* config.gcc: Add sh-*-symbianelf target.
[official-gcc.git] / gcc / tree-sra.c
blob423ee3ca498f5c282bb21ade93def3a215d96cf9
1 /* Scalar Replacement of Aggregates (SRA) converts some structure
2 references into scalar references, exposing them to the scalar
3 optimizers.
4 Copyright (C) 2003, 2004 Free Software Foundation, Inc.
5 Contributed by Diego Novillo <dnovillo@redhat.com>
7 This file is part of GCC.
9 GCC is free software; you can redistribute it and/or modify it
10 under the terms of the GNU General Public License as published by the
11 Free Software Foundation; either version 2, or (at your option) any
12 later version.
14 GCC is distributed in the hope that it will be useful, but WITHOUT
15 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
16 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
17 for more details.
19 You should have received a copy of the GNU General Public License
20 along with GCC; see the file COPYING. If not, write to the Free
21 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
22 02111-1307, USA. */
24 #include "config.h"
25 #include "system.h"
26 #include "coretypes.h"
27 #include "tm.h"
28 #include "errors.h"
29 #include "ggc.h"
30 #include "tree.h"
32 /* These RTL headers are needed for basic-block.h. */
33 #include "rtl.h"
34 #include "tm_p.h"
35 #include "hard-reg-set.h"
36 #include "basic-block.h"
37 #include "diagnostic.h"
38 #include "langhooks.h"
39 #include "tree-inline.h"
40 #include "tree-flow.h"
41 #include "tree-gimple.h"
42 #include "tree-dump.h"
43 #include "tree-pass.h"
44 #include "timevar.h"
45 #include "flags.h"
46 #include "bitmap.h"
47 #include "obstack.h"
48 #include "target.h"
49 /* expr.h is needed for MOVE_RATIO. */
50 #include "expr.h"
53 /* This object of this pass is to replace a non-addressable aggregate with a
54 set of independent variables. Most of the time, all of these variables
55 will be scalars. But a secondary objective is to break up larger
56 aggregates into smaller aggregates. In the process we may find that some
57 bits of the larger aggregate can be deleted as unreferenced.
59 This substitution is done globally. More localized substitutions would
60 be the purvey of a load-store motion pass.
62 The optimization proceeds in phases:
64 (1) Identify variables that have types that are candidates for
65 decomposition.
67 (2) Scan the function looking for the ways these variables are used.
68 In particular we're interested in the number of times a variable
69 (or member) is needed as a complete unit, and the number of times
70 a variable (or member) is copied.
72 (3) Based on the usage profile, instantiate substitution variables.
74 (4) Scan the function making replacements.
78 /* The set of aggregate variables that are candidates for scalarization. */
79 static bitmap sra_candidates;
81 /* Set of scalarizable PARM_DECLs that need copy-in operations at the
82 beginning of the function. */
83 static bitmap needs_copy_in;
85 /* Sets of bit pairs that cache type decomposition and instantiation. */
86 static bitmap sra_type_decomp_cache;
87 static bitmap sra_type_inst_cache;
89 /* One of these structures is created for each candidate aggregate
90 and each (accessed) member of such an aggregate. */
91 struct sra_elt
93 /* A tree of the elements. Used when we want to traverse everything. */
94 struct sra_elt *parent;
95 struct sra_elt *children;
96 struct sra_elt *sibling;
98 /* If this element is a root, then this is the VAR_DECL. If this is
99 a sub-element, this is some token used to identify the reference.
100 In the case of COMPONENT_REF, this is the FIELD_DECL. In the case
101 of an ARRAY_REF, this is the (constant) index. In the case of a
102 complex number, this is a zero or one. */
103 tree element;
105 /* The type of the element. */
106 tree type;
108 /* A VAR_DECL, for any sub-element we've decided to replace. */
109 tree replacement;
111 /* The number of times the element is referenced as a whole. I.e.
112 given "a.b.c", this would be incremented for C, but not for A or B. */
113 unsigned int n_uses;
115 /* The number of times the element is copied to or from another
116 scalarizable element. */
117 unsigned int n_copies;
119 /* True if TYPE is scalar. */
120 bool is_scalar;
122 /* True if we saw something about this element that prevents scalarization,
123 such as non-constant indexing. */
124 bool cannot_scalarize;
126 /* True if we've decided that structure-to-structure assignment
127 should happen via memcpy and not per-element. */
128 bool use_block_copy;
130 /* A flag for use with/after random access traversals. */
131 bool visited;
134 /* Random access to the child of a parent is performed by hashing.
135 This prevents quadratic behaviour, and allows SRA to function
136 reasonably on larger records. */
137 static htab_t sra_map;
139 /* All structures are allocated out of the following obstack. */
140 static struct obstack sra_obstack;
142 /* Debugging functions. */
143 static void dump_sra_elt_name (FILE *, struct sra_elt *);
144 extern void debug_sra_elt_name (struct sra_elt *);
147 /* Return true if DECL is an SRA candidate. */
149 static bool
150 is_sra_candidate_decl (tree decl)
152 return DECL_P (decl) && bitmap_bit_p (sra_candidates, var_ann (decl)->uid);
155 /* Return true if TYPE is a scalar type. */
157 static bool
158 is_sra_scalar_type (tree type)
160 enum tree_code code = TREE_CODE (type);
161 return (code == INTEGER_TYPE || code == REAL_TYPE || code == VECTOR_TYPE
162 || code == ENUMERAL_TYPE || code == BOOLEAN_TYPE
163 || code == CHAR_TYPE || code == POINTER_TYPE || code == OFFSET_TYPE
164 || code == REFERENCE_TYPE);
167 /* Return true if TYPE can be decomposed into a set of independent variables.
169 Note that this doesn't imply that all elements of TYPE can be
170 instantiated, just that if we decide to break up the type into
171 separate pieces that it can be done. */
173 static bool
174 type_can_be_decomposed_p (tree type)
176 unsigned int cache = TYPE_UID (TYPE_MAIN_VARIANT (type)) * 2;
177 tree t;
179 /* Avoid searching the same type twice. */
180 if (bitmap_bit_p (sra_type_decomp_cache, cache+0))
181 return true;
182 if (bitmap_bit_p (sra_type_decomp_cache, cache+1))
183 return false;
185 /* The type must have a definite non-zero size. */
186 if (TYPE_SIZE (type) == NULL || integer_zerop (TYPE_SIZE (type)))
187 goto fail;
189 /* The type must be a non-union aggregate. */
190 switch (TREE_CODE (type))
192 case RECORD_TYPE:
194 bool saw_one_field = false;
196 for (t = TYPE_FIELDS (type); t ; t = TREE_CHAIN (t))
197 if (TREE_CODE (t) == FIELD_DECL)
199 /* Reject incorrectly represented bit fields. */
200 if (DECL_BIT_FIELD (t)
201 && (tree_low_cst (DECL_SIZE (t), 1)
202 != TYPE_PRECISION (TREE_TYPE (t))))
203 goto fail;
205 saw_one_field = true;
208 /* Record types must have at least one field. */
