2 Copyright (C) 2003-2022 Free Software Foundation, Inc.
3 Contributed by Dorit Naishlos <dorit@il.ibm.com>
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 3, or (at your option) any later
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 /* Loop and basic block vectorizer.
23 This file contains drivers for the three vectorizers:
24 (1) loop vectorizer (inter-iteration parallelism),
25 (2) loop-aware SLP (intra-iteration parallelism) (invoked by the loop
27 (3) BB vectorizer (out-of-loops), aka SLP
29 The rest of the vectorizer's code is organized as follows:
30 - tree-vect-loop.cc - loop specific parts such as reductions, etc. These are
31 used by drivers (1) and (2).
32 - tree-vect-loop-manip.cc - vectorizer's loop control-flow utilities, used by
34 - tree-vect-slp.cc - BB vectorization specific analysis and transformation,
35 used by drivers (2) and (3).
36 - tree-vect-stmts.cc - statements analysis and transformation (used by all).
37 - tree-vect-data-refs.cc - vectorizer specific data-refs analysis and
38 manipulations (used by all).
39 - tree-vect-patterns.cc - vectorizable code patterns detector (used by all)
41 Here's a poor attempt at illustrating that:
44 loop_vect() loop_aware_slp() slp_vect()
47 tree-vect-loop.cc tree-vect-slp.cc
52 tree-vect-stmts.cc tree-vect-data-refs.cc
59 #include "coretypes.h"
64 #include "tree-pass.h"
67 #include "fold-const.h"
68 #include "stor-layout.h"
69 #include "gimple-iterator.h"
70 #include "gimple-walk.h"
71 #include "tree-ssa-loop-manip.h"
72 #include "tree-ssa-loop-niter.h"
75 #include "tree-vectorizer.h"
76 #include "tree-ssa-propagate.h"
78 #include "tree-scalar-evolution.h"
79 #include "stringpool.h"
81 #include "gimple-pretty-print.h"
82 #include "opt-problem.h"
83 #include "internal-fn.h"
84 #include "tree-ssa-sccvn.h"
85 #include "tree-into-ssa.h"
87 /* Loop or bb location, with hotness information. */
88 dump_user_location_t vect_location
;
90 /* auto_purge_vect_location's dtor: reset the vect_location
91 global, to avoid stale location_t values that could reference
94 auto_purge_vect_location::~auto_purge_vect_location ()
96 vect_location
= dump_user_location_t ();
99 /* Dump a cost entry according to args to F. */
102 dump_stmt_cost (FILE *f
, int count
, enum vect_cost_for_stmt kind
,
103 stmt_vec_info stmt_info
, slp_tree node
, tree
,
104 int misalign
, unsigned cost
,
105 enum vect_cost_model_location where
)
109 print_gimple_expr (f
, STMT_VINFO_STMT (stmt_info
), 0, TDF_SLIM
);
113 fprintf (f
, "node %p ", (void *)node
);
115 fprintf (f
, "<unknown> ");
116 fprintf (f
, "%d times ", count
);
117 const char *ks
= "unknown";
135 case vector_gather_load
:
136 ks
= "vector_gather_load";
139 ks
= "unaligned_load";
141 case unaligned_store
:
142 ks
= "unaligned_store";
147 case vector_scatter_store
:
148 ks
= "vector_scatter_store";
151 ks
= "vec_to_scalar";
154 ks
= "scalar_to_vec";
156 case cond_branch_not_taken
:
157 ks
= "cond_branch_not_taken";
159 case cond_branch_taken
:
160 ks
= "cond_branch_taken";
165 case vec_promote_demote
:
166 ks
= "vec_promote_demote";
169 ks
= "vec_construct";
172 fprintf (f
, "%s ", ks
);
173 if (kind
== unaligned_load
|| kind
== unaligned_store
)
174 fprintf (f
, "(misalign %d) ", misalign
);
175 fprintf (f
, "costs %u ", cost
);
176 const char *ws
= "unknown";
189 fprintf (f
, "in %s\n", ws
);
192 /* For mapping simduid to vectorization factor. */
194 class simduid_to_vf
: public free_ptr_hash
<simduid_to_vf
>
197 unsigned int simduid
;
200 /* hash_table support. */
201 static inline hashval_t
hash (const simduid_to_vf
*);
202 static inline int equal (const simduid_to_vf
*, const simduid_to_vf
*);
206 simduid_to_vf::hash (const simduid_to_vf
*p
)
212 simduid_to_vf::equal (const simduid_to_vf
*p1
, const simduid_to_vf
*p2
)
214 return p1
->simduid
== p2
->simduid
;
217 /* This hash maps the OMP simd array to the corresponding simduid used
218 to index into it. Like thus,
220 _7 = GOMP_SIMD_LANE (simduid.0)
226 This hash maps from the OMP simd array (D.1737[]) to DECL_UID of
229 struct simd_array_to_simduid
: free_ptr_hash
<simd_array_to_simduid
>
232 unsigned int simduid
;
234 /* hash_table support. */
235 static inline hashval_t
hash (const simd_array_to_simduid
*);
236 static inline int equal (const simd_array_to_simduid
*,
237 const simd_array_to_simduid
*);
241 simd_array_to_simduid::hash (const simd_array_to_simduid
*p
)
243 return DECL_UID (p
->decl
);
247 simd_array_to_simduid::equal (const simd_array_to_simduid
*p1
,
248 const simd_array_to_simduid
*p2
)
250 return p1
->decl
== p2
->decl
;
253 /* Fold IFN_GOMP_SIMD_LANE, IFN_GOMP_SIMD_VF, IFN_GOMP_SIMD_LAST_LANE,
254 into their corresponding constants and remove
255 IFN_GOMP_SIMD_ORDERED_{START,END}. */
258 adjust_simduid_builtins (hash_table
<simduid_to_vf
> *htab
, function
*fun
)
262 FOR_EACH_BB_FN (bb
, fun
)
264 gimple_stmt_iterator i
;
266 for (i
= gsi_start_bb (bb
); !gsi_end_p (i
); )
269 enum internal_fn ifn
;
270 gimple
*stmt
= gsi_stmt (i
);
272 if (!is_gimple_call (stmt
)
273 || !gimple_call_internal_p (stmt
))
278 ifn
= gimple_call_internal_fn (stmt
);
281 case IFN_GOMP_SIMD_LANE
:
282 case IFN_GOMP_SIMD_VF
:
283 case IFN_GOMP_SIMD_LAST_LANE
:
285 case IFN_GOMP_SIMD_ORDERED_START
:
286 case IFN_GOMP_SIMD_ORDERED_END
:
287 if (integer_onep (gimple_call_arg (stmt
, 0)))
289 enum built_in_function bcode
290 = (ifn
== IFN_GOMP_SIMD_ORDERED_START
291 ? BUILT_IN_GOMP_ORDERED_START
292 : BUILT_IN_GOMP_ORDERED_END
);
294 = gimple_build_call (builtin_decl_explicit (bcode
), 0);
295 gimple_move_vops (g
, stmt
);
296 gsi_replace (&i
, g
, true);
299 gsi_remove (&i
, true);
300 unlink_stmt_vdef (stmt
);
306 tree arg
= gimple_call_arg (stmt
, 0);
307 gcc_assert (arg
!= NULL_TREE
);
308 gcc_assert (TREE_CODE (arg
) == SSA_NAME
);
309 simduid_to_vf
*p
= NULL
, data
;
310 data
.simduid
= DECL_UID (SSA_NAME_VAR (arg
));
311 /* Need to nullify loop safelen field since it's value is not
312 valid after transformation. */
313 if (bb
->loop_father
&& bb
->loop_father
->safelen
> 0)
314 bb
->loop_father
->safelen
= 0;
317 p
= htab
->find (&data
);
323 case IFN_GOMP_SIMD_VF
:
324 t
= build_int_cst (unsigned_type_node
, vf
);
326 case IFN_GOMP_SIMD_LANE
:
327 t
= build_int_cst (unsigned_type_node
, 0);
329 case IFN_GOMP_SIMD_LAST_LANE
:
330 t
= gimple_call_arg (stmt
, 1);
335 tree lhs
= gimple_call_lhs (stmt
);
