1 //===- CodeGeneration.cpp - Code generate the Scops using ISL. ---------======// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // The CodeGeneration pass takes a Scop created by ScopInfo and translates it 10 // back to LLVM-IR using the ISL code generator. 11 // 12 // The Scop describes the high level memory behavior of a control flow region. 13 // Transformation passes can update the schedule (execution order) of statements 14 // in the Scop. ISL is used to generate an abstract syntax tree that reflects 15 // the updated execution order. This clast is used to create new LLVM-IR that is 16 // computationally equivalent to the original control flow region, but executes 17 // its code in the new execution order defined by the changed schedule. 18 // 19 //===----------------------------------------------------------------------===// 20 21 #include "polly/CodeGen/CodeGeneration.h" 22 #include "polly/CodeGen/IRBuilder.h" 23 #include "polly/CodeGen/IslAst.h" 24 #include "polly/CodeGen/IslNodeBuilder.h" 25 #include "polly/CodeGen/PerfMonitor.h" 26 #include "polly/CodeGen/Utils.h" 27 #include "polly/DependenceInfo.h" 28 #include "polly/LinkAllPasses.h" 29 #include "polly/Options.h" 30 #include "polly/ScopInfo.h" 31 #include "polly/Support/ScopHelper.h" 32 #include "llvm/ADT/Statistic.h" 33 #include "llvm/Analysis/LoopInfo.h" 34 #include "llvm/Analysis/RegionInfo.h" 35 #include "llvm/IR/BasicBlock.h" 36 #include "llvm/IR/Dominators.h" 37 #include "llvm/IR/Function.h" 38 #include "llvm/IR/PassManager.h" 39 #include "llvm/IR/Verifier.h" 40 #include "llvm/InitializePasses.h" 41 #include "llvm/Support/Debug.h" 42 #include "llvm/Support/ErrorHandling.h" 43 #include "llvm/Support/raw_ostream.h" 44 #include "isl/ast.h" 45 #include <cassert> 46 47 using namespace llvm; 48 using namespace polly; 49 50 #define DEBUG_TYPE "polly-codegen" 51 52 static cl::opt<bool> Verify("polly-codegen-verify", 53 cl::desc("Verify the function generated by Polly"), 54 cl::Hidden, cl::cat(PollyCategory)); 55 56 bool polly::PerfMonitoring; 57 58 static cl::opt<bool, true> 59 XPerfMonitoring("polly-codegen-perf-monitoring", 60 cl::desc("Add run-time performance monitoring"), cl::Hidden, 61 cl::location(polly::PerfMonitoring), 62 cl::cat(PollyCategory)); 63 64 STATISTIC(ScopsProcessed, "Number of SCoP processed"); 65 STATISTIC(CodegenedScops, "Number of successfully generated SCoPs"); 66 STATISTIC(CodegenedAffineLoops, 67 "Number of original affine loops in SCoPs that have been generated"); 68 STATISTIC(CodegenedBoxedLoops, 69 "Number of original boxed loops in SCoPs that have been generated"); 70 71 namespace polly { 72 73 /// Mark a basic block unreachable. 74 /// 75 /// Marks the basic block @p Block unreachable by equipping it with an 76 /// UnreachableInst. 77 void markBlockUnreachable(BasicBlock &Block, PollyIRBuilder &Builder) { 78 auto *OrigTerminator = Block.getTerminator(); 79 Builder.SetInsertPoint(OrigTerminator); 80 Builder.CreateUnreachable(); 81 OrigTerminator->eraseFromParent(); 82 } 83 } // namespace polly 84 85 static void verifyGeneratedFunction(Scop &S, Function &F, IslAstInfo &AI) { 86 if (!Verify || !verifyFunction(F, &errs())) 87 return; 88 89 LLVM_DEBUG({ 90 errs() << "== ISL Codegen created an invalid function ==\n\n== The " 91 "SCoP ==\n"; 92 errs() << S; 93 errs() << "\n== The isl AST ==\n"; 94 AI.print(errs()); 95 errs() << "\n== The invalid function ==\n"; 96 F.print(errs()); 97 }); 98 99 llvm_unreachable("Polly generated function could not be verified. Add " 100 "-polly-codegen-verify=false to disable this assertion."); 101 } 102 103 // CodeGeneration adds a lot of BBs without updating the RegionInfo 104 // We make all created BBs belong to the scop's parent region without any 105 // nested structure to keep the RegionInfo verifier happy. 