209 if (!saw_one_field)
210 goto fail;
212 break;
214 case ARRAY_TYPE:
215 /* Array types must have a fixed lower and upper bound. */
216 t = TYPE_DOMAIN (type);
217 if (t == NULL)
218 goto fail;
219 if (TYPE_MIN_VALUE (t) == NULL || !TREE_CONSTANT (TYPE_MIN_VALUE (t)))
220 goto fail;
221 if (TYPE_MAX_VALUE (t) == NULL || !TREE_CONSTANT (TYPE_MAX_VALUE (t)))
222 goto fail;
223 break;
225 case COMPLEX_TYPE:
226 break;
228 default:
229 goto fail;
232 bitmap_set_bit (sra_type_decomp_cache, cache+0);
233 return true;
235 fail:
236 bitmap_set_bit (sra_type_decomp_cache, cache+1);
237 return false;
240 /* Return true if DECL can be decomposed into a set of independent
241 (though not necessarily scalar) variables. */
243 static bool
244 decl_can_be_decomposed_p (tree var)
246 /* Early out for scalars. */
247 if (is_sra_scalar_type (TREE_TYPE (var)))
248 return false;
250 /* The variable must not be aliased. */
251 if (!is_gimple_non_addressable (var))
253 if (dump_file && (dump_flags & TDF_DETAILS))
255 fprintf (dump_file, "Cannot scalarize variable ");
256 print_generic_expr (dump_file, var, dump_flags);
257 fprintf (dump_file, " because it must live in memory\n");
259 return false;
262 /* The variable must not be volatile. */
263 if (TREE_THIS_VOLATILE (var))
265 if (dump_file && (dump_flags & TDF_DETAILS))
267 fprintf (dump_file, "Cannot scalarize variable ");
268 print_generic_expr (dump_file, var, dump_flags);
269 fprintf (dump_file, " because it is declared volatile\n");
271 return false;
274 /* We must be able to decompose the variable's type. */
275 if (!type_can_be_decomposed_p (TREE_TYPE (var)))
277 if (dump_file && (dump_flags & TDF_DETAILS))
279 fprintf (dump_file, "Cannot scalarize variable ");
280 print_generic_expr (dump_file, var, dump_flags);
281 fprintf (dump_file, " because its type cannot be decomposed\n");
283 return false;
286 return true;
289 /* Return true if TYPE can be *completely* decomposed into scalars. */
291 static bool
292 type_can_instantiate_all_elements (tree type)
294 if (is_sra_scalar_type (type))
295 return true;
296 if (!type_can_be_decomposed_p (type))
297 return false;
299 switch (TREE_CODE (type))
301 case RECORD_TYPE:
303 unsigned int cache = TYPE_UID (TYPE_MAIN_VARIANT (type)) * 2;
304 tree f;
306 if (bitmap_bit_p (sra_type_inst_cache, cache+0))
307 return true;
308 if (bitmap_bit_p (sra_type_inst_cache, cache+1))
309 return false;
311 for (f = TYPE_FIELDS (type); f ; f = TREE_CHAIN (f))
312 if (TREE_CODE (f) == FIELD_DECL)
314 if (!type_can_instantiate_all_elements (TREE_TYPE (f)))
316 bitmap_set_bit (sra_type_inst_cache, cache+1);
317 return false;
321 bitmap_set_bit (sra_type_inst_cache, cache+0);
322 return true;
325 case ARRAY_TYPE:
326 return type_can_instantiate_all_elements (TREE_TYPE (type));
328 case COMPLEX_TYPE:
329 return true;
331 default:
332 abort ();
336 /* Test whether ELT or some sub-element cannot be scalarized. */
338 static bool
339 can_completely_scalarize_p (struct sra_elt *elt)
341 struct sra_elt *c;
343 if (elt->cannot_scalarize)
344 return false;
346 for (c = elt->children; c ; c = c->sibling)
347 if (!can_completely_scalarize_p (c))
348 return false;
350 return true;
354 /* A simplified tree hashing algorithm that only handles the types of
355 trees we expect to find in sra_elt->element. */
357 static hashval_t
358 sra_hash_tree (tree t)
360 hashval_t h;
362 switch (TREE_CODE (t))
364 case VAR_DECL:
365 case PARM_DECL:
366 case RESULT_DECL:
367 h = DECL_UID (t);
368 break;
370 case INTEGER_CST:
371 h = TREE_INT_CST_LOW (t) ^ TREE_INT_CST_HIGH (t);
372 break;
374 case FIELD_DECL:
375 /* We can have types that are compatible, but have different member
376 lists, so we can't hash fields by ID. Use offsets instead. */
377 h = iterative_hash_expr (DECL_FIELD_OFFSET (t), 0);
378 h = iterative_hash_expr (DECL_FIELD_BIT_OFFSET (t), h);
379 break;
381 default:
382 abort ();
385 return h;
388 /* Hash function for type SRA_PAIR. */
390 static hashval_t
391 sra_elt_hash (const void *x)
393 const struct sra_elt *e = x;
394 const struct sra_elt *p;
395 hashval_t h;
397 h = sra_hash_tree (e->element);
399 /* Take into account everything back up the chain. Given that chain
400 lengths are rarely very long, this should be acceptable. If we
401 truely identify this as a performance problem, it should work to
402 hash the pointer value "e->parent". */
403 for (p = e->parent; p ; p = p->parent)
404 h = (h * 65521) ^ sra_hash_tree (p->element);
406 return h;
409 /* Equality function for type SRA_PAIR. */
411 static int
412 sra_elt_eq (const void *x, const void *y)
414 const struct sra_elt *a = x;
415 const struct sra_elt *b = y;
416 tree ae, be;
418 if (a->parent != b->parent)
419 return false;
421 ae = a->element;
422 be = b->element;
424 if (ae == be)
425 return true;
426 if (TREE_CODE (ae) != TREE_CODE (be))
427 return false;
429 switch (TREE_CODE (ae))
431 case VAR_DECL:
432 case PARM_DECL:
433 case RESULT_DECL:
434 /* These are all pointer unique. */
435 return false;
437 case INTEGER_CST:
438 /* Integers are not pointer unique, so compare their values. */
439 return tree_int_cst_equal (ae, be);
441 case FIELD_DECL:
442 /* Fields are unique within a record, but not between
443 compatible records. */
444 if (DECL_FIELD_CONTEXT (ae) == DECL_FIELD_CONTEXT (be))
445 return false;
446 return fields_compatible_p (ae, be);
448 default:
449 abort ();
453 /* Create or return the SRA_ELT structure for CHILD in PARENT. PARENT
454 may be null, in which case CHILD must be a DECL. */
456 static struct sra_elt *
457 lookup_element (struct sra_elt *parent, tree child, tree type,
458 enum insert_option insert)
460 struct sra_elt dummy;
461 struct sra_elt **slot;
462 struct sra_elt *elt;
464 dummy.parent = parent;
465 dummy.element = child;
467 slot = (struct sra_elt **) htab_find_slot (sra_map, &dummy, insert);
468 if (!slot && insert == NO_INSERT)
469 return NULL;
471 elt = *slot;
472 if (!elt && insert == INSERT)
474 *slot = elt = obstack_alloc (&sra_obstack, sizeof (*elt));
475 memset (elt, 0, sizeof (*elt));
477 elt->parent = parent;
478 elt->element = child;
479 elt->type = type;
480 elt->is_scalar = is_sra_scalar_type (type);
482 if (parent)
484 elt->sibling = parent->children;
485 parent->children = elt;
488 /* If this is a parameter, then if we want to scalarize, we have
489 one copy from the true function parameter. Count it now. */
490 if (TREE_CODE (child) == PARM_DECL)
492 elt->n_copies = 1;
493 bitmap_set_bit (needs_copy_in, var_ann (child)->uid);
497 return elt;
500 /* Return true if the ARRAY_REF in EXPR is a constant, in bounds access. */
502 static bool
503 is_valid_const_index (tree expr)
505 tree dom, t, index = TREE_OPERAND (expr, 1);
507 if (TREE_CODE (index) != INTEGER_CST)
508 return false;
510 /* Watch out for stupid user tricks, indexing outside the array.
