1 /* Scalar Replacement of Aggregates (SRA) converts some structure
2 references into scalar references, exposing them to the scalar
4 Copyright (C) 2003, 2004, 2005, 2006, 2007, 2008
5 Free Software Foundation, Inc.
6 Contributed by Diego Novillo <dnovillo@redhat.com>
8 This file is part of GCC.
10 GCC is free software; you can redistribute it and/or modify it
11 under the terms of the GNU General Public License as published by the
12 Free Software Foundation; either version 3, or (at your option) any
15 GCC is distributed in the hope that it will be useful, but WITHOUT
16 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
17 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
20 You should have received a copy of the GNU General Public License
21 along with GCC; see the file COPYING3. If not see
22 <http://www.gnu.org/licenses/>. */
26 #include "coretypes.h"
31 /* These RTL headers are needed for basic-block.h. */
34 #include "hard-reg-set.h"
35 #include "basic-block.h"
36 #include "diagnostic.h"
37 #include "langhooks.h"
38 #include "tree-inline.h"
39 #include "tree-flow.h"
40 #include "tree-gimple.h"
41 #include "tree-dump.h"
42 #include "tree-pass.h"
48 /* expr.h is needed for MOVE_RATIO. */
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
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 /* True if this is the "early" pass, before inlining. */
79 static bool early_sra
;
81 /* The set of todo flags to return from tree_sra. */
82 static unsigned int todoflags
;
84 /* The set of aggregate variables that are candidates for scalarization. */
85 static bitmap sra_candidates
;
87 /* Set of scalarizable PARM_DECLs that need copy-in operations at the
88 beginning of the function. */
89 static bitmap needs_copy_in
;
91 /* Sets of bit pairs that cache type decomposition and instantiation. */
92 static bitmap sra_type_decomp_cache
;
93 static bitmap sra_type_inst_cache
;
95 /* One of these structures is created for each candidate aggregate and
96 each (accessed) member or group of members of such an aggregate. */
99 /* A tree of the elements. Used when we want to traverse everything. */
100 struct sra_elt
*parent
;
101 struct sra_elt
*groups
;
102 struct sra_elt
*children
;
103 struct sra_elt
*sibling
;
105 /* If this element is a root, then this is the VAR_DECL. If this is
106 a sub-element, this is some token used to identify the reference.
107 In the case of COMPONENT_REF, this is the FIELD_DECL. In the case
108 of an ARRAY_REF, this is the (constant) index. In the case of an
109 ARRAY_RANGE_REF, this is the (constant) RANGE_EXPR. In the case
110 of a complex number, this is a zero or one. */
113 /* The type of the element. */
116 /* A VAR_DECL, for any sub-element we've decided to replace. */
119 /* The number of times the element is referenced as a whole. I.e.
120 given "a.b.c", this would be incremented for C, but not for A or B. */
123 /* The number of times the element is copied to or from another
124 scalarizable element. */
125 unsigned int n_copies
;
127 /* True if TYPE is scalar. */
130 /* True if this element is a group of members of its parent. */
133 /* True if we saw something about this element that prevents scalarization,
134 such as non-constant indexing. */
135 bool cannot_scalarize
;
137 /* True if we've decided that structure-to-structure assignment
138 should happen via memcpy and not per-element. */
141 /* True if everything under this element has been marked TREE_NO_WARNING. */
144 /* A flag for use with/after random access traversals. */
147 /* True if there is BIT_FIELD_REF on the lhs with a vector. */
150 /* 1 if the element is a field that is part of a block, 2 if the field
151 is the block itself, 0 if it's neither. */
152 char in_bitfld_block
;
155 #define IS_ELEMENT_FOR_GROUP(ELEMENT) (TREE_CODE (ELEMENT) == RANGE_EXPR)
157 #define FOR_EACH_ACTUAL_CHILD(CHILD, ELT) \
158 for ((CHILD) = (ELT)->is_group \
159 ? next_child_for_group (NULL, (ELT)) \
162 (CHILD) = (ELT)->is_group \
163 ? next_child_for_group ((CHILD), (ELT)) \
166 /* Helper function for above macro. Return next child in group. */
167 static struct sra_elt
*
168 next_child_for_group (struct sra_elt
*child
, struct sra_elt
*group
)
170 gcc_assert (group
->is_group
);
172 /* Find the next child in the parent. */
174 child
= child
->sibling
;
176 child
= group
->parent
->children
;
178 /* Skip siblings that do not belong to the group. */
181 tree g_elt
= group
->element
;
182 if (TREE_CODE (g_elt
) == RANGE_EXPR
)
184 if (!tree_int_cst_lt (child
->element
, TREE_OPERAND (g_elt
, 0))
185 && !tree_int_cst_lt (TREE_OPERAND (g_elt
, 1), child
->element
))
191 child
= child
->sibling
;
197 /* Random access to the child of a parent is performed by hashing.
198 This prevents quadratic behavior, and allows SRA to function
199 reasonably on larger records. */
200 static htab_t sra_map
;
202 /* All structures are allocated out of the following obstack. */
203 static struct obstack sra_obstack
;
205 /* Debugging functions. */
206 static void dump_sra_elt_name (FILE *, struct sra_elt
*);
207 extern void debug_sra_elt_name (struct sra_elt
*);
209 /* Forward declarations. */
210 static tree
generate_element_ref (struct sra_elt
*);
211 static tree
sra_build_assignment (tree dst
, tree src
);
212 static void mark_all_v_defs (tree list
);
215 /* Return true if DECL is an SRA candidate. */
218 is_sra_candidate_decl (tree decl
)
220 return DECL_P (decl
) && bitmap_bit_p (sra_candidates
, DECL_UID (decl
));
223 /* Return true if TYPE is a scalar type. */
226 is_sra_scalar_type (tree type
)
228 enum tree_code code
= TREE_CODE (type
);
229 return (code
== INTEGER_TYPE
|| code
== REAL_TYPE
|| code
== VECTOR_TYPE
230 || code
== FIXED_POINT_TYPE
231 || code
== ENUMERAL_TYPE
|| code
== BOOLEAN_TYPE
232 || code
== POINTER_TYPE
|| code
== OFFSET_TYPE
233 || code
== REFERENCE_TYPE
);
236 /* Return true if TYPE can be decomposed into a set of independent variables.
238 Note that this doesn't imply that all elements of TYPE can be
239 instantiated, just that if we decide to break up the type into
240 separate pieces that it can be done. */
243 sra_type_can_be_decomposed_p (tree type
)
245 unsigned int cache
= TYPE_UID (TYPE_MAIN_VARIANT (type
)) * 2;
248 /* Avoid searching the same type twice. */
249 if (bitmap_bit_p (sra_type_decomp_cache
, cache
+0))
251 if (bitmap_bit_p (sra_type_decomp_cache
, cache
+1))
254 /* The type must have a definite nonzero size. */
255 if (TYPE_SIZE (type
) == NULL
|| TREE_CODE (TYPE_SIZE (type
)) != INTEGER_CST
256 || integer_zerop (TYPE_SIZE (type
)))
259 /* The type must be a non-union aggregate. */
260 switch (TREE_CODE (type
))
264 bool saw_one_field
= false;
266 for (t
= TYPE_FIELDS (type
); t
; t
= TREE_CHAIN (t
))
267 if (TREE_CODE (t
) == FIELD_DECL
)
269 /* Reject incorrectly represented bit fields. */
270 if (DECL_BIT_FIELD (t
)
271 && (tree_low_cst (DECL_SIZE (t
), 1)
272 != TYPE_PRECISION (TREE_TYPE (t
))))
275 saw_one_field
= true;
278 /* Record types must have at least one field. */
285 /* Array types must have a fixed lower and upper bound. */
286 t
= TYPE_DOMAIN (type
);
289 if (TYPE_MIN_VALUE (t
) == NULL
|| !TREE_CONSTANT (TYPE_MIN_VALUE (t
)))
291 if (TYPE_MAX_VALUE (t
) == NULL
|| !TREE_CONSTANT (TYPE_MAX_VALUE (t
)))
302 bitmap_set_bit (sra_type_decomp_cache
, cache
+0);
306 bitmap_set_bit (sra_type_decomp_cache
, cache
+1);
310 /* Return true if DECL can be decomposed into a set of independent
311 (though not necessarily scalar) variables. */
314 decl_can_be_decomposed_p (tree var
)
316 /* Early out for scalars. */
317 if (is_sra_scalar_type (TREE_TYPE (var
)))
320 /* The variable must not be aliased. */
321 if (!is_gimple_non_addressable (var
))
323 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
325 fprintf (dump_file
, "Cannot scalarize variable ");
326 print_generic_expr (dump_file
, var
, dump_flags
);
327 fprintf (dump_file
, " because it must live in memory\n");
332 /* The variable must not be volatile. */
333 if (TREE_THIS_VOLATILE (var
))
335 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
337 fprintf (dump_file
, "Cannot scalarize variable ");
338 print_generic_expr (dump_file
, var
, dump_flags
);
339 fprintf (dump_file
, " because it is declared volatile\n");
344 /* We must be able to decompose the variable's type. */
345 if (!sra_type_can_be_decomposed_p (TREE_TYPE (var
)))
347 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
349 fprintf (dump_file
, "Cannot scalarize variable ");
350 print_generic_expr (dump_file
, var
, dump_flags
);
351 fprintf (dump_file
, " because its type cannot be decomposed\n");
356 /* HACK: if we decompose a va_list_type_node before inlining, then we'll
357 confuse tree-stdarg.c, and we won't be able to figure out which and
358 how many arguments are accessed. This really should be improved in
359 tree-stdarg.c, as the decomposition is truely a win. This could also
360 be fixed if the stdarg pass ran early, but this can't be done until
361 we've aliasing information early too. See PR 30791. */
363 && TYPE_MAIN_VARIANT (TREE_TYPE (var
))
364 == TYPE_MAIN_VARIANT (va_list_type_node
))
370 /* Return true if TYPE can be *completely* decomposed into scalars. */
373 type_can_instantiate_all_elements (tree type
)
375 if (is_sra_scalar_type (type
))
377 if (!sra_type_can_be_decomposed_p (type
))
380 switch (TREE_CODE (type
))
384 unsigned int cache
= TYPE_UID (TYPE_MAIN_VARIANT (type
)) * 2;
387 if (bitmap_bit_p (sra_type_inst_cache
, cache
+0))
389 if (bitmap_bit_p (sra_type_inst_cache
, cache
+1))
392 for (f
= TYPE_FIELDS (type
); f
; f
= TREE_CHAIN (f
))
393 if (TREE_CODE (f
) == FIELD_DECL
)
395 if (!type_can_instantiate_all_elements (TREE_TYPE (f
)))
397 bitmap_set_bit (sra_type_inst_cache
, cache
+1);
402 bitmap_set_bit (sra_type_inst_cache
, cache
+0);
407 return type_can_instantiate_all_elements (TREE_TYPE (type
));
417 /* Test whether ELT or some sub-element cannot be scalarized. */
420 can_completely_scalarize_p (struct sra_elt
*elt
)
424 if (elt
->cannot_scalarize
)
427 for (c
= elt
->children
; c
; c
= c
->sibling
)
428 if (!can_completely_scalarize_p (c
))
431 for (c
= elt
->groups
; c
; c
= c
->sibling
)
432 if (!can_completely_scalarize_p (c
))
439 /* A simplified tree hashing algorithm that only handles the types of
440 trees we expect to find in sra_elt->element. */
443 sra_hash_tree (tree t
)
447 switch (TREE_CODE (t
))
456 h
= TREE_INT_CST_LOW (t
) ^ TREE_INT_CST_HIGH (t
);
460 h
= iterative_hash_expr (TREE_OPERAND (t
, 0), 0);
461 h
= iterative_hash_expr (TREE_OPERAND (t
, 1), h
);
465 /* We can have types that are compatible, but have different member
466 lists, so we can't hash fields by ID. Use offsets instead. */
467 h
= iterative_hash_expr (DECL_FIELD_OFFSET (t
), 0);
468 h
= iterative_hash_expr (DECL_FIELD_BIT_OFFSET (t
), h
);
472 /* Don't take operand 0 into account, that's our parent. */
473 h
= iterative_hash_expr (TREE_OPERAND (t
, 1), 0);
474 h
= iterative_hash_expr (TREE_OPERAND (t
, 2), h
);
484 /* Hash function for type SRA_PAIR. */
487 sra_elt_hash (const void *x
)
489 const struct sra_elt
*e
= x
;
490 const struct sra_elt
*p
;
493 h
= sra_hash_tree (e
->element
);
495 /* Take into account everything except bitfield blocks back up the
496 chain. Given that chain lengths are rarely very long, this
497 should be acceptable. If we truly identify this as a performance
498 problem, it should work to hash the pointer value
500 for (p
= e
->parent
; p
; p
= p
->parent
)
501 if (!p
->in_bitfld_block
)
502 h
= (h
* 65521) ^ sra_hash_tree (p
->element
);
507 /* Equality function for type SRA_PAIR. */
510 sra_elt_eq (const void *x
, const void *y
)
512 const struct sra_elt
*a
= x
;
513 const struct sra_elt
*b
= y
;
515 const struct sra_elt
*ap
= a
->parent
;
516 const struct sra_elt
*bp
= b
->parent
;
519 while (ap
->in_bitfld_block
)
522 while (bp
->in_bitfld_block
)
533 if (TREE_CODE (ae
) != TREE_CODE (be
))
536 switch (TREE_CODE (ae
))
541 /* These are all pointer unique. */
545 /* Integers are not pointer unique, so compare their values. */
546 return tree_int_cst_equal (ae
, be
);
550 tree_int_cst_equal (TREE_OPERAND (ae
, 0), TREE_OPERAND (be
, 0))
551 && tree_int_cst_equal (TREE_OPERAND (ae
, 1), TREE_OPERAND (be
, 1));
554 /* Fields are unique within a record, but not between
555 compatible records. */
556 if (DECL_FIELD_CONTEXT (ae
) == DECL_FIELD_CONTEXT (be
))
558 return fields_compatible_p (ae
, be
);
562 tree_int_cst_equal (TREE_OPERAND (ae
, 1), TREE_OPERAND (be
, 1))
563 && tree_int_cst_equal (TREE_OPERAND (ae
, 2), TREE_OPERAND (be
, 2));
570 /* Create or return the SRA_ELT structure for CHILD in PARENT. PARENT
571 may be null, in which case CHILD must be a DECL. */
573 static struct sra_elt
*
574 lookup_element (struct sra_elt
*parent
, tree child
, tree type
,
575 enum insert_option insert
)
577 struct sra_elt dummy
;
578 struct sra_elt
**slot
;
582 dummy
.parent
= parent
->is_group
? parent
->parent
: parent
;
585 dummy
.element
= child
;
587 slot
= (struct sra_elt
**) htab_find_slot (sra_map
, &dummy
, insert
);
588 if (!slot
&& insert
== NO_INSERT
)
592 if (!elt
&& insert
== INSERT
)
594 *slot
= elt
= obstack_alloc (&sra_obstack
, sizeof (*elt
));
595 memset (elt
, 0, sizeof (*elt
));
597 elt
->parent
= parent
;
598 elt
->element
= child
;
600 elt
->is_scalar
= is_sra_scalar_type (type
);
604 if (IS_ELEMENT_FOR_GROUP (elt
->element
))
606 elt
->is_group
= true;
607 elt
->sibling
= parent
->groups
;
608 parent
->groups
= elt
;
612 elt
->sibling
= parent
->children
;
613 parent
->children
= elt
;
617 /* If this is a parameter, then if we want to scalarize, we have
618 one copy from the true function parameter. Count it now. */
619 if (TREE_CODE (child
) == PARM_DECL
)
622 bitmap_set_bit (needs_copy_in
, DECL_UID (child
));
629 /* Create or return the SRA_ELT structure for EXPR if the expression
630 refers to a scalarizable variable. */
632 static struct sra_elt
*
633 maybe_lookup_element_for_expr (tree expr
)
638 switch (TREE_CODE (expr
))
643 if (is_sra_candidate_decl (expr
))
644 return lookup_element (NULL
, expr
, TREE_TYPE (expr
), INSERT
);
648 /* We can't scalarize variable array indices. */
649 if (in_array_bounds_p (expr
))
650 child
= TREE_OPERAND (expr
, 1);
655 case ARRAY_RANGE_REF
:
656 /* We can't scalarize variable array indices. */
657 if (range_in_array_bounds_p (expr
))
659 tree domain
= TYPE_DOMAIN (TREE_TYPE (expr
));
660 child
= build2 (RANGE_EXPR
, integer_type_node
,
661 TYPE_MIN_VALUE (domain
), TYPE_MAX_VALUE (domain
));
669 tree type
= TREE_TYPE (TREE_OPERAND (expr
, 0));
670 /* Don't look through unions. */
671 if (TREE_CODE (type
) != RECORD_TYPE
)
673 /* Neither through variable-sized records. */
674 if (TYPE_SIZE (type
) == NULL_TREE
675 || TREE_CODE (TYPE_SIZE (type
)) != INTEGER_CST
)
677 child
= TREE_OPERAND (expr
, 1);
682 child
= integer_zero_node
;
685 child
= integer_one_node
;
692 elt
= maybe_lookup_element_for_expr (TREE_OPERAND (expr
, 0));
694 return lookup_element (elt
, child
, TREE_TYPE (expr
), INSERT
);
699 /* Functions to walk just enough of the tree to see all scalarizable
700 references, and categorize them. */
702 /* A set of callbacks for phases 2 and 4. They'll be invoked for the
703 various kinds of references seen. In all cases, *BSI is an iterator
704 pointing to the statement being processed. */
707 /* Invoked when ELT is required as a unit. Note that ELT might refer to
708 a leaf node, in which case this is a simple scalar reference. *EXPR_P
709 points to the location of the expression. IS_OUTPUT is true if this
710 is a left-hand-side reference. USE_ALL is true if we saw something we
711 couldn't quite identify and had to force the use of the entire object. */
712 void (*use
) (struct sra_elt
*elt
, tree
*expr_p
,
713 block_stmt_iterator
*bsi
, bool is_output
, bool use_all
);
715 /* Invoked when we have a copy between two scalarizable references. */
716 void (*copy
) (struct sra_elt
*lhs_elt
, struct sra_elt
*rhs_elt
,
717 block_stmt_iterator
*bsi
);
719 /* Invoked when ELT is initialized from a constant. VALUE may be NULL,
720 in which case it should be treated as an empty CONSTRUCTOR. */
721 void (*init
) (struct sra_elt
*elt
, tree value
, block_stmt_iterator
*bsi
);
723 /* Invoked when we have a copy between one scalarizable reference ELT
724 and one non-scalarizable reference OTHER without side-effects.
