1 1.1 mrg /* Vectorizer 2 1.12 mrg Copyright (C) 2003-2022 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 1.11 mrg typedef class _stmt_vec_info *stmt_vec_info; 25 1.12 mrg typedef struct _slp_tree *slp_tree; 26 1.10 mrg 27 1.1 mrg #include "tree-data-ref.h" 28 1.9 mrg #include "tree-hash-traits.h" 29 1.3 mrg #include "target.h" 30 1.12 mrg #include "internal-fn.h" 31 1.12 mrg #include "tree-ssa-operands.h" 32 1.12 mrg #include "gimple-match.h" 33 1.1 mrg 34 1.1 mrg /* Used for naming of new temporaries. */ 35 1.1 mrg enum vect_var_kind { 36 1.1 mrg vect_simple_var, 37 1.1 mrg vect_pointer_var, 38 1.6 mrg vect_scalar_var, 39 1.6 mrg vect_mask_var 40 1.1 mrg }; 41 1.1 mrg 42 1.1 mrg /* Defines type of operation. */ 43 1.1 mrg enum operation_type { 44 1.1 mrg unary_op = 1, 45 1.1 mrg binary_op, 46 1.1 mrg ternary_op 47 1.1 mrg }; 48 1.1 mrg 49 1.1 mrg /* Define type of available alignment support. */ 50 1.1 mrg enum dr_alignment_support { 51 1.1 mrg dr_unaligned_unsupported, 52 1.1 mrg dr_unaligned_supported, 53 1.1 mrg dr_explicit_realign, 54 1.1 mrg dr_explicit_realign_optimized, 55 1.1 mrg dr_aligned 56 1.1 mrg }; 57 1.1 mrg 58 1.1 mrg /* Define type of def-use cross-iteration cycle. */ 59 1.1 mrg enum vect_def_type { 60 1.1 mrg vect_uninitialized_def = 0, 61 1.1 mrg vect_constant_def = 1, 62 1.1 mrg vect_external_def, 63 1.1 mrg vect_internal_def, 64 1.1 mrg vect_induction_def, 65 1.1 mrg vect_reduction_def, 66 1.1 mrg vect_double_reduction_def, 67 1.1 mrg vect_nested_cycle, 68 1.1 mrg vect_unknown_def_type 69 1.1 mrg }; 70 1.1 mrg 71 1.6 mrg /* Define type of reduction. */ 72 1.6 mrg enum vect_reduction_type { 73 1.6 mrg TREE_CODE_REDUCTION, 74 1.6 mrg COND_REDUCTION, 75 1.8 mrg INTEGER_INDUC_COND_REDUCTION, 76 1.9 mrg CONST_COND_REDUCTION, 77 1.9 mrg 78 1.9 mrg /* Retain a scalar phi and use a FOLD_EXTRACT_LAST within the loop 79 1.9 mrg to implement: 80 1.9 mrg 81 1.9 mrg for (int i = 0; i < VF; ++i) 82 1.9 mrg res = cond[i] ? val[i] : res; */ 83 1.9 mrg EXTRACT_LAST_REDUCTION, 84 1.9 mrg 85 1.9 mrg /* Use a folding reduction within the loop to implement: 86 1.9 mrg 87 1.9 mrg for (int i = 0; i < VF; ++i) 88 1.9 mrg res = res OP val[i]; 89 1.9 mrg 90 1.9 mrg (with no reassocation). */ 91 1.9 mrg FOLD_LEFT_REDUCTION 92 1.6 mrg }; 93 1.6 mrg 94 1.1 mrg #define VECTORIZABLE_CYCLE_DEF(D) (((D) == vect_reduction_def) \ 95 1.1 mrg || ((D) == vect_double_reduction_def) \ 96 1.1 mrg || ((D) == vect_nested_cycle)) 97 1.1 mrg 98 1.3 mrg /* Structure to encapsulate information about a group of like 99 1.3 mrg instructions to be presented to the target cost model. */ 100 1.6 mrg struct stmt_info_for_cost { 101 1.3 mrg int count; 102 1.3 mrg enum vect_cost_for_stmt kind; 103 1.10 mrg enum vect_cost_model_location where; 104 1.10 mrg stmt_vec_info stmt_info; 105 1.12 mrg slp_tree node; 106 1.12 mrg tree vectype; 107 1.3 mrg int misalign; 108 1.6 mrg }; 109 1.3 mrg 110 1.3 mrg typedef vec<stmt_info_for_cost> stmt_vector_for_cost; 111 1.3 mrg 112 1.12 mrg /* Maps base addresses to an innermost_loop_behavior and the stmt it was 113 1.12 mrg derived from that gives the maximum known alignment for that base. */ 114 1.9 mrg typedef hash_map<tree_operand_hash, 115 1.12 mrg std::pair<stmt_vec_info, innermost_loop_behavior *> > 116 1.12 mrg vec_base_alignments; 117 1.12 mrg 118 1.12 mrg /* Represents elements [START, START + LENGTH) of cyclical array OPS* 119 1.12 mrg (i.e. OPS repeated to give at least START + LENGTH elements) */ 120 1.12 mrg struct vect_scalar_ops_slice 121 1.12 mrg { 122 1.12 mrg tree op (unsigned int i) const; 123 1.12 mrg bool all_same_p () const; 124 1.12 mrg 125 1.12 mrg vec<tree> *ops; 126 1.12 mrg unsigned int start; 127 1.12 mrg unsigned int length; 128 1.12 mrg }; 129 1.12 mrg 130 1.12 mrg /* Return element I of the slice. */ 131 1.12 mrg inline tree 132 1.12 mrg vect_scalar_ops_slice::op (unsigned int i) const 133 1.12 mrg { 134 1.12 mrg return (*ops)[(i + start) % ops->length ()]; 135 1.12 mrg } 136 1.12 mrg 137 1.12 mrg /* Hash traits for vect_scalar_ops_slice. */ 138 1.12 mrg struct vect_scalar_ops_slice_hash : typed_noop_remove<vect_scalar_ops_slice> 139 1.12 mrg { 140 1.12 mrg typedef vect_scalar_ops_slice value_type; 141 1.12 mrg typedef vect_scalar_ops_slice compare_type; 142 1.12 mrg 143 1.12 mrg static const bool empty_zero_p = true; 144 1.12 mrg 145 1.12 mrg static void mark_deleted (value_type &s) { s.length = ~0U; } 146 1.12 mrg static void mark_empty (value_type &s) { s.length = 0; } 147 1.12 mrg static bool is_deleted (const value_type &s) { return s.length == ~0U; } 148 1.12 mrg static bool is_empty (const value_type &s) { return s.length == 0; } 149 1.12 mrg static hashval_t hash (const value_type &); 150 1.12 mrg static bool equal (const value_type &, const compare_type &); 151 1.12 mrg }; 152 1.9 mrg 153 1.1 mrg /************************************************************************ 154 1.1 mrg SLP 155 1.1 mrg ************************************************************************/ 156 1.12 mrg typedef vec<std::pair<unsigned, unsigned> > lane_permutation_t; 157 1.12 mrg typedef vec<unsigned> load_permutation_t; 158 1.1 mrg 159 1.3 mrg /* A computation tree of an SLP instance. Each node corresponds to a group of 160 1.1 mrg stmts to be packed in a SIMD stmt. */ 161 1.5 mrg struct _slp_tree { 162 1.12 mrg _slp_tree (); 163 1.12 mrg ~_slp_tree (); 164 1.12 mrg 165 1.3 mrg /* Nodes that contain def-stmts of this node statements operands. */ 166 1.5 mrg vec<slp_tree> children; 167 1.12 mrg 168 1.1 mrg /* A group of scalar stmts to be vectorized together. */ 169 1.10 mrg vec<stmt_vec_info> stmts; 170 1.11 mrg /* A group of scalar operands to be vectorized together. */ 171 1.11 mrg vec<tree> ops; 172 1.12 mrg /* The representative that should be used for analysis and 173 1.12 mrg code generation. */ 174 1.12 mrg stmt_vec_info representative; 175 1.12 mrg 176 1.5 mrg /* Load permutation relative to the stores, NULL if there is no 177 1.5 mrg permutation. */ 178 1.12 mrg load_permutation_t load_permutation; 179 1.12 mrg /* Lane permutation of the operands scalar lanes encoded as pairs 180 1.12 mrg of { operand number, lane number }. The number of elements 181 1.12 mrg denotes the number of output lanes. */ 182 1.12 mrg lane_permutation_t lane_permutation; 183 1.12 mrg 184 1.12 mrg tree vectype; 185 1.1 mrg /* Vectorized stmt/s. */ 186 1.12 mrg vec<gimple *> vec_stmts; 187 1.12 mrg vec<tree> vec_defs; 188 1.1 mrg /* Number of vector stmts that are created to replace the group of scalar 189 1.1 mrg stmts. It is calculated during the transformation phase as the number of 190 1.1 mrg scalar elements in one scalar iteration (GROUP_SIZE) multiplied by VF 191 1.1 mrg divided by vector size. */ 192 1.1 mrg unsigned int vec_stmts_size; 193 1.12 mrg 194 1.10 mrg /* Reference count in the SLP graph. */ 195 1.10 mrg unsigned int refcnt; 196 1.10 mrg /* The maximum number of vector elements for the subtree rooted 197 1.10 mrg at this node. */ 198 1.10 mrg poly_uint64 max_nunits; 199 1.6 mrg /* The DEF type of this node. */ 200 1.6 mrg enum vect_def_type def_type; 201 1.12 mrg /* The number of scalar lanes produced by this node. */ 202 1.12 mrg unsigned int lanes; 203 1.12 mrg /* The operation of this node. */ 204 1.12 mrg enum tree_code code; 205 1.12 mrg 206 1.12 mrg int vertex; 207 1.12 mrg 208 1.12 mrg /* If not NULL this is a cached failed SLP discovery attempt with 209 1.12 mrg the lanes that failed during SLP discovery as 'false'. This is 210 1.12 mrg a copy of the matches array. */ 211 1.12 mrg bool *failed; 212 1.12 mrg 213 1.12 mrg /* Allocate from slp_tree_pool. */ 214 1.12 mrg static void *operator new (size_t); 215 1.12 mrg 216 1.12 mrg /* Return memory to slp_tree_pool. */ 217 1.12 mrg static void operator delete (void *, size_t); 218 1.12 mrg 219 1.12 mrg /* Linked list of nodes to release when we free the slp_tree_pool. */ 220 1.12 mrg slp_tree next_node; 221 1.12 mrg slp_tree prev_node; 222 1.12 mrg }; 223 1.12 mrg 224 1.12 mrg /* The enum describes the type of operations that an SLP instance 225 1.12 mrg can perform. */ 226 1.12 mrg 227 1.12 mrg enum slp_instance_kind { 228 1.12 mrg slp_inst_kind_store, 229 1.12 mrg slp_inst_kind_reduc_group, 230 1.12 mrg slp_inst_kind_reduc_chain, 231 1.12 mrg slp_inst_kind_bb_reduc, 232 1.12 mrg slp_inst_kind_ctor 233 1.5 mrg }; 234 1.1 mrg 235 1.1 mrg /* SLP instance is a sequence of stmts in a loop that can be packed into 236 1.1 mrg SIMD stmts. */ 237 1.11 mrg typedef class _slp_instance { 238 1.11 mrg public: 239 1.1 mrg /* The root of SLP tree. */ 240 1.1 mrg slp_tree root; 241 1.1 mrg 242 1.11 mrg /* For vector constructors, the constructor stmt that the SLP tree is built 243 1.11 mrg from, NULL otherwise. */ 244 1.12 mrg vec<stmt_vec_info> root_stmts; 245 1.1 mrg 246 1.1 mrg /* The unrolling factor required to vectorized this SLP instance. */ 247 1.9 mrg poly_uint64 unrolling_factor; 248 1.1 mrg 249 1.1 mrg /* The group of nodes that contain loads of this SLP instance. */ 250 1.3 mrg vec<slp_tree> loads; 251 1.9 mrg 252 1.9 mrg /* The SLP node containing the reduction PHIs. */ 253 1.9 mrg slp_tree reduc_phis; 254 1.12 mrg 255 1.12 mrg /* Vector cost of this entry to the SLP graph. */ 256 1.12 mrg stmt_vector_for_cost cost_vec; 257 1.12 mrg 258 1.12 mrg /* If this instance is the main entry of a subgraph the set of 259 1.12 mrg entries into the same subgraph, including itself. */ 260 1.12 mrg vec<_slp_instance *> subgraph_entries; 261 1.12 mrg 262 1.12 mrg /* The type of operation the SLP instance is performing. */ 263 1.12 mrg slp_instance_kind kind; 264 1.12 mrg 265 1.12 mrg dump_user_location_t location () const; 266 1.1 mrg } *slp_instance; 267 1.1 mrg 268 1.1 mrg 269 1.1 mrg /* Access Functions. */ 270 1.1 mrg #define SLP_INSTANCE_TREE(S) (S)->root 271 1.1 mrg #define SLP_INSTANCE_UNROLLING_FACTOR(S) (S)->unrolling_factor 272 1.1 mrg #define SLP_INSTANCE_LOADS(S) (S)->loads 273 1.12 mrg #define SLP_INSTANCE_ROOT_STMTS(S) (S)->root_stmts 274 1.12 mrg #define SLP_INSTANCE_KIND(S) (S)->kind 275 1.1 mrg 276 1.3 mrg #define SLP_TREE_CHILDREN(S) (S)->children 277 1.1 mrg #define SLP_TREE_SCALAR_STMTS(S) (S)->stmts 278 1.11 mrg #define SLP_TREE_SCALAR_OPS(S) (S)->ops 279 1.12 mrg #define SLP_TREE_REF_COUNT(S) (S)->refcnt 280 1.1 mrg #define SLP_TREE_VEC_STMTS(S) (S)->vec_stmts 281 1.12 mrg #define SLP_TREE_VEC_DEFS(S) (S)->vec_defs 282 1.1 mrg #define SLP_TREE_NUMBER_OF_VEC_STMTS(S) (S)->vec_stmts_size 283 1.5 mrg #define SLP_TREE_LOAD_PERMUTATION(S) (S)->load_permutation 284 1.12 mrg #define SLP_TREE_LANE_PERMUTATION(S) (S)->lane_permutation 285 1.6 mrg #define SLP_TREE_DEF_TYPE(S) (S)->def_type 286 1.12 mrg #define SLP_TREE_VECTYPE(S) (S)->vectype 287 1.12 mrg #define SLP_TREE_REPRESENTATIVE(S) (S)->representative 288 1.12 mrg #define SLP_TREE_LANES(S) (S)->lanes 289 1.12 mrg #define SLP_TREE_CODE(S) (S)->code 290 1.3 mrg 291 1.11 mrg /* Key for map that records association between 292 1.11 mrg scalar conditions and corresponding loop mask, and 293 1.11 mrg is populated by vect_record_loop_mask. */ 294 1.11 mrg 295 1.11 mrg struct scalar_cond_masked_key 296 1.11 mrg { 297 1.11 mrg scalar_cond_masked_key (tree t, unsigned ncopies_) 298 1.11 mrg : ncopies (ncopies_) 299 1.11 mrg { 300 1.11 mrg get_cond_ops_from_tree (t); 301 1.11 mrg } 302 1.11 mrg 303 1.11 mrg void get_cond_ops_from_tree (tree); 304 1.11 mrg 305 1.11 mrg unsigned ncopies; 306 1.12 mrg bool inverted_p; 307 1.11 mrg tree_code code; 308 1.11 mrg tree op0; 309 1.11 mrg tree op1; 310 1.11 mrg }; 311 1.11 mrg 312 1.11 mrg template<> 313 1.11 mrg struct default_hash_traits<scalar_cond_masked_key> 314 1.11 mrg { 315 1.11 mrg typedef scalar_cond_masked_key compare_type; 316 1.11 mrg typedef scalar_cond_masked_key value_type; 317 1.11 mrg 318 1.11 mrg static inline hashval_t 319 1.11 mrg hash (value_type v) 320 1.11 mrg { 321 1.11 mrg inchash::hash h; 322 1.11 mrg h.add_int (v.code); 323 1.11 mrg inchash::add_expr (v.op0, h, 0); 324 1.11 mrg inchash::add_expr (v.op1, h, 0); 325 1.11 mrg h.add_int (v.ncopies); 326 1.12 mrg h.add_flag (v.inverted_p); 327 1.11 mrg return h.end (); 328 1.11 mrg } 329 1.11 mrg 330 1.11 mrg static inline bool 331 1.11 mrg equal (value_type existing, value_type candidate) 332 1.11 mrg { 333 1.11 mrg return (existing.ncopies == candidate.ncopies 334 1.12 mrg && existing.code == candidate.code 335 1.12 mrg && existing.inverted_p == candidate.inverted_p 336 1.12 mrg && operand_equal_p (existing.op0, candidate.op0, 0) 337 1.12 mrg && operand_equal_p (existing.op1, candidate.op1, 0)); 338 1.11 mrg } 339 1.11 mrg 340 1.11 mrg static const bool empty_zero_p = true; 341 1.11 mrg 342 1.11 mrg static inline void 343 1.11 mrg mark_empty (value_type &v) 344 1.11 mrg { 345 1.11 mrg v.ncopies = 0; 346 1.12 mrg v.inverted_p = false; 347 1.11 mrg } 348 1.11 mrg 349 1.11 mrg static inline bool 350 1.11 mrg is_empty (value_type v) 351 1.11 mrg { 352 1.11 mrg return v.ncopies == 0; 353 1.11 mrg } 354 1.11 mrg 355 1.11 mrg static inline void mark_deleted (value_type &) {} 356 1.11 mrg 357 1.11 mrg static inline bool is_deleted (const value_type &) 358 1.11 mrg { 359 1.11 mrg return false; 360 1.11 mrg } 361 1.3 mrg 362 1.11 mrg static inline void remove (value_type &) {} 363 1.11 mrg }; 364 1.11 mrg 365 1.11 mrg typedef hash_set<scalar_cond_masked_key> scalar_cond_masked_set_type; 366 1.3 mrg 367 1.12 mrg /* Key and map that records association between vector conditions and 368 1.12 mrg corresponding loop mask, and is populated by prepare_vec_mask. */ 369 1.12 mrg 370 1.12 mrg typedef pair_hash<tree_operand_hash, tree_operand_hash> tree_cond_mask_hash; 371 1.12 mrg typedef hash_set<tree_cond_mask_hash> vec_cond_masked_set_type; 372 1.12 mrg 373 1.9 mrg /* Describes two objects whose addresses must be unequal for the vectorized 374 1.9 mrg loop to be valid. */ 375 1.9 mrg typedef std::pair<tree, tree> vec_object_pair; 376 1.9 mrg 377 1.9 mrg /* Records that vectorization is only possible if abs (EXPR) >= MIN_VALUE. 