1 //===------ CodeGeneration.cpp - Code generate the Scops. -----------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // The CodeGeneration pass takes a Scop created by ScopInfo and translates it 11 // back to LLVM-IR using Cloog. 12 // 13 // The Scop describes the high level memory behaviour of a control flow region. 14 // Transformation passes can update the schedule (execution order) of statements 15 // in the Scop. Cloog is used to generate an abstract syntax tree (clast) that 16 // reflects the updated execution order. This clast is used to create new 17 // LLVM-IR that is computational equivalent to the original control flow region, 18 // but executes its code in the new execution order defined by the changed 19 // scattering. 20 // 21 //===----------------------------------------------------------------------===// 22 23 #include "polly/CodeGen/Cloog.h" 24 #ifdef CLOOG_FOUND 25 26 #define DEBUG_TYPE "polly-codegen" 27 #include "polly/Dependences.h" 28 #include "polly/LinkAllPasses.h" 29 #include "polly/Options.h" 30 #include "polly/ScopInfo.h" 31 #include "polly/TempScopInfo.h" 32 #include "polly/CodeGen/CodeGeneration.h" 33 #include "polly/CodeGen/BlockGenerators.h" 34 #include "polly/CodeGen/LoopGenerators.h" 35 #include "polly/CodeGen/PTXGenerator.h" 36 #include "polly/CodeGen/Utils.h" 37 #include "polly/Support/GICHelper.h" 38 #include "polly/Support/ScopHelper.h" 39 40 #include "llvm/IR/Module.h" 41 #include "llvm/ADT/SetVector.h" 42 #include "llvm/ADT/PostOrderIterator.h" 43 #include "llvm/Analysis/LoopInfo.h" 44 #include "llvm/Analysis/ScalarEvolutionExpander.h" 45 #include "llvm/Support/Debug.h" 46 #include "llvm/IR/DataLayout.h" 47 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 48 49 #define CLOOG_INT_GMP 1 50 #include "cloog/cloog.h" 51 #include "cloog/isl/cloog.h" 52 53 #include "isl/aff.h" 54 55 #include <vector> 56 #include <utility> 57 58 using namespace polly; 59 using namespace llvm; 60 61 struct isl_set; 62 63 namespace polly { 64 static cl::opt<bool> 65 OpenMP("enable-polly-openmp", cl::desc("Generate OpenMP parallel code"), 66 cl::value_desc("OpenMP code generation enabled if true"), 67 cl::init(false), cl::ZeroOrMore, cl::cat(PollyCategory)); 68 69 #ifdef GPU_CODEGEN 70 static cl::opt<bool> 71 GPGPU("enable-polly-gpgpu", cl::desc("Generate GPU parallel code"), cl::Hidden, 72 cl::value_desc("GPGPU code generation enabled if true"), cl::init(false), 73 cl::ZeroOrMore, cl::cat(PollyCategory)); 74 75 static cl::opt<std::string> 76 GPUTriple("polly-gpgpu-triple", 77 cl::desc("Target triple for GPU code generation"), cl::Hidden, 78 cl::init(""), cl::cat(PollyCategory)); 79 #endif /* GPU_CODEGEN */ 80 81 typedef DenseMap<const char *, Value *> CharMapT; 82 83 /// Class to generate LLVM-IR that calculates the value of a clast_expr. 84 class ClastExpCodeGen { 85 IRBuilder<> &Builder; 86 const CharMapT &IVS; 87 88 Value *codegen(const clast_name *e, Type *Ty); 89 Value *codegen(const clast_term *e, Type *Ty); 90 Value *codegen(const clast_binary *e, Type *Ty); 91 Value *codegen(const clast_reduction *r, Type *Ty); 92 93 public: 94 95 // A generator for clast expressions. 96 // 97 // @param B The IRBuilder that defines where the code to calculate the 98 // clast expressions should be inserted. 99 // @param IVMAP A Map that translates strings describing the induction 100 // variables to the Values* that represent these variables 101 // on the LLVM side. 102 ClastExpCodeGen(IRBuilder<> &B, CharMapT &IVMap); 103 104 // Generates code to calculate a given clast expression. 105 // 106 // @param e The expression to calculate. 107 // @return The Value that holds the result. 108 Value *codegen(const clast_expr *e, Type *Ty); 109 }; 110 111 Value *ClastExpCodeGen::codegen(const clast_name *e, Type *Ty) { 112 CharMapT::const_iterator I = IVS.find(e->name); 113 114 assert(I != IVS.end() && "Clast name not found"); 115 116 return Builder.CreateSExtOrBitCast(I->second, Ty); 117 } 118 119 Value *ClastExpCodeGen::codegen(const clast_term *e, Type *Ty) { 120 APInt a = APInt_from_MPZ(e->val); 121 122 Value *ConstOne = ConstantInt::get(Builder.getContext(), a); 123 ConstOne = Builder.CreateSExtOrBitCast(ConstOne, Ty); 124 125 if (!e->var) 126 return ConstOne; 127 128 Value *var = codegen(e->var, Ty); 129 return Builder.CreateMul(ConstOne, var); 