725 IS_OUTPUT is true if ELT is on the left-hand side. */
726 void (*ldst
) (struct sra_elt
*elt
, tree other
,
727 block_stmt_iterator
*bsi
, bool is_output
);
729 /* True during phase 2, false during phase 4. */
730 /* ??? This is a hack. */
734 #ifdef ENABLE_CHECKING
735 /* Invoked via walk_tree, if *TP contains a candidate decl, return it. */
738 sra_find_candidate_decl (tree
*tp
, int *walk_subtrees
,
739 void *data ATTRIBUTE_UNUSED
)
742 enum tree_code code
= TREE_CODE (t
);
744 if (code
== VAR_DECL
|| code
== PARM_DECL
|| code
== RESULT_DECL
)
747 if (is_sra_candidate_decl (t
))
757 /* Walk most expressions looking for a scalarizable aggregate.
758 If we find one, invoke FNS->USE. */
761 sra_walk_expr (tree
*expr_p
, block_stmt_iterator
*bsi
, bool is_output
,
762 const struct sra_walk_fns
*fns
)
766 bool disable_scalarization
= false;
767 bool use_all_p
= false;
769 /* We're looking to collect a reference expression between EXPR and INNER,
770 such that INNER is a scalarizable decl and all other nodes through EXPR
771 are references that we can scalarize. If we come across something that
772 we can't scalarize, we reset EXPR. This has the effect of making it
773 appear that we're referring to the larger expression as a whole. */
776 switch (TREE_CODE (inner
))
781 /* If there is a scalarizable decl at the bottom, then process it. */
782 if (is_sra_candidate_decl (inner
))
784 struct sra_elt
*elt
= maybe_lookup_element_for_expr (expr
);
785 if (disable_scalarization
)
786 elt
->cannot_scalarize
= true;
788 fns
->use (elt
, expr_p
, bsi
, is_output
, use_all_p
);
793 /* Non-constant index means any member may be accessed. Prevent the
794 expression from being scalarized. If we were to treat this as a
795 reference to the whole array, we can wind up with a single dynamic
796 index reference inside a loop being overridden by several constant
797 index references during loop setup. It's possible that this could
798 be avoided by using dynamic usage counts based on BB trip counts
799 (based on loop analysis or profiling), but that hardly seems worth
801 /* ??? Hack. Figure out how to push this into the scan routines
802 without duplicating too much code. */
803 if (!in_array_bounds_p (inner
))
805 disable_scalarization
= true;
808 /* ??? Are we assured that non-constant bounds and stride will have
809 the same value everywhere? I don't think Fortran will... */
810 if (TREE_OPERAND (inner
, 2) || TREE_OPERAND (inner
, 3))
812 inner
= TREE_OPERAND (inner
, 0);
815 case ARRAY_RANGE_REF
:
816 if (!range_in_array_bounds_p (inner
))
818 disable_scalarization
= true;
821 /* ??? See above non-constant bounds and stride . */
822 if (TREE_OPERAND (inner
, 2) || TREE_OPERAND (inner
, 3))
824 inner
= TREE_OPERAND (inner
, 0);
829 tree type
= TREE_TYPE (TREE_OPERAND (inner
, 0));
830 /* Don't look through unions. */
831 if (TREE_CODE (type
) != RECORD_TYPE
)
833 /* Neither through variable-sized records. */
834 if (TYPE_SIZE (type
) == NULL_TREE
835 || TREE_CODE (TYPE_SIZE (type
)) != INTEGER_CST
)
837 inner
= TREE_OPERAND (inner
, 0);
843 inner
= TREE_OPERAND (inner
, 0);
847 /* A bit field reference to a specific vector is scalarized but for
848 ones for inputs need to be marked as used on the left hand size so
849 when we scalarize it, we can mark that variable as non renamable. */
851 && TREE_CODE (TREE_TYPE (TREE_OPERAND (inner
, 0))) == VECTOR_TYPE
)
854 = maybe_lookup_element_for_expr (TREE_OPERAND (inner
, 0));
856 elt
->is_vector_lhs
= true;
859 /* A bit field reference (access to *multiple* fields simultaneously)
860 is not currently scalarized. Consider this an access to the full
861 outer element, to which walk_tree will bring us next. */
865 /* Similarly, a nop explicitly wants to look at an object in a
866 type other than the one we've scalarized. */
869 case VIEW_CONVERT_EXPR
:
870 /* Likewise for a view conversion, but with an additional twist:
871 it can be on the LHS and, in this case, an access to the full
872 outer element would mean a killing def. So we need to punt
873 if we haven't already a full access to the current element,
874 because we cannot pretend to have a killing def if we only
875 have a partial access at some level. */
876 if (is_output
&& !use_all_p
&& inner
!= expr
)
877 disable_scalarization
= true;
881 /* This is a transparent wrapper. The entire inner expression really
886 expr_p
= &TREE_OPERAND (inner
, 0);
887 inner
= expr
= *expr_p
;
892 #ifdef ENABLE_CHECKING
893 /* Validate that we're not missing any references. */
894 gcc_assert (!walk_tree (&inner
, sra_find_candidate_decl
, NULL
, NULL
));
900 /* Walk a TREE_LIST of values looking for scalarizable aggregates.
901 If we find one, invoke FNS->USE. */
904 sra_walk_tree_list (tree list
, block_stmt_iterator
*bsi
, bool is_output
,
905 const struct sra_walk_fns
*fns
)
908 for (op
= list
; op
; op
= TREE_CHAIN (op
))
909 sra_walk_expr (&TREE_VALUE (op
), bsi
, is_output
, fns
);
912 /* Walk the arguments of a CALL_EXPR looking for scalarizable aggregates.
913 If we find one, invoke FNS->USE. */
916 sra_walk_call_expr (tree expr
, block_stmt_iterator
*bsi
,
917 const struct sra_walk_fns
*fns
)
920 int nargs
= call_expr_nargs (expr
);
921 for (i
= 0; i
< nargs
; i
++)
922 sra_walk_expr (&CALL_EXPR_ARG (expr
, i
), bsi
, false, fns
);
925 /* Walk the inputs and outputs of an ASM_EXPR looking for scalarizable
926 aggregates. If we find one, invoke FNS->USE. */
929 sra_walk_asm_expr (tree expr
, block_stmt_iterator
*bsi
,
930 const struct sra_walk_fns
*fns
)
932 sra_walk_tree_list (ASM_INPUTS (expr
), bsi
, false, fns
);
933 sra_walk_tree_list (ASM_OUTPUTS (expr
), bsi
, true, fns
);
936 /* Walk a GIMPLE_MODIFY_STMT and categorize the assignment appropriately. */
939 sra_walk_gimple_modify_stmt (tree expr
, block_stmt_iterator
*bsi
,
940 const struct sra_walk_fns
*fns
)
942 struct sra_elt
*lhs_elt
, *rhs_elt
;
945 lhs
= GIMPLE_STMT_OPERAND (expr
, 0);
946 rhs
= GIMPLE_STMT_OPERAND (expr
, 1);
947 lhs_elt
= maybe_lookup_element_for_expr (lhs
);
948 rhs_elt
= maybe_lookup_element_for_expr (rhs
);
950 /* If both sides are scalarizable, this is a COPY operation. */
951 if (lhs_elt
&& rhs_elt
)
953 fns
->copy (lhs_elt
, rhs_elt
, bsi
);
957 /* If the RHS is scalarizable, handle it. There are only two cases. */
960 if (!rhs_elt
->is_scalar
&& !TREE_SIDE_EFFECTS (lhs
))
961 fns
->ldst (rhs_elt
, lhs
, bsi
, false);
963 fns
->use (rhs_elt
, &GIMPLE_STMT_OPERAND (expr
, 1), bsi
, false, false);
966 /* If it isn't scalarizable, there may be scalarizable variables within, so
967 check for a call or else walk the RHS to see if we need to do any
968 copy-in operations. We need to do it before the LHS is scalarized so
969 that the statements get inserted in the proper place, before any
970 copy-out operations. */
973 tree call
= get_call_expr_in (rhs
);
975 sra_walk_call_expr (call
, bsi
, fns
);
977 sra_walk_expr (&GIMPLE_STMT_OPERAND (expr
, 1), bsi
, false, fns
);
980 /* Likewise, handle the LHS being scalarizable. We have cases similar
981 to those above, but also want to handle RHS being constant. */
984 /* If this is an assignment from a constant, or constructor, then
985 we have access to all of the elements individually. Invoke INIT. */
986 if (TREE_CODE (rhs
) == COMPLEX_EXPR
987 || TREE_CODE (rhs
) == COMPLEX_CST
988 || TREE_CODE (rhs
) == CONSTRUCTOR
)
989 fns
->init (lhs_elt
, rhs
, bsi
);
991 /* If this is an assignment from read-only memory, treat this as if
992 we'd been passed the constructor directly. Invoke INIT. */
993 else if (TREE_CODE (rhs
) == VAR_DECL
995 && TREE_READONLY (rhs
)
996 && targetm
.binds_local_p (rhs
))
997 fns
->init (lhs_elt
, DECL_INITIAL (rhs
), bsi
);
999 /* If this is a copy from a non-scalarizable lvalue, invoke LDST.
1000 The lvalue requirement prevents us from trying to directly scalarize
1001 the result of a function call. Which would result in trying to call
1002 the function multiple times, and other evil things. */
1003 else if (!lhs_elt
->is_scalar
1004 && !TREE_SIDE_EFFECTS (rhs
) && is_gimple_addressable (rhs
))
1005 fns
->ldst (lhs_elt
, rhs
, bsi
, true);
1007 /* Otherwise we're being used in some context that requires the
1008 aggregate to be seen as a whole. Invoke USE. */
1010 fns
->use (lhs_elt
, &GIMPLE_STMT_OPERAND (expr
, 0), bsi
, true, false);
1013 /* Similarly to above, LHS_ELT being null only means that the LHS as a
1014 whole is not a scalarizable reference. There may be occurrences of
1015 scalarizable variables within, which implies a USE. */
1017 sra_walk_expr (&GIMPLE_STMT_OPERAND (expr
, 0), bsi
, true, fns
);
1020 /* Entry point to the walk functions. Search the entire function,
1021 invoking the callbacks in FNS on each of the references to
1022 scalarizable variables. */
1025 sra_walk_function (const struct sra_walk_fns
*fns
)
1028 block_stmt_iterator si
, ni
;
1030 /* ??? Phase 4 could derive some benefit to walking the function in
1031 dominator tree order. */
1034 for (si
= bsi_start (bb
); !bsi_end_p (si
); si
= ni
)
1039 stmt
= bsi_stmt (si
);
1040 ann
= stmt_ann (stmt
);
1045 /* If the statement has no virtual operands, then it doesn't
1046 make any structure references that we care about. */
1047 if (gimple_aliases_computed_p (cfun
)
1048 && ZERO_SSA_OPERANDS (stmt
, (SSA_OP_VIRTUAL_DEFS
| SSA_OP_VUSE
)))
1051 switch (TREE_CODE (stmt
))
1054 /* If we have "return <retval>" then the return value is
1055 already exposed for our pleasure. Walk it as a USE to
1056 force all the components back in place for the return.
