opt_constant_propagation.cpp revision 01e04c3f
1/* 2 * Copyright © 2010 Intel Corporation 3 * 4 * Permission is hereby granted, free of charge, to any person obtaining a 5 * constant of this software and associated documentation files (the "Software"), 6 * to deal in the Software without restriction, including without limitation 7 * the rights to use, constant, modify, merge, publish, distribute, sublicense, 8 * and/or sell copies of the Software, and to permit persons to whom the 9 * Software is furnished to do so, subject to the following conditions: 10 * 11 * The above constantright notice and this permission notice (including the next 12 * paragraph) shall be included in all copies or substantial portions of the 13 * Software. 14 * 15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 18 * THE AUTHORS OR CONSTANTRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER 19 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING 20 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER 21 * DEALINGS IN THE SOFTWARE. 22 */ 23 24/** 25 * \file opt_constant_propagation.cpp 26 * 27 * Tracks assignments of constants to channels of variables, and 28 * usage of those constant channels with direct usage of the constants. 29 * 30 * This can lead to constant folding and algebraic optimizations in 31 * those later expressions, while causing no increase in instruction 32 * count (due to constants being generally free to load from a 33 * constant push buffer or as instruction immediate values) and 34 * possibly reducing register pressure. 35 */ 36 37#include "ir.h" 38#include "ir_visitor.h" 39#include "ir_rvalue_visitor.h" 40#include "ir_basic_block.h" 41#include "ir_optimization.h" 42#include "compiler/glsl_types.h" 43#include "util/hash_table.h" 44 45namespace { 46 47class acp_entry : public exec_node 48{ 49public: 50 /* override operator new from exec_node */ 51 DECLARE_LINEAR_ZALLOC_CXX_OPERATORS(acp_entry) 52 53 acp_entry(ir_variable *var, unsigned write_mask, ir_constant *constant) 54 { 55 assert(var); 56 assert(constant); 57 this->var = var; 58 this->write_mask = write_mask; 59 this->constant = constant; 60 this->initial_values = write_mask; 61 } 62 63 acp_entry(const acp_entry *src) 64 { 65 this->var = src->var; 66 this->write_mask = src->write_mask; 67 this->constant = src->constant; 68 this->initial_values = src->initial_values; 69 } 70 71 ir_variable *var; 72 ir_constant *constant; 73 unsigned write_mask; 74 75 /** Mask of values initially available in the constant. */ 76 unsigned initial_values; 77}; 78 79 80class ir_constant_propagation_visitor : public ir_rvalue_visitor { 81public: 82 ir_constant_propagation_visitor() 83 { 84 progress = false; 85 killed_all = false; 86 mem_ctx = ralloc_context(0); 87 this->lin_ctx = linear_alloc_parent(this->mem_ctx, 0); 88 this->acp = new(mem_ctx) exec_list; 89 this->kills = _mesa_hash_table_create(mem_ctx, _mesa_hash_pointer, 90 _mesa_key_pointer_equal); 91 } 92 ~ir_constant_propagation_visitor() 93 { 94 ralloc_free(mem_ctx); 95 } 96 97 virtual ir_visitor_status visit_enter(class ir_loop *); 98 virtual ir_visitor_status visit_enter(class ir_function_signature *); 99 virtual ir_visitor_status visit_enter(class ir_function *); 100 virtual ir_visitor_status visit_leave(class ir_assignment *); 101 virtual ir_visitor_status visit_enter(class ir_call *); 102 virtual ir_visitor_status visit_enter(class ir_if *); 103 104 void add_constant(ir_assignment *ir); 105 void constant_folding(ir_rvalue **rvalue); 106 void constant_propagation(ir_rvalue **rvalue); 107 void kill(ir_variable *ir, unsigned write_mask); 108 void handle_if_block(exec_list *instructions, hash_table *kills, bool *killed_all); 109 void handle_loop(class ir_loop *, bool keep_acp); 110 void handle_rvalue(ir_rvalue **rvalue); 111 112 /** List of acp_entry: The available constants to propagate */ 113 exec_list *acp; 114 115 /** 116 * Hash table of killed entries: maps variables to the mask of killed channels. 