512 Careful, we're not called only on scalarizable types, so do not
513 assume constant array bounds. We needn't do anything with such
514 cases, since they'll be referring to objects that we should have
515 already rejected for scalarization, so returning false is fine. */
517 dom = TYPE_DOMAIN (TREE_TYPE (TREE_OPERAND (expr, 0)));
518 if (dom == NULL)
519 return false;
521 t = TYPE_MIN_VALUE (dom);
522 if (!t || TREE_CODE (t) != INTEGER_CST)
523 return false;
524 if (tree_int_cst_lt (index, t))
525 return false;
527 t = TYPE_MAX_VALUE (dom);
528 if (!t || TREE_CODE (t) != INTEGER_CST)
529 return false;
530 if (tree_int_cst_lt (t, index))
531 return false;
533 return true;
536 /* Create or return the SRA_ELT structure for EXPR if the expression
537 refers to a scalarizable variable. */
539 static struct sra_elt *
540 maybe_lookup_element_for_expr (tree expr)
542 struct sra_elt *elt;
543 tree child;
545 switch (TREE_CODE (expr))
547 case VAR_DECL:
548 case PARM_DECL:
549 case RESULT_DECL:
550 if (is_sra_candidate_decl (expr))
551 return lookup_element (NULL, expr, TREE_TYPE (expr), INSERT);
552 return NULL;
554 case ARRAY_REF:
555 /* We can't scalarize variable array indicies. */
556 if (is_valid_const_index (expr))
557 child = TREE_OPERAND (expr, 1);
558 else
559 return NULL;
560 break;
562 case COMPONENT_REF:
563 /* Don't look through unions. */
564 if (TREE_CODE (TREE_TYPE (TREE_OPERAND (expr, 0))) != RECORD_TYPE)
565 return NULL;
566 child = TREE_OPERAND (expr, 1);
567 break;
569 case REALPART_EXPR:
570 child = integer_zero_node;
571 break;
572 case IMAGPART_EXPR:
573 child = integer_one_node;
574 break;
576 default:
577 return NULL;
580 elt = maybe_lookup_element_for_expr (TREE_OPERAND (expr, 0));
581 if (elt)
582 return lookup_element (elt, child, TREE_TYPE (expr), INSERT);
583 return NULL;
587 /* Functions to walk just enough of the tree to see all scalarizable
588 references, and categorize them. */
590 /* A set of callbacks for phases 2 and 4. They'll be invoked for the
591 various kinds of references seen. In all cases, *BSI is an iterator
592 pointing to the statement being processed. */
593 struct sra_walk_fns
595 /* Invoked when ELT is required as a unit. Note that ELT might refer to
596 a leaf node, in which case this is a simple scalar reference. *EXPR_P
597 points to the location of the expression. IS_OUTPUT is true if this
598 is a left-hand-side reference. */
599 void (*use) (struct sra_elt *elt, tree *expr_p,
600 block_stmt_iterator *bsi, bool is_output);
602 /* Invoked when we have a copy between two scalarizable references. */
603 void (*copy) (struct sra_elt *lhs_elt, struct sra_elt *rhs_elt,
604 block_stmt_iterator *bsi);
606 /* Invoked when ELT is initialized from a constant. VALUE may be NULL,
607 in which case it should be treated as an empty CONSTRUCTOR. */
608 void (*init) (struct sra_elt *elt, tree value, block_stmt_iterator *bsi);
610 /* Invoked when we have a copy between one scalarizable reference ELT
611 and one non-scalarizable reference OTHER. IS_OUTPUT is true if ELT
612 is on the left-hand side. */
613 void (*ldst) (struct sra_elt *elt, tree other,
614 block_stmt_iterator *bsi, bool is_output);
616 /* True during phase 2, false during phase 4. */
617 /* ??? This is a hack. */
618 bool initial_scan;
621 #ifdef ENABLE_CHECKING
622 /* Invoked via walk_tree, if *TP contains an candidate decl, return it. */
624 static tree
625 sra_find_candidate_decl (tree *tp, int *walk_subtrees,
626 void *data ATTRIBUTE_UNUSED)
628 tree t = *tp;
629 enum tree_code code = TREE_CODE (t);
631 if (code == VAR_DECL || code == PARM_DECL || code == RESULT_DECL)
633 *walk_subtrees = 0;
634 if (is_sra_candidate_decl (t))
635 return t;
637 else if (TYPE_P (t))
638 *walk_subtrees = 0;
640 return NULL;
642 #endif
644 /* Walk most expressions looking for a scalarizable aggregate.
645 If we find one, invoke FNS->USE. */
647 static void
648 sra_walk_expr (tree *expr_p, block_stmt_iterator *bsi, bool is_output,
649 const struct sra_walk_fns *fns)
651 tree expr = *expr_p;
652 tree inner = expr;
653 bool disable_scalarization = false;
655 /* We're looking to collect a reference expression between EXPR and INNER,
656 such that INNER is a scalarizable decl and all other nodes through EXPR
657 are references that we can scalarize. If we come across something that
658 we can't scalarize, we reset EXPR. This has the effect of making it
659 appear that we're referring to the larger expression as a whole. */
661 while (1)
662 switch (TREE_CODE (inner))
664 case VAR_DECL:
665 case PARM_DECL:
666 case RESULT_DECL:
667 /* If there is a scalarizable decl at the bottom, then process it. */
668 if (is_sra_candidate_decl (inner))
670 struct sra_elt *elt = maybe_lookup_element_for_expr (expr);
671 if (disable_scalarization)
672 elt->cannot_scalarize = true;
673 else
674 fns->use (elt, expr_p, bsi, is_output);
676 return;
678 case ARRAY_REF:
679 /* Non-constant index means any member may be accessed. Prevent the
680 expression from being scalarized. If we were to treat this as a
681 reference to the whole array, we can wind up with a single dynamic
682 index reference inside a loop being overridden by several constant
683 index references during loop setup. It's possible that this could
684 be avoided by using dynamic usage counts based on BB trip counts
685 (based on loop analysis or profiling), but that hardly seems worth
686 the effort. */
687 /* ??? Hack. Figure out how to push this into the scan routines
688 without duplicating too much code. */
689 if (!is_valid_const_index (inner))
691 disable_scalarization = true;
692 goto use_all;
694 /* ??? Are we assured that non-constant bounds and stride will have
695 the same value everywhere? I don't think Fortran will... */
696 if (TREE_OPERAND (inner, 2) || TREE_OPERAND (inner, 3))
697 goto use_all;
698 inner = TREE_OPERAND (inner, 0);
699 break;
701 case COMPONENT_REF:
702 /* A reference to a union member constitutes a reference to the
703 entire union. */
704 if (TREE_CODE (TREE_TYPE (TREE_OPERAND (inner, 0))) != RECORD_TYPE)
705 goto use_all;
706 /* ??? See above re non-constant stride. */
707 if (TREE_OPERAND (inner, 2))
708 goto use_all;
709 inner = TREE_OPERAND (inner, 0);
710 break;
712 case REALPART_EXPR:
713 case IMAGPART_EXPR:
714 inner = TREE_OPERAND (inner, 0);
715 break;
717 case BIT_FIELD_REF:
718 /* A bit field reference (access to *multiple* fields simultaneously)
719 is not currently scalarized. Consider this an access to the
720 complete outer element, to which walk_tree will bring us next. */
721 goto use_all;
723 case ARRAY_RANGE_REF:
724 /* Similarly, an subrange reference is used to modify indexing. Which
725 means that the canonical element names that we have won't work. */
726 goto use_all;
728 case VIEW_CONVERT_EXPR:
729 case NOP_EXPR:
730 /* Similarly, a view/nop explicitly wants to look at an object in a
731 type other than the one we've scalarized. */
732 goto use_all;
734 use_all:
735 expr_p = &TREE_OPERAND (inner, 0);
736 inner = expr = *expr_p;
737 break;
739 default:
740 #ifdef ENABLE_CHECKING
741 /* Validate that we're not missing any references. */
742 if (walk_tree (&inner, sra_find_candidate_decl, NULL, NULL))
743 abort ();
744 #endif
745 return;
749 /* Walk a TREE_LIST of values looking for scalarizable aggregates.
750 If we find one, invoke FNS->USE. */
752 static void
753 sra_walk_tree_list (tree list, block_stmt_iterator *bsi, bool is_output,
754 const struct sra_walk_fns *fns)
756 tree op;
757 for (op = list; op ; op = TREE_CHAIN (op))
758 sra_walk_expr (&TREE_VALUE (op), bsi, is_output, fns);
761 /* Walk the arguments of a CALL_EXPR looking for scalarizable aggregates.
762 If we find one, invoke FNS->USE. */
764 static void
765 sra_walk_call_expr (tree expr, block_stmt_iterator *bsi,
766 const struct sra_walk_fns *fns)
768 sra_walk_tree_list (TREE_OPERAND (expr, 1), bsi, false, fns);
771 /* Walk the inputs and outputs of an ASM_EXPR looking for scalarizable
772 aggregates. If we find one, invoke FNS->USE. */
774 static void
775 sra_walk_asm_expr (tree expr, block_stmt_iterator *bsi,
776 const struct sra_walk_fns *fns)
778 sra_walk_tree_list (ASM_INPUTS (expr), bsi, false, fns);
779 sra_walk_tree_list (ASM_OUTPUTS (expr), bsi, true, fns);
782 /* Walk a MODIFY_EXPR and categorize the assignment appropriately. */
784 static void
785 sra_walk_modify_expr (tree expr, block_stmt_iterator *bsi,
786 const struct sra_walk_fns *fns)
788 struct sra_elt *lhs_elt, *rhs_elt;
789 tree lhs, rhs;
791 lhs = TREE_OPERAND (expr, 0);
792 rhs = TREE_OPERAND (expr, 1);
793 lhs_elt = maybe_lookup_element_for_expr (lhs);
794 rhs_elt = maybe_lookup_element_for_expr (rhs);
796 /* If both sides are scalarizable, this is a COPY operation. */
797 if (lhs_elt && rhs_elt)
799 fns->copy (lhs_elt, rhs_elt, bsi);
800 return;
803 if (lhs_elt)
805 /* If this is an assignment from a constant, or constructor, then
806 we have access to all of the elements individually. Invoke INIT. */
807 if (TREE_CODE (rhs) == COMPLEX_EXPR
808 || TREE_CODE (rhs) == COMPLEX_CST
809 || TREE_CODE (rhs) == CONSTRUCTOR)
810 fns->init (lhs_elt, rhs, bsi);
812 /* If this is an assignment from read-only memory, treat this as if
813 we'd been passed the constructor directly. Invoke INIT. */
814 else if (TREE_CODE (rhs) == VAR_DECL
815 && TREE_STATIC (rhs)
816 && TREE_READONLY (rhs)
817 && targetm.binds_local_p (rhs))
818 fns->init (lhs_elt, DECL_INITIAL (rhs), bsi);
820 /* If this is a copy from a non-scalarizable lvalue, invoke LDST.
