1 //===- Inliner.cpp - Code common to all inliners --------------------------===// 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 // This file implements the mechanics required to implement inlining without 11 // missing any calls and updating the call graph. The decisions of which calls 12 // are profitable to inline are implemented elsewhere. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "llvm/Transforms/IPO/Inliner.h" 17 #include "llvm/ADT/SmallPtrSet.h" 18 #include "llvm/ADT/Statistic.h" 19 #include "llvm/Analysis/AliasAnalysis.h" 20 #include "llvm/Analysis/AssumptionCache.h" 21 #include "llvm/Analysis/BasicAliasAnalysis.h" 22 #include "llvm/Analysis/CallGraph.h" 23 #include "llvm/Analysis/InlineCost.h" 24 #include "llvm/Analysis/OptimizationDiagnosticInfo.h" 25 #include "llvm/Analysis/ProfileSummaryInfo.h" 26 #include "llvm/Analysis/TargetLibraryInfo.h" 27 #include "llvm/IR/CallSite.h" 28 #include "llvm/IR/DataLayout.h" 29 #include "llvm/IR/DiagnosticInfo.h" 30 #include "llvm/IR/InstIterator.h" 31 #include "llvm/IR/Instructions.h" 32 #include "llvm/IR/IntrinsicInst.h" 33 #include "llvm/IR/Module.h" 34 #include "llvm/Support/Debug.h" 35 #include "llvm/Support/raw_ostream.h" 36 #include "llvm/Transforms/Utils/Cloning.h" 37 #include "llvm/Transforms/Utils/Local.h" 38 using namespace llvm; 39 40 #define DEBUG_TYPE "inline" 41 42 STATISTIC(NumInlined, "Number of functions inlined"); 43 STATISTIC(NumCallsDeleted, "Number of call sites deleted, not inlined"); 44 STATISTIC(NumDeleted, "Number of functions deleted because all callers found"); 45 STATISTIC(NumMergedAllocas, "Number of allocas merged together"); 46 47 // This weirdly named statistic tracks the number of times that, when attempting 48 // to inline a function A into B, we analyze the callers of B in order to see 49 // if those would be more profitable and blocked inline steps. 50 STATISTIC(NumCallerCallersAnalyzed, "Number of caller-callers analyzed"); 51 52 /// Flag to disable manual alloca merging. 53 /// 54 /// Merging of allocas was originally done as a stack-size saving technique 55 /// prior to LLVM's code generator having support for stack coloring based on 56 /// lifetime markers. It is now in the process of being removed. To experiment 57 /// with disabling it and relying fully on lifetime marker based stack 58 /// coloring, you can pass this flag to LLVM. 59 static cl::opt<bool> 60 DisableInlinedAllocaMerging("disable-inlined-alloca-merging", 61 cl::init(false), cl::Hidden); 62 63 namespace { 64 enum class InlinerFunctionImportStatsOpts { 65 No = 0, 66 Basic = 1, 67 Verbose = 2, 68 }; 69 70 cl::opt<InlinerFunctionImportStatsOpts> InlinerFunctionImportStats( 71 "inliner-function-import-stats", 72 cl::init(InlinerFunctionImportStatsOpts::No), 73 cl::values(clEnumValN(InlinerFunctionImportStatsOpts::Basic, "basic", 74 "basic statistics"), 75 clEnumValN(InlinerFunctionImportStatsOpts::Verbose, "verbose", 76 "printing of statistics for each inlined function")), 77 cl::Hidden, cl::desc("Enable inliner stats for imported functions")); 78 } // namespace 79 80 LegacyInlinerBase::LegacyInlinerBase(char &ID) 81 : CallGraphSCCPass(ID), InsertLifetime(true) {} 82 83 LegacyInlinerBase::LegacyInlinerBase(char &ID, bool InsertLifetime) 84 : CallGraphSCCPass(ID), InsertLifetime(InsertLifetime) {} 85 86 /// For this class, we declare that we require and preserve the call graph. 