about
4494 operations with pointer result, others are dealt with as escape
4495 points if they have pointer operands. */
0f8d6231 4496 else if (is_gimple_assign (t))
e8ca4159 4497 {
726a989a
RB
4498 /* Otherwise, just a regular assignment statement. */
4499 tree lhsop = gimple_assign_lhs (t);
4500 tree rhsop = (gimple_num_ops (t) == 2) ? gimple_assign_rhs1 (t) : NULL;
e8ca4159 4501
47598145
MM
4502 if (rhsop && TREE_CLOBBER_P (rhsop))
4503 /* Ignore clobbers, they don't actually store anything into
4504 the LHS. */
4505 ;
4506 else if (rhsop && AGGREGATE_TYPE_P (TREE_TYPE (lhsop)))
e5bae89b 4507 do_structure_copy (lhsop, rhsop);
e8ca4159
DN
4508 else
4509 {
194313e2
RG
4510 enum tree_code code = gimple_assign_rhs_code (t);
4511
e5bae89b 4512 get_constraint_for (lhsop, &lhsc);
726a989a 4513
194313e2 4514 if (code == POINTER_PLUS_EXPR)
726a989a
RB
4515 get_constraint_for_ptr_offset (gimple_assign_rhs1 (t),
4516 gimple_assign_rhs2 (t), &rhsc);
194313e2 4517 else if (code == BIT_AND_EXPR
fca821b5
RG
4518 && TREE_CODE (gimple_assign_rhs2 (t)) == INTEGER_CST)
4519 {
4520 /* Aligning a pointer via a BIT_AND_EXPR is offsetting
4521 the pointer. Handle it by offsetting it by UNKNOWN. */
4522 get_constraint_for_ptr_offset (gimple_assign_rhs1 (t),
4523 NULL_TREE, &rhsc);
4524 }
194313e2 4525 else if ((CONVERT_EXPR_CODE_P (code)
1961418e
RG
4526 && !(POINTER_TYPE_P (gimple_expr_type (t))
4527 && !POINTER_TYPE_P (TREE_TYPE (rhsop))))
4528 || gimple_assign_single_p (t))
ed6c4831 4529 get_constraint_for_rhs (rhsop, &rhsc);
194313e2
RG
4530 else if (truth_value_p (code))
4531 /* Truth value results are not pointer (parts). Or at least
4532 very very unreasonable obfuscation of a part. */
4533 ;
726a989a
RB
4534 else
4535 {
0f8d6231
RG
4536 /* All other operations are merges. */
4537 VEC (ce_s, heap) *tmp = NULL;
4538 struct constraint_expr *rhsp;
4539 unsigned i, j;
4540 get_constraint_for_rhs (gimple_assign_rhs1 (t), &rhsc);
4541 for (i = 2; i < gimple_num_ops (t); ++i)
4542 {
4543 get_constraint_for_rhs (gimple_op (t, i), &tmp);
4544 FOR_EACH_VEC_ELT (ce_s, tmp, j, rhsp)
4545 VEC_safe_push (ce_s, heap, rhsc, rhsp);
4546 VEC_truncate (ce_s, tmp, 0);
4547 }
4548 VEC_free (ce_s, heap, tmp);
726a989a 4549 }
779704e7 4550 process_all_all_constraints (lhsc, rhsc);
e8ca4159 4551 }
de70bb20
RG
4552 /* If there is a store to a global variable the rhs escapes. */
4553 if ((lhsop = get_base_address (lhsop)) != NULL_TREE
4554 && DECL_P (lhsop)
25a6a873
RG
4555 && is_global_var (lhsop)
4556 && (!in_ipa_mode
4557 || DECL_EXTERNAL (lhsop) || TREE_PUBLIC (lhsop)))
de70bb20 4558 make_escape_constraint (rhsop);
910fdc79 4559 }
14c41b9b
RG
4560 /* Handle escapes through return. */
4561 else if (gimple_code (t) == GIMPLE_RETURN
0f8d6231 4562 && gimple_return_retval (t) != NULL_TREE)
14c41b9b 4563 {
25a6a873
RG
4564 fi = NULL;
4565 if (!in_ipa_mode
4566 || !(fi = get_vi_for_tree (cfun->decl)))
4567 make_escape_constraint (gimple_return_retval (t));
4568 else if (in_ipa_mode
4569 && fi != NULL)
4570 {
4571 struct constraint_expr lhs ;
4572 struct constraint_expr *rhsp;
4573 unsigned i;
4574
4575 lhs = get_function_part_constraint (fi, fi_result);
ed6c4831 4576 get_constraint_for_rhs (gimple_return_retval (t), &rhsc);
ac47786e 4577 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
25a6a873
RG
4578 process_constraint (new_constraint (lhs, *rhsp));
4579 }
14c41b9b 4580 }
2e407842
RG
4581 /* Handle asms conservatively by adding escape constraints to everything. */
4582 else if (gimple_code (t) == GIMPLE_ASM)
b7091901 4583 {
5006671f
RG
4584 unsigned i, noutputs;
4585 const char **oconstraints;
4586 const char *constraint;
4587 bool allows_mem, allows_reg, is_inout;
4588
4589 noutputs = gimple_asm_noutputs (t);
4590 oconstraints = XALLOCAVEC (const char *, noutputs);
4591
4592 for (i = 0; i < noutputs; ++i)
b7091901 4593 {
5006671f
RG
4594 tree link = gimple_asm_output_op (t, i);
4595 tree op = TREE_VALUE (link);
4596
4597 constraint = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (link)));
4598 oconstraints[i] = constraint;
4599 parse_output_constraint (&constraint, i, 0, 0, &allows_mem,
4600 &allows_reg, &is_inout);
4601
4602 /* A memory constraint makes the address of the operand escape. */
4603 if (!allows_reg && allows_mem)
4604 make_escape_constraint (build_fold_addr_expr (op));
4605
4606 /* The asm may read global memory, so outputs may point to
4607 any global memory. */
0f8d6231 4608 if (op)
5006671f
RG
4609 {
4610 VEC(ce_s, heap) *lhsc = NULL;
4611 struct constraint_expr rhsc, *lhsp;
4612 unsigned j;
4613 get_constraint_for (op, &lhsc);
4614 rhsc.var = nonlocal_id;
4615 rhsc.offset = 0;
4616 rhsc.type = SCALAR;
ac47786e 4617 FOR_EACH_VEC_ELT (ce_s, lhsc, j, lhsp)
5006671f
RG
4618 process_constraint (new_constraint (*lhsp, rhsc));
4619 VEC_free (ce_s, heap, lhsc);
4620 }
b7091901 4621 }
726a989a 4622 for (i = 0; i < gimple_asm_ninputs (t); ++i)
b7091901 4623 {
5006671f
RG
4624 tree link = gimple_asm_input_op (t, i);
4625 tree op = TREE_VALUE (link);
4626
4627 constraint = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (link)));
4628
4629 parse_input_constraint (&constraint, 0, 0, noutputs, 0, oconstraints,
4630 &allows_mem, &allows_reg);
4631
4632 /* A memory constraint makes the address of the operand escape. */
4633 if (!allows_reg && allows_mem)
4634 make_escape_constraint (build_fold_addr_expr (op));
4635 /* Strictly we'd only need the constraint to ESCAPED if
3e8542ca
RG
4636 the asm clobbers memory, otherwise using something
4637 along the lines of per-call clobbers/uses would be enough. */
0f8d6231 4638 else if (op)
b7091901
RG
4639 make_escape_constraint (op);
4640 }
4641 }
4642
4ee00913
DB
4643 VEC_free (ce_s, heap, rhsc);
4644 VEC_free (ce_s, heap, lhsc);
910fdc79
DB
4645}
4646
4647
25a6a873
RG
4648/* Create a constraint adding to the clobber set of FI the memory
4649 pointed to by PTR. */
4650
4651static void
4652process_ipa_clobber (varinfo_t fi, tree ptr)
4653{
4654 VEC(ce_s, heap) *ptrc = NULL;
4655 struct constraint_expr *c, lhs;
4656 unsigned i;
ed6c4831 4657 get_constraint_for_rhs (ptr, &ptrc);
25a6a873 4658 lhs = get_function_part_constraint (fi, fi_clobbers);
ac47786e 4659 FOR_EACH_VEC_ELT (ce_s, ptrc, i, c)
25a6a873
RG
4660 process_constraint (new_constraint (lhs, *c));
4661 VEC_free (ce_s, heap, ptrc);
4662}
4663
4664/* Walk statement T setting up clobber and use constraints according to the
4665 references found in T. This function is a main part of the
4666 IPA constraint builder. */
4667
4668static void
4669find_func_clobbers (gimple origt)
4670{
4671 gimple t = origt;
4672 VEC(ce_s, heap) *lhsc = NULL;
4673 VEC(ce_s, heap) *rhsc = NULL;
4674 varinfo_t fi;
4675
4676 /* Add constraints for clobbered/used in IPA mode.
4677 We are not interested in what automatic variables are clobbered
4678 or used as we only use the information in the caller to which
4679 they do not escape. */
4680 gcc_assert (in_ipa_mode);
4681
4682 /* If the stmt refers to memory in any way it better had a VUSE. */
4683 if (gimple_vuse (t) == NULL_TREE)
4684 return;
4685
4686 /* We'd better have function information for the current function. */
4687 fi = lookup_vi_for_tree (cfun->decl);
4688 gcc_assert (fi != NULL);
4689
4690 /* Account for stores in assignments and calls. */
4691 if (gimple_vdef (t) != NULL_TREE
4692 && gimple_has_lhs (t))
4693 {
4694 tree lhs = gimple_get_lhs (t);
4695 tree tem = lhs;
4696 while (handled_component_p (tem))
4697 tem = TREE_OPERAND (tem, 0);
4698 if ((DECL_P (tem)
4699 && !auto_var_in_fn_p (tem, cfun->decl))
70f34814
RG
4700 || INDIRECT_REF_P (tem)
4701 || (TREE_CODE (tem) == MEM_REF
4702 && !(TREE_CODE (TREE_OPERAND (tem, 0)) == ADDR_EXPR
4703 && auto_var_in_fn_p
4704 (TREE_OPERAND (TREE_OPERAND (tem, 0), 0), cfun->decl))))
25a6a873
RG
4705 {
4706 struct constraint_expr lhsc, *rhsp;
4707 unsigned i;
4708 lhsc = get_function_part_constraint (fi, fi_clobbers);
4709 get_constraint_for_address_of (lhs, &rhsc);
ac47786e 4710 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
25a6a873
RG
4711 process_constraint (new_constraint (lhsc, *rhsp));
4712 VEC_free (ce_s, heap, rhsc);
4713 }
4714 }
4715
4716 /* Account for uses in assigments and returns. */
4717 if (gimple_assign_single_p (t)
4718 || (gimple_code (t) == GIMPLE_RETURN
4719 && gimple_return_retval (t) != NULL_TREE))
4720 {
4721 tree rhs = (gimple_assign_single_p (t)
4722 ? gimple_assign_rhs1 (t) : gimple_return_retval (t));
4723 tree tem = rhs;
4724 while (handled_component_p (tem))
4725 tem = TREE_OPERAND (tem, 0);
4726 if ((DECL_P (tem)
4727 && !auto_var_in_fn_p (tem, cfun->decl))
70f34814
RG
4728 || INDIRECT_REF_P (tem)
4729 || (TREE_CODE (tem) == MEM_REF
4730 && !(TREE_CODE (TREE_OPERAND (tem, 0)) == ADDR_EXPR
4731 && auto_var_in_fn_p
4732 (TREE_OPERAND (TREE_OPERAND (tem, 0), 0), cfun->decl))))
25a6a873
RG
4733 {
4734 struct constraint_expr lhs, *rhsp;
4735 unsigned i;
4736 lhs = get_function_part_constraint (fi, fi_uses);
4737 get_constraint_for_address_of (rhs, &rhsc);
ac47786e 4738 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
25a6a873
RG
4739 process_constraint (new_constraint (lhs, *rhsp));
4740 VEC_free (ce_s, heap, rhsc);
4741 }
4742 }
4743
4744 if (is_gimple_call (t))
4745 {
4746 varinfo_t cfi = NULL;
4747 tree decl = gimple_call_fndecl (t);
4748 struct constraint_expr lhs, rhs;
4749 unsigned i, j;
4750
4751 /* For builtins we do not have separate function info. For those
4752 we do not generate escapes for we have to generate clobbers/uses. */
4753 if (decl
4754 && DECL_BUILT_IN_CLASS (decl) == BUILT_IN_NORMAL)
4755 switch (DECL_FUNCTION_CODE (decl))
4756 {
4757 /* The following functions use and clobber memory pointed to
4758 by their arguments. */
4759 case BUILT_IN_STRCPY:
4760 case BUILT_IN_STRNCPY:
4761 case BUILT_IN_BCOPY:
4762 case BUILT_IN_MEMCPY:
4763 case BUILT_IN_MEMMOVE:
4764 case BUILT_IN_MEMPCPY:
4765 case BUILT_IN_STPCPY:
4766 case BUILT_IN_STPNCPY:
4767 case BUILT_IN_STRCAT:
4768 case BUILT_IN_STRNCAT:
36dc1a88
JJ
4769 case BUILT_IN_STRCPY_CHK:
4770 case BUILT_IN_STRNCPY_CHK:
4771 case BUILT_IN_MEMCPY_CHK:
4772 case BUILT_IN_MEMMOVE_CHK:
4773 case BUILT_IN_MEMPCPY_CHK:
4774 case BUILT_IN_STPCPY_CHK:
f3fc9b80 4775 case BUILT_IN_STPNCPY_CHK:
36dc1a88
JJ
4776 case BUILT_IN_STRCAT_CHK:
4777 case BUILT_IN_STRNCAT_CHK:
25a6a873
RG
4778 {
4779 tree dest = gimple_call_arg (t, (DECL_FUNCTION_CODE (decl)
4780 == BUILT_IN_BCOPY ? 1 : 0));
4781 tree src = gimple_call_arg (t, (DECL_FUNCTION_CODE (decl)
4782 == BUILT_IN_BCOPY ? 0 : 1));
4783 unsigned i;
4784 struct constraint_expr *rhsp, *lhsp;
4785 get_constraint_for_ptr_offset (dest, NULL_TREE, &lhsc);
4786 lhs = get_function_part_constraint (fi, fi_clobbers);
ac47786e 4787 FOR_EACH_VEC_ELT (ce_s, lhsc, i, lhsp)
25a6a873
RG
4788 process_constraint (new_constraint (lhs, *lhsp));
4789 VEC_free (ce_s, heap, lhsc);
4790 get_constraint_for_ptr_offset (src, NULL_TREE, &rhsc);
4791 lhs = get_function_part_constraint (fi, fi_uses);
ac47786e 4792 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
25a6a873
RG
4793 process_constraint (new_constraint (lhs, *rhsp));
