tree-vectorizer.h revision 1.5 1 1.1 mrg /* Vectorizer
2 1.5 mrg Copyright (C) 2003-2015 Free Software Foundation, Inc.
3 1.1 mrg Contributed by Dorit Naishlos <dorit (at) il.ibm.com>
4 1.1 mrg
5 1.1 mrg This file is part of GCC.
6 1.1 mrg
7 1.1 mrg GCC is free software; you can redistribute it and/or modify it under
8 1.1 mrg the terms of the GNU General Public License as published by the Free
9 1.1 mrg Software Foundation; either version 3, or (at your option) any later
10 1.1 mrg version.
11 1.1 mrg
12 1.1 mrg GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 1.1 mrg WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 1.1 mrg FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 1.1 mrg for more details.
16 1.1 mrg
17 1.1 mrg You should have received a copy of the GNU General Public License
18 1.1 mrg along with GCC; see the file COPYING3. If not see
19 1.1 mrg <http://www.gnu.org/licenses/>. */
20 1.1 mrg
21 1.1 mrg #ifndef GCC_TREE_VECTORIZER_H
22 1.1 mrg #define GCC_TREE_VECTORIZER_H
23 1.1 mrg
24 1.1 mrg #include "tree-data-ref.h"
25 1.3 mrg #include "target.h"
26 1.5 mrg #include "hash-table.h"
27 1.1 mrg
28 1.1 mrg /* Used for naming of new temporaries. */
29 1.1 mrg enum vect_var_kind {
30 1.1 mrg vect_simple_var,
31 1.1 mrg vect_pointer_var,
32 1.1 mrg vect_scalar_var
33 1.1 mrg };
34 1.1 mrg
35 1.1 mrg /* Defines type of operation. */
36 1.1 mrg enum operation_type {
37 1.1 mrg unary_op = 1,
38 1.1 mrg binary_op,
39 1.1 mrg ternary_op
40 1.1 mrg };
41 1.1 mrg
42 1.1 mrg /* Define type of available alignment support. */
43 1.1 mrg enum dr_alignment_support {
44 1.1 mrg dr_unaligned_unsupported,
45 1.1 mrg dr_unaligned_supported,
46 1.1 mrg dr_explicit_realign,
47 1.1 mrg dr_explicit_realign_optimized,
48 1.1 mrg dr_aligned
49 1.1 mrg };
50 1.1 mrg
51 1.1 mrg /* Define type of def-use cross-iteration cycle. */
52 1.1 mrg enum vect_def_type {
53 1.1 mrg vect_uninitialized_def = 0,
54 1.1 mrg vect_constant_def = 1,
55 1.1 mrg vect_external_def,
56 1.1 mrg vect_internal_def,
57 1.1 mrg vect_induction_def,
58 1.1 mrg vect_reduction_def,
59 1.1 mrg vect_double_reduction_def,
60 1.1 mrg vect_nested_cycle,
61 1.1 mrg vect_unknown_def_type
62 1.1 mrg };
63 1.1 mrg
64 1.1 mrg #define VECTORIZABLE_CYCLE_DEF(D) (((D) == vect_reduction_def) \
65 1.1 mrg || ((D) == vect_double_reduction_def) \
66 1.1 mrg || ((D) == vect_nested_cycle))
67 1.1 mrg
68 1.3 mrg /* Structure to encapsulate information about a group of like
69 1.3 mrg instructions to be presented to the target cost model. */
70 1.3 mrg typedef struct _stmt_info_for_cost {
71 1.3 mrg int count;
72 1.3 mrg enum vect_cost_for_stmt kind;
73 1.3 mrg gimple stmt;
74 1.3 mrg int misalign;
75 1.3 mrg } stmt_info_for_cost;
76 1.3 mrg
77 1.3 mrg
78 1.3 mrg typedef vec<stmt_info_for_cost> stmt_vector_for_cost;
79 1.3 mrg
80 1.3 mrg static inline void
81 1.3 mrg add_stmt_info_to_vec (stmt_vector_for_cost *stmt_cost_vec, int count,
82 1.3 mrg enum vect_cost_for_stmt kind, gimple stmt, int misalign)
83 1.3 mrg {
84 1.3 mrg stmt_info_for_cost si;
85 1.3 mrg si.count = count;
86 1.3 mrg si.kind = kind;
87 1.3 mrg si.stmt = stmt;
88 1.3 mrg si.misalign = misalign;
89 1.3 mrg stmt_cost_vec->safe_push (si);
90 1.3 mrg }
91 1.1 mrg
92 1.1 mrg /************************************************************************
93 1.1 mrg SLP
94 1.1 mrg ************************************************************************/
95 1.5 mrg typedef struct _slp_tree *slp_tree;
96 1.1 mrg
97 1.3 mrg /* A computation tree of an SLP instance. Each node corresponds to a group of
98 1.1 mrg stmts to be packed in a SIMD stmt. */
99 1.5 mrg struct _slp_tree {
100 1.3 mrg /* Nodes that contain def-stmts of this node statements operands. */
101 1.5 mrg vec<slp_tree> children;
102 1.1 mrg /* A group of scalar stmts to be vectorized together. */
103 1.3 mrg vec<gimple> stmts;
104 1.5 mrg /* Load permutation relative to the stores, NULL if there is no
105 1.5 mrg permutation. */
106 1.5 mrg vec<unsigned> load_permutation;
107 1.1 mrg /* Vectorized stmt/s. */
108 1.3 mrg vec<gimple> vec_stmts;
109 1.1 mrg /* Number of vector stmts that are created to replace the group of scalar
110 1.1 mrg stmts. It is calculated during the transformation phase as the number of
111 1.1 mrg scalar elements in one scalar iteration (GROUP_SIZE) multiplied by VF
112 1.1 mrg divided by vector size. */
113 1.1 mrg unsigned int vec_stmts_size;
114 1.5 mrg };
115 1.1 mrg
116 1.1 mrg
117 1.1 mrg /* SLP instance is a sequence of stmts in a loop that can be packed into
118 1.1 mrg SIMD stmts. */
119 1.1 mrg typedef struct _slp_instance {
120 1.1 mrg /* The root of SLP tree. */
121 1.1 mrg slp_tree root;
122 1.1 mrg
123 1.1 mrg /* Size of groups of scalar stmts that will be replaced by SIMD stmt/s. */
124 1.1 mrg unsigned int group_size;
125 1.1 mrg
126 1.1 mrg /* The unrolling factor required to vectorized this SLP instance. */
127 1.1 mrg unsigned int unrolling_factor;
128 1.1 mrg
129 1.1 mrg /* Vectorization costs associated with SLP instance. */
130 1.3 mrg stmt_vector_for_cost body_cost_vec;
131 1.1 mrg
132 1.1 mrg /* The group of nodes that contain loads of this SLP instance. */
133 1.3 mrg vec<slp_tree> loads;
134 1.1 mrg
135 1.1 mrg /* The first scalar load of the instance. The created vector loads will be
136 1.1 mrg inserted before this statement. */
137 1.1 mrg gimple first_load;
138 1.1 mrg } *slp_instance;
139 1.1 mrg
140 1.1 mrg
141 1.1 mrg /* Access Functions. */
142 1.1 mrg #define SLP_INSTANCE_TREE(S) (S)->root
143 1.1 mrg #define SLP_INSTANCE_GROUP_SIZE(S) (S)->group_size
144 1.1 mrg #define SLP_INSTANCE_UNROLLING_FACTOR(S) (S)->unrolling_factor
145 1.3 mrg #define SLP_INSTANCE_BODY_COST_VEC(S) (S)->body_cost_vec
146 1.1 mrg #define SLP_INSTANCE_LOADS(S) (S)->loads
147 1.1 mrg #define SLP_INSTANCE_FIRST_LOAD_STMT(S) (S)->first_load
148 1.1 mrg
149 1.3 mrg #define SLP_TREE_CHILDREN(S) (S)->children
150 1.1 mrg #define SLP_TREE_SCALAR_STMTS(S) (S)->stmts
151 1.1 mrg #define SLP_TREE_VEC_STMTS(S) (S)->vec_stmts
152 1.1 mrg #define SLP_TREE_NUMBER_OF_VEC_STMTS(S) (S)->vec_stmts_size
153 1.5 mrg #define SLP_TREE_LOAD_PERMUTATION(S) (S)->load_permutation
154 1.3 mrg
155 1.3 mrg /* This structure is used in creation of an SLP tree. Each instance
156 1.3 mrg corresponds to the same operand in a group of scalar stmts in an SLP
157 1.3 mrg node. */
158 1.3 mrg typedef struct _slp_oprnd_info
159 1.3 mrg {
160 1.3 mrg /* Def-stmts for the operands. */
161 1.3 mrg vec<gimple> def_stmts;
162 1.3 mrg /* Information about the first statement, its vector def-type, type, the
163 1.3 mrg operand itself in case it's constant, and an indication if it's a pattern
164 1.3 mrg stmt. */
165 1.3 mrg enum vect_def_type first_dt;
166 1.5 mrg tree first_op_type;
167 1.3 mrg bool first_pattern;
168 1.3 mrg } *slp_oprnd_info;
169 1.3 mrg
170 1.3 mrg
171 1.3 mrg
172 1.5 mrg /* This struct is used to store the information of a data reference,
173 1.5 mrg including the data ref itself, the access offset (calculated by summing its
174 1.5 mrg offset and init) and the segment length for aliasing checks.