87 /// If the derived class implements this method, it should 88 /// always explicitly call the implementation here. 89 void LegacyInlinerBase::getAnalysisUsage(AnalysisUsage &AU) const { 90 AU.addRequired<AssumptionCacheTracker>(); 91 AU.addRequired<ProfileSummaryInfoWrapperPass>(); 92 AU.addRequired<TargetLibraryInfoWrapperPass>(); 93 getAAResultsAnalysisUsage(AU); 94 CallGraphSCCPass::getAnalysisUsage(AU); 95 } 96 97 typedef DenseMap<ArrayType *, std::vector<AllocaInst *>> InlinedArrayAllocasTy; 98 99 /// Look at all of the allocas that we inlined through this call site. If we 100 /// have already inlined other allocas through other calls into this function, 101 /// then we know that they have disjoint lifetimes and that we can merge them. 102 /// 103 /// There are many heuristics possible for merging these allocas, and the 104 /// different options have different tradeoffs. One thing that we *really* 105 /// don't want to hurt is SRoA: once inlining happens, often allocas are no 106 /// longer address taken and so they can be promoted. 107 /// 108 /// Our "solution" for that is to only merge allocas whose outermost type is an 109 /// array type. These are usually not promoted because someone is using a 110 /// variable index into them. These are also often the most important ones to 111 /// merge. 112 /// 113 /// A better solution would be to have real memory lifetime markers in the IR 114 /// and not have the inliner do any merging of allocas at all. This would 115 /// allow the backend to do proper stack slot coloring of all allocas that 116 /// *actually make it to the backend*, which is really what we want. 117 /// 118 /// Because we don't have this information, we do this simple and useful hack. 119 static void mergeInlinedArrayAllocas( 120 Function *Caller, InlineFunctionInfo &IFI, 121 InlinedArrayAllocasTy &InlinedArrayAllocas, int InlineHistory) { 122 SmallPtrSet<AllocaInst *, 16> UsedAllocas; 123 124 // When processing our SCC, check to see if CS was inlined from some other 125 // call site. For example, if we're processing "A" in this code: 126 // A() { B() } 127 // B() { x = alloca ... C() } 128 // C() { y = alloca ... } 129 // Assume that C was not inlined into B initially, and so we're processing A 130 // and decide to inline B into A. Doing this makes an alloca available for 131 // reuse and makes a callsite (C) available for inlining. When we process 132 // the C call site we don't want to do any alloca merging between X and Y 133 // because their scopes are not disjoint. We could make this smarter by 134 // keeping track of the inline history for each alloca in the 135 // InlinedArrayAllocas but this isn't likely to be a significant win. 136 if (InlineHistory != -1) // Only do merging for top-level call sites in SCC. 137 return; 138 139 // Loop over all the allocas we have so far and see if they can be merged with 140 // a previously inlined alloca. If not, remember that we had it. 141 for (unsigned AllocaNo = 0, e = IFI.StaticAllocas.size(); AllocaNo != e; 142 ++AllocaNo) { 143 AllocaInst *AI = IFI.StaticAllocas[AllocaNo]; 144 145 // Don't bother trying to merge array allocations (they will usually be 146 // canonicalized to be an allocation *of* an array), or allocations whose 147 // type is not itself an array (because we're afraid of pessimizing SRoA). 