378 1.9 mrg UNSIGNED_P is true if we can assume that abs (EXPR) == EXPR. */ 379 1.11 mrg class vec_lower_bound { 380 1.11 mrg public: 381 1.9 mrg vec_lower_bound () {} 382 1.9 mrg vec_lower_bound (tree e, bool u, poly_uint64 m) 383 1.9 mrg : expr (e), unsigned_p (u), min_value (m) {} 384 1.9 mrg 385 1.9 mrg tree expr; 386 1.9 mrg bool unsigned_p; 387 1.9 mrg poly_uint64 min_value; 388 1.5 mrg }; 389 1.5 mrg 390 1.10 mrg /* Vectorizer state shared between different analyses like vector sizes 391 1.10 mrg of the same CFG region. */ 392 1.11 mrg class vec_info_shared { 393 1.11 mrg public: 394 1.10 mrg vec_info_shared(); 395 1.10 mrg ~vec_info_shared(); 396 1.10 mrg 397 1.10 mrg void save_datarefs(); 398 1.10 mrg void check_datarefs(); 399 1.10 mrg 400 1.12 mrg /* The number of scalar stmts. */ 401 1.12 mrg unsigned n_stmts; 402 1.12 mrg 403 1.10 mrg /* All data references. Freed by free_data_refs, so not an auto_vec. */ 404 1.10 mrg vec<data_reference_p> datarefs; 405 1.10 mrg vec<data_reference> datarefs_copy; 406 1.10 mrg 407 1.10 mrg /* The loop nest in which the data dependences are computed. */ 408 1.10 mrg auto_vec<loop_p> loop_nest; 409 1.10 mrg 410 1.10 mrg /* All data dependences. Freed by free_dependence_relations, so not 411 1.10 mrg an auto_vec. */ 412 1.10 mrg vec<ddr_p> ddrs; 413 1.10 mrg }; 414 1.10 mrg 415 1.9 mrg /* Vectorizer state common between loop and basic-block vectorization. */ 416 1.11 mrg class vec_info { 417 1.11 mrg public: 418 1.11 mrg typedef hash_set<int_hash<machine_mode, E_VOIDmode, E_BLKmode> > mode_set; 419 1.9 mrg enum vec_kind { bb, loop }; 420 1.5 mrg 421 1.12 mrg vec_info (vec_kind, vec_info_shared *); 422 1.9 mrg ~vec_info (); 423 1.5 mrg 424 1.10 mrg stmt_vec_info add_stmt (gimple *); 425 1.12 mrg stmt_vec_info add_pattern_stmt (gimple *, stmt_vec_info); 426 1.10 mrg stmt_vec_info lookup_stmt (gimple *); 427 1.10 mrg stmt_vec_info lookup_def (tree); 428 1.10 mrg stmt_vec_info lookup_single_use (tree); 429 1.11 mrg class dr_vec_info *lookup_dr (data_reference *); 430 1.10 mrg void move_dr (stmt_vec_info, stmt_vec_info); 431 1.10 mrg void remove_stmt (stmt_vec_info); 432 1.10 mrg void replace_stmt (gimple_stmt_iterator *, stmt_vec_info, gimple *); 433 1.12 mrg void insert_on_entry (stmt_vec_info, gimple *); 434 1.12 mrg void insert_seq_on_entry (stmt_vec_info, gimple_seq); 435 1.10 mrg 436 1.9 mrg /* The type of vectorization. */ 437 1.9 mrg vec_kind kind; 438 1.6 mrg 439 1.10 mrg /* Shared vectorizer state. */ 440 1.10 mrg vec_info_shared *shared; 441 1.10 mrg 442 1.10 mrg /* The mapping of GIMPLE UID to stmt_vec_info. */ 443 1.10 mrg vec<stmt_vec_info> stmt_vec_infos; 444 1.12 mrg /* Whether the above mapping is complete. */ 445 1.12 mrg bool stmt_vec_info_ro; 446 1.10 mrg 447 1.12 mrg /* The SLP graph. */ 448 1.9 mrg auto_vec<slp_instance> slp_instances; 449 1.6 mrg 450 1.9 mrg /* Maps base addresses to an innermost_loop_behavior that gives the maximum 451 1.9 mrg known alignment for that base. */ 452 1.9 mrg vec_base_alignments base_alignments; 453 1.9 mrg 454 1.6 mrg /* All interleaving chains of stores, represented by the first 455 1.6 mrg stmt in the chain. */ 456 1.10 mrg auto_vec<stmt_vec_info> grouped_stores; 457 1.5 mrg 458 1.11 mrg /* The set of vector modes used in the vectorized region. */ 459 1.11 mrg mode_set used_vector_modes; 460 1.11 mrg 461 1.11 mrg /* The argument we should pass to related_vector_mode when looking up 462 1.11 mrg the vector mode for a scalar mode, or VOIDmode if we haven't yet 463 1.11 mrg made any decisions about which vector modes to use. */ 464 1.11 mrg machine_mode vector_mode; 465 1.11 mrg 466 1.10 mrg private: 467 1.10 mrg stmt_vec_info new_stmt_vec_info (gimple *stmt); 468 1.12 mrg void set_vinfo_for_stmt (gimple *, stmt_vec_info, bool = true); 469 1.10 mrg void free_stmt_vec_infos (); 470 1.10 mrg void free_stmt_vec_info (stmt_vec_info); 471 1.5 mrg }; 472 1.5 mrg 473 1.11 mrg class _loop_vec_info; 474 1.11 mrg class _bb_vec_info; 475 1.6 mrg 476 1.6 mrg template<> 477 1.6 mrg template<> 478 1.6 mrg inline bool 479 1.6 mrg is_a_helper <_loop_vec_info *>::test (vec_info *i) 480 1.5 mrg { 481 1.6 mrg return i->kind == vec_info::loop; 482 1.5 mrg } 483 1.5 mrg 484 1.6 mrg template<> 485 1.6 mrg template<> 486 1.5 mrg inline bool 487 1.6 mrg is_a_helper <_bb_vec_info *>::test (vec_info *i) 488 1.5 mrg { 489 1.6 mrg return i->kind == vec_info::bb; 490 1.5 mrg } 491 1.5 mrg 492 1.9 mrg /* In general, we can divide the vector statements in a vectorized loop 493 1.9 mrg into related groups ("rgroups") and say that for each rgroup there is 494 1.9 mrg some nS such that the rgroup operates on nS values from one scalar 495 1.9 mrg iteration followed by nS values from the next. That is, if VF is the 496 1.9 mrg vectorization factor of the loop, the rgroup operates on a sequence: 497 1.9 mrg 498 1.9 mrg (1,1) (1,2) ... (1,nS) (2,1) ... (2,nS) ... (VF,1) ... (VF,nS) 499 1.9 mrg 500 1.9 mrg where (i,j) represents a scalar value with index j in a scalar 501 1.9 mrg iteration with index i. 502 1.9 mrg 503 1.9 mrg [ We use the term "rgroup" to emphasise that this grouping isn't 504 1.9 mrg necessarily the same as the grouping of statements used elsewhere. 505 1.9 mrg For example, if we implement a group of scalar loads using gather 506 1.9 mrg loads, we'll use a separate gather load for each scalar load, and 507 1.9 mrg thus each gather load will belong to its own rgroup. ] 508 1.9 mrg 509 1.9 mrg In general this sequence will occupy nV vectors concatenated 510 1.9 mrg together. If these vectors have nL lanes each, the total number 511 1.9 mrg of scalar values N is given by: 512 1.9 mrg 513 1.9 mrg N = nS * VF = nV * nL 514 1.9 mrg 515 1.9 mrg None of nS, VF, nV and nL are required to be a power of 2. nS and nV 516 1.9 mrg are compile-time constants but VF and nL can be variable (if the target 517 1.9 mrg supports variable-length vectors). 518 1.9 mrg 519 1.9 mrg In classical vectorization, each iteration of the vector loop would 520 1.9 mrg handle exactly VF iterations of the original scalar loop. However, 521 1.12 mrg in vector loops that are able to operate on partial vectors, a 522 1.12 mrg particular iteration of the vector loop might handle fewer than VF 523 1.12 mrg iterations of the scalar loop. The vector lanes that correspond to 524 1.12 mrg iterations of the scalar loop are said to be "active" and the other 525 1.12 mrg lanes are said to be "inactive". 526 1.12 mrg 527 1.12 mrg In such vector loops, many rgroups need to be controlled to ensure 528 1.12 mrg that they have no effect for the inactive lanes. Conceptually, each 529 1.12 mrg such rgroup needs a sequence of booleans in the same order as above, 530 1.12 mrg but with each (i,j) replaced by a boolean that indicates whether 531 1.12 mrg iteration i is active. This sequence occupies nV vector controls 532 1.12 mrg that again have nL lanes each. Thus the control sequence as a whole 533 1.12 mrg consists of VF independent booleans that are each repeated nS times. 534 1.9 mrg 535 1.12 mrg Taking mask-based approach as a partially-populated vectors example. 536 1.9 mrg We make the simplifying assumption that if a sequence of nV masks is 537 1.9 mrg suitable for one (nS,nL) pair, we can reuse it for (nS/2,nL/2) by 538 1.9 mrg VIEW_CONVERTing it. This holds for all current targets that support 539 1.9 mrg fully-masked loops. For example, suppose the scalar loop is: 540 1.9 mrg 541 1.9 mrg float *f; 542 1.9 mrg double *d; 543 1.9 mrg for (int i = 0; i < n; ++i) 544 1.9 mrg { 545 1.9 mrg f[i * 2 + 0] += 1.0f; 546 1.9 mrg f[i * 2 + 1] += 2.0f; 547 1.9 mrg d[i] += 3.0; 548 1.9 mrg } 549 1.9 mrg 550 1.9 mrg and suppose that vectors have 256 bits. The vectorized f accesses 551 1.9 mrg will belong to one rgroup and the vectorized d access to another: 552 1.9 mrg 553 1.9 mrg f rgroup: nS = 2, nV = 1, nL = 8 554 1.9 mrg d rgroup: nS = 1, nV = 1, nL = 4 555 1.9 mrg VF = 4 556 1.9 mrg 557 1.9 mrg [ In this simple example the rgroups do correspond to the normal 558 1.9 mrg SLP grouping scheme. ] 559 1.9 mrg 560 1.9 mrg If only the first three lanes are active, the masks we need are: 561 1.9 mrg 562 1.9 mrg f rgroup: 1 1 | 1 1 | 1 1 | 0 0 563 1.9 mrg d rgroup: 1 | 1 | 1 | 0 564 1.9 mrg 565 1.9 mrg Here we can use a mask calculated for f's rgroup for d's, but not 566 1.9 mrg vice versa. 567 1.9 mrg 568 1.9 mrg Thus for each value of nV, it is enough to provide nV masks, with the 569 1.9 mrg mask being calculated based on the highest nL (or, equivalently, based 570 1.9 mrg on the highest nS) required by any rgroup with that nV. We therefore 571 1.9 mrg represent the entire collection of masks as a two-level table, with the 572 1.9 mrg first level being indexed by nV - 1 (since nV == 0 doesn't exist) and 573 1.9 mrg the second being indexed by the mask index 0 <= i < nV. */ 574 1.9 mrg 575 1.12 mrg /* The controls (like masks or lengths) needed by rgroups with nV vectors, 576 1.12 mrg according to the description above. */ 577 1.12 mrg struct rgroup_controls { 578 1.12 mrg /* The largest nS for all rgroups that use these controls. */ 579 1.9 mrg unsigned int max_nscalars_per_iter; 580 1.9 mrg 581 1.12 mrg /* For the largest nS recorded above, the loop controls divide each scalar 582 1.12 mrg into FACTOR equal-sized pieces. This is useful if we need to split 583 1.12 mrg element-based accesses into byte-based accesses. */ 584 1.12 mrg unsigned int factor; 585 1.12 mrg 586 1.12 mrg /* This is a vector type with MAX_NSCALARS_PER_ITER * VF / nV elements. 587 1.12 mrg For mask-based controls, it is the type of the masks in CONTROLS. 588 1.12 mrg For length-based controls, it can be any vector type that has the 589 1.12 mrg specified number of elements; the type of the elements doesn't matter. */ 590 1.12 mrg tree type; 591 1.12 mrg 592 1.12 mrg /* A vector of nV controls, in iteration order. */ 593 1.12 mrg vec<tree> controls; 594 1.9 mrg 595 1.12 mrg /* In case of len_load and len_store with a bias there is only one 596 1.12 mrg rgroup. This holds the adjusted loop length for the this rgroup. */ 597 1.12 mrg tree bias_adjusted_ctrl; 598 1.9 mrg }; 599 1.9 mrg 600 1.12 mrg typedef auto_vec<rgroup_controls> vec_loop_masks; 601 1.12 mrg 602 1.12 mrg typedef auto_vec<rgroup_controls> vec_loop_lens; 603 1.9 mrg 604 1.11 mrg typedef auto_vec<std::pair<data_reference*, tree> > drs_init_vec; 605 1.11 mrg 606 1.12 mrg /* Information about a reduction accumulator from the main loop that could 607 1.12 mrg conceivably be reused as the input to a reduction in an epilogue loop. */ 608 1.12 mrg struct vect_reusable_accumulator { 609 1.12 mrg /* The final value of the accumulator, which forms the input to the 610 1.12 mrg reduction operation. */ 611 1.12 mrg tree reduc_input; 612 1.12 mrg 613 1.12 mrg /* The stmt_vec_info that describes the reduction (i.e. the one for 614 1.12 mrg which is_reduc_info is true). */ 615 1.12 mrg stmt_vec_info reduc_info; 616 1.12 mrg }; 617 1.12 mrg 618 1.1 mrg /*-----------------------------------------------------------------*/ 619 1.1 mrg /* Info on vectorized loops. */ 620 1.1 mrg /*-----------------------------------------------------------------*/ 621 1.11 mrg typedef class _loop_vec_info : public vec_info { 622 1.11 mrg public: 623 1.11 mrg _loop_vec_info (class loop *, vec_info_shared *); 624 1.9 mrg ~_loop_vec_info (); 625 1.1 mrg 626 1.1 mrg /* The loop to which this info struct refers to. */ 627 1.11 mrg class loop *loop; 628 1.1 mrg 629 1.1 mrg /* The loop basic blocks. */ 630 1.1 mrg basic_block *bbs; 631 1.1 mrg 632 1.5 mrg /* Number of latch executions. */ 633 1.5 mrg tree num_itersm1; 634 1.1 mrg /* Number of iterations. */ 635 1.1 mrg tree num_iters; 636 1.5 mrg /* Number of iterations of the original loop. */ 637 1.1 mrg tree num_iters_unchanged; 638 1.8 mrg /* Condition under which this loop is analyzed and versioned. */ 639 1.8 mrg tree num_iters_assumptions; 640 1.1 mrg 641 1.12 mrg /* The cost of the vector code. */ 642 1.12 mrg class vector_costs *vector_costs; 643 1.12 mrg 644 1.12 mrg /* The cost of the scalar code. */ 645 1.12 mrg class vector_costs *scalar_costs; 646 1.12 mrg 647 1.11 mrg /* Threshold of number of iterations below which vectorization will not be 648 1.5 mrg performed. It is calculated from MIN_PROFITABLE_ITERS and 649 1.11 mrg param_min_vect_loop_bound. */ 650 1.5 mrg unsigned int th; 651 1.5 mrg 652 1.9 mrg /* When applying loop versioning, the vector form should only be used 653 1.9 mrg if the number of scalar iterations is >= this value, on top of all 654 1.9 mrg the other requirements. Ignored when loop versioning is not being 655 1.9 mrg used. */ 656 1.9 mrg poly_uint64 versioning_threshold; 657 1.9 mrg 658 1.1 mrg /* Unrolling factor */ 659 1.9 mrg poly_uint64 vectorization_factor; 660 1.9 mrg 661 1.12 mrg /* If this loop is an epilogue loop whose main loop can be skipped, 662 1.12 mrg MAIN_LOOP_EDGE is the edge from the main loop to this loop's 663 1.12 mrg preheader. SKIP_MAIN_LOOP_EDGE is then the edge that skips the 664 1.12 mrg main loop and goes straight to this loop's preheader. 665 1.12 mrg 666 1.12 mrg Both fields are null otherwise. */ 667 1.12 mrg edge main_loop_edge; 668 1.12 mrg edge skip_main_loop_edge; 669 1.12 mrg 670 1.12 mrg /* If this loop is an epilogue loop that might be skipped after executing 671 1.12 mrg the main loop, this edge is the one that skips the epilogue. */ 672 1.12 mrg edge skip_this_loop_edge; 673 1.12 mrg 674 1.12 mrg /* The vectorized form of a standard reduction replaces the original 675 1.12 mrg scalar code's final result (a loop-closed SSA PHI) with the result 676 1.12 mrg of a vector-to-scalar reduction operation. After vectorization, 677 1.12 mrg this variable maps these vector-to-scalar results to information 678 1.12 mrg about the reductions that generated them. */ 679 1.12 mrg hash_map<tree, vect_reusable_accumulator> reusable_accumulators; 680 1.12 mrg 681 1.12 mrg /* The number of times that the target suggested we unroll the vector loop 682 1.12 mrg in order to promote more ILP. This value will be used to re-analyze the 683 1.12 mrg loop for vectorization and if successful the value will be folded into 684 1.12 mrg vectorization_factor (and therefore exactly divides 685 1.12 mrg vectorization_factor). */ 686 1.12 mrg unsigned int suggested_unroll_factor; 687 1.12 mrg 688 1.9 mrg /* Maximum runtime vectorization factor, or MAX_VECTORIZATION_FACTOR 689 1.9 mrg if there is no particular limit. */ 690 1.9 mrg unsigned HOST_WIDE_INT max_vectorization_factor; 691 1.9 mrg 692 1.9 mrg /* The masks that a fully-masked loop should use to avoid operating 693 1.9 mrg on inactive scalars. */ 694 1.9 mrg vec_loop_masks masks; 695 1.9 mrg 696 1.12 mrg /* The lengths that a loop with length should use to avoid operating 697 1.12 mrg on inactive scalars. */ 698 1.12 mrg vec_loop_lens lens; 699 1.12 mrg 700 1.11 mrg /* Set of scalar conditions that have loop mask applied. */ 701 1.11 mrg scalar_cond_masked_set_type scalar_cond_masked_set; 702 1.11 mrg 703 1.12 mrg /* Set of vector conditions that have loop mask applied. */ 704 1.12 mrg vec_cond_masked_set_type vec_cond_masked_set; 705 1.12 mrg 706 1.9 mrg /* If we are using a loop mask to align memory addresses, this variable 707 1.9 mrg contains the number of vector elements that we should skip in the 708 1.9 mrg first iteration of the vector loop (i.e. the number of leading 709 1.9 mrg elements that should be false in the first mask). */ 710 1.9 mrg tree mask_skip_niters; 711 1.9 mrg 712 1.12 mrg /* The type that the loop control IV should be converted to before 713 1.12 mrg testing which of the VF scalars are active and inactive. 