117 */ 118 hash_table *kills; 119 120 bool progress; 121 122 bool killed_all; 123 124 void *mem_ctx; 125 void *lin_ctx; 126}; 127 128 129void 130ir_constant_propagation_visitor::constant_folding(ir_rvalue **rvalue) 131{ 132 if (this->in_assignee || *rvalue == NULL) 133 return; 134 135 if (ir_constant_fold(rvalue)) 136 this->progress = true; 137 138 ir_dereference_variable *var_ref = (*rvalue)->as_dereference_variable(); 139 if (var_ref && !var_ref->type->is_array()) { 140 ir_constant *constant = 141 var_ref->constant_expression_value(ralloc_parent(var_ref)); 142 if (constant) { 143 *rvalue = constant; 144 this->progress = true; 145 } 146 } 147} 148 149void 150ir_constant_propagation_visitor::constant_propagation(ir_rvalue **rvalue) { 151 152 if (this->in_assignee || !*rvalue) 153 return; 154 155 const glsl_type *type = (*rvalue)->type; 156 if (!type->is_scalar() && !type->is_vector()) 157 return; 158 159 ir_swizzle *swiz = NULL; 160 ir_dereference_variable *deref = (*rvalue)->as_dereference_variable(); 161 if (!deref) { 162 swiz = (*rvalue)->as_swizzle(); 163 if (!swiz) 164 return; 165 166 deref = swiz->val->as_dereference_variable(); 167 if (!deref) 168 return; 169 } 170 171 ir_constant_data data; 172 memset(&data, 0, sizeof(data)); 173 174 for (unsigned int i = 0; i < type->components(); i++) { 175 int channel; 176 acp_entry *found = NULL; 177 178 if (swiz) { 179 switch (i) { 180 case 0: channel = swiz->mask.x; break; 181 case 1: channel = swiz->mask.y; break; 182 case 2: channel = swiz->mask.z; break; 183 case 3: channel = swiz->mask.w; break; 184 default: assert(!"shouldn't be reached"); channel = 0; break; 185 } 186 } else { 187 channel = i; 188 } 189 190 foreach_in_list(acp_entry, entry, this->acp) { 191 if (entry->var == deref->var && entry->write_mask & (1 << channel)) { 192 found = entry; 193 break; 194 } 195 } 196 197 if (!found) 198 return; 199 200 int rhs_channel = 0; 201 for (int j = 0; j < 4; j++) { 202 if (j == channel) 203 break; 204 if (found->initial_values & (1 << j)) 205 rhs_channel++; 206 } 207 208 switch (type->base_type) { 209 case GLSL_TYPE_FLOAT: 210 data.f[i] = found->constant->value.f[rhs_channel]; 211 break; 212 case GLSL_TYPE_DOUBLE: 213 data.d[i] = found->constant->value.d[rhs_channel]; 214 break; 215 case GLSL_TYPE_INT: 216 data.i[i] = found->constant->value.i[rhs_channel]; 217 break; 218 case GLSL_TYPE_UINT: 219 data.u[i] = found->constant->value.u[rhs_channel]; 220 break; 221 case GLSL_TYPE_BOOL: 222 data.b[i] = found->constant->value.b[rhs_channel]; 223 break; 224 case GLSL_TYPE_UINT64: 225 data.u64[i] = found->constant->value.u64[rhs_channel]; 226 break; 227 case GLSL_TYPE_INT64: 228 data.i64[i] = found->constant->value.i64[rhs_channel]; 229 break; 230 default: 231 assert(!"not reached"); 232 break; 233 } 234 } 235 236 *rvalue = new(ralloc_parent(deref)) ir_constant(type, &data); 237 this->progress = true; 238} 239 240void 241ir_constant_propagation_visitor::handle_rvalue(ir_rvalue **rvalue) 242{ 243 constant_propagation(rvalue); 244 constant_folding(rvalue); 245} 246 247ir_visitor_status 248ir_constant_propagation_visitor::visit_enter(ir_function_signature *ir) 249{ 250 /* Treat entry into a function signature as a completely separate 251 * block. Any instructions at global scope will be shuffled into 252 * main() at link time, so they're irrelevant to us. 253 */ 254 exec_list *orig_acp = this->acp; 255 hash_table *orig_kills = this->kills; 256 bool orig_killed_all = this->killed_all; 257 258 this->acp = new(mem_ctx) exec_list; 259 this->kills = _mesa_hash_table_create(mem_ctx, _mesa_hash_pointer, 260 _mesa_key_pointer_equal); 261 this->killed_all = false; 262 263 visit_list_elements(this, &ir->body); 264 265 this->kills = orig_kills; 266 this->acp = orig_acp; 267 this->killed_all = orig_killed_all; 268 269 return visit_continue_with_parent; 270} 271 272ir_visitor_status 273ir_constant_propagation_visitor::visit_leave(ir_assignment *ir) 274{ 275 constant_folding(&ir->rhs); 276 277 if (this->in_assignee) 278 return visit_continue; 279 280 unsigned kill_mask = ir->write_mask; 281 if (ir->lhs->as_dereference_array()) { 282 /* The LHS of the assignment uses an array indexing operator (e.g. v[i] 283 * = ...;). Since we only try to constant propagate vectors and 284 * scalars, this means that either (a) array indexing is being used to 285 * select a vector component, or (b) the variable in question is neither 286 * a scalar or a vector, so we don't care about it. In the former case, 287 * we want to kill the whole vector, since in general we can't predict 288 * which vector component will be selected by array indexing. In the 289 * latter case, it doesn't matter what we do, so go ahead and kill the 290 * whole variable anyway. 291 * 292 * Note that if the array index is constant (e.g. v[2] = ...;), we could 293 * in principle be smarter, but we don't need to, because a future 294 * optimization pass will convert it to a simple assignment with the 295 * correct mask. 296 */ 297 kill_mask = ~0; 298 } 299 kill(ir->lhs->variable_referenced(), kill_mask); 300 301 add_constant(ir); 302 303 return visit_continue; 304} 305 306ir_visitor_status 307ir_constant_propagation_visitor::visit_enter(ir_function *ir) 308{ 309 (void) ir; 310 return visit_continue; 311} 312 313ir_visitor_status 314ir_constant_propagation_visitor::visit_enter(ir_call *ir) 315{ 316 /* Do constant propagation on call parameters, but skip any out params */ 317 foreach_two_lists(formal_node, &ir->callee->parameters, 318 actual_node, &ir->actual_parameters) { 319 ir_variable *sig_param = (ir_variable *) formal_node; 320 ir_rvalue *param = (ir_rvalue *) actual_node; 321 if (sig_param->data.mode != ir_var_function_out 322 && sig_param->data.mode != ir_var_function_inout) { 323 ir_rvalue *new_param = param; 324 handle_rvalue(&new_param); 325 if (new_param != param) 326 param->replace_with(new_param); 327 else 328 param->accept(this); 329 } 330 } 331 332 /* Since we're unlinked, we don't (necssarily) know the side effects of 333 * this call. So kill all copies. 334 */ 335 acp->make_empty(); 336 this->killed_all = true; 337 338 return visit_continue_with_parent; 339} 340 341void 342ir_constant_propagation_visitor::handle_if_block(exec_list *instructions, hash_table *kills, bool *killed_all) 343{ 344 exec_list *orig_acp = this->acp; 345 hash_table *orig_kills = this->kills; 346 bool orig_killed_all = this->killed_all; 347 348 this->acp = new(mem_ctx) exec_list; 349 this->kills = kills; 350 this->killed_all = false; 351 352 /* Populate the initial acp with a constant of the original */ 353 foreach_in_list(acp_entry, a, orig_acp) { 354 this->acp->push_tail(new(this->lin_ctx) acp_entry(a)); 355 } 356 357 visit_list_elements(this, instructions); 358 359 *killed_all = this->killed_all; 360 this->kills = orig_kills; 361 this->acp = orig_acp; 362 this->killed_all = orig_killed_all; 363} 364 365ir_visitor_status 366ir_constant_propagation_visitor::visit_enter(ir_if *ir) 367{ 368 ir->condition->accept(this); 369 handle_rvalue(&ir->condition); 370 371 hash_table *new_kills = _mesa_hash_table_create(mem_ctx, _mesa_hash_pointer, 372 _mesa_key_pointer_equal); 373 bool then_killed_all = false; 374 bool else_killed_all = false; 375 376 handle_if_block(&ir->then_instructions, new_kills, &then_killed_all); 377 handle_if_block(&ir->else_instructions, new_kills, &else_killed_all); 378 379 if (then_killed_all || else_killed_all) { 380 acp->make_empty(); 381 killed_all = true; 382 } else { 383 hash_table_foreach(new_kills, htk) 384 kill((ir_variable *) htk->key, (uintptr_t) htk->data); 385 } 386 387 _mesa_hash_table_destroy(new_kills, NULL); 388 389 /* handle_if_block() already descended into the children. */ 390 return visit_continue_with_parent; 391} 392 393void 394ir_constant_propagation_visitor::handle_loop(ir_loop *ir, bool keep_acp) 395{ 396 exec_list *orig_acp = this->acp; 397 hash_table *orig_kills = this->kills; 398 bool orig_killed_all = this->killed_all; 399 400 this->acp = new(mem_ctx) exec_list; 401 this->kills = _mesa_hash_table_create(mem_ctx, _mesa_hash_pointer, 402 _mesa_key_pointer_equal); 403 this->killed_all = false; 404 405 if (keep_acp) { 406 foreach_in_list(acp_entry, a, orig_acp) { 407 this->acp->push_tail(new(this->lin_ctx) acp_entry(a)); 408 } 409 } 410 411 visit_list_elements(this, &ir->body_instructions); 412 413 if (this->killed_all) { 414 orig_acp->make_empty(); 415 } 416 417 hash_table *new_kills = this->kills; 418 this->kills = orig_kills; 419 this->acp = orig_acp; 420 this->killed_all = this->killed_all || orig_killed_all; 421 422 hash_table_foreach(new_kills, htk) { 423 kill((ir_variable *) htk->key, (uintptr_t) htk->data); 424 } 425} 426 427ir_visitor_status 428ir_constant_propagation_visitor::visit_enter(ir_loop *ir) 429{ 430 /* Make a conservative first pass over the loop with an empty ACP set. 431 * This also removes any killed entries from the original ACP set. 432 */ 433 handle_loop(ir, false); 434 435 /* Then, run it again with the real ACP set, minus any killed entries. 436 * This takes care of propagating values from before the loop into it. 437 */ 438 handle_loop(ir, true); 439 440 /* already descended into the children. */ 441 return visit_continue_with_parent; 442} 443 444void 445ir_constant_propagation_visitor::kill(ir_variable *var, unsigned write_mask) 446{ 447 assert(var != NULL); 448 449 /* We don't track non-vectors. */ 450 if (!var->type->is_vector() && !var->type->is_scalar()) 451 return; 452 453 /* Remove any entries currently in the ACP for this kill. */ 454 foreach_in_list_safe(acp_entry, entry, this->acp) { 455 if (entry->var == var) { 456 entry->write_mask &= ~write_mask; 457 if (entry->write_mask == 0) 458 entry->remove(); 459 } 460 } 461 462 /* Add this writemask of the variable to the hash table of killed 463 * variables in this block. 464 */ 465 hash_entry *kill_hash_entry = _mesa_hash_table_search(this->kills, var); 466 if (kill_hash_entry) { 467 uintptr_t new_write_mask = ((uintptr_t) kill_hash_entry->data) | write_mask; 468 kill_hash_entry->data = (void *) new_write_mask; 469 return; 470 } 471 /* Not already in the hash table. Make new entry. */ 472 _mesa_hash_table_insert(this->kills, var, (void *) uintptr_t(write_mask)); 473} 474 475/** 476 * Adds an entry to the available constant list if it's a plain assignment 477 * of a variable to a variable. 478 */ 479void 480ir_constant_propagation_visitor::add_constant(ir_assignment *ir) 481{ 482 acp_entry *entry; 483 484 if (ir->condition) 485 return; 486 487 if (!ir->write_mask) 488 return; 489 490 ir_dereference_variable *deref = ir->lhs->as_dereference_variable(); 491 ir_constant *constant = ir->rhs->as_constant(); 492 493 if (!deref || !constant) 494 return; 495 496 /* Only do constant propagation on vectors. Constant matrices, 497 * arrays, or structures would require more work elsewhere. 498 */ 499 if (!deref->var->type->is_vector() && !deref->var->type->is_scalar()) 500 return; 501 502 /* We can't do copy propagation on buffer variables, since the underlying 503 * memory storage is shared across multiple threads we can't be sure that 504 * the variable value isn't modified between this assignment and the next 505 * instruction where its value is read. 506 */ 507 if (deref->var->data.mode == ir_var_shader_storage || 508 deref->var->data.mode == ir_var_shader_shared) 509 return; 510 511 entry = new(this->lin_ctx) acp_entry(deref->var, ir->write_mask, constant); 512 this->acp->push_tail(entry); 513} 514 515} /* unnamed namespace */ 516 517/** 518 * Does a constant propagation pass on the code present in the instruction stream. 519 */ 520bool 521do_constant_propagation(exec_list *instructions) 522{ 523 ir_constant_propagation_visitor v; 524 525 visit_list_elements(&v, instructions); 526 527 return v.progress; 528} 529