148 ArrayType *ATy = dyn_cast<ArrayType>(AI->getAllocatedType()); 149 if (!ATy || AI->isArrayAllocation()) 150 continue; 151 152 // Get the list of all available allocas for this array type. 153 std::vector<AllocaInst *> &AllocasForType = InlinedArrayAllocas[ATy]; 154 155 // Loop over the allocas in AllocasForType to see if we can reuse one. Note 156 // that we have to be careful not to reuse the same "available" alloca for 157 // multiple different allocas that we just inlined, we use the 'UsedAllocas' 158 // set to keep track of which "available" allocas are being used by this 159 // function. Also, AllocasForType can be empty of course! 160 bool MergedAwayAlloca = false; 161 for (AllocaInst *AvailableAlloca : AllocasForType) { 162 163 unsigned Align1 = AI->getAlignment(), 164 Align2 = AvailableAlloca->getAlignment(); 165 166 // The available alloca has to be in the right function, not in some other 167 // function in this SCC. 168 if (AvailableAlloca->getParent() != AI->getParent()) 169 continue; 170 171 // If the inlined function already uses this alloca then we can't reuse 172 // it. 173 if (!UsedAllocas.insert(AvailableAlloca).second) 174 continue; 175 176 // Otherwise, we *can* reuse it, RAUW AI into AvailableAlloca and declare 177 // success! 178 DEBUG(dbgs() << " ***MERGED ALLOCA: " << *AI 179 << "\n\t\tINTO: " << *AvailableAlloca << '\n'); 180 181 // Move affected dbg.declare calls immediately after the new alloca to 182 // avoid the situation when a dbg.declare precedes its alloca. 183 if (auto *L = LocalAsMetadata::getIfExists(AI)) 184 if (auto *MDV = MetadataAsValue::getIfExists(AI->getContext(), L)) 185 for (User *U : MDV->users()) 186 if (DbgDeclareInst *DDI = dyn_cast<DbgDeclareInst>(U)) 187 DDI->moveBefore(AvailableAlloca->getNextNode()); 188 189 AI->replaceAllUsesWith(AvailableAlloca); 190 191 if (Align1 != Align2) { 192 if (!Align1 || !Align2) { 193 const DataLayout &DL = Caller->getParent()->getDataLayout(); 194 unsigned TypeAlign = DL.getABITypeAlignment(AI->getAllocatedType()); 195 196 Align1 = Align1 ? Align1 : TypeAlign; 197 Align2 = Align2 ? Align2 : TypeAlign; 198 } 199 200 if (Align1 > Align2) 201 AvailableAlloca->setAlignment(AI->getAlignment()); 202 } 203 204 AI->eraseFromParent(); 205 MergedAwayAlloca = true; 206 ++NumMergedAllocas; 207 IFI.StaticAllocas[AllocaNo] = nullptr; 208 break; 209 } 210 211 // If we already nuked the alloca, we're done with it. 212 if (MergedAwayAlloca) 213 continue; 214 215 // If we were unable to merge away the alloca either because there are no 216 // allocas of the right type available or because we reused them all 217 // already, remember that this alloca came from an inlined function and mark 218 // it used so we don't reuse it for other allocas from this inline 219 // operation. 220 AllocasForType.push_back(AI); 221 UsedAllocas.insert(AI); 222 } 223 } 224 225 /// If it is possible to inline the specified call site, 226 /// do so and update the CallGraph for this operation. 227 /// 228 /// This function also does some basic book-keeping to update the IR. The 229 /// InlinedArrayAllocas map keeps track of any allocas that are already 230 /// available from other functions inlined into the caller. If we are able to 231 /// inline this call site we attempt to reuse already available allocas or add 232 /// any new allocas to the set if not possible. 233 static bool InlineCallIfPossible( 234 CallSite CS, InlineFunctionInfo &IFI, 235 InlinedArrayAllocasTy &InlinedArrayAllocas, int InlineHistory, 236 bool InsertLifetime, function_ref<AAResults &(Function &)> &AARGetter, 237 ImportedFunctionsInliningStatistics &ImportedFunctionsStats) { 238 Function *Callee = CS.getCalledFunction(); 239 Function *Caller = CS.getCaller(); 240 241 AAResults &AAR = AARGetter(*Callee); 242 243 // Try to inline the function. Get the list of static allocas that were 244 // inlined. 