4794 VEC_free (ce_s, heap, rhsc);
4795 return;
4796 }
4797 /* The following function clobbers memory pointed to by
4798 its argument. */
4799 case BUILT_IN_MEMSET:
36dc1a88 4800 case BUILT_IN_MEMSET_CHK:
25a6a873
RG
4801 {
4802 tree dest = gimple_call_arg (t, 0);
4803 unsigned i;
4804 ce_s *lhsp;
4805 get_constraint_for_ptr_offset (dest, NULL_TREE, &lhsc);
4806 lhs = get_function_part_constraint (fi, fi_clobbers);
ac47786e 4807 FOR_EACH_VEC_ELT (ce_s, lhsc, i, lhsp)
25a6a873
RG
4808 process_constraint (new_constraint (lhs, *lhsp));
4809 VEC_free (ce_s, heap, lhsc);
4810 return;
4811 }
4812 /* The following functions clobber their second and third
4813 arguments. */
4814 case BUILT_IN_SINCOS:
4815 case BUILT_IN_SINCOSF:
4816 case BUILT_IN_SINCOSL:
4817 {
4818 process_ipa_clobber (fi, gimple_call_arg (t, 1));
4819 process_ipa_clobber (fi, gimple_call_arg (t, 2));
4820 return;
4821 }
4822 /* The following functions clobber their second argument. */
4823 case BUILT_IN_FREXP:
4824 case BUILT_IN_FREXPF:
4825 case BUILT_IN_FREXPL:
4826 case BUILT_IN_LGAMMA_R:
4827 case BUILT_IN_LGAMMAF_R:
4828 case BUILT_IN_LGAMMAL_R:
4829 case BUILT_IN_GAMMA_R:
4830 case BUILT_IN_GAMMAF_R:
4831 case BUILT_IN_GAMMAL_R:
4832 case BUILT_IN_MODF:
4833 case BUILT_IN_MODFF:
4834 case BUILT_IN_MODFL:
4835 {
4836 process_ipa_clobber (fi, gimple_call_arg (t, 1));
4837 return;
4838 }
4839 /* The following functions clobber their third argument. */
4840 case BUILT_IN_REMQUO:
4841 case BUILT_IN_REMQUOF:
4842 case BUILT_IN_REMQUOL:
4843 {
4844 process_ipa_clobber (fi, gimple_call_arg (t, 2));
4845 return;
4846 }
4847 /* The following functions neither read nor clobber memory. */
45d439ac 4848 case BUILT_IN_ASSUME_ALIGNED:
25a6a873
RG
4849 case BUILT_IN_FREE:
4850 return;
4851 /* Trampolines are of no interest to us. */
4852 case BUILT_IN_INIT_TRAMPOLINE:
4853 case BUILT_IN_ADJUST_TRAMPOLINE:
4854 return;
4855 case BUILT_IN_VA_START:
4856 case BUILT_IN_VA_END:
4857 return;
4858 /* printf-style functions may have hooks to set pointers to
4859 point to somewhere into the generated string. Leave them
4860 for a later excercise... */
4861 default:
4862 /* Fallthru to general call handling. */;
4863 }
4864
4865 /* Parameters passed by value are used. */
4866 lhs = get_function_part_constraint (fi, fi_uses);
4867 for (i = 0; i < gimple_call_num_args (t); i++)
4868 {
4869 struct constraint_expr *rhsp;
4870 tree arg = gimple_call_arg (t, i);
4871
4872 if (TREE_CODE (arg) == SSA_NAME
4873 || is_gimple_min_invariant (arg))
4874 continue;
4875
4876 get_constraint_for_address_of (arg, &rhsc);
ac47786e 4877 FOR_EACH_VEC_ELT (ce_s, rhsc, j, rhsp)
25a6a873
RG
4878 process_constraint (new_constraint (lhs, *rhsp));
4879 VEC_free (ce_s, heap, rhsc);
4880 }
4881
4882 /* Build constraints for propagating clobbers/uses along the
4883 callgraph edges. */
4884 cfi = get_fi_for_callee (t);
4885 if (cfi->id == anything_id)
4886 {
4887 if (gimple_vdef (t))
4888 make_constraint_from (first_vi_for_offset (fi, fi_clobbers),
4889 anything_id);
4890 make_constraint_from (first_vi_for_offset (fi, fi_uses),
4891 anything_id);
4892 return;
4893 }
4894
4895 /* For callees without function info (that's external functions),
4896 ESCAPED is clobbered and used. */
4897 if (gimple_call_fndecl (t)
4898 && !cfi->is_fn_info)
4899 {
4900 varinfo_t vi;
4901
4902 if (gimple_vdef (t))
4903 make_copy_constraint (first_vi_for_offset (fi, fi_clobbers),
4904 escaped_id);
4905 make_copy_constraint (first_vi_for_offset (fi, fi_uses), escaped_id);
4906
4907 /* Also honor the call statement use/clobber info. */
4908 if ((vi = lookup_call_clobber_vi (t)) != NULL)
4909 make_copy_constraint (first_vi_for_offset (fi, fi_clobbers),
4910 vi->id);
4911 if ((vi = lookup_call_use_vi (t)) != NULL)
4912 make_copy_constraint (first_vi_for_offset (fi, fi_uses),
4913 vi->id);
4914 return;
4915 }
4916
4917 /* Otherwise the caller clobbers and uses what the callee does.
4918 ??? This should use a new complex constraint that filters
4919 local variables of the callee. */
4920 if (gimple_vdef (t))
4921 {
4922 lhs = get_function_part_constraint (fi, fi_clobbers);
4923 rhs = get_function_part_constraint (cfi, fi_clobbers);
4924 process_constraint (new_constraint (lhs, rhs));
4925 }
4926 lhs = get_function_part_constraint (fi, fi_uses);
4927 rhs = get_function_part_constraint (cfi, fi_uses);
4928 process_constraint (new_constraint (lhs, rhs));
4929 }
4930 else if (gimple_code (t) == GIMPLE_ASM)
4931 {
4932 /* ??? Ick. We can do better. */
4933 if (gimple_vdef (t))
4934 make_constraint_from (first_vi_for_offset (fi, fi_clobbers),
4935 anything_id);
4936 make_constraint_from (first_vi_for_offset (fi, fi_uses),
4937 anything_id);
4938 }
4939
4940 VEC_free (ce_s, heap, rhsc);
4941}
4942
4943
910fdc79 4944/* Find the first varinfo in the same variable as START that overlaps with
5006671f 4945 OFFSET. Return NULL if we can't find one. */
910fdc79 4946
c58936b6 4947static varinfo_t
910fdc79
DB
4948first_vi_for_offset (varinfo_t start, unsigned HOST_WIDE_INT offset)
4949{
5006671f
RG
4950 /* If the offset is outside of the variable, bail out. */
4951 if (offset >= start->fullsize)
4952 return NULL;
4953
4954 /* If we cannot reach offset from start, lookup the first field
4955 and start from there. */
4956 if (start->offset > offset)
4957 start = lookup_vi_for_tree (start->decl);
4958
4959 while (start)
910fdc79
DB
4960 {
4961 /* We may not find a variable in the field list with the actual
4962 offset when when we have glommed a structure to a variable.
4963 In that case, however, offset should still be within the size
4964 of the variable. */
5006671f 4965 if (offset >= start->offset
de925a03 4966 && (offset - start->offset) < start->size)
5006671f
RG
4967 return start;
4968
4969 start= start->next;
910fdc79 4970 }
5006671f 4971
8971094d 4972 return NULL;
910fdc79
DB
4973}
4974
5006671f
RG
4975/* Find the first varinfo in the same variable as START that overlaps with
4976 OFFSET. If there is no such varinfo the varinfo directly preceding
4977 OFFSET is returned. */
4978
4979static varinfo_t
4980first_or_preceding_vi_for_offset (varinfo_t start,
4981 unsigned HOST_WIDE_INT offset)
4982{
4983 /* If we cannot reach offset from start, lookup the first field
4984 and start from there. */
4985 if (start->offset > offset)
4986 start = lookup_vi_for_tree (start->decl);
4987
4988 /* We may not find a variable in the field list with the actual
4989 offset when when we have glommed a structure to a variable.
4990 In that case, however, offset should still be within the size
4991 of the variable.
4992 If we got beyond the offset we look for return the field
4993 directly preceding offset which may be the last field. */
4994 while (start->next
4995 && offset >= start->offset
de925a03 4996 && !((offset - start->offset) < start->size))
5006671f
RG
4997 start = start->next;
4998
4999 return start;
5000}
5001
910fdc79 5002
31de5b77
RG
5003/* This structure is used during pushing fields onto the fieldstack
5004 to track the offset of the field, since bitpos_of_field gives it
5005 relative to its immediate containing type, and we want it relative
5006 to the ultimate containing object. */
5007
5008struct fieldoff
5009{
ee7d4b57
RG
5010 /* Offset from the base of the base containing object to this field. */
5011 HOST_WIDE_INT offset;
31de5b77
RG
5012
5013 /* Size, in bits, of the field. */
ee7d4b57 5014 unsigned HOST_WIDE_INT size;
31de5b77 5015
ee7d4b57 5016 unsigned has_unknown_size : 1;
31de5b77 5017
0f8d6231
RG
5018 unsigned must_have_pointers : 1;
5019
ee7d4b57 5020 unsigned may_have_pointers : 1;
74d27244
RG
5021
5022 unsigned only_restrict_pointers : 1;
31de5b77
RG
5023};
5024typedef struct fieldoff fieldoff_s;
5025
5026DEF_VEC_O(fieldoff_s);
5027DEF_VEC_ALLOC_O(fieldoff_s,heap);
5028
910fdc79
DB
5029/* qsort comparison function for two fieldoff's PA and PB */
5030
c58936b6 5031static int
910fdc79
DB
5032fieldoff_compare (const void *pa, const void *pb)
5033{
5034 const fieldoff_s *foa = (const fieldoff_s *)pa;
5035 const fieldoff_s *fob = (const fieldoff_s *)pb;
185ab3b6 5036 unsigned HOST_WIDE_INT foasize, fobsize;
c58936b6 5037
185ab3b6
RG
5038 if (foa->offset < fob->offset)
5039 return -1;
5040 else if (foa->offset > fob->offset)
5041 return 1;
910fdc79 5042
ee7d4b57
RG
5043 foasize = foa->size;
5044 fobsize = fob->size;
185ab3b6 5045 if (foasize < fobsize)
ee7d4b57 5046 return -1;
185ab3b6
RG
5047 else if (foasize > fobsize)
5048 return 1;
5049 return 0;
910fdc79
DB
5050}
5051
5052/* Sort a fieldstack according to the field offset and sizes. */
31de5b77 5053static void
83f676b3 5054sort_fieldstack (VEC(fieldoff_s,heap) *fieldstack)
910fdc79 5055{
5095da95 5056 VEC_qsort (fieldoff_s, fieldstack, fieldoff_compare);
910fdc79
DB
5057}
5058
b4cf8c9d
RG
5059/* Return true if T is a type that can have subvars. */
5060
5061static inline bool
5062type_can_have_subvars (const_tree t)
5063{
5064 /* Aggregates without overlapping fields can have subvars. */
5065 return TREE_CODE (t) == RECORD_TYPE;
5066}
5067
31de5b77
RG
5068/* Return true if V is a tree that we can have subvars for.
5069 Normally, this is any aggregate type. Also complex
5070 types which are not gimple registers can have subvars. */
5071
5072static inline bool
5073var_can_have_subvars (const_tree v)
5074{
5075 /* Volatile variables should never have subvars. */
5076 if (TREE_THIS_VOLATILE (v))
5077 return false;
5078
5079 /* Non decls or memory tags can never have subvars. */
5006671f 5080 if (!DECL_P (v))
31de5b77
RG
5081 return false;
5082
b4cf8c9d 5083 return type_can_have_subvars (TREE_TYPE (v));
31de5b77
RG
5084}
5085
0f8d6231
RG
5086/* Return true if T is a type that does contain pointers. */
5087
5088static bool
5089type_must_have_pointers (tree type)
5090{
5091 if (POINTER_TYPE_P (type))
5092 return true;
5093
5094 if (TREE_CODE (type) == ARRAY_TYPE)
5095 return type_must_have_pointers (TREE_TYPE (type));
5096
5097 /* A function or method can have pointers as arguments, so track
5098 those separately. */
5099 if (TREE_CODE (type) == FUNCTION_TYPE
5100 || TREE_CODE (type) == METHOD_TYPE)
5101 return true;
5102
5103 return false;
5104}
5105
5106static bool
5107field_must_have_pointers (tree t)
5108{
5109 return type_must_have_pointers (TREE_TYPE (t));
5110}
5111
d7705551
DN
5112/* Given a TYPE, and a vector of field offsets FIELDSTACK, push all
5113 the fields of TYPE onto fieldstack, recording their offsets along
5114 the way.
5115
5116 OFFSET is used to keep track of the offset in this entire
5117 structure, rather than just the immediately containing structure.
18abb35e
RG
5118 Returns false if the caller is supposed to handle the field we
5119 recursed for. */
910fdc79 5120
18abb35e 5121static bool
c58936b6 5122push_fields_onto_fieldstack (tree type, VEC(fieldoff_s,heap) **fieldstack,
0f8d6231 5123 HOST_WIDE_INT offset)
910fdc79
DB
5124{
5125 tree field;
18abb35e 5126 bool empty_p = true;
31de5b77
RG
5127
5128 if (TREE_CODE (type) != RECORD_TYPE)
18abb35e 5129 return false;
3fe2f42a
RG
5130
5131 /* If the vector of fields is growing too big, bail out early.