175 1.5 mrg This is used to merge alias checks. */
176 1.5 mrg
177 1.5 mrg struct dr_with_seg_len
178 1.5 mrg {
179 1.5 mrg dr_with_seg_len (data_reference_p d, tree len)
180 1.5 mrg : dr (d),
181 1.5 mrg offset (size_binop (PLUS_EXPR, DR_OFFSET (d), DR_INIT (d))),
182 1.5 mrg seg_len (len) {}
183 1.5 mrg
184 1.5 mrg data_reference_p dr;
185 1.5 mrg tree offset;
186 1.5 mrg tree seg_len;
187 1.5 mrg };
188 1.5 mrg
189 1.5 mrg /* This struct contains two dr_with_seg_len objects with aliasing data
190 1.5 mrg refs. Two comparisons are generated from them. */
191 1.5 mrg
192 1.5 mrg struct dr_with_seg_len_pair_t
193 1.5 mrg {
194 1.5 mrg dr_with_seg_len_pair_t (const dr_with_seg_len& d1,
195 1.5 mrg const dr_with_seg_len& d2)
196 1.5 mrg : first (d1), second (d2) {}
197 1.5 mrg
198 1.5 mrg dr_with_seg_len first;
199 1.5 mrg dr_with_seg_len second;
200 1.5 mrg };
201 1.5 mrg
202 1.5 mrg
203 1.3 mrg typedef struct _vect_peel_info
204 1.3 mrg {
205 1.3 mrg int npeel;
206 1.3 mrg struct data_reference *dr;
207 1.3 mrg unsigned int count;
208 1.3 mrg } *vect_peel_info;
209 1.3 mrg
210 1.3 mrg typedef struct _vect_peel_extended_info
211 1.3 mrg {
212 1.3 mrg struct _vect_peel_info peel_info;
213 1.3 mrg unsigned int inside_cost;
214 1.3 mrg unsigned int outside_cost;
215 1.3 mrg stmt_vector_for_cost body_cost_vec;
216 1.3 mrg } *vect_peel_extended_info;
217 1.1 mrg
218 1.5 mrg
219 1.5 mrg /* Peeling hashtable helpers. */
220 1.5 mrg
221 1.5 mrg struct peel_info_hasher : typed_free_remove <_vect_peel_info>
222 1.5 mrg {
223 1.5 mrg typedef _vect_peel_info value_type;
224 1.5 mrg typedef _vect_peel_info compare_type;
225 1.5 mrg static inline hashval_t hash (const value_type *);
226 1.5 mrg static inline bool equal (const value_type *, const compare_type *);
227 1.5 mrg };
228 1.5 mrg
229 1.5 mrg inline hashval_t
230 1.5 mrg peel_info_hasher::hash (const value_type *peel_info)
231 1.5 mrg {
232 1.5 mrg return (hashval_t) peel_info->npeel;
233 1.5 mrg }
234 1.5 mrg
235 1.5 mrg inline bool
236 1.5 mrg peel_info_hasher::equal (const value_type *a, const compare_type *b)
237 1.5 mrg {
238 1.5 mrg return (a->npeel == b->npeel);
239 1.5 mrg }
240 1.5 mrg
241 1.5 mrg
242 1.1 mrg /*-----------------------------------------------------------------*/
243 1.1 mrg /* Info on vectorized loops. */
244 1.1 mrg /*-----------------------------------------------------------------*/
245 1.1 mrg typedef struct _loop_vec_info {
246 1.1 mrg
247 1.1 mrg /* The loop to which this info struct refers to. */
248 1.1 mrg struct loop *loop;
249 1.1 mrg
250 1.1 mrg /* The loop basic blocks. */
251 1.1 mrg basic_block *bbs;
252 1.1 mrg
253 1.5 mrg /* Number of latch executions. */
254 1.5 mrg tree num_itersm1;
255 1.1 mrg /* Number of iterations. */
256 1.1 mrg tree num_iters;
257 1.5 mrg /* Number of iterations of the original loop. */
258 1.1 mrg tree num_iters_unchanged;
259 1.1 mrg
260 1.1 mrg /* Minimum number of iterations below which vectorization is expected to
261 1.1 mrg not be profitable (as estimated by the cost model).
262 1.1 mrg -1 indicates that vectorization will not be profitable.
263 1.1 mrg FORNOW: This field is an int. Will be a tree in the future, to represent
264 1.1 mrg values unknown at compile time. */
265 1.1 mrg int min_profitable_iters;
266 1.1 mrg
267 1.5 mrg /* Threshold of number of iterations below which vectorzation will not be
268 1.5 mrg performed. It is calculated from MIN_PROFITABLE_ITERS and
269 1.5 mrg PARAM_MIN_VECT_LOOP_BOUND. */
270 1.5 mrg unsigned int th;
271 1.5 mrg
272 1.1 mrg /* Is the loop vectorizable? */
273 1.1 mrg bool vectorizable;
274 1.1 mrg
275 1.1 mrg /* Unrolling factor */
276 1.1 mrg int vectorization_factor;
277 1.1 mrg
278 1.1 mrg /* Unknown DRs according to which loop was peeled. */
279 1.1 mrg struct data_reference *unaligned_dr;
280 1.1 mrg
281 1.1 mrg /* peeling_for_alignment indicates whether peeling for alignment will take
282 1.1 mrg place, and what the peeling factor should be:
283 1.1 mrg peeling_for_alignment = X means:
284 1.1 mrg If X=0: Peeling for alignment will not be applied.
285 1.1 mrg If X>0: Peel first X iterations.
286 1.1 mrg If X=-1: Generate a runtime test to calculate the number of iterations
287 1.1 mrg to be peeled, using the dataref recorded in the field
288 1.1 mrg unaligned_dr. */
289 1.1 mrg int peeling_for_alignment;
290 1.1 mrg
291 1.1 mrg /* The mask used to check the alignment of pointers or arrays. */
292 1.1 mrg int ptr_mask;
293 1.1 mrg
294 1.3 mrg /* The loop nest in which the data dependences are computed. */
295 1.3 mrg vec<loop_p> loop_nest;
296 1.3 mrg
297 1.1 mrg /* All data references in the loop. */
298 1.3 mrg vec<data_reference_p> datarefs;
299 1.1 mrg
300 1.1 mrg /* All data dependences in the loop. */
301 1.3 mrg vec<ddr_p> ddrs;
302 1.1 mrg
303 1.1 mrg /* Data Dependence Relations defining address ranges that are candidates
304 1.1 mrg for a run-time aliasing check. */
305 1.3 mrg vec<ddr_p> may_alias_ddrs;
306 1.1 mrg
307 1.5 mrg /* Data Dependence Relations defining address ranges together with segment
308 1.5 mrg lengths from which the run-time aliasing check is built. */
309 1.5 mrg vec<dr_with_seg_len_pair_t> comp_alias_ddrs;
310 1.5 mrg
311 1.1 mrg /* Statements in the loop that have data references that are candidates for a
312 1.1 mrg runtime (loop versioning) misalignment check. */
313 1.3 mrg vec<gimple> may_misalign_stmts;
314 1.1 mrg
315 1.1 mrg /* All interleaving chains of stores in the loop, represented by the first
316 1.1 mrg stmt in the chain. */
317 1.3 mrg vec<gimple> grouped_stores;
318 1.1 mrg
319 1.3 mrg /* All SLP instances in the loop. This is a subset of the set of GROUP_STORES
320 1.1 mrg of the loop. */
321 1.3 mrg vec<slp_instance> slp_instances;
322 1.1 mrg
323 1.1 mrg /* The unrolling factor needed to SLP the loop. In case of that pure SLP is
324 1.1 mrg applied to the loop, i.e., no unrolling is needed, this is 1. */
325 1.1 mrg unsigned slp_unrolling_factor;
326 1.1 mrg
327 1.3 mrg /* Reduction cycles detected in the loop. Used in loop-aware SLP. */
328 1.3 mrg vec<gimple> reductions;
329 1.3 mrg
330 1.3 mrg /* All reduction chains in the loop, represented by the first
331 1.3 mrg stmt in the chain. */
332 1.3 mrg vec<gimple> reduction_chains;
333 1.3 mrg
334 1.3 mrg /* Hash table used to choose the best peeling option. */
335 1.5 mrg hash_table<peel_info_hasher> *peeling_htab;
336 1.3 mrg
337 1.3 mrg /* Cost data used by the target cost model. */
338 1.3 mrg void *target_cost_data;
339 1.3 mrg
340 1.3 mrg /* When we have grouped data accesses with gaps, we may introduce invalid
341 1.1 mrg memory accesses. We peel the last iteration of the loop to prevent
342 1.1 mrg this. */
343 1.1 mrg bool peeling_for_gaps;
344 1.1 mrg
345 1.5 mrg /* When the number of iterations is not a multiple of the vector size
346 1.5 mrg we need to peel off iterations at the end to form an epilogue loop. */
347 1.5 mrg bool peeling_for_niter;
348 1.5 mrg
349 1.3 mrg /* Reductions are canonicalized so that the last operand is the reduction
350 1.3 mrg operand. If this places a constant into RHS1, this decanonicalizes
351 1.3 mrg GIMPLE for other phases, so we must track when this has occurred and
352 1.3 mrg fix it up. */
353 1.3 mrg bool operands_swapped;
354 1.3 mrg
355 1.5 mrg /* True if there are no loop carried data dependencies in the loop.