106 static void fixRegionInfo(Function &F, Region &ParentRegion, RegionInfo &RI) { 107 for (BasicBlock &BB : F) { 108 if (RI.getRegionFor(&BB)) 109 continue; 110 111 RI.setRegionFor(&BB, &ParentRegion); 112 } 113 } 114 115 /// Remove all lifetime markers (llvm.lifetime.start, llvm.lifetime.end) from 116 /// @R. 117 /// 118 /// CodeGeneration does not copy lifetime markers into the optimized SCoP, 119 /// which would leave the them only in the original path. This can transform 120 /// code such as 121 /// 122 /// llvm.lifetime.start(%p) 123 /// llvm.lifetime.end(%p) 124 /// 125 /// into 126 /// 127 /// if (RTC) { 128 /// // generated code 129 /// } else { 130 /// // original code 131 /// llvm.lifetime.start(%p) 132 /// } 133 /// llvm.lifetime.end(%p) 134 /// 135 /// The current StackColoring algorithm cannot handle if some, but not all, 136 /// paths from the end marker to the entry block cross the start marker. Same 137 /// for start markers that do not always cross the end markers. We avoid any 138 /// issues by removing all lifetime markers, even from the original code. 139 /// 140 /// A better solution could be to hoist all llvm.lifetime.start to the split 141 /// node and all llvm.lifetime.end to the merge node, which should be 142 /// conservatively correct. 143 static void removeLifetimeMarkers(Region *R) { 144 for (auto *BB : R->blocks()) { 145 auto InstIt = BB->begin(); 146 auto InstEnd = BB->end(); 147 148 while (InstIt != InstEnd) { 149 auto NextIt = InstIt; 150 ++NextIt; 151 152 if (auto *IT = dyn_cast<IntrinsicInst>(&*InstIt)) { 153 switch (IT->getIntrinsicID()) { 154 case Intrinsic::lifetime_start: 155 case Intrinsic::lifetime_end: 156 BB->getInstList().erase(InstIt); 157 break; 158 default: 159 break; 160 } 161 } 162 163 InstIt = NextIt; 164 } 165 } 166 } 167 168 static bool generateCode(Scop &S, IslAstInfo &AI, LoopInfo &LI, 169 DominatorTree &DT, ScalarEvolution &SE, 170 RegionInfo &RI) { 171 // Check whether IslAstInfo uses the same isl_ctx. Since -polly-codegen 172 // reports itself to preserve DependenceInfo and IslAstInfo, we might get 173 // those analysis that were computed by a different ScopInfo for a different 174 // Scop structure. When the ScopInfo/Scop object is freed, there is a high 175 // probability that the new ScopInfo/Scop object will be created at the same 176 // heap position with the same address. Comparing whether the Scop or ScopInfo 177 // address is the expected therefore is unreliable. 178 // Instead, we compare the address of the isl_ctx object. Both, DependenceInfo 179 // and IslAstInfo must hold a reference to the isl_ctx object to ensure it is 180 // not freed before the destruction of those analyses which might happen after 181 // the destruction of the Scop/ScopInfo they refer to. Hence, the isl_ctx 182 // will not be freed and its space not reused as long there is a 183 // DependenceInfo or IslAstInfo around. 184 IslAst &Ast = AI.getIslAst(); 185 if (Ast.getSharedIslCtx() != S.getSharedIslCtx()) { 186 LLVM_DEBUG(dbgs() << "Got an IstAst for a different Scop/isl_ctx\n"); 187 return false; 188 } 189 190 // Check if we created an isl_ast root node, otherwise exit. 191 isl::ast_node AstRoot = Ast.getAst(); 192 if (AstRoot.is_null()) 193 return false; 194 195 // Collect statistics. Do it before we modify the IR to avoid having it any 196 // influence on the result. 