5132 Callers check for VEC_length <= MAX_FIELDS_FOR_FIELD_SENSITIVE, make
5133 sure this fails. */
31de5b77 5134 if (VEC_length (fieldoff_s, *fieldstack) > MAX_FIELDS_FOR_FIELD_SENSITIVE)
18abb35e 5135 return false;
c58936b6 5136
910ad8de 5137 for (field = TYPE_FIELDS (type); field; field = DECL_CHAIN (field))
31de5b77
RG
5138 if (TREE_CODE (field) == FIELD_DECL)
5139 {
5140 bool push = false;
ee7d4b57 5141 HOST_WIDE_INT foff = bitpos_of_field (field);
31de5b77 5142
ee7d4b57
RG
5143 if (!var_can_have_subvars (field)
5144 || TREE_CODE (TREE_TYPE (field)) == QUAL_UNION_TYPE
5145 || TREE_CODE (TREE_TYPE (field)) == UNION_TYPE)
31de5b77 5146 push = true;
18abb35e 5147 else if (!push_fields_onto_fieldstack
0f8d6231 5148 (TREE_TYPE (field), fieldstack, offset + foff)
31de5b77
RG
5149 && (DECL_SIZE (field)
5150 && !integer_zerop (DECL_SIZE (field))))
5151 /* Empty structures may have actual size, like in C++. So
5152 see if we didn't push any subfields and the size is
5153 nonzero, push the field onto the stack. */
5154 push = true;
5155
5156 if (push)
910fdc79 5157 {
ee7d4b57
RG
5158 fieldoff_s *pair = NULL;
5159 bool has_unknown_size = false;
0f8d6231 5160 bool must_have_pointers_p;
ee7d4b57
RG
5161
5162 if (!VEC_empty (fieldoff_s, *fieldstack))
0823efed 5163 pair = &VEC_last (fieldoff_s, *fieldstack);
ee7d4b57 5164
3fd3b156
RG
5165 /* If there isn't anything at offset zero, create sth. */
5166 if (!pair
5167 && offset + foff != 0)
5168 {
5169 pair = VEC_safe_push (fieldoff_s, heap, *fieldstack, NULL);
5170 pair->offset = 0;
5171 pair->size = offset + foff;
5172 pair->has_unknown_size = false;
5173 pair->must_have_pointers = false;
5174 pair->may_have_pointers = false;
5175 pair->only_restrict_pointers = false;
5176 }
5177
ee7d4b57
RG
5178 if (!DECL_SIZE (field)
5179 || !host_integerp (DECL_SIZE (field), 1))
5180 has_unknown_size = true;
5181
5182 /* If adjacent fields do not contain pointers merge them. */
0f8d6231 5183 must_have_pointers_p = field_must_have_pointers (field);
ee7d4b57 5184 if (pair
ee7d4b57 5185 && !has_unknown_size
a81b065a 5186 && !must_have_pointers_p
0f8d6231
RG
5187 && !pair->must_have_pointers
5188 && !pair->has_unknown_size
5189 && pair->offset + (HOST_WIDE_INT)pair->size == offset + foff)
ee7d4b57 5190 {
ee7d4b57
RG
5191 pair->size += TREE_INT_CST_LOW (DECL_SIZE (field));
5192 }
5193 else
5194 {
5195 pair = VEC_safe_push (fieldoff_s, heap, *fieldstack, NULL);
5196 pair->offset = offset + foff;
5197 pair->has_unknown_size = has_unknown_size;
5198 if (!has_unknown_size)
5199 pair->size = TREE_INT_CST_LOW (DECL_SIZE (field));
5200 else
5201 pair->size = -1;
0f8d6231
RG
5202 pair->must_have_pointers = must_have_pointers_p;
5203 pair->may_have_pointers = true;
74d27244
RG
5204 pair->only_restrict_pointers
5205 = (!has_unknown_size
5206 && POINTER_TYPE_P (TREE_TYPE (field))
5207 && TYPE_RESTRICT (TREE_TYPE (field)));
ee7d4b57 5208 }
31de5b77 5209 }
18abb35e
RG
5210
5211 empty_p = false;
31de5b77 5212 }
910fdc79 5213
18abb35e 5214 return !empty_p;
910fdc79
DB
5215}
5216
5006671f
RG
5217/* Count the number of arguments DECL has, and set IS_VARARGS to true
5218 if it is a varargs function. */
5219
5220static unsigned int
5221count_num_arguments (tree decl, bool *is_varargs)
5222{
de925a03 5223 unsigned int num = 0;
5006671f
RG
5224 tree t;
5225
de925a03
RG
5226 /* Capture named arguments for K&R functions. They do not
5227 have a prototype and thus no TYPE_ARG_TYPES. */
910ad8de 5228 for (t = DECL_ARGUMENTS (decl); t; t = DECL_CHAIN (t))
de925a03 5229 ++num;
c58936b6 5230
de925a03
RG
5231 /* Check if the function has variadic arguments. */
5232 for (t = TYPE_ARG_TYPES (TREE_TYPE (decl)); t; t = TREE_CHAIN (t))
5233 if (TREE_VALUE (t) == void_type_node)
5234 break;
4ee00913
DB
5235 if (!t)
5236 *is_varargs = true;
de925a03
RG
5237
5238 return num;
4ee00913
DB
5239}
5240
5241/* Creation function node for DECL, using NAME, and return the index
5242 of the variable we've created for the function. */
5243
27c2cfa6 5244static varinfo_t
4ee00913
DB
5245create_function_info_for (tree decl, const char *name)
5246{
25a6a873
RG
5247 struct function *fn = DECL_STRUCT_FUNCTION (decl);
5248 varinfo_t vi, prev_vi;
c58936b6 5249 tree arg;
4ee00913
DB
5250 unsigned int i;
5251 bool is_varargs = false;
25a6a873 5252 unsigned int num_args = count_num_arguments (decl, &is_varargs);
4ee00913
DB
5253
5254 /* Create the variable info. */
5255
0bbf2ffa 5256 vi = new_var_info (decl, name);
4ee00913 5257 vi->offset = 0;
4ee00913 5258 vi->size = 1;
25a6a873
RG
5259 vi->fullsize = fi_parm_base + num_args;
5260 vi->is_fn_info = 1;
5261 vi->may_have_pointers = false;
5262 if (is_varargs)
5263 vi->fullsize = ~0;
3e5937d7 5264 insert_vi_for_tree (vi->decl, vi);
4ee00913 5265
25a6a873
RG
5266 prev_vi = vi;
5267
5268 /* Create a variable for things the function clobbers and one for
5269 things the function uses. */
4ee00913 5270 {
25a6a873
RG
5271 varinfo_t clobbervi, usevi;
5272 const char *newname;
5273 char *tempname;
5274
5275 asprintf (&tempname, "%s.clobber", name);
5276 newname = ggc_strdup (tempname);
5277 free (tempname);
5278
5279 clobbervi = new_var_info (NULL, newname);
5280 clobbervi->offset = fi_clobbers;
5281 clobbervi->size = 1;
5282 clobbervi->fullsize = vi->fullsize;
5283 clobbervi->is_full_var = true;
5284 clobbervi->is_global_var = false;
5285 gcc_assert (prev_vi->offset < clobbervi->offset);
5286 prev_vi->next = clobbervi;
5287 prev_vi = clobbervi;
25a6a873
RG
5288
5289 asprintf (&tempname, "%s.use", name);
5290 newname = ggc_strdup (tempname);
5291 free (tempname);
5292
5293 usevi = new_var_info (NULL, newname);
5294 usevi->offset = fi_uses;
5295 usevi->size = 1;
5296 usevi->fullsize = vi->fullsize;
5297 usevi->is_full_var = true;
5298 usevi->is_global_var = false;
5299 gcc_assert (prev_vi->offset < usevi->offset);
5300 prev_vi->next = usevi;
5301 prev_vi = usevi;
4ee00913
DB
5302 }
5303
25a6a873
RG
5304 /* And one for the static chain. */
5305 if (fn->static_chain_decl != NULL_TREE)
5306 {
5307 varinfo_t chainvi;
5308 const char *newname;
5309 char *tempname;
5310
5311 asprintf (&tempname, "%s.chain", name);
5312 newname = ggc_strdup (tempname);
5313 free (tempname);
5314
5315 chainvi = new_var_info (fn->static_chain_decl, newname);
5316 chainvi->offset = fi_static_chain;
5317 chainvi->size = 1;
5318 chainvi->fullsize = vi->fullsize;
5319 chainvi->is_full_var = true;
5320 chainvi->is_global_var = false;
5321 gcc_assert (prev_vi->offset < chainvi->offset);
5322 prev_vi->next = chainvi;
5323 prev_vi = chainvi;
25a6a873
RG
5324 insert_vi_for_tree (fn->static_chain_decl, chainvi);
5325 }
5326
5327 /* Create a variable for the return var. */
5328 if (DECL_RESULT (decl) != NULL
5329 || !VOID_TYPE_P (TREE_TYPE (TREE_TYPE (decl))))
5330 {
5331 varinfo_t resultvi;
5332 const char *newname;
5333 char *tempname;
5334 tree resultdecl = decl;
5335
5336 if (DECL_RESULT (decl))
5337 resultdecl = DECL_RESULT (decl);
5338
5339 asprintf (&tempname, "%s.result", name);
5340 newname = ggc_strdup (tempname);
5341 free (tempname);
5342
5343 resultvi = new_var_info (resultdecl, newname);
5344 resultvi->offset = fi_result;
5345 resultvi->size = 1;
5346 resultvi->fullsize = vi->fullsize;
5347 resultvi->is_full_var = true;
5348 if (DECL_RESULT (decl))
0f8d6231 5349 resultvi->may_have_pointers = true;
25a6a873
RG
5350 gcc_assert (prev_vi->offset < resultvi->offset);
5351 prev_vi->next = resultvi;
5352 prev_vi = resultvi;
25a6a873
RG
5353 if (DECL_RESULT (decl))
5354 insert_vi_for_tree (DECL_RESULT (decl), resultvi);
5355 }
4ee00913 5356
6416ae7f 5357 /* Set up variables for each argument. */
25a6a873
RG
5358 arg = DECL_ARGUMENTS (decl);
5359 for (i = 0; i < num_args; i++)
c58936b6 5360 {
4ee00913
DB
5361 varinfo_t argvi;
5362 const char *newname;
5363 char *tempname;
4ee00913
DB
5364 tree argdecl = decl;
5365
5366 if (arg)
5367 argdecl = arg;
c58936b6 5368
25a6a873 5369 asprintf (&tempname, "%s.arg%d", name, i);
4ee00913
DB
5370 newname = ggc_strdup (tempname);
5371 free (tempname);
5372
0bbf2ffa 5373 argvi = new_var_info (argdecl, newname);
25a6a873 5374 argvi->offset = fi_parm_base + i;
4ee00913 5375 argvi->size = 1;
e5bae89b 5376 argvi->is_full_var = true;
4ee00913 5377 argvi->fullsize = vi->fullsize;
25a6a873 5378 if (arg)
0f8d6231 5379 argvi->may_have_pointers = true;
25a6a873
RG
5380 gcc_assert (prev_vi->offset < argvi->offset);
5381 prev_vi->next = argvi;
5382 prev_vi = argvi;
4ee00913
DB
5383 if (arg)
5384 {
3e5937d7 5385 insert_vi_for_tree (arg, argvi);
910ad8de 5386 arg = DECL_CHAIN (arg);
4ee00913
DB
5387 }
5388 }
4cf4d6a3 5389
25a6a873
RG
5390 /* Add one representative for all further args. */
5391 if (is_varargs)
4ee00913 5392 {
25a6a873 5393 varinfo_t argvi;
4ee00913
DB
5394 const char *newname;
5395 char *tempname;
25a6a873 5396 tree decl;
c58936b6 5397
25a6a873 5398 asprintf (&tempname, "%s.varargs", name);
4ee00913
DB
5399 newname = ggc_strdup (tempname);
5400 free (tempname);
5401
25a6a873 5402 /* We need sth that can be pointed to for va_start. */
7d6e2521 5403 decl = build_fake_var_decl (ptr_type_node);
25a6a873
RG
5404
5405 argvi = new_var_info (decl, newname);
5406 argvi->offset = fi_parm_base + num_args;
5407 argvi->size = ~0;
5408 argvi->is_full_var = true;
5409 argvi->is_heap_var = true;
5410 argvi->fullsize = vi->fullsize;
5411 gcc_assert (prev_vi->offset < argvi->offset);
5412 prev_vi->next = argvi;
5413 prev_vi = argvi;
4ee00913 5414 }
0bbf2ffa 5415
27c2cfa6 5416 return vi;
c58936b6 5417}
4ee00913 5418
6c11790d 5419
c58936b6 5420/* Return true if FIELDSTACK contains fields that overlap.
6c11790d
DB
5421 FIELDSTACK is assumed to be sorted by offset. */
5422
5423static bool
5424check_for_overlaps (VEC (fieldoff_s,heap) *fieldstack)
5425{
5426 fieldoff_s *fo = NULL;
5427 unsigned int i;
30d2662c 5428 HOST_WIDE_INT lastoffset = -1;
6c11790d 5429
ac47786e 5430 FOR_EACH_VEC_ELT (fieldoff_s, fieldstack, i, fo)
6c11790d
DB
5431 {
5432 if (fo->offset == lastoffset)
5433 return true;
5434 lastoffset = fo->offset;
5435 }
5436 return false;
5437}
21392f19 5438
910fdc79
DB
5439/* Create a varinfo structure for NAME and DECL, and add it to VARMAP.