356 1.5 mrg If loop->safelen <= 1, then this is always true, either the loop
357 1.5 mrg didn't have any loop carried data dependencies, or the loop is being
358 1.5 mrg vectorized guarded with some runtime alias checks, or couldn't
359 1.5 mrg be vectorized at all, but then this field shouldn't be used.
360 1.5 mrg For loop->safelen >= 2, the user has asserted that there are no
361 1.5 mrg backward dependencies, but there still could be loop carried forward
362 1.5 mrg dependencies in such loops. This flag will be false if normal
363 1.5 mrg vectorizer data dependency analysis would fail or require versioning
364 1.5 mrg for alias, but because of loop->safelen >= 2 it has been vectorized
365 1.5 mrg even without versioning for alias. E.g. in:
366 1.5 mrg #pragma omp simd
367 1.5 mrg for (int i = 0; i < m; i++)
368 1.5 mrg a[i] = a[i + k] * c;
369 1.5 mrg (or #pragma simd or #pragma ivdep) we can vectorize this and it will
370 1.5 mrg DTRT even for k > 0 && k < m, but without safelen we would not
371 1.5 mrg vectorize this, so this field would be false. */
372 1.5 mrg bool no_data_dependencies;
373 1.5 mrg
374 1.5 mrg /* If if-conversion versioned this loop before conversion, this is the
375 1.5 mrg loop version without if-conversion. */
376 1.5 mrg struct loop *scalar_loop;
377 1.5 mrg
378 1.1 mrg } *loop_vec_info;
379 1.1 mrg
380 1.1 mrg /* Access Functions. */
381 1.1 mrg #define LOOP_VINFO_LOOP(L) (L)->loop
382 1.1 mrg #define LOOP_VINFO_BBS(L) (L)->bbs
383 1.5 mrg #define LOOP_VINFO_NITERSM1(L) (L)->num_itersm1
384 1.1 mrg #define LOOP_VINFO_NITERS(L) (L)->num_iters
385 1.5 mrg /* Since LOOP_VINFO_NITERS and LOOP_VINFO_NITERSM1 can change after
386 1.5 mrg prologue peeling retain total unchanged scalar loop iterations for
387 1.5 mrg cost model. */
388 1.1 mrg #define LOOP_VINFO_NITERS_UNCHANGED(L) (L)->num_iters_unchanged
389 1.1 mrg #define LOOP_VINFO_COST_MODEL_MIN_ITERS(L) (L)->min_profitable_iters
390 1.5 mrg #define LOOP_VINFO_COST_MODEL_THRESHOLD(L) (L)->th
391 1.1 mrg #define LOOP_VINFO_VECTORIZABLE_P(L) (L)->vectorizable
392 1.1 mrg #define LOOP_VINFO_VECT_FACTOR(L) (L)->vectorization_factor
393 1.1 mrg #define LOOP_VINFO_PTR_MASK(L) (L)->ptr_mask
394 1.3 mrg #define LOOP_VINFO_LOOP_NEST(L) (L)->loop_nest
395 1.1 mrg #define LOOP_VINFO_DATAREFS(L) (L)->datarefs
396 1.1 mrg #define LOOP_VINFO_DDRS(L) (L)->ddrs
397 1.1 mrg #define LOOP_VINFO_INT_NITERS(L) (TREE_INT_CST_LOW ((L)->num_iters))
398 1.5 mrg #define LOOP_VINFO_PEELING_FOR_ALIGNMENT(L) (L)->peeling_for_alignment
399 1.1 mrg #define LOOP_VINFO_UNALIGNED_DR(L) (L)->unaligned_dr
400 1.1 mrg #define LOOP_VINFO_MAY_MISALIGN_STMTS(L) (L)->may_misalign_stmts
401 1.1 mrg #define LOOP_VINFO_MAY_ALIAS_DDRS(L) (L)->may_alias_ddrs
402 1.5 mrg #define LOOP_VINFO_COMP_ALIAS_DDRS(L) (L)->comp_alias_ddrs
403 1.3 mrg #define LOOP_VINFO_GROUPED_STORES(L) (L)->grouped_stores
404 1.1 mrg #define LOOP_VINFO_SLP_INSTANCES(L) (L)->slp_instances
405 1.1 mrg #define LOOP_VINFO_SLP_UNROLLING_FACTOR(L) (L)->slp_unrolling_factor
406 1.3 mrg #define LOOP_VINFO_REDUCTIONS(L) (L)->reductions
407 1.3 mrg #define LOOP_VINFO_REDUCTION_CHAINS(L) (L)->reduction_chains
408 1.3 mrg #define LOOP_VINFO_PEELING_HTAB(L) (L)->peeling_htab
409 1.3 mrg #define LOOP_VINFO_TARGET_COST_DATA(L) (L)->target_cost_data
410 1.1 mrg #define LOOP_VINFO_PEELING_FOR_GAPS(L) (L)->peeling_for_gaps
411 1.3 mrg #define LOOP_VINFO_OPERANDS_SWAPPED(L) (L)->operands_swapped
412 1.5 mrg #define LOOP_VINFO_PEELING_FOR_NITER(L) (L)->peeling_for_niter
413 1.5 mrg #define LOOP_VINFO_NO_DATA_DEPENDENCIES(L) (L)->no_data_dependencies
414 1.5 mrg #define LOOP_VINFO_SCALAR_LOOP(L) (L)->scalar_loop
415 1.1 mrg
416 1.1 mrg #define LOOP_REQUIRES_VERSIONING_FOR_ALIGNMENT(L) \
417 1.5 mrg ((L)->may_misalign_stmts.length () > 0)
418 1.1 mrg #define LOOP_REQUIRES_VERSIONING_FOR_ALIAS(L) \
419 1.5 mrg ((L)->may_alias_ddrs.length () > 0)
420 1.1 mrg
421 1.1 mrg #define LOOP_VINFO_NITERS_KNOWN_P(L) \
422 1.5 mrg (tree_fits_shwi_p ((L)->num_iters) && tree_to_shwi ((L)->num_iters) > 0)
423 1.1 mrg
424 1.1 mrg static inline loop_vec_info
425 1.1 mrg loop_vec_info_for_loop (struct loop *loop)
426 1.1 mrg {
427 1.1 mrg return (loop_vec_info) loop->aux;
428 1.1 mrg }
429 1.1 mrg
430 1.1 mrg static inline bool
431 1.1 mrg nested_in_vect_loop_p (struct loop *loop, gimple stmt)
432 1.1 mrg {
433 1.1 mrg return (loop->inner
434 1.1 mrg && (loop->inner == (gimple_bb (stmt))->loop_father));
435 1.1 mrg }
436 1.1 mrg
437 1.1 mrg typedef struct _bb_vec_info {
438 1.1 mrg
439 1.1 mrg basic_block bb;
440 1.1 mrg /* All interleaving chains of stores in the basic block, represented by the
441 1.1 mrg first stmt in the chain. */
442 1.3 mrg vec<gimple> grouped_stores;
443 1.1 mrg
444 1.1 mrg /* All SLP instances in the basic block. This is a subset of the set of
445 1.3 mrg GROUP_STORES of the basic block. */
446 1.3 mrg vec<slp_instance> slp_instances;
447 1.1 mrg
448 1.1 mrg /* All data references in the basic block. */
449 1.3 mrg vec<data_reference_p> datarefs;
450 1.1 mrg
451 1.1 mrg /* All data dependences in the basic block. */
452 1.3 mrg vec<ddr_p> ddrs;
453 1.3 mrg
454 1.3 mrg /* Cost data used by the target cost model. */
455 1.3 mrg void *target_cost_data;
456 1.3 mrg
457 1.1 mrg } *bb_vec_info;
458 1.1 mrg
459 1.3 mrg #define BB_VINFO_BB(B) (B)->bb
460 1.3 mrg #define BB_VINFO_GROUPED_STORES(B) (B)->grouped_stores
461 1.3 mrg #define BB_VINFO_SLP_INSTANCES(B) (B)->slp_instances
462 1.3 mrg #define BB_VINFO_DATAREFS(B) (B)->datarefs
463 1.3 mrg #define BB_VINFO_DDRS(B) (B)->ddrs
464 1.3 mrg #define BB_VINFO_TARGET_COST_DATA(B) (B)->target_cost_data