130 } 131 132 Value *ClastExpCodeGen::codegen(const clast_binary *e, Type *Ty) { 133 Value *LHS = codegen(e->LHS, Ty); 134 135 APInt RHS_AP = APInt_from_MPZ(e->RHS); 136 137 Value *RHS = ConstantInt::get(Builder.getContext(), RHS_AP); 138 RHS = Builder.CreateSExtOrBitCast(RHS, Ty); 139 140 switch (e->type) { 141 case clast_bin_mod: 142 return Builder.CreateSRem(LHS, RHS); 143 case clast_bin_fdiv: { 144 // floord(n,d) ((n < 0) ? (n - d + 1) : n) / d 145 Value *One = ConstantInt::get(Ty, 1); 146 Value *Zero = ConstantInt::get(Ty, 0); 147 Value *Sum1 = Builder.CreateSub(LHS, RHS); 148 Value *Sum2 = Builder.CreateAdd(Sum1, One); 149 Value *isNegative = Builder.CreateICmpSLT(LHS, Zero); 150 Value *Dividend = Builder.CreateSelect(isNegative, Sum2, LHS); 151 return Builder.CreateSDiv(Dividend, RHS); 152 } 153 case clast_bin_cdiv: { 154 // ceild(n,d) ((n < 0) ? n : (n + d - 1)) / d 155 Value *One = ConstantInt::get(Ty, 1); 156 Value *Zero = ConstantInt::get(Ty, 0); 157 Value *Sum1 = Builder.CreateAdd(LHS, RHS); 158 Value *Sum2 = Builder.CreateSub(Sum1, One); 159 Value *isNegative = Builder.CreateICmpSLT(LHS, Zero); 160 Value *Dividend = Builder.CreateSelect(isNegative, LHS, Sum2); 161 return Builder.CreateSDiv(Dividend, RHS); 162 } 163 case clast_bin_div: 164 return Builder.CreateSDiv(LHS, RHS); 165 } 166 167 llvm_unreachable("Unknown clast binary expression type"); 168 } 169 170 Value *ClastExpCodeGen::codegen(const clast_reduction *r, Type *Ty) { 171 assert((r->type == clast_red_min || r->type == clast_red_max || 172 r->type == clast_red_sum) && "Clast reduction type not supported"); 173 Value *old = codegen(r->elts[0], Ty); 174 175 for (int i = 1; i < r->n; ++i) { 176 Value *exprValue = codegen(r->elts[i], Ty); 177 178 switch (r->type) { 179 case clast_red_min: { 180 Value *cmp = Builder.CreateICmpSLT(old, exprValue); 181 old = Builder.CreateSelect(cmp, old, exprValue); 182 break; 183 } 184 case clast_red_max: { 185 Value *cmp = Builder.CreateICmpSGT(old, exprValue); 186 old = Builder.CreateSelect(cmp, old, exprValue); 187 break; 188 } 189 case clast_red_sum: 190 old = Builder.CreateAdd(old, exprValue); 191 break; 192 } 193 } 194 195 return old; 196 } 197 198 ClastExpCodeGen::ClastExpCodeGen(IRBuilder<> &B, CharMapT &IVMap) 199 : Builder(B), IVS(IVMap) {} 200 201 Value *ClastExpCodeGen::codegen(const clast_expr *e, Type *Ty) { 202 switch (e->type) { 203 case clast_expr_name: 204 return codegen((const clast_name *)e, Ty); 205 case clast_expr_term: 206 return codegen((const clast_term *)e, Ty); 207 case clast_expr_bin: 208 return codegen((const clast_binary *)e, Ty); 209 case clast_expr_red: 210 return codegen((const clast_reduction *)e, Ty); 211 } 212 213 llvm_unreachable("Unknown clast expression!"); 214 } 215 216 class ClastStmtCodeGen { 217 public: 218 const std::vector<std::string> &getParallelLoops(); 219 220 private: 221 // The Scop we code generate. 222 Scop *S; 223 Pass *P; 224 225 // The Builder specifies the current location to code generate at. 226 IRBuilder<> &Builder; 227 228 // Map the Values from the old code to their counterparts in the new code. 229 ValueMapT ValueMap; 230 231 // Map the loops from the old code to expressions function of the induction 232 // variables in the new code. For example, when the code generator produces 233 // this AST: 234 // 235 // for (int c1 = 0; c1 <= 1023; c1 += 1) 236 // for (int c2 = 0; c2 <= 1023; c2 += 1) 237 // Stmt(c2 + 3, c1); 238 // 239 // LoopToScev is a map associating: 240 // "outer loop in the old loop nest" -> SCEV("c2 + 3"), 241 // "inner loop in the old loop nest" -> SCEV("c1"). 242 LoopToScevMapT LoopToScev; 243 244 // clastVars maps from the textual representation of a clast variable to its 245 // current *Value. clast variables are scheduling variables, original 246 // induction variables or parameters. They are used either in loop bounds or 247 // to define the statement instance that is executed. 248 // 249 // for (s = 0; s < n + 3; ++i) 250 // for (t = s; t < m; ++j) 251 // Stmt(i = s + 3 * m, j = t); 252 // 253 // {s,t,i,j,n,m} is the set of clast variables in this clast. 254 CharMapT ClastVars; 255 256 // Codegenerator for clast expressions. 