714 1.12 mrg Only meaningful if LOOP_VINFO_USING_PARTIAL_VECTORS_P. */ 715 1.12 mrg tree rgroup_compare_type; 716 1.1 mrg 717 1.10 mrg /* For #pragma omp simd if (x) loops the x expression. If constant 0, 718 1.10 mrg the loop should not be vectorized, if constant non-zero, simd_if_cond 719 1.10 mrg shouldn't be set and loop vectorized normally, if SSA_NAME, the loop 720 1.10 mrg should be versioned on that condition, using scalar loop if the condition 721 1.10 mrg is false and vectorized loop otherwise. */ 722 1.10 mrg tree simd_if_cond; 723 1.10 mrg 724 1.12 mrg /* The type that the vector loop control IV should have when 725 1.12 mrg LOOP_VINFO_USING_PARTIAL_VECTORS_P is true. */ 726 1.12 mrg tree rgroup_iv_type; 727 1.11 mrg 728 1.1 mrg /* Unknown DRs according to which loop was peeled. */ 729 1.11 mrg class dr_vec_info *unaligned_dr; 730 1.1 mrg 731 1.1 mrg /* peeling_for_alignment indicates whether peeling for alignment will take 732 1.1 mrg place, and what the peeling factor should be: 733 1.1 mrg peeling_for_alignment = X means: 734 1.1 mrg If X=0: Peeling for alignment will not be applied. 735 1.1 mrg If X>0: Peel first X iterations. 736 1.1 mrg If X=-1: Generate a runtime test to calculate the number of iterations 737 1.1 mrg to be peeled, using the dataref recorded in the field 738 1.1 mrg unaligned_dr. */ 739 1.1 mrg int peeling_for_alignment; 740 1.1 mrg 741 1.1 mrg /* The mask used to check the alignment of pointers or arrays. */ 742 1.1 mrg int ptr_mask; 743 1.1 mrg 744 1.1 mrg /* Data Dependence Relations defining address ranges that are candidates 745 1.1 mrg for a run-time aliasing check. */ 746 1.9 mrg auto_vec<ddr_p> may_alias_ddrs; 747 1.1 mrg 748 1.5 mrg /* Data Dependence Relations defining address ranges together with segment 749 1.5 mrg lengths from which the run-time aliasing check is built. */ 750 1.9 mrg auto_vec<dr_with_seg_len_pair_t> comp_alias_ddrs; 751 1.9 mrg 752 1.9 mrg /* Check that the addresses of each pair of objects is unequal. */ 753 1.9 mrg auto_vec<vec_object_pair> check_unequal_addrs; 754 1.9 mrg 755 1.9 mrg /* List of values that are required to be nonzero. This is used to check 756 1.9 mrg whether things like "x[i * n] += 1;" are safe and eventually gets added 757 1.9 mrg to the checks for lower bounds below. */ 758 1.9 mrg auto_vec<tree> check_nonzero; 759 1.9 mrg 760 1.9 mrg /* List of values that need to be checked for a minimum value. */ 761 1.9 mrg auto_vec<vec_lower_bound> lower_bounds; 762 1.5 mrg 763 1.1 mrg /* Statements in the loop that have data references that are candidates for a 764 1.1 mrg runtime (loop versioning) misalignment check. */ 765 1.10 mrg auto_vec<stmt_vec_info> may_misalign_stmts; 766 1.1 mrg 767 1.3 mrg /* Reduction cycles detected in the loop. Used in loop-aware SLP. */ 768 1.10 mrg auto_vec<stmt_vec_info> reductions; 769 1.3 mrg 770 1.3 mrg /* All reduction chains in the loop, represented by the first 771 1.3 mrg stmt in the chain. */ 772 1.10 mrg auto_vec<stmt_vec_info> reduction_chains; 773 1.3 mrg 774 1.6 mrg /* Cost vector for a single scalar iteration. */ 775 1.9 mrg auto_vec<stmt_info_for_cost> scalar_cost_vec; 776 1.9 mrg 777 1.9 mrg /* Map of IV base/step expressions to inserted name in the preheader. */ 778 1.9 mrg hash_map<tree_operand_hash, tree> *ivexpr_map; 779 1.3 mrg 780 1.11 mrg /* Map of OpenMP "omp simd array" scan variables to corresponding 781 1.11 mrg rhs of the store of the initializer. */ 782 1.11 mrg hash_map<tree, tree> *scan_map; 783 1.11 mrg 784 1.8 mrg /* The unrolling factor needed to SLP the loop. In case of that pure SLP is 785 1.8 mrg applied to the loop, i.e., no unrolling is needed, this is 1. */ 786 1.9 mrg poly_uint64 slp_unrolling_factor; 787 1.8 mrg 788 1.12 mrg /* The factor used to over weight those statements in an inner loop 789 1.12 mrg relative to the loop being vectorized. */ 790 1.12 mrg unsigned int inner_loop_cost_factor; 791 1.11 mrg 792 1.8 mrg /* Is the loop vectorizable? */ 793 1.8 mrg bool vectorizable; 794 1.8 mrg 795 1.12 mrg /* Records whether we still have the option of vectorizing this loop 796 1.12 mrg using partially-populated vectors; in other words, whether it is 797 1.12 mrg still possible for one iteration of the vector loop to handle 798 1.12 mrg fewer than VF scalars. */ 799 1.12 mrg bool can_use_partial_vectors_p; 800 1.12 mrg 801 1.12 mrg /* True if we've decided to use partially-populated vectors, so that 802 1.12 mrg the vector loop can handle fewer than VF scalars. */ 803 1.12 mrg bool using_partial_vectors_p; 804 1.12 mrg 805 1.12 mrg /* True if we've decided to use partially-populated vectors for the 806 1.12 mrg epilogue of loop. */ 807 1.12 mrg bool epil_using_partial_vectors_p; 808 1.12 mrg 809 1.12 mrg /* The bias for len_load and len_store. For now, only 0 and -1 are 810 1.12 mrg supported. -1 must be used when a backend does not support 811 1.12 mrg len_load/len_store with a length of zero. */ 812 1.12 mrg signed char partial_load_store_bias; 813 1.9 mrg 814 1.3 mrg /* When we have grouped data accesses with gaps, we may introduce invalid 815 1.1 mrg memory accesses. We peel the last iteration of the loop to prevent 816 1.1 mrg this. */ 817 1.1 mrg bool peeling_for_gaps; 818 1.1 mrg 819 1.5 mrg /* When the number of iterations is not a multiple of the vector size 820 1.5 mrg we need to peel off iterations at the end to form an epilogue loop. */ 821 1.5 mrg bool peeling_for_niter; 822 1.5 mrg 823 1.5 mrg /* True if there are no loop carried data dependencies in the loop. 824 1.5 mrg If loop->safelen <= 1, then this is always true, either the loop 825 1.5 mrg didn't have any loop carried data dependencies, or the loop is being 826 1.5 mrg vectorized guarded with some runtime alias checks, or couldn't 827 1.5 mrg be vectorized at all, but then this field shouldn't be used. 828 1.5 mrg For loop->safelen >= 2, the user has asserted that there are no 829 1.5 mrg backward dependencies, but there still could be loop carried forward 830 1.5 mrg dependencies in such loops. This flag will be false if normal 831 1.5 mrg vectorizer data dependency analysis would fail or require versioning 832 1.5 mrg for alias, but because of loop->safelen >= 2 it has been vectorized 833 1.5 mrg even without versioning for alias. E.g. in: 834 1.5 mrg #pragma omp simd 835 1.5 mrg for (int i = 0; i < m; i++) 836 1.5 mrg a[i] = a[i + k] * c; 837 1.5 mrg (or #pragma simd or #pragma ivdep) we can vectorize this and it will 838 1.5 mrg DTRT even for k > 0 && k < m, but without safelen we would not 839 1.5 mrg vectorize this, so this field would be false. */ 840 1.5 mrg bool no_data_dependencies; 841 1.5 mrg 842 1.8 mrg /* Mark loops having masked stores. */ 843 1.8 mrg bool has_mask_store; 844 1.8 mrg 845 1.11 mrg /* Queued scaling factor for the scalar loop. */ 846 1.11 mrg profile_probability scalar_loop_scaling; 847 1.11 mrg 848 1.5 mrg /* If if-conversion versioned this loop before conversion, this is the 849 1.5 mrg loop version without if-conversion. */ 850 1.11 mrg class loop *scalar_loop; 851 1.5 mrg 852 1.8 mrg /* For loops being epilogues of already vectorized loops 853 1.8 mrg this points to the original vectorized loop. Otherwise NULL. */ 854 1.8 mrg _loop_vec_info *orig_loop_info; 855 1.6 mrg 856 1.11 mrg /* Used to store loop_vec_infos of epilogues of this loop during 857 1.11 mrg analysis. */ 858 1.11 mrg vec<_loop_vec_info *> epilogue_vinfos; 859 1.11 mrg 860 1.1 mrg } *loop_vec_info; 861 1.1 mrg 862 1.1 mrg /* Access Functions. */ 863 1.1 mrg #define LOOP_VINFO_LOOP(L) (L)->loop 864 1.1 mrg #define LOOP_VINFO_BBS(L) (L)->bbs 865 1.5 mrg #define LOOP_VINFO_NITERSM1(L) (L)->num_itersm1 866 1.1 mrg #define LOOP_VINFO_NITERS(L) (L)->num_iters 867 1.5 mrg /* Since LOOP_VINFO_NITERS and LOOP_VINFO_NITERSM1 can change after 868 1.5 mrg prologue peeling retain total unchanged scalar loop iterations for 869 1.5 mrg cost model. */ 870 1.1 mrg #define LOOP_VINFO_NITERS_UNCHANGED(L) (L)->num_iters_unchanged 871 1.8 mrg #define LOOP_VINFO_NITERS_ASSUMPTIONS(L) (L)->num_iters_assumptions 872 1.5 mrg #define LOOP_VINFO_COST_MODEL_THRESHOLD(L) (L)->th 873 1.9 mrg #define LOOP_VINFO_VERSIONING_THRESHOLD(L) (L)->versioning_threshold 874 1.1 mrg #define LOOP_VINFO_VECTORIZABLE_P(L) (L)->vectorizable 875 1.12 mrg #define LOOP_VINFO_CAN_USE_PARTIAL_VECTORS_P(L) (L)->can_use_partial_vectors_p 876 1.12 mrg #define LOOP_VINFO_USING_PARTIAL_VECTORS_P(L) (L)->using_partial_vectors_p 877 1.12 mrg #define LOOP_VINFO_EPIL_USING_PARTIAL_VECTORS_P(L) \ 878 1.12 mrg (L)->epil_using_partial_vectors_p 879 1.12 mrg #define LOOP_VINFO_PARTIAL_LOAD_STORE_BIAS(L) (L)->partial_load_store_bias 880 1.1 mrg #define LOOP_VINFO_VECT_FACTOR(L) (L)->vectorization_factor 881 1.9 mrg #define LOOP_VINFO_MAX_VECT_FACTOR(L) (L)->max_vectorization_factor 882 1.9 mrg #define LOOP_VINFO_MASKS(L) (L)->masks 883 1.12 mrg #define LOOP_VINFO_LENS(L) (L)->lens 884 1.9 mrg #define LOOP_VINFO_MASK_SKIP_NITERS(L) (L)->mask_skip_niters 885 1.12 mrg #define LOOP_VINFO_RGROUP_COMPARE_TYPE(L) (L)->rgroup_compare_type 886 1.12 mrg #define LOOP_VINFO_RGROUP_IV_TYPE(L) (L)->rgroup_iv_type 887 1.1 mrg #define LOOP_VINFO_PTR_MASK(L) (L)->ptr_mask 888 1.12 mrg #define LOOP_VINFO_N_STMTS(L) (L)->shared->n_stmts 889 1.10 mrg #define LOOP_VINFO_LOOP_NEST(L) (L)->shared->loop_nest 890 1.10 mrg #define LOOP_VINFO_DATAREFS(L) (L)->shared->datarefs 891 1.10 mrg #define LOOP_VINFO_DDRS(L) (L)->shared->ddrs 892 1.1 mrg #define LOOP_VINFO_INT_NITERS(L) (TREE_INT_CST_LOW ((L)->num_iters)) 893 1.5 mrg #define LOOP_VINFO_PEELING_FOR_ALIGNMENT(L) (L)->peeling_for_alignment 894 1.1 mrg #define LOOP_VINFO_UNALIGNED_DR(L) (L)->unaligned_dr 895 1.1 mrg #define LOOP_VINFO_MAY_MISALIGN_STMTS(L) (L)->may_misalign_stmts 896 1.1 mrg #define LOOP_VINFO_MAY_ALIAS_DDRS(L) (L)->may_alias_ddrs 897 1.5 mrg #define LOOP_VINFO_COMP_ALIAS_DDRS(L) (L)->comp_alias_ddrs 898 1.9 mrg #define LOOP_VINFO_CHECK_UNEQUAL_ADDRS(L) (L)->check_unequal_addrs 899 1.9 mrg #define LOOP_VINFO_CHECK_NONZERO(L) (L)->check_nonzero 900 1.9 mrg #define LOOP_VINFO_LOWER_BOUNDS(L) (L)->lower_bounds 901 1.3 mrg #define LOOP_VINFO_GROUPED_STORES(L) (L)->grouped_stores 902 1.1 mrg #define LOOP_VINFO_SLP_INSTANCES(L) (L)->slp_instances 903 1.1 mrg #define LOOP_VINFO_SLP_UNROLLING_FACTOR(L) (L)->slp_unrolling_factor 904 1.3 mrg #define LOOP_VINFO_REDUCTIONS(L) (L)->reductions 905 1.3 mrg #define LOOP_VINFO_REDUCTION_CHAINS(L) (L)->reduction_chains 906 1.1 mrg #define LOOP_VINFO_PEELING_FOR_GAPS(L) (L)->peeling_for_gaps 907 1.5 mrg #define LOOP_VINFO_PEELING_FOR_NITER(L) (L)->peeling_for_niter 908 1.5 mrg #define LOOP_VINFO_NO_DATA_DEPENDENCIES(L) (L)->no_data_dependencies 909 1.5 mrg #define LOOP_VINFO_SCALAR_LOOP(L) (L)->scalar_loop 910 1.11 mrg #define LOOP_VINFO_SCALAR_LOOP_SCALING(L) (L)->scalar_loop_scaling 911 1.6 mrg #define LOOP_VINFO_HAS_MASK_STORE(L) (L)->has_mask_store 912 1.6 mrg #define LOOP_VINFO_SCALAR_ITERATION_COST(L) (L)->scalar_cost_vec 913 1.8 mrg #define LOOP_VINFO_ORIG_LOOP_INFO(L) (L)->orig_loop_info 914 1.10 mrg #define LOOP_VINFO_SIMD_IF_COND(L) (L)->simd_if_cond 915 1.12 mrg #define LOOP_VINFO_INNER_LOOP_COST_FACTOR(L) (L)->inner_loop_cost_factor 916 1.12 mrg 917 1.12 mrg #define LOOP_VINFO_FULLY_MASKED_P(L) \ 918 1.12 mrg (LOOP_VINFO_USING_PARTIAL_VECTORS_P (L) \ 919 1.12 mrg && !LOOP_VINFO_MASKS (L).is_empty ()) 920 1.12 mrg 921 1.12 mrg #define LOOP_VINFO_FULLY_WITH_LENGTH_P(L) \ 922 1.12 mrg (LOOP_VINFO_USING_PARTIAL_VECTORS_P (L) \ 923 1.12 mrg && !LOOP_VINFO_LENS (L).is_empty ()) 924 1.1 mrg 925 1.8 mrg #define LOOP_REQUIRES_VERSIONING_FOR_ALIGNMENT(L) \ 926 1.5 mrg ((L)->may_misalign_stmts.length () > 0) 927 1.8 mrg #define LOOP_REQUIRES_VERSIONING_FOR_ALIAS(L) \ 928 1.9 mrg ((L)->comp_alias_ddrs.length () > 0 \ 929 1.9 mrg || (L)->check_unequal_addrs.length () > 0 \ 930 1.9 mrg || (L)->lower_bounds.length () > 0) 931 1.8 mrg #define LOOP_REQUIRES_VERSIONING_FOR_NITERS(L) \ 932 1.8 mrg (LOOP_VINFO_NITERS_ASSUMPTIONS (L)) 933 1.10 mrg #define LOOP_REQUIRES_VERSIONING_FOR_SIMD_IF_COND(L) \ 934 1.10 mrg (LOOP_VINFO_SIMD_IF_COND (L)) 935 1.8 mrg #define LOOP_REQUIRES_VERSIONING(L) \ 936 1.8 mrg (LOOP_REQUIRES_VERSIONING_FOR_ALIGNMENT (L) \ 937 1.8 mrg || LOOP_REQUIRES_VERSIONING_FOR_ALIAS (L) \ 938 1.10 mrg || LOOP_REQUIRES_VERSIONING_FOR_NITERS (L) \ 939 1.10 mrg || LOOP_REQUIRES_VERSIONING_FOR_SIMD_IF_COND (L)) 940 1.1 mrg 941 1.1 mrg #define LOOP_VINFO_NITERS_KNOWN_P(L) \ 942 1.5 mrg (tree_fits_shwi_p ((L)->num_iters) && tree_to_shwi ((L)->num_iters) > 0) 943 1.1 mrg 944 1.8 mrg #define LOOP_VINFO_EPILOGUE_P(L) \ 945 1.8 mrg (LOOP_VINFO_ORIG_LOOP_INFO (L) != NULL) 946 1.8 mrg 947 1.9 mrg #define LOOP_VINFO_ORIG_MAX_VECT_FACTOR(L) \ 948 1.9 mrg (LOOP_VINFO_MAX_VECT_FACTOR (LOOP_VINFO_ORIG_LOOP_INFO (L))) 949 1.8 mrg 950 1.10 mrg /* Wrapper for loop_vec_info, for tracking success/failure, where a non-NULL 951 1.10 mrg value signifies success, and a NULL value signifies failure, supporting 952 1.10 mrg propagating an opt_problem * describing the failure back up the call 953 1.10 mrg stack. */ 954 1.10 mrg typedef opt_pointer_wrapper <loop_vec_info> opt_loop_vec_info; 955 1.10 mrg 956 1.1 mrg static inline loop_vec_info 957 1.11 mrg loop_vec_info_for_loop (class loop *loop) 958 1.1 mrg { 959 1.1 mrg return (loop_vec_info) loop->aux; 960 1.1 mrg } 961 1.1 mrg 962 1.12 mrg struct slp_root 963 1.12 mrg { 964 1.12 mrg slp_root (slp_instance_kind kind_, vec<stmt_vec_info> stmts_, 965 1.12 mrg vec<stmt_vec_info> roots_) 966 1.12 mrg : kind(kind_), stmts(stmts_), roots(roots_) {} 967 1.12 mrg slp_instance_kind kind; 968 1.12 mrg vec<stmt_vec_info> stmts; 969 1.12 mrg vec<stmt_vec_info> roots; 970 1.12 mrg }; 971 1.12 mrg 972 1.11 mrg typedef class _bb_vec_info : public vec_info 973 1.6 mrg { 974 1.11 mrg public: 975 1.12 mrg _bb_vec_info (vec<basic_block> bbs, vec_info_shared *); 976 1.9 mrg ~_bb_vec_info (); 977 1.9 mrg 978 1.12 mrg /* The region we are operating on. bbs[0] is the entry, excluding 979 1.12 mrg its PHI nodes. In the future we might want to track an explicit 980 1.12 mrg entry edge to cover bbs[0] PHI nodes and have a region entry 981 1.12 mrg insert location. */ 982 1.12 mrg vec<basic_block> bbs; 983 1.12 mrg 984 1.12 mrg vec<slp_root> roots; 985 1.1 mrg } *bb_vec_info; 986 1.1 mrg 987 1.3 mrg #define BB_VINFO_BB(B) (B)->bb 988 1.3 mrg #define BB_VINFO_GROUPED_STORES(B) (B)->grouped_stores 989 1.3 mrg #define BB_VINFO_SLP_INSTANCES(B) (B)->slp_instances 990 1.10 mrg #define BB_VINFO_DATAREFS(B) (B)->shared->datarefs 991 1.10 mrg #define BB_VINFO_DDRS(B) (B)->shared->ddrs 992 1.1 mrg 993 1.1 mrg /*-----------------------------------------------------------------*/ 994 1.1 mrg /* Info on vectorized defs. */ 995 1.1 mrg /*-----------------------------------------------------------------*/ 996 1.1 mrg enum stmt_vec_info_type { 997 1.1 mrg undef_vec_info_type = 0, 998 1.1 mrg load_vec_info_type, 999 1.1 mrg store_vec_info_type, 1000 1.1 mrg shift_vec_info_type, 1001 1.1 mrg op_vec_info_type, 1002 1.1 mrg call_vec_info_type, 1003 1.5 mrg call_simd_clone_vec_info_type, 1004 1.1 mrg assignment_vec_info_type, 1005 1.1 mrg condition_vec_info_type, 1006 1.6 mrg comparison_vec_info_type, 1007 1.1 mrg reduc_vec_info_type, 1008 1.1 mrg induc_vec_info_type, 1009 1.1 mrg type_promotion_vec_info_type, 1010 1.1 mrg type_demotion_vec_info_type, 1011 1.1 mrg type_conversion_vec_info_type, 1012 1.11 mrg cycle_phi_info_type, 1013 1.11 mrg lc_phi_info_type, 1014 1.12 mrg phi_info_type, 1015 1.1 mrg loop_exit_ctrl_vec_info_type 1016 1.1 mrg }; 1017 1.1 mrg 1018 1.1 mrg /* Indicates whether/how a variable is used in the scope of loop/basic 1019 1.1 mrg block. */ 1020 1.1 mrg enum vect_relevant { 1021 1.1 mrg vect_unused_in_scope = 0, 1022 1.8 mrg 1023 1.8 mrg /* The def is only used outside the loop. */ 1024 1.8 mrg vect_used_only_live, 1025 1.1 mrg /* The def is in the inner loop, and the use is in the outer loop, and the 1026 1.1 mrg use is a reduction stmt. */ 1027 1.1 mrg vect_used_in_outer_by_reduction, 1028 1.1 mrg /* The def is in the inner loop, and the use is in the outer loop (and is 1029 1.1 mrg not part of reduction). */ 1030 1.1 mrg vect_used_in_outer, 1031 1.1 mrg 1032 1.1 mrg /* defs that feed computations that end up (only) in a reduction. These 1033 1.1 mrg defs may be used by non-reduction stmts, but eventually, any 1034 1.1 mrg computations/values that are affected by these defs are used to compute 1035 1.1 mrg a reduction (i.e. don't get stored to memory, for example). We use this 1036 1.1 mrg to identify computations that we can change the order in which they are 1037 1.1 mrg computed. */ 1038 1.1 mrg vect_used_by_reduction, 1039 1.1 mrg 1040 1.1 mrg vect_used_in_scope 1041 1.1 mrg }; 1042 1.1 mrg 1043 1.1 mrg /* The type of vectorization that can be applied to the stmt: regular loop-based 1044 1.1 mrg vectorization; pure SLP - the stmt is a part of SLP instances and does not 1045 1.1 mrg have uses outside SLP instances; or hybrid SLP and loop-based - the stmt is 1046 1.1 mrg a part of SLP instance and also must be loop-based vectorized, since it has 1047 1.1 mrg uses outside SLP sequences. 