1058 If we have an embedded assignment, then <retval> is of
1059 a type that gets returned in registers in this ABI, and
1060 we do not wish to extend their lifetimes. Treat this
1061 as a USE of the variable on the RHS of this assignment. */
1063 t
= TREE_OPERAND (stmt
, 0);
1066 else if (TREE_CODE (t
) == GIMPLE_MODIFY_STMT
)
1067 sra_walk_expr (&GIMPLE_STMT_OPERAND (t
, 1), &si
, false, fns
);
1069 sra_walk_expr (&TREE_OPERAND (stmt
, 0), &si
, false, fns
);
1072 case GIMPLE_MODIFY_STMT
:
1073 sra_walk_gimple_modify_stmt (stmt
, &si
, fns
);
1076 sra_walk_call_expr (stmt
, &si
, fns
);
1079 sra_walk_asm_expr (stmt
, &si
, fns
);
1088 /* Phase One: Scan all referenced variables in the program looking for
1089 structures that could be decomposed. */
1092 find_candidates_for_sra (void)
1094 bool any_set
= false;
1096 referenced_var_iterator rvi
;
1098 FOR_EACH_REFERENCED_VAR (var
, rvi
)
1100 if (decl_can_be_decomposed_p (var
))
1102 bitmap_set_bit (sra_candidates
, DECL_UID (var
));
1111 /* Phase Two: Scan all references to scalarizable variables. Count the
1112 number of times they are used or copied respectively. */
1114 /* Callbacks to fill in SRA_WALK_FNS. Everything but USE is
1115 considered a copy, because we can decompose the reference such that
1116 the sub-elements needn't be contiguous. */
1119 scan_use (struct sra_elt
*elt
, tree
*expr_p ATTRIBUTE_UNUSED
,
1120 block_stmt_iterator
*bsi ATTRIBUTE_UNUSED
,
1121 bool is_output ATTRIBUTE_UNUSED
, bool use_all ATTRIBUTE_UNUSED
)
1127 scan_copy (struct sra_elt
*lhs_elt
, struct sra_elt
*rhs_elt
,
1128 block_stmt_iterator
*bsi ATTRIBUTE_UNUSED
)
1130 lhs_elt
->n_copies
+= 1;
1131 rhs_elt
->n_copies
+= 1;
1135 scan_init (struct sra_elt
*lhs_elt
, tree rhs ATTRIBUTE_UNUSED
,
1136 block_stmt_iterator
*bsi ATTRIBUTE_UNUSED
)
1138 lhs_elt
->n_copies
+= 1;
1142 scan_ldst (struct sra_elt
*elt
, tree other ATTRIBUTE_UNUSED
,
1143 block_stmt_iterator
*bsi ATTRIBUTE_UNUSED
,
1144 bool is_output ATTRIBUTE_UNUSED
)
1149 /* Dump the values we collected during the scanning phase. */
1152 scan_dump (struct sra_elt
*elt
)
1156 dump_sra_elt_name (dump_file
, elt
);
1157 fprintf (dump_file
, ": n_uses=%u n_copies=%u\n", elt
->n_uses
, elt
->n_copies
);
1159 for (c
= elt
->children
; c
; c
= c
->sibling
)
1162 for (c
= elt
->groups
; c
; c
= c
->sibling
)
1166 /* Entry point to phase 2. Scan the entire function, building up
1167 scalarization data structures, recording copies and uses. */
1170 scan_function (void)
1172 static const struct sra_walk_fns fns
= {
1173 scan_use
, scan_copy
, scan_init
, scan_ldst
, true
1177 sra_walk_function (&fns
);
1179 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
1183 fputs ("\nScan results:\n", dump_file
);
1184 EXECUTE_IF_SET_IN_BITMAP (sra_candidates
, 0, i
, bi
)
1186 tree var
= referenced_var (i
);
1187 struct sra_elt
*elt
= lookup_element (NULL
, var
, NULL
, NO_INSERT
);
1191 fputc ('\n', dump_file
);
1195 /* Phase Three: Make decisions about which variables to scalarize, if any.
1196 All elements to be scalarized have replacement variables made for them. */
1198 /* A subroutine of build_element_name. Recursively build the element
1199 name on the obstack. */
1202 build_element_name_1 (struct sra_elt
*elt
)
1209 build_element_name_1 (elt
->parent
);
1210 obstack_1grow (&sra_obstack
, '$');
1212 if (TREE_CODE (elt
->parent
->type
) == COMPLEX_TYPE
)
1214 if (elt
->element
== integer_zero_node
)
1215 obstack_grow (&sra_obstack
, "real", 4);
1217 obstack_grow (&sra_obstack
, "imag", 4);
1223 if (TREE_CODE (t
) == INTEGER_CST
)
1225 /* ??? Eh. Don't bother doing double-wide printing. */
1226 sprintf (buffer
, HOST_WIDE_INT_PRINT_DEC
, TREE_INT_CST_LOW (t
));
1227 obstack_grow (&sra_obstack
, buffer
, strlen (buffer
));
1229 else if (TREE_CODE (t
) == BIT_FIELD_REF
)
1231 sprintf (buffer
, "B" HOST_WIDE_INT_PRINT_DEC
,
1232 tree_low_cst (TREE_OPERAND (t
, 2), 1));
1233 obstack_grow (&sra_obstack
, buffer
, strlen (buffer
));
1234 sprintf (buffer
, "F" HOST_WIDE_INT_PRINT_DEC
,
1235 tree_low_cst (TREE_OPERAND (t
, 1), 1));
1236 obstack_grow (&sra_obstack
, buffer
, strlen (buffer
));
1240 tree name
= DECL_NAME (t
);
1242 obstack_grow (&sra_obstack
, IDENTIFIER_POINTER (name
),
1243 IDENTIFIER_LENGTH (name
));
1246 sprintf (buffer
, "D%u", DECL_UID (t
));
1247 obstack_grow (&sra_obstack
, buffer
, strlen (buffer
));
1252 /* Construct a pretty variable name for an element's replacement variable.
1253 The name is built on the obstack. */
1256 build_element_name (struct sra_elt
*elt
)
1258 build_element_name_1 (elt
);
1259 obstack_1grow (&sra_obstack
, '\0');
1260 return XOBFINISH (&sra_obstack
, char *);
1263 /* Instantiate an element as an independent variable. */
1266 instantiate_element (struct sra_elt
*elt
)
1268 struct sra_elt
*base_elt
;
1270 bool nowarn
= TREE_NO_WARNING (elt
->element
);
1272 for (base_elt
= elt
; base_elt
->parent
; base_elt
= base_elt
->parent
)
1274 nowarn
= TREE_NO_WARNING (base_elt
->parent
->element
);
1275 base
= base_elt
->element
;
1277 elt
->replacement
= var
= make_rename_temp (elt
->type
, "SR");
1279 if (DECL_P (elt
->element
)
1280 && !tree_int_cst_equal (DECL_SIZE (var
), DECL_SIZE (elt
->element
)))
1282 DECL_SIZE (var
) = DECL_SIZE (elt
->element
);
1283 DECL_SIZE_UNIT (var
) = DECL_SIZE_UNIT (elt
->element
);
1285 elt
->in_bitfld_block
= 1;
1286 elt
->replacement
= build3 (BIT_FIELD_REF
, elt
->type
, var
,
1289 ? size_binop (MINUS_EXPR
,
1290 TYPE_SIZE (elt
->type
),
1295 /* For vectors, if used on the left hand side with BIT_FIELD_REF,
1296 they are not a gimple register. */
1297 if (TREE_CODE (TREE_TYPE (var
)) == VECTOR_TYPE
&& elt
->is_vector_lhs
)
1298 DECL_GIMPLE_REG_P (var
) = 0;
1300 DECL_SOURCE_LOCATION (var
) = DECL_SOURCE_LOCATION (base
);
1301 DECL_ARTIFICIAL (var
) = 1;
1303 if (TREE_THIS_VOLATILE (elt
->type
))
1305 TREE_THIS_VOLATILE (var
) = 1;
1306 TREE_SIDE_EFFECTS (var
) = 1;
1309 if (DECL_NAME (base
) && !DECL_IGNORED_P (base
))
1311 char *pretty_name
= build_element_name (elt
);
1312 DECL_NAME (var
) = get_identifier (pretty_name
);
1313 obstack_free (&sra_obstack
, pretty_name
);
1315 SET_DECL_DEBUG_EXPR (var
, generate_element_ref (elt
));
1316 DECL_DEBUG_EXPR_IS_FROM (var
) = 1;
1318 DECL_IGNORED_P (var
) = 0;
1319 TREE_NO_WARNING (var
) = nowarn
;
1323 DECL_IGNORED_P (var
) = 1;
1324 /* ??? We can't generate any warning that would be meaningful. */
1325 TREE_NO_WARNING (var
) = 1;
1328 /* Zero-initialize bit-field scalarization variables, to avoid
1329 triggering undefined behavior. */
1330 if (TREE_CODE (elt
->element
) == BIT_FIELD_REF
1331 || (var
!= elt
->replacement
1332 && TREE_CODE (elt
->replacement
) == BIT_FIELD_REF
))
1334 tree init
= sra_build_assignment (var
, fold_convert (TREE_TYPE (var
),
1335 integer_zero_node
));
1336 insert_edge_copies (init
, ENTRY_BLOCK_PTR
);
1337 mark_all_v_defs (init
);
1342 fputs (" ", dump_file
);
1343 dump_sra_elt_name (dump_file
, elt
);
1344 fputs (" -> ", dump_file
);
1345 print_generic_expr (dump_file
, var
, dump_flags
);
1346 fputc ('\n', dump_file
);
1350 /* Make one pass across an element tree deciding whether or not it's
1351 profitable to instantiate individual leaf scalars.
1353 PARENT_USES and PARENT_COPIES are the sum of the N_USES and N_COPIES
1354 fields all the way up the tree. */
1357 decide_instantiation_1 (struct sra_elt
*elt
, unsigned int parent_uses
,
1358 unsigned int parent_copies
)
1360 if (dump_file
&& !elt
->parent
)
1362 fputs ("Initial instantiation for ", dump_file
);
1363 dump_sra_elt_name (dump_file
, elt
);
1364 fputc ('\n', dump_file
);
1367 if (elt
->cannot_scalarize
)
1372 /* The decision is simple: instantiate if we're used more frequently
1373 than the parent needs to be seen as a complete unit. */
1374 if (elt
->n_uses
+ elt
->n_copies
+ parent_copies
> parent_uses
)
1375 instantiate_element (elt
);
1379 struct sra_elt
*c
, *group
;
1380 unsigned int this_uses
= elt
->n_uses
+ parent_uses
;
1381 unsigned int this_copies
= elt
->n_copies
+ parent_copies
;
1383 /* Consider groups of sub-elements as weighing in favour of
1384 instantiation whatever their size. */
1385 for (group
= elt
->groups
; group
; group
= group
->sibling
)
1386 FOR_EACH_ACTUAL_CHILD (c
, group
)
1388 c
->n_uses
+= group
->n_uses
;
1389 c
->n_copies
+= group
->n_copies
;
1392 for (c
= elt
->children
; c
; c
= c
->sibling
)
1393 decide_instantiation_1 (c
, this_uses
, this_copies
);
1397 /* Compute the size and number of all instantiated elements below ELT.