337 replace_uses_by (lhs
, t
);
339 gsi_remove (&i
, true);
344 /* Helper structure for note_simd_array_uses. */
346 struct note_simd_array_uses_struct
348 hash_table
<simd_array_to_simduid
> **htab
;
349 unsigned int simduid
;
352 /* Callback for note_simd_array_uses, called through walk_gimple_op. */
355 note_simd_array_uses_cb (tree
*tp
, int *walk_subtrees
, void *data
)
357 struct walk_stmt_info
*wi
= (struct walk_stmt_info
*) data
;
358 struct note_simd_array_uses_struct
*ns
359 = (struct note_simd_array_uses_struct
*) wi
->info
;
364 && lookup_attribute ("omp simd array", DECL_ATTRIBUTES (*tp
))
365 && DECL_CONTEXT (*tp
) == current_function_decl
)
367 simd_array_to_simduid data
;
369 *ns
->htab
= new hash_table
<simd_array_to_simduid
> (15);
371 data
.simduid
= ns
->simduid
;
372 simd_array_to_simduid
**slot
= (*ns
->htab
)->find_slot (&data
, INSERT
);
375 simd_array_to_simduid
*p
= XNEW (simd_array_to_simduid
);
379 else if ((*slot
)->simduid
!= ns
->simduid
)
380 (*slot
)->simduid
= -1U;
386 /* Find "omp simd array" temporaries and map them to corresponding
390 note_simd_array_uses (hash_table
<simd_array_to_simduid
> **htab
, function
*fun
)
393 gimple_stmt_iterator gsi
;
394 struct walk_stmt_info wi
;
395 struct note_simd_array_uses_struct ns
;
397 memset (&wi
, 0, sizeof (wi
));
401 FOR_EACH_BB_FN (bb
, fun
)
402 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
404 gimple
*stmt
= gsi_stmt (gsi
);
405 if (!is_gimple_call (stmt
) || !gimple_call_internal_p (stmt
))
407 switch (gimple_call_internal_fn (stmt
))
409 case IFN_GOMP_SIMD_LANE
:
410 case IFN_GOMP_SIMD_VF
:
411 case IFN_GOMP_SIMD_LAST_LANE
:
416 tree lhs
= gimple_call_lhs (stmt
);
417 if (lhs
== NULL_TREE
)
419 imm_use_iterator use_iter
;
421 ns
.simduid
= DECL_UID (SSA_NAME_VAR (gimple_call_arg (stmt
, 0)));
422 FOR_EACH_IMM_USE_STMT (use_stmt
, use_iter
, lhs
)
423 if (!is_gimple_debug (use_stmt
))
424 walk_gimple_op (use_stmt
, note_simd_array_uses_cb
, &wi
);
428 /* Shrink arrays with "omp simd array" attribute to the corresponding
429 vectorization factor. */
433 (hash_table
<simd_array_to_simduid
> *simd_array_to_simduid_htab
,
434 hash_table
<simduid_to_vf
> *simduid_to_vf_htab
)
436 for (hash_table
<simd_array_to_simduid
>::iterator iter
437 = simd_array_to_simduid_htab
->begin ();
438 iter
!= simd_array_to_simduid_htab
->end (); ++iter
)
439 if ((*iter
)->simduid
!= -1U)
441 tree decl
= (*iter
)->decl
;
443 if (simduid_to_vf_htab
)
445 simduid_to_vf
*p
= NULL
, data
;
446 data
.simduid
= (*iter
)->simduid
;
447 p
= simduid_to_vf_htab
->find (&data
);
452 = build_array_type_nelts (TREE_TYPE (TREE_TYPE (decl
)), vf
);
453 TREE_TYPE (decl
) = atype
;
454 relayout_decl (decl
);
457 delete simd_array_to_simduid_htab
;
460 /* Initialize the vec_info with kind KIND_IN and target cost data
461 TARGET_COST_DATA_IN. */
463 vec_info::vec_info (vec_info::vec_kind kind_in
, vec_info_shared
*shared_
)
466 stmt_vec_info_ro (false)
468 stmt_vec_infos
.create (50);
471 vec_info::~vec_info ()
473 for (slp_instance
&instance
: slp_instances
)
474 vect_free_slp_instance (instance
);
476 free_stmt_vec_infos ();
479 vec_info_shared::vec_info_shared ()
482 datarefs_copy (vNULL
),
487 vec_info_shared::~vec_info_shared ()
489 free_data_refs (datarefs
);
490 free_dependence_relations (ddrs
);
491 datarefs_copy
.release ();
495 vec_info_shared::save_datarefs ()
499 datarefs_copy
.reserve_exact (datarefs
.length ());
500 for (unsigned i
= 0; i
< datarefs
.length (); ++i
)
501 datarefs_copy
.quick_push (*datarefs
[i
]);
505 vec_info_shared::check_datarefs ()
509 gcc_assert (datarefs
.length () == datarefs_copy
.length ());
510 for (unsigned i
= 0; i
< datarefs
.length (); ++i
)
511 if (memcmp (&datarefs_copy
[i
], datarefs
[i
],
512 offsetof (data_reference
, alt_indices
)) != 0)
516 /* Record that STMT belongs to the vectorizable region. Create and return
517 an associated stmt_vec_info. */
520 vec_info::add_stmt (gimple
*stmt
)
522 stmt_vec_info res
= new_stmt_vec_info (stmt
);
523 set_vinfo_for_stmt (stmt
, res
);
527 /* Record that STMT belongs to the vectorizable region. Create a new
528 stmt_vec_info and mark VECINFO as being related and return the new
532 vec_info::add_pattern_stmt (gimple
*stmt
, stmt_vec_info stmt_info
)
534 stmt_vec_info res
= new_stmt_vec_info (stmt
);
535 set_vinfo_for_stmt (stmt
, res
, false);
536 STMT_VINFO_RELATED_STMT (res
) = stmt_info
;
540 /* If STMT has an associated stmt_vec_info, return that vec_info, otherwise
541 return null. It is safe to call this function on any statement, even if
542 it might not be part of the vectorizable region. */
545 vec_info::lookup_stmt (gimple
*stmt
)
547 unsigned int uid
= gimple_uid (stmt
);
548 if (uid
> 0 && uid
- 1 < stmt_vec_infos
.length ())
550 stmt_vec_info res
= stmt_vec_infos
[uid
- 1];
551 if (res
&& res
->stmt
== stmt
)
557 /* If NAME is an SSA_NAME and its definition has an associated stmt_vec_info,
558 return that stmt_vec_info, otherwise return null. It is safe to call
559 this on arbitrary operands. */
562 vec_info::lookup_def (tree name
)
564 if (TREE_CODE (name
) == SSA_NAME
565 && !SSA_NAME_IS_DEFAULT_DEF (name
))
566 return lookup_stmt (SSA_NAME_DEF_STMT (name
));
570 /* See whether there is a single non-debug statement that uses LHS and
571 whether that statement has an associated stmt_vec_info. Return the
572 stmt_vec_info if so, otherwise return null. */
575 vec_info::lookup_single_use (tree lhs
)
579 if (single_imm_use (lhs
, &dummy
, &use_stmt
))
580 return lookup_stmt (use_stmt
);
584 /* Return vectorization information about DR. */
587 vec_info::lookup_dr (data_reference
*dr
)
589 stmt_vec_info stmt_info
= lookup_stmt (DR_STMT (dr
));
590 /* DR_STMT should never refer to a stmt in a pattern replacement. */
591 gcc_checking_assert (!is_pattern_stmt_p (stmt_info
));
592 return STMT_VINFO_DR_INFO (stmt_info
->dr_aux
.stmt
);
595 /* Record that NEW_STMT_INFO now implements the same data reference
599 vec_info::move_dr (stmt_vec_info new_stmt_info
, stmt_vec_info old_stmt_info
)
601 gcc_assert (!is_pattern_stmt_p (old_stmt_info
));
602 STMT_VINFO_DR_INFO (old_stmt_info
)->stmt
= new_stmt_info
;
603 new_stmt_info
->dr_aux
= old_stmt_info
->dr_aux
;
604 STMT_VINFO_DR_WRT_VEC_LOOP (new_stmt_info
)
605 = STMT_VINFO_DR_WRT_VEC_LOOP (old_stmt_info
);
606 STMT_VINFO_GATHER_SCATTER_P (new_stmt_info
)
607 = STMT_VINFO_GATHER_SCATTER_P (old_stmt_info