5440 This will also create any varinfo structures necessary for fields
5441 of DECL. */
5442
18abb35e
RG
5443static varinfo_t
5444create_variable_info_for_1 (tree decl, const char *name)
910fdc79 5445{
18abb35e 5446 varinfo_t vi, newvi;
82d6e6fc
KG
5447 tree decl_type = TREE_TYPE (decl);
5448 tree declsize = DECL_P (decl) ? DECL_SIZE (decl) : TYPE_SIZE (decl_type);
910fdc79 5449 VEC (fieldoff_s,heap) *fieldstack = NULL;
18abb35e
RG
5450 fieldoff_s *fo;
5451 unsigned int i;
c58936b6 5452
4ee00913 5453 if (!declsize
ee7d4b57 5454 || !host_integerp (declsize, 1))
910fdc79 5455 {
18abb35e
RG
5456 vi = new_var_info (decl, name);
5457 vi->offset = 0;
910fdc79 5458 vi->size = ~0;
18abb35e
RG
5459 vi->fullsize = ~0;
5460 vi->is_unknown_size_var = true;
5461 vi->is_full_var = true;
0f8d6231 5462 vi->may_have_pointers = true;
18abb35e 5463 return vi;
910fdc79 5464 }
18abb35e
RG
5465
5466 /* Collect field information. */
5467 if (use_field_sensitive
5468 && var_can_have_subvars (decl)
5469 /* ??? Force us to not use subfields for global initializers
5470 in IPA mode. Else we'd have to parse arbitrary initializers. */
5471 && !(in_ipa_mode
5472 && is_global_var (decl)
5473 && DECL_INITIAL (decl)))
910fdc79 5474 {
18abb35e
RG
5475 fieldoff_s *fo = NULL;
5476 bool notokay = false;
5477 unsigned int i;
5478
0f8d6231 5479 push_fields_onto_fieldstack (decl_type, &fieldstack, 0);
18abb35e
RG
5480
5481 for (i = 0; !notokay && VEC_iterate (fieldoff_s, fieldstack, i, fo); i++)
5482 if (fo->has_unknown_size
5483 || fo->offset < 0)
5484 {
5485 notokay = true;
5486 break;
5487 }
5488
5489 /* We can't sort them if we have a field with a variable sized type,
5490 which will make notokay = true. In that case, we are going to return
5491 without creating varinfos for the fields anyway, so sorting them is a
5492 waste to boot. */
5493 if (!notokay)
5494 {
5495 sort_fieldstack (fieldstack);
5496 /* Due to some C++ FE issues, like PR 22488, we might end up
5497 what appear to be overlapping fields even though they,
5498 in reality, do not overlap. Until the C++ FE is fixed,
5499 we will simply disable field-sensitivity for these cases. */
5500 notokay = check_for_overlaps (fieldstack);
5501 }
5502
5503 if (notokay)
5504 VEC_free (fieldoff_s, heap, fieldstack);
5505 }
5506
5507 /* If we didn't end up collecting sub-variables create a full
5508 variable for the decl. */
5509 if (VEC_length (fieldoff_s, fieldstack) <= 1
5510 || VEC_length (fieldoff_s, fieldstack) > MAX_FIELDS_FOR_FIELD_SENSITIVE)
5511 {
5512 vi = new_var_info (decl, name);
5513 vi->offset = 0;
0f8d6231 5514 vi->may_have_pointers = true;
4ee00913 5515 vi->fullsize = TREE_INT_CST_LOW (declsize);
910fdc79 5516 vi->size = vi->fullsize;
18abb35e
RG
5517 vi->is_full_var = true;
5518 VEC_free (fieldoff_s, heap, fieldstack);
5519 return vi;
910fdc79 5520 }
c58936b6 5521
18abb35e
RG
5522 vi = new_var_info (decl, name);
5523 vi->fullsize = TREE_INT_CST_LOW (declsize);
5524 for (i = 0, newvi = vi;
5525 VEC_iterate (fieldoff_s, fieldstack, i, fo);
5526 ++i, newvi = newvi->next)
5527 {
5528 const char *newname = "NULL";
5529 char *tempname;
5530
5531 if (dump_file)
5532 {
5533 asprintf (&tempname, "%s." HOST_WIDE_INT_PRINT_DEC
5534 "+" HOST_WIDE_INT_PRINT_DEC, name, fo->offset, fo->size);
5535 newname = ggc_strdup (tempname);
5536 free (tempname);
5537 }
5538 newvi->name = newname;
5539 newvi->offset = fo->offset;
5540 newvi->size = fo->size;
5541 newvi->fullsize = vi->fullsize;
5542 newvi->may_have_pointers = fo->may_have_pointers;
5543 newvi->only_restrict_pointers = fo->only_restrict_pointers;
5544 if (i + 1 < VEC_length (fieldoff_s, fieldstack))
5545 newvi->next = new_var_info (decl, name);
5546 }
5547
5548 VEC_free (fieldoff_s, heap, fieldstack);
25a6a873 5549
18abb35e
RG
5550 return vi;
5551}
5552
5553static unsigned int
5554create_variable_info_for (tree decl, const char *name)
5555{
5556 varinfo_t vi = create_variable_info_for_1 (decl, name);
5557 unsigned int id = vi->id;
5558
5559 insert_vi_for_tree (decl, vi);
5560
1565af08
RG
5561 if (TREE_CODE (decl) != VAR_DECL)
5562 return id;
5563
18abb35e
RG
5564 /* Create initial constraints for globals. */
5565 for (; vi; vi = vi->next)
13c6bff4 5566 {
18abb35e
RG
5567 if (!vi->may_have_pointers
5568 || !vi->is_global_var)
5569 continue;
5570
25a6a873 5571 /* Mark global restrict qualified pointers. */
18abb35e
RG
5572 if ((POINTER_TYPE_P (TREE_TYPE (decl))
5573 && TYPE_RESTRICT (TREE_TYPE (decl)))
5574 || vi->only_restrict_pointers)
d3553615
RG
5575 {
5576 make_constraint_from_global_restrict (vi, "GLOBAL_RESTRICT");
5577 continue;
5578 }
25a6a873 5579
1565af08 5580 /* In non-IPA mode the initializer from nonlocal is all we need. */
25a6a873 5581 if (!in_ipa_mode
1565af08 5582 || DECL_HARD_REGISTER (decl))
25a6a873
RG
5583 make_copy_constraint (vi, nonlocal_id);
5584
d3553615
RG
5585 /* In IPA mode parse the initializer and generate proper constraints
5586 for it. */
1565af08 5587 else
25a6a873 5588 {
1565af08
RG
5589 struct varpool_node *vnode = varpool_get_node (decl);
5590
5591 /* For escaped variables initialize them from nonlocal. */
5592 if (!varpool_all_refs_explicit_p (vnode))
5593 make_copy_constraint (vi, nonlocal_id);
5594
5595 /* If this is a global variable with an initializer and we are in
5596 IPA mode generate constraints for it. */
aa19cf87
JH
5597 if (DECL_INITIAL (decl)
5598 && vnode->analyzed)
25a6a873 5599 {
1565af08
RG
5600 VEC (ce_s, heap) *rhsc = NULL;
5601 struct constraint_expr lhs, *rhsp;
5602 unsigned i;
5603 get_constraint_for_rhs (DECL_INITIAL (decl), &rhsc);
5604 lhs.var = vi->id;
25a6a873
RG
5605 lhs.offset = 0;
5606 lhs.type = SCALAR;
ac47786e 5607 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
25a6a873 5608 process_constraint (new_constraint (lhs, *rhsp));
1565af08
RG
5609 /* If this is a variable that escapes from the unit
5610 the initializer escapes as well. */
5611 if (!varpool_all_refs_explicit_p (vnode))
5612 {
5613 lhs.var = escaped_id;
5614 lhs.offset = 0;
5615 lhs.type = SCALAR;
5616 FOR_EACH_VEC_ELT (ce_s, rhsc, i, rhsp)
5617 process_constraint (new_constraint (lhs, *rhsp));
5618 }
5619 VEC_free (ce_s, heap, rhsc);
25a6a873 5620 }
25a6a873 5621 }
13c6bff4 5622 }
910fdc79 5623
18abb35e 5624 return id;
910fdc79
DB
5625}
5626
5627/* Print out the points-to solution for VAR to FILE. */
5628
5006671f 5629static void
910fdc79
DB
5630dump_solution_for_var (FILE *file, unsigned int var)
5631{
5632 varinfo_t vi = get_varinfo (var);
5633 unsigned int i;
c58936b6
DB
5634 bitmap_iterator bi;
5635
25a6a873
RG
5636 /* Dump the solution for unified vars anyway, this avoids difficulties
5637 in scanning dumps in the testsuite. */
5638 fprintf (file, "%s = { ", vi->name);
5639 vi = get_varinfo (find (var));
5640 EXECUTE_IF_SET_IN_BITMAP (vi->solution, 0, i, bi)
5641 fprintf (file, "%s ", get_varinfo (i)->name);
5642 fprintf (file, "}");
5643
5644 /* But note when the variable was unified. */
5645 if (vi->id != var)
5646 fprintf (file, " same as %s", vi->name);
5647
5648 fprintf (file, "\n");
910fdc79
DB
5649}
5650
5651/* Print the points-to solution for VAR to stdout. */
5652
24e47c76 5653DEBUG_FUNCTION void
910fdc79
DB
5654debug_solution_for_var (unsigned int var)
5655{
5656 dump_solution_for_var (stdout, var);
5657}
5658
910fdc79
DB
5659/* Create varinfo structures for all of the variables in the
5660 function for intraprocedural mode. */
5661
5662static void
5663intra_create_variable_infos (void)
5664{
5665 tree t;
b23987ec 5666
6e7e772d 5667 /* For each incoming pointer argument arg, create the constraint ARG
0d3c82d6
RG
5668 = NONLOCAL or a dummy variable if it is a restrict qualified
5669 passed-by-reference argument. */
910ad8de 5670 for (t = DECL_ARGUMENTS (current_function_decl); t; t = DECL_CHAIN (t))
910fdc79 5671 {
d3553615 5672 varinfo_t p = get_vi_for_tree (t);
c58936b6 5673
bacd3fb6 5674 /* For restrict qualified pointers to objects passed by
960dcaf5
JJ
5675 reference build a real representative for the pointed-to object.
5676 Treat restrict qualified references the same. */
5677 if (TYPE_RESTRICT (TREE_TYPE (t))
5678 && ((DECL_BY_REFERENCE (t) && POINTER_TYPE_P (TREE_TYPE (t)))
b31799f4
EB
5679 || TREE_CODE (TREE_TYPE (t)) == REFERENCE_TYPE)
5680 && !type_contains_placeholder_p (TREE_TYPE (TREE_TYPE (t))))
bacd3fb6
RG
5681 {
5682 struct constraint_expr lhsc, rhsc;
5683 varinfo_t vi;
7d6e2521
RG
5684 tree heapvar = build_fake_var_decl (TREE_TYPE (TREE_TYPE (t)));
5685 DECL_EXTERNAL (heapvar) = 1;
1565af08
RG
5686 vi = create_variable_info_for_1 (heapvar, "PARM_NOALIAS");
5687 insert_vi_for_tree (heapvar, vi);
d3553615 5688 lhsc.var = p->id;
bacd3fb6
RG
5689 lhsc.type = SCALAR;
5690 lhsc.offset = 0;
7d6e2521 5691 rhsc.var = vi->id;
bacd3fb6
RG
5692 rhsc.type = ADDRESSOF;
5693 rhsc.offset = 0;
5694 process_constraint (new_constraint (lhsc, rhsc));
1565af08
RG
5695 for (; vi; vi = vi->next)
5696 if (vi->may_have_pointers)
5697 {
5698 if (vi->only_restrict_pointers)
d3553615
RG
5699 make_constraint_from_global_restrict (vi, "GLOBAL_RESTRICT");
5700 else
5701 make_copy_constraint (vi, nonlocal_id);
1565af08 5702 }
bacd3fb6
RG
5703 continue;
5704 }
5705
74d27244
RG
5706 if (POINTER_TYPE_P (TREE_TYPE (t))
5707 && TYPE_RESTRICT (TREE_TYPE (t)))
d3553615
RG
5708 make_constraint_from_global_restrict (p, "PARM_RESTRICT");
5709 else
5710 {
5711 for (; p; p = p->next)
5712 {
5713 if (p->only_restrict_pointers)
5714 make_constraint_from_global_restrict (p, "PARM_RESTRICT");
5715 else if (p->may_have_pointers)
5716 make_constraint_from (p, nonlocal_id);
5717 }
5718 }
21392f19 5719 }
75af9746 5720
10bd6c5c
RG
5721 /* Add a constraint for a result decl that is passed by reference. */
5722 if (DECL_RESULT (cfun->decl)
5723 && DECL_BY_REFERENCE (DECL_RESULT (cfun->decl)))
5724 {
5725 varinfo_t p, result_vi = get_vi_for_tree (DECL_RESULT (cfun->decl));
5726
5727 for (p = result_vi; p; p = p->next)
5006671f 5728 make_constraint_from (p, nonlocal_id);
10bd6c5c
RG
5729 }
5730
75af9746
RG
5731 /* Add a constraint for the incoming static chain parameter. */
5732 if (cfun->static_chain_decl != NULL_TREE)
5733 {
5734 varinfo_t p, chain_vi = get_vi_for_tree (cfun->static_chain_decl);
5735
5736 for (p = chain_vi; p; p = p->next)
5737 make_constraint_from (p, nonlocal_id);
5738 }
910fdc79
DB
5739}
5740
1296c31f
DB
5741/* Structure used to put solution bitmaps in a hashtable so they can
5742 be shared among variables with the same points-to set. */
5743
5744typedef struct shared_bitmap_info
5745{
5746 bitmap pt_vars;
5747 hashval_t hashcode;
5748} *shared_bitmap_info_t;
e5cfc29f 5749typedef const struct shared_bitmap_info *const_shared_bitmap_info_t;
1296c31f
DB
5750
5751static htab_t shared_bitmap_table;
5752
5753/* Hash function for a shared_bitmap_info_t */
5754
5755static hashval_t
5756shared_bitmap_hash (const void *p)
5757{
e5cfc29f 5758 const_shared_bitmap_info_t const bi = (const_shared_bitmap_info_t) p;
1296c31f
DB
5759 return bi->hashcode;
5760}
5761
5762/* Equality function for two shared_bitmap_info_t's. */
5763
5764static int
5765shared_bitmap_eq (const void *p1, const void *p2)
5766{
e5cfc29f
KG
5767 const_shared_bitmap_info_t const sbi1 = (const_shared_bitmap_info_t) p1;
5768 const_shared_bitmap_info_t const sbi2 = (const_shared_bitmap_info_t) p2;
1296c31f
DB
5769 return bitmap_equal_p (sbi1->pt_vars, sbi2->pt_vars);
5770}
5771
5772/* Lookup a bitmap in the shared bitmap hashtable, and return an already
5773 existing instance if there is one, NULL otherwise. */
5774
5775static bitmap
5776shared_bitmap_lookup (bitmap pt_vars)
5777{
5778 void **slot;
5779 struct shared_bitmap_info sbi;
5780
5781 sbi.pt_vars = pt_vars;
5782 sbi.hashcode = bitmap_hash (pt_vars);
7b765bed 5783
1296c31f
DB
5784 slot = htab_find_slot_with_hash (shared_bitmap_table, &sbi,
5785 sbi.hashcode, NO_INSERT);
5786 if (!slot)
5787 return NULL;
5788 else
5789 return ((shared_bitmap_info_t) *slot)->pt_vars;
5790}
5791
5792
5793/* Add a bitmap to the shared bitmap hashtable. */
5794
5795static void
5796shared_bitmap_add (bitmap pt_vars)
5797{
5798 void **slot;
5799 shared_bitmap_info_t sbi = XNEW (struct shared_bitmap_info);
7b765bed 5800
1296c31f
DB
5801 sbi->pt_vars = pt_vars;
5802 sbi->hashcode = bitmap_hash (pt_vars);
7b765bed 5803
1296c31f
DB
5804 slot = htab_find_slot_with_hash (shared_bitmap_table, sbi,