1048 1.1 mrg 1049 1.1 mrg In the loop context the meanings of pure and hybrid SLP are slightly 1050 1.1 mrg different. By saying that pure SLP is applied to the loop, we mean that we 1051 1.1 mrg exploit only intra-iteration parallelism in the loop; i.e., the loop can be 1052 1.1 mrg vectorized without doing any conceptual unrolling, cause we don't pack 1053 1.1 mrg together stmts from different iterations, only within a single iteration. 1054 1.1 mrg Loop hybrid SLP means that we exploit both intra-iteration and 1055 1.1 mrg inter-iteration parallelism (e.g., number of elements in the vector is 4 1056 1.1 mrg and the slp-group-size is 2, in which case we don't have enough parallelism 1057 1.1 mrg within an iteration, so we obtain the rest of the parallelism from subsequent 1058 1.1 mrg iterations by unrolling the loop by 2). */ 1059 1.1 mrg enum slp_vect_type { 1060 1.1 mrg loop_vect = 0, 1061 1.1 mrg pure_slp, 1062 1.1 mrg hybrid 1063 1.1 mrg }; 1064 1.1 mrg 1065 1.9 mrg /* Says whether a statement is a load, a store of a vectorized statement 1066 1.9 mrg result, or a store of an invariant value. */ 1067 1.9 mrg enum vec_load_store_type { 1068 1.9 mrg VLS_LOAD, 1069 1.9 mrg VLS_STORE, 1070 1.9 mrg VLS_STORE_INVARIANT 1071 1.9 mrg }; 1072 1.9 mrg 1073 1.8 mrg /* Describes how we're going to vectorize an individual load or store, 1074 1.8 mrg or a group of loads or stores. */ 1075 1.8 mrg enum vect_memory_access_type { 1076 1.8 mrg /* An access to an invariant address. This is used only for loads. */ 1077 1.8 mrg VMAT_INVARIANT, 1078 1.8 mrg 1079 1.8 mrg /* A simple contiguous access. */ 1080 1.8 mrg VMAT_CONTIGUOUS, 1081 1.8 mrg 1082 1.8 mrg /* A contiguous access that goes down in memory rather than up, 1083 1.8 mrg with no additional permutation. This is used only for stores 1084 1.8 mrg of invariants. */ 1085 1.8 mrg VMAT_CONTIGUOUS_DOWN, 1086 1.8 mrg 1087 1.8 mrg /* A simple contiguous access in which the elements need to be permuted 1088 1.8 mrg after loading or before storing. Only used for loop vectorization; 1089 1.8 mrg SLP uses separate permutes. */ 1090 1.8 mrg VMAT_CONTIGUOUS_PERMUTE, 1091 1.8 mrg 1092 1.8 mrg /* A simple contiguous access in which the elements need to be reversed 1093 1.8 mrg after loading or before storing. */ 1094 1.8 mrg VMAT_CONTIGUOUS_REVERSE, 1095 1.8 mrg 1096 1.8 mrg /* An access that uses IFN_LOAD_LANES or IFN_STORE_LANES. */ 1097 1.8 mrg VMAT_LOAD_STORE_LANES, 1098 1.8 mrg 1099 1.8 mrg /* An access in which each scalar element is loaded or stored 1100 1.8 mrg individually. */ 1101 1.8 mrg VMAT_ELEMENTWISE, 1102 1.8 mrg 1103 1.8 mrg /* A hybrid of VMAT_CONTIGUOUS and VMAT_ELEMENTWISE, used for grouped 1104 1.8 mrg SLP accesses. Each unrolled iteration uses a contiguous load 1105 1.8 mrg or store for the whole group, but the groups from separate iterations 1106 1.8 mrg are combined in the same way as for VMAT_ELEMENTWISE. */ 1107 1.8 mrg VMAT_STRIDED_SLP, 1108 1.8 mrg 1109 1.8 mrg /* The access uses gather loads or scatter stores. */ 1110 1.8 mrg VMAT_GATHER_SCATTER 1111 1.8 mrg }; 1112 1.1 mrg 1113 1.11 mrg class dr_vec_info { 1114 1.11 mrg public: 1115 1.10 mrg /* The data reference itself. */ 1116 1.10 mrg data_reference *dr; 1117 1.10 mrg /* The statement that contains the data reference. */ 1118 1.10 mrg stmt_vec_info stmt; 1119 1.12 mrg /* The analysis group this DR belongs to when doing BB vectorization. 1120 1.12 mrg DRs of the same group belong to the same conditional execution context. */ 1121 1.12 mrg unsigned group; 1122 1.10 mrg /* The misalignment in bytes of the reference, or -1 if not known. */ 1123 1.10 mrg int misalignment; 1124 1.10 mrg /* The byte alignment that we'd ideally like the reference to have, 1125 1.10 mrg and the value that misalignment is measured against. */ 1126 1.10 mrg poly_uint64 target_alignment; 1127 1.10 mrg /* If true the alignment of base_decl needs to be increased. */ 1128 1.10 mrg bool base_misaligned; 1129 1.10 mrg tree base_decl; 1130 1.11 mrg 1131 1.11 mrg /* Stores current vectorized loop's offset. To be added to the DR's 1132 1.11 mrg offset to calculate current offset of data reference. */ 1133 1.11 mrg tree offset; 1134 1.10 mrg }; 1135 1.10 mrg 1136 1.1 mrg typedef struct data_reference *dr_p; 1137 1.1 mrg 1138 1.11 mrg class _stmt_vec_info { 1139 1.11 mrg public: 1140 1.1 mrg 1141 1.1 mrg enum stmt_vec_info_type type; 1142 1.1 mrg 1143 1.3 mrg /* Indicates whether this stmts is part of a computation whose result is 1144 1.3 mrg used outside the loop. */ 1145 1.3 mrg bool live; 1146 1.3 mrg 1147 1.3 mrg /* Stmt is part of some pattern (computation idiom) */ 1148 1.3 mrg bool in_pattern_p; 1149 1.3 mrg 1150 1.10 mrg /* True if the statement was created during pattern recognition as 1151 1.10 mrg part of the replacement for RELATED_STMT. This implies that the 1152 1.10 mrg statement isn't part of any basic block, although for convenience 1153 1.10 mrg its gimple_bb is the same as for RELATED_STMT. */ 1154 1.10 mrg bool pattern_stmt_p; 1155 1.10 mrg 1156 1.8 mrg /* Is this statement vectorizable or should it be skipped in (partial) 1157 1.8 mrg vectorization. */ 1158 1.8 mrg bool vectorizable; 1159 1.8 mrg 1160 1.1 mrg /* The stmt to which this info struct refers to. */ 1161 1.6 mrg gimple *stmt; 1162 1.1 mrg 1163 1.3 mrg /* The vector type to be used for the LHS of this statement. */ 1164 1.1 mrg tree vectype; 1165 1.1 mrg 1166 1.12 mrg /* The vectorized stmts. */ 1167 1.12 mrg vec<gimple *> vec_stmts; 1168 1.1 mrg 1169 1.9 mrg /* The following is relevant only for stmts that contain a non-scalar 1170 1.1 mrg data-ref (array/pointer/struct access). A GIMPLE stmt is expected to have 1171 1.9 mrg at most one such data-ref. */ 1172 1.1 mrg 1173 1.10 mrg dr_vec_info dr_aux; 1174 1.1 mrg 1175 1.1 mrg /* Information about the data-ref relative to this loop 1176 1.1 mrg nest (the loop that is being considered for vectorization). */ 1177 1.9 mrg innermost_loop_behavior dr_wrt_vec_loop; 1178 1.1 mrg 1179 1.6 mrg /* For loop PHI nodes, the base and evolution part of it. This makes sure 1180 1.3 mrg this information is still available in vect_update_ivs_after_vectorizer 1181 1.3 mrg where we may not be able to re-analyze the PHI nodes evolution as 1182 1.3 mrg peeling for the prologue loop can make it unanalyzable. The evolution 1183 1.6 mrg part is still correct after peeling, but the base may have changed from 1184 1.6 mrg the version here. */ 1185 1.6 mrg tree loop_phi_evolution_base_unchanged; 1186 1.3 mrg tree loop_phi_evolution_part; 1187 1.1 mrg 1188 1.1 mrg /* Used for various bookkeeping purposes, generally holding a pointer to 1189 1.1 mrg some other stmt S that is in some way "related" to this stmt. 1190 1.1 mrg Current use of this field is: 1191 1.1 mrg If this stmt is part of a pattern (i.e. the field 'in_pattern_p' is 1192 1.1 mrg true): S is the "pattern stmt" that represents (and replaces) the 1193 1.1 mrg sequence of stmts that constitutes the pattern. Similarly, the 1194 1.1 mrg related_stmt of the "pattern stmt" points back to this stmt (which is 1195 1.1 mrg the last stmt in the original sequence of stmts that constitutes the 1196 1.1 mrg pattern). */ 1197 1.10 mrg stmt_vec_info related_stmt; 1198 1.1 mrg 1199 1.10 mrg /* Used to keep a sequence of def stmts of a pattern stmt if such exists. 1200 1.10 mrg The sequence is attached to the original statement rather than the 1201 1.10 mrg pattern statement. */ 1202 1.3 mrg gimple_seq pattern_def_seq; 1203 1.3 mrg 1204 1.5 mrg /* Selected SIMD clone's function info. First vector element 1205 1.5 mrg is SIMD clone's function decl, followed by a pair of trees (base + step) 1206 1.5 mrg for linear arguments (pair of NULLs for other arguments). */ 1207 1.5 mrg vec<tree> simd_clone_info; 1208 1.5 mrg 1209 1.1 mrg /* Classify the def of this stmt. */ 1210 1.1 mrg enum vect_def_type def_type; 1211 1.1 mrg 1212 1.3 mrg /* Whether the stmt is SLPed, loop-based vectorized, or both. */ 1213 1.3 mrg enum slp_vect_type slp_type; 1214 1.3 mrg 1215 1.3 mrg /* Interleaving and reduction chains info. */ 1216 1.3 mrg /* First element in the group. */ 1217 1.10 mrg stmt_vec_info first_element; 1218 1.3 mrg /* Pointer to the next element in the group. */ 1219 1.10 mrg stmt_vec_info next_element; 1220 1.3 mrg /* The size of the group. */ 1221 1.1 mrg unsigned int size; 1222 1.1 mrg /* For stores, number of stores from this group seen. We vectorize the last 1223 1.1 mrg one. */ 1224 1.1 mrg unsigned int store_count; 1225 1.1 mrg /* For loads only, the gap from the previous load. For consecutive loads, GAP 1226 1.1 mrg is 1. */ 1227 1.1 mrg unsigned int gap; 1228 1.1 mrg 1229 1.3 mrg /* The minimum negative dependence distance this stmt participates in 1230 1.3 mrg or zero if none. */ 1231 1.3 mrg unsigned int min_neg_dist; 1232 1.1 mrg 1233 1.3 mrg /* Not all stmts in the loop need to be vectorized. e.g, the increment 1234 1.3 mrg of the loop induction variable and computation of array indexes. relevant 1235 1.3 mrg indicates whether the stmt needs to be vectorized. */ 1236 1.3 mrg enum vect_relevant relevant; 1237 1.1 mrg 1238 1.6 mrg /* For loads if this is a gather, for stores if this is a scatter. */ 1239 1.6 mrg bool gather_scatter_p; 1240 1.6 mrg 1241 1.6 mrg /* True if this is an access with loop-invariant stride. */ 1242 1.6 mrg bool strided_p; 1243 1.5 mrg 1244 1.5 mrg /* For both loads and stores. */ 1245 1.11 mrg unsigned simd_lane_access_p : 3; 1246 1.6 mrg 1247 1.8 mrg /* Classifies how the load or store is going to be implemented 1248 1.8 mrg for loop vectorization. */ 1249 1.8 mrg vect_memory_access_type memory_access_type; 1250 1.8 mrg 1251 1.11 mrg /* For INTEGER_INDUC_COND_REDUCTION, the initial value to be used. */ 1252 1.11 mrg tree induc_cond_initial_val; 1253 1.6 mrg 1254 1.11 mrg /* If not NULL the value to be added to compute final reduction value. */ 1255 1.11 mrg tree reduc_epilogue_adjustment; 1256 1.8 mrg 1257 1.9 mrg /* On a reduction PHI the reduction type as detected by 1258 1.11 mrg vect_is_simple_reduction and vectorizable_reduction. */ 1259 1.9 mrg enum vect_reduction_type reduc_type; 1260 1.9 mrg 1261 1.11 mrg /* The original reduction code, to be used in the epilogue. */ 1262 1.12 mrg code_helper reduc_code; 1263 1.11 mrg /* An internal function we should use in the epilogue. */ 1264 1.11 mrg internal_fn reduc_fn; 1265 1.11 mrg 1266 1.11 mrg /* On a stmt participating in the reduction the index of the operand 1267 1.11 mrg on the reduction SSA cycle. */ 1268 1.11 mrg int reduc_idx; 1269 1.11 mrg 1270 1.9 mrg /* On a reduction PHI the def returned by vect_force_simple_reduction. 1271 1.9 mrg On the def returned by vect_force_simple_reduction the 1272 1.9 mrg corresponding PHI. */ 1273 1.10 mrg stmt_vec_info reduc_def; 1274 1.9 mrg 1275 1.11 mrg /* The vector input type relevant for reduction vectorization. */ 1276 1.11 mrg tree reduc_vectype_in; 1277 1.11 mrg 1278 1.11 mrg /* The vector type for performing the actual reduction. */ 1279 1.11 mrg tree reduc_vectype; 1280 1.11 mrg 1281 1.12 mrg /* If IS_REDUC_INFO is true and if the vector code is performing 1282 1.12 mrg N scalar reductions in parallel, this variable gives the initial 1283 1.12 mrg scalar values of those N reductions. */ 1284 1.12 mrg vec<tree> reduc_initial_values; 1285 1.12 mrg 1286 1.12 mrg /* If IS_REDUC_INFO is true and if the vector code is performing 1287 1.12 mrg N scalar reductions in parallel, this variable gives the vectorized code's 1288 1.12 mrg final (scalar) result for each of those N reductions. In other words, 1289 1.12 mrg REDUC_SCALAR_RESULTS[I] replaces the original scalar code's loop-closed 1290 1.12 mrg SSA PHI for reduction number I. */ 1291 1.12 mrg vec<tree> reduc_scalar_results; 1292 1.12 mrg 1293 1.12 mrg /* Only meaningful if IS_REDUC_INFO. If non-null, the reduction is 1294 1.12 mrg being performed by an epilogue loop and we have decided to reuse 1295 1.12 mrg this accumulator from the main loop. */ 1296 1.12 mrg vect_reusable_accumulator *reused_accumulator; 1297 1.12 mrg 1298 1.11 mrg /* Whether we force a single cycle PHI during reduction vectorization. */ 1299 1.11 mrg bool force_single_cycle; 1300 1.11 mrg 1301 1.11 mrg /* Whether on this stmt reduction meta is recorded. */ 1302 1.11 mrg bool is_reduc_info; 1303 1.11 mrg 1304 1.10 mrg /* If nonzero, the lhs of the statement could be truncated to this 1305 1.10 mrg many bits without affecting any users of the result. */ 1306 1.10 mrg unsigned int min_output_precision; 1307 1.10 mrg 1308 1.10 mrg /* If nonzero, all non-boolean input operands have the same precision, 1309 1.10 mrg and they could each be truncated to this many bits without changing 1310 1.10 mrg the result. */ 1311 1.10 mrg unsigned int min_input_precision; 1312 1.10 mrg 1313 1.10 mrg /* If OPERATION_BITS is nonzero, the statement could be performed on 1314 1.10 mrg an integer with the sign and number of bits given by OPERATION_SIGN 1315 1.10 mrg and OPERATION_BITS without changing the result. */ 1316 1.10 mrg unsigned int operation_precision; 1317 1.10 mrg signop operation_sign; 1318 1.11 mrg 1319 1.11 mrg /* If the statement produces a boolean result, this value describes 1320 1.11 mrg how we should choose the associated vector type. The possible 1321 1.11 mrg values are: 1322 1.11 mrg 1323 1.11 mrg - an integer precision N if we should use the vector mask type 1324 1.11 mrg associated with N-bit integers. This is only used if all relevant 1325 1.11 mrg input booleans also want the vector mask type for N-bit integers, 1326 1.11 mrg or if we can convert them into that form by pattern-matching. 