);
610 /* Permanently remove the statement described by STMT_INFO from the
614 vec_info::remove_stmt (stmt_vec_info stmt_info
)
616 gcc_assert (!stmt_info
->pattern_stmt_p
);
617 set_vinfo_for_stmt (stmt_info
->stmt
, NULL
);
618 unlink_stmt_vdef (stmt_info
->stmt
);
619 gimple_stmt_iterator si
= gsi_for_stmt (stmt_info
->stmt
);
620 gsi_remove (&si
, true);
621 release_defs (stmt_info
->stmt
);
622 free_stmt_vec_info (stmt_info
);
625 /* Replace the statement at GSI by NEW_STMT, both the vectorization
626 information and the function itself. STMT_INFO describes the statement
630 vec_info::replace_stmt (gimple_stmt_iterator
*gsi
, stmt_vec_info stmt_info
,
633 gimple
*old_stmt
= stmt_info
->stmt
;
634 gcc_assert (!stmt_info
->pattern_stmt_p
&& old_stmt
== gsi_stmt (*gsi
));
635 gimple_set_uid (new_stmt
, gimple_uid (old_stmt
));
636 stmt_info
->stmt
= new_stmt
;
637 gsi_replace (gsi
, new_stmt
, true);
640 /* Insert stmts in SEQ on the VEC_INFO region entry. If CONTEXT is
641 not NULL it specifies whether to use the sub-region entry
642 determined by it, currently used for loop vectorization to insert
643 on the inner loop entry vs. the outer loop entry. */
646 vec_info::insert_seq_on_entry (stmt_vec_info context
, gimple_seq seq
)
648 if (loop_vec_info loop_vinfo
= dyn_cast
<loop_vec_info
> (this))
650 class loop
*loop
= LOOP_VINFO_LOOP (loop_vinfo
);
654 if (context
&& nested_in_vect_loop_p (loop
, context
))
657 pe
= loop_preheader_edge (loop
);
658 new_bb
= gsi_insert_seq_on_edge_immediate (pe
, seq
);
659 gcc_assert (!new_bb
);
663 bb_vec_info bb_vinfo
= as_a
<bb_vec_info
> (this);
664 gimple_stmt_iterator gsi_region_begin
665 = gsi_after_labels (bb_vinfo
->bbs
[0]);
666 gsi_insert_seq_before (&gsi_region_begin
, seq
, GSI_SAME_STMT
);
670 /* Like insert_seq_on_entry but just inserts the single stmt NEW_STMT. */
673 vec_info::insert_on_entry (stmt_vec_info context
, gimple
*new_stmt
)
675 gimple_seq seq
= NULL
;
676 gimple_stmt_iterator gsi
= gsi_start (seq
);
677 gsi_insert_before_without_update (&gsi
, new_stmt
, GSI_SAME_STMT
);
678 insert_seq_on_entry (context
, seq
);
681 /* Create and initialize a new stmt_vec_info struct for STMT. */
684 vec_info::new_stmt_vec_info (gimple
*stmt
)
686 stmt_vec_info res
= XCNEW (class _stmt_vec_info
);
689 STMT_VINFO_TYPE (res
) = undef_vec_info_type
;
690 STMT_VINFO_RELEVANT (res
) = vect_unused_in_scope
;
691 STMT_VINFO_VECTORIZABLE (res
) = true;
692 STMT_VINFO_REDUC_TYPE (res
) = TREE_CODE_REDUCTION
;
693 STMT_VINFO_REDUC_CODE (res
) = ERROR_MARK
;
694 STMT_VINFO_REDUC_FN (res
) = IFN_LAST
;
695 STMT_VINFO_REDUC_IDX (res
) = -1;
696 STMT_VINFO_SLP_VECT_ONLY (res
) = false;
697 STMT_VINFO_SLP_VECT_ONLY_PATTERN (res
) = false;
698 STMT_VINFO_VEC_STMTS (res
) = vNULL
;
699 res
->reduc_initial_values
= vNULL
;
700 res
->reduc_scalar_results
= vNULL
;
702 if (is_a
<loop_vec_info
> (this)
703 && gimple_code (stmt
) == GIMPLE_PHI
704 && is_loop_header_bb_p (gimple_bb (stmt
)))
705 STMT_VINFO_DEF_TYPE (res
) = vect_unknown_def_type
;
707 STMT_VINFO_DEF_TYPE (res
) = vect_internal_def
;
709 STMT_SLP_TYPE (res
) = loop_vect
;
711 /* This is really "uninitialized" until vect_compute_data_ref_alignment. */
712 res
->dr_aux
.misalignment
= DR_MISALIGNMENT_UNINITIALIZED
;
717 /* Associate STMT with INFO. */
720 vec_info::set_vinfo_for_stmt (gimple
*stmt
, stmt_vec_info info
, bool check_ro
)
722 unsigned int uid
= gimple_uid (stmt
);
725 gcc_assert (!check_ro
|| !stmt_vec_info_ro
);
726 gcc_checking_assert (info
);
727 uid
= stmt_vec_infos
.length () + 1;
728 gimple_set_uid (stmt
, uid
);
729 stmt_vec_infos
.safe_push (info
);
733 gcc_checking_assert (info
== NULL
);
734 stmt_vec_infos
[uid
- 1] = info
;
738 /* Free the contents of stmt_vec_infos. */
741 vec_info::free_stmt_vec_infos (void)
743 for (stmt_vec_info
&info
: stmt_vec_infos
)
745 free_stmt_vec_info (info
);
746 stmt_vec_infos
.release ();
749 /* Free STMT_INFO. */
752 vec_info::free_stmt_vec_info (stmt_vec_info stmt_info
)
754 if (stmt_info
->pattern_stmt_p
)
756 gimple_set_bb (stmt_info
->stmt
, NULL
);
757 tree lhs
= gimple_get_lhs (stmt_info
->stmt
);
758 if (lhs
&& TREE_CODE (lhs
) == SSA_NAME
)
759 release_ssa_name (lhs
);
762 stmt_info
->reduc_initial_values
.release ();
763 stmt_info
->reduc_scalar_results
.release ();
764 STMT_VINFO_SIMD_CLONE_INFO (stmt_info
).release ();
765 STMT_VINFO_VEC_STMTS (stmt_info
).release ();
769 /* Returns true if S1 dominates S2. */
772 vect_stmt_dominates_stmt_p (gimple
*s1
, gimple
*s2
)
774 basic_block bb1
= gimple_bb (s1
), bb2
= gimple_bb (s2
);
776 /* If bb1 is NULL, it should be a GIMPLE_NOP def stmt of an (D)
777 SSA_NAME. Assume it lives at the beginning of function and
778 thus dominates everything. */
779 if (!bb1
|| s1
== s2
)
782 /* If bb2 is NULL, it doesn't dominate any stmt with a bb. */
787 return dominated_by_p (CDI_DOMINATORS
, bb2
, bb1
);
789 /* PHIs in the same basic block are assumed to be
790 executed all in parallel, if only one stmt is a PHI,
791 it dominates the other stmt in the same basic block. */
792 if (gimple_code (s1
) == GIMPLE_PHI
)
795 if (gimple_code (s2
) == GIMPLE_PHI
)
798 /* Inserted vectorized stmts all have UID 0 while the original stmts
799 in the IL have UID increasing within a BB. Walk from both sides
800 until we find the other stmt or a stmt with UID != 0. */
801 gimple_stmt_iterator gsi1
= gsi_for_stmt (s1
);
802 while (gimple_uid (gsi_stmt (gsi1
)) == 0)
805 if (gsi_end_p (gsi1
))
807 if (gsi_stmt (gsi1
) == s2
)
810 if (gimple_uid (gsi_stmt (gsi1
)) == -1u)
813 gimple_stmt_iterator gsi2
= gsi_for_stmt (s2
);
814 while (gimple_uid (gsi_stmt (gsi2
)) == 0)
817 if (gsi_end_p (gsi2
))
819 if (gsi_stmt (gsi2
) == s1
)
822 if (gimple_uid (gsi_stmt (gsi2
)) == -1u)
825 if (gimple_uid (gsi_stmt (gsi1
)) <= gimple_uid (gsi_stmt (gsi2
)))
830 /* A helper function to free scev and LOOP niter information, as well as
831 clear loop constraint LOOP_C_FINITE. */
834 vect_free_loop_info_assumptions (class loop
*loop
)
837 /* We need to explicitly reset upper bound information since they are
838 used even after free_numbers_of_iterations_estimates. */
839 loop
->any_upper_bound
= false;
840 loop
->any_likely_upper_bound
= false;
841 free_numbers_of_iterations_estimates (loop
);
842 loop_constraint_clear (loop
, LOOP_C_FINITE
);
845 /* If LOOP has been versioned during ifcvt, return the internal call