1398 We will only care about this if the size of the complete structure
1399 fits in a HOST_WIDE_INT, so we don't have to worry about overflow. */
1402 sum_instantiated_sizes (struct sra_elt
*elt
, unsigned HOST_WIDE_INT
*sizep
)
1404 if (elt
->replacement
)
1406 *sizep
+= TREE_INT_CST_LOW (TYPE_SIZE_UNIT (elt
->type
));
1412 unsigned int count
= 0;
1414 for (c
= elt
->children
; c
; c
= c
->sibling
)
1415 count
+= sum_instantiated_sizes (c
, sizep
);
1421 /* Instantiate fields in ELT->TYPE that are not currently present as
1424 static void instantiate_missing_elements (struct sra_elt
*elt
);
1426 static struct sra_elt
*
1427 instantiate_missing_elements_1 (struct sra_elt
*elt
, tree child
, tree type
)
1429 struct sra_elt
*sub
= lookup_element (elt
, child
, type
, INSERT
);
1432 if (sub
->replacement
== NULL
)
1433 instantiate_element (sub
);
1436 instantiate_missing_elements (sub
);
1440 /* Obtain the canonical type for field F of ELEMENT. */
1443 canon_type_for_field (tree f
, tree element
)
1445 tree field_type
= TREE_TYPE (f
);
1447 /* canonicalize_component_ref() unwidens some bit-field types (not
1448 marked as DECL_BIT_FIELD in C++), so we must do the same, lest we
1449 may introduce type mismatches. */
1450 if (INTEGRAL_TYPE_P (field_type
)
1451 && DECL_MODE (f
) != TYPE_MODE (field_type
))
1452 field_type
= TREE_TYPE (get_unwidened (build3 (COMPONENT_REF
,
1461 /* Look for adjacent fields of ELT starting at F that we'd like to
1462 scalarize as a single variable. Return the last field of the
1466 try_instantiate_multiple_fields (struct sra_elt
*elt
, tree f
)
1469 unsigned HOST_WIDE_INT align
, bit
, size
, alchk
;
1470 enum machine_mode mode
;
1471 tree first
= f
, prev
;
1473 struct sra_elt
*block
;
1475 /* Point fields are typically best handled as standalone entities. */
1476 if (POINTER_TYPE_P (TREE_TYPE (f
)))
1479 if (!is_sra_scalar_type (TREE_TYPE (f
))
1480 || !host_integerp (DECL_FIELD_OFFSET (f
), 1)
1481 || !host_integerp (DECL_FIELD_BIT_OFFSET (f
), 1)
1482 || !host_integerp (DECL_SIZE (f
), 1)
1483 || lookup_element (elt
, f
, NULL
, NO_INSERT
))
1488 /* For complex and array objects, there are going to be integer
1489 literals as child elements. In this case, we can't just take the
1490 alignment and mode of the decl, so we instead rely on the element
1493 ??? We could try to infer additional alignment from the full
1494 object declaration and the location of the sub-elements we're
1496 for (count
= 0; !DECL_P (block
->element
); count
++)
1497 block
= block
->parent
;
1499 align
= DECL_ALIGN (block
->element
);
1500 alchk
= GET_MODE_BITSIZE (DECL_MODE (block
->element
));
1504 type
= TREE_TYPE (block
->element
);
1506 type
= TREE_TYPE (type
);
1508 align
= TYPE_ALIGN (type
);
1509 alchk
= GET_MODE_BITSIZE (TYPE_MODE (type
));
1515 /* Coalescing wider fields is probably pointless and
1517 if (align
> BITS_PER_WORD
)
1518 align
= BITS_PER_WORD
;
1520 bit
= tree_low_cst (DECL_FIELD_OFFSET (f
), 1) * BITS_PER_UNIT
1521 + tree_low_cst (DECL_FIELD_BIT_OFFSET (f
), 1);
1522 size
= tree_low_cst (DECL_SIZE (f
), 1);
1527 if ((bit
& alchk
) != ((bit
+ size
- 1) & alchk
))
1530 /* Find adjacent fields in the same alignment word. */
1532 for (prev
= f
, f
= TREE_CHAIN (f
);
1533 f
&& TREE_CODE (f
) == FIELD_DECL
1534 && is_sra_scalar_type (TREE_TYPE (f
))
1535 && host_integerp (DECL_FIELD_OFFSET (f
), 1)
1536 && host_integerp (DECL_FIELD_BIT_OFFSET (f
), 1)
1537 && host_integerp (DECL_SIZE (f
), 1)
1538 && !lookup_element (elt
, f
, NULL
, NO_INSERT
);
1539 prev
= f
, f
= TREE_CHAIN (f
))
1541 unsigned HOST_WIDE_INT nbit
, nsize
;
1543 nbit
= tree_low_cst (DECL_FIELD_OFFSET (f
), 1) * BITS_PER_UNIT
1544 + tree_low_cst (DECL_FIELD_BIT_OFFSET (f
), 1);
1545 nsize
= tree_low_cst (DECL_SIZE (f
), 1);
1547 if (bit
+ size
== nbit
)
1549 if ((bit
& alchk
) != ((nbit
+ nsize
- 1) & alchk
))
1551 /* If we're at an alignment boundary, don't bother
1552 growing alignment such that we can include this next
1555 || GET_MODE_BITSIZE (DECL_MODE (f
)) <= align
)
1558 align
= GET_MODE_BITSIZE (DECL_MODE (f
));
1562 if ((bit
& alchk
) != ((nbit
+ nsize
- 1) & alchk
))
1567 else if (nbit
+ nsize
== bit
)
1569 if ((nbit
& alchk
) != ((bit
+ size
- 1) & alchk
))
1572 || GET_MODE_BITSIZE (DECL_MODE (f
)) <= align
)
1575 align
= GET_MODE_BITSIZE (DECL_MODE (f
));
1579 if ((nbit
& alchk
) != ((bit
+ size
- 1) & alchk
))
1594 gcc_assert ((bit
& alchk
) == ((bit
+ size
- 1) & alchk
));
1596 /* Try to widen the bit range so as to cover padding bits as well. */
1598 if ((bit
& ~alchk
) || size
!= align
)
1600 unsigned HOST_WIDE_INT mbit
= bit
& alchk
;
1601 unsigned HOST_WIDE_INT msize
= align
;
1603 for (f
= TYPE_FIELDS (elt
->type
);
1604 f
; f
= TREE_CHAIN (f
))
1606 unsigned HOST_WIDE_INT fbit
, fsize
;
1608 /* Skip the fields from first to prev. */
1615 if (!(TREE_CODE (f
) == FIELD_DECL
1616 && host_integerp (DECL_FIELD_OFFSET (f
), 1)
1617 && host_integerp (DECL_FIELD_BIT_OFFSET (f
), 1)))
1620 fbit
= tree_low_cst (DECL_FIELD_OFFSET (f
), 1) * BITS_PER_UNIT
1621 + tree_low_cst (DECL_FIELD_BIT_OFFSET (f
), 1);
1623 /* If we're past the selected word, we're fine. */
1624 if ((bit
& alchk
) < (fbit
& alchk
))
1627 if (host_integerp (DECL_SIZE (f
), 1))
1628 fsize
= tree_low_cst (DECL_SIZE (f
), 1);
1630 /* Assume a variable-sized field takes up all space till
1631 the end of the word. ??? Endianness issues? */
1632 fsize
= align
- (fbit
& alchk
);
1634 if ((fbit
& alchk
) < (bit
& alchk
))
1636 /* A large field might start at a previous word and
1637 extend into the selected word. Exclude those
1638 bits. ??? Endianness issues? */
1639 HOST_WIDE_INT diff
= fbit
+ fsize
- mbit
;
1649 /* Non-overlapping, great. */
1650 if (fbit
+ fsize
<= mbit
1651 || mbit
+ msize
<= fbit
)
1656 unsigned HOST_WIDE_INT diff
= fbit
+ fsize
- mbit
;
1660 else if (fbit
> mbit
)
1661 msize
-= (mbit
+ msize
- fbit
);
1671 /* Now we know the bit range we're interested in. Find the smallest
1672 machine mode we can use to access it. */
1674 for (mode
= smallest_mode_for_size (size
, MODE_INT
);
1676 mode
= GET_MODE_WIDER_MODE (mode
))
1678 gcc_assert (mode
!= VOIDmode
);
1680 alchk
= GET_MODE_PRECISION (mode
) - 1;
1683 if ((bit
& alchk
) == ((bit
+ size
- 1) & alchk
))
1687 gcc_assert (~alchk
< align
);
1689 /* Create the field group as a single variable. */
1691 /* We used to create a type for the mode above, but size turns
1692 to be out not of mode-size. As we need a matching type
1693 to build a BIT_FIELD_REF, use a nonstandard integer type as
1695 type
= lang_hooks
.types
.type_for_size (size
, 1);
1696 if (!type
|| TYPE_PRECISION (type
) != size
)
1697 type
= build_nonstandard_integer_type (size
, 1);
1699 var
= build3 (BIT_FIELD_REF
, type
, NULL_TREE
,
1703 block
= instantiate_missing_elements_1 (elt
, var
, type
);
1704 gcc_assert (block
&& block
->is_scalar
);
1706 var
= block
->replacement
;
1709 || (HOST_WIDE_INT
)size
!= tree_low_cst (DECL_SIZE (var
), 1))
1711 block
->replacement
= build3 (BIT_FIELD_REF
,
1712 TREE_TYPE (block
->element
), var
,
1714 bitsize_int (bit
& ~alchk
));
1717 block
->in_bitfld_block
= 2;
1719 /* Add the member fields to the group, such that they access
1720 portions of the group variable. */
1722 for (f
= first
; f
!= TREE_CHAIN (prev
); f
= TREE_CHAIN (f
))
1724 tree field_type
= canon_type_for_field (f
, elt
->element
);
1725 struct sra_elt
*fld
= lookup_element (block
, f
, field_type
, INSERT
);
1727 gcc_assert (fld
&& fld
->is_scalar
&& !fld
->replacement
);
1729 fld
->replacement
= build3 (BIT_FIELD_REF
, field_type
, var
,
1732 ((TREE_INT_CST_LOW (DECL_FIELD_OFFSET (f
))
1735 (DECL_FIELD_BIT_OFFSET (f
))))
1737 fld
->in_bitfld_block
= 1;
1744 instantiate_missing_elements (struct sra_elt
*elt
)
1746 tree type
= elt
->type
;
1748 switch (TREE_CODE (type
))
1753 for (f
= TYPE_FIELDS (type
); f
; f
= TREE_CHAIN (f
))
1754 if (TREE_CODE (f
) == FIELD_DECL
)
1756 tree last
= try_instantiate_multiple_fields (elt
, f
);
1764 instantiate_missing_elements_1 (elt
, f
,
1765 canon_type_for_field
1773 tree i
, max
, subtype
;
1775 i
= TYPE_MIN_VALUE (TYPE_DOMAIN (type
));
1776 max
= TYPE_MAX_VALUE (TYPE_DOMAIN (type
));
1777 subtype
= TREE_TYPE (type
);
1781 instantiate_missing_elements_1 (elt
, i
, subtype
);
1782 if (tree_int_cst_equal (i
, max
))
1784 i
= int_const_binop (PLUS_EXPR
, i
, integer_one_node
, true);
1791 type
= TREE_TYPE (type
);
1792 instantiate_missing_elements_1 (elt
, integer_zero_node
, type
);
1793 instantiate_missing_elements_1 (elt
, integer_one_node
, type
);
1801 /* Return true if there is only one non aggregate field in the record, TYPE.
1802 Return false otherwise. */
1805 single_scalar_field_in_record_p (tree type
)
1809 if (TREE_CODE (type
) != RECORD_TYPE
)
1812 for (field
= TYPE_FIELDS (type
); field
; field
= TREE_CHAIN (field
))
1813 if (TREE_CODE (field
) == FIELD_DECL
)
1817 if (num_fields
== 2)
1820 if (AGGREGATE_TYPE_P (TREE_TYPE (field
)))
1827 /* Make one pass across an element tree deciding whether to perform block
1828 or element copies. If we decide on element copies, instantiate all
1829 elements. Return true if there are any instantiated sub-elements. */
1832 decide_block_copy (struct sra_elt
*elt
)
1837 /* We shouldn't be invoked on groups of sub-elements as they must
1838 behave like their parent as far as block copy is concerned. */
1839 gcc_assert (!elt
->is_group
);
1841 /* If scalarization is disabled, respect it. */
1842 if (elt
->cannot_scalarize
)
1844 elt
->use_block_copy
= 1;
1848 fputs ("Scalarization disabled for ", dump_file
);
1849 dump_sra_elt_name (dump_file
, elt
);
1850 fputc ('\n', dump_file
);
1853 /* Disable scalarization of sub-elements */
1854 for (c
= elt
->children
; c
; c
= c
->sibling
)
1856 c
->cannot_scalarize
= 1;
1857 decide_block_copy (c
);
1860 /* Groups behave like their parent. */
1861 for (c
= elt
->groups
; c
; c
= c
->sibling
)
1863 c
->cannot_scalarize
= 1;
1864 c
->use_block_copy
= 1;
1870 /* Don't decide if we've no uses and no groups. */
1871 if (elt
->n_uses
== 0 && elt
->n_copies
== 0 && elt
->groups
== NULL
)
1874 else if (!elt
->is_scalar
)
1876 tree size_tree
= TYPE_SIZE_UNIT (elt
->type
);
1877 bool use_block_copy
= true;
1879 /* Tradeoffs for COMPLEX types pretty much always make it better
1880 to go ahead and split the components. */
1881 if (TREE_CODE (elt
->type
) == COMPLEX_TYPE
)
1882 use_block_copy
= false;
1884 /* Don't bother trying to figure out the rest if the structure is
1885 so large we can't do easy arithmetic. This also forces block
1886 copies for variable sized structures. */
1887 else if (host_integerp (size_tree
, 1))
1889 unsigned HOST_WIDE_INT full_size
, inst_size
= 0;
1890 unsigned int max_size
, max_count
, inst_count
, full_count
;
1892 /* If the sra-max-structure-size parameter is 0, then the
1893 user has not overridden the parameter and we can choose a
1894 sensible default. */
1895 max_size
= SRA_MAX_STRUCTURE_SIZE
1896 ? SRA_MAX_STRUCTURE_SIZE
1897 : MOVE_RATIO
* UNITS_PER_WORD
;
1898 max_count
= SRA_MAX_STRUCTURE_COUNT
1899 ? SRA_MAX_STRUCTURE_COUNT
1902 full_size
= tree_low_cst (size_tree
, 1);
1903 full_count
= count_type_elements (elt
->type
, false);
1904 inst_count
= sum_instantiated_sizes (elt
, &inst_size
);
1906 /* If there is only one scalar field in the record, don't block copy. */
1907 if (single_scalar_field_in_record_p (elt
->type
))
1908 use_block_copy
= false;
1910 /* ??? What to do here. If there are two fields, and we've only
1911 instantiated one, then instantiating the other is clearly a win.