1327 1.11 mrg 1328 1.11 mrg - ~0U if we considered choosing a vector mask type but decided 1329 1.11 mrg to treat the boolean as a normal integer type instead. 1330 1.11 mrg 1331 1.11 mrg - 0 otherwise. This means either that the operation isn't one that 1332 1.11 mrg could have a vector mask type (and so should have a normal vector 1333 1.11 mrg type instead) or that we simply haven't made a choice either way. */ 1334 1.11 mrg unsigned int mask_precision; 1335 1.11 mrg 1336 1.11 mrg /* True if this is only suitable for SLP vectorization. */ 1337 1.11 mrg bool slp_vect_only_p; 1338 1.12 mrg 1339 1.12 mrg /* True if this is a pattern that can only be handled by SLP 1340 1.12 mrg vectorization. */ 1341 1.12 mrg bool slp_vect_pattern_only_p; 1342 1.10 mrg }; 1343 1.1 mrg 1344 1.8 mrg /* Information about a gather/scatter call. */ 1345 1.8 mrg struct gather_scatter_info { 1346 1.9 mrg /* The internal function to use for the gather/scatter operation, 1347 1.9 mrg or IFN_LAST if a built-in function should be used instead. */ 1348 1.9 mrg internal_fn ifn; 1349 1.9 mrg 1350 1.9 mrg /* The FUNCTION_DECL for the built-in gather/scatter function, 1351 1.9 mrg or null if an internal function should be used instead. */ 1352 1.8 mrg tree decl; 1353 1.8 mrg 1354 1.8 mrg /* The loop-invariant base value. */ 1355 1.8 mrg tree base; 1356 1.8 mrg 1357 1.8 mrg /* The original scalar offset, which is a non-loop-invariant SSA_NAME. */ 1358 1.8 mrg tree offset; 1359 1.8 mrg 1360 1.8 mrg /* Each offset element should be multiplied by this amount before 1361 1.8 mrg being added to the base. */ 1362 1.8 mrg int scale; 1363 1.8 mrg 1364 1.8 mrg /* The definition type for the vectorized offset. */ 1365 1.8 mrg enum vect_def_type offset_dt; 1366 1.8 mrg 1367 1.8 mrg /* The type of the vectorized offset. */ 1368 1.8 mrg tree offset_vectype; 1369 1.9 mrg 1370 1.9 mrg /* The type of the scalar elements after loading or before storing. */ 1371 1.9 mrg tree element_type; 1372 1.9 mrg 1373 1.9 mrg /* The type of the scalar elements being loaded or stored. */ 1374 1.9 mrg tree memory_type; 1375 1.8 mrg }; 1376 1.8 mrg 1377 1.1 mrg /* Access Functions. */ 1378 1.1 mrg #define STMT_VINFO_TYPE(S) (S)->type 1379 1.1 mrg #define STMT_VINFO_STMT(S) (S)->stmt 1380 1.1 mrg #define STMT_VINFO_RELEVANT(S) (S)->relevant 1381 1.1 mrg #define STMT_VINFO_LIVE_P(S) (S)->live 1382 1.1 mrg #define STMT_VINFO_VECTYPE(S) (S)->vectype 1383 1.12 mrg #define STMT_VINFO_VEC_STMTS(S) (S)->vec_stmts 1384 1.3 mrg #define STMT_VINFO_VECTORIZABLE(S) (S)->vectorizable 1385 1.10 mrg #define STMT_VINFO_DATA_REF(S) ((S)->dr_aux.dr + 0) 1386 1.6 mrg #define STMT_VINFO_GATHER_SCATTER_P(S) (S)->gather_scatter_p 1387 1.6 mrg #define STMT_VINFO_STRIDED_P(S) (S)->strided_p 1388 1.8 mrg #define STMT_VINFO_MEMORY_ACCESS_TYPE(S) (S)->memory_access_type 1389 1.5 mrg #define STMT_VINFO_SIMD_LANE_ACCESS_P(S) (S)->simd_lane_access_p 1390 1.11 mrg #define STMT_VINFO_VEC_INDUC_COND_INITIAL_VAL(S) (S)->induc_cond_initial_val 1391 1.11 mrg #define STMT_VINFO_REDUC_EPILOGUE_ADJUSTMENT(S) (S)->reduc_epilogue_adjustment 1392 1.11 mrg #define STMT_VINFO_REDUC_IDX(S) (S)->reduc_idx 1393 1.11 mrg #define STMT_VINFO_FORCE_SINGLE_CYCLE(S) (S)->force_single_cycle 1394 1.1 mrg 1395 1.9 mrg #define STMT_VINFO_DR_WRT_VEC_LOOP(S) (S)->dr_wrt_vec_loop 1396 1.9 mrg #define STMT_VINFO_DR_BASE_ADDRESS(S) (S)->dr_wrt_vec_loop.base_address 1397 1.9 mrg #define STMT_VINFO_DR_INIT(S) (S)->dr_wrt_vec_loop.init 1398 1.9 mrg #define STMT_VINFO_DR_OFFSET(S) (S)->dr_wrt_vec_loop.offset 1399 1.9 mrg #define STMT_VINFO_DR_STEP(S) (S)->dr_wrt_vec_loop.step 1400 1.9 mrg #define STMT_VINFO_DR_BASE_ALIGNMENT(S) (S)->dr_wrt_vec_loop.base_alignment 1401 1.9 mrg #define STMT_VINFO_DR_BASE_MISALIGNMENT(S) \ 1402 1.9 mrg (S)->dr_wrt_vec_loop.base_misalignment 1403 1.9 mrg #define STMT_VINFO_DR_OFFSET_ALIGNMENT(S) \ 1404 1.9 mrg (S)->dr_wrt_vec_loop.offset_alignment 1405 1.9 mrg #define STMT_VINFO_DR_STEP_ALIGNMENT(S) \ 1406 1.9 mrg (S)->dr_wrt_vec_loop.step_alignment 1407 1.1 mrg 1408 1.10 mrg #define STMT_VINFO_DR_INFO(S) \ 1409 1.10 mrg (gcc_checking_assert ((S)->dr_aux.stmt == (S)), &(S)->dr_aux) 1410 1.10 mrg 1411 1.1 mrg #define STMT_VINFO_IN_PATTERN_P(S) (S)->in_pattern_p 1412 1.1 mrg #define STMT_VINFO_RELATED_STMT(S) (S)->related_stmt 1413 1.3 mrg #define STMT_VINFO_PATTERN_DEF_SEQ(S) (S)->pattern_def_seq 1414 1.5 mrg #define STMT_VINFO_SIMD_CLONE_INFO(S) (S)->simd_clone_info 1415 1.1 mrg #define STMT_VINFO_DEF_TYPE(S) (S)->def_type 1416 1.10 mrg #define STMT_VINFO_GROUPED_ACCESS(S) \ 1417 1.10 mrg ((S)->dr_aux.dr && DR_GROUP_FIRST_ELEMENT(S)) 1418 1.6 mrg #define STMT_VINFO_LOOP_PHI_EVOLUTION_BASE_UNCHANGED(S) (S)->loop_phi_evolution_base_unchanged 1419 1.3 mrg #define STMT_VINFO_LOOP_PHI_EVOLUTION_PART(S) (S)->loop_phi_evolution_part 1420 1.3 mrg #define STMT_VINFO_MIN_NEG_DIST(S) (S)->min_neg_dist 1421 1.9 mrg #define STMT_VINFO_REDUC_TYPE(S) (S)->reduc_type 1422 1.11 mrg #define STMT_VINFO_REDUC_CODE(S) (S)->reduc_code 1423 1.11 mrg #define STMT_VINFO_REDUC_FN(S) (S)->reduc_fn 1424 1.9 mrg #define STMT_VINFO_REDUC_DEF(S) (S)->reduc_def 1425 1.11 mrg #define STMT_VINFO_REDUC_VECTYPE(S) (S)->reduc_vectype 1426 1.11 mrg #define STMT_VINFO_REDUC_VECTYPE_IN(S) (S)->reduc_vectype_in 1427 1.11 mrg #define STMT_VINFO_SLP_VECT_ONLY(S) (S)->slp_vect_only_p 1428 1.12 mrg #define STMT_VINFO_SLP_VECT_ONLY_PATTERN(S) (S)->slp_vect_pattern_only_p 1429 1.3 mrg 1430 1.10 mrg #define DR_GROUP_FIRST_ELEMENT(S) \ 1431 1.10 mrg (gcc_checking_assert ((S)->dr_aux.dr), (S)->first_element) 1432 1.10 mrg #define DR_GROUP_NEXT_ELEMENT(S) \ 1433 1.10 mrg (gcc_checking_assert ((S)->dr_aux.dr), (S)->next_element) 1434 1.10 mrg #define DR_GROUP_SIZE(S) \ 1435 1.10 mrg (gcc_checking_assert ((S)->dr_aux.dr), (S)->size) 1436 1.10 mrg #define DR_GROUP_STORE_COUNT(S) \ 1437 1.10 mrg (gcc_checking_assert ((S)->dr_aux.dr), (S)->store_count) 1438 1.10 mrg #define DR_GROUP_GAP(S) \ 1439 1.10 mrg (gcc_checking_assert ((S)->dr_aux.dr), (S)->gap) 1440 1.10 mrg 1441 1.10 mrg #define REDUC_GROUP_FIRST_ELEMENT(S) \ 1442 1.10 mrg (gcc_checking_assert (!(S)->dr_aux.dr), (S)->first_element) 1443 1.10 mrg #define REDUC_GROUP_NEXT_ELEMENT(S) \ 1444 1.10 mrg (gcc_checking_assert (!(S)->dr_aux.dr), (S)->next_element) 1445 1.10 mrg #define REDUC_GROUP_SIZE(S) \ 1446 1.10 mrg (gcc_checking_assert (!(S)->dr_aux.dr), (S)->size) 1447 1.1 mrg 1448 1.1 mrg #define STMT_VINFO_RELEVANT_P(S) ((S)->relevant != vect_unused_in_scope) 1449 1.1 mrg 1450 1.1 mrg #define HYBRID_SLP_STMT(S) ((S)->slp_type == hybrid) 1451 1.1 mrg #define PURE_SLP_STMT(S) ((S)->slp_type == pure_slp) 1452 1.1 mrg #define STMT_SLP_TYPE(S) (S)->slp_type 1453 1.1 mrg 1454 1.12 mrg /* Contains the scalar or vector costs for a vec_info. */ 1455 1.12 mrg class vector_costs 1456 1.12 mrg { 1457 1.12 mrg public: 1458 1.12 mrg vector_costs (vec_info *, bool); 1459 1.12 mrg virtual ~vector_costs () {} 1460 1.12 mrg 1461 1.12 mrg /* Update the costs in response to adding COUNT copies of a statement. 1462 1.12 mrg 1463 1.12 mrg - WHERE specifies whether the cost occurs in the loop prologue, 1464 1.12 mrg the loop body, or the loop epilogue. 1465 1.12 mrg - KIND is the kind of statement, which is always meaningful. 1466 1.12 mrg - STMT_INFO or NODE, if nonnull, describe the statement that will be 1467 1.12 mrg vectorized. 1468 1.12 mrg - VECTYPE, if nonnull, is the vector type that the vectorized 1469 1.12 mrg statement will operate on. Note that this should be used in 1470 1.12 mrg preference to STMT_VINFO_VECTYPE (STMT_INFO) since the latter 1471 1.12 mrg is not correct for SLP. 1472 1.12 mrg - for unaligned_load and unaligned_store statements, MISALIGN is 1473 1.12 mrg the byte misalignment of the load or store relative to the target's 1474 1.12 mrg preferred alignment for VECTYPE, or DR_MISALIGNMENT_UNKNOWN 1475 1.12 mrg if the misalignment is not known. 1476 1.12 mrg 1477 1.12 mrg Return the calculated cost as well as recording it. The return 1478 1.12 mrg value is used for dumping purposes. */ 1479 1.12 mrg virtual unsigned int add_stmt_cost (int count, vect_cost_for_stmt kind, 1480 1.12 mrg stmt_vec_info stmt_info, 1481 1.12 mrg slp_tree node, 1482 1.12 mrg tree vectype, int misalign, 1483 1.12 mrg vect_cost_model_location where); 1484 1.12 mrg 1485 1.12 mrg /* Finish calculating the cost of the code. The results can be 1486 1.12 mrg read back using the functions below. 1487 1.12 mrg 1488 1.12 mrg If the costs describe vector code, SCALAR_COSTS gives the costs 1489 1.12 mrg of the corresponding scalar code, otherwise it is null. */ 1490 1.12 mrg virtual void finish_cost (const vector_costs *scalar_costs); 1491 1.12 mrg 1492 1.12 mrg /* The costs in THIS and OTHER both describe ways of vectorizing 1493 1.12 mrg a main loop. Return true if the costs described by THIS are 1494 1.12 mrg cheaper than the costs described by OTHER. Return false if any 1495 1.12 mrg of the following are true: 1496 1.12 mrg 1497 1.12 mrg - THIS and OTHER are of equal cost 1498 1.12 mrg - OTHER is better than THIS 1499 1.12 mrg - we can't be sure about the relative costs of THIS and OTHER. */ 1500 1.12 mrg virtual bool better_main_loop_than_p (const vector_costs *other) const; 1501 1.12 mrg 1502 1.12 mrg /* Likewise, but the costs in THIS and OTHER both describe ways of 1503 1.12 mrg vectorizing an epilogue loop of MAIN_LOOP. */ 1504 1.12 mrg virtual bool better_epilogue_loop_than_p (const vector_costs *other, 1505 1.12 mrg loop_vec_info main_loop) const; 1506 1.12 mrg 1507 1.12 mrg unsigned int prologue_cost () const; 1508 1.12 mrg unsigned int body_cost () const; 1509 1.12 mrg unsigned int epilogue_cost () const; 1510 1.12 mrg unsigned int outside_cost () const; 1511 1.12 mrg unsigned int total_cost () const; 1512 1.12 mrg unsigned int suggested_unroll_factor () const; 1513 1.12 mrg 1514 1.12 mrg protected: 1515 1.12 mrg unsigned int record_stmt_cost (stmt_vec_info, vect_cost_model_location, 1516 1.12 mrg unsigned int); 1517 1.12 mrg unsigned int adjust_cost_for_freq (stmt_vec_info, vect_cost_model_location, 1518 1.12 mrg unsigned int); 1519 1.12 mrg int compare_inside_loop_cost (const vector_costs *) const; 1520 1.12 mrg int compare_outside_loop_cost (const vector_costs *) const; 1521 1.12 mrg 1522 1.12 mrg /* The region of code that we're considering vectorizing. */ 1523 1.12 mrg vec_info *m_vinfo; 1524 1.12 mrg 1525 1.12 mrg /* True if we're costing the scalar code, false if we're costing 1526 1.12 mrg the vector code. */ 1527 1.12 mrg bool m_costing_for_scalar; 1528 1.12 mrg 1529 1.12 mrg /* The costs of the three regions, indexed by vect_cost_model_location. */ 1530 1.12 mrg unsigned int m_costs[3]; 1531 1.12 mrg 1532 1.12 mrg /* The suggested unrolling factor determined at finish_cost. */ 1533 1.12 mrg unsigned int m_suggested_unroll_factor; 1534 1.12 mrg 1535 1.12 mrg /* True if finish_cost has been called. */ 1536 1.12 mrg bool m_finished; 1537 1.12 mrg }; 1538 1.12 mrg 1539 1.12 mrg /* Create costs for VINFO. COSTING_FOR_SCALAR is true if the costs 1540 1.12 mrg are for scalar code, false if they are for vector code. */ 1541 1.12 mrg 1542 1.12 mrg inline 1543 1.12 mrg vector_costs::vector_costs (vec_info *vinfo, bool costing_for_scalar) 1544 1.12 mrg : m_vinfo (vinfo), 1545 1.12 mrg m_costing_for_scalar (costing_for_scalar), 1546 1.12 mrg m_costs (), 1547 1.12 mrg m_suggested_unroll_factor(1), 1548 1.12 mrg m_finished (false) 1549 1.12 mrg { 1550 1.12 mrg } 1551 1.12 mrg 1552 1.12 mrg /* Return the cost of the prologue code (in abstract units). */ 1553 1.12 mrg 1554 1.12 mrg inline unsigned int 1555 1.12 mrg vector_costs::prologue_cost () const 1556 1.12 mrg { 1557 1.12 mrg gcc_checking_assert (m_finished); 1558 1.12 mrg return m_costs[vect_prologue]; 1559 1.12 mrg } 1560 1.12 mrg 1561 1.12 mrg /* Return the cost of the body code (in abstract units). */ 1562 1.12 mrg 1563 1.12 mrg inline unsigned int 1564 1.12 mrg vector_costs::body_cost () const 1565 1.12 mrg { 1566 1.12 mrg gcc_checking_assert (m_finished); 1567 1.12 mrg return m_costs[vect_body]; 1568 1.12 mrg } 1569 1.12 mrg 1570 1.12 mrg /* Return the cost of the epilogue code (in abstract units). */ 1571 1.12 mrg 1572 1.12 mrg inline unsigned int 1573 1.12 mrg vector_costs::epilogue_cost () const 1574 1.12 mrg { 1575 1.12 mrg gcc_checking_assert (m_finished); 1576 1.12 mrg return m_costs[vect_epilogue]; 1577 1.12 mrg } 1578 1.12 mrg 1579 1.12 mrg /* Return the cost of the prologue and epilogue code (in abstract units). */ 1580 1.12 mrg 1581 1.12 mrg inline unsigned int 1582 1.12 mrg vector_costs::outside_cost () const 1583 1.12 mrg { 1584 1.12 mrg return prologue_cost () + epilogue_cost (); 1585 1.12 mrg } 1586 1.12 mrg 1587 1.12 mrg /* Return the cost of the prologue, body and epilogue code 1588 1.12 mrg (in abstract units). */ 1589 1.12 mrg 1590 1.12 mrg inline unsigned int 1591 1.12 mrg vector_costs::total_cost () const 1592 1.12 mrg { 1593 1.12 mrg return body_cost () + outside_cost (); 1594 1.12 mrg } 1595 1.12 mrg 1596 1.12 mrg /* Return the suggested unroll factor. */ 1597 1.12 mrg 1598 1.12 mrg inline unsigned int 1599 1.12 mrg vector_costs::suggested_unroll_factor () const 1600 1.12 mrg { 1601 1.12 mrg gcc_checking_assert (m_finished); 1602 1.12 mrg return m_suggested_unroll_factor; 1603 1.12 mrg } 1604 1.12 mrg 1605 1.3 mrg #define VECT_MAX_COST 1000 1606 1.1 mrg 1607 1.1 mrg /* The maximum number of intermediate steps required in multi-step type 1608 1.1 mrg conversion. */ 1609 1.1 mrg #define MAX_INTERM_CVT_STEPS 3 1610 1.1 mrg 1611 1.9 mrg #define MAX_VECTORIZATION_FACTOR INT_MAX 1612 1.3 mrg 1613 1.8 mrg /* Nonzero if TYPE represents a (scalar) boolean type or type 1614 1.8 mrg in the middle-end compatible with it (unsigned precision 1 integral 1615 1.8 mrg types). Used to determine which types should be vectorized as 1616 1.8 mrg VECTOR_BOOLEAN_TYPE_P. */ 1617 1.8 mrg 1618 1.8 mrg #define VECT_SCALAR_BOOLEAN_TYPE_P(TYPE) \ 1619 1.8 mrg (TREE_CODE (TYPE) == BOOLEAN_TYPE \ 1620 1.8 mrg || ((TREE_CODE (TYPE) == INTEGER_TYPE \ 1621 1.8 mrg || TREE_CODE (TYPE) == ENUMERAL_TYPE) \ 1622 1.8 mrg && TYPE_PRECISION (TYPE) == 1 \ 1623 1.8 mrg && TYPE_UNSIGNED (TYPE))) 1624 1.8 mrg 1625 1.10 mrg static inline bool 1626 1.11 mrg nested_in_vect_loop_p (class loop *loop, stmt_vec_info stmt_info) 1627 1.1 mrg { 1628 1.10 mrg return (loop->inner 1629 1.10 mrg && (loop->inner == (gimple_bb (stmt_info->stmt))->loop_father)); 1630 1.1 mrg } 1631 1.1 mrg 1632 1.12 mrg /* PHI is either a scalar reduction phi or a scalar induction phi. 1633 1.12 mrg Return the