821 The lvalue requirement prevents us from trying to directly scalarize
822 the result of a function call. Which would result in trying to call
823 the function multiple times, and other evil things. */
824 else if (!lhs_elt->is_scalar && is_gimple_addr_expr_arg (rhs))
825 fns->ldst (lhs_elt, rhs, bsi, true);
827 /* Otherwise we're being used in some context that requires the
828 aggregate to be seen as a whole. Invoke USE. */
829 else
830 fns->use (lhs_elt, &TREE_OPERAND (expr, 0), bsi, true);
832 else
834 /* LHS_ELT being null only means that the LHS as a whole is not a
835 scalarizable reference. There may be occurrences of scalarizable
836 variables within, which implies a USE. */
837 sra_walk_expr (&TREE_OPERAND (expr, 0), bsi, true, fns);
840 /* Likewise for the right-hand side. The only difference here is that
841 we don't have to handle constants, and the RHS may be a call. */
842 if (rhs_elt)
844 if (!rhs_elt->is_scalar)
845 fns->ldst (rhs_elt, lhs, bsi, false);
846 else
847 fns->use (rhs_elt, &TREE_OPERAND (expr, 1), bsi, false);
849 else
851 tree call = get_call_expr_in (rhs);
852 if (call)
853 sra_walk_call_expr (call, bsi, fns);
854 else
855 sra_walk_expr (&TREE_OPERAND (expr, 1), bsi, false, fns);
859 /* Entry point to the walk functions. Search the entire function,
860 invoking the callbacks in FNS on each of the references to
861 scalarizable variables. */
863 static void
864 sra_walk_function (const struct sra_walk_fns *fns)
866 basic_block bb;
867 block_stmt_iterator si, ni;
869 /* ??? Phase 4 could derive some benefit to walking the function in
870 dominator tree order. */
872 FOR_EACH_BB (bb)
873 for (si = bsi_start (bb); !bsi_end_p (si); si = ni)
875 tree stmt, t;
876 stmt_ann_t ann;
878 stmt = bsi_stmt (si);
879 ann = stmt_ann (stmt);
881 ni = si;
882 bsi_next (&ni);
884 /* If the statement has no virtual operands, then it doesn't
885 make any structure references that we care about. */
886 if (NUM_V_MAY_DEFS (V_MAY_DEF_OPS (ann)) == 0
887 && NUM_VUSES (VUSE_OPS (ann)) == 0
888 && NUM_V_MUST_DEFS (V_MUST_DEF_OPS (ann)) == 0)
889 continue;
891 switch (TREE_CODE (stmt))
893 case RETURN_EXPR:
894 /* If we have "return <retval>" then the return value is
895 already exposed for our pleasure. Walk it as a USE to
896 force all the components back in place for the return.
898 If we have an embedded assignment, then <retval> is of
899 a type that gets returned in registers in this ABI, and
900 we do not wish to extend their lifetimes. Treat this
901 as a USE of the variable on the RHS of this assignment. */
903 t = TREE_OPERAND (stmt, 0);
904 if (TREE_CODE (t) == MODIFY_EXPR)
905 sra_walk_expr (&TREE_OPERAND (t, 1), &si, false, fns);
906 else
907 sra_walk_expr (&TREE_OPERAND (stmt, 0), &si, false, fns);
908 break;
910 case MODIFY_EXPR:
911 sra_walk_modify_expr (stmt, &si, fns);
912 break;
913 case CALL_EXPR:
914 sra_walk_call_expr (stmt, &si, fns);
915 break;
916 case ASM_EXPR:
917 sra_walk_asm_expr (stmt, &si, fns);
918 break;
920 default:
921 break;
926 /* Phase One: Scan all referenced variables in the program looking for
927 structures that could be decomposed. */
929 static bool
930 find_candidates_for_sra (void)
932 size_t i;
933 bool any_set = false;
935 for (i = 0; i < num_referenced_vars; i++)
937 tree var = referenced_var (i);
938 if (decl_can_be_decomposed_p (var))
940 bitmap_set_bit (sra_candidates, var_ann (var)->uid);
941 any_set = true;
945 return any_set;
949 /* Phase Two: Scan all references to scalarizable variables. Count the
950 number of times they are used or copied respectively. */
952 /* Callbacks to fill in SRA_WALK_FNS. Everything but USE is
953 considered a copy, because we can decompose the reference such that
954 the sub-elements needn't be contiguous. */
956 static void
957 scan_use (struct sra_elt *elt, tree *expr_p ATTRIBUTE_UNUSED,
958 block_stmt_iterator *bsi ATTRIBUTE_UNUSED,
959 bool is_output ATTRIBUTE_UNUSED)
961 elt->n_uses += 1;
964 static void
965 scan_copy (struct sra_elt *lhs_elt, struct sra_elt *rhs_elt,
966 block_stmt_iterator *bsi ATTRIBUTE_UNUSED)
968 lhs_elt->n_copies += 1;
969 rhs_elt->n_copies += 1;
972 static void
973 scan_init (struct sra_elt *lhs_elt, tree rhs ATTRIBUTE_UNUSED,
974 block_stmt_iterator *bsi ATTRIBUTE_UNUSED)
976 lhs_elt->n_copies += 1;
979 static void
980 scan_ldst (struct sra_elt *elt, tree other ATTRIBUTE_UNUSED,
981 block_stmt_iterator *bsi ATTRIBUTE_UNUSED,
982 bool is_output ATTRIBUTE_UNUSED)
984 elt->n_copies += 1;
987 /* Dump the values we collected during the scanning phase. */
989 static void
990 scan_dump (struct sra_elt *elt)
992 struct sra_elt *c;
994 dump_sra_elt_name (dump_file, elt);
995 fprintf (dump_file, ": n_uses=%u n_copies=%u\n", elt->n_uses, elt->n_copies);
997 for (c = elt->children; c ; c = c->sibling)
998 scan_dump (c);
1001 /* Entry point to phase 2. Scan the entire function, building up
1002 scalarization data structures, recording copies and uses. */
1004 static void
1005 scan_function (void)
1007 static const struct sra_walk_fns fns = {
1008 scan_use, scan_copy, scan_init, scan_ldst, true
1011 sra_walk_function (&fns);
1013 if (dump_file && (dump_flags & TDF_DETAILS))
1015 size_t i;
1017 fputs ("\nScan results:\n", dump_file);
1018 EXECUTE_IF_SET_IN_BITMAP (sra_candidates, 0, i,
1020 tree var = referenced_var (i);
1021 struct sra_elt *elt = lookup_element (NULL, var, NULL, NO_INSERT);
1022 if (elt)
1023 scan_dump (elt);
1025 fputc ('\n', dump_file);
1029 /* Phase Three: Make decisions about which variables to scalarize, if any.
1030 All elements to be scalarized have replacement variables made for them. */
1032 /* A subroutine of build_element_name. Recursively build the element
1033 name on the obstack. */
1035 static void
1036 build_element_name_1 (struct sra_elt *elt)
1038 tree t;
1039 char buffer[32];
1041 if (elt->parent)
1043 build_element_name_1 (elt->parent);
1044 obstack_1grow (&sra_obstack, '$');
1046 if (TREE_CODE (elt->parent->type) == COMPLEX_TYPE)
1048 if (elt->element == integer_zero_node)
1049 obstack_grow (&sra_obstack, "real", 4);
1050 else
1051 obstack_grow (&sra_obstack, "imag", 4);
1052 return;
1056 t = elt->element;
1057 if (TREE_CODE (t) == INTEGER_CST)
1059 /* ??? Eh. Don't bother doing double-wide printing. */
1060 sprintf (buffer, HOST_WIDE_INT_PRINT_DEC, TREE_INT_CST_LOW (t));
1061 obstack_grow (&sra_obstack, buffer, strlen (buffer));
1063 else
1065 tree name = DECL_NAME (t);
1066 if (name)
1067 obstack_grow (&sra_obstack, IDENTIFIER_POINTER (name),
1068 IDENTIFIER_LENGTH (name));
1069 else
1071 sprintf (buffer, "D%u", DECL_UID (t));
1072 obstack_grow (&sra_obstack, buffer, strlen (buffer));
1077 /* Construct a pretty variable name for an element's replacement variable.