465 1.1 mrg
466 1.1 mrg static inline bb_vec_info
467 1.1 mrg vec_info_for_bb (basic_block bb)
468 1.1 mrg {
469 1.1 mrg return (bb_vec_info) bb->aux;
470 1.1 mrg }
471 1.1 mrg
472 1.1 mrg /*-----------------------------------------------------------------*/
473 1.1 mrg /* Info on vectorized defs. */
474 1.1 mrg /*-----------------------------------------------------------------*/
475 1.1 mrg enum stmt_vec_info_type {
476 1.1 mrg undef_vec_info_type = 0,
477 1.1 mrg load_vec_info_type,
478 1.1 mrg store_vec_info_type,
479 1.1 mrg shift_vec_info_type,
480 1.1 mrg op_vec_info_type,
481 1.1 mrg call_vec_info_type,
482 1.5 mrg call_simd_clone_vec_info_type,
483 1.1 mrg assignment_vec_info_type,
484 1.1 mrg condition_vec_info_type,
485 1.1 mrg reduc_vec_info_type,
486 1.1 mrg induc_vec_info_type,
487 1.1 mrg type_promotion_vec_info_type,
488 1.1 mrg type_demotion_vec_info_type,
489 1.1 mrg type_conversion_vec_info_type,
490 1.1 mrg loop_exit_ctrl_vec_info_type
491 1.1 mrg };
492 1.1 mrg
493 1.1 mrg /* Indicates whether/how a variable is used in the scope of loop/basic
494 1.1 mrg block. */
495 1.1 mrg enum vect_relevant {
496 1.1 mrg vect_unused_in_scope = 0,
497 1.1 mrg /* The def is in the inner loop, and the use is in the outer loop, and the
498 1.1 mrg use is a reduction stmt. */
499 1.1 mrg vect_used_in_outer_by_reduction,
500 1.1 mrg /* The def is in the inner loop, and the use is in the outer loop (and is
501 1.1 mrg not part of reduction). */
502 1.1 mrg vect_used_in_outer,
503 1.1 mrg
504 1.1 mrg /* defs that feed computations that end up (only) in a reduction. These
505 1.1 mrg defs may be used by non-reduction stmts, but eventually, any
506 1.1 mrg computations/values that are affected by these defs are used to compute
507 1.1 mrg a reduction (i.e. don't get stored to memory, for example). We use this
508 1.1 mrg to identify computations that we can change the order in which they are
509 1.1 mrg computed. */
510 1.1 mrg vect_used_by_reduction,
511 1.1 mrg
512 1.1 mrg vect_used_in_scope
513 1.1 mrg };
514 1.1 mrg
515 1.1 mrg /* The type of vectorization that can be applied to the stmt: regular loop-based
516 1.1 mrg vectorization; pure SLP - the stmt is a part of SLP instances and does not
517 1.1 mrg have uses outside SLP instances; or hybrid SLP and loop-based - the stmt is
518 1.1 mrg a part of SLP instance and also must be loop-based vectorized, since it has
519 1.1 mrg uses outside SLP sequences.
520 1.1 mrg
521 1.1 mrg In the loop context the meanings of pure and hybrid SLP are slightly
522 1.1 mrg different. By saying that pure SLP is applied to the loop, we mean that we
523 1.1 mrg exploit only intra-iteration parallelism in the loop; i.e., the loop can be
524 1.1 mrg vectorized without doing any conceptual unrolling, cause we don't pack
525 1.1 mrg together stmts from different iterations, only within a single iteration.
526 1.1 mrg Loop hybrid SLP means that we exploit both intra-iteration and
527 1.1 mrg inter-iteration parallelism (e.g., number of elements in the vector is 4
528 1.1 mrg and the slp-group-size is 2, in which case we don't have enough parallelism
529 1.1 mrg within an iteration, so we obtain the rest of the parallelism from subsequent
530 1.1 mrg iterations by unrolling the loop by 2). */
531 1.1 mrg enum slp_vect_type {
532 1.1 mrg loop_vect = 0,
533 1.1 mrg pure_slp,
534 1.1 mrg hybrid
535 1.1 mrg };
536 1.1 mrg
537 1.1 mrg
538 1.1 mrg typedef struct data_reference *dr_p;
539 1.1 mrg
540 1.1 mrg typedef struct _stmt_vec_info {
541 1.1 mrg
542 1.1 mrg enum stmt_vec_info_type type;
543 1.1 mrg
544 1.3 mrg /* Indicates whether this stmts is part of a computation whose result is
545 1.3 mrg used outside the loop. */
546 1.3 mrg bool live;
547 1.3 mrg
548 1.3 mrg /* Stmt is part of some pattern (computation idiom) */
549 1.3 mrg bool in_pattern_p;
550 1.3 mrg
551 1.1 mrg /* The stmt to which this info struct refers to. */
552 1.1 mrg gimple stmt;
553 1.1 mrg
554 1.1 mrg /* The loop_vec_info with respect to which STMT is vectorized. */
555 1.1 mrg loop_vec_info loop_vinfo;
556 1.1 mrg
557 1.3 mrg /* The vector type to be used for the LHS of this statement. */
558 1.1 mrg tree vectype;
559 1.1 mrg
560 1.1 mrg /* The vectorized version of the stmt. */
561 1.1 mrg gimple vectorized_stmt;
562 1.1 mrg
563 1.1 mrg
564 1.1 mrg /** The following is relevant only for stmts that contain a non-scalar
565 1.1 mrg data-ref (array/pointer/struct access). A GIMPLE stmt is expected to have
566 1.1 mrg at most one such data-ref. **/
567 1.1 mrg
568 1.1 mrg /* Information about the data-ref (access function, etc),
569 1.1 mrg relative to the inner-most containing loop. */
570 1.1 mrg struct data_reference *data_ref_info;
571 1.1 mrg
572 1.1 mrg /* Information about the data-ref relative to this loop
573 1.1 mrg nest (the loop that is being considered for vectorization). */
574 1.1 mrg tree dr_base_address;
575 1.1 mrg tree dr_init;
576 1.1 mrg tree dr_offset;
577 1.1 mrg tree dr_step;
578 1.1 mrg tree dr_aligned_to;
579 1.1 mrg
580 1.3 mrg /* For loop PHI nodes, the evolution part of it. This makes sure
581 1.3 mrg this information is still available in vect_update_ivs_after_vectorizer
582 1.3 mrg where we may not be able to re-analyze the PHI nodes evolution as
583 1.3 mrg peeling for the prologue loop can make it unanalyzable. The evolution
584 1.3 mrg part is still correct though. */
585 1.3 mrg tree loop_phi_evolution_part;
586 1.1 mrg
587 1.1 mrg /* Used for various bookkeeping purposes, generally holding a pointer to
588 1.1 mrg some other stmt S that is in some way "related" to this stmt.