initial value of the variable on entry to the containing 1634 1.12 mrg loop. */ 1635 1.12 mrg 1636 1.12 mrg static inline tree 1637 1.12 mrg vect_phi_initial_value (gphi *phi) 1638 1.12 mrg { 1639 1.12 mrg basic_block bb = gimple_bb (phi); 1640 1.12 mrg edge pe = loop_preheader_edge (bb->loop_father); 1641 1.12 mrg gcc_assert (pe->dest == bb); 1642 1.12 mrg return PHI_ARG_DEF_FROM_EDGE (phi, pe); 1643 1.12 mrg } 1644 1.12 mrg 1645 1.11 mrg /* Return true if STMT_INFO should produce a vector mask type rather than 1646 1.11 mrg a normal nonmask type. */ 1647 1.11 mrg 1648 1.11 mrg static inline bool 1649 1.11 mrg vect_use_mask_type_p (stmt_vec_info stmt_info) 1650 1.11 mrg { 1651 1.11 mrg return stmt_info->mask_precision && stmt_info->mask_precision != ~0U; 1652 1.11 mrg } 1653 1.11 mrg 1654 1.8 mrg /* Return TRUE if a statement represented by STMT_INFO is a part of a 1655 1.8 mrg pattern. */ 1656 1.3 mrg 1657 1.8 mrg static inline bool 1658 1.8 mrg is_pattern_stmt_p (stmt_vec_info stmt_info) 1659 1.1 mrg { 1660 1.10 mrg return stmt_info->pattern_stmt_p; 1661 1.10 mrg } 1662 1.1 mrg 1663 1.10 mrg /* If STMT_INFO is a pattern statement, return the statement that it 1664 1.10 mrg replaces, otherwise return STMT_INFO itself. */ 1665 1.1 mrg 1666 1.10 mrg inline stmt_vec_info 1667 1.10 mrg vect_orig_stmt (stmt_vec_info stmt_info) 1668 1.10 mrg { 1669 1.10 mrg if (is_pattern_stmt_p (stmt_info)) 1670 1.10 mrg return STMT_VINFO_RELATED_STMT (stmt_info); 1671 1.10 mrg return stmt_info; 1672 1.1 mrg } 1673 1.1 mrg 1674 1.10 mrg /* Return the later statement between STMT1_INFO and STMT2_INFO. */ 1675 1.3 mrg 1676 1.10 mrg static inline stmt_vec_info 1677 1.10 mrg get_later_stmt (stmt_vec_info stmt1_info, stmt_vec_info stmt2_info) 1678 1.3 mrg { 1679 1.10 mrg if (gimple_uid (vect_orig_stmt (stmt1_info)->stmt) 1680 1.10 mrg > gimple_uid (vect_orig_stmt (stmt2_info)->stmt)) 1681 1.10 mrg return stmt1_info; 1682 1.10 mrg else 1683 1.10 mrg return stmt2_info; 1684 1.10 mrg } 1685 1.3 mrg 1686 1.10 mrg /* If STMT_INFO has been replaced by a pattern statement, return the 1687 1.10 mrg replacement statement, otherwise return STMT_INFO itself. */ 1688 1.3 mrg 1689 1.10 mrg inline stmt_vec_info 1690 1.10 mrg vect_stmt_to_vectorize (stmt_vec_info stmt_info) 1691 1.10 mrg { 1692 1.10 mrg if (STMT_VINFO_IN_PATTERN_P (stmt_info)) 1693 1.10 mrg return STMT_VINFO_RELATED_STMT (stmt_info); 1694 1.10 mrg return stmt_info; 1695 1.3 mrg } 1696 1.3 mrg 1697 1.3 mrg /* Return true if BB is a loop header. */ 1698 1.3 mrg 1699 1.1 mrg static inline bool 1700 1.1 mrg is_loop_header_bb_p (basic_block bb) 1701 1.1 mrg { 1702 1.1 mrg if (bb == (bb->loop_father)->header) 1703 1.1 mrg return true; 1704 1.3 mrg gcc_checking_assert (EDGE_COUNT (bb->preds) == 1); 1705 1.1 mrg return false; 1706 1.1 mrg } 1707 1.1 mrg 1708 1.3 mrg /* Return pow2 (X). */ 1709 1.1 mrg 1710 1.1 mrg static inline int 1711 1.1 mrg vect_pow2 (int x) 1712 1.1 mrg { 1713 1.1 mrg int i, res = 1; 1714 1.1 mrg 1715 1.1 mrg for (i = 0; i < x; i++) 1716 1.1 mrg res *= 2; 1717 1.1 mrg 1718 1.1 mrg return res; 1719 1.1 mrg } 1720 1.1 mrg 1721 1.3 mrg /* Alias targetm.vectorize.builtin_vectorization_cost. */ 1722 1.3 mrg 1723 1.3 mrg static inline int 1724 1.3 mrg builtin_vectorization_cost (enum vect_cost_for_stmt type_of_cost, 1725 1.3 mrg tree vectype, int misalign) 1726 1.3 mrg { 1727 1.3 mrg return targetm.vectorize.builtin_vectorization_cost (type_of_cost, 1728 1.3 mrg vectype, misalign); 1729 1.3 mrg } 1730 1.3 mrg 1731 1.3 mrg /* Get cost by calling cost target builtin. */ 1732 1.3 mrg 1733 1.3 mrg static inline 1734 1.3 mrg int vect_get_stmt_cost (enum vect_cost_for_stmt type_of_cost) 1735 1.3 mrg { 1736 1.3 mrg return builtin_vectorization_cost (type_of_cost, NULL, 0); 1737 1.3 mrg } 1738 1.3 mrg 1739 1.3 mrg /* Alias targetm.vectorize.init_cost. */ 1740 1.3 mrg 1741 1.12 mrg static inline vector_costs * 1742 1.12 mrg init_cost (vec_info *vinfo, bool costing_for_scalar) 1743 1.3 mrg { 1744 1.12 mrg return targetm.vectorize.create_costs (vinfo, costing_for_scalar); 1745 1.3 mrg } 1746 1.3 mrg 1747 1.12 mrg extern void dump_stmt_cost (FILE *, int, enum vect_cost_for_stmt, 1748 1.12 mrg stmt_vec_info, slp_tree, tree, int, unsigned, 1749 1.10 mrg enum vect_cost_model_location); 1750 1.10 mrg 1751 1.3 mrg /* Alias targetm.vectorize.add_stmt_cost. */ 1752 1.3 mrg 1753 1.3 mrg static inline unsigned 1754 1.12 mrg add_stmt_cost (vector_costs *costs, int count, 1755 1.12 mrg enum vect_cost_for_stmt kind, 1756 1.12 mrg stmt_vec_info stmt_info, slp_tree node, 1757 1.12 mrg tree vectype, int misalign, 1758 1.3 mrg enum vect_cost_model_location where) 1759 1.3 mrg { 1760 1.12 mrg unsigned cost = costs->add_stmt_cost (count, kind, stmt_info, node, vectype, 1761 1.12 mrg misalign, where); 1762 1.10 mrg if (dump_file && (dump_flags & TDF_DETAILS)) 1763 1.12 mrg dump_stmt_cost (dump_file, count, kind, stmt_info, node, vectype, misalign, 1764 1.10 mrg cost, where); 1765 1.10 mrg return cost; 1766 1.3 mrg } 1767 1.3 mrg 1768 1.12 mrg static inline unsigned 1769 1.12 mrg add_stmt_cost (vector_costs *costs, int count, enum vect_cost_for_stmt kind, 1770 1.12 mrg enum vect_cost_model_location where) 1771 1.12 mrg { 1772 1.12 mrg gcc_assert (kind == cond_branch_taken || kind == cond_branch_not_taken 1773 1.12 mrg || kind == scalar_stmt); 1774 1.12 mrg return add_stmt_cost (costs, count, kind, NULL, NULL, NULL_TREE, 0, where); 1775 1.12 mrg } 1776 1.12 mrg 1777 1.12 mrg /* Alias targetm.vectorize.add_stmt_cost. */ 1778 1.3 mrg 1779 1.12 mrg static inline unsigned 1780 1.12 mrg add_stmt_cost (vector_costs *costs, stmt_info_for_cost *i) 1781 1.3 mrg { 1782 1.12 mrg return add_stmt_cost (costs, i->count, i->kind, i->stmt_info, i->node, 1783 1.12 mrg i->vectype, i->misalign, i->where); 1784 1.3 mrg } 1785 1.3 mrg 1786 1.12 mrg /* Alias targetm.vectorize.finish_cost. */ 1787 1.3 mrg 1788 1.3 mrg static inline void 1789 1.12 mrg finish_cost (vector_costs *costs, const vector_costs *scalar_costs, 1790 1.12 mrg unsigned *prologue_cost, unsigned *body_cost, 1791 1.12 mrg unsigned *epilogue_cost, unsigned *suggested_unroll_factor = NULL) 1792 1.12 mrg { 1793 1.12 mrg costs->finish_cost (scalar_costs); 1794 1.12 mrg *prologue_cost = costs->prologue_cost (); 1795 1.12 mrg *body_cost = costs->body_cost (); 1796 1.12 mrg *epilogue_cost = costs->epilogue_cost (); 1797 1.12 mrg if (suggested_unroll_factor) 1798 1.12 mrg *suggested_unroll_factor = costs->suggested_unroll_factor (); 1799 1.3 mrg } 1800 1.3 mrg 1801 1.10 mrg inline void 1802 1.12 mrg add_stmt_costs (vector_costs *costs, stmt_vector_for_cost *cost_vec) 1803 1.10 mrg { 1804 1.10 mrg stmt_info_for_cost *cost; 1805 1.10 mrg unsigned i; 1806 1.10 mrg FOR_EACH_VEC_ELT (*cost_vec, i, cost) 1807 1.12 mrg add_stmt_cost (costs, cost->count, cost->kind, cost->stmt_info, 1808 1.12 mrg cost->node, cost->vectype, cost->misalign, cost->where); 1809 1.10 mrg } 1810 1.10 mrg 1811 1.1 mrg /*-----------------------------------------------------------------*/ 1812 1.1 mrg /* Info on data references alignment. */ 1813 1.1 mrg /*-----------------------------------------------------------------*/ 1814 1.10 mrg #define DR_MISALIGNMENT_UNKNOWN (-1) 1815 1.10 mrg #define DR_MISALIGNMENT_UNINITIALIZED (-2) 1816 1.10 mrg 1817 1.5 mrg inline void 1818 1.10 mrg set_dr_misalignment (dr_vec_info *dr_info, int val) 1819 1.5 mrg { 1820 1.10 mrg dr_info->misalignment = val; 1821 1.5 mrg } 1822 1.5 mrg 1823 1.12 mrg extern int dr_misalignment (dr_vec_info *dr_info, tree vectype, 1824 1.12 mrg poly_int64 offset = 0); 1825 1.1 mrg 1826 1.5 mrg #define SET_DR_MISALIGNMENT(DR, VAL) set_dr_misalignment (DR, VAL) 1827 1.1 mrg 1828 1.9 mrg /* Only defined once DR_MISALIGNMENT is defined. */ 1829 1.12 mrg static inline const poly_uint64 1830 1.12 mrg dr_target_alignment (dr_vec_info *dr_info) 1831 1.12 mrg { 1832 1.12 mrg if (STMT_VINFO_GROUPED_ACCESS (dr_info->stmt)) 1833 1.12 mrg dr_info = STMT_VINFO_DR_INFO (DR_GROUP_FIRST_ELEMENT (dr_info->stmt)); 1834 1.12 mrg return dr_info->target_alignment; 1835 1.12 mrg } 1836 1.12 mrg #define DR_TARGET_ALIGNMENT(DR) dr_target_alignment (DR) 1837 1.9 mrg 1838 1.12 mrg static inline void 1839 1.12 mrg set_dr_target_alignment (dr_vec_info *dr_info, poly_uint64 val) 1840 1.12 mrg { 1841 1.12 mrg dr_info->target_alignment = val; 1842 1.12 mrg } 1843 1.12 mrg #define SET_DR_TARGET_ALIGNMENT(DR, VAL) set_dr_target_alignment (DR, VAL) 1844 1.12 mrg 1845 1.12 mrg /* Return true if data access DR_INFO is aligned to the targets 1846 1.12 mrg preferred alignment for VECTYPE (which may be less than a full vector). */ 1847 1.3 mrg 1848 1.1 mrg static inline bool 1849 1.12 mrg aligned_access_p (dr_vec_info *dr_info, tree vectype) 1850 1.1 mrg { 1851 1.12 mrg return (dr_misalignment (dr_info, vectype) == 0); 1852 1.1 mrg } 1853 1.1 mrg 1854 1.12 mrg /* Return TRUE if the (mis-)alignment of the data access is known with 1855 1.12 mrg respect to the targets preferred alignment for VECTYPE, and FALSE 1856 1.3 mrg otherwise. */ 1857 1.3 mrg 1858 1.1 mrg static inline bool 1859 1.12 mrg known_alignment_for_access_p (dr_vec_info *dr_info, tree vectype) 1860 1.1 mrg { 1861 1.12 mrg return (dr_misalignment (dr_info, vectype) != DR_MISALIGNMENT_UNKNOWN); 1862 1.9 mrg } 1863 1.9 mrg 1864 1.9 mrg /* Return the minimum alignment in bytes that the vectorized version 1865 1.10 mrg of DR_INFO is guaranteed to have. */ 1866 1.9 mrg 1867 1.9 mrg static inline unsigned int 1868 1.12 mrg vect_known_alignment_in_bytes (dr_vec_info *dr_info, tree vectype) 1869 1.9 mrg { 1870 1.12 mrg int misalignment = dr_misalignment (dr_info, vectype); 1871 1.12 mrg if (misalignment == DR_MISALIGNMENT_UNKNOWN) 1872 1.10 mrg return TYPE_ALIGN_UNIT (TREE_TYPE (DR_REF (dr_info->dr))); 1873 1.12 mrg else if (misalignment == 0) 1874 1.10 mrg return known_alignment (DR_TARGET_ALIGNMENT (dr_info)); 1875 1.12 mrg return misalignment & -misalignment; 1876 1.1 mrg } 1877 1.1 mrg 1878 1.10 mrg /* Return the behavior of DR_INFO with respect to the vectorization context 1879 1.9 mrg (which for outer loop vectorization might not be the behavior recorded 1880 1.10 mrg in DR_INFO itself). */ 1881 1.9 mrg 1882 1.9 mrg static inline innermost_loop_behavior * 1883 1.12 mrg vect_dr_behavior (vec_info *vinfo, dr_vec_info *dr_info) 1884 1.9 mrg { 1885 1.10 mrg stmt_vec_info stmt_info = dr_info->stmt; 1886 1.12 mrg loop_vec_info loop_vinfo = dyn_cast<loop_vec_info> (vinfo); 1887 1.9 mrg if (loop_vinfo == NULL 1888 1.10 mrg || !nested_in_vect_loop_p (LOOP_VINFO_LOOP (loop_vinfo), stmt_info)) 1889 1.10 mrg return &DR_INNERMOST (dr_info->dr); 1890 1.9 mrg else 1891 1.9 mrg return &STMT_VINFO_DR_WRT_VEC_LOOP (stmt_info); 1892 1.9 mrg } 1893 1.5 mrg 1894 1.11 mrg /* Return the offset calculated by adding the offset of this DR_INFO to the 1895 1.11 mrg corresponding data_reference's offset. If CHECK_OUTER then use 1896 1.11 mrg vect_dr_behavior to select the appropriate data_reference to use. */ 1897 1.11 mrg 1898 1.11 mrg inline tree 1899 1.12 mrg get_dr_vinfo_offset (vec_info *vinfo, 1900 1.12 mrg dr_vec_info *dr_info, bool check_outer = false) 1901 1.11 mrg { 1902 1.11 mrg innermost_loop_behavior *base; 1903 1.11 mrg if (check_outer) 1904 1.12 mrg base = vect_dr_behavior (vinfo, dr_info); 1905 1.11 mrg else 1906 1.11 mrg base = &dr_info->dr->innermost; 1907 1.11 mrg 1908 1.11 mrg tree offset = base->offset; 1909 1.11 mrg 1910 1.11 mrg if (!dr_info->offset) 1911 1.11 mrg return offset; 1912 1.11 mrg 1913 1.11 mrg offset = fold_convert (sizetype, offset); 1914 1.11 mrg return fold_build2 (PLUS_EXPR, TREE_TYPE (dr_info->offset), offset, 1915 1.11 mrg dr_info->offset); 1916 1.11 mrg } 1917 1.11 mrg 1918 1.11 mrg 1919 1.12 mrg /* Return the vect cost model for LOOP. */ 1920 1.12 mrg static inline enum vect_cost_model 1921 1.12 mrg loop_cost_model (loop_p loop) 1922 1.12 mrg { 1923 1.12 mrg if (loop != NULL 1924 1.12 mrg && loop->force_vectorize 1925 1.12 mrg && flag_simd_cost_model != VECT_COST_MODEL_DEFAULT) 1926 1.12 mrg return flag_simd_cost_model; 1927 1.12 mrg return flag_vect_cost_model; 1928 1.12 mrg } 1929 1.12 mrg 1930 1.5 mrg /* Return true if the vect cost model is unlimited. */ 1931 1.5 mrg static inline bool 1932 1.5 mrg unlimited_cost_model (loop_p loop) 1933 1.5 mrg { 1934 1.12 mrg return loop_cost_model (loop) == VECT_COST_MODEL_UNLIMITED; 1935 1.5 mrg } 1936 1.5 mrg 1937 1.9 mrg /* Return true if the loop described by LOOP_VINFO is fully-masked and 1938 1.9 mrg if the first iteration should use a partial mask in order to achieve 1939 1.9 mrg alignment. */ 1940 1.9 mrg 1941 1.9 mrg static inline bool 1942 1.9 mrg vect_use_loop_mask_for_alignment_p (loop_vec_info loop_vinfo) 1943 1.9 mrg { 1944 1.9 mrg return (LOOP_VINFO_FULLY_MASKED_P (loop_vinfo) 1945 1.9 mrg && LOOP_VINFO_PEELING_FOR_ALIGNMENT (loop_vinfo)); 1946 1.9 mrg } 1947 1.9 mrg 1948 1.9 mrg /* Return the number of vectors of type VECTYPE that are needed to get 1949 1.9 mrg NUNITS elements. NUNITS should be based on the vectorization factor, 1950 1.9 mrg so it is always a known multiple of the number of elements in VECTYPE. */ 1951 1.9 mrg 1952 1.9 mrg static inline unsigned int 1953 1.9 mrg vect_get_num_vectors (poly_uint64 nunits, tree vectype) 1954 1.9 mrg { 1955 1.9 mrg return exact_div (nunits, TYPE_VECTOR_SUBPARTS (vectype)).to_constant (); 1956 1.9 mrg } 1957 1.9 mrg 1958 1.9 mrg /* Return the number of copies needed for loop vectorization when 1959 1.9 mrg a statement operates on vectors of type VECTYPE. This is the 1960 1.9 mrg vectorization factor divided by the number of elements in 1961 1.9 mrg VECTYPE and is always known at compile time. */ 1962 1.9 mrg 1963 1.9 mrg static inline unsigned int 1964 1.9 mrg vect_get_num_copies (loop_vec_info loop_vinfo, tree vectype) 1965 1.9 mrg { 1966 1.9 mrg return vect_get_num_vectors (LOOP_VINFO_VECT_FACTOR (loop_vinfo), vectype); 1967 1.9 mrg } 1968 1.9 mrg 1969 1.9 mrg /* Update maximum unit count *MAX_NUNITS so that it accounts for 1970 1.10 mrg NUNITS. *MAX_NUNITS can be 1 if we haven't yet recorded anything. */ 1971 1.9 mrg 1972 1.9 mrg static inline void 1973 1.10 mrg vect_update_max_nunits (poly_uint64 *max_nunits, poly_uint64 nunits) 1974 1.9 mrg { 1975 1.11 mrg /* All unit counts have the form vec_info::vector_size * X for some 1976 1.9 mrg rational X, so two unit sizes must have a common multiple. 1977 1.9 mrg Everything is a multiple of the initial value of 1. */ 1978 1.9 mrg *max_nunits = force_common_multiple (*max_nunits, nunits); 1979 1.9 mrg } 1980 1.9 mrg 1981 1.10 mrg /* Update maximum unit count *MAX_NUNITS so that it accounts for 1982 1.10 mrg the number of units in vector type VECTYPE. *MAX_NUNITS can be 1 1983 1.10 mrg if we haven't yet recorded any vector types. */ 1984 1.10 mrg 1985 1.10 mrg static inline void 1986 1.10 mrg vect_update_max_nunits (poly_uint64 *max_nunits, tree vectype) 1987 1.10 mrg { 1988 1.10 mrg vect_update_max_nunits (max_nunits, TYPE_VECTOR_SUBPARTS (vectype)); 1989 1.10 mrg } 1990 1.10 mrg 1991 1.9 mrg /* Return the vectorization factor that should be used for costing 1992 1.9 mrg purposes while vectorizing the loop described by LOOP_VINFO. 