1912 If there are a large number of fields then the size of the copy
1913 is much more of a factor. */
1915 /* If the structure is small, and we've made copies, go ahead
1916 and instantiate, hoping that the copies will go away. */
1917 if (full_size
<= max_size
1918 && (full_count
- inst_count
) <= max_count
1919 && elt
->n_copies
> elt
->n_uses
)
1920 use_block_copy
= false;
1921 else if (inst_count
* 100 >= full_count
* SRA_FIELD_STRUCTURE_RATIO
1922 && inst_size
* 100 >= full_size
* SRA_FIELD_STRUCTURE_RATIO
)
1923 use_block_copy
= false;
1925 /* In order to avoid block copy, we have to be able to instantiate
1926 all elements of the type. See if this is possible. */
1928 && (!can_completely_scalarize_p (elt
)
1929 || !type_can_instantiate_all_elements (elt
->type
)))
1930 use_block_copy
= true;
1933 elt
->use_block_copy
= use_block_copy
;
1935 /* Groups behave like their parent. */
1936 for (c
= elt
->groups
; c
; c
= c
->sibling
)
1937 c
->use_block_copy
= use_block_copy
;
1941 fprintf (dump_file
, "Using %s for ",
1942 use_block_copy
? "block-copy" : "element-copy");
1943 dump_sra_elt_name (dump_file
, elt
);
1944 fputc ('\n', dump_file
);
1947 if (!use_block_copy
)
1949 instantiate_missing_elements (elt
);
1954 any_inst
= elt
->replacement
!= NULL
;
1956 for (c
= elt
->children
; c
; c
= c
->sibling
)
1957 any_inst
|= decide_block_copy (c
);
1962 /* Entry point to phase 3. Instantiate scalar replacement variables. */
1965 decide_instantiations (void)
1969 bitmap_head done_head
;
1972 /* We cannot clear bits from a bitmap we're iterating over,
1973 so save up all the bits to clear until the end. */
1974 bitmap_initialize (&done_head
, &bitmap_default_obstack
);
1975 cleared_any
= false;
1977 EXECUTE_IF_SET_IN_BITMAP (sra_candidates
, 0, i
, bi
)
1979 tree var
= referenced_var (i
);
1980 struct sra_elt
*elt
= lookup_element (NULL
, var
, NULL
, NO_INSERT
);
1983 decide_instantiation_1 (elt
, 0, 0);
1984 if (!decide_block_copy (elt
))
1989 bitmap_set_bit (&done_head
, i
);
1996 bitmap_and_compl_into (sra_candidates
, &done_head
);
1997 bitmap_and_compl_into (needs_copy_in
, &done_head
);
1999 bitmap_clear (&done_head
);
2001 mark_set_for_renaming (sra_candidates
);
2004 fputc ('\n', dump_file
);
2008 /* Phase Four: Update the function to match the replacements created. */
2010 /* Mark all the variables in VDEF/VUSE operators for STMT for
2011 renaming. This becomes necessary when we modify all of a
2015 mark_all_v_defs_1 (tree stmt
)
2020 update_stmt_if_modified (stmt
);
2022 FOR_EACH_SSA_TREE_OPERAND (sym
, stmt
, iter
, SSA_OP_ALL_VIRTUALS
)
2024 if (TREE_CODE (sym
) == SSA_NAME
)
2025 sym
= SSA_NAME_VAR (sym
);
2026 mark_sym_for_renaming (sym
);
2031 /* Mark all the variables in virtual operands in all the statements in
2032 LIST for renaming. */
2035 mark_all_v_defs (tree list
)
2037 if (TREE_CODE (list
) != STATEMENT_LIST
)
2038 mark_all_v_defs_1 (list
);
2041 tree_stmt_iterator i
;
2042 for (i
= tsi_start (list
); !tsi_end_p (i
); tsi_next (&i
))
2043 mark_all_v_defs_1 (tsi_stmt (i
));
2048 /* Mark every replacement under ELT with TREE_NO_WARNING. */
2051 mark_no_warning (struct sra_elt
*elt
)
2053 if (!elt
->all_no_warning
)
2055 if (elt
->replacement
)
2056 TREE_NO_WARNING (elt
->replacement
) = 1;
2060 FOR_EACH_ACTUAL_CHILD (c
, elt
)
2061 mark_no_warning (c
);
2063 elt
->all_no_warning
= true;
2067 /* Build a single level component reference to ELT rooted at BASE. */
2070 generate_one_element_ref (struct sra_elt
*elt
, tree base
)
2072 switch (TREE_CODE (TREE_TYPE (base
)))
2076 tree field
= elt
->element
;
2078 /* We can't test elt->in_bitfld_blk here because, when this is
2079 called from instantiate_element, we haven't set this field
2081 if (TREE_CODE (field
) == BIT_FIELD_REF
)
2083 tree ret
= unshare_expr (field
);
2084 TREE_OPERAND (ret
, 0) = base
;
2088 /* Watch out for compatible records with differing field lists. */
2089 if (DECL_FIELD_CONTEXT (field
) != TYPE_MAIN_VARIANT (TREE_TYPE (base
)))
2090 field
= find_compatible_field (TREE_TYPE (base
), field
);
2092 return build3 (COMPONENT_REF
, elt
->type
, base
, field
, NULL
);
2096 if (TREE_CODE (elt
->element
) == RANGE_EXPR
)
2097 return build4 (ARRAY_RANGE_REF
, elt
->type
, base
,
2098 TREE_OPERAND (elt
->element
, 0), NULL
, NULL
);
2100 return build4 (ARRAY_REF
, elt
->type
, base
, elt
->element
, NULL
, NULL
);
2103 if (elt
->element
== integer_zero_node
)
2104 return build1 (REALPART_EXPR
, elt
->type
, base
);
2106 return build1 (IMAGPART_EXPR
, elt
->type
, base
);
2113 /* Build a full component reference to ELT rooted at its native variable. */
2116 generate_element_ref (struct sra_elt
*elt
)
2119 return generate_one_element_ref (elt
, generate_element_ref (elt
->parent
));
2121 return elt
->element
;
2124 /* Return true if BF is a bit-field that we can handle like a scalar. */
2127 scalar_bitfield_p (tree bf
)
2129 return (TREE_CODE (bf
) == BIT_FIELD_REF
2130 && (is_gimple_reg (TREE_OPERAND (bf
, 0))
2131 || (TYPE_MODE (TREE_TYPE (TREE_OPERAND (bf
, 0))) != BLKmode
2132 && (!TREE_SIDE_EFFECTS (TREE_OPERAND (bf
, 0))
2133 || (GET_MODE_BITSIZE (TYPE_MODE (TREE_TYPE
2134 (TREE_OPERAND (bf
, 0))))
2135 <= BITS_PER_WORD
)))));
2138 /* Create an assignment statement from SRC to DST. */
2141 sra_build_assignment (tree dst
, tree src
)
2143 /* Turning BIT_FIELD_REFs into bit operations enables other passes
2144 to do a much better job at optimizing the code.
2145 From dst = BIT_FIELD_REF <var, sz, off> we produce
2147 SR.1 = (scalar type) var;
2149 SR.3 = SR.2 & ((1 << sz) - 1);
2150 ... possible sign extension of SR.3 ...
2151 dst = (destination type) SR.3;
2153 if (scalar_bitfield_p (src
))
2155 tree var
, shift
, width
;
2156 tree utype
, stype
, stmp
, utmp
, dtmp
;
2158 bool unsignedp
= (INTEGRAL_TYPE_P (TREE_TYPE (src
))
2159 ? TYPE_UNSIGNED (TREE_TYPE (src
)) : true);
2161 var
= TREE_OPERAND (src
, 0);
2162 width
= TREE_OPERAND (src
, 1);
2163 /* The offset needs to be adjusted to a right shift quantity
2164 depending on the endianess. */
2165 if (BYTES_BIG_ENDIAN
)
2167 tree tmp
= size_binop (PLUS_EXPR
, width
, TREE_OPERAND (src
, 2));
2168 shift
= size_binop (MINUS_EXPR
, TYPE_SIZE (TREE_TYPE (var
)), tmp
);
2171 shift
= TREE_OPERAND (src
, 2);
2173 /* In weird cases we have non-integral types for the source or
2175 ??? For unknown reasons we also want an unsigned scalar type. */
2176 stype
= TREE_TYPE (var
);
2177 if (!INTEGRAL_TYPE_P (stype
))
2178 stype
= lang_hooks
.types
.type_for_size (TREE_INT_CST_LOW
2179 (TYPE_SIZE (stype
)), 1);
2180 else if (!TYPE_UNSIGNED (stype
))
2181 stype
= unsigned_type_for (stype
);
2183 utype
= TREE_TYPE (dst
);
2184 if (!INTEGRAL_TYPE_P (utype
))
2185 utype
= lang_hooks
.types
.type_for_size (TREE_INT_CST_LOW
2186 (TYPE_SIZE (utype
)), 1);
2187 else if (!TYPE_UNSIGNED (utype
))
2188 utype
= unsigned_type_for (utype
);
2191 stmp
= make_rename_temp (stype
, "SR");
2193 /* Convert the base var of the BIT_FIELD_REF to the scalar type
2194 we use for computation if we cannot use it directly. */
2195 if (!useless_type_conversion_p (stype
, TREE_TYPE (var
)))
2197 if (INTEGRAL_TYPE_P (TREE_TYPE (var
)))
2198 stmt
= build_gimple_modify_stmt (stmp
,
2199 fold_convert (stype
, var
));
2201 stmt
= build_gimple_modify_stmt (stmp
,
2202 fold_build1 (VIEW_CONVERT_EXPR
,
2204 append_to_statement_list (stmt
, &list
);
2208 if (!integer_zerop (shift
))
2210 stmt
= build_gimple_modify_stmt (stmp
,
2211 fold_build2 (RSHIFT_EXPR
, stype
,
2213 append_to_statement_list (stmt
, &list
);
2217 /* If we need a masking operation, produce one. */
2218 if (TREE_INT_CST_LOW (width
) == TYPE_PRECISION (stype
))
2222 tree one
= build_int_cst_wide (stype
, 1, 0);
2223 tree mask
= int_const_binop (LSHIFT_EXPR
, one
, width
, 0);
2224 mask
= int_const_binop (MINUS_EXPR
, mask
, one
, 0);
2226 stmt
= build_gimple_modify_stmt (stmp
,
2227 fold_build2 (BIT_AND_EXPR
, stype
,
2229 append_to_statement_list (stmt
, &list
);
2233 /* After shifting and masking, convert to the target type. */
2235 if (!useless_type_conversion_p (utype
, stype
))
2237 utmp
= make_rename_temp (utype
, "SR");
2239 stmt
= build_gimple_modify_stmt (utmp
, fold_convert (utype
, var
));
2240 append_to_statement_list (stmt
, &list
);
2245 /* Perform sign extension, if required.
2246 ??? This should never be necessary. */
2249 tree signbit
= int_const_binop (LSHIFT_EXPR
,
2250 build_int_cst_wide (utype
, 1, 0),
2251 size_binop (MINUS_EXPR
, width
,
2252 bitsize_int (1)), 0);
2254 stmt
= build_gimple_modify_stmt (utmp
,
2255 fold_build2 (BIT_XOR_EXPR
, utype
,
2257 append_to_statement_list (stmt
, &list
);
2259 stmt
= build_gimple_modify_stmt (utmp
,
2260 fold_build2 (MINUS_EXPR
, utype
,
2262 append_to_statement_list (stmt
, &list
);
2267 /* Finally, move and convert to the destination. */
2268 if (!useless_type_conversion_p (TREE_TYPE (dst
), TREE_TYPE (var
)))
2270 if (INTEGRAL_TYPE_P (TREE_TYPE (dst
)))
2271 var
= fold_convert (TREE_TYPE (dst
), var
);
2273 var
= fold_build1 (VIEW_CONVERT_EXPR
, TREE_TYPE (dst
), var
);
2275 /* If the destination is not a register the conversion needs
2276 to be a separate statement. */
2277 if (!is_gimple_reg (dst
))
2279 dtmp
= make_rename_temp (TREE_TYPE (dst
), "SR");
2280 stmt
= build_gimple_modify_stmt (dtmp
, var
);
2281 append_to_statement_list (stmt
, &list
);
2285 stmt
= build_gimple_modify_stmt (dst
, var
);
2286 append_to_statement_list (stmt
, &list
);
2291 /* It was hoped that we could perform some type sanity checking
2292 here, but since front-ends can emit accesses of fields in types
2293 different from their nominal types and copy structures containing
2294 them as a whole, we'd have to handle such differences here.
2295 Since such accesses under different types require compatibility
2296 anyway, there's little point in making tests and/or adding
2297 conversions to ensure the types of src and dst are the same.
2298 So we just assume type differences at this point are ok.
2299 The only exception we make here are pointer types, which can be different
2300 in e.g. structurally equal, but non-identical RECORD_TYPEs. */
2301 if (POINTER_TYPE_P (TREE_TYPE (dst
))
2302 && !useless_type_conversion_p (TREE_TYPE (dst
), TREE_TYPE (src
)))
2303 src
= fold_convert (TREE_TYPE (dst
), src
);
2305 return build_gimple_modify_stmt (dst
, src
);
2308 /* BIT_FIELD_REFs must not be shared. sra_build_elt_assignment()
2309 takes care of assignments, but we must create copies for uses. */
2310 #define REPLDUP(t) (TREE_CODE (t) != BIT_FIELD_REF ? (t) : unshare_expr (t))
2312 /* Emit an assignment from SRC to DST, but if DST is a scalarizable
2313 BIT_FIELD_REF, turn it into bit operations. */
2316 sra_build_bf_assignment (tree dst
, tree src
)
2318 tree var
, type
, utype
, tmp
, tmp2
, tmp3
;
2320 tree cst
, cst2
, mask
;
2321 tree minshift
, maxshift
;
2323 if (TREE_CODE (dst
) != BIT_FIELD_REF
)
2324 return sra_build_assignment (dst
, src
);
2326 var
= TREE_OPERAND (dst
, 0);
2328 if (!scalar_bitfield_p (dst
))
2329 return sra_build_assignment (REPLDUP (dst
), src
);
2333 cst
= fold_convert (bitsizetype
, TREE_OPERAND (dst
, 2));
2334 cst2
= size_binop (PLUS_EXPR
,
2335 fold_convert (bitsizetype
, TREE_OPERAND (dst
, 1)),
2338 if (BYTES_BIG_ENDIAN
)
2340 maxshift
= size_binop (MINUS_EXPR
, TYPE_SIZE (TREE_TYPE (var
)), cst
);
2341 minshift
= size_binop (MINUS_EXPR
, TYPE_SIZE (TREE_TYPE (var
)), cst2
);
2349 type
= TREE_TYPE (var
);
2350 if (!INTEGRAL_TYPE_P (type
))
2351 type
= lang_hooks
.types
.type_for_size
2352 (TREE_INT_CST_LOW (TYPE_SIZE (TREE_TYPE (var
))), 1);
2353 if (TYPE_UNSIGNED (type
))
2356 utype
= unsigned_type_for (type
);
2358 mask
= build_int_cst_wide (utype
, 1, 0);
2359 if (TREE_INT_CST_LOW (maxshift
) == TYPE_PRECISION (utype
))
2360 cst
= build_int_cst_wide (utype
, 0, 0);
2362 cst
= int_const_binop (LSHIFT_EXPR
, mask
, maxshift
, true);
2363 if (integer_zerop (minshift
))
2366 cst2
= int_const_binop (LSHIFT_EXPR
, mask
, minshift
, true);
2367 mask
= int_const_binop (MINUS_EXPR
, cst
, cst2
, true);
2368 mask
= fold_build1 (BIT_NOT_EXPR
, utype
, mask
);
2370 if (TYPE_MAIN_VARIANT (utype
) != TYPE_MAIN_VARIANT (TREE_TYPE (var
))
2371 && !integer_zerop (mask
))
2374 if (!is_gimple_variable (tmp
))
2375 tmp
= unshare_expr (var
);
2377 tmp2
= make_rename_temp (utype
, "SR");
2379 if (INTEGRAL_TYPE_P (TREE_TYPE (var
)))
2380 stmt
= build_gimple_modify_stmt (tmp2
, fold_convert (utype
, tmp
));
2382 stmt
= build_gimple_modify_stmt (tmp2
, fold_build1 (VIEW_CONVERT_EXPR
,
2384 append_to_statement_list (stmt
, &list
);
2389 if (!integer_zerop (mask
))
2391 tmp
= make_rename_temp (utype
, "SR");
2392 stmt
= build_gimple_modify_stmt (tmp
,
2393 fold_build2 (BIT_AND_EXPR
, utype
,
2395 append_to_statement_list (stmt
, &list
);
2400 if (is_gimple_reg (src
) && INTEGRAL_TYPE_P (TREE_TYPE (src
)))
2402 else if (INTEGRAL_TYPE_P (TREE_TYPE (src
)))
2404 tmp2
= make_rename_temp (TREE_TYPE (src
), "SR");
2405 stmt
= sra_build_assignment (tmp2
, src
);
2406 append_to_statement_list (stmt
, &list
);
2410 tmp2
= make_rename_temp
2411 (lang_hooks
.types
.type_for_size
2412 (TREE_INT_CST_LOW (TYPE_SIZE (TREE_TYPE (src
))),
2414 stmt
= sra_build_assignment (tmp2
, fold_build1 (VIEW_CONVERT_EXPR
,
2415 TREE_TYPE (tmp2
), src
));
2416 append_to_statement_list (stmt
, &list
);
2419 if (!TYPE_UNSIGNED (TREE_TYPE (tmp2
)))
2421 tree ut
= unsigned_type_for (TREE_TYPE (tmp2
));
2422 tmp3
= make_rename_temp (ut
, "SR");
2423 tmp2
= fold_convert (ut
, tmp2
);
2424 stmt
= sra_build_assignment (tmp3
, tmp2
);
2425 append_to_statement_list (stmt
, &list
);
2427 tmp2
= fold_build1 (BIT_NOT_EXPR
, utype
, mask
);
2428 tmp2
= int_const_binop (RSHIFT_EXPR
, tmp2
, minshift
, true);
2429 tmp2
= fold_convert (ut
, tmp2
);
2430 tmp2
= fold_build2 (BIT_AND_EXPR
, ut
, tmp3
, tmp2
);
2434 tmp3
= make_rename_temp (ut
, "SR");
2435 stmt
= sra_build_assignment (tmp3
, tmp2
);
2436 append_to_statement_list (stmt
, &list
);
2442 if (TYPE_MAIN_VARIANT (TREE_TYPE (tmp2
)) != TYPE_MAIN_VARIANT (utype
))
2444 tmp3
= make_rename_temp (utype
, "SR");
2445 tmp2
= fold_convert (utype
, tmp2
);
2446 stmt
= sra_build_assignment (tmp3
, tmp2
);
2447 append_to_statement_list (stmt
, &list
);
2451 if (!integer_zerop (minshift
))
2453 tmp3
= make_rename_temp (utype
, "SR");
2454 stmt
= build_gimple_modify_stmt (tmp3
,
2455 fold_build2 (LSHIFT_EXPR
, utype
,
2457 append_to_statement_list (stmt
, &list
);
2461 if (utype
!= TREE_TYPE (var
))
2462 tmp3
= make_rename_temp (utype
, "SR");
2465 stmt
= build_gimple_modify_stmt (tmp3
,
2466 fold_build2 (BIT_IOR_EXPR
, utype
,
2468 append_to_statement_list (stmt
, &list
);
2472 if (TREE_TYPE (var
) == type
)
2473 stmt
= build_gimple_modify_stmt (var
,
2474 fold_convert (type
, tmp3
));
2476 stmt
= build_gimple_modify_stmt (var
,
2477 fold_build1 (VIEW_CONVERT_EXPR
,
2478 TREE_TYPE (var
), tmp3
));
2479 append_to_statement_list (stmt
, &list
);
2485 /* Expand an assignment of SRC to the scalarized representation of
2486 ELT. If it is a field group, try to widen the assignment to cover
2487 the full variable. */
2490 sra_build_elt_assignment (struct sra_elt
*elt
, tree src
)
2492 tree dst
= elt
->replacement
;
2493 tree var
, tmp
, cst
, cst2
, list
, stmt
;
2495 if (TREE_CODE (dst
) != BIT_FIELD_REF
2496 || !elt
->in_bitfld_block
)
2497 return sra_build_assignment (REPLDUP (dst
), src
);
2499 var
= TREE_OPERAND (dst
, 0);
2501 /* Try to widen the assignment to the entire variable.