849 vect_loop_vectorized_call (class loop
*loop
, gcond
**cond
)
851 basic_block bb
= loop_preheader_edge (loop
)->src
;
856 if ((g
&& gimple_code (g
) == GIMPLE_COND
)
857 || !single_succ_p (bb
))
859 if (!single_pred_p (bb
))
861 bb
= single_pred (bb
);
864 if (g
&& gimple_code (g
) == GIMPLE_COND
)
867 *cond
= as_a
<gcond
*> (g
);
868 gimple_stmt_iterator gsi
= gsi_for_stmt (g
);
870 if (!gsi_end_p (gsi
))
873 if (gimple_call_internal_p (g
, IFN_LOOP_VECTORIZED
)
874 && (tree_to_shwi (gimple_call_arg (g
, 0)) == loop
->num
875 || tree_to_shwi (gimple_call_arg (g
, 1)) == loop
->num
))
882 /* If LOOP has been versioned during loop distribution, return the gurading
886 vect_loop_dist_alias_call (class loop
*loop
, function
*fun
)
890 class loop
*outer
, *orig
;
891 gimple_stmt_iterator gsi
;
894 if (loop
->orig_loop_num
== 0)
897 orig
= get_loop (fun
, loop
->orig_loop_num
);
900 /* The original loop is somehow destroyed. Clear the information. */
901 loop
->orig_loop_num
= 0;
906 bb
= nearest_common_dominator (CDI_DOMINATORS
, loop
->header
, orig
->header
);
908 bb
= loop_preheader_edge (loop
)->src
;
910 outer
= bb
->loop_father
;
911 entry
= ENTRY_BLOCK_PTR_FOR_FN (fun
);
913 /* Look upward in dominance tree. */
914 for (; bb
!= entry
&& flow_bb_inside_loop_p (outer
, bb
);
915 bb
= get_immediate_dominator (CDI_DOMINATORS
, bb
))
918 if (g
== NULL
|| gimple_code (g
) != GIMPLE_COND
)
921 gsi
= gsi_for_stmt (g
);
927 /* The guarding internal function call must have the same distribution
929 if (gimple_call_internal_p (g
, IFN_LOOP_DIST_ALIAS
)
930 && (tree_to_shwi (gimple_call_arg (g
, 0)) == loop
->orig_loop_num
))
936 /* Set the uids of all the statements in basic blocks inside loop
937 represented by LOOP_VINFO. LOOP_VECTORIZED_CALL is the internal
938 call guarding the loop which has been if converted. */
940 set_uid_loop_bbs (loop_vec_info loop_vinfo
, gimple
*loop_vectorized_call
,
943 tree arg
= gimple_call_arg (loop_vectorized_call
, 1);
946 class loop
*scalar_loop
= get_loop (fun
, tree_to_shwi (arg
));
948 LOOP_VINFO_SCALAR_LOOP (loop_vinfo
) = scalar_loop
;
949 gcc_checking_assert (vect_loop_vectorized_call (scalar_loop
)
950 == loop_vectorized_call
);
951 /* If we are going to vectorize outer loop, prevent vectorization
952 of the inner loop in the scalar loop - either the scalar loop is
953 thrown away, so it is a wasted work, or is used only for
955 if (scalar_loop
->inner
)
957 gimple
*g
= vect_loop_vectorized_call (scalar_loop
->inner
);
960 arg
= gimple_call_arg (g
, 0);
961 get_loop (fun
, tree_to_shwi (arg
))->dont_vectorize
= true;
962 fold_loop_internal_call (g
, boolean_false_node
);
965 bbs
= get_loop_body (scalar_loop
);
966 for (i
= 0; i
< scalar_loop
->num_nodes
; i
++)
968 basic_block bb
= bbs
[i
];
969 gimple_stmt_iterator gsi
;
970 for (gsi
= gsi_start_phis (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
972 gimple
*phi
= gsi_stmt (gsi
);
973 gimple_set_uid (phi
, 0);
975 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
977 gimple
*stmt
= gsi_stmt (gsi
);
978 gimple_set_uid (stmt
, 0);
984 /* Generate vectorized code for LOOP and its epilogues. */
987 vect_transform_loops (hash_table
<simduid_to_vf
> *&simduid_to_vf_htab
,
988 loop_p loop
, gimple
*loop_vectorized_call
,
991 loop_vec_info loop_vinfo
= loop_vec_info_for_loop (loop
);
993 if (loop_vectorized_call
)
994 set_uid_loop_bbs (loop_vinfo
, loop_vectorized_call
, fun
);
996 unsigned HOST_WIDE_INT bytes
;
997 if (dump_enabled_p ())
999 if (GET_MODE_SIZE (loop_vinfo
->vector_mode
).is_constant (&bytes
))
1000 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS
, vect_location
,
1001 "loop vectorized using %wu byte vectors\n", bytes
);
1003 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS
, vect_location
,
1004 "loop vectorized using variable length vectors\n");
1007 loop_p new_loop
= vect_transform_loop (loop_vinfo
,
1008 loop_vectorized_call
);
1009 /* Now that the loop has been vectorized, allow it to be unrolled
1011 loop
->force_vectorize
= false;
1015 simduid_to_vf
*simduid_to_vf_data
= XNEW (simduid_to_vf
);
1016 if (!simduid_to_vf_htab
)
1017 simduid_to_vf_htab
= new hash_table
<simduid_to_vf
> (15);
1018 simduid_to_vf_data
->simduid
= DECL_UID (loop
->simduid
);
1019 simduid_to_vf_data
->vf
= loop_vinfo
->vectorization_factor
;
1020 *simduid_to_vf_htab
->find_slot (simduid_to_vf_data
, INSERT
)
1021 = simduid_to_vf_data
;
1024 /* We should not have to update virtual SSA form here but some
1025 transforms involve creating new virtual definitions which makes
1027 We delay the actual update to the end of the pass but avoid
1028 confusing ourselves by forcing need_ssa_update_p () to false. */
1030 if (need_ssa_update_p (cfun
))
1032 gcc_assert (loop_vinfo
->any_known_not_updated_vssa
);
1033 fun
->gimple_df
->ssa_renaming_needed
= false;
1034 todo
|= TODO_update_ssa_only_virtuals
;
1036 gcc_assert (!need_ssa_update_p (cfun
));
1038 /* Epilogue of vectorized loop must be vectorized too. */
1040 todo
|= vect_transform_loops (simduid_to_vf_htab
, new_loop
, NULL
, fun
);
1045 /* Try to vectorize LOOP. */
1048 try_vectorize_loop_1 (hash_table
<simduid_to_vf
> *&simduid_to_vf_htab
,
1049 unsigned *num_vectorized_loops
, loop_p loop
,
1050 gimple
*loop_vectorized_call
,
1051 gimple
*loop_dist_alias_call
,
1055 vec_info_shared shared
;
1056 auto_purge_vect_location sentinel
;
1057 vect_location
= find_loop_location (loop
);
1059 if (LOCATION_LOCUS (vect_location
.get_location_t ()) != UNKNOWN_LOCATION
1060 && dump_enabled_p ())
1061 dump_printf (MSG_NOTE
| MSG_PRIORITY_INTERNALS
,
1062 "\nAnalyzing loop at %s:%d\n",
1063 LOCATION_FILE (vect_location
.get_location_t ()),
1064 LOCATION_LINE (vect_location
.get_location_t ()));
1066 /* Try to analyze the loop, retaining an opt_problem if dump_enabled_p. */
1067 opt_loop_vec_info loop_vinfo
= vect_analyze_loop (loop
, &shared
);
1068 loop
->aux
= loop_vinfo
;
1071 if (dump_enabled_p ())
1072 if (opt_problem
*problem
= loop_vinfo
.get_problem ())
1074 dump_printf_loc (MSG_MISSED_OPTIMIZATION
, vect_location
,
1075 "couldn't vectorize loop\n");
1076 problem
->emit_and_clear ();
1079 if (!loop_vinfo
|| !LOOP_VINFO_VECTORIZABLE_P (loop_vinfo
))
1081 /* Free existing information if loop is analyzed with some
1083 if (loop_constraint_set_p (loop
, LOOP_C_FINITE
))
1084 vect_free_loop_info_assumptions (loop
);