5805 sbi->hashcode, INSERT);
5806 gcc_assert (!*slot);
5807 *slot = (void *) sbi;
5808}
5809
5810
4d7a65ea 5811/* Set bits in INTO corresponding to the variable uids in solution set FROM. */
910fdc79 5812
b8698a0f 5813static void
4d7a65ea 5814set_uids_in_ptset (bitmap into, bitmap from, struct pt_solution *pt)
910fdc79
DB
5815{
5816 unsigned int i;
5817 bitmap_iterator bi;
f83ca251 5818
910fdc79
DB
5819 EXECUTE_IF_SET_IN_BITMAP (from, 0, i, bi)
5820 {
5821 varinfo_t vi = get_varinfo (i);
c58936b6 5822
e8ca4159
DN
5823 /* The only artificial variables that are allowed in a may-alias
5824 set are heap variables. */
5825 if (vi->is_artificial_var && !vi->is_heap_var)
5826 continue;
c58936b6 5827
5611cf0b
RG
5828 if (TREE_CODE (vi->decl) == VAR_DECL
5829 || TREE_CODE (vi->decl) == PARM_DECL
5830 || TREE_CODE (vi->decl) == RESULT_DECL)
58b82d2b 5831 {
25a6a873
RG
5832 /* If we are in IPA mode we will not recompute points-to
5833 sets after inlining so make sure they stay valid. */
5834 if (in_ipa_mode
5835 && !DECL_PT_UID_SET_P (vi->decl))
5836 SET_DECL_PT_UID (vi->decl, DECL_UID (vi->decl));
5837
5006671f
RG
5838 /* Add the decl to the points-to set. Note that the points-to
5839 set contains global variables. */
25a6a873 5840 bitmap_set_bit (into, DECL_PT_UID (vi->decl));
74d27244 5841 if (vi->is_global_var)
5006671f 5842 pt->vars_contains_global = true;
e8ca4159 5843 }
910fdc79
DB
5844 }
5845}
e8ca4159
DN
5846
5847
4d7a65ea 5848/* Compute the points-to solution *PT for the variable VI. */
ce1b6498
RG
5849
5850static void
1cfd38be 5851find_what_var_points_to (varinfo_t orig_vi, struct pt_solution *pt)
ce1b6498 5852{
4d7a65ea 5853 unsigned int i;
5006671f
RG
5854 bitmap_iterator bi;
5855 bitmap finished_solution;
5856 bitmap result;
1cfd38be 5857 varinfo_t vi;
5006671f
RG
5858
5859 memset (pt, 0, sizeof (struct pt_solution));
5860
5861 /* This variable may have been collapsed, let's get the real
5862 variable. */
1cfd38be 5863 vi = get_varinfo (find (orig_vi->id));
5006671f
RG
5864
5865 /* Translate artificial variables into SSA_NAME_PTR_INFO
5866 attributes. */
5867 EXECUTE_IF_SET_IN_BITMAP (vi->solution, 0, i, bi)
5868 {
5869 varinfo_t vi = get_varinfo (i);
5870
5871 if (vi->is_artificial_var)
5872 {
5873 if (vi->id == nothing_id)
5874 pt->null = 1;
5875 else if (vi->id == escaped_id)
25a6a873
RG
5876 {
5877 if (in_ipa_mode)
5878 pt->ipa_escaped = 1;
5879 else
5880 pt->escaped = 1;
5881 }
5006671f
RG
5882 else if (vi->id == nonlocal_id)
5883 pt->nonlocal = 1;
5884 else if (vi->is_heap_var)
5885 /* We represent heapvars in the points-to set properly. */
5886 ;
91deb937
RG
5887 else if (vi->id == readonly_id)
5888 /* Nobody cares. */
5889 ;
5006671f 5890 else if (vi->id == anything_id
5006671f
RG
5891 || vi->id == integer_id)
5892 pt->anything = 1;
5893 }
5894 }
5895
5896 /* Instead of doing extra work, simply do not create
5897 elaborate points-to information for pt_anything pointers. */
d3553615 5898 if (pt->anything)
4d7a65ea 5899 return;
5006671f
RG
5900
5901 /* Share the final set of variables when possible. */
5902 finished_solution = BITMAP_GGC_ALLOC ();
5903 stats.points_to_sets_created++;
5904
4d7a65ea 5905 set_uids_in_ptset (finished_solution, vi->solution, pt);
5006671f
RG
5906 result = shared_bitmap_lookup (finished_solution);
5907 if (!result)
5908 {
5909 shared_bitmap_add (finished_solution);
5910 pt->vars = finished_solution;
5911 }
5912 else
5913 {
5914 pt->vars = result;
5915 bitmap_clear (finished_solution);
5916 }
5006671f
RG
5917}
5918
4d7a65ea 5919/* Given a pointer variable P, fill in its points-to set. */
5006671f
RG
5920
5921static void
4d7a65ea 5922find_what_p_points_to (tree p)
5006671f
RG
5923{
5924 struct ptr_info_def *pi;
7cc92f92 5925 tree lookup_p = p;
3e5937d7 5926 varinfo_t vi;
e8ca4159 5927
7cc92f92
RG
5928 /* For parameters, get at the points-to set for the actual parm
5929 decl. */
c58936b6 5930 if (TREE_CODE (p) == SSA_NAME
67386041 5931 && SSA_NAME_IS_DEFAULT_DEF (p)
6938f93f 5932 && (TREE_CODE (SSA_NAME_VAR (p)) == PARM_DECL
67386041 5933 || TREE_CODE (SSA_NAME_VAR (p)) == RESULT_DECL))
7cc92f92
RG
5934 lookup_p = SSA_NAME_VAR (p);
5935
15814ba0 5936 vi = lookup_vi_for_tree (lookup_p);
5006671f
RG
5937 if (!vi)
5938 return;
5939
5940 pi = get_ptr_info (p);
4d7a65ea 5941 find_what_var_points_to (vi, &pi->pt);
5006671f 5942}
7b765bed 5943
910fdc79 5944
5006671f 5945/* Query statistics for points-to solutions. */
c58936b6 5946
5006671f
RG
5947static struct {
5948 unsigned HOST_WIDE_INT pt_solution_includes_may_alias;
5949 unsigned HOST_WIDE_INT pt_solution_includes_no_alias;
5950 unsigned HOST_WIDE_INT pt_solutions_intersect_may_alias;
5951 unsigned HOST_WIDE_INT pt_solutions_intersect_no_alias;
5952} pta_stats;
e8ca4159 5953
5006671f
RG
5954void
5955dump_pta_stats (FILE *s)
5956{
5957 fprintf (s, "\nPTA query stats:\n");
5958 fprintf (s, " pt_solution_includes: "
5959 HOST_WIDE_INT_PRINT_DEC" disambiguations, "
5960 HOST_WIDE_INT_PRINT_DEC" queries\n",
5961 pta_stats.pt_solution_includes_no_alias,
5962 pta_stats.pt_solution_includes_no_alias
5963 + pta_stats.pt_solution_includes_may_alias);
5964 fprintf (s, " pt_solutions_intersect: "
5965 HOST_WIDE_INT_PRINT_DEC" disambiguations, "
5966 HOST_WIDE_INT_PRINT_DEC" queries\n",
5967 pta_stats.pt_solutions_intersect_no_alias,
5968 pta_stats.pt_solutions_intersect_no_alias
5969 + pta_stats.pt_solutions_intersect_may_alias);
5970}
e8ca4159 5971
9f09b13f 5972
5006671f
RG
5973/* Reset the points-to solution *PT to a conservative default
5974 (point to anything). */
7b765bed 5975
5006671f
RG
5976void
5977pt_solution_reset (struct pt_solution *pt)
5978{
5979 memset (pt, 0, sizeof (struct pt_solution));
5980 pt->anything = true;
5981}
1296c31f 5982
55b34b5f 5983/* Set the points-to solution *PT to point only to the variables
25a6a873
RG
5984 in VARS. VARS_CONTAINS_GLOBAL specifies whether that contains
5985 global variables and VARS_CONTAINS_RESTRICT specifies whether
5986 it contains restrict tag variables. */
55b34b5f
RG
5987
5988void
d3553615 5989pt_solution_set (struct pt_solution *pt, bitmap vars, bool vars_contains_global)
55b34b5f 5990{
55b34b5f
RG
5991 memset (pt, 0, sizeof (struct pt_solution));
5992 pt->vars = vars;
25a6a873 5993 pt->vars_contains_global = vars_contains_global;
25a6a873
RG
5994}
5995
90fa9e17
RG
5996/* Set the points-to solution *PT to point only to the variable VAR. */
5997
5998void
5999pt_solution_set_var (struct pt_solution *pt, tree var)
6000{
6001 memset (pt, 0, sizeof (struct pt_solution));
6002 pt->vars = BITMAP_GGC_ALLOC ();
1b2bb171 6003 bitmap_set_bit (pt->vars, DECL_PT_UID (var));
90fa9e17
RG
6004 pt->vars_contains_global = is_global_var (var);
6005}
6006
25a6a873
RG
6007/* Computes the union of the points-to solutions *DEST and *SRC and
6008 stores the result in *DEST. This changes the points-to bitmap
6009 of *DEST and thus may not be used if that might be shared.
6010 The points-to bitmap of *SRC and *DEST will not be shared after
6011 this function if they were not before. */
6012
6013static void
6014pt_solution_ior_into (struct pt_solution *dest, struct pt_solution *src)
6015{
6016 dest->anything |= src->anything;
6017 if (dest->anything)
55b34b5f 6018 {
25a6a873
RG
6019 pt_solution_reset (dest);
6020 return;
55b34b5f 6021 }
25a6a873
RG
6022
6023 dest->nonlocal |= src->nonlocal;
6024 dest->escaped |= src->escaped;
6025 dest->ipa_escaped |= src->ipa_escaped;
6026 dest->null |= src->null;
6027 dest->vars_contains_global |= src->vars_contains_global;
25a6a873
RG
6028 if (!src->vars)
6029 return;
6030
6031 if (!dest->vars)
6032 dest->vars = BITMAP_GGC_ALLOC ();
6033 bitmap_ior_into (dest->vars, src->vars);
55b34b5f
RG
6034}
6035
5006671f 6036/* Return true if the points-to solution *PT is empty. */
e8ca4159 6037
25a6a873 6038bool
5006671f
RG
6039pt_solution_empty_p (struct pt_solution *pt)
6040{
6041 if (pt->anything
6042 || pt->nonlocal)
6043 return false;
e8ca4159 6044
5006671f
RG
6045 if (pt->vars
6046 && !bitmap_empty_p (pt->vars))
6047 return false;
e8ca4159 6048
5006671f
RG
6049 /* If the solution includes ESCAPED, check if that is empty. */
6050 if (pt->escaped
6051 && !pt_solution_empty_p (&cfun->gimple_df->escaped))
6052 return false;
6053
25a6a873
RG
6054 /* If the solution includes ESCAPED, check if that is empty. */
6055 if (pt->ipa_escaped
6056 && !pt_solution_empty_p (&ipa_escaped_pt))
6057 return false;
6058
5006671f 6059 return true;
910fdc79
DB
6060}
6061
703ffc30
TV
6062/* Return true if the points-to solution *PT only point to a single var, and
6063 return the var uid in *UID. */
6064
6065bool
6066pt_solution_singleton_p (struct pt_solution *pt, unsigned *uid)
6067{
6068 if (pt->anything || pt->nonlocal || pt->escaped || pt->ipa_escaped
6069 || pt->null || pt->vars == NULL
6070 || !bitmap_single_bit_set_p (pt->vars))
6071 return false;
6072
6073 *uid = bitmap_first_set_bit (pt->vars);
6074 return true;
6075}
6076
5006671f 6077/* Return true if the points-to solution *PT includes global memory. */
63a4ef6f 6078
2f571334 6079bool
5006671f 6080pt_solution_includes_global (struct pt_solution *pt)
2f571334 6081{
5006671f
RG
6082 if (pt->anything
6083 || pt->nonlocal
6084 || pt->vars_contains_global)
6085 return true;
2f571334 6086
5006671f
RG
6087 if (pt->escaped)
6088 return pt_solution_includes_global (&cfun->gimple_df->escaped);
2f571334 6089
25a6a873
RG
6090 if (pt->ipa_escaped)
6091 return pt_solution_includes_global (&ipa_escaped_pt);
6092
6093 /* ??? This predicate is not correct for the IPA-PTA solution
6094 as we do not properly distinguish between unit escape points
6095 and global variables. */
6096 if (cfun->gimple_df->ipa_pta)
6097 return true;
6098
5006671f
RG
6099 return false;
6100}
2f571334 6101
5006671f
RG
6102/* Return true if the points-to solution *PT includes the variable
6103 declaration DECL. */
15c15196 6104
5006671f
RG
6105static bool
6106pt_solution_includes_1 (struct pt_solution *pt, const_tree decl)
6107{
6108 if (pt->anything)
6109 return true;
2f571334 6110
5006671f
RG
6111 if (pt->nonlocal
6112 && is_global_var (decl))
6113 return true;
2f571334 6114
5006671f 6115 if (pt->vars
25a6a873 6116 && bitmap_bit_p (pt->vars, DECL_PT_UID (decl)))
5006671f 6117 return true;
2f571334 6118
5006671f
RG
6119 /* If the solution includes ESCAPED, check it. */
6120 if (pt->escaped
6121 && pt_solution_includes_1 (&cfun->gimple_df->escaped, decl))
6122 return true;
2f571334 6123
25a6a873
RG
6124 /* If the solution includes ESCAPED, check it. */
6125 if (pt->ipa_escaped
6126 && pt_solution_includes_1 (&ipa_escaped_pt, decl))
6127 return true;
6128
5006671f 6129 return false;
2f571334 6130}
910fdc79 6131
5006671f
RG
6132bool
6133pt_solution_includes (struct pt_solution *pt, const_tree decl)
15c15196 6134{
5006671f
RG
6135 bool res = pt_solution_includes_1 (pt, decl);
6136 if (res)
6137 ++pta_stats.pt_solution_includes_may_alias;
6138 else
6139 ++pta_stats.pt_solution_includes_no_alias;
6140 return res;
6141}
15c15196 6142
5006671f
RG
6143/* Return true if both points-to solutions PT1 and PT2 have a non-empty
6144 intersection. */
15c15196 6145
5006671f
RG
6146static bool
6147pt_solutions_intersect_1 (struct pt_solution *pt1, struct pt_solution *pt2)
6148{
6149 if (pt1->anything || pt2->anything)
6150 return true;
15c15196 6151
5006671f
RG
6152 /* If either points to unknown global memory and the other points to
6153 any global memory they alias. */
6154 if ((pt1->nonlocal
6155 && (pt2->nonlocal
6156 || pt2->vars_contains_global))
6157 || (pt2->nonlocal
6158 && pt1->vars_contains_global))
6159 return true;
15c15196 6160
5006671f
RG
6161 /* Check the escaped solution if required. */
6162 if ((pt1->escaped || pt2->escaped)
6163 && !pt_solution_empty_p (&cfun->gimple_df->escaped))
6164 {
6165 /* If both point to escaped memory and that solution
6166 is not empty they alias. */
6167 if (pt1->escaped && pt2->escaped)
6168 return true;
15c15196 6169
5006671f
RG
6170 /* If either points to escaped memory see if the escaped solution
6171 intersects with the other. */
6172 if ((pt1->escaped
6173 && pt_solutions_intersect_1 (&cfun->gimple_df->escaped, pt2))
6174 || (pt2->escaped
6175 && pt_solutions_intersect_1 (&cfun->gimple_df->escaped, pt1)))
6176 return true;
15c15196
RG
6177 }
6178
25a6a873
RG
6179 /* Check the escaped solution if required.