245 if (!InlineFunction(CS, IFI, &AAR, InsertLifetime)) 246 return false; 247 248 if (InlinerFunctionImportStats != InlinerFunctionImportStatsOpts::No) 249 ImportedFunctionsStats.recordInline(*Caller, *Callee); 250 251 AttributeFuncs::mergeAttributesForInlining(*Caller, *Callee); 252 253 if (!DisableInlinedAllocaMerging) 254 mergeInlinedArrayAllocas(Caller, IFI, InlinedArrayAllocas, InlineHistory); 255 256 return true; 257 } 258 259 /// Return true if inlining of CS can block the caller from being 260 /// inlined which is proved to be more beneficial. \p IC is the 261 /// estimated inline cost associated with callsite \p CS. 262 /// \p TotalAltCost will be set to the estimated cost of inlining the caller 263 /// if \p CS is suppressed for inlining. 264 static bool 265 shouldBeDeferred(Function *Caller, CallSite CS, InlineCost IC, 266 int &TotalSecondaryCost, 267 function_ref<InlineCost(CallSite CS)> GetInlineCost) { 268 269 // For now we only handle local or inline functions. 270 if (!Caller->hasLocalLinkage() && !Caller->hasLinkOnceODRLinkage()) 271 return false; 272 // Try to detect the case where the current inlining candidate caller (call 273 // it B) is a static or linkonce-ODR function and is an inlining candidate 274 // elsewhere, and the current candidate callee (call it C) is large enough 275 // that inlining it into B would make B too big to inline later. In these 276 // circumstances it may be best not to inline C into B, but to inline B into 277 // its callers. 278 // 279 // This only applies to static and linkonce-ODR functions because those are 280 // expected to be available for inlining in the translation units where they 281 // are used. Thus we will always have the opportunity to make local inlining 282 // decisions. Importantly the linkonce-ODR linkage covers inline functions 283 // and templates in C++. 284 // 285 // FIXME: All of this logic should be sunk into getInlineCost. It relies on 286 // the internal implementation of the inline cost metrics rather than 287 // treating them as truly abstract units etc. 288 TotalSecondaryCost = 0; 289 // The candidate cost to be imposed upon the current function. 290 int CandidateCost = IC.getCost() - (InlineConstants::CallPenalty + 1); 291 // This bool tracks what happens if we do NOT inline C into B. 292 bool callerWillBeRemoved = Caller->hasLocalLinkage(); 293 // This bool tracks what happens if we DO inline C into B. 294 bool inliningPreventsSomeOuterInline = false; 295 for (User *U : Caller->users()) { 296 CallSite CS2(U); 297 298 // If this isn't a call to Caller (it could be some other sort 299 // of reference) skip it. Such references will prevent the caller 300 // from being removed. 301 if (!CS2 || CS2.getCalledFunction() != Caller) { 302 callerWillBeRemoved = false; 303 continue; 304 } 305 306 InlineCost IC2 = GetInlineCost(CS2); 307 ++NumCallerCallersAnalyzed; 308 if (!IC2) { 309 callerWillBeRemoved = false; 310 continue; 311 } 312 if (IC2.isAlways()) 313 continue; 314 315 // See if inlining of the original callsite would erase the cost delta of 316 // this callsite. We subtract off the penalty for the call instruction, 317 // which we would be deleting. 318 if (IC2.getCostDelta() <= CandidateCost) { 319 inliningPreventsSomeOuterInline = true; 320 TotalSecondaryCost += IC2.getCost(); 321 } 322 } 323 // If all outer calls to Caller would get inlined, the cost for the last 324 // one is set very low by getInlineCost, in anticipation that Caller will 325 // be removed entirely. We did not account for this above unless there 326 // is only one caller of Caller. 