257 ClastExpCodeGen ExpGen; 258 259 // Do we currently generate parallel code? 260 bool parallelCodeGeneration; 261 262 std::vector<std::string> parallelLoops; 263 264 void codegen(const clast_assignment *a); 265 266 void codegen(const clast_assignment *a, ScopStmt *Statement, 267 unsigned Dimension, int vectorDim, 268 std::vector<ValueMapT> *VectorVMap = 0, 269 std::vector<LoopToScevMapT> *VLTS = 0); 270 271 void codegenSubstitutions(const clast_stmt *Assignment, ScopStmt *Statement, 272 int vectorDim = 0, 273 std::vector<ValueMapT> *VectorVMap = 0, 274 std::vector<LoopToScevMapT> *VLTS = 0); 275 276 void codegen(const clast_user_stmt *u, std::vector<Value *> *IVS = NULL, 277 const char *iterator = NULL, isl_set *scatteringDomain = 0); 278 279 void codegen(const clast_block *b); 280 281 /// @brief Create a classical sequential loop. 282 void codegenForSequential(const clast_for *f); 283 284 /// @brief Create OpenMP structure values. 285 /// 286 /// Create a list of values that has to be stored into the OpenMP subfuncition 287 /// structure. 288 SetVector<Value *> getOMPValues(const clast_stmt *Body); 289 290 /// @brief Update ClastVars and ValueMap according to a value map. 291 /// 292 /// @param VMap A map from old to new values. 293 void updateWithValueMap(OMPGenerator::ValueToValueMapTy &VMap); 294 295 /// @brief Create an OpenMP parallel for loop. 296 /// 297 /// This loop reflects a loop as if it would have been created by an OpenMP 298 /// statement. 299 void codegenForOpenMP(const clast_for *f); 300 301 #ifdef GPU_CODEGEN 302 /// @brief Create GPGPU device memory access values. 303 /// 304 /// Create a list of values that will be set to be parameters of the GPGPU 305 /// subfunction. These parameters represent device memory base addresses 306 /// and the size in bytes. 307 SetVector<Value *> getGPUValues(unsigned &OutputBytes); 308 309 /// @brief Create a GPU parallel for loop. 310 /// 311 /// This loop reflects a loop as if it would have been created by a GPU 312 /// statement. 313 void codegenForGPGPU(const clast_for *F); 314 315 /// @brief Get innermost for loop. 316 const clast_stmt *getScheduleInfo(const clast_for *F, 317 std::vector<int> &NumIters, 318 unsigned &LoopDepth, 319 unsigned &NonPLoopDepth); 320 #endif /* GPU_CODEGEN */ 321 322 /// @brief Check if a loop is parallel 323 /// 324 /// Detect if a clast_for loop can be executed in parallel. 325 /// 326 /// @param For The clast for loop to check. 327 /// 328 /// @return bool Returns true if the incoming clast_for statement can 329 /// execute in parallel. 330 bool isParallelFor(const clast_for *For); 331 332 bool isInnermostLoop(const clast_for *f); 333 334 /// @brief Get the number of loop iterations for this loop. 335 /// @param f The clast for loop to check. 336 int getNumberOfIterations(const clast_for *f); 337 338 /// @brief Create vector instructions for this loop. 339 void codegenForVector(const clast_for *f); 340 341 void codegen(const clast_for *f); 342 343 Value *codegen(const clast_equation *eq); 344 345 void codegen(const clast_guard *g); 346 347 void codegen(const clast_stmt *stmt); 348 349 void addParameters(const CloogNames *names); 350 351 IntegerType *getIntPtrTy(); 352 353 public: 354 void codegen(const clast_root *r); 355 356 ClastStmtCodeGen(Scop *scop, IRBuilder<> &B, Pass *P); 357 }; 358 } 359 360 IntegerType *ClastStmtCodeGen::getIntPtrTy() { 361 return P->getAnalysis<DataLayout>().getIntPtrType(Builder.getContext()); 362 } 363 364 const std::vector<std::string> &ClastStmtCodeGen::getParallelLoops() { 365 return parallelLoops; 366 } 367 368 void ClastStmtCodeGen::codegen(const clast_assignment *a) { 369 Value *V = ExpGen.codegen(a->RHS, getIntPtrTy()); 370 ClastVars[a->LHS] = V; 371 } 372 373 void ClastStmtCodeGen::codegen(const clast_assignment *A, ScopStmt *Stmt, 374 unsigned Dim, int VectorDim, 375 std::vector<ValueMapT> *VectorVMap, 376 std::vector<LoopToScevMapT> *VLTS) { 377 Value *RHS; 378 379 assert(!A->LHS && "Statement assignments do not have left hand side"); 380 381 RHS = ExpGen.codegen(A->RHS, Builder.getInt64Ty()); 382 383 const llvm::SCEV *URHS = S->getSE()->getUnknown(RHS); 384 if (VLTS) 385 (*VLTS)[VectorDim][Stmt->getLoopForDimension(Dim)] = URHS; 386 LoopToScev[Stmt->getLoopForDimension(Dim)] = URHS; 387 388 const PHINode *PN = Stmt->getInductionVariableForDimension(Dim); 389 if (PN) { 390 RHS = Builder.CreateTruncOrBitCast(RHS, PN->getType()); 391 392 if (VectorVMap) 393 (*VectorVMap)[VectorDim][PN] = RHS; 394 395 ValueMap[PN] = RHS; 396 } 397 } 398 399 void ClastStmtCodeGen::codegenSubstitutions(const clast_stmt *Assignment, 400 ScopStmt *Statement, int vectorDim, 401 std::vector<ValueMapT> *VectorVMap, 402 std::vector<LoopToScevMapT> *VLTS) { 403 int Dimension = 0; 404 405 while (Assignment) { 406 assert(CLAST_STMT_IS_A(Assignment, stmt_ass) && 407 "Substitions are expected to be assignments"); 408 codegen((const clast_assignment *)Assignment, Statement, Dimension, 409 vectorDim, VectorVMap, VLTS); 410 Assignment = Assignment->next; 411 Dimension++; 412 } 413 } 414 415 // Takes the cloog specific domain and translates it into a map Statement -> 416 // PartialSchedule, where the PartialSchedule contains all the dimensions that 417 // have been code generated up to this point. 418 static __isl_give isl_map *extractPartialSchedule(ScopStmt *Statement, 419 isl_set *Domain) { 420 isl_map *Schedule = Statement->getScattering(); 421 int ScheduledDimensions = isl_set_dim(Domain, isl_dim_set); 422 int UnscheduledDimensions = 423 isl_map_dim(Schedule, isl_dim_out) - ScheduledDimensions; 424 425 return isl_map_project_out(Schedule, isl_dim_out, ScheduledDimensions, 426 UnscheduledDimensions); 427 } 428 429 void ClastStmtCodeGen::codegen(const clast_user_stmt *u, 430 std::vector<Value *> *IVS, const char *iterator, 431 isl_set *Domain) { 432 ScopStmt *Statement = (ScopStmt *)u->statement->usr; 433 434 if (u->substitutions) 435 codegenSubstitutions(u->substitutions, Statement); 436 437 int VectorDimensions = IVS ? IVS->size() : 1; 438 439 if (VectorDimensions == 1) { 440 BlockGenerator::generate(Builder, *Statement, ValueMap, LoopToScev, P); 441 return; 442 } 443 444 VectorValueMapT VectorMap(VectorDimensions); 445 std::vector<LoopToScevMapT> VLTS(VectorDimensions); 446 447 if (IVS) { 448 assert(u->substitutions && "Substitutions expected!"); 449 int i = 0; 450 for (std::vector<Value *>::iterator II = IVS->begin(), IE = IVS->end(); 451 II != IE; ++II) { 452 ClastVars[iterator] = *II; 453 codegenSubstitutions(u->substitutions, Statement, i, &VectorMap, &VLTS); 454 i++; 455 } 456 } 457 458 isl_map *Schedule = extractPartialSchedule(Statement, Domain); 459 VectorBlockGenerator::generate(Builder, *Statement, VectorMap, VLTS, Schedule, 460 P); 461 isl_map_free(Schedule); 462 } 463 464 void ClastStmtCodeGen::codegen(const clast_block *b) { 465 if (b->body) 466 codegen(b->body); 467 } 468 469 void ClastStmtCodeGen::codegenForSequential(const clast_for *f) { 470 Value *LowerBound, *UpperBound, *IV, *Stride; 471 BasicBlock *ExitBlock; 472 Type *IntPtrTy = getIntPtrTy(); 473 474 LowerBound = ExpGen.codegen(f->LB, IntPtrTy); 475 UpperBound = ExpGen.codegen(f->UB, IntPtrTy); 476 Stride = Builder.getInt(APInt_from_MPZ(f->stride)); 477 478 IV = createLoop(LowerBound, UpperBound, Stride, Builder, P, ExitBlock, 479 CmpInst::ICMP_SLE); 480 481 // Add loop iv to symbols. 482 ClastVars[f->iterator] = IV; 483 484 if (f->body) 485 codegen(f->body); 486 487 // Loop is finished, so remove its iv from the live symbols. 488 ClastVars.erase(f->iterator); 489 Builder.SetInsertPoint(ExitBlock->begin()); 490 } 491 492 // Helper class to determine all scalar parameters used in the basic blocks of a 493 // clast. Scalar parameters are scalar variables defined outside of the SCoP. 494 class ParameterVisitor : public ClastVisitor { 495 std::set<Value *> Values; 496 497 public: 498 ParameterVisitor() : ClastVisitor(), Values() {} 499 500 void visitUser(const clast_user_stmt *Stmt) { 501 const ScopStmt *S = static_cast<const ScopStmt *>(Stmt->statement->usr); 502 const BasicBlock *BB = S->getBasicBlock(); 503 504 // Check all the operands of instructions in the basic block. 505 for (BasicBlock::const_iterator BI = BB->begin(), BE = BB->end(); BI != BE; 506 ++BI) { 507 const Instruction &Inst = *BI; 508 for (Instruction::const_op_iterator II = Inst.op_begin(), 509 IE = Inst.op_end(); 510 II != IE; ++II) { 511 Value *SrcVal = *II; 512 513 if (Instruction *OpInst = dyn_cast<Instruction>(SrcVal)) 514 if (S->getParent()->getRegion().contains(OpInst)) 515 continue; 516 517 if (isa<Instruction>(SrcVal) || isa<Argument>(SrcVal)) 518 Values.insert(SrcVal); 519 } 520 } 521 } 522 523 // Iterator to iterate over the values found. 