2502 We need the source to be a BIT_FIELD_REF as well, such that, for
2503 BIT_FIELD_REF<d,sz,dp> = BIT_FIELD_REF<s,sz,sp>,
2504 by design, conditions are met such that we can turn it into
2505 d = BIT_FIELD_REF<s,dw,sp-dp>. */
2506 if (elt
->in_bitfld_block
== 2
2507 && TREE_CODE (src
) == BIT_FIELD_REF
)
2510 cst
= TYPE_SIZE (TREE_TYPE (var
));
2511 cst2
= size_binop (MINUS_EXPR
, TREE_OPERAND (src
, 2),
2512 TREE_OPERAND (dst
, 2));
2514 src
= TREE_OPERAND (src
, 0);
2516 /* Avoid full-width bit-fields. */
2517 if (integer_zerop (cst2
)
2518 && tree_int_cst_equal (cst
, TYPE_SIZE (TREE_TYPE (src
))))
2520 if (INTEGRAL_TYPE_P (TREE_TYPE (src
))
2521 && !TYPE_UNSIGNED (TREE_TYPE (src
)))
2522 src
= fold_convert (unsigned_type_for (TREE_TYPE (src
)), src
);
2524 /* If a single conversion won't do, we'll need a statement
2526 if (TYPE_MAIN_VARIANT (TREE_TYPE (var
))
2527 != TYPE_MAIN_VARIANT (TREE_TYPE (src
)))
2531 if (!INTEGRAL_TYPE_P (TREE_TYPE (src
)))
2532 src
= fold_build1 (VIEW_CONVERT_EXPR
,
2533 lang_hooks
.types
.type_for_size
2535 (TYPE_SIZE (TREE_TYPE (src
))),
2537 gcc_assert (TYPE_UNSIGNED (TREE_TYPE (src
)));
2539 tmp
= make_rename_temp (TREE_TYPE (src
), "SR");
2540 stmt
= build_gimple_modify_stmt (tmp
, src
);
2541 append_to_statement_list (stmt
, &list
);
2543 stmt
= sra_build_assignment (var
,
2544 fold_convert (TREE_TYPE (var
),
2546 append_to_statement_list (stmt
, &list
);
2551 src
= fold_convert (TREE_TYPE (var
), src
);
2555 src
= fold_convert (TREE_TYPE (var
), tmp
);
2558 return sra_build_assignment (var
, src
);
2561 return sra_build_bf_assignment (dst
, src
);
2564 /* Generate a set of assignment statements in *LIST_P to copy all
2565 instantiated elements under ELT to or from the equivalent structure
2566 rooted at EXPR. COPY_OUT controls the direction of the copy, with
2567 true meaning to copy out of EXPR into ELT. */
2570 generate_copy_inout (struct sra_elt
*elt
, bool copy_out
, tree expr
,
2576 if (!copy_out
&& TREE_CODE (expr
) == SSA_NAME
2577 && TREE_CODE (TREE_TYPE (expr
)) == COMPLEX_TYPE
)
2581 c
= lookup_element (elt
, integer_zero_node
, NULL
, NO_INSERT
);
2583 c
= lookup_element (elt
, integer_one_node
, NULL
, NO_INSERT
);
2586 t
= build2 (COMPLEX_EXPR
, elt
->type
, r
, i
);
2587 t
= sra_build_bf_assignment (expr
, t
);
2588 SSA_NAME_DEF_STMT (expr
) = t
;
2589 append_to_statement_list (t
, list_p
);
2591 else if (elt
->replacement
)
2594 t
= sra_build_elt_assignment (elt
, expr
);
2596 t
= sra_build_bf_assignment (expr
, REPLDUP (elt
->replacement
));
2597 append_to_statement_list (t
, list_p
);
2601 FOR_EACH_ACTUAL_CHILD (c
, elt
)
2603 t
= generate_one_element_ref (c
, unshare_expr (expr
));
2604 generate_copy_inout (c
, copy_out
, t
, list_p
);
2609 /* Generate a set of assignment statements in *LIST_P to copy all instantiated
2610 elements under SRC to their counterparts under DST. There must be a 1-1
2611 correspondence of instantiated elements. */
2614 generate_element_copy (struct sra_elt
*dst
, struct sra_elt
*src
, tree
*list_p
)
2616 struct sra_elt
*dc
, *sc
;
2618 FOR_EACH_ACTUAL_CHILD (dc
, dst
)
2620 sc
= lookup_element (src
, dc
->element
, NULL
, NO_INSERT
);
2621 if (!sc
&& dc
->in_bitfld_block
== 2)
2623 struct sra_elt
*dcs
;
2625 FOR_EACH_ACTUAL_CHILD (dcs
, dc
)
2627 sc
= lookup_element (src
, dcs
->element
, NULL
, NO_INSERT
);
2629 generate_element_copy (dcs
, sc
, list_p
);
2635 /* If DST and SRC are structs with the same elements, but do not have
2636 the same TYPE_MAIN_VARIANT, then lookup of DST FIELD_DECL in SRC
2637 will fail. Try harder by finding the corresponding FIELD_DECL
2643 gcc_assert (useless_type_conversion_p (dst
->type
, src
->type
));
2644 gcc_assert (TREE_CODE (dc
->element
) == FIELD_DECL
);
2645 for (f
= TYPE_FIELDS (src
->type
); f
; f
= TREE_CHAIN (f
))
2646 if (simple_cst_equal (DECL_FIELD_OFFSET (f
),
2647 DECL_FIELD_OFFSET (dc
->element
)) > 0
2648 && simple_cst_equal (DECL_FIELD_BIT_OFFSET (f
),
2649 DECL_FIELD_BIT_OFFSET (dc
->element
)) > 0
2650 && simple_cst_equal (DECL_SIZE (f
),
2651 DECL_SIZE (dc
->element
)) > 0
2652 && (useless_type_conversion_p (TREE_TYPE (dc
->element
),
2654 || (POINTER_TYPE_P (TREE_TYPE (dc
->element
))
2655 && POINTER_TYPE_P (TREE_TYPE (f
)))))
2657 gcc_assert (f
!= NULL_TREE
);
2658 sc
= lookup_element (src
, f
, NULL
, NO_INSERT
);
2661 generate_element_copy (dc
, sc
, list_p
);
2664 if (dst
->replacement
)
2668 gcc_assert (src
->replacement
);
2670 t
= sra_build_elt_assignment (dst
, REPLDUP (src
->replacement
));
2671 append_to_statement_list (t
, list_p
);
2675 /* Generate a set of assignment statements in *LIST_P to zero all instantiated
2676 elements under ELT. In addition, do not assign to elements that have been
2677 marked VISITED but do reset the visited flag; this allows easy coordination
2678 with generate_element_init. */
2681 generate_element_zero (struct sra_elt
*elt
, tree
*list_p
)
2687 elt
->visited
= false;
2691 if (!elt
->in_bitfld_block
)
2692 FOR_EACH_ACTUAL_CHILD (c
, elt
)
2693 generate_element_zero (c
, list_p
);
2695 if (elt
->replacement
)
2699 gcc_assert (elt
->is_scalar
);
2700 t
= fold_convert (elt
->type
, integer_zero_node
);
2702 t
= sra_build_elt_assignment (elt
, t
);
2703 append_to_statement_list (t
, list_p
);
2707 /* Generate an assignment VAR = INIT, where INIT may need gimplification.