1993 1.9 mrg Pick a reasonable estimate if the vectorization factor isn't 1994 1.9 mrg known at compile time. */ 1995 1.9 mrg 1996 1.9 mrg static inline unsigned int 1997 1.9 mrg vect_vf_for_cost (loop_vec_info loop_vinfo) 1998 1.9 mrg { 1999 1.9 mrg return estimated_poly_value (LOOP_VINFO_VECT_FACTOR (loop_vinfo)); 2000 1.9 mrg } 2001 1.9 mrg 2002 1.9 mrg /* Estimate the number of elements in VEC_TYPE for costing purposes. 2003 1.9 mrg Pick a reasonable estimate if the exact number isn't known at 2004 1.9 mrg compile time. */ 2005 1.9 mrg 2006 1.9 mrg static inline unsigned int 2007 1.9 mrg vect_nunits_for_cost (tree vec_type) 2008 1.9 mrg { 2009 1.9 mrg return estimated_poly_value (TYPE_VECTOR_SUBPARTS (vec_type)); 2010 1.9 mrg } 2011 1.9 mrg 2012 1.9 mrg /* Return the maximum possible vectorization factor for LOOP_VINFO. */ 2013 1.9 mrg 2014 1.9 mrg static inline unsigned HOST_WIDE_INT 2015 1.9 mrg vect_max_vf (loop_vec_info loop_vinfo) 2016 1.9 mrg { 2017 1.9 mrg unsigned HOST_WIDE_INT vf; 2018 1.9 mrg if (LOOP_VINFO_VECT_FACTOR (loop_vinfo).is_constant (&vf)) 2019 1.9 mrg return vf; 2020 1.9 mrg return MAX_VECTORIZATION_FACTOR; 2021 1.9 mrg } 2022 1.9 mrg 2023 1.10 mrg /* Return the size of the value accessed by unvectorized data reference 2024 1.10 mrg DR_INFO. This is only valid once STMT_VINFO_VECTYPE has been calculated 2025 1.10 mrg for the associated gimple statement, since that guarantees that DR_INFO 2026 1.10 mrg accesses either a scalar or a scalar equivalent. ("Scalar equivalent" 2027 1.10 mrg here includes things like V1SI, which can be vectorized in the same way 2028 1.9 mrg as a plain SI.) */ 2029 1.9 mrg 2030 1.9 mrg inline unsigned int 2031 1.10 mrg vect_get_scalar_dr_size (dr_vec_info *dr_info) 2032 1.9 mrg { 2033 1.10 mrg return tree_to_uhwi (TYPE_SIZE_UNIT (TREE_TYPE (DR_REF (dr_info->dr)))); 2034 1.9 mrg } 2035 1.9 mrg 2036 1.11 mrg /* Return true if LOOP_VINFO requires a runtime check for whether the 2037 1.11 mrg vector loop is profitable. */ 2038 1.11 mrg 2039 1.11 mrg inline bool 2040 1.11 mrg vect_apply_runtime_profitability_check_p (loop_vec_info loop_vinfo) 2041 1.11 mrg { 2042 1.11 mrg unsigned int th = LOOP_VINFO_COST_MODEL_THRESHOLD (loop_vinfo); 2043 1.11 mrg return (!LOOP_VINFO_NITERS_KNOWN_P (loop_vinfo) 2044 1.11 mrg && th >= vect_vf_for_cost (loop_vinfo)); 2045 1.11 mrg } 2046 1.11 mrg 2047 1.10 mrg /* Source location + hotness information. */ 2048 1.10 mrg extern dump_user_location_t vect_location; 2049 1.10 mrg 2050 1.10 mrg /* A macro for calling: 2051 1.10 mrg dump_begin_scope (MSG, vect_location); 2052 1.10 mrg via an RAII object, thus printing "=== MSG ===\n" to the dumpfile etc, 2053 1.10 mrg and then calling 2054 1.10 mrg dump_end_scope (); 2055 1.10 mrg once the object goes out of scope, thus capturing the nesting of 2056 1.10 mrg the scopes. 2057 1.10 mrg 2058 1.10 mrg These scopes affect dump messages within them: dump messages at the 2059 1.10 mrg top level implicitly default to MSG_PRIORITY_USER_FACING, whereas those 2060 1.10 mrg in a nested scope implicitly default to MSG_PRIORITY_INTERNALS. */ 2061 1.10 mrg 2062 1.10 mrg #define DUMP_VECT_SCOPE(MSG) \ 2063 1.10 mrg AUTO_DUMP_SCOPE (MSG, vect_location) 2064 1.10 mrg 2065 1.10 mrg /* A sentinel class for ensuring that the "vect_location" global gets 2066 1.10 mrg reset at the end of a scope. 2067 1.10 mrg 2068 1.10 mrg The "vect_location" global is used during dumping and contains a 2069 1.10 mrg location_t, which could contain references to a tree block via the 2070 1.10 mrg ad-hoc data. This data is used for tracking inlining information, 2071 1.10 mrg but it's not a GC root; it's simply assumed that such locations never 2072 1.10 mrg get accessed if the blocks are optimized away. 2073 1.10 mrg 2074 1.10 mrg Hence we need to ensure that such locations are purged at the end 2075 1.10 mrg of any operations using them (e.g. via this class). */ 2076 1.10 mrg 2077 1.10 mrg class auto_purge_vect_location 2078 1.10 mrg { 2079 1.10 mrg public: 2080 1.10 mrg ~auto_purge_vect_location (); 2081 1.10 mrg }; 2082 1.1 mrg 2083 1.1 mrg /*-----------------------------------------------------------------*/ 2084 1.1 mrg /* Function prototypes. */ 2085 1.1 mrg /*-----------------------------------------------------------------*/ 2086 1.1 mrg 2087 1.1 mrg /* Simple loop peeling and versioning utilities for vectorizer's purposes - 2088 1.12 mrg in tree-vect-loop-manip.cc. */ 2089 1.11 mrg extern void vect_set_loop_condition (class loop *, loop_vec_info, 2090 1.9 mrg tree, tree, tree, bool); 2091 1.11 mrg extern bool slpeel_can_duplicate_loop_p (const class loop *, const_edge); 2092 1.11 mrg class loop *slpeel_tree_duplicate_loop_to_edge_cfg (class loop *, 2093 1.11 mrg class loop *, edge); 2094 1.11 mrg class loop *vect_loop_versioning (loop_vec_info, gimple *); 2095 1.11 mrg extern class loop *vect_do_peeling (loop_vec_info, tree, tree, 2096 1.11 mrg tree *, tree *, tree *, int, bool, bool, 2097 1.11 mrg tree *); 2098 1.12 mrg extern tree vect_get_main_loop_result (loop_vec_info, tree, tree); 2099 1.9 mrg extern void vect_prepare_for_masked_peels (loop_vec_info); 2100 1.11 mrg extern dump_user_location_t find_loop_location (class loop *); 2101 1.1 mrg extern bool vect_can_advance_ivs_p (loop_vec_info); 2102 1.11 mrg extern void vect_update_inits_of_drs (loop_vec_info, tree, tree_code); 2103 1.1 mrg 2104 1.12 mrg /* In tree-vect-stmts.cc. */ 2105 1.11 mrg extern tree get_related_vectype_for_scalar_type (machine_mode, tree, 2106 1.11 mrg poly_uint64 = 0); 2107 1.11 mrg extern tree get_vectype_for_scalar_type (vec_info *, tree, unsigned int = 0); 2108 1.11 mrg extern tree get_vectype_for_scalar_type (vec_info *, tree, slp_tree); 2109 1.11 mrg extern tree get_mask_type_for_scalar_type (vec_info *, tree, unsigned int = 0); 2110 1.3 mrg extern tree get_same_sized_vectype (tree, tree); 2111 1.11 mrg extern bool vect_chooses_same_modes_p (vec_info *, machine_mode); 2112 1.9 mrg extern bool vect_get_loop_mask_type (loop_vec_info); 2113 1.10 mrg extern bool vect_is_simple_use (tree, vec_info *, enum vect_def_type *, 2114 1.10 mrg stmt_vec_info * = NULL, gimple ** = NULL); 2115 1.10 mrg extern bool vect_is_simple_use (tree, vec_info *, enum vect_def_type *, 2116 1.10 mrg tree *, stmt_vec_info * = NULL, 2117 1.10 mrg gimple ** = NULL); 2118 1.12 mrg extern bool vect_is_simple_use (vec_info *, stmt_vec_info, slp_tree, 2119 1.12 mrg unsigned, tree *, slp_tree *, 2120 1.12 mrg enum vect_def_type *, 2121 1.12 mrg tree *, stmt_vec_info * = NULL); 2122 1.12 mrg extern bool vect_maybe_update_slp_op_vectype (slp_tree, tree); 2123 1.12 mrg extern bool supportable_widening_operation (vec_info *, 2124 1.12 mrg enum tree_code, stmt_vec_info, 2125 1.10 mrg tree, tree, enum tree_code *, 2126 1.6 mrg enum tree_code *, int *, 2127 1.6 mrg vec<tree> *); 2128 1.3 mrg extern bool supportable_narrowing_operation (enum tree_code, tree, tree, 2129 1.11 mrg enum tree_code *, int *, 2130 1.11 mrg vec<tree> *); 2131 1.12 mrg 2132 1.3 mrg extern unsigned record_stmt_cost (stmt_vector_for_cost *, int, 2133 1.3 mrg enum vect_cost_for_stmt, stmt_vec_info, 2134 1.12 mrg tree, int, enum vect_cost_model_location); 2135 1.12 mrg extern unsigned record_stmt_cost (stmt_vector_for_cost *, int, 2136 1.12 mrg enum vect_cost_for_stmt, slp_tree, 2137 1.12 mrg tree, int, enum vect_cost_model_location); 2138 1.12 mrg extern unsigned record_stmt_cost (stmt_vector_for_cost *, int, 2139 1.12 mrg enum vect_cost_for_stmt, 2140 1.12 mrg enum vect_cost_model_location); 2141 1.12 mrg 2142 1.12 mrg /* Overload of record_stmt_cost with VECTYPE derived from STMT_INFO. */ 2143 1.12 mrg 2144 1.12 mrg static inline unsigned 2145 1.12 mrg record_stmt_cost (stmt_vector_for_cost *body_cost_vec, int count, 2146 1.12 mrg enum vect_cost_for_stmt kind, stmt_vec_info stmt_info, 2147 1.12 mrg int misalign, enum vect_cost_model_location where) 2148 1.12 mrg { 2149 1.12 mrg return record_stmt_cost (body_cost_vec, count, kind, stmt_info, 2150 1.12 mrg STMT_VINFO_VECTYPE (stmt_info), misalign, where); 2151 1.12 mrg } 2152 1.12 mrg 2153 1.12 mrg extern void vect_finish_replace_stmt (vec_info *, stmt_vec_info, gimple *); 2154 1.12 mrg extern void vect_finish_stmt_generation (vec_info *, stmt_vec_info, gimple *, 2155 1.12 mrg gimple_stmt_iterator *); 2156 1.11 mrg extern opt_result vect_mark_stmts_to_be_vectorized (loop_vec_info, bool *); 2157 1.10 mrg extern tree vect_get_store_rhs (stmt_vec_info); 2158 1.12 mrg void vect_get_vec_defs_for_operand (vec_info *vinfo, stmt_vec_info, unsigned, 2159 1.12 mrg tree op, vec<tree> *, tree = NULL); 2160 1.12 mrg void vect_get_vec_defs (vec_info *, stmt_vec_info, slp_tree, unsigned, 2161 1.12 mrg tree, vec<tree> *, 2162 1.12 mrg tree = NULL, vec<tree> * = NULL, 2163 1.12 mrg tree = NULL, vec<tree> * = NULL, 2164 1.12 mrg tree = NULL, vec<tree> * = NULL); 2165 1.12 mrg void vect_get_vec_defs (vec_info *, stmt_vec_info, slp_tree, unsigned, 2166 1.12 mrg tree, vec<tree> *, tree, 2167 1.12 mrg tree = NULL, vec<tree> * = NULL, tree = NULL, 2168 1.12 mrg tree = NULL, vec<tree> * = NULL, tree = NULL, 2169 1.12 mrg tree = NULL, vec<tree> * = NULL, tree = NULL); 2170 1.12 mrg extern tree vect_init_vector (vec_info *, stmt_vec_info, tree, tree, 2171 1.1 mrg gimple_stmt_iterator *); 2172 1.12 mrg extern tree vect_get_slp_vect_def (slp_tree, unsigned); 2173 1.12 mrg extern bool vect_transform_stmt (vec_info *, stmt_vec_info, 2174 1.12 mrg gimple_stmt_iterator *, 2175 1.10 mrg slp_tree, slp_instance); 2176 1.12 mrg extern void vect_remove_stores (vec_info *, stmt_vec_info); 2177 1.11 mrg extern bool vect_nop_conversion_p (stmt_vec_info); 2178 1.12 mrg extern opt_result vect_analyze_stmt (vec_info *, stmt_vec_info, bool *, 2179 1.12 mrg slp_tree, 2180 1.10 mrg slp_instance, stmt_vector_for_cost *); 2181 1.12 mrg extern void vect_get_load_cost (vec_info *, stmt_vec_info, int, 2182 1.12 mrg dr_alignment_support, int, bool, 2183 1.3 mrg unsigned int *, unsigned int *, 2184 1.3 mrg stmt_vector_for_cost *, 2185 1.3 mrg stmt_vector_for_cost *, bool); 2186 1.12 mrg extern void vect_get_store_cost (vec_info *, stmt_vec_info, int, 2187 1.12 mrg dr_alignment_support, int, 2188 1.3 mrg unsigned int *, stmt_vector_for_cost *); 2189 1.11 mrg extern bool vect_supportable_shift (vec_info *, enum tree_code, tree); 2190 1.9 mrg extern tree vect_gen_perm_mask_any (tree, const vec_perm_indices &); 2191 1.9 mrg extern tree vect_gen_perm_mask_checked (tree, const vec_perm_indices &); 2192 1.11 mrg extern void optimize_mask_stores (class loop*); 2193 1.12 mrg extern tree vect_gen_while (gimple_seq *, tree, tree, tree, 2194 1.12 mrg const char * = nullptr); 2195 1.9 mrg extern tree vect_gen_while_not (gimple_seq *, tree, tree, tree); 2196 1.12 mrg extern opt_result vect_get_vector_types_for_stmt (vec_info *, 2197 1.12 mrg stmt_vec_info, tree *, 2198 1.11 mrg tree *, unsigned int = 0); 2199 1.11 mrg extern opt_tree vect_get_mask_type_for_stmt (stmt_vec_info, unsigned int = 0); 2200 1.1 mrg 2201 1.12 mrg /* In tree-vect-data-refs.cc. */ 2202 1.10 mrg extern bool vect_can_force_dr_alignment_p (const_tree, poly_uint64); 2203 1.1 mrg extern enum dr_alignment_support vect_supportable_dr_alignment 2204 1.12 mrg (vec_info *, dr_vec_info *, tree, int); 2205 1.12 mrg extern tree vect_get_smallest_scalar_type (stmt_vec_info, tree); 2206 1.10 mrg extern opt_result vect_analyze_data_ref_dependences (loop_vec_info, unsigned int *); 2207 1.12 mrg extern bool vect_slp_analyze_instance_dependence (vec_info *, slp_instance); 2208 1.10 mrg extern opt_result vect_enhance_data_refs_alignment (loop_vec_info); 2209 1.10 mrg extern opt_result vect_analyze_data_refs_alignment (loop_vec_info); 2210 1.12 mrg extern bool vect_slp_analyze_instance_alignment (vec_info *, slp_instance); 2211 1.12 mrg extern opt_result vect_analyze_data_ref_accesses (vec_info *, vec<int> *); 2212 1.10 mrg extern opt_result vect_prune_runtime_alias_test_list (loop_vec_info); 2213 1.11 mrg extern bool vect_gather_scatter_fn_p (vec_info *, bool, bool, tree, tree, 2214 1.11 mrg tree, int, internal_fn *, tree *); 2215 1.10 mrg extern bool vect_check_gather_scatter (stmt_vec_info, loop_vec_info, 2216 1.8 mrg gather_scatter_info *); 2217 1.10 mrg extern opt_result vect_find_stmt_data_reference (loop_p, gimple *, 2218 1.12 mrg vec<data_reference_p> *, 2219 1.12 mrg vec<int> *, int); 2220 1.11 mrg extern opt_result vect_analyze_data_refs (vec_info *, poly_uint64 *, bool *); 2221 1.9 mrg extern void vect_record_base_alignments (vec_info *); 2222 1.12 mrg extern tree vect_create_data_ref_ptr (vec_info *, 2223 1.12 mrg stmt_vec_info, tree, class loop *, tree, 2224 1.3 mrg tree *, gimple_stmt_iterator *, 2225 1.10 mrg gimple **, bool, 2226 1.12 mrg tree = NULL_TREE); 2227 1.12 mrg extern tree bump_vector_ptr (vec_info *, tree, gimple *, gimple_stmt_iterator *, 2228 1.10 mrg stmt_vec_info, tree); 2229 1.9 mrg extern void vect_copy_ref_info (tree, tree); 2230 1.1 mrg extern tree vect_create_destination_var (tree, tree); 2231 1.3 mrg extern bool vect_grouped_store_supported (tree, unsigned HOST_WIDE_INT); 2232 1.9 mrg extern bool vect_store_lanes_supported (tree, unsigned HOST_WIDE_INT, bool); 2233 1.8 mrg extern bool vect_grouped_load_supported (tree, bool, unsigned HOST_WIDE_INT); 2234 1.9 mrg extern bool vect_load_lanes_supported (tree, unsigned HOST_WIDE_INT, bool); 2235 1.12 mrg extern void vect_permute_store_chain (vec_info *, vec<tree> &, 2236 1.12 mrg unsigned int, stmt_vec_info, 2237 1.12 mrg gimple_stmt_iterator *, vec<tree> *); 2238 1.12 mrg extern tree vect_setup_realignment (vec_info *, 2239 1.12 mrg stmt_vec_info, gimple_stmt_iterator *, 2240 1.10 mrg tree *, enum dr_alignment_support, tree, 2241 1.11 mrg class loop **); 2242 1.12 mrg extern void vect_transform_grouped_load (vec_info *, stmt_vec_info, vec<tree>, 2243 1.12 mrg int, gimple_stmt_iterator *); 2244 1.12 mrg extern void vect_record_grouped_load_vectors (vec_info *, 2245 1.12 mrg stmt_vec_info, vec<tree>); 2246 1.1 mrg extern tree vect_get_new_vect_var (tree, enum vect_var_kind, const char *); 2247 1.6 mrg extern tree vect_get_new_ssa_name (tree, enum vect_var_kind, 2248 1.6 mrg const char * = NULL); 2249 1.12 mrg extern tree vect_create_addr_base_for_vector_ref (vec_info *, 2250 1.12 mrg stmt_vec_info, gimple_seq *, 2251 1.12 mrg tree); 2252 1.12 mrg 2253 1.12 mrg /* In tree-vect-loop.cc. */ 2254 1.12 mrg extern tree neutral_op_for_reduction (tree, code_helper, tree); 2255 1.12 mrg extern widest_int vect_iv_limit_for_partial_vectors (loop_vec_info loop_vinfo); 2256 1.12 mrg bool vect_rgroup_iv_might_wrap_p (loop_vec_info, rgroup_controls *); 2257 1.12 mrg /* Used in tree-vect-loop-manip.cc */ 2258 1.12 mrg extern opt_result vect_determine_partial_vectors_and_peeling (loop_vec_info, 2259 1.12 mrg bool); 2260 1.12 mrg /* Used in