327 if (callerWillBeRemoved && !Caller->use_empty()) 328 TotalSecondaryCost -= InlineConstants::LastCallToStaticBonus; 329 330 if (inliningPreventsSomeOuterInline && TotalSecondaryCost < IC.getCost()) 331 return true; 332 333 return false; 334 } 335 336 /// Return true if the inliner should attempt to inline at the given CallSite. 337 static bool shouldInline(CallSite CS, 338 function_ref<InlineCost(CallSite CS)> GetInlineCost, 339 OptimizationRemarkEmitter &ORE) { 340 using namespace ore; 341 InlineCost IC = GetInlineCost(CS); 342 Instruction *Call = CS.getInstruction(); 343 Function *Callee = CS.getCalledFunction(); 344 345 if (IC.isAlways()) { 346 DEBUG(dbgs() << " Inlining: cost=always" 347 << ", Call: " << *CS.getInstruction() << "\n"); 348 ORE.emit(OptimizationRemarkAnalysis(DEBUG_TYPE, "AlwaysInline", Call) 349 << NV("Callee", Callee) 350 << " should always be inlined (cost=always)"); 351 return true; 352 } 353 354 if (IC.isNever()) { 355 DEBUG(dbgs() << " NOT Inlining: cost=never" 356 << ", Call: " << *CS.getInstruction() << "\n"); 357 ORE.emit(OptimizationRemarkAnalysis(DEBUG_TYPE, "NeverInline", Call) 358 << NV("Callee", Callee) 359 << " should never be inlined (cost=never)"); 360 return false; 361 } 362 363 Function *Caller = CS.getCaller(); 364 if (!IC) { 365 DEBUG(dbgs() << " NOT Inlining: cost=" << IC.getCost() 366 << ", thres=" << (IC.getCostDelta() + IC.getCost()) 367 << ", Call: " << *CS.getInstruction() << "\n"); 368 ORE.emit(OptimizationRemarkAnalysis(DEBUG_TYPE, "TooCostly", Call) 369 << NV("Callee", Callee) << " too costly to inline (cost=" 370 << NV("Cost", IC.getCost()) << ", threshold=" 371 << NV("Threshold", IC.getCostDelta() + IC.getCost()) << ")"); 372 return false; 373 } 374 375 int TotalSecondaryCost = 0; 376 if (shouldBeDeferred(Caller, CS, IC, TotalSecondaryCost, GetInlineCost)) { 377 DEBUG(dbgs() << " NOT Inlining: " << *CS.getInstruction() 378 << " Cost = " << IC.getCost() 379 << ", outer Cost = " << TotalSecondaryCost << '\n'); 380 ORE.emit(OptimizationRemarkAnalysis(DEBUG_TYPE, 381 "IncreaseCostInOtherContexts", Call) 382 << "Not inlining. Cost of inlining " << NV("Callee", Callee) 383 << " increases the cost of inlining " << NV("Caller", Caller) 384 << " in other contexts"); 385 return false; 386 } 387 388 DEBUG(dbgs() << " Inlining: cost=" << IC.getCost() 389 << ", thres=" << (IC.getCostDelta() + IC.getCost()) 390 << ", Call: " << *CS.getInstruction() << '\n'); 391 ORE.emit(OptimizationRemarkAnalysis(DEBUG_TYPE, "CanBeInlined", Call) 392 << NV("Callee", Callee) << " can be inlined into " 393 << NV("Caller", Caller) << " with cost=" << NV("Cost", IC.getCost()) 394 << " (threshold=" 395 << NV("Threshold", IC.getCostDelta() + IC.getCost()) << ")"); 396 return true; 397 } 398 399 /// Return true if the specified inline history ID 400 /// indicates an inline history that includes the specified function. 401 static bool InlineHistoryIncludes( 402 Function *F, int InlineHistoryID, 403 const SmallVectorImpl<std::pair<Function *, int>> &InlineHistory) { 404 while (InlineHistoryID != -1) { 405 assert(unsigned(InlineHistoryID) < InlineHistory.size() && 406 "Invalid inline history ID"); 407 if (InlineHistory[InlineHistoryID].first == F) 408 return true; 409 InlineHistoryID = InlineHistory[InlineHistoryID].second; 410 } 411 return false; 412 } 413 414 bool LegacyInlinerBase::doInitialization(CallGraph &CG) { 415 if (InlinerFunctionImportStats != InlinerFunctionImportStatsOpts::No) 416 ImportedFunctionsStats.setModuleInfo(CG.getModule()); 417 return false; // No changes to CallGraph. 