2708 Add the result to *LIST_P. */
2711 generate_one_element_init (struct sra_elt
*elt
, tree init
, tree
*list_p
)
2713 /* The replacement can be almost arbitrarily complex. Gimplify. */
2714 tree stmt
= sra_build_elt_assignment (elt
, init
);
2715 gimplify_and_add (stmt
, list_p
);
2718 /* Generate a set of assignment statements in *LIST_P to set all instantiated
2719 elements under ELT with the contents of the initializer INIT. In addition,
2720 mark all assigned elements VISITED; this allows easy coordination with
2721 generate_element_zero. Return false if we found a case we couldn't
2725 generate_element_init_1 (struct sra_elt
*elt
, tree init
, tree
*list_p
)
2728 enum tree_code init_code
;
2729 struct sra_elt
*sub
;
2731 unsigned HOST_WIDE_INT idx
;
2732 tree value
, purpose
;
2734 /* We can be passed DECL_INITIAL of a static variable. It might have a
2735 conversion, which we strip off here. */
2736 STRIP_USELESS_TYPE_CONVERSION (init
);
2737 init_code
= TREE_CODE (init
);
2741 if (elt
->replacement
)
2743 generate_one_element_init (elt
, init
, list_p
);
2744 elt
->visited
= true;
2753 FOR_EACH_ACTUAL_CHILD (sub
, elt
)
2755 if (sub
->element
== integer_zero_node
)
2756 t
= (init_code
== COMPLEX_EXPR
2757 ? TREE_OPERAND (init
, 0) : TREE_REALPART (init
));
2759 t
= (init_code
== COMPLEX_EXPR
2760 ? TREE_OPERAND (init
, 1) : TREE_IMAGPART (init
));
2761 result
&= generate_element_init_1 (sub
, t
, list_p
);
2766 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (init
), idx
, purpose
, value
)
2768 if (TREE_CODE (purpose
) == RANGE_EXPR
)
2770 tree lower
= TREE_OPERAND (purpose
, 0);
2771 tree upper
= TREE_OPERAND (purpose
, 1);
2775 sub
= lookup_element (elt
, lower
, NULL
, NO_INSERT
);
2777 result
&= generate_element_init_1 (sub
, value
, list_p
);
2778 if (tree_int_cst_equal (lower
, upper
))
2780 lower
= int_const_binop (PLUS_EXPR
, lower
,
2781 integer_one_node
, true);
2786 sub
= lookup_element (elt
, purpose
, NULL
, NO_INSERT
);
2788 result
&= generate_element_init_1 (sub
, value
, list_p
);
2794 elt
->visited
= true;
2801 /* A wrapper function for generate_element_init_1 that handles cleanup after
2805 generate_element_init (struct sra_elt
*elt
, tree init
, tree
*list_p
)
2809 push_gimplify_context ();
2810 ret
= generate_element_init_1 (elt
, init
, list_p
);
2811 pop_gimplify_context (NULL
);
2813 /* The replacement can expose previously unreferenced variables. */
2816 tree_stmt_iterator i
;
2818 for (i
= tsi_start (*list_p
); !tsi_end_p (i
); tsi_next (&i
))
2819 find_new_referenced_vars (tsi_stmt_ptr (i
));
2825 /* Insert STMT on all the outgoing edges out of BB. Note that if BB
2826 has more than one edge, STMT will be replicated for each edge. Also,
2827 abnormal edges will be ignored. */
2830 insert_edge_copies (tree stmt
, basic_block bb
)
2837 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
2839 /* We don't need to insert copies on abnormal edges. The
2840 value of the scalar replacement is not guaranteed to
2841 be valid through an abnormal edge. */
2842 if (!(e
->flags
& EDGE_ABNORMAL
))
2846 bsi_insert_on_edge (e
, stmt
);
2850 bsi_insert_on_edge (e
, unsave_expr_now (stmt
));
2855 /* Helper function to insert LIST before BSI, and set up line number info. */
2858 sra_insert_before (block_stmt_iterator
*bsi
, tree list
)
2860 tree stmt
= bsi_stmt (*bsi
);
2862 if (EXPR_HAS_LOCATION (stmt
))
2863 annotate_all_with_locus (&list
, EXPR_LOCATION (stmt
));
2864 bsi_insert_before (bsi
, list
, BSI_SAME_STMT
);
2867 /* Similarly, but insert after BSI. Handles insertion onto edges as well. */
2870 sra_insert_after (block_stmt_iterator
*bsi
, tree list
)
2872 tree stmt
= bsi_stmt (*bsi
);
2874 if (EXPR_HAS_LOCATION (stmt
))
2875 annotate_all_with_locus (&list
, EXPR_LOCATION (stmt
));
2877 if (stmt_ends_bb_p (stmt
))
2878 insert_edge_copies (list
, bsi
->bb
);
2880 bsi_insert_after (bsi
, list
, BSI_SAME_STMT
);
2883 /* Similarly, but replace the statement at BSI. */
2886 sra_replace (block_stmt_iterator
*bsi
, tree list
)
2888 sra_insert_before (bsi
, list
);
2889 bsi_remove (bsi
, false);
2890 if (bsi_end_p (*bsi
))
2891 *bsi
= bsi_last (bsi
->bb
);
2896 /* Data structure that bitfield_overlaps_p fills in with information
2897 about the element passed in and how much of it overlaps with the
2898 bit-range passed it to. */
2900 struct bitfield_overlap_info
2902 /* The bit-length of an element. */
2905 /* The bit-position of the element in its parent. */
2908 /* The number of bits of the element that overlap with the incoming
2912 /* The first bit of the element that overlaps with the incoming bit
2917 /* Return true if a BIT_FIELD_REF<(FLD->parent), BLEN, BPOS>
2918 expression (referenced as BF below) accesses any of the bits in FLD,
2919 false if it doesn't. If DATA is non-null, its field_len and
2920 field_pos are filled in such that BIT_FIELD_REF<(FLD->parent),
2921 field_len, field_pos> (referenced as BFLD below) represents the
2922 entire field FLD->element, and BIT_FIELD_REF<BFLD, overlap_len,
2923 overlap_pos> represents the portion of the entire field that
2924 overlaps with BF. */
2927 bitfield_overlaps_p (tree blen
, tree bpos
, struct sra_elt
*fld
,
2928 struct bitfield_overlap_info
*data
)
2933 if (TREE_CODE (fld
->element
) == FIELD_DECL
)
2935 flen
= fold_convert (bitsizetype
, DECL_SIZE (fld
->element
));
2936 fpos
= fold_convert (bitsizetype
, DECL_FIELD_OFFSET (fld
->element
));
2937 fpos
= size_binop (MULT_EXPR
, fpos
, bitsize_int (BITS_PER_UNIT
));
2938 fpos
= size_binop (PLUS_EXPR
, fpos
, DECL_FIELD_BIT_OFFSET (fld
->element
));
2940 else if (TREE_CODE (fld
->element
) == BIT_FIELD_REF
)
2942 flen
= fold_convert (bitsizetype
, TREE_OPERAND (fld
->element
, 1));
2943 fpos
= fold_convert (bitsizetype
, TREE_OPERAND (fld
->element
, 2));
2945 else if (TREE_CODE (fld
->element
) == INTEGER_CST
)
2947 flen
= fold_convert (bitsizetype
, TYPE_SIZE (fld
->type
));
2948 fpos
= fold_convert (bitsizetype
, fld
->element
);
2949 fpos
= size_binop (MULT_EXPR
, flen
, fpos
);
2954 gcc_assert (host_integerp (blen
, 1)
2955 && host_integerp (bpos
, 1)
2956 && host_integerp (flen
, 1)
2957 && host_integerp (fpos
, 1));
2959 ret
= ((!tree_int_cst_lt (fpos
, bpos
)
2960 && tree_int_cst_lt (size_binop (MINUS_EXPR
, fpos
, bpos
),
2962 || (!tree_int_cst_lt (bpos
, fpos
)
2963 && tree_int_cst_lt (size_binop (MINUS_EXPR
, bpos
, fpos
),
2973 data
->field_len
= flen
;
2974 data
->field_pos
= fpos
;
2976 fend
= size_binop (PLUS_EXPR
, fpos
, flen
);
2977 bend
= size_binop (PLUS_EXPR
, bpos
, blen
);
2979 if (tree_int_cst_lt (bend
, fend
))
2980 data
->overlap_len
= size_binop (MINUS_EXPR
, bend
, fpos
);
2982 data
->overlap_len
= NULL
;
2984 if (tree_int_cst_lt (fpos
, bpos
))
2986 data
->overlap_pos
= size_binop (MINUS_EXPR
, bpos
, fpos
);
2987 data
->overlap_len
= size_binop (MINUS_EXPR
,
2994 data
->overlap_pos
= NULL
;
3000 /* Add to LISTP a sequence of statements that copies BLEN bits between
3001 VAR and the scalarized elements of ELT, starting a bit VPOS of VAR
3002 and at bit BPOS of ELT. The direction of the copy is given by
3006 sra_explode_bitfield_assignment (tree var
, tree vpos
, bool to_var
,
3007 tree
*listp
, tree blen
, tree bpos
,
3008 struct sra_elt
*elt
)
3010 struct sra_elt
*fld
;
3011 struct bitfield_overlap_info flp
;
3013 FOR_EACH_ACTUAL_CHILD (fld
, elt
)
3017 if (!bitfield_overlaps_p (blen
, bpos
, fld
, &flp
))
3020 flen
= flp
.overlap_len
? flp
.overlap_len
: flp
.field_len
;
3021 fpos
= flp
.overlap_pos
? flp
.overlap_pos
: bitsize_int (0);
3023 if (fld
->replacement
)
3025 tree infld
, invar
, st
, type
;
3027 infld
= fld
->replacement
;
3029 type
= TREE_TYPE (infld
);
3030 if (TYPE_PRECISION (type
) != TREE_INT_CST_LOW (flen
))
3031 type
= lang_hooks
.types
.type_for_size (TREE_INT_CST_LOW (flen
), 1);
3033 type
= unsigned_type_for (type
);
3035 if (TREE_CODE (infld
) == BIT_FIELD_REF
)
3037 fpos
= size_binop (PLUS_EXPR
, fpos
, TREE_OPERAND (infld
, 2));
3038 infld
= TREE_OPERAND (infld
, 0);
3040 else if (BYTES_BIG_ENDIAN
&& DECL_P (fld
->element
)
3041 && !tree_int_cst_equal (TYPE_SIZE (TREE_TYPE (infld
)),
3042 DECL_SIZE (fld
->element
)))
3044 fpos
= size_binop (PLUS_EXPR
, fpos
,
3045 TYPE_SIZE (TREE_TYPE (infld
)));
3046 fpos
= size_binop (MINUS_EXPR
, fpos
,
3047 DECL_SIZE (fld
->element
));
3050 infld
= fold_build3 (BIT_FIELD_REF
, type
, infld
, flen
, fpos
);
3052 invar
= size_binop (MINUS_EXPR
, flp
.field_pos
, bpos
);
3053 if (flp
.overlap_pos
)
3054 invar
= size_binop (PLUS_EXPR
, invar
, flp
.overlap_pos
);
3055 invar
= size_binop (PLUS_EXPR
, invar
, vpos
);
3057 invar
= fold_build3 (BIT_FIELD_REF
, type
, var
, flen
, invar
);
3060 st
= sra_build_bf_assignment (invar
, infld
);
3062 st
= sra_build_bf_assignment (infld
, invar
);
3064 append_to_statement_list (st
, listp
);
3068 tree sub
= size_binop (MINUS_EXPR
, flp
.field_pos
, bpos
);
3069 sub
= size_binop (PLUS_EXPR
, vpos
, sub
);
3070 if (flp
.overlap_pos
)
3071 sub
= size_binop (PLUS_EXPR
, sub
, flp
.overlap_pos
);
3073 sra_explode_bitfield_assignment (var
, sub
, to_var
, listp
,
3079 /* Add to LISTBEFOREP statements that copy scalarized members of ELT
3080 that overlap with BIT_FIELD_REF<(ELT->element), BLEN, BPOS> back
3081 into the full variable, and to LISTAFTERP, if non-NULL, statements
3082 that copy the (presumably modified) overlapping portions of the
3083 full variable back to the scalarized variables. */
3086 sra_sync_for_bitfield_assignment (tree
*listbeforep
, tree
*listafterp
,
3087 tree blen
, tree bpos
,
3088 struct sra_elt
*elt
)
3090 struct sra_elt
*fld
;
3091 struct bitfield_overlap_info flp
;
3093 FOR_EACH_ACTUAL_CHILD (fld
, elt
)
3094 if (bitfield_overlaps_p (blen
, bpos
, fld
, &flp
))
3096 if (fld
->replacement
|| (!flp
.overlap_len
&& !flp
.overlap_pos
))
3098 generate_copy_inout (fld
, false, generate_element_ref (fld
),
3100 mark_no_warning (fld
);
3102 generate_copy_inout (fld
, true, generate_element_ref (fld
),
3107 tree flen
= flp
.overlap_len
? flp
.overlap_len
: flp
.field_len
;
3108 tree fpos
= flp
.overlap_pos
? flp
.overlap_pos
: bitsize_int (0);
3110 sra_sync_for_bitfield_assignment (listbeforep
, listafterp
,
3116 /* Scalarize a USE. To recap, this is either a simple reference to ELT,
3117 if elt is scalar, or some occurrence of ELT that requires a complete
3118 aggregate. IS_OUTPUT is true if ELT is being modified. */
3121 scalarize_use (struct sra_elt
*elt
, tree
*expr_p
, block_stmt_iterator
*bsi
,
3122 bool is_output
, bool use_all
)
3124 tree stmt
= bsi_stmt (*bsi
);
3127 if (elt
->replacement
)
3129 tree replacement
= elt
->replacement
;
3131 /* If we have a replacement, then updating the reference is as
3132 simple as modifying the existing statement in place. */
3134 && TREE_CODE (elt
->replacement
) == BIT_FIELD_REF
3135 && is_gimple_reg (TREE_OPERAND (elt
->replacement
, 0))
3136 && TREE_CODE (stmt
) == GIMPLE_MODIFY_STMT
3137 && &GIMPLE_STMT_OPERAND (stmt
, 0) == expr_p
)
3139 tree newstmt
= sra_build_elt_assignment
3140 (elt
, GIMPLE_STMT_OPERAND (stmt
, 1));
3141 if (TREE_CODE (newstmt
) != STATEMENT_LIST
)
3144 append_to_statement_list (newstmt
, &list
);
3147 sra_replace (bsi
, newstmt
);
3151 && TREE_CODE (elt
->replacement
) == BIT_FIELD_REF
3152 && TREE_CODE (stmt
) == GIMPLE_MODIFY_STMT
3153 && &GIMPLE_STMT_OPERAND (stmt
, 1) == expr_p
)
3155 tree tmp
= make_rename_temp
3156 (TREE_TYPE (GIMPLE_STMT_OPERAND (stmt
, 0)), "SR");
3157 tree newstmt
= sra_build_assignment (tmp
, REPLDUP (elt
->replacement
));
3159 if (TREE_CODE (newstmt
) != STATEMENT_LIST
)
3162 append_to_statement_list (newstmt
, &list
);
3165 sra_insert_before (bsi
, newstmt
);
3169 mark_all_v_defs (stmt
);
3170 *expr_p
= REPLDUP (replacement
);
3173 else if (use_all
&& is_output
3174 && TREE_CODE (stmt
) == GIMPLE_MODIFY_STMT
3175 && TREE_CODE (bfexpr
3176 = GIMPLE_STMT_OPERAND (stmt
, 0)) == BIT_FIELD_REF
3177 && &TREE_OPERAND (bfexpr
, 0) == expr_p
3178 && INTEGRAL_TYPE_P (TREE_TYPE (bfexpr
))
3179 && TREE_CODE (TREE_TYPE (*expr_p
)) == RECORD_TYPE
)
3181 tree listbefore
= NULL
, listafter
= NULL
;
3182 tree blen
= fold_convert (bitsizetype
, TREE_OPERAND (bfexpr
, 1));
3183 tree bpos
= fold_convert (bitsizetype
, TREE_OPERAND (bfexpr
, 2));
3184 bool update
= false;
3186 if (!elt
->use_block_copy
)
3188 tree type
= TREE_TYPE (bfexpr
);
3189 tree var
= make_rename_temp (type
, "SR"), tmp
, st
, vpos
;
3191 GIMPLE_STMT_OPERAND (stmt
, 0) = var
;
3194 if (!TYPE_UNSIGNED (type
))
3196 type
= unsigned_type_for (type
);
3197 tmp
= make_rename_temp (type
, "SR");
3198 st
= build_gimple_modify_stmt (tmp
,
3199 fold_convert (type
, var
));
3200 append_to_statement_list (st
, &listafter
);
3204 /* If VAR is wider than BLEN bits, it is padded at the
3205 most-significant end. We want to set VPOS such that
3206 <BIT_FIELD_REF VAR BLEN VPOS> would refer to the
3207 least-significant BLEN bits of VAR. */
3208 if (BYTES_BIG_ENDIAN
)
3209 vpos
= size_binop (MINUS_EXPR
, TYPE_SIZE (type
), blen
);
3211 vpos
= bitsize_int (0);
3212 sra_explode_bitfield_assignment
3213 (var
, vpos
, false, &listafter
, blen
, bpos
, elt
);
3216 sra_sync_for_bitfield_assignment
3217 (&listbefore
, &listafter
, blen
, bpos
, elt
);
3221 mark_all_v_defs (listbefore
);
3222 sra_insert_before (bsi
, listbefore
);
3226 mark_all_v_defs (listafter
);
3227 sra_insert_after (bsi
, listafter
);
3233 else if (use_all
&& !is_output
3234 && TREE_CODE (stmt
) == GIMPLE_MODIFY_STMT
3235 && TREE_CODE (bfexpr
3236 = GIMPLE_STMT_OPERAND (stmt
, 1)) == BIT_FIELD_REF
3237 && &TREE_OPERAND (GIMPLE_STMT_OPERAND (stmt
, 1), 0) == expr_p
3238 && INTEGRAL_TYPE_P (TREE_TYPE (bfexpr
))
3239 && TREE_CODE (TREE_TYPE (*expr_p
)) == RECORD_TYPE
)
3242 tree blen
= fold_convert (bitsizetype
, TREE_OPERAND (bfexpr
, 1));
3243 tree bpos
= fold_convert (bitsizetype
, TREE_OPERAND (bfexpr
, 2));
3244 bool update
= false;
3246 if (!elt
->use_block_copy
)
3248 tree type
= TREE_TYPE (bfexpr
);
3251 if (!TYPE_UNSIGNED (type
))
3252 type
= unsigned_type_for (type
);
3254 var
= make_rename_temp (type
, "SR");
3256 append_to_statement_list (build_gimple_modify_stmt
3257 (var
, build_int_cst_wide (type
, 0, 0)),
3260 /* If VAR is wider than BLEN bits, it is padded at the
3261 most-significant end. We want to set VPOS such that
3262 <BIT_FIELD_REF VAR BLEN VPOS> would refer to the
3263 least-significant BLEN bits of VAR. */
3264 if (BYTES_BIG_ENDIAN
)
3265 vpos
= size_binop (MINUS_EXPR
, TYPE_SIZE (type
), blen
);
3267 vpos
= bitsize_int (0);
3268 sra_explode_bitfield_assignment
3269 (var
, vpos
, true, &list
, blen
, bpos
, elt
);
3271 GIMPLE_STMT_OPERAND (stmt
, 1) = var
;
3275 sra_sync_for_bitfield_assignment
3276 (&list
, NULL
, blen
, bpos
, elt
);
3280 mark_all_v_defs (list
);
3281 sra_insert_before (bsi
, list
);
3291 /* Otherwise we need some copies. If ELT is being read, then we
3292 want to store all (modified) sub-elements back into the
3293 structure before the reference takes place. If ELT is being
3294 written, then we want to load the changed values back into
3295 our shadow variables. */
3296 /* ??? We don't check modified for reads, we just always write all of
3297 the values. We should be able to record the SSA number of the VOP
3298 for which the values were last read. If that number matches the
3299 SSA number of the VOP in the current statement, then we needn't
3300 emit an assignment. This would also eliminate double writes when
3301 a structure is passed as more than one argument to a function call.