6180 ??? Do we need to check the local against the IPA escaped sets? */
6181 if ((pt1->ipa_escaped || pt2->ipa_escaped)
6182 && !pt_solution_empty_p (&ipa_escaped_pt))
6183 {
6184 /* If both point to escaped memory and that solution
6185 is not empty they alias. */
6186 if (pt1->ipa_escaped && pt2->ipa_escaped)
6187 return true;
6188
6189 /* If either points to escaped memory see if the escaped solution
6190 intersects with the other. */
6191 if ((pt1->ipa_escaped
6192 && pt_solutions_intersect_1 (&ipa_escaped_pt, pt2))
6193 || (pt2->ipa_escaped
6194 && pt_solutions_intersect_1 (&ipa_escaped_pt, pt1)))
6195 return true;
6196 }
6197
5006671f
RG
6198 /* Now both pointers alias if their points-to solution intersects. */
6199 return (pt1->vars
6200 && pt2->vars
6201 && bitmap_intersect_p (pt1->vars, pt2->vars));
6202}
6203
6204bool
6205pt_solutions_intersect (struct pt_solution *pt1, struct pt_solution *pt2)
6206{
6207 bool res = pt_solutions_intersect_1 (pt1, pt2);
6208 if (res)
6209 ++pta_stats.pt_solutions_intersect_may_alias;
6210 else
6211 ++pta_stats.pt_solutions_intersect_no_alias;
6212 return res;
15c15196
RG
6213}
6214
b7091901 6215
63a4ef6f
DN
6216/* Dump points-to information to OUTFILE. */
6217
5006671f 6218static void
910fdc79
DB
6219dump_sa_points_to_info (FILE *outfile)
6220{
910fdc79 6221 unsigned int i;
63a4ef6f 6222
e8ca4159 6223 fprintf (outfile, "\nPoints-to sets\n\n");
63a4ef6f 6224
910fdc79
DB
6225 if (dump_flags & TDF_STATS)
6226 {
6227 fprintf (outfile, "Stats:\n");
63a4ef6f 6228 fprintf (outfile, "Total vars: %d\n", stats.total_vars);
3e5937d7
DB
6229 fprintf (outfile, "Non-pointer vars: %d\n",
6230 stats.nonpointer_vars);
63a4ef6f
DN
6231 fprintf (outfile, "Statically unified vars: %d\n",
6232 stats.unified_vars_static);
63a4ef6f
DN
6233 fprintf (outfile, "Dynamically unified vars: %d\n",
6234 stats.unified_vars_dynamic);
6235 fprintf (outfile, "Iterations: %d\n", stats.iterations);
4ee00913 6236 fprintf (outfile, "Number of edges: %d\n", stats.num_edges);
3e5937d7
DB
6237 fprintf (outfile, "Number of implicit edges: %d\n",
6238 stats.num_implicit_edges);
910fdc79 6239 }
63a4ef6f 6240
910fdc79 6241 for (i = 0; i < VEC_length (varinfo_t, varmap); i++)
25a6a873
RG
6242 {
6243 varinfo_t vi = get_varinfo (i);
6244 if (!vi->may_have_pointers)
b28ae58f 6245 continue;
25a6a873
RG
6246 dump_solution_for_var (outfile, i);
6247 }
910fdc79
DB
6248}
6249
6250
63a4ef6f
DN
6251/* Debug points-to information to stderr. */
6252
24e47c76 6253DEBUG_FUNCTION void
63a4ef6f
DN
6254debug_sa_points_to_info (void)
6255{
6256 dump_sa_points_to_info (stderr);
6257}
6258
6259
910fdc79
DB
6260/* Initialize the always-existing constraint variables for NULL
6261 ANYTHING, READONLY, and INTEGER */
6262
6263static void
6264init_base_vars (void)
6265{
6266 struct constraint_expr lhs, rhs;
0bbf2ffa
RG
6267 varinfo_t var_anything;
6268 varinfo_t var_nothing;
6269 varinfo_t var_readonly;
6270 varinfo_t var_escaped;
6271 varinfo_t var_nonlocal;
0bbf2ffa
RG
6272 varinfo_t var_storedanything;
6273 varinfo_t var_integer;
910fdc79
DB
6274
6275 /* Create the NULL variable, used to represent that a variable points
6276 to NULL. */
0bbf2ffa
RG
6277 var_nothing = new_var_info (NULL_TREE, "NULL");
6278 gcc_assert (var_nothing->id == nothing_id);
910fdc79
DB
6279 var_nothing->is_artificial_var = 1;
6280 var_nothing->offset = 0;
6281 var_nothing->size = ~0;
6282 var_nothing->fullsize = ~0;
13c2c08b 6283 var_nothing->is_special_var = 1;
b28ae58f
RG
6284 var_nothing->may_have_pointers = 0;
6285 var_nothing->is_global_var = 0;
910fdc79
DB
6286
6287 /* Create the ANYTHING variable, used to represent that a variable
6288 points to some unknown piece of memory. */
0bbf2ffa
RG
6289 var_anything = new_var_info (NULL_TREE, "ANYTHING");
6290 gcc_assert (var_anything->id == anything_id);
910fdc79
DB
6291 var_anything->is_artificial_var = 1;
6292 var_anything->size = ~0;
6293 var_anything->offset = 0;
6294 var_anything->next = NULL;
6295 var_anything->fullsize = ~0;
13c2c08b 6296 var_anything->is_special_var = 1;
910fdc79
DB
6297
6298 /* Anything points to anything. This makes deref constraints just
c58936b6 6299 work in the presence of linked list and other p = *p type loops,
910fdc79 6300 by saying that *ANYTHING = ANYTHING. */
910fdc79
DB
6301 lhs.type = SCALAR;
6302 lhs.var = anything_id;
6303 lhs.offset = 0;
3e5937d7 6304 rhs.type = ADDRESSOF;
910fdc79
DB
6305 rhs.var = anything_id;
6306 rhs.offset = 0;
e8ca4159 6307
a5eadacc
DB
6308 /* This specifically does not use process_constraint because
6309 process_constraint ignores all anything = anything constraints, since all
6310 but this one are redundant. */
b5efa470 6311 VEC_safe_push (constraint_t, heap, constraints, new_constraint (lhs, rhs));
c58936b6 6312
910fdc79
DB
6313 /* Create the READONLY variable, used to represent that a variable
6314 points to readonly memory. */
0bbf2ffa
RG
6315 var_readonly = new_var_info (NULL_TREE, "READONLY");
6316 gcc_assert (var_readonly->id == readonly_id);
910fdc79
DB
6317 var_readonly->is_artificial_var = 1;
6318 var_readonly->offset = 0;
6319 var_readonly->size = ~0;
6320 var_readonly->fullsize = ~0;
6321 var_readonly->next = NULL;
13c2c08b 6322 var_readonly->is_special_var = 1;
910fdc79
DB
6323
6324 /* readonly memory points to anything, in order to make deref
6325 easier. In reality, it points to anything the particular
6326 readonly variable can point to, but we don't track this
607fb860 6327 separately. */
910fdc79
DB
6328 lhs.type = SCALAR;
6329 lhs.var = readonly_id;
6330 lhs.offset = 0;
3e5937d7 6331 rhs.type = ADDRESSOF;
b7091901 6332 rhs.var = readonly_id; /* FIXME */
910fdc79 6333 rhs.offset = 0;
b7091901 6334 process_constraint (new_constraint (lhs, rhs));
c58936b6 6335
b7091901
RG
6336 /* Create the ESCAPED variable, used to represent the set of escaped
6337 memory. */
0bbf2ffa
RG
6338 var_escaped = new_var_info (NULL_TREE, "ESCAPED");
6339 gcc_assert (var_escaped->id == escaped_id);
b7091901
RG
6340 var_escaped->is_artificial_var = 1;
6341 var_escaped->offset = 0;
6342 var_escaped->size = ~0;
6343 var_escaped->fullsize = ~0;
6344 var_escaped->is_special_var = 0;
b7091901 6345
b7091901
RG
6346 /* Create the NONLOCAL variable, used to represent the set of nonlocal
6347 memory. */
0bbf2ffa
RG
6348 var_nonlocal = new_var_info (NULL_TREE, "NONLOCAL");
6349 gcc_assert (var_nonlocal->id == nonlocal_id);
b7091901
RG
6350 var_nonlocal->is_artificial_var = 1;
6351 var_nonlocal->offset = 0;
6352 var_nonlocal->size = ~0;
6353 var_nonlocal->fullsize = ~0;
6354 var_nonlocal->is_special_var = 1;
b7091901 6355
5006671f
RG
6356 /* ESCAPED = *ESCAPED, because escaped is may-deref'd at calls, etc. */
6357 lhs.type = SCALAR;
6358 lhs.var = escaped_id;
6359 lhs.offset = 0;
6360 rhs.type = DEREF;
6361 rhs.var = escaped_id;
6362 rhs.offset = 0;
6363 process_constraint (new_constraint (lhs, rhs));
6364
6365 /* ESCAPED = ESCAPED + UNKNOWN_OFFSET, because if a sub-field escapes the
6366 whole variable escapes. */
6367 lhs.type = SCALAR;
6368 lhs.var = escaped_id;
6369 lhs.offset = 0;
6370 rhs.type = SCALAR;
6371 rhs.var = escaped_id;
6372 rhs.offset = UNKNOWN_OFFSET;
6373 process_constraint (new_constraint (lhs, rhs));
6374
6375 /* *ESCAPED = NONLOCAL. This is true because we have to assume
6376 everything pointed to by escaped points to what global memory can
6377 point to. */
6378 lhs.type = DEREF;
6379 lhs.var = escaped_id;
6380 lhs.offset = 0;
6381 rhs.type = SCALAR;
6382 rhs.var = nonlocal_id;
6383 rhs.offset = 0;
6384 process_constraint (new_constraint (lhs, rhs));
6385
6386 /* NONLOCAL = &NONLOCAL, NONLOCAL = &ESCAPED. This is true because
6387 global memory may point to global memory and escaped memory. */
b7091901
RG
6388 lhs.type = SCALAR;
6389 lhs.var = nonlocal_id;
6390 lhs.offset = 0;
6391 rhs.type = ADDRESSOF;
5006671f
RG
6392 rhs.var = nonlocal_id;
6393 rhs.offset = 0;
6394 process_constraint (new_constraint (lhs, rhs));
6395 rhs.type = ADDRESSOF;
b7091901
RG
6396 rhs.var = escaped_id;
6397 rhs.offset = 0;
910fdc79 6398 process_constraint (new_constraint (lhs, rhs));
c58936b6 6399
9e39dba6
RG
6400 /* Create the STOREDANYTHING variable, used to represent the set of
6401 variables stored to *ANYTHING. */
0bbf2ffa
RG
6402 var_storedanything = new_var_info (NULL_TREE, "STOREDANYTHING");
6403 gcc_assert (var_storedanything->id == storedanything_id);
9e39dba6
RG
6404 var_storedanything->is_artificial_var = 1;
6405 var_storedanything->offset = 0;
6406 var_storedanything->size = ~0;
6407 var_storedanything->fullsize = ~0;
6408 var_storedanything->is_special_var = 0;
9e39dba6 6409
910fdc79 6410 /* Create the INTEGER variable, used to represent that a variable points
5006671f 6411 to what an INTEGER "points to". */
0bbf2ffa
RG
6412 var_integer = new_var_info (NULL_TREE, "INTEGER");
6413 gcc_assert (var_integer->id == integer_id);
910fdc79
DB
6414 var_integer->is_artificial_var = 1;
6415 var_integer->size = ~0;
6416 var_integer->fullsize = ~0;
6417 var_integer->offset = 0;
6418 var_integer->next = NULL;
13c2c08b 6419 var_integer->is_special_var = 1;
a5eadacc 6420
21392f19
DB
6421 /* INTEGER = ANYTHING, because we don't know where a dereference of
6422 a random integer will point to. */
a5eadacc
DB
6423 lhs.type = SCALAR;
6424 lhs.var = integer_id;
6425 lhs.offset = 0;
3e5937d7 6426 rhs.type = ADDRESSOF;
a5eadacc
DB
6427 rhs.var = anything_id;
6428 rhs.offset = 0;
6429 process_constraint (new_constraint (lhs, rhs));
c58936b6 6430}
910fdc79 6431
4ee00913 6432/* Initialize things necessary to perform PTA */
910fdc79 6433
4ee00913
DB
6434static void
6435init_alias_vars (void)
910fdc79 6436{
e5bae89b
RG
6437 use_field_sensitive = (MAX_FIELDS_FOR_FIELD_SENSITIVE > 1);
6438
3e5937d7
DB
6439 bitmap_obstack_initialize (&pta_obstack);
6440 bitmap_obstack_initialize (&oldpta_obstack);
4ee00913 6441 bitmap_obstack_initialize (&predbitmap_obstack);
910fdc79 6442
c58936b6 6443 constraint_pool = create_alloc_pool ("Constraint pool",
910fdc79
DB
6444 sizeof (struct constraint), 30);
6445 variable_info_pool = create_alloc_pool ("Variable info pool",
6446 sizeof (struct variable_info), 30);
b5efa470
DB
6447 constraints = VEC_alloc (constraint_t, heap, 8);
6448 varmap = VEC_alloc (varinfo_t, heap, 8);
15814ba0 6449 vi_for_tree = pointer_map_create ();
3e8542ca 6450 call_stmt_vars = pointer_map_create ();
3e5937d7 6451
910fdc79 6452 memset (&stats, 0, sizeof (stats));
1296c31f
DB
6453 shared_bitmap_table = htab_create (511, shared_bitmap_hash,
6454 shared_bitmap_eq, free);
910fdc79 6455 init_base_vars ();
7d6e2521
RG
6456
6457 gcc_obstack_init (&fake_var_decl_obstack);
4ee00913
DB
6458}
6459
3e5937d7
DB
6460/* Remove the REF and ADDRESS edges from GRAPH, as well as all the
6461 predecessor edges. */
6462
6463static void
6464remove_preds_and_fake_succs (constraint_graph_t graph)
6465{
6466 unsigned int i;
6467
6468 /* Clear the implicit ref and address nodes from the successor
6469 lists. */
6470 for (i = 0; i < FIRST_REF_NODE; i++)
6471 {
6472 if (graph->succs[i])
6473 bitmap_clear_range (graph->succs[i], FIRST_REF_NODE,
6474 FIRST_REF_NODE * 2);
6475 }
6476
6477 /* Free the successor list for the non-ref nodes. */
6478 for (i = FIRST_REF_NODE; i < graph->size; i++)
6479 {
6480 if (graph->succs[i])
6481 BITMAP_FREE (graph->succs[i]);
6482 }
6483
6484 /* Now reallocate the size of the successor list as, and blow away
6485 the predecessor bitmaps. */
6486 graph->size = VEC_length (varinfo_t, varmap);
c22940cd 6487 graph->succs = XRESIZEVEC (bitmap, graph->succs, graph->size);
3e5937d7
DB
6488
6489 free (graph->implicit_preds);
6490 graph->implicit_preds = NULL;
6491 free (graph->preds);
6492 graph->preds = NULL;
6493 bitmap_obstack_release (&predbitmap_obstack);
6494}
6495
5c245b95 6496/* Solve the constraint set. */
4ee00913 6497
5006671f 6498static void
5c245b95 6499solve_constraints (void)
4ee00913 6500{
3e5937d7 6501 struct scc_info *si;
910fdc79 6502
21392f19
DB
6503 if (dump_file)
6504 fprintf (dump_file,
6505 "\nCollapsing static cycles and doing variable "
7b765bed
DB
6506 "substitution\n");
6507
6508 init_graph (VEC_length (varinfo_t, varmap) * 2);
b8698a0f 6509
7b765bed
DB
6510 if (dump_file)
6511 fprintf (dump_file, "Building predecessor graph\n");
3e5937d7 6512 build_pred_graph ();
b8698a0f 6513
7b765bed
DB
6514 if (dump_file)
6515 fprintf (dump_file, "Detecting pointer and location "
6516 "equivalences\n");
3e5937d7 6517 si = perform_var_substitution (graph);
b8698a0f 6518
7b765bed
DB
6519 if (dump_file)
6520 fprintf (dump_file, "Rewriting constraints and unifying "
6521 "variables\n");
6522 rewrite_constraints (graph, si);
fc93bcb6 6523
8576f20a 6524 build_succ_graph ();
fc93bcb6 6525
8d3e3924
RG
6526 free_var_substitution_info (si);
6527
8576f20a 6528 /* Attach complex constraints to graph nodes. */