589 1.1 mrg Current use of this field is:
590 1.1 mrg If this stmt is part of a pattern (i.e. the field 'in_pattern_p' is
591 1.1 mrg true): S is the "pattern stmt" that represents (and replaces) the
592 1.1 mrg sequence of stmts that constitutes the pattern. Similarly, the
593 1.1 mrg related_stmt of the "pattern stmt" points back to this stmt (which is
594 1.1 mrg the last stmt in the original sequence of stmts that constitutes the
595 1.1 mrg pattern). */
596 1.1 mrg gimple related_stmt;
597 1.1 mrg
598 1.3 mrg /* Used to keep a sequence of def stmts of a pattern stmt if such exists. */
599 1.3 mrg gimple_seq pattern_def_seq;
600 1.3 mrg
601 1.1 mrg /* List of datarefs that are known to have the same alignment as the dataref
602 1.1 mrg of this stmt. */
603 1.3 mrg vec<dr_p> same_align_refs;
604 1.1 mrg
605 1.5 mrg /* Selected SIMD clone's function info. First vector element
606 1.5 mrg is SIMD clone's function decl, followed by a pair of trees (base + step)
607 1.5 mrg for linear arguments (pair of NULLs for other arguments). */
608 1.5 mrg vec<tree> simd_clone_info;
609 1.5 mrg
610 1.1 mrg /* Classify the def of this stmt. */
611 1.1 mrg enum vect_def_type def_type;
612 1.1 mrg
613 1.3 mrg /* Whether the stmt is SLPed, loop-based vectorized, or both. */
614 1.3 mrg enum slp_vect_type slp_type;
615 1.3 mrg
616 1.3 mrg /* Interleaving and reduction chains info. */
617 1.3 mrg /* First element in the group. */
618 1.3 mrg gimple first_element;
619 1.3 mrg /* Pointer to the next element in the group. */
620 1.3 mrg gimple next_element;
621 1.3 mrg /* For data-refs, in case that two or more stmts share data-ref, this is the
622 1.3 mrg pointer to the previously detected stmt with the same dr. */
623 1.3 mrg gimple same_dr_stmt;
624 1.3 mrg /* The size of the group. */
625 1.1 mrg unsigned int size;
626 1.1 mrg /* For stores, number of stores from this group seen. We vectorize the last
627 1.1 mrg one. */
628 1.1 mrg unsigned int store_count;
629 1.1 mrg /* For loads only, the gap from the previous load. For consecutive loads, GAP
630 1.1 mrg is 1. */
631 1.1 mrg unsigned int gap;
632 1.1 mrg
633 1.3 mrg /* The minimum negative dependence distance this stmt participates in
634 1.3 mrg or zero if none. */
635 1.3 mrg unsigned int min_neg_dist;
636 1.1 mrg
637 1.3 mrg /* Not all stmts in the loop need to be vectorized. e.g, the increment
638 1.3 mrg of the loop induction variable and computation of array indexes. relevant
639 1.3 mrg indicates whether the stmt needs to be vectorized. */
640 1.3 mrg enum vect_relevant relevant;
641 1.1 mrg
642 1.1 mrg /* The bb_vec_info with respect to which STMT is vectorized. */
643 1.1 mrg bb_vec_info bb_vinfo;
644 1.3 mrg
645 1.3 mrg /* Is this statement vectorizable or should it be skipped in (partial)
646 1.3 mrg vectorization. */
647 1.3 mrg bool vectorizable;
648 1.3 mrg
649 1.3 mrg /* For loads only, true if this is a gather load. */
650 1.3 mrg bool gather_p;
651 1.3 mrg bool stride_load_p;
652 1.5 mrg
653 1.5 mrg /* For both loads and stores. */
654 1.5 mrg bool simd_lane_access_p;
655 1.1 mrg } *stmt_vec_info;
656 1.1 mrg
657 1.1 mrg /* Access Functions. */
658 1.1 mrg #define STMT_VINFO_TYPE(S) (S)->type
659 1.1 mrg #define STMT_VINFO_STMT(S) (S)->stmt
660 1.1 mrg #define STMT_VINFO_LOOP_VINFO(S) (S)->loop_vinfo
661 1.1 mrg #define STMT_VINFO_BB_VINFO(S) (S)->bb_vinfo
662 1.1 mrg #define STMT_VINFO_RELEVANT(S) (S)->relevant
663 1.1 mrg #define STMT_VINFO_LIVE_P(S) (S)->live
664 1.1 mrg #define STMT_VINFO_VECTYPE(S) (S)->vectype
665 1.1 mrg #define STMT_VINFO_VEC_STMT(S) (S)->vectorized_stmt
666 1.3 mrg #define STMT_VINFO_VECTORIZABLE(S) (S)->vectorizable
667 1.1 mrg #define STMT_VINFO_DATA_REF(S) (S)->data_ref_info
668 1.3 mrg #define STMT_VINFO_GATHER_P(S) (S)->gather_p
669 1.3 mrg #define STMT_VINFO_STRIDE_LOAD_P(S) (S)->stride_load_p
670 1.5 mrg #define STMT_VINFO_SIMD_LANE_ACCESS_P(S) (S)->simd_lane_access_p
671 1.1 mrg
672 1.1 mrg #define STMT_VINFO_DR_BASE_ADDRESS(S) (S)->dr_base_address
673 1.1 mrg #define STMT_VINFO_DR_INIT(S) (S)->dr_init
674 1.1 mrg #define STMT_VINFO_DR_OFFSET(S) (S)->dr_offset
675 1.1 mrg #define STMT_VINFO_DR_STEP(S) (S)->dr_step
676 1.1 mrg #define STMT_VINFO_DR_ALIGNED_TO(S) (S)->dr_aligned_to
677 1.1 mrg
678 1.1 mrg #define STMT_VINFO_IN_PATTERN_P(S) (S)->in_pattern_p
679 1.1 mrg #define STMT_VINFO_RELATED_STMT(S) (S)->related_stmt
680 1.3 mrg #define STMT_VINFO_PATTERN_DEF_SEQ(S) (S)->pattern_def_seq
681 1.1 mrg #define STMT_VINFO_SAME_ALIGN_REFS(S) (S)->same_align_refs
682 1.5 mrg #define STMT_VINFO_SIMD_CLONE_INFO(S) (S)->simd_clone_info
683 1.1 mrg #define STMT_VINFO_DEF_TYPE(S) (S)->def_type
684 1.3 mrg #define STMT_VINFO_GROUP_FIRST_ELEMENT(S) (S)->first_element
685 1.3 mrg #define STMT_VINFO_GROUP_NEXT_ELEMENT(S) (S)->next_element
686 1.3 mrg #define STMT_VINFO_GROUP_SIZE(S) (S)->size
687 1.3 mrg #define STMT_VINFO_GROUP_STORE_COUNT(S) (S)->store_count
688 1.3 mrg #define STMT_VINFO_GROUP_GAP(S) (S)->gap
689 1.3 mrg #define STMT_VINFO_GROUP_SAME_DR_STMT(S) (S)->same_dr_stmt
690 1.3 mrg #define STMT_VINFO_GROUPED_ACCESS(S) ((S)->first_element != NULL && (S)->data_ref_info)
691 1.3 mrg #define STMT_VINFO_LOOP_PHI_EVOLUTION_PART(S) (S)->loop_phi_evolution_part
692 1.3 mrg #define STMT_VINFO_MIN_NEG_DIST(S) (S)->min_neg_dist
693 1.3 mrg
694 1.3 mrg #define GROUP_FIRST_ELEMENT(S) (S)->first_element
695 1.3 mrg #define GROUP_NEXT_ELEMENT(S) (S)->next_element
696 1.3 mrg #define GROUP_SIZE(S) (S)->size
697 1.3 mrg #define GROUP_STORE_COUNT(S) (S)->store_count
698 1.3 mrg #define GROUP_GAP(S) (S)->gap
699 1.3 mrg #define GROUP_SAME_DR_STMT(S) (S)->same_dr_stmt
700 1.1 mrg
701 1.1 mrg #define STMT_VINFO_RELEVANT_P(S) ((S)->relevant != vect_unused_in_scope)
702 1.1 mrg
703 1.1 mrg #define HYBRID_SLP_STMT(S) ((S)->slp_type == hybrid)
704 1.1 mrg #define PURE_SLP_STMT(S) ((S)->slp_type == pure_slp)
705 1.1 mrg #define STMT_SLP_TYPE(S) (S)->slp_type
706 1.1 mrg
707 1.5 mrg struct dataref_aux {
708 1.5 mrg int misalignment;
709 1.5 mrg /* If true the alignment of base_decl needs to be increased. */
710 1.5 mrg bool base_misaligned;
711 1.5 mrg /* If true we know the base is at least vector element alignment aligned. */
712 1.5 mrg bool base_element_aligned;