1078 The name is built on the obstack. */
1080 static char *
1081 build_element_name (struct sra_elt *elt)
1083 build_element_name_1 (elt);
1084 obstack_1grow (&sra_obstack, '\0');
1085 return obstack_finish (&sra_obstack);
1088 /* Instantiate an element as an independent variable. */
1090 static void
1091 instantiate_element (struct sra_elt *elt)
1093 struct sra_elt *base_elt;
1094 tree var, base;
1096 for (base_elt = elt; base_elt->parent; base_elt = base_elt->parent)
1097 continue;
1098 base = base_elt->element;
1100 elt->replacement = var = make_rename_temp (elt->type, "SR");
1101 DECL_SOURCE_LOCATION (var) = DECL_SOURCE_LOCATION (base);
1102 TREE_NO_WARNING (var) = TREE_NO_WARNING (base);
1103 DECL_ARTIFICIAL (var) = DECL_ARTIFICIAL (base);
1105 if (DECL_NAME (base) && !DECL_IGNORED_P (base))
1107 char *pretty_name = build_element_name (elt);
1108 DECL_NAME (var) = get_identifier (pretty_name);
1109 obstack_free (&sra_obstack, pretty_name);
1112 if (dump_file)
1114 fputs (" ", dump_file);
1115 dump_sra_elt_name (dump_file, elt);
1116 fputs (" -> ", dump_file);
1117 print_generic_expr (dump_file, var, dump_flags);
1118 fputc ('\n', dump_file);
1122 /* Make one pass across an element tree deciding whether or not it's
1123 profitable to instantiate individual leaf scalars.
1125 PARENT_USES and PARENT_COPIES are the sum of the N_USES and N_COPIES
1126 fields all the way up the tree. */
1128 static void
1129 decide_instantiation_1 (struct sra_elt *elt, unsigned int parent_uses,
1130 unsigned int parent_copies)
1132 if (dump_file && !elt->parent)
1134 fputs ("Initial instantiation for ", dump_file);
1135 dump_sra_elt_name (dump_file, elt);
1136 fputc ('\n', dump_file);
1139 if (elt->cannot_scalarize)
1140 return;
1142 if (elt->is_scalar)
1144 /* The decision is simple: instantiate if we're used more frequently
1145 than the parent needs to be seen as a complete unit. */
1146 if (elt->n_uses + elt->n_copies + parent_copies > parent_uses)
1147 instantiate_element (elt);
1149 else
1151 struct sra_elt *c;
1152 unsigned int this_uses = elt->n_uses + parent_uses;
1153 unsigned int this_copies = elt->n_copies + parent_copies;
1155 for (c = elt->children; c ; c = c->sibling)
1156 decide_instantiation_1 (c, this_uses, this_copies);
1160 /* Compute the size and number of all instantiated elements below ELT.
1161 We will only care about this if the size of the complete structure
1162 fits in a HOST_WIDE_INT, so we don't have to worry about overflow. */
1164 static unsigned int
1165 sum_instantiated_sizes (struct sra_elt *elt, unsigned HOST_WIDE_INT *sizep)
1167 if (elt->replacement)
1169 *sizep += TREE_INT_CST_LOW (TYPE_SIZE_UNIT (elt->type));
1170 return 1;
1172 else
1174 struct sra_elt *c;
1175 unsigned int count = 0;
1177 for (c = elt->children; c ; c = c->sibling)
1178 count += sum_instantiated_sizes (c, sizep);
1180 return count;
1184 /* Instantiate fields in ELT->TYPE that are not currently present as
1185 children of ELT. */
1187 static void instantiate_missing_elements (struct sra_elt *elt);
1189 static void
1190 instantiate_missing_elements_1 (struct sra_elt *elt, tree child, tree type)
1192 struct sra_elt *sub = lookup_element (elt, child, type, INSERT);
1193 if (sub->is_scalar)
1195 if (sub->replacement == NULL)
1196 instantiate_element (sub);
1198 else
1199 instantiate_missing_elements (sub);
1202 static void
1203 instantiate_missing_elements (struct sra_elt *elt)
1205 tree type = elt->type;
1207 switch (TREE_CODE (type))
1209 case RECORD_TYPE:
1211 tree f;
1212 for (f = TYPE_FIELDS (type); f ; f = TREE_CHAIN (f))
1213 if (TREE_CODE (f) == FIELD_DECL)
1214 instantiate_missing_elements_1 (elt, f, TREE_TYPE (f));
1215 break;
1218 case ARRAY_TYPE:
1220 tree i, max, subtype;
1222 i = TYPE_MIN_VALUE (TYPE_DOMAIN (type));
1223 max = TYPE_MAX_VALUE (TYPE_DOMAIN (type));
1224 subtype = TREE_TYPE (type);
1226 while (1)
1228 instantiate_missing_elements_1 (elt, i, subtype);
1229 if (tree_int_cst_equal (i, max))
1230 break;
1231 i = int_const_binop (PLUS_EXPR, i, integer_one_node, true);
1234 break;
1237 case COMPLEX_TYPE:
1238 type = TREE_TYPE (type);
1239 instantiate_missing_elements_1 (elt, integer_zero_node, type);
1240 instantiate_missing_elements_1 (elt, integer_one_node, type);
1241 break;
1243 default:
1244 abort ();
1248 /* Make one pass across an element tree deciding whether to perform block
1249 or element copies. If we decide on element copies, instantiate all
1250 elements. Return true if there are any instantiated sub-elements. */
1252 static bool
1253 decide_block_copy (struct sra_elt *elt)
1255 struct sra_elt *c;
1256 bool any_inst;
1258 /* If scalarization is disabled, respect it. */
1259 if (elt->cannot_scalarize)
1261 elt->use_block_copy = 1;
1263 if (dump_file)
1265 fputs ("Scalarization disabled for ", dump_file);
1266 dump_sra_elt_name (dump_file, elt);
1267 fputc ('\n', dump_file);
1270 return false;
1273 /* Don't decide if we've no uses. */
1274 if (elt->n_uses == 0 && elt->n_copies == 0)
1277 else if (!elt->is_scalar)
1279 tree size_tree = TYPE_SIZE_UNIT (elt->type);
1280 bool use_block_copy = true;
1282 /* Don't bother trying to figure out the rest if the structure is
1283 so large we can't do easy arithmetic. This also forces block
1284 copies for variable sized structures. */
1285 if (host_integerp (size_tree, 1))
1287 unsigned HOST_WIDE_INT full_size, inst_size = 0;
1288 unsigned int inst_count;
1290 full_size = tree_low_cst (size_tree, 1);
1292 /* ??? What to do here. If there are two fields, and we've only
1293 instantiated one, then instantiating the other is clearly a win.