7b765bed
DB
6529 move_complex_constraints (graph);
6530
6531 if (dump_file)
6532 fprintf (dump_file, "Uniting pointer but not location equivalent "
6533 "variables\n");
6534 unite_pointer_equivalences (graph);
6535
6536 if (dump_file)
6537 fprintf (dump_file, "Finding indirect cycles\n");
3e5937d7 6538 find_indirect_cycles (graph);
c58936b6 6539
3e5937d7
DB
6540 /* Implicit nodes and predecessors are no longer necessary at this
6541 point. */
6542 remove_preds_and_fake_succs (graph);
c58936b6 6543
8576f20a
RG
6544 if (dump_file && (dump_flags & TDF_GRAPH))
6545 {
6546 fprintf (dump_file, "\n\n// The constraint graph before solve-graph "
6547 "in dot format:\n");
6548 dump_constraint_graph (dump_file);
6549 fprintf (dump_file, "\n\n");
6550 }
6551
21392f19 6552 if (dump_file)
7b765bed 6553 fprintf (dump_file, "Solving graph\n");
c58936b6 6554
21392f19 6555 solve_graph (graph);
c58936b6 6556
8576f20a
RG
6557 if (dump_file && (dump_flags & TDF_GRAPH))
6558 {
6559 fprintf (dump_file, "\n\n// The constraint graph after solve-graph "
6560 "in dot format:\n");
6561 dump_constraint_graph (dump_file);
6562 fprintf (dump_file, "\n\n");
6563 }
6564
910fdc79
DB
6565 if (dump_file)
6566 dump_sa_points_to_info (dump_file);
5c245b95
RG
6567}
6568
6569/* Create points-to sets for the current function. See the comments
6570 at the start of the file for an algorithmic overview. */
6571
6572static void
6573compute_points_to_sets (void)
6574{
6575 basic_block bb;
6576 unsigned i;
6577 varinfo_t vi;
6578
6579 timevar_push (TV_TREE_PTA);
6580
6581 init_alias_vars ();
5c245b95
RG
6582
6583 intra_create_variable_infos ();
6584
25a6a873 6585 /* Now walk all statements and build the constraint set. */
5c245b95
RG
6586 FOR_EACH_BB (bb)
6587 {
6588 gimple_stmt_iterator gsi;
6589
6590 for (gsi = gsi_start_phis (bb); !gsi_end_p (gsi); gsi_next (&gsi))
6591 {
6592 gimple phi = gsi_stmt (gsi);
6593
ea057359 6594 if (! virtual_operand_p (gimple_phi_result (phi)))
5c245b95
RG
6595 find_func_aliases (phi);
6596 }
6597
6598 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
6599 {
6600 gimple stmt = gsi_stmt (gsi);
6601
6602 find_func_aliases (stmt);
6603 }
6604 }
6605
25a6a873
RG
6606 if (dump_file)
6607 {
6608 fprintf (dump_file, "Points-to analysis\n\nConstraints:\n\n");
6609 dump_constraints (dump_file, 0);
6610 }
6611
5c245b95
RG
6612 /* From the constraints compute the points-to sets. */
6613 solve_constraints ();
c58936b6 6614
3e8542ca 6615 /* Compute the points-to set for ESCAPED used for call-clobber analysis. */
0bbf2ffa
RG
6616 find_what_var_points_to (get_varinfo (escaped_id),
6617 &cfun->gimple_df->escaped);
5006671f
RG
6618
6619 /* Make sure the ESCAPED solution (which is used as placeholder in
6620 other solutions) does not reference itself. This simplifies
6621 points-to solution queries. */
6622 cfun->gimple_df->escaped.escaped = 0;
6623
14c41b9b 6624 /* Mark escaped HEAP variables as global. */
ac47786e 6625 FOR_EACH_VEC_ELT (varinfo_t, varmap, i, vi)
14c41b9b
RG
6626 if (vi->is_heap_var
6627 && !vi->is_global_var)
91deb937
RG
6628 DECL_EXTERNAL (vi->decl) = vi->is_global_var
6629 = pt_solution_includes (&cfun->gimple_df->escaped, vi->decl);
14c41b9b 6630
5006671f
RG
6631 /* Compute the points-to sets for pointer SSA_NAMEs. */
6632 for (i = 0; i < num_ssa_names; ++i)
6633 {
6634 tree ptr = ssa_name (i);
6635 if (ptr
6636 && POINTER_TYPE_P (TREE_TYPE (ptr)))
4d7a65ea 6637 find_what_p_points_to (ptr);
5006671f 6638 }
e8ca4159 6639
d086d311
RG
6640 /* Compute the call-used/clobbered sets. */
6641 FOR_EACH_BB (bb)
6642 {
6643 gimple_stmt_iterator gsi;
6644
6645 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
6646 {
6647 gimple stmt = gsi_stmt (gsi);
6648 struct pt_solution *pt;
6649 if (!is_gimple_call (stmt))
6650 continue;
6651
6652 pt = gimple_call_use_set (stmt);
6653 if (gimple_call_flags (stmt) & ECF_CONST)
6654 memset (pt, 0, sizeof (struct pt_solution));
3e8542ca 6655 else if ((vi = lookup_call_use_vi (stmt)) != NULL)
d086d311 6656 {
3e8542ca
RG
6657 find_what_var_points_to (vi, pt);
6658 /* Escaped (and thus nonlocal) variables are always
6659 implicitly used by calls. */
d086d311
RG
6660 /* ??? ESCAPED can be empty even though NONLOCAL
6661 always escaped. */
6662 pt->nonlocal = 1;
6663 pt->escaped = 1;
6664 }
6665 else
6666 {
3e8542ca
RG
6667 /* If there is nothing special about this call then
6668 we have made everything that is used also escape. */
d086d311
RG
6669 *pt = cfun->gimple_df->escaped;
6670 pt->nonlocal = 1;
6671 }
6672
6673 pt = gimple_call_clobber_set (stmt);
6674 if (gimple_call_flags (stmt) & (ECF_CONST|ECF_PURE|ECF_NOVOPS))
6675 memset (pt, 0, sizeof (struct pt_solution));
3e8542ca
RG
6676 else if ((vi = lookup_call_clobber_vi (stmt)) != NULL)
6677 {
6678 find_what_var_points_to (vi, pt);
6679 /* Escaped (and thus nonlocal) variables are always
6680 implicitly clobbered by calls. */
6681 /* ??? ESCAPED can be empty even though NONLOCAL
6682 always escaped. */
6683 pt->nonlocal = 1;
6684 pt->escaped = 1;
6685 }
d086d311
RG
6686 else
6687 {
3e8542ca
RG
6688 /* If there is nothing special about this call then
6689 we have made everything that is used also escape. */
d086d311
RG
6690 *pt = cfun->gimple_df->escaped;
6691 pt->nonlocal = 1;
6692 }
6693 }
6694 }
6695
e8ca4159 6696 timevar_pop (TV_TREE_PTA);
910fdc79
DB
6697}
6698
910fdc79
DB
6699
6700/* Delete created points-to sets. */
6701
5006671f 6702static void
e8ca4159 6703delete_points_to_sets (void)
910fdc79 6704{
7b765bed 6705 unsigned int i;
c58936b6 6706
1296c31f 6707 htab_delete (shared_bitmap_table);
3e5937d7
DB
6708 if (dump_file && (dump_flags & TDF_STATS))
6709 fprintf (dump_file, "Points to sets created:%d\n",
6710 stats.points_to_sets_created);
6711
15814ba0 6712 pointer_map_destroy (vi_for_tree);
3e8542ca 6713 pointer_map_destroy (call_stmt_vars);
3e5937d7 6714 bitmap_obstack_release (&pta_obstack);
b5efa470 6715 VEC_free (constraint_t, heap, constraints);
c58936b6 6716
7b765bed 6717 for (i = 0; i < graph->size; i++)
3e5937d7 6718 VEC_free (constraint_t, heap, graph->complex[i]);
285463b5 6719 free (graph->complex);
21392f19 6720
3e5937d7 6721 free (graph->rep);
57250223 6722 free (graph->succs);
7b765bed
DB
6723 free (graph->pe);
6724 free (graph->pe_rep);
3e5937d7 6725 free (graph->indirect_cycles);
b5efa470
DB
6726 free (graph);
6727
6728 VEC_free (varinfo_t, heap, varmap);
910fdc79 6729 free_alloc_pool (variable_info_pool);
c58936b6 6730 free_alloc_pool (constraint_pool);
7d6e2521
RG
6731
6732 obstack_free (&fake_var_decl_obstack, NULL);
910fdc79 6733}
973162ec 6734
5006671f
RG
6735
6736/* Compute points-to information for every SSA_NAME pointer in the
6737 current function and compute the transitive closure of escaped
6738 variables to re-initialize the call-clobber states of local variables. */
6739
6740unsigned int
6741compute_may_aliases (void)
6742{
25a6a873
RG
6743 if (cfun->gimple_df->ipa_pta)
6744 {
6745 if (dump_file)
6746 {
6747 fprintf (dump_file, "\nNot re-computing points-to information "
6748 "because IPA points-to information is available.\n\n");
6749
6750 /* But still dump what we have remaining it. */
6751 dump_alias_info (dump_file);
25a6a873
RG
6752 }
6753
6754 return 0;
6755 }
6756
5006671f
RG
6757 /* For each pointer P_i, determine the sets of variables that P_i may
6758 point-to. Compute the reachability set of escaped and call-used
6759 variables. */
6760 compute_points_to_sets ();
6761
6762 /* Debugging dumps. */
6763 if (dump_file)
824f71b9 6764 dump_alias_info (dump_file);
5006671f
RG
6765
6766 /* Deallocate memory used by aliasing data structures and the internal
6767 points-to solution. */
6768 delete_points_to_sets ();
6769
6770 gcc_assert (!need_ssa_update_p (cfun));
6771
6772 return 0;
6773}
6774
248fc9f3
RG
6775static bool
6776gate_tree_pta (void)
6777{
6778 return flag_tree_pta;
6779}
5006671f
RG
6780
6781/* A dummy pass to cause points-to information to be computed via
6782 TODO_rebuild_alias. */
6783
6784struct gimple_opt_pass pass_build_alias =
6785{
6786 {
6787 GIMPLE_PASS,
6788 "alias", /* name */
248fc9f3 6789 gate_tree_pta, /* gate */
5006671f
RG
6790 NULL, /* execute */
6791 NULL, /* sub */
6792 NULL, /* next */
6793 0, /* static_pass_number */
7072a650 6794 TV_NONE, /* tv_id */
5006671f 6795 PROP_cfg | PROP_ssa, /* properties_required */
4effdf02 6796 0, /* properties_provided */
5006671f
RG
6797 0, /* properties_destroyed */
6798 0, /* todo_flags_start */
22c5fa5f 6799 TODO_rebuild_alias /* todo_flags_finish */
5006671f
RG
6800 }
6801};
6802
6b8ed145
RG
6803/* A dummy pass to cause points-to information to be computed via
6804 TODO_rebuild_alias. */
6805
6806struct gimple_opt_pass pass_build_ealias =
6807{
6808 {
6809 GIMPLE_PASS,
6810 "ealias", /* name */
6811 gate_tree_pta, /* gate */
6812 NULL, /* execute */
6813 NULL, /* sub */
6814 NULL, /* next */
6815 0, /* static_pass_number */
6816 TV_NONE, /* tv_id */
6817 PROP_cfg | PROP_ssa, /* properties_required */
6818 0, /* properties_provided */
6819 0, /* properties_destroyed */
6820 0, /* todo_flags_start */
22c5fa5f 6821 TODO_rebuild_alias /* todo_flags_finish */
6b8ed145
RG
6822 }
6823};
6824
5006671f 6825
4ee00913
DB
6826/* Return true if we should execute IPA PTA. */
6827static bool
6828gate_ipa_pta (void)
6829{
de925a03
RG
6830 return (optimize
6831 && flag_ipa_pta
4ee00913 6832 /* Don't bother doing anything if the program has errors. */
1da2ed5f 6833 && !seen_error ());
4ee00913
DB
6834}
6835
25a6a873
RG
6836/* IPA PTA solutions for ESCAPED. */
6837struct pt_solution ipa_escaped_pt
d3553615 6838 = { true, false, false, false, false, false, NULL };
25a6a873 6839
39e2db00
JH
6840/* Associate node with varinfo DATA. Worker for
6841 cgraph_for_node_and_aliases. */
6842static bool
6843associate_varinfo_to_alias (struct cgraph_node *node, void *data)
6844{
6845 if (node->alias || node->thunk.thunk_p)
960bfb69 6846 insert_vi_for_tree (node->symbol.decl, (varinfo_t)data);
39e2db00
JH
6847 return false;
6848}
6849
4ee00913 6850/* Execute the driver for IPA PTA. */
c2924966 6851static unsigned int
4ee00913
DB
6852ipa_pta_execute (void)
6853{
6854 struct cgraph_node *node;
25a6a873
RG
6855 struct varpool_node *var;
6856 int from;
3e5937d7 6857
4ee00913 6858 in_ipa_mode = 1;
5c245b95 6859
4ee00913 6860 init_alias_vars ();
c58936b6 6861
1565af08
RG
6862 if (dump_file && (dump_flags & TDF_DETAILS))
6863 {
8f940ee6 6864 dump_symtab (dump_file);
1565af08
RG
6865 fprintf (dump_file, "\n");
6866 }
6867
5c245b95 6868 /* Build the constraints. */
65c70e6b 6869 FOR_EACH_DEFINED_FUNCTION (node)
4ee00913 6870 {
27c2cfa6 6871 varinfo_t vi;
5c245b95
RG
6872 /* Nodes without a body are not interesting. Especially do not
6873 visit clones at this point for now - we get duplicate decls
6874 there for inline clones at least. */
1565af08 6875 if (!cgraph_function_with_gimple_body_p (node))
5c245b95
RG
6876 continue;
6877
1565af08
RG
6878 gcc_assert (!node->clone_of);
6879
960bfb69
JH
6880 vi = create_function_info_for (node->symbol.decl,
6881 alias_get_name (node->symbol.decl));
39e2db00 6882 cgraph_for_node_and_aliases (node, associate_varinfo_to_alias, vi, true);
4ee00913 6883 }
5c245b95 6884
25a6a873 6885 /* Create constraints for global variables and their initializers. */
65c70e6b 6886 FOR_EACH_VARIABLE (var)
27c2cfa6 6887 {
cd35bcf7
JH
6888 if (var->alias)
6889 continue;
27c2cfa6 6890
960bfb69 6891 get_vi_for_tree (var->symbol.decl);
27c2cfa6 6892 }
25a6a873
RG
6893
6894 if (dump_file)
6895 {
6896 fprintf (dump_file,
6897 "Generating constraints for global initializers\n\n");
6898 dump_constraints (dump_file, 0);
6899 fprintf (dump_file, "\n");
6900 }
6901 from = VEC_length (constraint_t, constraints);
6902
65c70e6b 6903 FOR_EACH_DEFINED_FUNCTION (node)
4ee00913 6904 {
5c245b95
RG
6905 struct function *func;
6906 basic_block bb;
6907 tree old_func_decl;
4ee00913 6908
5c245b95 6909 /* Nodes without a body are not interesting. */
1565af08 6910 if (!cgraph_function_with_gimple_body_p (node))
5c245b95 6911 continue;
c58936b6 6912
5c245b95 6913 if (dump_file)
27c2cfa6
RG
6914 {
6915 fprintf (dump_file,
6916 "Generating constraints for %s", cgraph_node_name (node));
960bfb69 6917 if (DECL_ASSEMBLER_NAME_SET_P (node->symbol.decl))
27c2cfa6 6918 fprintf (dump_file, " (%s)",
960bfb69
JH
6919 IDENTIFIER_POINTER
6920 (DECL_ASSEMBLER_NAME (node->symbol.decl)));
27c2cfa6
RG
6921 fprintf (dump_file, "\n");
6922 }
c58936b6 6923
960bfb69 6924 func = DECL_STRUCT_FUNCTION (node->symbol.decl);
5c245b95
RG
6925 old_func_decl = current_function_decl;
6926 push_cfun (func);
960bfb69 6927 current_function_decl = node->symbol.decl;
726a989a 6928
1565af08
RG
6929 /* For externally visible or attribute used annotated functions use
6930 local constraints for their arguments.