713 1.5 mrg tree base_decl;
714 1.5 mrg };
715 1.5 mrg
716 1.5 mrg #define DR_VECT_AUX(dr) ((dataref_aux *)(dr)->aux)
717 1.5 mrg
718 1.3 mrg #define VECT_MAX_COST 1000
719 1.1 mrg
720 1.1 mrg /* The maximum number of intermediate steps required in multi-step type
721 1.1 mrg conversion. */
722 1.1 mrg #define MAX_INTERM_CVT_STEPS 3
723 1.1 mrg
724 1.5 mrg /* The maximum vectorization factor supported by any target (V64QI). */
725 1.5 mrg #define MAX_VECTORIZATION_FACTOR 64
726 1.3 mrg
727 1.1 mrg /* Avoid GTY(()) on stmt_vec_info. */
728 1.1 mrg typedef void *vec_void_p;
729 1.1 mrg
730 1.3 mrg extern vec<vec_void_p> stmt_vec_info_vec;
731 1.1 mrg
732 1.1 mrg void init_stmt_vec_info_vec (void);
733 1.1 mrg void free_stmt_vec_info_vec (void);
734 1.1 mrg
735 1.3 mrg /* Return a stmt_vec_info corresponding to STMT. */
736 1.3 mrg
737 1.1 mrg static inline stmt_vec_info
738 1.1 mrg vinfo_for_stmt (gimple stmt)
739 1.1 mrg {
740 1.1 mrg unsigned int uid = gimple_uid (stmt);
741 1.1 mrg if (uid == 0)
742 1.1 mrg return NULL;
743 1.1 mrg
744 1.3 mrg return (stmt_vec_info) stmt_vec_info_vec[uid - 1];
745 1.1 mrg }
746 1.1 mrg
747 1.3 mrg /* Set vectorizer information INFO for STMT. */
748 1.3 mrg
749 1.1 mrg static inline void
750 1.1 mrg set_vinfo_for_stmt (gimple stmt, stmt_vec_info info)
751 1.1 mrg {
752 1.1 mrg unsigned int uid = gimple_uid (stmt);
753 1.1 mrg if (uid == 0)
754 1.1 mrg {
755 1.3 mrg gcc_checking_assert (info);
756 1.3 mrg uid = stmt_vec_info_vec.length () + 1;
757 1.1 mrg gimple_set_uid (stmt, uid);
758 1.3 mrg stmt_vec_info_vec.safe_push ((vec_void_p) info);
759 1.1 mrg }
760 1.1 mrg else
761 1.3 mrg stmt_vec_info_vec[uid - 1] = (vec_void_p) info;
762 1.1 mrg }
763 1.1 mrg
764 1.3 mrg /* Return the earlier statement between STMT1 and STMT2. */
765 1.3 mrg
766 1.1 mrg static inline gimple
767 1.1 mrg get_earlier_stmt (gimple stmt1, gimple stmt2)
768 1.1 mrg {
769 1.1 mrg unsigned int uid1, uid2;
770 1.1 mrg
771 1.1 mrg if (stmt1 == NULL)
772 1.1 mrg return stmt2;
773 1.1 mrg
774 1.1 mrg if (stmt2 == NULL)
775 1.1 mrg return stmt1;
776 1.1 mrg
777 1.1 mrg uid1 = gimple_uid (stmt1);
778 1.1 mrg uid2 = gimple_uid (stmt2);
779 1.1 mrg
780 1.1 mrg if (uid1 == 0 || uid2 == 0)
781 1.1 mrg return NULL;
782 1.1 mrg
783 1.3 mrg gcc_checking_assert (uid1 <= stmt_vec_info_vec.length ()
784 1.3 mrg && uid2 <= stmt_vec_info_vec.length ());
785 1.1 mrg
786 1.1 mrg if (uid1 < uid2)
787 1.1 mrg return stmt1;
788 1.1 mrg else
789 1.1 mrg return stmt2;
790 1.1 mrg }
791 1.1 mrg
792 1.3 mrg /* Return the later statement between STMT1 and STMT2. */
793 1.3 mrg
794 1.3 mrg static inline gimple
795 1.3 mrg get_later_stmt (gimple stmt1, gimple stmt2)
796 1.3 mrg {
797 1.3 mrg unsigned int uid1, uid2;
798 1.3 mrg
799 1.3 mrg if (stmt1 == NULL)
800 1.3 mrg return stmt2;
801 1.3 mrg
802 1.3 mrg if (stmt2 == NULL)
803 1.3 mrg return stmt1;
804 1.3 mrg
805 1.3 mrg uid1 = gimple_uid (stmt1);
806 1.3 mrg uid2 = gimple_uid (stmt2);
807 1.3 mrg
808 1.3 mrg if (uid1 == 0 || uid2 == 0)
809 1.3 mrg return NULL;
810 1.3 mrg
811 1.3 mrg gcc_assert (uid1 <= stmt_vec_info_vec.length ());
812 1.3 mrg gcc_assert (uid2 <= stmt_vec_info_vec.length ());
813 1.3 mrg
814 1.3 mrg if (uid1 > uid2)
815 1.3 mrg return stmt1;
816 1.3 mrg else
817 1.3 mrg return stmt2;
818 1.3 mrg }
819 1.3 mrg
820 1.3 mrg /* Return TRUE if a statement represented by STMT_INFO is a part of a
821 1.3 mrg pattern. */
822 1.3 mrg
823 1.1 mrg static inline bool
824 1.1 mrg is_pattern_stmt_p (stmt_vec_info stmt_info)
825 1.1 mrg {
826 1.1 mrg gimple related_stmt;
827 1.1 mrg stmt_vec_info related_stmt_info;
828 1.1 mrg
829 1.1 mrg related_stmt = STMT_VINFO_RELATED_STMT (stmt_info);
830 1.1 mrg if (related_stmt
831 1.1 mrg && (related_stmt_info = vinfo_for_stmt (related_stmt))
832 1.1 mrg && STMT_VINFO_IN_PATTERN_P (related_stmt_info))
833 1.1 mrg return true;
834 1.1 mrg
835 1.1 mrg return false;
836 1.1 mrg }
837 1.1 mrg
838 1.3 mrg /* Return true if BB is a loop header. */
839 1.3 mrg
840 1.1 mrg static inline bool
841 1.1 mrg is_loop_header_bb_p (basic_block bb)
842 1.1 mrg {
843 1.1 mrg if (bb == (bb->loop_father)->header)
844 1.1 mrg return true;
845 1.3 mrg gcc_checking_assert (EDGE_COUNT (bb->preds) == 1);
846 1.1 mrg return false;
847 1.1 mrg }
848 1.1 mrg
849 1.3 mrg /* Return pow2 (X). */
850 1.1 mrg
851 1.1 mrg static inline int
852 1.1 mrg vect_pow2 (int x)
853 1.1 mrg {
854 1.1 mrg int i, res = 1;
855 1.1 mrg
856 1.1 mrg for (i = 0; i < x; i++)
857 1.1 mrg res *= 2;
858 1.1 mrg
859 1.1 mrg return res;
860 1.1 mrg }
861 1.1 mrg
862 1.3 mrg /* Alias targetm.vectorize.builtin_vectorization_cost. */
863 1.3 mrg
864 1.3 mrg static inline int
865 1.3 mrg builtin_vectorization_cost (enum vect_cost_for_stmt type_of_cost,
866 1.3 mrg tree vectype, int misalign)
867 1.3 mrg {
868 1.3 mrg return targetm.vectorize.builtin_vectorization_cost (type_of_cost,
869 1.3 mrg vectype, misalign);
870 1.3 mrg }
871 1.3 mrg
872 1.3 mrg /* Get cost by calling cost target builtin. */
873 1.3 mrg
874 1.3 mrg static inline
875 1.3 mrg int vect_get_stmt_cost (enum vect_cost_for_stmt type_of_cost)
876 1.3 mrg {
877 1.3 mrg return builtin_vectorization_cost (type_of_cost, NULL, 0);
878 1.3 mrg }
879 1.3 mrg
880 1.3 mrg /* Alias targetm.vectorize.init_cost. */
881 1.3 mrg
882 1.3 mrg static inline void *
883 1.3 mrg init_cost (struct loop *loop_info)
884 1.3 mrg {
885 1.3 mrg return targetm.vectorize.init_cost (loop_info);
886 1.3 mrg }
887 1.3 mrg
888 1.3 mrg /* Alias targetm.vectorize.add_stmt_cost. */
889 1.3 mrg
890 1.3 mrg static inline unsigned
891 1.3 mrg add_stmt_cost (void *data, int count, enum vect_cost_for_stmt kind,
892 1.3 mrg stmt_vec_info stmt_info, int misalign,
893 1.3 mrg enum vect_cost_model_location where)
894 1.3 mrg {
895 1.3 mrg return targetm.vectorize.add_stmt_cost (data, count, kind,
896 1.3 mrg stmt_info, misalign, where);
897 1.3 mrg }
898 1.3 mrg
899 1.3 mrg /* Alias targetm.vectorize.finish_cost. */
900 1.3 mrg
901 1.3 mrg static inline void
902 1.3 mrg finish_cost (void *data, unsigned *prologue_cost,
903 1.3 mrg unsigned *body_cost, unsigned *epilogue_cost)
904 1.3 mrg {
905 1.3 mrg targetm.vectorize.finish_cost (data, prologue_cost, body_cost, epilogue_cost);