197 auto ScopStats = S.getStatistics(); 198 ScopsProcessed++; 199 200 auto &DL = S.getFunction().getParent()->getDataLayout(); 201 Region *R = &S.getRegion(); 202 assert(!R->isTopLevelRegion() && "Top level regions are not supported"); 203 204 ScopAnnotator Annotator; 205 206 simplifyRegion(R, &DT, &LI, &RI); 207 assert(R->isSimple()); 208 BasicBlock *EnteringBB = S.getEnteringBlock(); 209 assert(EnteringBB); 210 PollyIRBuilder Builder(EnteringBB->getContext(), ConstantFolder(), 211 IRInserter(Annotator)); 212 Builder.SetInsertPoint(EnteringBB->getTerminator()); 213 214 // Only build the run-time condition and parameters _after_ having 215 // introduced the conditional branch. This is important as the conditional 216 // branch will guard the original scop from new induction variables that 217 // the SCEVExpander may introduce while code generating the parameters and 218 // which may introduce scalar dependences that prevent us from correctly 219 // code generating this scop. 220 BBPair StartExitBlocks = 221 std::get<0>(executeScopConditionally(S, Builder.getTrue(), DT, RI, LI)); 222 BasicBlock *StartBlock = std::get<0>(StartExitBlocks); 223 BasicBlock *ExitBlock = std::get<1>(StartExitBlocks); 224 225 removeLifetimeMarkers(R); 226 auto *SplitBlock = StartBlock->getSinglePredecessor(); 227 228 IslNodeBuilder NodeBuilder(Builder, Annotator, DL, LI, SE, DT, S, StartBlock); 229 230 // All arrays must have their base pointers known before 231 // ScopAnnotator::buildAliasScopes. 232 NodeBuilder.allocateNewArrays(StartExitBlocks); 233 Annotator.buildAliasScopes(S); 234 235 if (PerfMonitoring) { 236 PerfMonitor P(S, EnteringBB->getParent()->getParent()); 237 P.initialize(); 238 P.insertRegionStart(SplitBlock->getTerminator()); 239 240 BasicBlock *MergeBlock = ExitBlock->getUniqueSuccessor(); 241 P.insertRegionEnd(MergeBlock->getTerminator()); 242 } 243 244 // First generate code for the hoisted invariant loads and transitively the 245 // parameters they reference. Afterwards, for the remaining parameters that 246 // might reference the hoisted loads. Finally, build the runtime check 247 // that might reference both hoisted loads as well as parameters. 248 // If the hoisting fails we have to bail and execute the original code. 249 Builder.SetInsertPoint(SplitBlock->getTerminator()); 250 if (!NodeBuilder.preloadInvariantLoads()) { 251 // Patch the introduced branch condition to ensure that we always execute 252 // the original SCoP. 253 auto *FalseI1 = Builder.getFalse(); 254 auto *SplitBBTerm = Builder.GetInsertBlock()->getTerminator(); 255 SplitBBTerm->setOperand(0, FalseI1); 256 257 // Since the other branch is hence ignored we mark it as unreachable and 258 // adjust the dominator tree accordingly. 259 auto *ExitingBlock = StartBlock->getUniqueSuccessor(); 260 assert(ExitingBlock); 261 auto *MergeBlock = ExitingBlock->getUniqueSuccessor(); 262 assert(MergeBlock); 263 markBlockUnreachable(*StartBlock, Builder); 264 markBlockUnreachable(*ExitingBlock, Builder); 265 auto *ExitingBB = S.getExitingBlock(); 266 assert(ExitingBB); 267 DT.changeImmediateDominator(MergeBlock, ExitingBB); 268 DT.eraseNode(ExitingBlock); 269 } else { 270 NodeBuilder.addParameters(S.getContext().release()); 271 Value *RTC = NodeBuilder.createRTC(AI.getRunCondition().release()); 272 273 Builder.GetInsertBlock()->getTerminator()->setOperand(0, RTC); 274 275 // Explicitly set the insert point to the end of the block to avoid that a 276 // split at the builder's current 277 // insert position would move the malloc calls to the wrong BasicBlock. 278 // Ideally we would just split the block during allocation of the new 279 // arrays, but this would break the assumption that there are no blocks 280 // between polly.start and polly.exiting (at this point). 