418 } 419 420 bool LegacyInlinerBase::runOnSCC(CallGraphSCC &SCC) { 421 if (skipSCC(SCC)) 422 return false; 423 return inlineCalls(SCC); 424 } 425 426 static bool 427 inlineCallsImpl(CallGraphSCC &SCC, CallGraph &CG, 428 std::function<AssumptionCache &(Function &)> GetAssumptionCache, 429 ProfileSummaryInfo *PSI, TargetLibraryInfo &TLI, 430 bool InsertLifetime, 431 function_ref<InlineCost(CallSite CS)> GetInlineCost, 432 function_ref<AAResults &(Function &)> AARGetter, 433 ImportedFunctionsInliningStatistics &ImportedFunctionsStats) { 434 SmallPtrSet<Function *, 8> SCCFunctions; 435 DEBUG(dbgs() << "Inliner visiting SCC:"); 436 for (CallGraphNode *Node : SCC) { 437 Function *F = Node->getFunction(); 438 if (F) 439 SCCFunctions.insert(F); 440 DEBUG(dbgs() << " " << (F ? F->getName() : "INDIRECTNODE")); 441 } 442 443 // Scan through and identify all call sites ahead of time so that we only 444 // inline call sites in the original functions, not call sites that result 445 // from inlining other functions. 446 SmallVector<std::pair<CallSite, int>, 16> CallSites; 447 448 // When inlining a callee produces new call sites, we want to keep track of 449 // the fact that they were inlined from the callee. This allows us to avoid 450 // infinite inlining in some obscure cases. To represent this, we use an 451 // index into the InlineHistory vector. 452 SmallVector<std::pair<Function *, int>, 8> InlineHistory; 453 454 for (CallGraphNode *Node : SCC) { 455 Function *F = Node->getFunction(); 456 if (!F || F->isDeclaration()) 457 continue; 458 459 OptimizationRemarkEmitter ORE(F); 460 for (BasicBlock &BB : *F) 461 for (Instruction &I : BB) { 462 CallSite CS(cast<Value>(&I)); 463 // If this isn't a call, or it is a call to an intrinsic, it can 464 // never be inlined. 465 if (!CS || isa<IntrinsicInst>(I)) 466 continue; 467 468 // If this is a direct call to an external function, we can never inline 469 // it. If it is an indirect call, inlining may resolve it to be a 470 // direct call, so we keep it. 471 if (Function *Callee = CS.getCalledFunction()) 472 if (Callee->isDeclaration()) { 473 using namespace ore; 474 ORE.emit(OptimizationRemarkMissed(DEBUG_TYPE, "NoDefinition", &I) 475 << NV("Callee", Callee) << " will not be inlined into " 476 << NV("Caller", CS.getCaller()) 477 << " because its definition is unavailable" 478 << setIsVerbose()); 479 continue; 480 } 481 482 CallSites.push_back(std::make_pair(CS, -1)); 483 } 484 } 485 486 DEBUG(dbgs() << ": " << CallSites.size() << " call sites.\n"); 487 488 // If there are no calls in this function, exit early. 489 if (CallSites.empty()) 490 return false; 491 492 // Now that we have all of the call sites, move the ones to functions in the 493 // current SCC to the end of the list. 494 unsigned FirstCallInSCC = CallSites.size(); 495 for (unsigned i = 0; i < FirstCallInSCC; ++i) 496 if (Function *F = CallSites[i].first.getCalledFunction()) 497 if (SCCFunctions.count(F)) 498 std::swap(CallSites[i--], CallSites[--FirstCallInSCC]); 499 500 InlinedArrayAllocasTy InlinedArrayAllocas; 501 InlineFunctionInfo InlineInfo(&CG, &GetAssumptionCache); 502 503 // Now that we have all of the call sites, loop over them and inline them if 504 // it looks profitable to do so. 505 bool Changed = false; 506 bool LocalChange; 507 do { 508 LocalChange = false; 509 // Iterate over the outer loop because inlining functions can cause indirect 510 // calls to become direct calls. 