524 typedef std::set<Value *>::const_iterator const_iterator; 525 inline const_iterator begin() const { return Values.begin(); } 526 inline const_iterator end() const { return Values.end(); } 527 }; 528 529 SetVector<Value *> ClastStmtCodeGen::getOMPValues(const clast_stmt *Body) { 530 SetVector<Value *> Values; 531 532 // The clast variables 533 for (CharMapT::iterator I = ClastVars.begin(), E = ClastVars.end(); I != E; 534 I++) 535 Values.insert(I->second); 536 537 // Find the temporaries that are referenced in the clast statements' 538 // basic blocks but are not defined by these blocks (e.g., references 539 // to function arguments or temporaries defined before the start of 540 // the SCoP). 541 ParameterVisitor Params; 542 Params.visit(Body); 543 544 for (ParameterVisitor::const_iterator PI = Params.begin(), PE = Params.end(); 545 PI != PE; ++PI) { 546 Value *V = *PI; 547 Values.insert(V); 548 DEBUG(dbgs() << "Adding temporary for OMP copy-in: " << *V << "\n"); 549 } 550 551 return Values; 552 } 553 554 void 555 ClastStmtCodeGen::updateWithValueMap(OMPGenerator::ValueToValueMapTy &VMap) { 556 std::set<Value *> Inserted; 557 558 for (CharMapT::iterator I = ClastVars.begin(), E = ClastVars.end(); I != E; 559 I++) { 560 ClastVars[I->first] = VMap[I->second]; 561 Inserted.insert(I->second); 562 } 563 564 for (OMPGenerator::ValueToValueMapTy::iterator I = VMap.begin(), 565 E = VMap.end(); 566 I != E; ++I) { 567 if (Inserted.count(I->first)) 568 continue; 569 570 ValueMap[I->first] = I->second; 571 } 572 } 573 574 static void clearDomtree(Function *F, DominatorTree &DT) { 575 DomTreeNode *N = DT.getNode(&F->getEntryBlock()); 576 std::vector<BasicBlock *> Nodes; 577 for (po_iterator<DomTreeNode *> I = po_begin(N), E = po_end(N); I != E; ++I) 578 Nodes.push_back(I->getBlock()); 579 580 for (std::vector<BasicBlock *>::iterator I = Nodes.begin(), E = Nodes.end(); 581 I != E; ++I) 582 DT.eraseNode(*I); 583 } 584 585 void ClastStmtCodeGen::codegenForOpenMP(const clast_for *For) { 586 Value *Stride, *LB, *UB, *IV; 587 BasicBlock::iterator LoopBody; 588 IntegerType *IntPtrTy = getIntPtrTy(); 589 SetVector<Value *> Values; 590 OMPGenerator::ValueToValueMapTy VMap; 591 OMPGenerator OMPGen(Builder, P); 592 593 Stride = Builder.getInt(APInt_from_MPZ(For->stride)); 594 Stride = Builder.CreateSExtOrBitCast(Stride, IntPtrTy); 595 LB = ExpGen.codegen(For->LB, IntPtrTy); 596 UB = ExpGen.codegen(For->UB, IntPtrTy); 597 598 Values = getOMPValues(For->body); 599 600 IV = OMPGen.createParallelLoop(LB, UB, Stride, Values, VMap, &LoopBody); 601 BasicBlock::iterator AfterLoop = Builder.GetInsertPoint(); 602 Builder.SetInsertPoint(LoopBody); 603 604 // Save the current values. 605 const ValueMapT ValueMapCopy = ValueMap; 606 const CharMapT ClastVarsCopy = ClastVars; 607 608 updateWithValueMap(VMap); 609 ClastVars[For->iterator] = IV; 610 611 if (For->body) 612 codegen(For->body); 613 614 // Restore the original values. 615 ValueMap = ValueMapCopy; 616 ClastVars = ClastVarsCopy; 617 618 clearDomtree((*LoopBody).getParent()->getParent(), 619 P->getAnalysis<DominatorTree>()); 620 621 Builder.SetInsertPoint(AfterLoop); 622 } 623 624 #ifdef GPU_CODEGEN 625 static unsigned getArraySizeInBytes(const ArrayType *AT) { 626 unsigned Bytes = AT->getNumElements(); 627 if (const ArrayType *T = dyn_cast<ArrayType>(AT->getElementType())) 628 Bytes *= getArraySizeInBytes(T); 629 else 630 Bytes *= AT->getElementType()->getPrimitiveSizeInBits() / 8; 631 632 return Bytes; 633 } 634 635 SetVector<Value *> ClastStmtCodeGen::getGPUValues(unsigned &OutputBytes) { 636 SetVector<Value *> Values; 637 OutputBytes = 0; 638 639 // Record the memory reference base addresses. 640 for (Scop::iterator SI = S->begin(), SE = S->end(); SI != SE; ++SI) { 641 ScopStmt *Stmt = *SI; 642 for (SmallVector<MemoryAccess *, 8>::iterator I = Stmt->memacc_begin(), 643 E = Stmt->memacc_end(); 644 I != E; ++I) { 645 Value *BaseAddr = const_cast<Value *>((*I)->getBaseAddr()); 646 Values.insert((BaseAddr)); 647 648 // FIXME: we assume that there is one and only one array to be written 649 // in a SCoP. 650 int NumWrites = 0; 651 if ((*I)->isWrite()) { 652 ++NumWrites; 653 assert(NumWrites <= 1 && 654 "We support at most one array to be written in a SCoP."); 655 if (const PointerType *PT = 656 dyn_cast<PointerType>(BaseAddr->getType())) { 657 Type *T = PT->getArrayElementType(); 658 const