906 1.3 mrg }
907 1.3 mrg
908 1.3 mrg /* Alias targetm.vectorize.destroy_cost_data. */
909 1.3 mrg
910 1.3 mrg static inline void
911 1.3 mrg destroy_cost_data (void *data)
912 1.3 mrg {
913 1.3 mrg targetm.vectorize.destroy_cost_data (data);
914 1.3 mrg }
915 1.3 mrg
916 1.1 mrg /*-----------------------------------------------------------------*/
917 1.1 mrg /* Info on data references alignment. */
918 1.1 mrg /*-----------------------------------------------------------------*/
919 1.5 mrg inline void
920 1.5 mrg set_dr_misalignment (struct data_reference *dr, int val)
921 1.5 mrg {
922 1.5 mrg dataref_aux *data_aux = DR_VECT_AUX (dr);
923 1.5 mrg
924 1.5 mrg if (!data_aux)
925 1.5 mrg {
926 1.5 mrg data_aux = XCNEW (dataref_aux);
927 1.5 mrg dr->aux = data_aux;
928 1.5 mrg }
929 1.5 mrg
930 1.5 mrg data_aux->misalignment = val;
931 1.5 mrg }
932 1.5 mrg
933 1.5 mrg inline int
934 1.5 mrg dr_misalignment (struct data_reference *dr)
935 1.5 mrg {
936 1.5 mrg return DR_VECT_AUX (dr)->misalignment;
937 1.5 mrg }
938 1.1 mrg
939 1.1 mrg /* Reflects actual alignment of first access in the vectorized loop,
940 1.1 mrg taking into account peeling/versioning if applied. */
941 1.5 mrg #define DR_MISALIGNMENT(DR) dr_misalignment (DR)
942 1.5 mrg #define SET_DR_MISALIGNMENT(DR, VAL) set_dr_misalignment (DR, VAL)
943 1.1 mrg
944 1.3 mrg /* Return TRUE if the data access is aligned, and FALSE otherwise. */
945 1.3 mrg
946 1.1 mrg static inline bool
947 1.1 mrg aligned_access_p (struct data_reference *data_ref_info)
948 1.1 mrg {
949 1.1 mrg return (DR_MISALIGNMENT (data_ref_info) == 0);
950 1.1 mrg }
951 1.1 mrg
952 1.3 mrg /* Return TRUE if the alignment of the data access is known, and FALSE
953 1.3 mrg otherwise. */
954 1.3 mrg
955 1.1 mrg static inline bool
956 1.1 mrg known_alignment_for_access_p (struct data_reference *data_ref_info)
957 1.1 mrg {
958 1.1 mrg return (DR_MISALIGNMENT (data_ref_info) != -1);
959 1.1 mrg }
960 1.1 mrg
961 1.5 mrg
962 1.5 mrg /* Return true if the vect cost model is unlimited. */
963 1.5 mrg static inline bool
964 1.5 mrg unlimited_cost_model (loop_p loop)
965 1.5 mrg {
966 1.5 mrg if (loop != NULL && loop->force_vectorize
967 1.5 mrg && flag_simd_cost_model != VECT_COST_MODEL_DEFAULT)
968 1.5 mrg return flag_simd_cost_model == VECT_COST_MODEL_UNLIMITED;
969 1.5 mrg return (flag_vect_cost_model == VECT_COST_MODEL_UNLIMITED);
970 1.5 mrg }
971 1.5 mrg
972 1.3 mrg /* Source location */
973 1.5 mrg extern source_location vect_location;
974 1.1 mrg
975 1.1 mrg /*-----------------------------------------------------------------*/
976 1.1 mrg /* Function prototypes. */
977 1.1 mrg /*-----------------------------------------------------------------*/
978 1.1 mrg
979 1.1 mrg /* Simple loop peeling and versioning utilities for vectorizer's purposes -
980 1.1 mrg in tree-vect-loop-manip.c. */
981 1.1 mrg extern void slpeel_make_loop_iterate_ntimes (struct loop *, tree);
982 1.1 mrg extern bool slpeel_can_duplicate_loop_p (const struct loop *, const_edge);
983 1.5 mrg struct loop *slpeel_tree_duplicate_loop_to_edge_cfg (struct loop *,
984 1.5 mrg struct loop *, edge);
985 1.3 mrg extern void vect_loop_versioning (loop_vec_info, unsigned int, bool);
986 1.5 mrg extern void vect_do_peeling_for_loop_bound (loop_vec_info, tree, tree,
987 1.3 mrg unsigned int, bool);
988 1.5 mrg extern void vect_do_peeling_for_alignment (loop_vec_info, tree,
989 1.5 mrg unsigned int, bool);
990 1.5 mrg extern source_location find_loop_location (struct loop *);
991 1.1 mrg extern bool vect_can_advance_ivs_p (loop_vec_info);
992 1.1 mrg
993 1.1 mrg /* In tree-vect-stmts.c. */
994 1.3 mrg extern unsigned int current_vector_size;
995 1.1 mrg extern tree get_vectype_for_scalar_type (tree);
996 1.3 mrg extern tree get_same_sized_vectype (tree, tree);
997 1.3 mrg extern bool vect_is_simple_use (tree, gimple, loop_vec_info,
998 1.3 mrg bb_vec_info, gimple *,
999 1.1 mrg tree *, enum vect_def_type *);
1000 1.3 mrg extern bool vect_is_simple_use_1 (tree, gimple, loop_vec_info,
1001 1.3 mrg bb_vec_info, gimple *,
1002 1.3 mrg tree *, enum vect_def_type *, tree *);
1003 1.3 mrg extern bool supportable_widening_operation (enum tree_code, gimple, tree, tree,
1004 1.3 mrg enum tree_code *, enum tree_code *,
1005 1.3 mrg int *, vec<tree> *);
1006 1.3 mrg extern bool supportable_narrowing_operation (enum tree_code, tree, tree,
1007 1.3 mrg enum tree_code *,
1008 1.3 mrg int *, vec<tree> *);
1009 1.1 mrg extern stmt_vec_info new_stmt_vec_info (gimple stmt, loop_vec_info,
1010 1.1 mrg bb_vec_info);
1011 1.1 mrg extern void free_stmt_vec_info (gimple stmt);
1012 1.5 mrg extern tree vectorizable_function (gcall *, tree, tree);
1013 1.1 mrg extern void vect_model_simple_cost (stmt_vec_info, int, enum vect_def_type *,
1014 1.3 mrg stmt_vector_for_cost *,
1015 1.3 mrg stmt_vector_for_cost *);
1016 1.3 mrg extern void vect_model_store_cost (stmt_vec_info, int, bool,
1017 1.3 mrg enum vect_def_type, slp_tree,
1018 1.3 mrg stmt_vector_for_cost *,
1019 1.3 mrg stmt_vector_for_cost *);
1020 1.3 mrg extern void vect_model_load_cost (stmt_vec_info, int, bool, slp_tree,
1021 1.3 mrg stmt_vector_for_cost *,
1022 1.3 mrg stmt_vector_for_cost *);
1023 1.3 mrg extern unsigned record_stmt_cost (stmt_vector_for_cost *, int,
1024 1.3 mrg enum vect_cost_for_stmt, stmt_vec_info,
1025 1.3 mrg int, enum vect_cost_model_location);
1026 1.1 mrg extern void vect_finish_stmt_generation (gimple, gimple,
1027 1.1 mrg gimple_stmt_iterator *);
1028 1.1 mrg extern bool vect_mark_stmts_to_be_vectorized (loop_vec_info);
1029 1.1 mrg extern tree vect_get_vec_def_for_operand (tree, gimple, tree *);
1030 1.1 mrg extern tree vect_init_vector (gimple, tree, tree,
1031 1.1 mrg gimple_stmt_iterator *);
1032 1.1 mrg extern tree vect_get_vec_def_for_stmt_copy (enum vect_def_type, tree);
1033 1.1 mrg extern bool vect_transform_stmt (gimple, gimple_stmt_iterator *,
1034 1.1 mrg bool *, slp_tree, slp_instance);
1035 1.1 mrg extern void vect_remove_stores (gimple);
1036 1.1 mrg extern bool vect_analyze_stmt (gimple, bool *, slp_tree);
1037 1.1 mrg extern bool vectorizable_condition (gimple, gimple_stmt_iterator *, gimple *,
1038 1.3 mrg tree, int, slp_tree);