6931 For local functions we see all callers and thus do not need initial
6932 constraints for parameters. */
960bfb69
JH
6933 if (node->symbol.used_from_other_partition
6934 || node->symbol.externally_visible
ead84f73 6935 || node->symbol.force_output)
194313e2 6936 {
194313e2
RG
6937 intra_create_variable_infos ();
6938
6939 /* We also need to make function return values escape. Nothing
6940 escapes by returning from main though. */
960bfb69 6941 if (!MAIN_NAME_P (DECL_NAME (node->symbol.decl)))
194313e2
RG
6942 {
6943 varinfo_t fi, rvi;
960bfb69 6944 fi = lookup_vi_for_tree (node->symbol.decl);
194313e2
RG
6945 rvi = first_vi_for_offset (fi, fi_result);
6946 if (rvi && rvi->offset == fi_result)
6947 {
6948 struct constraint_expr includes;
6949 struct constraint_expr var;
6950 includes.var = escaped_id;
6951 includes.offset = 0;
6952 includes.type = SCALAR;
6953 var.var = rvi->id;
6954 var.offset = 0;
6955 var.type = SCALAR;
6956 process_constraint (new_constraint (includes, var));
6957 }
6958 }
6959 }
4ee00913 6960
5c245b95
RG
6961 /* Build constriants for the function body. */
6962 FOR_EACH_BB_FN (bb, func)
6963 {
6964 gimple_stmt_iterator gsi;
c58936b6 6965
5c245b95
RG
6966 for (gsi = gsi_start_phis (bb); !gsi_end_p (gsi);
6967 gsi_next (&gsi))
6968 {
6969 gimple phi = gsi_stmt (gsi);
c58936b6 6970
ea057359 6971 if (! virtual_operand_p (gimple_phi_result (phi)))
5c245b95
RG
6972 find_func_aliases (phi);
6973 }
3e5937d7 6974
5c245b95
RG
6975 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
6976 {
6977 gimple stmt = gsi_stmt (gsi);
3e5937d7 6978
5c245b95 6979 find_func_aliases (stmt);
25a6a873 6980 find_func_clobbers (stmt);
5c245b95
RG
6981 }
6982 }
c58936b6 6983
5c245b95
RG
6984 current_function_decl = old_func_decl;
6985 pop_cfun ();
25a6a873
RG
6986
6987 if (dump_file)
6988 {
6989 fprintf (dump_file, "\n");
6990 dump_constraints (dump_file, from);
6991 fprintf (dump_file, "\n");
6992 }
6993 from = VEC_length (constraint_t, constraints);
5c245b95 6994 }
c58936b6 6995
5c245b95
RG
6996 /* From the constraints compute the points-to sets. */
6997 solve_constraints ();
c58936b6 6998
25a6a873
RG
6999 /* Compute the global points-to sets for ESCAPED.
7000 ??? Note that the computed escape set is not correct
7001 for the whole unit as we fail to consider graph edges to
7002 externally visible functions. */
7003 find_what_var_points_to (get_varinfo (escaped_id), &ipa_escaped_pt);
7004
7005 /* Make sure the ESCAPED solution (which is used as placeholder in
7006 other solutions) does not reference itself. This simplifies
7007 points-to solution queries. */
7008 ipa_escaped_pt.ipa_escaped = 0;
7009
7010 /* Assign the points-to sets to the SSA names in the unit. */
65c70e6b 7011 FOR_EACH_DEFINED_FUNCTION (node)
25a6a873
RG
7012 {
7013 tree ptr;
7014 struct function *fn;
7015 unsigned i;
7016 varinfo_t fi;
7017 basic_block bb;
7018 struct pt_solution uses, clobbers;
7019 struct cgraph_edge *e;
7020
7021 /* Nodes without a body are not interesting. */
1565af08 7022 if (!cgraph_function_with_gimple_body_p (node))
25a6a873
RG
7023 continue;
7024
960bfb69 7025 fn = DECL_STRUCT_FUNCTION (node->symbol.decl);
25a6a873
RG
7026
7027 /* Compute the points-to sets for pointer SSA_NAMEs. */
ac47786e 7028 FOR_EACH_VEC_ELT (tree, fn->gimple_df->ssa_names, i, ptr)
25a6a873
RG
7029 {
7030 if (ptr
7031 && POINTER_TYPE_P (TREE_TYPE (ptr)))
7032 find_what_p_points_to (ptr);
7033 }
7034
7035 /* Compute the call-use and call-clobber sets for all direct calls. */
960bfb69 7036 fi = lookup_vi_for_tree (node->symbol.decl);
25a6a873
RG
7037 gcc_assert (fi->is_fn_info);
7038 find_what_var_points_to (first_vi_for_offset (fi, fi_clobbers),
7039 &clobbers);
7040 find_what_var_points_to (first_vi_for_offset (fi, fi_uses), &uses);
7041 for (e = node->callers; e; e = e->next_caller)
7042 {
7043 if (!e->call_stmt)
7044 continue;
7045
7046 *gimple_call_clobber_set (e->call_stmt) = clobbers;
7047 *gimple_call_use_set (e->call_stmt) = uses;
7048 }
7049
7050 /* Compute the call-use and call-clobber sets for indirect calls
7051 and calls to external functions. */
7052 FOR_EACH_BB_FN (bb, fn)
7053 {
7054 gimple_stmt_iterator gsi;
7055
7056 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
7057 {
7058 gimple stmt = gsi_stmt (gsi);
7059 struct pt_solution *pt;
7060 varinfo_t vi;
7061 tree decl;
7062
7063 if (!is_gimple_call (stmt))
7064 continue;
7065
7066 /* Handle direct calls to external functions. */
7067 decl = gimple_call_fndecl (stmt);
7068 if (decl
7069 && (!(fi = lookup_vi_for_tree (decl))
7070 || !fi->is_fn_info))
7071 {
7072 pt = gimple_call_use_set (stmt);
7073 if (gimple_call_flags (stmt) & ECF_CONST)
7074 memset (pt, 0, sizeof (struct pt_solution));
7075 else if ((vi = lookup_call_use_vi (stmt)) != NULL)
7076 {
7077 find_what_var_points_to (vi, pt);
7078 /* Escaped (and thus nonlocal) variables are always
7079 implicitly used by calls. */
7080 /* ??? ESCAPED can be empty even though NONLOCAL
7081 always escaped. */
7082 pt->nonlocal = 1;
7083 pt->ipa_escaped = 1;
7084 }
7085 else
7086 {
7087 /* If there is nothing special about this call then
7088 we have made everything that is used also escape. */
7089 *pt = ipa_escaped_pt;
7090 pt->nonlocal = 1;
7091 }
7092
7093 pt = gimple_call_clobber_set (stmt);
7094 if (gimple_call_flags (stmt) & (ECF_CONST|ECF_PURE|ECF_NOVOPS))
7095 memset (pt, 0, sizeof (struct pt_solution));
7096 else if ((vi = lookup_call_clobber_vi (stmt)) != NULL)
7097 {
7098 find_what_var_points_to (vi, pt);
7099 /* Escaped (and thus nonlocal) variables are always
7100 implicitly clobbered by calls. */
7101 /* ??? ESCAPED can be empty even though NONLOCAL
7102 always escaped. */
7103 pt->nonlocal = 1;
7104 pt->ipa_escaped = 1;
7105 }
7106 else
7107 {
7108 /* If there is nothing special about this call then
7109 we have made everything that is used also escape. */
7110 *pt = ipa_escaped_pt;
7111 pt->nonlocal = 1;
7112 }
7113 }
7114
7115 /* Handle indirect calls. */
7116 if (!decl
7117 && (fi = get_fi_for_callee (stmt)))
7118 {
7119 /* We need to accumulate all clobbers/uses of all possible
7120 callees. */
7121 fi = get_varinfo (find (fi->id));
7122 /* If we cannot constrain the set of functions we'll end up
7123 calling we end up using/clobbering everything. */
7124 if (bitmap_bit_p (fi->solution, anything_id)
7125 || bitmap_bit_p (fi->solution, nonlocal_id)
7126 || bitmap_bit_p (fi->solution, escaped_id))
7127 {
7128 pt_solution_reset (gimple_call_clobber_set (stmt));
7129 pt_solution_reset (gimple_call_use_set (stmt));
7130 }
7131 else
7132 {
7133 bitmap_iterator bi;
7134 unsigned i;
7135 struct pt_solution *uses, *clobbers;
7136
7137 uses = gimple_call_use_set (stmt);
7138 clobbers = gimple_call_clobber_set (stmt);
7139 memset (uses, 0, sizeof (struct pt_solution));
7140 memset (clobbers, 0, sizeof (struct pt_solution));
7141 EXECUTE_IF_SET_IN_BITMAP (fi->solution, 0, i, bi)
7142 {
7143 struct pt_solution sol;
7144
7145 vi = get_varinfo (i);
7146 if (!vi->is_fn_info)
7147 {
7148 /* ??? We could be more precise here? */
7149 uses->nonlocal = 1;
7150 uses->ipa_escaped = 1;
7151 clobbers->nonlocal = 1;
7152 clobbers->ipa_escaped = 1;
7153 continue;
7154 }
7155
7156 if (!uses->anything)
7157 {
7158 find_what_var_points_to
7159 (first_vi_for_offset (vi, fi_uses), &sol);
7160 pt_solution_ior_into (uses, &sol);
7161 }
7162 if (!clobbers->anything)
7163 {
7164 find_what_var_points_to
7165 (first_vi_for_offset (vi, fi_clobbers), &sol);
7166 pt_solution_ior_into (clobbers, &sol);
7167 }
7168 }
7169 }
7170 }
7171 }
7172 }
7173
7174 fn->gimple_df->ipa_pta = true;
7175 }
7176
5c245b95 7177 delete_points_to_sets ();
c58936b6 7178
4ee00913 7179 in_ipa_mode = 0;
5c245b95 7180
c2924966 7181 return 0;
4ee00913 7182}
c58936b6 7183
8ddbbcae 7184struct simple_ipa_opt_pass pass_ipa_pta =
4ee00913 7185{
8ddbbcae
JH
7186 {
7187 SIMPLE_IPA_PASS,
4ee00913
DB
7188 "pta", /* name */
7189 gate_ipa_pta, /* gate */
7190 ipa_pta_execute, /* execute */
7191 NULL, /* sub */
7192 NULL, /* next */
7193 0, /* static_pass_number */
7194 TV_IPA_PTA, /* tv_id */
7195 0, /* properties_required */
7196 0, /* properties_provided */
7197 0, /* properties_destroyed */
7198 0, /* todo_flags_start */
8ddbbcae
JH
7199 TODO_update_ssa /* todo_flags_finish */
7200 }
4ee00913 7201};