1086 /* If we applied if-conversion then try to vectorize the
1087 BB of innermost loops.
1088 ??? Ideally BB vectorization would learn to vectorize
1089 control flow by applying if-conversion on-the-fly, the
1090 following retains the if-converted loop body even when
1091 only non-if-converted parts took part in BB vectorization. */
1092 if (flag_tree_slp_vectorize
!= 0
1093 && loop_vectorized_call
1096 basic_block bb
= loop
->header
;
1097 bool require_loop_vectorize
= false;
1098 for (gimple_stmt_iterator gsi
= gsi_start_bb (bb
);
1099 !gsi_end_p (gsi
); gsi_next (&gsi
))
1101 gimple
*stmt
= gsi_stmt (gsi
);
1102 gcall
*call
= dyn_cast
<gcall
*> (stmt
);
1103 if (call
&& gimple_call_internal_p (call
))
1105 internal_fn ifn
= gimple_call_internal_fn (call
);
1106 if (ifn
== IFN_MASK_LOAD
|| ifn
== IFN_MASK_STORE
1107 /* Don't keep the if-converted parts when the ifn with
1108 specifc type is not supported by the backend. */
1109 || (direct_internal_fn_p (ifn
)
1110 && !direct_internal_fn_supported_p
1111 (call
, OPTIMIZE_FOR_SPEED
)))
1113 require_loop_vectorize
= true;
1117 gimple_set_uid (stmt
, -1);
1118 gimple_set_visited (stmt
, false);
1120 if (!require_loop_vectorize
)
1122 tree arg
= gimple_call_arg (loop_vectorized_call
, 1);
1123 class loop
*scalar_loop
= get_loop (fun
, tree_to_shwi (arg
));
1124 if (vect_slp_if_converted_bb (bb
, scalar_loop
))
1126 fold_loop_internal_call (loop_vectorized_call
,
1128 loop_vectorized_call
= NULL
;
1129 ret
|= TODO_cleanup_cfg
| TODO_update_ssa_only_virtuals
;
1133 /* If outer loop vectorization fails for LOOP_VECTORIZED guarded
1134 loop, don't vectorize its inner loop; we'll attempt to
1135 vectorize LOOP_VECTORIZED guarded inner loop of the scalar
1137 if (loop_vectorized_call
&& loop
->inner
)
1138 loop
->inner
->dont_vectorize
= true;
1142 if (!dbg_cnt (vect_loop
))
1144 /* Free existing information if loop is analyzed with some
1146 if (loop_constraint_set_p (loop
, LOOP_C_FINITE
))
1147 vect_free_loop_info_assumptions (loop
);
1151 (*num_vectorized_loops
)++;
1152 /* Transform LOOP and its epilogues. */
1153 ret
|= vect_transform_loops (simduid_to_vf_htab
, loop
,
1154 loop_vectorized_call
, fun
);
1156 if (loop_vectorized_call
)
1158 fold_loop_internal_call (loop_vectorized_call
, boolean_true_node
);
1159 ret
|= TODO_cleanup_cfg
;
1161 if (loop_dist_alias_call
)
1163 tree value
= gimple_call_arg (loop_dist_alias_call
, 1);
1164 fold_loop_internal_call (loop_dist_alias_call
, value
);
1165 ret
|= TODO_cleanup_cfg
;
1171 /* Try to vectorize LOOP. */
1174 try_vectorize_loop (hash_table
<simduid_to_vf
> *&simduid_to_vf_htab
,
1175 unsigned *num_vectorized_loops
, loop_p loop
,
1178 if (!((flag_tree_loop_vectorize
1179 && optimize_loop_nest_for_speed_p (loop
))
1180 || loop
->force_vectorize
))
1183 return try_vectorize_loop_1 (simduid_to_vf_htab
, num_vectorized_loops
, loop
,
1184 vect_loop_vectorized_call (loop
),
1185 vect_loop_dist_alias_call (loop
, fun
), fun
);
1189 /* Loop autovectorization. */
1193 const pass_data pass_data_vectorize
=
1195 GIMPLE_PASS
, /* type */
1197 OPTGROUP_LOOP
| OPTGROUP_VEC
, /* optinfo_flags */
1198 TV_TREE_VECTORIZATION
, /* tv_id */
1199 ( PROP_cfg
| PROP_ssa
), /* properties_required */
1200 0, /* properties_provided */
1201 0, /* properties_destroyed */
1202 0, /* todo_flags_start */
1203 0, /* todo_flags_finish */
1206 class pass_vectorize
: public gimple_opt_pass
1209 pass_vectorize (gcc::context
*ctxt
)
1210 : gimple_opt_pass (pass_data_vectorize
, ctxt
)
1213 /* opt_pass methods: */
1214 bool gate (function
*fun
) final override
1216 return flag_tree_loop_vectorize
|| fun
->has_force_vectorize_loops
;
1219 unsigned int execute (function
*) final override
;
1221 }; // class pass_vectorize
1223 /* Function vectorize_loops.
1225 Entry point to loop vectorization phase. */
1228 pass_vectorize::execute (function
*fun
)
1231 unsigned int num_vectorized_loops
= 0;
1232 unsigned int vect_loops_num
;
1233 hash_table
<simduid_to_vf
> *simduid_to_vf_htab
= NULL
;
1234 hash_table
<simd_array_to_simduid
> *simd_array_to_simduid_htab
= NULL
;
1235 bool any_ifcvt_loops
= false;
1238 vect_loops_num
= number_of_loops (fun
);
1240 /* Bail out if there are no loops. */
1241 if (vect_loops_num
<= 1)
1246 if (fun
->has_simduid_loops
)
1247 note_simd_array_uses (&simd_array_to_simduid_htab
, fun
);
1249 /* ----------- Analyze loops. ----------- */
1251 /* If some loop was duplicated, it gets bigger number
1252 than all previously defined loops. This fact allows us to run
1253 only over initial loops skipping newly generated ones. */
1254 for (auto loop
: loops_list (fun
, 0))
1255 if (loop
->dont_vectorize
)
1257 any_ifcvt_loops
= true;
1258 /* If-conversion sometimes versions both the outer loop
1259 (for the case when outer loop vectorization might be
1260 desirable) as well as the inner loop in the scalar version
1261 of the loop. So we have:
1262 if (LOOP_VECTORIZED (1, 3))
1268 loop3 (copy of loop1)
1269 if (LOOP_VECTORIZED (4, 5))
1270 loop4 (copy of loop2)
1272 loop5 (copy of loop4)
1273 If loops' iteration gives us loop3 first (which has
1274 dont_vectorize set), make sure to process loop1 before loop4;
1275 so that we can prevent vectorization of loop4 if loop1
1276 is successfully vectorized. */
1279 gimple
*loop_vectorized_call
1280 = vect_loop_vectorized_call (loop
);
1281 if (loop_vectorized_call
1282 && vect_loop_vectorized_call (loop
->inner
))
1284 tree arg
= gimple_call_arg (loop_vectorized_call
, 0);
1285 class loop
*vector_loop
1286 = get_loop (fun
, tree_to_shwi (arg
));
1287 if (vector_loop
&& vector_loop
!= loop
)
1289 /* Make sure we don't vectorize it twice. */
1290 vector_loop
->dont_vectorize
= true;
1291 ret
|= try_vectorize_loop (simduid_to_vf_htab
,
1292 &num_vectorized_loops
,
1299 ret
|= try_vectorize_loop (simduid_to_vf_htab
, &num_vectorized_loops
,
1302 vect_location
= dump_user_location_t ();
1304 statistics_counter_event (fun
, "Vectorized loops", num_vectorized_loops
);
1305 if (dump_enabled_p ()
1306 || (num_vectorized_loops
> 0 && dump_enabled_p ()))
1307 dump_printf_loc (MSG_NOTE
, vect_location
,
1308 "vectorized %u loops in function.\n",
1309 num_vectorized_loops
);
1311 /* ----------- Finalize. ----------- */
1313 if (any_ifcvt_loops
)
1314 for (i
= 1; i
< number_of_loops (fun
); i
++)
1316 class loop
*loop
= get_loop (fun
, i
);
1317 if (loop
&& loop
->dont_vectorize
)
1319 gimple
*g
= vect_loop_vectorized_call (loop
);
1322 fold_loop_internal_call (g
, boolean_false_node
);
1323 ret
|= TODO_cleanup_cfg
;
1327 g
= vect_loop_dist_alias_call (loop
, fun
);
1331 fold_loop_internal_call (g
, boolean_false_node
);
1332 ret
|= TODO_cleanup_cfg
;
1337 /* Fold IFN_GOMP_SIMD_{VF,LANE,LAST_LANE,ORDERED_{START,END}} builtins. */
1338 if (fun
->has_simduid_loops
)
1340 adjust_simduid_builtins (simduid_to_vf_htab
, fun
);
1341 /* Avoid stale SCEV cache entries for the SIMD_LANE defs. */
1344 /* Shrink any "omp array simd" temporary arrays to the
1345 actual vectorization factors. */
1346 if (simd_array_to_simduid_htab
)
1347 shrink_simd_arrays (simd_array_to_simduid_htab
, simduid_to_vf_htab
);
1348 delete simduid_to_vf_htab
;
1349 fun
->has_simduid_loops
= false;
1351 if (num_vectorized_loops
> 0)
1353 /* We are collecting some corner cases where we need to update
1354 virtual SSA form via the TODO but delete the queued update-SSA
1355 state. Force renaming if we think that might be necessary. */
1356 if (ret
& TODO_update_ssa_only_virtuals
)
1357 mark_virtual_operands_for_renaming (cfun
);
1358 /* If we vectorized any loop only virtual SSA form needs to be updated.