3302 This optimization would be most effective if sra_walk_function
3303 processed the blocks in dominator order. */
3305 generate_copy_inout (elt
, is_output
, generate_element_ref (elt
), &list
);
3308 mark_all_v_defs (list
);
3310 sra_insert_after (bsi
, list
);
3313 sra_insert_before (bsi
, list
);
3315 mark_no_warning (elt
);
3320 /* Scalarize a COPY. To recap, this is an assignment statement between
3321 two scalarizable references, LHS_ELT and RHS_ELT. */
3324 scalarize_copy (struct sra_elt
*lhs_elt
, struct sra_elt
*rhs_elt
,
3325 block_stmt_iterator
*bsi
)
3329 if (lhs_elt
->replacement
&& rhs_elt
->replacement
)
3331 /* If we have two scalar operands, modify the existing statement. */
3332 stmt
= bsi_stmt (*bsi
);
3334 /* See the commentary in sra_walk_function concerning
3335 RETURN_EXPR, and why we should never see one here. */
3336 gcc_assert (TREE_CODE (stmt
) == GIMPLE_MODIFY_STMT
);
3338 GIMPLE_STMT_OPERAND (stmt
, 0) = lhs_elt
->replacement
;
3339 GIMPLE_STMT_OPERAND (stmt
, 1) = REPLDUP (rhs_elt
->replacement
);
3342 else if (lhs_elt
->use_block_copy
|| rhs_elt
->use_block_copy
)
3344 /* If either side requires a block copy, then sync the RHS back
3345 to the original structure, leave the original assignment
3346 statement (which will perform the block copy), then load the
3347 LHS values out of its now-updated original structure. */
3348 /* ??? Could perform a modified pair-wise element copy. That
3349 would at least allow those elements that are instantiated in
3350 both structures to be optimized well. */
3353 generate_copy_inout (rhs_elt
, false,
3354 generate_element_ref (rhs_elt
), &list
);
3357 mark_all_v_defs (list
);
3358 sra_insert_before (bsi
, list
);
3362 generate_copy_inout (lhs_elt
, true,
3363 generate_element_ref (lhs_elt
), &list
);
3366 mark_all_v_defs (list
);
3367 sra_insert_after (bsi
, list
);
3372 /* Otherwise both sides must be fully instantiated. In which
3373 case perform pair-wise element assignments and replace the
3374 original block copy statement. */
3376 stmt
= bsi_stmt (*bsi
);
3377 mark_all_v_defs (stmt
);
3380 generate_element_copy (lhs_elt
, rhs_elt
, &list
);
3382 mark_all_v_defs (list
);
3383 sra_replace (bsi
, list
);
3387 /* Scalarize an INIT. To recap, this is an assignment to a scalarizable
3388 reference from some form of constructor: CONSTRUCTOR, COMPLEX_CST or
3389 COMPLEX_EXPR. If RHS is NULL, it should be treated as an empty
3393 scalarize_init (struct sra_elt
*lhs_elt
, tree rhs
, block_stmt_iterator
*bsi
)
3396 tree list
= NULL
, init_list
= NULL
;
3398 /* Generate initialization statements for all members extant in the RHS. */
3401 /* Unshare the expression just in case this is from a decl's initial. */
3402 rhs
= unshare_expr (rhs
);
3403 result
= generate_element_init (lhs_elt
, rhs
, &init_list
);
3406 /* CONSTRUCTOR is defined such that any member not mentioned is assigned
3407 a zero value. Initialize the rest of the instantiated elements. */
3408 generate_element_zero (lhs_elt
, &list
);
3409 append_to_statement_list (init_list
, &list
);
3413 /* If we failed to convert the entire initializer, then we must
3414 leave the structure assignment in place and must load values
3415 from the structure into the slots for which we did not find
3416 constants. The easiest way to do this is to generate a complete
3417 copy-out, and then follow that with the constant assignments
3418 that we were able to build. DCE will clean things up. */
3420 generate_copy_inout (lhs_elt
, true, generate_element_ref (lhs_elt
),
3422 append_to_statement_list (list
, &list0
);
3426 if (lhs_elt
->use_block_copy
|| !result
)
3428 /* Since LHS is not fully instantiated, we must leave the structure
3429 assignment in place. Treating this case differently from a USE
3430 exposes constants to later optimizations. */
3433 mark_all_v_defs (list
);
3434 sra_insert_after (bsi
, list
);
3439 /* The LHS is fully instantiated. The list of initializations
3440 replaces the original structure assignment. */
3442 mark_all_v_defs (bsi_stmt (*bsi
));
3443 mark_all_v_defs (list
);
3444 sra_replace (bsi
, list
);
3448 /* A subroutine of scalarize_ldst called via walk_tree. Set TREE_NO_TRAP
3449 on all INDIRECT_REFs. */
3452 mark_notrap (tree
*tp
, int *walk_subtrees
, void *data ATTRIBUTE_UNUSED
)
3456 if (TREE_CODE (t
) == INDIRECT_REF
)
3458 TREE_THIS_NOTRAP (t
) = 1;
3461 else if (IS_TYPE_OR_DECL_P (t
))
3467 /* Scalarize a LDST. To recap, this is an assignment between one scalarizable
3468 reference ELT and one non-scalarizable reference OTHER. IS_OUTPUT is true
3469 if ELT is on the left-hand side. */
3472 scalarize_ldst (struct sra_elt
*elt
, tree other
,
3473 block_stmt_iterator
*bsi
, bool is_output
)
3475 /* Shouldn't have gotten called for a scalar. */
3476 gcc_assert (!elt
->replacement
);
3478 if (elt
->use_block_copy
)
3480 /* Since ELT is not fully instantiated, we have to leave the
3481 block copy in place. Treat this as a USE. */
3482 scalarize_use (elt
, NULL
, bsi
, is_output
, false);
3486 /* The interesting case is when ELT is fully instantiated. In this
3487 case we can have each element stored/loaded directly to/from the
3488 corresponding slot in OTHER. This avoids a block copy. */
3490 tree list
= NULL
, stmt
= bsi_stmt (*bsi
);
3492 mark_all_v_defs (stmt
);
3493 generate_copy_inout (elt
, is_output
, other
, &list
);
3495 mark_all_v_defs (list
);
3497 /* Preserve EH semantics. */
3498 if (stmt_ends_bb_p (stmt
))
3500 tree_stmt_iterator tsi
;
3501 tree first
, blist
= NULL
;
3502 bool thr
= tree_could_throw_p (stmt
);
3504 /* If the last statement of this BB created an EH edge
3505 before scalarization, we have to locate the first
3506 statement that can throw in the new statement list and
3507 use that as the last statement of this BB, such that EH
3508 semantics is preserved. All statements up to this one
3509 are added to the same BB. All other statements in the
3510 list will be added to normal outgoing edges of the same
3511 BB. If they access any memory, it's the same memory, so
3512 we can assume they won't throw. */
3513 tsi
= tsi_start (list
);
3514 for (first
= tsi_stmt (tsi
);
3515 thr
&& !tsi_end_p (tsi
) && !tree_could_throw_p (first
);
3516 first
= tsi_stmt (tsi
))
3519 append_to_statement_list (first
, &blist
);
3522 /* Extract the first remaining statement from LIST, this is
3523 the EH statement if there is one. */
3527 sra_insert_before (bsi
, blist
);
3529 /* Replace the old statement with this new representative. */
3530 bsi_replace (bsi
, first
, true);
3532 if (!tsi_end_p (tsi
))
3534 /* If any reference would trap, then they all would. And more
3535 to the point, the first would. Therefore none of the rest
3536 will trap since the first didn't. Indicate this by
3537 iterating over the remaining statements and set
3538 TREE_THIS_NOTRAP in all INDIRECT_REFs. */
3541 walk_tree (tsi_stmt_ptr (tsi
), mark_notrap
, NULL
, NULL
);
3544 while (!tsi_end_p (tsi
));
3546 insert_edge_copies (list
, bsi
->bb
);
3550 sra_replace (bsi
, list
);
3554 /* Generate initializations for all scalarizable parameters. */
3557 scalarize_parms (void)
3563 EXECUTE_IF_SET_IN_BITMAP (needs_copy_in
, 0, i
, bi
)
3565 tree var
= referenced_var (i
);
3566 struct sra_elt
*elt
= lookup_element (NULL
, var
, NULL
, NO_INSERT
);
3567 generate_copy_inout (elt
, true, var
, &list
);
3572 insert_edge_copies (list
, ENTRY_BLOCK_PTR
);
3573 mark_all_v_defs (list
);
3577 /* Entry point to phase 4. Update the function to match replacements. */
3580 scalarize_function (void)
3582 static const struct sra_walk_fns fns
= {
3583 scalarize_use
, scalarize_copy
, scalarize_init
, scalarize_ldst
, false
3586 sra_walk_function (&fns
);
3588 bsi_commit_edge_inserts ();
3592 /* Debug helper function. Print ELT in a nice human-readable format. */
3595 dump_sra_elt_name (FILE *f
, struct sra_elt
*elt
)
3597 if (elt
->parent
&& TREE_CODE (elt
->parent
->type
) == COMPLEX_TYPE
)
3599 fputs (elt
->element
== integer_zero_node
? "__real__ " : "__imag__ ", f
);
3600 dump_sra_elt_name (f
, elt
->parent
);
3605 dump_sra_elt_name (f
, elt
->parent
);
3606 if (DECL_P (elt
->element
))
3608 if (TREE_CODE (elt
->element
) == FIELD_DECL
)
3610 print_generic_expr (f
, elt
->element
, dump_flags
);
3612 else if (TREE_CODE (elt
->element
) == BIT_FIELD_REF
)
3613 fprintf (f
, "$B" HOST_WIDE_INT_PRINT_DEC
"F" HOST_WIDE_INT_PRINT_DEC
,
3614 tree_low_cst (TREE_OPERAND (elt
->element
, 2), 1),
3615 tree_low_cst (TREE_OPERAND (elt
->element
, 1), 1));
3616 else if (TREE_CODE (elt
->element
) == RANGE_EXPR
)
3617 fprintf (f
, "["HOST_WIDE_INT_PRINT_DEC
".."HOST_WIDE_INT_PRINT_DEC
"]",
3618 TREE_INT_CST_LOW (TREE_OPERAND (elt
->element
, 0)),
3619 TREE_INT_CST_LOW (TREE_OPERAND (elt
->element
, 1)));
3621 fprintf (f
, "[" HOST_WIDE_INT_PRINT_DEC
"]",
3622 TREE_INT_CST_LOW (elt
->element
));
3626 /* Likewise, but callable from the debugger. */
3629 debug_sra_elt_name (struct sra_elt
*elt
)
3631 dump_sra_elt_name (stderr
, elt
);
3632 fputc ('\n', stderr
);
3636 sra_init_cache (void)
3638 if (sra_type_decomp_cache
)
3641 sra_type_decomp_cache
= BITMAP_ALLOC (NULL
);
3642 sra_type_inst_cache
= BITMAP_ALLOC (NULL
);
3645 /* Main entry point. */
3650 /* Initialize local variables. */
3652 gcc_obstack_init (&sra_obstack
);
3653 sra_candidates
= BITMAP_ALLOC (NULL
);
3654 needs_copy_in
= BITMAP_ALLOC (NULL
);
3656 sra_map
= htab_create (101, sra_elt_hash
, sra_elt_eq
, NULL
);
3658 /* Scan. If we find anything, instantiate and scalarize. */
3659 if (find_candidates_for_sra ())
3662 decide_instantiations ();
3663 scalarize_function ();
3664 if (!bitmap_empty_p (sra_candidates
))
3665 todoflags
|= TODO_rebuild_alias
;
3668 /* Free allocated memory. */
3669 htab_delete (sra_map
);
3671 BITMAP_FREE (sra_candidates
);
3672 BITMAP_FREE (needs_copy_in
);
3673 BITMAP_FREE (sra_type_decomp_cache
);
3674 BITMAP_FREE (sra_type_inst_cache
);
3675 obstack_free (&sra_obstack
, NULL
);
3680 tree_sra_early (void)
3688 return ret
& ~TODO_rebuild_alias
;
3694 return flag_tree_sra
!= 0;
3697 struct gimple_opt_pass pass_sra_early
=
3702 gate_sra
, /* gate */
3703 tree_sra_early
, /* execute */
3706 0, /* static_pass_number */
3707 TV_TREE_SRA
, /* tv_id */
3708 PROP_cfg
| PROP_ssa
, /* properties_required */
3709 0, /* properties_provided */
3710 0, /* properties_destroyed */
3711 0, /* todo_flags_start */
3715 | TODO_verify_ssa
/* todo_flags_finish */
3719 struct gimple_opt_pass pass_sra
=
3724 gate_sra
, /* gate */
3725 tree_sra
, /* execute */
3728 0, /* static_pass_number */
3729 TV_TREE_SRA
, /* tv_id */
3730 PROP_cfg
| PROP_ssa
, /* properties_required */
3731 0, /* properties_provided */
3732 0, /* properties_destroyed */
3733 0, /* todo_flags_start */
3737 | TODO_verify_ssa
/* todo_flags_finish */