1294 If there are a large number of fields then the size of the copy
1295 is much more of a factor. */
1297 /* If the structure is small, and we've made copies, go ahead
1298 and instantiate, hoping that the copies will go away. */
1299 if (full_size <= (unsigned) MOVE_RATIO * UNITS_PER_WORD
1300 && elt->n_copies > elt->n_uses)
1301 use_block_copy = false;
1302 else
1304 inst_count = sum_instantiated_sizes (elt, &inst_size);
1306 if (inst_size * 4 >= full_size * 3)
1307 use_block_copy = false;
1310 /* In order to avoid block copy, we have to be able to instantiate
1311 all elements of the type. See if this is possible. */
1312 if (!use_block_copy
1313 && (!can_completely_scalarize_p (elt)
1314 || !type_can_instantiate_all_elements (elt->type)))
1315 use_block_copy = true;
1317 elt->use_block_copy = use_block_copy;
1319 if (dump_file)
1321 fprintf (dump_file, "Using %s for ",
1322 use_block_copy ? "block-copy" : "element-copy");
1323 dump_sra_elt_name (dump_file, elt);
1324 fputc ('\n', dump_file);
1327 if (!use_block_copy)
1329 instantiate_missing_elements (elt);
1330 return true;
1334 any_inst = elt->replacement != NULL;
1336 for (c = elt->children; c ; c = c->sibling)
1337 any_inst |= decide_block_copy (c);
1339 return any_inst;
1342 /* Entry point to phase 3. Instantiate scalar replacement variables. */
1344 static void
1345 decide_instantiations (void)
1347 unsigned int i;
1348 bool cleared_any;
1349 struct bitmap_head_def done_head;
1351 /* We cannot clear bits from a bitmap we're iterating over,
1352 so save up all the bits to clear until the end. */
1353 bitmap_initialize (&done_head, 1);
1354 cleared_any = false;
1356 EXECUTE_IF_SET_IN_BITMAP (sra_candidates, 0, i,
1358 tree var = referenced_var (i);
1359 struct sra_elt *elt = lookup_element (NULL, var, NULL, NO_INSERT);
1360 if (elt)
1362 decide_instantiation_1 (elt, 0, 0);
1363 if (!decide_block_copy (elt))
1364 elt = NULL;
1366 if (!elt)
1368 bitmap_set_bit (&done_head, i);
1369 cleared_any = true;
1373 if (cleared_any)
1375 bitmap_operation (sra_candidates, sra_candidates, &done_head,
1376 BITMAP_AND_COMPL);
1377 bitmap_operation (needs_copy_in, needs_copy_in, &done_head,
1378 BITMAP_AND_COMPL);
1380 bitmap_clear (&done_head);
1382 if (dump_file)
1383 fputc ('\n', dump_file);
1387 /* Phase Four: Update the function to match the replacements created. */
1389 /* Mark all the variables in V_MAY_DEF or V_MUST_DEF operands for STMT for
1390 renaming. This becomes necessary when we modify all of a non-scalar. */
1392 static void
1393 mark_all_v_defs (tree stmt)
1395 v_may_def_optype v_may_defs;
1396 v_must_def_optype v_must_defs;
1397 size_t i, n;
1399 get_stmt_operands (stmt);
1401 v_may_defs = V_MAY_DEF_OPS (stmt_ann (stmt));
1402 n = NUM_V_MAY_DEFS (v_may_defs);
1403 for (i = 0; i < n; i++)
1405 tree sym = V_MAY_DEF_RESULT (v_may_defs, i);
1406 if (TREE_CODE (sym) == SSA_NAME)
1407 sym = SSA_NAME_VAR (sym);
1408 bitmap_set_bit (vars_to_rename, var_ann (sym)->uid);
1411 v_must_defs = V_MUST_DEF_OPS (stmt_ann (stmt));
1412 n = NUM_V_MUST_DEFS (v_must_defs);
1413 for (i = 0; i < n; i++)
1415 tree sym = V_MUST_DEF_OP (v_must_defs, i);
1416 if (TREE_CODE (sym) == SSA_NAME)
1417 sym = SSA_NAME_VAR (sym);
1418 bitmap_set_bit (vars_to_rename, var_ann (sym)->uid);
1422 /* Build a single level component reference to ELT rooted at BASE. */
1424 static tree
1425 generate_one_element_ref (struct sra_elt *elt, tree base)
1427 switch (TREE_CODE (TREE_TYPE (base)))
1429 case RECORD_TYPE:
1431 tree field = elt->element;
1433 /* Watch out for compatible records with differing field lists. */
1434 if (DECL_FIELD_CONTEXT (field) != TYPE_MAIN_VARIANT (TREE_TYPE (base)))
1435 field = find_compatible_field (TREE_TYPE (base), field);
1437 return build (COMPONENT_REF, elt->type, base, field, NULL);
1440 case ARRAY_TYPE:
1441 return build (ARRAY_REF, elt->type, base, elt->element, NULL, NULL);
1443 case COMPLEX_TYPE:
1444 if (elt->element == integer_zero_node)
1445 return build (REALPART_EXPR, elt->type, base);
1446 else
1447 return build (IMAGPART_EXPR, elt->type, base);
1449 default:
1450 abort ();
1454 /* Build a full component reference to ELT rooted at its native variable. */
1456 static tree
1457 generate_element_ref (struct sra_elt *elt)
1459 if (elt->parent)
1460 return generate_one_element_ref (elt, generate_element_ref (elt->parent));
1461 else
1462 return elt->element;
1465 /* Generate a set of assignment statements in *LIST_P to copy all
1466 instantiated elements under ELT to or from the equivalent structure
1467 rooted at EXPR. COPY_OUT controls the direction of the copy, with
1468 true meaning to copy out of EXPR into ELT. */
1470 static void
1471 generate_copy_inout (struct sra_elt *elt, bool copy_out, tree expr,
1472 tree *list_p)
1474 struct sra_elt *c;
1475 tree t;
1477 if (elt->replacement)
1479 if (copy_out)
1480 t = build (MODIFY_EXPR, void_type_node, elt->replacement, expr);
1481 else
1482 t = build (MODIFY_EXPR, void_type_node, expr, elt->replacement);
1483 append_to_statement_list (t, list_p);
1485 else
1487 for (c = elt->children; c ; c = c->sibling)
1489 t = generate_one_element_ref (c, unshare_expr (expr));
1490 generate_copy_inout (c, copy_out, t, list_p);
1495 /* Generate a set of assignment statements in *LIST_P to copy all instantiated
1496 elements under SRC to their counterparts under DST. There must be a 1-1
1497 correspondence of instantiated elements. */
1499 static void
1500 generate_element_copy (struct sra_elt *dst, struct sra_elt *src, tree *list_p)
1502 struct sra_elt *dc, *sc;
1504 for (dc = dst->children; dc ; dc = dc->sibling)
1506 sc = lookup_element (src, dc->element, NULL, NO_INSERT);
1507 if (sc == NULL)
1508 abort ();
1509 generate_element_copy (dc, sc, list_p);
1512 if (dst->replacement)
1514 tree t;
1516 if (src->replacement == NULL)
1517 abort ();
1519 t = build (MODIFY_EXPR, void_type_node, dst->replacement,
1520 src->replacement);
1521 append_to_statement_list (t, list_p);
1525 /* Generate a set of assignment statements in *LIST_P to zero all instantiated
1526 elements under ELT. In addition, do not assign to elements that have been
1527 marked VISITED but do reset the visited flag; this allows easy coordination
1528 with generate_element_init. */
1530 static void
1531 generate_element_zero (struct sra_elt *elt, tree *list_p)
1533 struct sra_elt *c;
1535 if (elt->visited)
1537 elt->visited = false;
1538 return;
1541 for (c = elt->children; c ; c = c->sibling)
1542 generate_element_zero (c, list_p);
1544 if (elt->replacement)
1546 tree t;
1548 if (elt->is_scalar)
1549 t = fold_convert (elt->type, integer_zero_node);
1550 else
1551 /* We generated a replacement for a non-scalar? */
1552 abort ();
1554 t = build (MODIFY_EXPR, void_type_node, elt->replacement, t);
1555 append_to_statement_list (t, list_p);
1559 /* Find all variables within the gimplified statement that were not previously
1560 visible to the function and add them to the referenced variables list. */
1562 static tree
1563 find_new_referenced_vars_1 (tree *tp, int *walk_subtrees,
1564 void *data ATTRIBUTE_UNUSED)
1566 tree t = *tp;
1568 if (TREE_CODE (t) == VAR_DECL && !var_ann (t))
1569 add_referenced_tmp_var (t);
1571 if (DECL_P (t) || TYPE_P (t))
1572 *walk_subtrees = 0;
1574 return NULL;
1577 static inline void
1578 find_new_referenced_vars (tree *stmt_p)
1580 walk_tree (stmt_p, find_new_referenced_vars_1, NULL, NULL);
1583 /* Generate an assignment VAR = INIT, where INIT may need gimplification.