281 Builder.SetInsertPoint(StartBlock->getTerminator()); 282 283 NodeBuilder.create(AstRoot.release()); 284 NodeBuilder.finalize(); 285 fixRegionInfo(*EnteringBB->getParent(), *R->getParent(), RI); 286 287 CodegenedScops++; 288 CodegenedAffineLoops += ScopStats.NumAffineLoops; 289 CodegenedBoxedLoops += ScopStats.NumBoxedLoops; 290 } 291 292 Function *F = EnteringBB->getParent(); 293 verifyGeneratedFunction(S, *F, AI); 294 for (auto *SubF : NodeBuilder.getParallelSubfunctions()) 295 verifyGeneratedFunction(S, *SubF, AI); 296 297 // Mark the function such that we run additional cleanup passes on this 298 // function (e.g. mem2reg to rediscover phi nodes). 299 F->addFnAttr("polly-optimized"); 300 return true; 301 } 302 303 namespace { 304 305 class CodeGeneration final : public ScopPass { 306 public: 307 static char ID; 308 309 /// The data layout used. 310 const DataLayout *DL; 311 312 /// @name The analysis passes we need to generate code. 313 /// 314 ///{ 315 LoopInfo *LI; 316 IslAstInfo *AI; 317 DominatorTree *DT; 318 ScalarEvolution *SE; 319 RegionInfo *RI; 320 ///} 321 322 CodeGeneration() : ScopPass(ID) {} 323 324 /// Generate LLVM-IR for the SCoP @p S. 325 bool runOnScop(Scop &S) override { 326 // Skip SCoPs in case they're already code-generated by PPCGCodeGeneration. 327 if (S.isToBeSkipped()) 328 return false; 329 330 AI = &getAnalysis<IslAstInfoWrapperPass>().getAI(); 331 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo(); 332 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree(); 333 SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE(); 334 DL = &S.getFunction().getParent()->getDataLayout(); 335 RI = &getAnalysis<RegionInfoPass>().getRegionInfo(); 336 return generateCode(S, *AI, *LI, *DT, *SE, *RI); 337 } 338 339 /// Register all analyses and transformation required. 340 void getAnalysisUsage(AnalysisUsage &AU) const override { 341 ScopPass::getAnalysisUsage(AU); 342 343 AU.addRequired<DominatorTreeWrapperPass>(); 344 AU.addRequired<IslAstInfoWrapperPass>(); 345 AU.addRequired<RegionInfoPass>(); 346 AU.addRequired<ScalarEvolutionWrapperPass>(); 347 AU.addRequired<ScopDetectionWrapperPass>(); 348 AU.addRequired<ScopInfoRegionPass>(); 349 AU.addRequired<LoopInfoWrapperPass>(); 350 351 AU.addPreserved<DependenceInfo>(); 352 AU.addPreserved<IslAstInfoWrapperPass>(); 353 354 // FIXME: We do not yet add regions for the newly generated code to the 355 // region tree. 356 } 357 }; 358 } // namespace 359 360 PreservedAnalyses CodeGenerationPass::run(Scop &S, ScopAnalysisManager &SAM, 361 ScopStandardAnalysisResults &AR, 362 SPMUpdater &U) { 363 auto &AI = SAM.getResult<IslAstAnalysis>(S, AR); 364 if (generateCode(S, AI, AR.LI, AR.DT, AR.SE, AR.RI)) { 365 U.invalidateScop(S); 366 return PreservedAnalyses::none(); 367 } 368 369 return PreservedAnalyses::all(); 370 } 371 372 char CodeGeneration::ID = 1; 373 374 Pass *polly::createCodeGenerationPass() { return new CodeGeneration(); } 375 376 INITIALIZE_PASS_BEGIN(CodeGeneration, "polly-codegen", 377 "Polly - Create LLVM-IR from SCoPs", false, false); 378 INITIALIZE_PASS_DEPENDENCY(DependenceInfo); 379 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass); 380 INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass); 381 INITIALIZE_PASS_DEPENDENCY(RegionInfoPass); 382 INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass); 383 INITIALIZE_PASS_DEPENDENCY(ScopDetectionWrapperPass); 384 INITIALIZE_PASS_END(CodeGeneration, "polly-codegen", 385 "Polly - Create LLVM-IR from SCoPs", false, false) 386