ArrayType *ATy = dyn_cast<ArrayType>(T); 659 OutputBytes = getArraySizeInBytes(ATy); 660 } 661 } 662 } 663 } 664 665 return Values; 666 } 667 668 const clast_stmt *ClastStmtCodeGen::getScheduleInfo(const clast_for *F, 669 std::vector<int> &NumIters, 670 unsigned &LoopDepth, 671 unsigned &NonPLoopDepth) { 672 clast_stmt *Stmt = (clast_stmt *)F; 673 const clast_for *Result; 674 bool NonParaFlag = false; 675 LoopDepth = 0; 676 NonPLoopDepth = 0; 677 678 while (Stmt) { 679 if (CLAST_STMT_IS_A(Stmt, stmt_for)) { 680 const clast_for *T = (clast_for *)Stmt; 681 if (isParallelFor(T)) { 682 if (!NonParaFlag) { 683 NumIters.push_back(getNumberOfIterations(T)); 684 Result = T; 685 } 686 } else 687 NonParaFlag = true; 688 689 Stmt = T->body; 690 LoopDepth++; 691 continue; 692 } 693 Stmt = Stmt->next; 694 } 695 696 assert(NumIters.size() == 4 && 697 "The loops should be tiled into 4-depth parallel loops and an " 698 "innermost non-parallel one (if exist)."); 699 NonPLoopDepth = LoopDepth - NumIters.size(); 700 assert(NonPLoopDepth <= 1 && 701 "We support only one innermost non-parallel loop currently."); 702 return (const clast_stmt *)Result->body; 703 } 704 705 void ClastStmtCodeGen::codegenForGPGPU(const clast_for *F) { 706 BasicBlock::iterator LoopBody; 707 SetVector<Value *> Values; 708 SetVector<Value *> IVS; 709 std::vector<int> NumIterations; 710 PTXGenerator::ValueToValueMapTy VMap; 711 712 assert(!GPUTriple.empty() && 713 "Target triple should be set properly for GPGPU code generation."); 714 PTXGenerator PTXGen(Builder, P, GPUTriple); 715 716 // Get original IVS and ScopStmt 717 unsigned TiledLoopDepth, NonPLoopDepth; 718 const clast_stmt *InnerStmt = 719 getScheduleInfo(F, NumIterations, TiledLoopDepth, NonPLoopDepth); 720 const clast_stmt *TmpStmt; 721 const clast_user_stmt *U; 722 const clast_for *InnerFor; 723 if (CLAST_STMT_IS_A(InnerStmt, stmt_for)) { 724 InnerFor = (const clast_for *)InnerStmt; 725 TmpStmt = InnerFor->body; 726 } else 727 TmpStmt = InnerStmt; 728 U = (const clast_user_stmt *)TmpStmt; 729 ScopStmt *Statement = (ScopStmt *)U->statement->usr; 730 for (unsigned i = 0; i < Statement->getNumIterators() - NonPLoopDepth; i++) { 731 const Value *IV = Statement->getInductionVariableForDimension(i); 732 IVS.insert(const_cast<Value *>(IV)); 733 } 734 735 unsigned OutBytes; 736 Values = getGPUValues(OutBytes); 737 PTXGen.setOutputBytes(OutBytes); 738 PTXGen.startGeneration(Values, IVS, VMap, &LoopBody); 739 740 BasicBlock::iterator AfterLoop = Builder.GetInsertPoint(); 741 Builder.SetInsertPoint(LoopBody); 742 743 BasicBlock *AfterBB = 0; 744 if (NonPLoopDepth) { 745 Value *LowerBound, *UpperBound, *IV, *Stride; 746 Type *IntPtrTy = getIntPtrTy(); 747 LowerBound = ExpGen.codegen(InnerFor->LB, IntPtrTy); 748 UpperBound = ExpGen.codegen(InnerFor->UB, IntPtrTy); 749 Stride = Builder.getInt(APInt_from_MPZ(InnerFor->stride)); 750 IV = createLoop(LowerBound, UpperBound, Stride, Builder, P, AfterBB, 751 CmpInst::ICMP_SLE); 752 const Value *OldIV_ = Statement->getInductionVariableForDimension(2); 753 Value *OldIV = const_cast<Value *>(OldIV_); 754 VMap.insert(std::make_pair<Value *, Value *>(OldIV, IV)); 755 } 756 757 updateWithValueMap(VMap); 758 759 BlockGenerator::generate(Builder, *Statement, ValueMap, P); 760 761 if (AfterBB) 762 Builder.SetInsertPoint(AfterBB->begin()); 763 764 // FIXME: The replacement of the host base address with the parameter of ptx 765 // subfunction should have been done by updateWithValueMap. We use the 766 // following codes to avoid affecting other parts of Polly. This should be 767 // fixed later. 768 Function *FN = Builder.GetInsertBlock()->getParent(); 769 for (unsigned j = 0; j < Values.size(); j++) { 770 Value *baseAddr = Values[j]; 771 for (Function::iterator B = FN->begin(); B != FN->end(); ++B) { 772 for (BasicBlock::iterator I = B->begin(); I != B->end(); ++I) 773 I->replaceUsesOfWith(baseAddr, ValueMap[baseAddr]); 774 } 775 } 776 Builder.SetInsertPoint(AfterLoop); 777 PTXGen.setLaunchingParameters(NumIterations[0], NumIterations[1], 778 NumIterations[2], NumIterations[3]); 779 PTXGen.finishGeneration(FN); 780 } 781 #endif 782 783 bool ClastStmtCodeGen::isInnermostLoop(const clast_for *f) { 784 const clast_stmt *stmt = f->body; 785 786 while (stmt) { 787 if (!CLAST_STMT_IS_A(stmt, stmt_user)) 788 return false; 