1584 Add the result to *LIST_P. */
1586 static void
1587 generate_one_element_init (tree var, tree init, tree *list_p)
1589 tree stmt;
1591 /* The replacement can be almost arbitrarily complex. Gimplify. */
1592 stmt = build (MODIFY_EXPR, void_type_node, var, init);
1593 gimplify_stmt (&stmt);
1595 /* The replacement can expose previously unreferenced variables. */
1596 if (TREE_CODE (stmt) == STATEMENT_LIST)
1598 tree_stmt_iterator i;
1599 for (i = tsi_start (stmt); !tsi_end_p (i); tsi_next (&i))
1600 find_new_referenced_vars (tsi_stmt_ptr (i));
1602 else
1603 find_new_referenced_vars (&stmt);
1605 append_to_statement_list (stmt, list_p);
1608 /* Generate a set of assignment statements in *LIST_P to set all instantiated
1609 elements under ELT with the contents of the initializer INIT. In addition,
1610 mark all assigned elements VISITED; this allows easy coordination with
1611 generate_element_zero. Return false if we found a case we couldn't
1612 handle. */
1614 static bool
1615 generate_element_init (struct sra_elt *elt, tree init, tree *list_p)
1617 bool result = true;
1618 enum tree_code init_code;
1619 struct sra_elt *sub;
1620 tree t;
1622 /* We can be passed DECL_INITIAL of a static variable. It might have a
1623 conversion, which we strip off here. */
1624 STRIP_USELESS_TYPE_CONVERSION (init);
1625 init_code = TREE_CODE (init);
1627 if (elt->is_scalar)
1629 if (elt->replacement)
1631 generate_one_element_init (elt->replacement, init, list_p);
1632 elt->visited = true;
1634 return result;
1637 switch (init_code)
1639 case COMPLEX_CST:
1640 case COMPLEX_EXPR:
1641 for (sub = elt->children; sub ; sub = sub->sibling)
1643 if (sub->element == integer_zero_node)
1644 t = (init_code == COMPLEX_EXPR
1645 ? TREE_OPERAND (init, 0) : TREE_REALPART (init));
1646 else
1647 t = (init_code == COMPLEX_EXPR
1648 ? TREE_OPERAND (init, 1) : TREE_IMAGPART (init));
1649 result &= generate_element_init (sub, t, list_p);
1651 break;
1653 case CONSTRUCTOR:
1654 for (t = CONSTRUCTOR_ELTS (init); t ; t = TREE_CHAIN (t))
1656 sub = lookup_element (elt, TREE_PURPOSE (t), NULL, NO_INSERT);
1657 if (sub == NULL)
1658 continue;
1659 result &= generate_element_init (sub, TREE_VALUE (t), list_p);
1661 break;
1663 default:
1664 elt->visited = true;
1665 result = false;
1668 return result;
1671 /* Insert STMT on all the outgoing edges out of BB. Note that if BB
1672 has more than one edge, STMT will be replicated for each edge. Also,
1673 abnormal edges will be ignored. */
1675 void
1676 insert_edge_copies (tree stmt, basic_block bb)
1678 edge e;
1679 bool first_copy;
1681 first_copy = true;
1682 for (e = bb->succ; e; e = e->succ_next)
1684 /* We don't need to insert copies on abnormal edges. The
1685 value of the scalar replacement is not guaranteed to
1686 be valid through an abnormal edge. */
1687 if (!(e->flags & EDGE_ABNORMAL))
1689 if (first_copy)
1691 bsi_insert_on_edge (e, stmt);
1692 first_copy = false;
1694 else
1695 bsi_insert_on_edge (e, lhd_unsave_expr_now (stmt));
1700 /* Helper function to insert LIST before BSI, and set up line number info. */
1702 static void
1703 sra_insert_before (block_stmt_iterator *bsi, tree list)
1705 tree stmt = bsi_stmt (*bsi);
1707 if (EXPR_HAS_LOCATION (stmt))
1708 annotate_all_with_locus (&list, EXPR_LOCATION (stmt));
1709 bsi_insert_before (bsi, list, BSI_SAME_STMT);
1712 /* Similarly, but insert after BSI. Handles insertion onto edges as well. */
1714 static void
1715 sra_insert_after (block_stmt_iterator *bsi, tree list)
1717 tree stmt = bsi_stmt (*bsi);
1719 if (EXPR_HAS_LOCATION (stmt))
1720 annotate_all_with_locus (&list, EXPR_LOCATION (stmt));
1722 if (stmt_ends_bb_p (stmt))
1723 insert_edge_copies (list, bsi->bb);
1724 else
1725 bsi_insert_after (bsi, list, BSI_SAME_STMT);
1728 /* Similarly, but replace the statement at BSI. */
1730 static void
1731 sra_replace (block_stmt_iterator *bsi, tree list)
1733 sra_insert_before (bsi, list);
1734 bsi_remove (bsi);
1735 if (bsi_end_p (*bsi))
1736 *bsi = bsi_last (bsi->bb);
1737 else
1738 bsi_prev (bsi);
1741 /* Scalarize a USE. To recap, this is either a simple reference to ELT,
1742 if elt is scalar, or some occurrence of ELT that requires a complete
1743 aggregate. IS_OUTPUT is true if ELT is being modified. */
1745 static void
1746 scalarize_use (struct sra_elt *elt, tree *expr_p, block_stmt_iterator *bsi,
1747 bool is_output)
1749 tree list = NULL, stmt = bsi_stmt (*bsi);
1751 if (elt->replacement)
1753 /* If we have a replacement, then updating the reference is as
1754 simple as modifying the existing statement in place. */
1755 if (is_output)
1756 mark_all_v_defs (stmt);
1757 *expr_p = elt->replacement;
1758 modify_stmt (stmt);
1760 else
1762 /* Otherwise we need some copies. If ELT is being read, then we want
1763 to store all (modified) sub-elements back into the structure before
1764 the reference takes place. If ELT is being written, then we want to
1765 load the changed values back into our shadow variables. */
1766 /* ??? We don't check modified for reads, we just always write all of
1767 the values. We should be able to record the SSA number of the VOP
1768 for which the values were last read. If that number matches the
1769 SSA number of the VOP in the current statement, then we needn't
1770 emit an assignment. This would also eliminate double writes when
1771 a structure is passed as more than one argument to a function call.
1772 This optimization would be most effective if sra_walk_function
1773 processed the blocks in dominator order. */
1775 generate_copy_inout (elt, is_output, generate_element_ref (elt), &list);
1776 if (list == NULL)
1777 return;
1778 if (is_output)
1780 mark_all_v_defs (expr_first (list));
1781 sra_insert_after (bsi, list);
1783 else
1784 sra_insert_before (bsi, list);
1788 /* Scalarize a COPY. To recap, this is an assignment statement between
1789 two scalarizable references, LHS_ELT and RHS_ELT. */
1791 static void
1792 scalarize_copy (struct sra_elt *lhs_elt, struct sra_elt *rhs_elt,
1793 block_stmt_iterator *bsi)
1795 tree list, stmt;
1797 if (lhs_elt->replacement && rhs_elt->replacement)
1799 /* If we have two scalar operands, modify the existing statement. */
1800 stmt = bsi_stmt (*bsi);
1802 #ifdef ENABLE_CHECKING
1803 /* See the commentary in sra_walk_function concerning
1804 RETURN_EXPR, and why we should never see one here. */
1805 if (TREE_CODE (stmt) != MODIFY_EXPR)
1806 abort ();
1807 #endif
1809 TREE_OPERAND (stmt, 0) = lhs_elt->replacement;
1810 TREE_OPERAND (stmt, 1) = rhs_elt->replacement;
1811 modify_stmt (stmt);
1813 else if (lhs_elt->use_block_copy || rhs_elt->use_block_copy)
1815 /* If either side requires a block copy, then sync the RHS back
1816 to the original structure, leave the original assignment
1817 statement (which will perform the block copy), then load the
1818 LHS values out of its now-updated original structure. */
1819 /* ??? Could perform a modified pair-wise element copy. That
1820 would at least allow those elements that are instantiated in
1821 both structures to be optimized well. */
1823 list = NULL;
1824 generate_copy_inout (rhs_elt, false,
1825 generate_element_ref (rhs_elt), &list);
1826 if (list)
1828 mark_all_v_defs (expr_first (list));
1829 sra_insert_before (bsi, list);
1832 list = NULL;
1833 generate_copy_inout (lhs_elt, true,
1834 generate_element_ref (lhs_elt), &list);
1835 if (list)
1836 sra_insert_after (bsi, list);
1838 else
1840 /* Otherwise both sides must be fully instantiated. In which