gimple-loop-interchange.c and tree-parloops.cc. */ 2261 1.10 mrg extern bool check_reduction_path (dump_user_location_t, loop_p, gphi *, tree, 2262 1.9 mrg enum tree_code); 2263 1.12 mrg extern bool needs_fold_left_reduction_p (tree, code_helper); 2264 1.1 mrg /* Drive for loop analysis stage. */ 2265 1.11 mrg extern opt_loop_vec_info vect_analyze_loop (class loop *, vec_info_shared *); 2266 1.9 mrg extern tree vect_build_loop_niters (loop_vec_info, bool * = NULL); 2267 1.9 mrg extern void vect_gen_vector_loop_niters (loop_vec_info, tree, tree *, 2268 1.9 mrg tree *, bool); 2269 1.11 mrg extern tree vect_halve_mask_nunits (tree, machine_mode); 2270 1.11 mrg extern tree vect_double_mask_nunits (tree, machine_mode); 2271 1.9 mrg extern void vect_record_loop_mask (loop_vec_info, vec_loop_masks *, 2272 1.11 mrg unsigned int, tree, tree); 2273 1.9 mrg extern tree vect_get_loop_mask (gimple_stmt_iterator *, vec_loop_masks *, 2274 1.9 mrg unsigned int, tree, unsigned int); 2275 1.12 mrg extern void vect_record_loop_len (loop_vec_info, vec_loop_lens *, unsigned int, 2276 1.12 mrg tree, unsigned int); 2277 1.12 mrg extern tree vect_get_loop_len (loop_vec_info, vec_loop_lens *, unsigned int, 2278 1.12 mrg unsigned int); 2279 1.12 mrg extern gimple_seq vect_gen_len (tree, tree, tree, tree); 2280 1.12 mrg extern stmt_vec_info info_for_reduction (vec_info *, stmt_vec_info); 2281 1.12 mrg extern bool reduction_fn_for_scalar_code (code_helper, internal_fn *); 2282 1.9 mrg 2283 1.1 mrg /* Drive for loop transformation stage. */ 2284 1.11 mrg extern class loop *vect_transform_loop (loop_vec_info, gimple *); 2285 1.12 mrg struct vect_loop_form_info 2286 1.12 mrg { 2287 1.12 mrg tree number_of_iterations; 2288 1.12 mrg tree number_of_iterationsm1; 2289 1.12 mrg tree assumptions; 2290 1.12 mrg gcond *loop_cond; 2291 1.12 mrg gcond *inner_loop_cond; 2292 1.12 mrg }; 2293 1.12 mrg extern opt_result vect_analyze_loop_form (class loop *, vect_loop_form_info *); 2294 1.12 mrg extern loop_vec_info vect_create_loop_vinfo (class loop *, vec_info_shared *, 2295 1.12 mrg const vect_loop_form_info *, 2296 1.12 mrg loop_vec_info = nullptr); 2297 1.12 mrg extern bool vectorizable_live_operation (vec_info *, 2298 1.12 mrg stmt_vec_info, gimple_stmt_iterator *, 2299 1.11 mrg slp_tree, slp_instance, int, 2300 1.11 mrg bool, stmt_vector_for_cost *); 2301 1.12 mrg extern bool vectorizable_reduction (loop_vec_info, stmt_vec_info, 2302 1.12 mrg slp_tree, slp_instance, 2303 1.10 mrg stmt_vector_for_cost *); 2304 1.12 mrg extern bool vectorizable_induction (loop_vec_info, stmt_vec_info, 2305 1.12 mrg gimple **, slp_tree, 2306 1.10 mrg stmt_vector_for_cost *); 2307 1.12 mrg extern bool vect_transform_reduction (loop_vec_info, stmt_vec_info, 2308 1.12 mrg gimple_stmt_iterator *, 2309 1.12 mrg gimple **, slp_tree); 2310 1.12 mrg extern bool vect_transform_cycle_phi (loop_vec_info, stmt_vec_info, 2311 1.12 mrg gimple **, 2312 1.11 mrg slp_tree, slp_instance); 2313 1.12 mrg extern bool vectorizable_lc_phi (loop_vec_info, stmt_vec_info, 2314 1.12 mrg gimple **, slp_tree); 2315 1.12 mrg extern bool vectorizable_phi (vec_info *, stmt_vec_info, gimple **, slp_tree, 2316 1.12 mrg stmt_vector_for_cost *); 2317 1.12 mrg extern bool vect_emulated_vector_p (tree); 2318 1.12 mrg extern bool vect_can_vectorize_without_simd_p (tree_code); 2319 1.12 mrg extern bool vect_can_vectorize_without_simd_p (code_helper); 2320 1.5 mrg extern int vect_get_known_peeling_cost (loop_vec_info, int, int *, 2321 1.5 mrg stmt_vector_for_cost *, 2322 1.3 mrg stmt_vector_for_cost *, 2323 1.3 mrg stmt_vector_for_cost *); 2324 1.9 mrg extern tree cse_and_gimplify_to_preheader (loop_vec_info, tree); 2325 1.1 mrg 2326 1.12 mrg /* In tree-vect-slp.cc. */ 2327 1.12 mrg extern void vect_slp_init (void); 2328 1.12 mrg extern void vect_slp_fini (void); 2329 1.12 mrg extern void vect_free_slp_instance (slp_instance); 2330 1.12 mrg extern bool vect_transform_slp_perm_load (vec_info *, slp_tree, const vec<tree> &, 2331 1.9 mrg gimple_stmt_iterator *, poly_uint64, 2332 1.12 mrg bool, unsigned *, 2333 1.12 mrg unsigned * = nullptr, bool = false); 2334 1.9 mrg extern bool vect_slp_analyze_operations (vec_info *); 2335 1.12 mrg extern void vect_schedule_slp (vec_info *, const vec<slp_instance> &); 2336 1.10 mrg extern opt_result vect_analyze_slp (vec_info *, unsigned); 2337 1.3 mrg extern bool vect_make_slp_decision (loop_vec_info); 2338 1.1 mrg extern void vect_detect_hybrid_slp (loop_vec_info); 2339 1.12 mrg extern void vect_optimize_slp (vec_info *); 2340 1.12 mrg extern void vect_gather_slp_loads (vec_info *); 2341 1.12 mrg extern void vect_get_slp_defs (slp_tree, vec<tree> *); 2342 1.12 mrg extern void vect_get_slp_defs (vec_info *, slp_tree, vec<vec<tree> > *, 2343 1.12 mrg unsigned n = -1U); 2344 1.12 mrg extern bool vect_slp_if_converted_bb (basic_block bb, loop_p orig_loop); 2345 1.12 mrg extern bool vect_slp_function (function *); 2346 1.10 mrg extern stmt_vec_info vect_find_last_scalar_stmt_in_slp (slp_tree); 2347 1.12 mrg extern stmt_vec_info vect_find_first_scalar_stmt_in_slp (slp_tree); 2348 1.10 mrg extern bool is_simple_and_all_uses_invariant (stmt_vec_info, loop_vec_info); 2349 1.11 mrg extern bool can_duplicate_and_interleave_p (vec_info *, unsigned int, tree, 2350 1.9 mrg unsigned int * = NULL, 2351 1.9 mrg tree * = NULL, tree * = NULL); 2352 1.11 mrg extern void duplicate_and_interleave (vec_info *, gimple_seq *, tree, 2353 1.12 mrg const vec<tree> &, unsigned int, vec<tree> &); 2354 1.10 mrg extern int vect_get_place_in_interleaving_chain (stmt_vec_info, stmt_vec_info); 2355 1.12 mrg extern slp_tree vect_create_new_slp_node (unsigned, tree_code); 2356 1.12 mrg extern void vect_free_slp_tree (slp_tree); 2357 1.12 mrg extern bool compatible_calls_p (gcall *, gcall *); 2358 1.12 mrg 2359 1.12 mrg /* In tree-vect-patterns.cc. */ 2360 1.12 mrg extern void 2361 1.12 mrg vect_mark_pattern_stmts (vec_info *, stmt_vec_info, gimple *, tree); 2362 1.1 mrg 2363 1.1 mrg /* Pattern recognition functions. 2364 1.1 mrg Additional pattern recognition functions can (and will) be added 2365 1.1 mrg in the future. */ 2366 1.6 mrg void vect_pattern_recog (vec_info *); 2367 1.1 mrg 2368 1.12 mrg /* In tree-vectorizer.cc. */ 2369 1.1 mrg unsigned vectorize_loops (void); 2370 1.11 mrg void vect_free_loop_info_assumptions (class loop *); 2371 1.11 mrg gimple *vect_loop_vectorized_call (class loop *, gcond **cond = NULL); 2372 1.12 mrg bool vect_stmt_dominates_stmt_p (gimple *, gimple *); 2373 1.12 mrg 2374 1.12 mrg /* SLP Pattern matcher types, tree-vect-slp-patterns.cc. */ 2375 1.12 mrg 2376 1.12 mrg /* Forward declaration of possible two operands operation that can be matched 2377 1.12 mrg by the complex numbers pattern matchers. */ 2378 1.12 mrg enum _complex_operation : unsigned; 2379 1.12 mrg 2380 1.12 mrg /* All possible load permute values that could result from the partial data-flow 2381 1.12 mrg analysis. */ 2382 1.12 mrg typedef enum _complex_perm_kinds { 2383 1.12 mrg PERM_UNKNOWN, 2384 1.12 mrg PERM_EVENODD, 2385 1.12 mrg PERM_ODDEVEN, 2386 1.12 mrg PERM_ODDODD, 2387 1.12 mrg PERM_EVENEVEN, 2388 1.12 mrg /* Can be combined with any other PERM values. */ 2389 1.12 mrg PERM_TOP 2390 1.12 mrg } complex_perm_kinds_t; 2391 1.12 mrg 2392 1.12 mrg /* Cache from nodes to the load permutation they represent. */ 2393 1.12 mrg typedef hash_map <slp_tree, complex_perm_kinds_t> 2394 1.12 mrg slp_tree_to_load_perm_map_t; 2395 1.12 mrg 2396 1.12 mrg /* Cache from nodes pair to being compatible or not. */ 2397 1.12 mrg typedef pair_hash <nofree_ptr_hash <_slp_tree>, 2398 1.12 mrg nofree_ptr_hash <_slp_tree>> slp_node_hash; 2399 1.12 mrg typedef hash_map <slp_node_hash, bool> slp_compat_nodes_map_t; 2400 1.12 mrg 2401 1.12 mrg 2402 1.12 mrg /* Vector pattern matcher base class. All SLP pattern matchers must inherit 2403 1.12 mrg from this type. */ 2404 1.12 mrg 2405 1.12 mrg class vect_pattern 2406 1.12 mrg { 2407 1.12 mrg protected: 2408 1.12 mrg /* The number of arguments that the IFN requires. */ 2409 1.12 mrg unsigned m_num_args; 2410 1.12 mrg 2411 1.12 mrg /* The internal function that will be used when a pattern is created. */ 2412 1.12 mrg internal_fn m_ifn; 2413 1.12 mrg 2414 1.12 mrg /* The current node being inspected. */ 2415 1.12 mrg slp_tree *m_node; 2416 1.12 mrg 2417 1.12 mrg /* The list of operands to be the children for the node produced when the 2418 1.12 mrg internal function is created. */ 2419 1.12 mrg vec<slp_tree> m_ops; 2420 1.12 mrg 2421 1.12 mrg /* Default constructor where NODE is the root of the tree to inspect. */ 2422 1.12 mrg vect_pattern (slp_tree *node, vec<slp_tree> *m_ops, internal_fn ifn) 2423 1.12 mrg { 2424 1.12 mrg this->m_ifn = ifn; 2425 1.12 mrg this->m_node = node; 2426 1.12 mrg this->m_ops.create (0); 2427 1.12 mrg if (m_ops) 2428 1.12 mrg this->m_ops.safe_splice (*m_ops); 2429 1.12 mrg } 2430 1.12 mrg 2431 1.12 mrg public: 2432 1.12 mrg 2433 1.12 mrg /* Create a new instance of the pattern matcher class of the given type. */ 2434 1.12 mrg static vect_pattern* recognize (slp_tree_to_load_perm_map_t *, 2435 1.12 mrg slp_compat_nodes_map_t *, slp_tree *); 2436 1.12 mrg 2437 1.12 mrg /* Build the pattern from the data collected so far. */ 2438 1.12 mrg virtual void build (vec_info *) = 0; 2439 1.12 mrg 2440 1.12 mrg /* Default destructor. */ 2441 1.12 mrg virtual ~vect_pattern () 2442 1.12 mrg { 2443 1.12 mrg this->m_ops.release (); 2444 1.12 mrg } 2445 1.12 mrg }; 2446 1.12 mrg 2447 1.12 mrg /* Function pointer to create a new pattern matcher from a generic type. */ 2448 1.12 mrg typedef vect_pattern* (*vect_pattern_decl_t) (slp_tree_to_load_perm_map_t *, 2449 1.12 mrg slp_compat_nodes_map_t *, 2450 1.12 mrg slp_tree *); 2451 1.12 mrg 2452 1.12 mrg /* List of supported pattern matchers. */ 2453 1.12 mrg extern vect_pattern_decl_t slp_patterns[]; 2454 1.12 mrg 2455 1.12 mrg /* Number of supported pattern matchers. */ 2456 1.12 mrg extern size_t num__slp_patterns; 2457 1.12 mrg 2458 1.12 mrg /* ---------------------------------------------------------------------- 2459 1.12 mrg Target support routines 2460 1.12 mrg ----------------------------------------------------------------------- 2461 1.12 mrg The following routines are provided to simplify costing decisions in 2462 1.12 mrg target code. Please add more as needed. */ 2463 1.12 mrg 2464 1.12 mrg /* Return true if an operaton of kind KIND for STMT_INFO represents 2465 1.12 mrg the extraction of an element from a vector in preparation for 2466 1.12 mrg storing the element to memory. */ 2467 1.12 mrg inline bool 2468 1.12 mrg vect_is_store_elt_extraction (vect_cost_for_stmt kind, stmt_vec_info stmt_info) 2469 1.12 mrg { 2470 1.12 mrg return (kind == vec_to_scalar 2471 1.12 mrg && STMT_VINFO_DATA_REF (stmt_info) 2472 1.12 mrg && DR_IS_WRITE (STMT_VINFO_DATA_REF (stmt_info))); 2473 1.12 mrg } 2474 1.12 mrg 2475 1.12 mrg /* Return true if STMT_INFO represents part of a reduction. */ 2476 1.12 mrg inline bool 2477 1.12 mrg vect_is_reduction (stmt_vec_info stmt_info) 2478 1.12 mrg { 2479 1.12 mrg return STMT_VINFO_REDUC_IDX (stmt_info) >= 0; 2480 1.12 mrg } 2481 1.12 mrg 2482 1.12 mrg /* If STMT_INFO describes a reduction, return the vect_reduction_type 2483 1.12 mrg of the reduction it describes, otherwise return -1. */ 2484 1.12 mrg inline int 2485 1.12 mrg vect_reduc_type (vec_info *vinfo, stmt_vec_info stmt_info) 2486 1.12 mrg { 2487 1.12 mrg if (loop_vec_info loop_vinfo = dyn_cast<loop_vec_info> (vinfo)) 2488 1.12 mrg if (STMT_VINFO_REDUC_DEF (stmt_info)) 2489 1.12 mrg { 2490 1.12 mrg stmt_vec_info reduc_info = info_for_reduction (loop_vinfo, stmt_info); 2491 1.12 mrg return int (STMT_VINFO_REDUC_TYPE (reduc_info)); 2492 1.12 mrg } 2493 1.12 mrg return -1; 2494 1.12 mrg } 2495 1.11 mrg 2496 1.12 mrg /* If STMT_INFO is a COND_EXPR that includes an embedded comparison, return the 2497 1.12 mrg scalar type of the values being compared. Return null otherwise. */ 2498 1.12 mrg inline tree 2499 1.12 mrg vect_embedded_comparison_type (stmt_vec_info stmt_info) 2500 1.12 mrg { 2501 1.12 mrg if (auto *assign = dyn_cast<gassign *> (stmt_info->stmt)) 2502 1.12 mrg if (gimple_assign_rhs_code (assign) == COND_EXPR) 2503 1.12 mrg { 2504 1.12 mrg tree cond = gimple_assign_rhs1 (assign); 2505 1.12 mrg if (COMPARISON_CLASS_P (cond)) 2506 1.12 mrg return TREE_TYPE (TREE_OPERAND (cond, 0)); 2507 1.12 mrg } 2508 1.12 mrg return NULL_TREE; 2509 1.12 mrg } 2510 1.12 mrg 2511 1.12 mrg /* If STMT_INFO is a comparison or contains an embedded comparison, return the 2512 1.12 mrg scalar type of the values being compared. Return null otherwise. */ 2513 1.12 mrg inline tree 2514 1.12 mrg vect_comparison_type (stmt_vec_info stmt_info) 2515 1.12 mrg { 2516 1.12 mrg if (auto *assign = dyn_cast<gassign *> (stmt_info->stmt)) 2517 1.12 mrg if (TREE_CODE_CLASS (gimple_assign_rhs_code (assign)) == tcc_comparison) 2518 1.12 mrg return TREE_TYPE (gimple_assign_rhs1 (assign)); 2519 1.12 mrg return vect_embedded_comparison_type (stmt_info); 2520 1.12 mrg } 2521 1.12 mrg 2522 1.12 mrg /* Return true if STMT_INFO extends the result of a load. */ 2523 1.12 mrg inline bool 2524 1.12 mrg vect_is_extending_load (class vec_info *vinfo, stmt_vec_info stmt_info) 2525 1.12 mrg { 2526 1.12 mrg /* Although this is quite large for an inline function, this part 2527 1.12 mrg at least should be inline. */ 2528 1.12 mrg gassign *assign = dyn_cast <gassign *> (stmt_info->stmt); 2529 1.12 mrg if (!assign || !CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (assign))) 2530 1.12 mrg return false; 2531 1.12 mrg 2532 1.12 mrg tree rhs = gimple_assign_rhs1 (stmt_info->stmt); 2533 1.12 mrg tree lhs_type = TREE_TYPE (gimple_assign_lhs (assign)); 2534 1.12 mrg tree rhs_type = TREE_TYPE (rhs); 2535 1.12 mrg if (!INTEGRAL_TYPE_P (lhs_type) 2536 1.12 mrg || !INTEGRAL_TYPE_P (rhs_type) 2537 1.12 mrg || TYPE_PRECISION (lhs_type) <= TYPE_PRECISION (rhs_type)) 2538 1.12 mrg return false; 2539 1.12 mrg 2540 1.12 mrg stmt_vec_info def_stmt_info = vinfo->lookup_def (rhs); 2541 1.12 mrg return (def_stmt_info 2542 1.12 mrg && STMT_VINFO_DATA_REF (def_stmt_info) 2543 1.12 mrg && DR_IS_READ (STMT_VINFO_DATA_REF (def_stmt_info))); 2544 1.12 mrg } 2545 1.12 mrg 2546 1.12 mrg /* Return true if STMT_INFO is an integer truncation. */ 2547 1.12 mrg inline bool 2548 1.12 mrg vect_is_integer_truncation (stmt_vec_info stmt_info) 2549 1.12 mrg { 2550 1.12 mrg gassign *assign = dyn_cast <gassign *> (stmt_info->stmt); 2551 1.12 mrg if (!assign || !CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (assign))) 2552 1.12 mrg return false; 2553 1.12 mrg 2554 1.12 mrg tree lhs_type = TREE_TYPE (gimple_assign_lhs (assign)); 2555 1.12 mrg tree rhs_type = TREE_TYPE (gimple_assign_rhs1 (assign)); 2556 1.12 mrg return (INTEGRAL_TYPE_P (lhs_type) 2557 1.12 mrg && INTEGRAL_TYPE_P (rhs_type) 2558 1.12 mrg && TYPE_PRECISION (lhs_type) < TYPE_PRECISION (rhs_type)); 2559 1.12 mrg } 2560 1.1 mrg 2561 1.1 mrg #endif /* GCC_TREE_VECTORIZER_H */ 2562