789 790 stmt = stmt->next; 791 } 792 793 return true; 794 } 795 796 int ClastStmtCodeGen::getNumberOfIterations(const clast_for *For) { 797 isl_set *LoopDomain = isl_set_copy(isl_set_from_cloog_domain(For->domain)); 798 int NumberOfIterations = polly::getNumberOfIterations(LoopDomain); 799 if (NumberOfIterations == -1) 800 return -1; 801 return NumberOfIterations / isl_int_get_si(For->stride) + 1; 802 } 803 804 void ClastStmtCodeGen::codegenForVector(const clast_for *F) { 805 DEBUG(dbgs() << "Vectorizing loop '" << F->iterator << "'\n";); 806 int VectorWidth = getNumberOfIterations(F); 807 808 Value *LB = ExpGen.codegen(F->LB, getIntPtrTy()); 809 810 APInt Stride = APInt_from_MPZ(F->stride); 811 IntegerType *LoopIVType = dyn_cast<IntegerType>(LB->getType()); 812 Stride = Stride.zext(LoopIVType->getBitWidth()); 813 Value *StrideValue = ConstantInt::get(LoopIVType, Stride); 814 815 std::vector<Value *> IVS(VectorWidth); 816 IVS[0] = LB; 817 818 for (int i = 1; i < VectorWidth; i++) 819 IVS[i] = Builder.CreateAdd(IVS[i - 1], StrideValue, "p_vector_iv"); 820 821 isl_set *Domain = isl_set_from_cloog_domain(F->domain); 822 823 // Add loop iv to symbols. 824 ClastVars[F->iterator] = LB; 825 826 const clast_stmt *Stmt = F->body; 827 828 while (Stmt) { 829 codegen((const clast_user_stmt *)Stmt, &IVS, F->iterator, 830 isl_set_copy(Domain)); 831 Stmt = Stmt->next; 832 } 833 834 // Loop is finished, so remove its iv from the live symbols. 835 isl_set_free(Domain); 836 ClastVars.erase(F->iterator); 837 } 838 839 bool ClastStmtCodeGen::isParallelFor(const clast_for *f) { 840 isl_set *Domain = isl_set_from_cloog_domain(f->domain); 841 assert(Domain && "Cannot access domain of loop"); 842 843 Dependences &D = P->getAnalysis<Dependences>(); 844 845 return D.isParallelDimension(isl_set_copy(Domain), isl_set_n_dim(Domain)); 846 } 847 848 void ClastStmtCodeGen::codegen(const clast_for *f) { 849 bool Vector = PollyVectorizerChoice != VECTORIZER_NONE; 850 if ((Vector || OpenMP) && isParallelFor(f)) { 851 if (Vector && isInnermostLoop(f) && (-1 != getNumberOfIterations(f)) && 852 (getNumberOfIterations(f) <= 16)) { 853 codegenForVector(f); 854 return; 855 } 856 857 if (OpenMP && !parallelCodeGeneration) { 858 parallelCodeGeneration = true; 859 parallelLoops.push_back(f->iterator); 860 codegenForOpenMP(f); 861 parallelCodeGeneration = false; 862 return; 863 } 864 } 865 866 #ifdef GPU_CODEGEN 867 if (GPGPU && isParallelFor(f)) { 868 if (!parallelCodeGeneration) { 869 parallelCodeGeneration = true; 870 parallelLoops.push_back(f->iterator); 871 codegenForGPGPU(f); 872 parallelCodeGeneration = false; 873 return; 874 } 875 } 876 #endif 877 878 codegenForSequential(f); 879 } 880 881 Value *ClastStmtCodeGen::codegen(const clast_equation *eq) { 882 Value *LHS = ExpGen.codegen(eq->LHS, getIntPtrTy()); 883 Value *RHS = ExpGen.codegen(eq->RHS, getIntPtrTy()); 884 CmpInst::Predicate P; 885 886 if (eq->sign == 0) 887 P = ICmpInst::ICMP_EQ; 888 else if (eq->sign > 0) 889 P = ICmpInst::ICMP_SGE; 890 else 891 P = ICmpInst::ICMP_SLE; 892 893 return Builder.CreateICmp(P, LHS, RHS); 894 } 895 896 void ClastStmtCodeGen::codegen(const clast_guard *g) { 897 Function *F = Builder.GetInsertBlock()->getParent(); 898 LLVMContext &Context = F->getContext(); 899 900 BasicBlock *CondBB = 901 SplitBlock(Builder.GetInsertBlock(), Builder.GetInsertPoint(), P); 902 CondBB->setName("polly.cond"); 903 BasicBlock *MergeBB = SplitBlock(CondBB, CondBB->begin(), P); 904 MergeBB->setName("polly.merge"); 905 BasicBlock *ThenBB = BasicBlock::Create(Context, "polly.then", F); 906 907 DominatorTree &DT = P->getAnalysis<DominatorTree>(); 908 DT.addNewBlock(ThenBB, CondBB); 909 DT.changeImmediateDominator(MergeBB, CondBB); 910 911 CondBB->getTerminator()->eraseFromParent(); 912 913 Builder.SetInsertPoint(CondBB); 914 915 Value *Predicate = codegen(&(g->eq[0])); 916 917 for (int i = 1; i < g->n; ++i) { 918 Value *TmpPredicate = codegen(&(g->eq[i])); 919 Predicate = Builder.CreateAnd(Predicate, TmpPredicate); 920 } 921 922 Builder.CreateCondBr(Predicate, ThenBB, MergeBB); 923 Builder.SetInsertPoint(ThenBB); 924 Builder.CreateBr(MergeBB); 925 Builder.SetInsertPoint(ThenBB->begin()); 926 927 codegen(g->then); 928 929 Builder.SetInsertPoint(MergeBB->begin()); 930 } 931 932 void ClastStmtCodeGen::codegen(const clast_stmt *stmt) { 