1841 case perform pair-wise element assignments and replace the
1842 original block copy statement. */
1844 stmt = bsi_stmt (*bsi);
1845 mark_all_v_defs (stmt);
1847 list = NULL;
1848 generate_element_copy (lhs_elt, rhs_elt, &list);
1849 if (list == NULL)
1850 abort ();
1851 sra_replace (bsi, list);
1855 /* Scalarize an INIT. To recap, this is an assignment to a scalarizable
1856 reference from some form of constructor: CONSTRUCTOR, COMPLEX_CST or
1857 COMPLEX_EXPR. If RHS is NULL, it should be treated as an empty
1858 CONSTRUCTOR. */
1860 static void
1861 scalarize_init (struct sra_elt *lhs_elt, tree rhs, block_stmt_iterator *bsi)
1863 bool result = true;
1864 tree list = NULL;
1866 /* Generate initialization statements for all members extant in the RHS. */
1867 if (rhs)
1869 push_gimplify_context ();
1870 result = generate_element_init (lhs_elt, rhs, &list);
1871 pop_gimplify_context (NULL);
1874 /* CONSTRUCTOR is defined such that any member not mentioned is assigned
1875 a zero value. Initialize the rest of the instantiated elements. */
1876 generate_element_zero (lhs_elt, &list);
1878 if (!result)
1880 /* If we failed to convert the entire initializer, then we must
1881 leave the structure assignment in place and must load values
1882 from the structure into the slots for which we did not find
1883 constants. The easiest way to do this is to generate a complete
1884 copy-out, and then follow that with the constant assignments
1885 that we were able to build. DCE will clean things up. */
1886 tree list0 = NULL;
1887 generate_copy_inout (lhs_elt, true, generate_element_ref (lhs_elt),
1888 &list0);
1889 append_to_statement_list (list, &list0);
1890 list = list0;
1893 if (lhs_elt->use_block_copy || !result)
1895 /* Since LHS is not fully instantiated, we must leave the structure
1896 assignment in place. Treating this case differently from a USE
1897 exposes constants to later optimizations. */
1898 if (list)
1900 mark_all_v_defs (expr_first (list));
1901 sra_insert_after (bsi, list);
1904 else
1906 /* The LHS is fully instantiated. The list of initializations
1907 replaces the original structure assignment. */
1908 if (!list)
1909 abort ();
1910 mark_all_v_defs (bsi_stmt (*bsi));
1911 sra_replace (bsi, list);
1915 /* A subroutine of scalarize_ldst called via walk_tree. Set TREE_NO_TRAP
1916 on all INDIRECT_REFs. */
1918 static tree
1919 mark_notrap (tree *tp, int *walk_subtrees, void *data ATTRIBUTE_UNUSED)
1921 tree t = *tp;
1923 if (TREE_CODE (t) == INDIRECT_REF)
1925 TREE_THIS_NOTRAP (t) = 1;
1926 *walk_subtrees = 0;
1928 else if (DECL_P (t) || TYPE_P (t))
1929 *walk_subtrees = 0;
1931 return NULL;
1934 /* Scalarize a LDST. To recap, this is an assignment between one scalarizable
1935 reference ELT and one non-scalarizable reference OTHER. IS_OUTPUT is true
1936 if ELT is on the left-hand side. */
1938 static void
1939 scalarize_ldst (struct sra_elt *elt, tree other,
1940 block_stmt_iterator *bsi, bool is_output)
1942 /* Shouldn't have gotten called for a scalar. */
1943 if (elt->replacement)
1944 abort ();
1946 if (elt->use_block_copy)
1948 /* Since ELT is not fully instantiated, we have to leave the
1949 block copy in place. Treat this as a USE. */
1950 scalarize_use (elt, NULL, bsi, is_output);
1952 else
1954 /* The interesting case is when ELT is fully instantiated. In this
1955 case we can have each element stored/loaded directly to/from the
1956 corresponding slot in OTHER. This avoids a block copy. */
1958 tree list = NULL, stmt = bsi_stmt (*bsi);
1960 mark_all_v_defs (stmt);
1961 generate_copy_inout (elt, is_output, other, &list);
1962 if (list == NULL)
1963 abort ();
1965 /* Preserve EH semantics. */
1966 if (stmt_ends_bb_p (stmt))
1968 tree_stmt_iterator tsi;
1969 tree first;
1971 /* Extract the first statement from LIST. */
1972 tsi = tsi_start (list);
1973 first = tsi_stmt (tsi);
1974 tsi_delink (&tsi);
1976 /* Replace the old statement with this new representative. */
1977 bsi_replace (bsi, first, true);
1979 if (!tsi_end_p (tsi))
1981 /* If any reference would trap, then they all would. And more
1982 to the point, the first would. Therefore none of the rest
1983 will trap since the first didn't. Indicate this by
1984 iterating over the remaining statements and set
1985 TREE_THIS_NOTRAP in all INDIRECT_REFs. */
1988 walk_tree (tsi_stmt_ptr (tsi), mark_notrap, NULL, NULL);
1989 tsi_next (&tsi);
1991 while (!tsi_end_p (tsi));
1993 insert_edge_copies (list, bsi->bb);
1996 else
1997 sra_replace (bsi, list);
2001 /* Generate initializations for all scalarizable parameters. */
2003 static void
2004 scalarize_parms (void)
2006 tree list = NULL;
2007 size_t i;
2009 EXECUTE_IF_SET_IN_BITMAP (needs_copy_in, 0, i,
2011 tree var = referenced_var (i);
2012 struct sra_elt *elt = lookup_element (NULL, var, NULL, NO_INSERT);
2013 generate_copy_inout (elt, true, var, &list);
2016 if (list)
2017 insert_edge_copies (list, ENTRY_BLOCK_PTR);
2020 /* Entry point to phase 4. Update the function to match replacements. */
2022 static void
2023 scalarize_function (void)
2025 static const struct sra_walk_fns fns = {
2026 scalarize_use, scalarize_copy, scalarize_init, scalarize_ldst, false
2029 sra_walk_function (&fns);
2030 scalarize_parms ();
2031 bsi_commit_edge_inserts (NULL);
2035 /* Debug helper function. Print ELT in a nice human-readable format. */
2037 static void
2038 dump_sra_elt_name (FILE *f, struct sra_elt *elt)
2040 if (elt->parent && TREE_CODE (elt->parent->type) == COMPLEX_TYPE)
2042 fputs (elt->element == integer_zero_node ? "__real__ " : "__imag__ ", f);
2043 dump_sra_elt_name (f, elt->parent);
2045 else
2047 if (elt->parent)
2048 dump_sra_elt_name (f, elt->parent);
2049 if (DECL_P (elt->element))
2051 if (TREE_CODE (elt->element) == FIELD_DECL)
2052 fputc ('.', f);
2053 print_generic_expr (f, elt->element, dump_flags);
2055 else
2056 fprintf (f, "[" HOST_WIDE_INT_PRINT_DEC "]",
2057 TREE_INT_CST_LOW (elt->element));
2061 /* Likewise, but callable from the debugger. */
2063 void
2064 debug_sra_elt_name (struct sra_elt *elt)
2066 dump_sra_elt_name (stderr, elt);
2067 fputc ('\n', stderr);
2070 /* Main entry point. */
2072 static void
2073 tree_sra (void)
2075 /* Initialize local variables. */
2076 gcc_obstack_init (&sra_obstack);
2077 sra_candidates = BITMAP_XMALLOC ();
2078 needs_copy_in = BITMAP_XMALLOC ();
2079 sra_type_decomp_cache = BITMAP_XMALLOC ();
2080 sra_type_inst_cache = BITMAP_XMALLOC ();
2081 sra_map = htab_create (101, sra_elt_hash, sra_elt_eq, NULL);
2083 /* Scan. If we find anything, instantiate and scalarize. */
2084 if (find_candidates_for_sra ())
2086 scan_function ();
2087 decide_instantiations ();
2088 scalarize_function ();
2091 /* Free allocated memory. */
2092 htab_delete (sra_map);
2093 sra_map = NULL;
2094 BITMAP_XFREE (sra_candidates);
2095 BITMAP_XFREE (needs_copy_in);
2096 BITMAP_XFREE (sra_type_decomp_cache);
2097 BITMAP_XFREE (sra_type_inst_cache);
2098 obstack_free (&sra_obstack, NULL);
2101 static bool
2102 gate_sra (void)
2104 return flag_tree_sra != 0;
2107 struct tree_opt_pass pass_sra =
2109 "sra", /* name */
2110 gate_sra, /* gate */
2111 tree_sra, /* execute */
2112 NULL, /* sub */
2113 NULL, /* next */
2114 0, /* static_pass_number */
2115 TV_TREE_SRA, /* tv_id */
2116 PROP_cfg | PROP_ssa, /* properties_required */
2117 0, /* properties_provided */
2118 0, /* properties_destroyed */
2119 0, /* todo_flags_start */
2120 TODO_dump_func | TODO_rename_vars
2121 | TODO_ggc_collect | TODO_verify_ssa /* todo_flags_finish */