1359 ??? Also while we try hard to update loop-closed SSA form we fail
1360 to properly do this in some corner-cases (see PR56286). */
1361 rewrite_into_loop_closed_ssa (NULL
, TODO_update_ssa_only_virtuals
);
1362 ret
|= TODO_cleanup_cfg
;
1365 for (i
= 1; i
< number_of_loops (fun
); i
++)
1367 loop_vec_info loop_vinfo
;
1368 bool has_mask_store
;
1370 class loop
*loop
= get_loop (fun
, i
);
1371 if (!loop
|| !loop
->aux
)
1373 loop_vinfo
= (loop_vec_info
) loop
->aux
;
1374 has_mask_store
= LOOP_VINFO_HAS_MASK_STORE (loop_vinfo
);
1377 && targetm
.vectorize
.empty_mask_is_expensive (IFN_MASK_STORE
))
1378 optimize_mask_stores (loop
);
1380 auto_bitmap exit_bbs
;
1381 /* Perform local CSE, this esp. helps because we emit code for
1382 predicates that need to be shared for optimal predicate usage.
1383 However reassoc will re-order them and prevent CSE from working
1384 as it should. CSE only the loop body, not the entry. */
1385 bitmap_set_bit (exit_bbs
, single_exit (loop
)->dest
->index
);
1387 edge entry
= EDGE_PRED (loop_preheader_edge (loop
)->src
, 0);
1388 do_rpo_vn (fun
, entry
, exit_bbs
);
1401 make_pass_vectorize (gcc::context
*ctxt
)
1403 return new pass_vectorize (ctxt
);
1406 /* Entry point to the simduid cleanup pass. */
1410 const pass_data pass_data_simduid_cleanup
=
1412 GIMPLE_PASS
, /* type */
1413 "simduid", /* name */
1414 OPTGROUP_NONE
, /* optinfo_flags */
1415 TV_NONE
, /* tv_id */
1416 ( PROP_ssa
| PROP_cfg
), /* properties_required */
1417 0, /* properties_provided */
1418 0, /* properties_destroyed */
1419 0, /* todo_flags_start */
1420 0, /* todo_flags_finish */
1423 class pass_simduid_cleanup
: public gimple_opt_pass
1426 pass_simduid_cleanup (gcc::context
*ctxt
)
1427 : gimple_opt_pass (pass_data_simduid_cleanup
, ctxt
)
1430 /* opt_pass methods: */
1431 opt_pass
* clone () final override
1433 return new pass_simduid_cleanup (m_ctxt
);
1435 bool gate (function
*fun
) final override
{ return fun
->has_simduid_loops
; }
1436 unsigned int execute (function
*) final override
;
1438 }; // class pass_simduid_cleanup
1441 pass_simduid_cleanup::execute (function
*fun
)
1443 hash_table
<simd_array_to_simduid
> *simd_array_to_simduid_htab
= NULL
;
1445 note_simd_array_uses (&simd_array_to_simduid_htab
, fun
);
1447 /* Fold IFN_GOMP_SIMD_{VF,LANE,LAST_LANE,ORDERED_{START,END}} builtins. */
1448 adjust_simduid_builtins (NULL
, fun
);
1450 /* Shrink any "omp array simd" temporary arrays to the
1451 actual vectorization factors. */
1452 if (simd_array_to_simduid_htab
)
1453 shrink_simd_arrays (simd_array_to_simduid_htab
, NULL
);
1454 fun
->has_simduid_loops
= false;
1461 make_pass_simduid_cleanup (gcc::context
*ctxt
)
1463 return new pass_simduid_cleanup (ctxt
);
1467 /* Entry point to basic block SLP phase. */
1471 const pass_data pass_data_slp_vectorize
=
1473 GIMPLE_PASS
, /* type */
1475 OPTGROUP_LOOP
| OPTGROUP_VEC
, /* optinfo_flags */
1476 TV_TREE_SLP_VECTORIZATION
, /* tv_id */
1477 ( PROP_ssa
| PROP_cfg
), /* properties_required */
1478 0, /* properties_provided */
1479 0, /* properties_destroyed */
1480 0, /* todo_flags_start */
1481 TODO_update_ssa
, /* todo_flags_finish */
1484 class pass_slp_vectorize
: public gimple_opt_pass
1487 pass_slp_vectorize (gcc::context
*ctxt
)
1488 : gimple_opt_pass (pass_data_slp_vectorize
, ctxt
)
1491 /* opt_pass methods: */
1492 opt_pass
* clone () final override
{ return new pass_slp_vectorize (m_ctxt
); }
1493 bool gate (function
*) final override
{ return flag_tree_slp_vectorize
!= 0; }
1494 unsigned int execute (function
*) final override
;
1496 }; // class pass_slp_vectorize
1499 pass_slp_vectorize::execute (function
*fun
)
1501 auto_purge_vect_location sentinel
;
1504 bool in_loop_pipeline
= scev_initialized_p ();
1505 if (!in_loop_pipeline
)
1507 loop_optimizer_init (LOOPS_NORMAL
);
1511 /* Mark all stmts as not belonging to the current region and unvisited. */
1512 FOR_EACH_BB_FN (bb
, fun
)
1514 for (gphi_iterator gsi
= gsi_start_phis (bb
); !gsi_end_p (gsi
);
1517 gphi
*stmt
= gsi
.phi ();
1518 gimple_set_uid (stmt
, -1);
1519 gimple_set_visited (stmt
, false);
1521 for (gimple_stmt_iterator gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
);
1524 gimple
*stmt
= gsi_stmt (gsi
);
1525 gimple_set_uid (stmt
, -1);
1526 gimple_set_visited (stmt
, false);
1532 vect_slp_function (fun
);
1536 if (!in_loop_pipeline
)
1539 loop_optimizer_finalize ();
1548 make_pass_slp_vectorize (gcc::context
*ctxt
)
1550 return new pass_slp_vectorize (ctxt
);
1554 /* Increase alignment of global arrays to improve vectorization potential.
1556 - Consider also structs that have an array field.
1557 - Use ipa analysis to prune arrays that can't be vectorized?
1558 This should involve global alignment analysis and in the future also
1561 static unsigned get_vec_alignment_for_type (tree
);
1562 static hash_map
<tree
, unsigned> *type_align_map
;
1564 /* Return alignment of array's vector type corresponding to scalar type.
1565 0 if no vector type exists. */
1567 get_vec_alignment_for_array_type (tree type
)
1569 gcc_assert (TREE_CODE (type
) == ARRAY_TYPE
);
1570 poly_uint64 array_size
, vector_size
;
1572 tree scalar_type
= strip_array_types (type
);
1573 tree vectype
= get_related_vectype_for_scalar_type (VOIDmode
, scalar_type
);
1575 || !poly_int_tree_p (TYPE_SIZE (type
), &array_size
)
1576 || !poly_int_tree_p (TYPE_SIZE (vectype
), &vector_size
)
1577 || maybe_lt (array_size
, vector_size
))
1580 return TYPE_ALIGN (vectype
);
1583 /* Return alignment of field having maximum alignment of vector type
1584 corresponding to it's scalar type. For now, we only consider fields whose
1585 offset is a multiple of it's vector alignment.