933 if (CLAST_STMT_IS_A(stmt, stmt_root)) 934 assert(false && "No second root statement expected"); 935 else if (CLAST_STMT_IS_A(stmt, stmt_ass)) 936 codegen((const clast_assignment *)stmt); 937 else if (CLAST_STMT_IS_A(stmt, stmt_user)) 938 codegen((const clast_user_stmt *)stmt); 939 else if (CLAST_STMT_IS_A(stmt, stmt_block)) 940 codegen((const clast_block *)stmt); 941 else if (CLAST_STMT_IS_A(stmt, stmt_for)) 942 codegen((const clast_for *)stmt); 943 else if (CLAST_STMT_IS_A(stmt, stmt_guard)) 944 codegen((const clast_guard *)stmt); 945 946 if (stmt->next) 947 codegen(stmt->next); 948 } 949 950 void ClastStmtCodeGen::addParameters(const CloogNames *names) { 951 SCEVExpander Rewriter(P->getAnalysis<ScalarEvolution>(), "polly"); 952 953 int i = 0; 954 for (Scop::param_iterator PI = S->param_begin(), PE = S->param_end(); 955 PI != PE; ++PI) { 956 assert(i < names->nb_parameters && "Not enough parameter names"); 957 958 const SCEV *Param = *PI; 959 Type *Ty = Param->getType(); 960 961 Instruction *insertLocation = --(Builder.GetInsertBlock()->end()); 962 Value *V = Rewriter.expandCodeFor(Param, Ty, insertLocation); 963 ClastVars[names->parameters[i]] = V; 964 965 ++i; 966 } 967 } 968 969 void ClastStmtCodeGen::codegen(const clast_root *r) { 970 addParameters(r->names); 971 972 parallelCodeGeneration = false; 973 974 const clast_stmt *stmt = (const clast_stmt *)r; 975 if (stmt->next) 976 codegen(stmt->next); 977 } 978 979 ClastStmtCodeGen::ClastStmtCodeGen(Scop *scop, IRBuilder<> &B, Pass *P) 980 : S(scop), P(P), Builder(B), ExpGen(Builder, ClastVars) {} 981 982 namespace { 983 class CodeGeneration : public ScopPass { 984 std::vector<std::string> ParallelLoops; 985 986 public: 987 static char ID; 988 989 CodeGeneration() : ScopPass(ID) {} 990 991 bool runOnScop(Scop &S) { 992 ParallelLoops.clear(); 993 994 assert(!S.getRegion().isTopLevelRegion() && 995 "Top level regions are not supported"); 996 997 simplifyRegion(&S, this); 998 999 BasicBlock *StartBlock = executeScopConditionally(S, this); 1000 1001 IRBuilder<> Builder(StartBlock->begin()); 1002 1003 ClastStmtCodeGen CodeGen(&S, Builder, this); 1004 CloogInfo &C = getAnalysis<CloogInfo>(); 1005 CodeGen.codegen(C.getClast()); 1006 1007 ParallelLoops.insert(ParallelLoops.begin(), 1008 CodeGen.getParallelLoops().begin(), 1009 CodeGen.getParallelLoops().end()); 1010 return true; 1011 } 1012 1013 virtual void printScop(raw_ostream &OS) const { 1014 for (std::vector<std::string>::const_iterator PI = ParallelLoops.begin(), 1015 PE = ParallelLoops.end(); 1016 PI != PE; ++PI) 1017 OS << "Parallel loop with iterator '" << *PI << "' generated\n"; 1018 } 1019 1020 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 1021 AU.addRequired<CloogInfo>(); 1022 AU.addRequired<Dependences>(); 1023 AU.addRequired<DominatorTree>(); 1024 AU.addRequired<RegionInfo>(); 1025 AU.addRequired<ScalarEvolution>(); 1026 AU.addRequired<ScopDetection>(); 1027 AU.addRequired<ScopInfo>(); 1028 AU.addRequired<DataLayout>(); 1029 AU.addRequired<LoopInfo>(); 1030 1031 AU.addPreserved<CloogInfo>(); 1032 AU.addPreserved<Dependences>(); 1033 1034 // FIXME: We do not create LoopInfo for the newly generated loops. 1035 AU.addPreserved<LoopInfo>(); 1036 AU.addPreserved<DominatorTree>(); 1037 AU.addPreserved<ScopDetection>(); 1038 AU.addPreserved<ScalarEvolution>(); 1039 1040 // FIXME: We do not yet add regions for the newly generated code to the 1041 // region tree. 1042 AU.addPreserved<RegionInfo>(); 1043 AU.addPreserved<TempScopInfo>(); 1044 AU.addPreserved<ScopInfo>(); 1045 AU.addPreservedID(IndependentBlocksID); 1046 } 1047 }; 1048 } 1049 1050 char CodeGeneration::ID = 1; 1051 1052 Pass *polly::createCodeGenerationPass() { return new CodeGeneration(); } 1053 1054 INITIALIZE_PASS_BEGIN(CodeGeneration, "polly-codegen", 1055 "Polly - Create LLVM-IR from SCoPs", false, false); 1056 INITIALIZE_PASS_DEPENDENCY(CloogInfo); 1057 INITIALIZE_PASS_DEPENDENCY(Dependences); 1058 INITIALIZE_PASS_DEPENDENCY(DominatorTree); 1059 INITIALIZE_PASS_DEPENDENCY(RegionInfo); 1060 INITIALIZE_PASS_DEPENDENCY(ScalarEvolution); 1061 INITIALIZE_PASS_DEPENDENCY(ScopDetection); 1062 INITIALIZE_PASS_DEPENDENCY(DataLayout); 1063 INITIALIZE_PASS_END(CodeGeneration, "polly-codegen", 1064 "Polly - Create LLVM-IR from SCoPs", false, false) 1065 1066 #endif // CLOOG_FOUND 1067