1039 1.3 mrg extern void vect_get_load_cost (struct data_reference *, int, bool,
1040 1.3 mrg unsigned int *, unsigned int *,
1041 1.3 mrg stmt_vector_for_cost *,
1042 1.3 mrg stmt_vector_for_cost *, bool);
1043 1.3 mrg extern void vect_get_store_cost (struct data_reference *, int,
1044 1.3 mrg unsigned int *, stmt_vector_for_cost *);
1045 1.3 mrg extern bool vect_supportable_shift (enum tree_code, tree);
1046 1.3 mrg extern void vect_get_vec_defs (tree, tree, gimple, vec<tree> *,
1047 1.3 mrg vec<tree> *, slp_tree, int);
1048 1.5 mrg extern tree vect_gen_perm_mask_any (tree, const unsigned char *);
1049 1.5 mrg extern tree vect_gen_perm_mask_checked (tree, const unsigned char *);
1050 1.1 mrg
1051 1.1 mrg /* In tree-vect-data-refs.c. */
1052 1.1 mrg extern bool vect_can_force_dr_alignment_p (const_tree, unsigned int);
1053 1.1 mrg extern enum dr_alignment_support vect_supportable_dr_alignment
1054 1.3 mrg (struct data_reference *, bool);
1055 1.1 mrg extern tree vect_get_smallest_scalar_type (gimple, HOST_WIDE_INT *,
1056 1.1 mrg HOST_WIDE_INT *);
1057 1.5 mrg extern bool vect_analyze_data_ref_dependences (loop_vec_info, int *);
1058 1.5 mrg extern bool vect_slp_analyze_data_ref_dependences (bb_vec_info);
1059 1.1 mrg extern bool vect_enhance_data_refs_alignment (loop_vec_info);
1060 1.1 mrg extern bool vect_analyze_data_refs_alignment (loop_vec_info, bb_vec_info);
1061 1.1 mrg extern bool vect_verify_datarefs_alignment (loop_vec_info, bb_vec_info);
1062 1.1 mrg extern bool vect_analyze_data_ref_accesses (loop_vec_info, bb_vec_info);
1063 1.1 mrg extern bool vect_prune_runtime_alias_test_list (loop_vec_info);
1064 1.3 mrg extern tree vect_check_gather (gimple, loop_vec_info, tree *, tree *,
1065 1.3 mrg int *);
1066 1.5 mrg extern bool vect_analyze_data_refs (loop_vec_info, bb_vec_info, int *,
1067 1.5 mrg unsigned *);
1068 1.3 mrg extern tree vect_create_data_ref_ptr (gimple, tree, struct loop *, tree,
1069 1.3 mrg tree *, gimple_stmt_iterator *,
1070 1.3 mrg gimple *, bool, bool *,
1071 1.3 mrg tree = NULL_TREE);
1072 1.1 mrg extern tree bump_vector_ptr (tree, gimple, gimple_stmt_iterator *, gimple, tree);
1073 1.1 mrg extern tree vect_create_destination_var (tree, tree);
1074 1.3 mrg extern bool vect_grouped_store_supported (tree, unsigned HOST_WIDE_INT);
1075 1.3 mrg extern bool vect_store_lanes_supported (tree, unsigned HOST_WIDE_INT);
1076 1.3 mrg extern bool vect_grouped_load_supported (tree, unsigned HOST_WIDE_INT);
1077 1.3 mrg extern bool vect_load_lanes_supported (tree, unsigned HOST_WIDE_INT);
1078 1.3 mrg extern void vect_permute_store_chain (vec<tree> ,unsigned int, gimple,
1079 1.3 mrg gimple_stmt_iterator *, vec<tree> *);
1080 1.1 mrg extern tree vect_setup_realignment (gimple, gimple_stmt_iterator *, tree *,
1081 1.1 mrg enum dr_alignment_support, tree,
1082 1.1 mrg struct loop **);
1083 1.3 mrg extern void vect_transform_grouped_load (gimple, vec<tree> , int,
1084 1.1 mrg gimple_stmt_iterator *);
1085 1.3 mrg extern void vect_record_grouped_load_vectors (gimple, vec<tree> );
1086 1.1 mrg extern tree vect_get_new_vect_var (tree, enum vect_var_kind, const char *);
1087 1.1 mrg extern tree vect_create_addr_base_for_vector_ref (gimple, gimple_seq *,
1088 1.3 mrg tree, struct loop *,
1089 1.3 mrg tree = NULL_TREE);
1090 1.1 mrg
1091 1.1 mrg /* In tree-vect-loop.c. */
1092 1.1 mrg /* FORNOW: Used in tree-parloops.c. */
1093 1.1 mrg extern void destroy_loop_vec_info (loop_vec_info, bool);
1094 1.3 mrg extern gimple vect_force_simple_reduction (loop_vec_info, gimple, bool, bool *);
1095 1.1 mrg /* Drive for loop analysis stage. */
1096 1.1 mrg extern loop_vec_info vect_analyze_loop (struct loop *);
1097 1.1 mrg /* Drive for loop transformation stage. */
1098 1.1 mrg extern void vect_transform_loop (loop_vec_info);
1099 1.1 mrg extern loop_vec_info vect_analyze_loop_form (struct loop *);
1100 1.1 mrg extern bool vectorizable_live_operation (gimple, gimple_stmt_iterator *,
1101 1.1 mrg gimple *);
1102 1.3 mrg extern bool vectorizable_reduction (gimple, gimple_stmt_iterator *, gimple *,
1103 1.3 mrg slp_tree);
1104 1.1 mrg extern bool vectorizable_induction (gimple, gimple_stmt_iterator *, gimple *);
1105 1.1 mrg extern tree get_initial_def_for_reduction (gimple, tree, tree *);
1106 1.1 mrg extern int vect_min_worthwhile_factor (enum tree_code);
1107 1.5 mrg extern int vect_get_known_peeling_cost (loop_vec_info, int, int *,
1108 1.5 mrg stmt_vector_for_cost *,
1109 1.3 mrg stmt_vector_for_cost *,
1110 1.3 mrg stmt_vector_for_cost *);
1111 1.5 mrg extern int vect_get_single_scalar_iteration_cost (loop_vec_info,
1112 1.5 mrg stmt_vector_for_cost *);
1113 1.1 mrg
1114 1.1 mrg /* In tree-vect-slp.c. */
1115 1.1 mrg extern void vect_free_slp_instance (slp_instance);
1116 1.5 mrg extern bool vect_transform_slp_perm_load (slp_tree, vec<tree> ,
1117 1.1 mrg gimple_stmt_iterator *, int,
1118 1.1 mrg slp_instance, bool);
1119 1.1 mrg extern bool vect_schedule_slp (loop_vec_info, bb_vec_info);
1120 1.1 mrg extern void vect_update_slp_costs_according_to_vf (loop_vec_info);
1121 1.5 mrg extern bool vect_analyze_slp (loop_vec_info, bb_vec_info, unsigned);
1122 1.3 mrg extern bool vect_make_slp_decision (loop_vec_info);
1123 1.1 mrg extern void vect_detect_hybrid_slp (loop_vec_info);
1124 1.3 mrg extern void vect_get_slp_defs (vec<tree> , slp_tree,
1125 1.3 mrg vec<vec<tree> > *, int);
1126 1.3 mrg
1127 1.5 mrg extern source_location find_bb_location (basic_block);
1128 1.1 mrg extern bb_vec_info vect_slp_analyze_bb (basic_block);
1129 1.1 mrg extern void vect_slp_transform_bb (basic_block);
1130 1.1 mrg
1131 1.1 mrg /* In tree-vect-patterns.c. */
1132 1.1 mrg /* Pattern recognition functions.
1133 1.1 mrg Additional pattern recognition functions can (and will) be added
1134 1.1 mrg in the future. */
1135 1.3 mrg typedef gimple (* vect_recog_func_ptr) (vec<gimple> *, tree *, tree *);
1136 1.5 mrg #define NUM_PATTERNS 12
1137 1.3 mrg void vect_pattern_recog (loop_vec_info, bb_vec_info);
1138 1.1 mrg
1139 1.1 mrg /* In tree-vectorizer.c. */
1140 1.1 mrg unsigned vectorize_loops (void);
1141 1.5 mrg void vect_destroy_datarefs (loop_vec_info, bb_vec_info);
1142 1.1 mrg
1143 1.1 mrg #endif /* GCC_TREE_VECTORIZER_H */
1144