1586 0 if no suitable field is found. */
1588 get_vec_alignment_for_record_type (tree type
)
1590 gcc_assert (TREE_CODE (type
) == RECORD_TYPE
);
1592 unsigned max_align
= 0, alignment
;
1593 HOST_WIDE_INT offset
;
1596 if (TYPE_PACKED (type
))
1599 unsigned *slot
= type_align_map
->get (type
);
1603 for (tree field
= first_field (type
);
1605 field
= DECL_CHAIN (field
))
1607 /* Skip if not FIELD_DECL or if alignment is set by user. */
1608 if (TREE_CODE (field
) != FIELD_DECL
1609 || DECL_USER_ALIGN (field
)
1610 || DECL_ARTIFICIAL (field
))
1613 /* We don't need to process the type further if offset is variable,
1614 since the offsets of remaining members will also be variable. */
1615 if (TREE_CODE (DECL_FIELD_OFFSET (field
)) != INTEGER_CST
1616 || TREE_CODE (DECL_FIELD_BIT_OFFSET (field
)) != INTEGER_CST
)
1619 /* Similarly stop processing the type if offset_tree
1620 does not fit in unsigned HOST_WIDE_INT. */
1621 offset_tree
= bit_position (field
);
1622 if (!tree_fits_uhwi_p (offset_tree
))
1625 offset
= tree_to_uhwi (offset_tree
);
1626 alignment
= get_vec_alignment_for_type (TREE_TYPE (field
));
1628 /* Get maximum alignment of vectorized field/array among those members
1629 whose offset is multiple of the vector alignment. */
1631 && (offset
% alignment
== 0)
1632 && (alignment
> max_align
))
1633 max_align
= alignment
;
1636 type_align_map
->put (type
, max_align
);
1640 /* Return alignment of vector type corresponding to decl's scalar type
1641 or 0 if it doesn't exist or the vector alignment is lesser than
1642 decl's alignment. */
1644 get_vec_alignment_for_type (tree type
)
1646 if (type
== NULL_TREE
)
1649 gcc_assert (TYPE_P (type
));
1651 static unsigned alignment
= 0;
1652 switch (TREE_CODE (type
))
1655 alignment
= get_vec_alignment_for_array_type (type
);
1658 alignment
= get_vec_alignment_for_record_type (type
);
1665 return (alignment
> TYPE_ALIGN (type
)) ? alignment
: 0;
1668 /* Entry point to increase_alignment pass. */
1670 increase_alignment (void)
1672 varpool_node
*vnode
;
1674 vect_location
= dump_user_location_t ();
1675 type_align_map
= new hash_map
<tree
, unsigned>;
1677 /* Increase the alignment of all global arrays for vectorization. */
1678 FOR_EACH_DEFINED_VARIABLE (vnode
)
1680 tree decl
= vnode
->decl
;
1681 unsigned int alignment
;
1683 if ((decl_in_symtab_p (decl
)
1684 && !symtab_node::get (decl
)->can_increase_alignment_p ())
1685 || DECL_USER_ALIGN (decl
) || DECL_ARTIFICIAL (decl
))
1688 alignment
= get_vec_alignment_for_type (TREE_TYPE (decl
));
1689 if (alignment
&& vect_can_force_dr_alignment_p (decl
, alignment
))
1691 vnode
->increase_alignment (alignment
);
1692 if (dump_enabled_p ())
1693 dump_printf (MSG_NOTE
, "Increasing alignment of decl: %T\n", decl
);
1697 delete type_align_map
;
1704 const pass_data pass_data_ipa_increase_alignment
=
1706 SIMPLE_IPA_PASS
, /* type */
1707 "increase_alignment", /* name */
1708 OPTGROUP_LOOP
| OPTGROUP_VEC
, /* optinfo_flags */
1709 TV_IPA_OPT
, /* tv_id */
1710 0, /* properties_required */
1711 0, /* properties_provided */
1712 0, /* properties_destroyed */
1713 0, /* todo_flags_start */
1714 0, /* todo_flags_finish */
1717 class pass_ipa_increase_alignment
: public simple_ipa_opt_pass
1720 pass_ipa_increase_alignment (gcc::context
*ctxt
)
1721 : simple_ipa_opt_pass (pass_data_ipa_increase_alignment
, ctxt
)
1724 /* opt_pass methods: */
1725 bool gate (function
*) final override
1727 return flag_section_anchors
&& flag_tree_loop_vectorize
;
1730 unsigned int execute (function
*) final override
1732 return increase_alignment ();
1735 }; // class pass_ipa_increase_alignment
1739 simple_ipa_opt_pass
*
1740 make_pass_ipa_increase_alignment (gcc::context
*ctxt
)
1742 return new pass_ipa_increase_alignment (ctxt
);
1745 /* If the condition represented by T is a comparison or the SSA name
1746 result of a comparison, extract the comparison's operands. Represent
1747 T as NE_EXPR <T, 0> otherwise. */
1750 scalar_cond_masked_key::get_cond_ops_from_tree (tree t
)
1752 if (TREE_CODE_CLASS (TREE_CODE (t
)) == tcc_comparison
)
1754 this->code
= TREE_CODE (t
);
1755 this->op0
= TREE_OPERAND (t
, 0);
1756 this->op1
= TREE_OPERAND (t
, 1);
1757 this->inverted_p
= false;
1761 if (TREE_CODE (t
) == SSA_NAME
)
1762 if (gassign
*stmt
= dyn_cast
<gassign
*> (SSA_NAME_DEF_STMT (t
)))
1764 tree_code code
= gimple_assign_rhs_code (stmt
);
1765 if (TREE_CODE_CLASS (code
) == tcc_comparison
)
1768 this->op0
= gimple_assign_rhs1 (stmt
);
1769 this->op1
= gimple_assign_rhs2 (stmt
);
1770 this->inverted_p
= false;
1773 else if (code
== BIT_NOT_EXPR
)
1775 tree n_op
= gimple_assign_rhs1 (stmt
);
1776 if ((stmt
= dyn_cast
<gassign
*> (SSA_NAME_DEF_STMT (n_op
))))
1778 code
= gimple_assign_rhs_code (stmt
);
1779 if (TREE_CODE_CLASS (code
) == tcc_comparison
)
1782 this->op0
= gimple_assign_rhs1 (stmt
);
1783 this->op1
= gimple_assign_rhs2 (stmt
);
1784 this->inverted_p
= true;
1791 this->code
= NE_EXPR
;
1793 this->op1
= build_zero_cst (TREE_TYPE (t
));
1794 this->inverted_p
= false;
1797 /* See the comment above the declaration for details. */
1800 vector_costs::add_stmt_cost (int count
, vect_cost_for_stmt kind
,
1801 stmt_vec_info stmt_info
, slp_tree
,
1802 tree vectype
, int misalign
,
1803 vect_cost_model_location where
)
1806 = builtin_vectorization_cost (kind
, vectype
, misalign
) * count
;
1807 return record_stmt_cost (stmt_info
, where
, cost
);
1810 /* See the comment above the declaration for details. */
1813 vector_costs::finish_cost (const vector_costs
*)
1815 gcc_assert (!m_finished
);
1819 /* Record a base cost of COST units against WHERE. If STMT_INFO is
1820 nonnull, use it to adjust the cost based on execution frequency
1821 (where appropriate). */
1824 vector_costs::record_stmt_cost (stmt_vec_info stmt_info
,
1825 vect_cost_model_location where
,
1828 cost
= adjust_cost_for_freq (stmt_info
, where
, cost
);
1829 m_costs
[where
] += cost
;
1833 /* COST is the base cost we have calculated for an operation in location WHERE.
1834 If STMT_INFO is nonnull, use it to adjust the cost based on execution
1835 frequency (where appropriate). Return the adjusted cost. */
1838 vector_costs::adjust_cost_for_freq (stmt_vec_info stmt_info
,
1839 vect_cost_model_location where
,
1842 /* Statements in an inner loop relative to the loop being
1843 vectorized are weighted more heavily. The value here is
1844 arbitrary and could potentially be improved with analysis. */
1845 if (where
== vect_body
1847 && stmt_in_inner_loop_p (m_vinfo
, stmt_info
))
1849 loop_vec_info loop_vinfo
= as_a
<loop_vec_info
> (m_vinfo
);
1850 cost
*= LOOP_VINFO_INNER_LOOP_COST_FACTOR (loop_vinfo
);
1855 /* See the comment above the declaration for details. */
1858 vector_costs::better_main_loop_than_p (const vector_costs
*other
) const
1860 int diff
= compare_inside_loop_cost (other
);
1864 /* If there's nothing to choose between the loop bodies, see whether
1865 there's a difference in the prologue and epilogue costs. */
1866 diff
= compare_outside_loop_cost (other
);
1874 /* See the comment above the declaration for details. */
1877 vector_costs::better_epilogue_loop_than_p (const vector_costs
*other
,
1878 loop_vec_info main_loop
) const
1880 loop_vec_info this_loop_vinfo
= as_a
<loop_vec_info
> (this->m_vinfo
);
1881 loop_vec_info other_loop_vinfo
= as_a
<loop_vec_info
> (other
->m_vinfo
);
1883 poly_int64 this_vf
= LOOP_VINFO_VECT_FACTOR (this_loop_vinfo
);
1884 poly_int64 other_vf
= LOOP_VINFO_VECT_FACTOR (other_loop_vinfo
);
1886 poly_uint64 main_poly_vf
= LOOP_VINFO_VECT_FACTOR (main_loop
);
1887 unsigned HOST_WIDE_INT main_vf
;
1888 unsigned HOST_WIDE_INT other_factor
, this_factor
, other_cost
, this_cost
;
1889 /* If we can determine how many iterations are left for the epilogue
1890 loop, that is if both the main loop's vectorization factor and number
1891 of iterations are constant, then we use them to calculate the cost of
1892 the epilogue loop together with a 'likely value' for the epilogues
1893 vectorization factor. Otherwise we use the main loop's vectorization
1894 factor and the maximum poly value for the epilogue's. If the target
1895 has not provided with a sensible upper bound poly vectorization
1896 factors are likely to be favored over constant ones. */
1897 if (main_poly_vf
.is_constant (&main_vf
)
1898 && LOOP_VINFO_NITERS_KNOWN_P (main_loop
))
1900 unsigned HOST_WIDE_INT niters
1901 = LOOP_VINFO_INT_NITERS (main_loop
) % main_vf
;
1902 HOST_WIDE_INT other_likely_vf
1903 = estimated_poly_value (other_vf
, POLY_VALUE_LIKELY
);
1904 HOST_WIDE_INT this_likely_vf
1905 = estimated_poly_value (this_vf
, POLY_VALUE_LIKELY
);
1907 /* If the epilogue is using partial vectors we account for the
1908 partial iteration here too. */
1909 other_factor
= niters
/ other_likely_vf
;
1910 if (LOOP_VINFO_USING_PARTIAL_VECTORS_P (other_loop_vinfo
)
1911 && niters
% other_likely_vf
!= 0)
1914 this_factor
= niters
/ this_likely_vf
;
1915 if (LOOP_VINFO_USING_PARTIAL_VECTORS_P (this_loop_vinfo
)
1916 && niters
% this_likely_vf
!= 0)
1921 unsigned HOST_WIDE_INT main_vf_max
1922 = estimated_poly_value (main_poly_vf
, POLY_VALUE_MAX
);
1923 unsigned HOST_WIDE_INT other_vf_max
1924 = estimated_poly_value (other_vf
, POLY_VALUE_MAX
);
1925 unsigned HOST_WIDE_INT this_vf_max
1926 = estimated_poly_value (this_vf
, POLY_VALUE_MAX
);
1928 other_factor
= CEIL (main_vf_max
, other_vf_max
);
1929 this_factor
= CEIL (main_vf_max
, this_vf_max
);
1931 /* If the loop is not using partial vectors then it will iterate one
1932 time less than one that does. It is safe to subtract one here,
1933 because the main loop's vf is always at least 2x bigger than that
1935 if (!LOOP_VINFO_USING_PARTIAL_VECTORS_P (other_loop_vinfo
))
1937 if (!LOOP_VINFO_USING_PARTIAL_VECTORS_P (this_loop_vinfo
))
1941 /* Compute the costs by multiplying the inside costs with the factor and
1942 add the outside costs for a more complete picture. The factor is the
1943 amount of times we are expecting to iterate this epilogue. */
1944 other_cost
= other
->body_cost () * other_factor
;
1945 this_cost
= this->body_cost () * this_factor
;
1946 other_cost
+= other
->outside_cost ();
1947 this_cost
+= this->outside_cost ();
1948 return this_cost
< other_cost
;
1951 /* A <=>-style subroutine of better_main_loop_than_p. Check whether we can
1952 determine the return value of better_main_loop_than_p by comparing the
1953 inside (loop body) costs of THIS and OTHER. Return:
1955 * -1 if better_main_loop_than_p should return true.
1956 * 1 if better_main_loop_than_p should return false.
1957 * 0 if we can't decide. */
1960 vector_costs::compare_inside_loop_cost (const vector_costs
*other
) const
1962 loop_vec_info this_loop_vinfo
= as_a
<loop_vec_info
> (this->m_vinfo
);
1963 loop_vec_info other_loop_vinfo
= as_a
<loop_vec_info
> (other
->m_vinfo
);
1965 struct loop
*loop
= LOOP_VINFO_LOOP (this_loop_vinfo
);
1966 gcc_assert (LOOP_VINFO_LOOP (other_loop_vinfo
) == loop
);
1968 poly_int64 this_vf
= LOOP_VINFO_VECT_FACTOR (this_loop_vinfo
);
1969 poly_int64 other_vf
= LOOP_VINFO_VECT_FACTOR (other_loop_vinfo
);
1971 /* Limit the VFs to what is likely to be the maximum number of iterations,
1972 to handle cases in which at least one loop_vinfo is fully-masked. */
1973 HOST_WIDE_INT estimated_max_niter
= likely_max_stmt_executions_int (loop
);
1974 if (estimated_max_niter
!= -1)
1976 if (known_le (estimated_max_niter
, this_vf
))
1977 this_vf
= estimated_max_niter
;
1978 if (known_le (estimated_max_niter
, other_vf
))
1979 other_vf
= estimated_max_niter
;
1982 /* Check whether the (fractional) cost per scalar iteration is lower or
1983 higher: this_inside_cost / this_vf vs. other_inside_cost / other_vf. */
1984 poly_int64 rel_this
= this_loop_vinfo
->vector_costs
->body_cost () * other_vf
;
1985 poly_int64 rel_other
1986 = other_loop_vinfo
->vector_costs
->body_cost () * this_vf
;
1988 HOST_WIDE_INT est_rel_this_min
1989 = estimated_poly_value (rel_this
, POLY_VALUE_MIN
);
1990 HOST_WIDE_INT est_rel_this_max
1991 = estimated_poly_value (rel_this
, POLY_VALUE_MAX
);
1993 HOST_WIDE_INT est_rel_other_min
1994 = estimated_poly_value (rel_other
, POLY_VALUE_MIN
);
1995 HOST_WIDE_INT est_rel_other_max
1996 = estimated_poly_value (rel_other
, POLY_VALUE_MAX
);
1998 /* Check first if we can make out an unambigous total order from the minimum
1999 and maximum estimates. */
2000 if (est_rel_this_min
< est_rel_other_min
2001 && est_rel_this_max
< est_rel_other_max
)
2004 if (est_rel_other_min
< est_rel_this_min
2005 && est_rel_other_max
< est_rel_this_max
)
2008 /* When other_loop_vinfo uses a variable vectorization factor,
2009 we know that it has a lower cost for at least one runtime VF.
2010 However, we don't know how likely that VF is.
2012 One option would be to compare the costs for the estimated VFs.
2013 The problem is that that can put too much pressure on the cost
2014 model. E.g. if the estimated VF is also the lowest possible VF,
2015 and if other_loop_vinfo is 1 unit worse than this_loop_vinfo
2016 for the estimated VF, we'd then choose this_loop_vinfo even
2017 though (a) this_loop_vinfo might not actually be better than
2018 other_loop_vinfo for that VF and (b) it would be significantly
2019 worse at larger VFs.
2021 Here we go for a hacky compromise: pick this_loop_vinfo if it is
2022 no more expensive than other_loop_vinfo even after doubling the
2023 estimated other_loop_vinfo VF. For all but trivial loops, this
2024 ensures that we only pick this_loop_vinfo if it is significantly
2025 better than other_loop_vinfo at the estimated VF. */
2026 if (est_rel_other_min
!= est_rel_this_min
2027 || est_rel_other_max
!= est_rel_this_max
)
2029 HOST_WIDE_INT est_rel_this_likely
2030 = estimated_poly_value (rel_this
, POLY_VALUE_LIKELY
);
2031 HOST_WIDE_INT est_rel_other_likely
2032 = estimated_poly_value (rel_other
, POLY_VALUE_LIKELY
);
2034 return est_rel_this_likely
* 2 <= est_rel_other_likely
? -1 : 1;
2040 /* A <=>-style subroutine of better_main_loop_than_p, used when there is
2041 nothing to choose between the inside (loop body) costs of THIS and OTHER.
2042 Check whether we can determine the return value of better_main_loop_than_p
2043 by comparing the outside (prologue and epilogue) costs of THIS and OTHER.
2046 * -1 if better_main_loop_than_p should return true.
2047 * 1 if better_main_loop_than_p should return false.
2048 * 0 if we can't decide. */
2051 vector_costs::compare_outside_loop_cost (const vector_costs
*other
) const
2053 auto this_outside_cost
= this->outside_cost ();
2054 auto other_outside_cost
= other
->outside_cost ();
2055 if (this_outside_cost
!= other_outside_cost
)
2056 return this_outside_cost
< other_outside_cost
? -1 : 1;