511 // CallSites may be modified inside so ranged for loop can not be used. 512 for (unsigned CSi = 0; CSi != CallSites.size(); ++CSi) { 513 CallSite CS = CallSites[CSi].first; 514 515 Function *Caller = CS.getCaller(); 516 Function *Callee = CS.getCalledFunction(); 517 518 // If this call site is dead and it is to a readonly function, we should 519 // just delete the call instead of trying to inline it, regardless of 520 // size. This happens because IPSCCP propagates the result out of the 521 // call and then we're left with the dead call. 522 if (isInstructionTriviallyDead(CS.getInstruction(), &TLI)) { 523 DEBUG(dbgs() << " -> Deleting dead call: " << *CS.getInstruction() 524 << "\n"); 525 // Update the call graph by deleting the edge from Callee to Caller. 526 CG[Caller]->removeCallEdgeFor(CS); 527 CS.getInstruction()->eraseFromParent(); 528 ++NumCallsDeleted; 529 } else { 530 // We can only inline direct calls to non-declarations. 531 if (!Callee || Callee->isDeclaration()) 532 continue; 533 534 // If this call site was obtained by inlining another function, verify 535 // that the include path for the function did not include the callee 536 // itself. If so, we'd be recursively inlining the same function, 537 // which would provide the same callsites, which would cause us to 538 // infinitely inline. 539 int InlineHistoryID = CallSites[CSi].second; 540 if (InlineHistoryID != -1 && 541 InlineHistoryIncludes(Callee, InlineHistoryID, InlineHistory)) 542 continue; 543 544 // Get DebugLoc to report. CS will be invalid after Inliner. 545 DebugLoc DLoc = CS.getInstruction()->getDebugLoc(); 546 BasicBlock *Block = CS.getParent(); 547 // FIXME for new PM: because of the old PM we currently generate ORE and 548 // in turn BFI on demand. With the new PM, the ORE dependency should 549 // just become a regular analysis dependency. 550 OptimizationRemarkEmitter ORE(Caller); 551 552 // If the policy determines that we should inline this function, 553 // try to do so. 554 using namespace ore; 555 if (!shouldInline(CS, GetInlineCost, ORE)) { 556 ORE.emit( 557 OptimizationRemarkMissed(DEBUG_TYPE, "NotInlined", DLoc, Block) 558 << NV("Callee", Callee) << " will not be inlined into " 559 << NV("Caller", Caller)); 560 continue; 561 } 562 563 // Attempt to inline the function. 564 if (!InlineCallIfPossible(CS, InlineInfo, InlinedArrayAllocas, 565 InlineHistoryID, InsertLifetime, AARGetter, 566 ImportedFunctionsStats)) { 567 ORE.emit( 568 OptimizationRemarkMissed(DEBUG_TYPE, "NotInlined", DLoc, Block) 569 << NV("Callee", Callee) << " will not be inlined into " 570 << NV("Caller", Caller)); 571 continue; 572 } 573 ++NumInlined; 574 575 // Report the inline decision. 576 ORE.emit(OptimizationRemark(DEBUG_TYPE, "Inlined", DLoc, Block) 577 << NV("Callee", Callee) << " inlined into " 578 << NV("Caller", Caller)); 579 580 // If inlining this function gave us any new call sites, throw them 581 // onto our worklist to process. They are useful inline candidates. 582 if (!InlineInfo.InlinedCalls.empty()) { 583 // Create a new inline history entry for this, so that we remember 584 // that these new callsites came about due to inlining Callee. 585 int NewHistoryID = InlineHistory.size(); 586 InlineHistory.push_back(std::make_pair(Callee, InlineHistoryID)); 587 588 for (Value *Ptr : InlineInfo.InlinedCalls) 589 CallSites.push_back(std::make_pair(CallSite(Ptr), NewHistoryID)); 590 } 591 } 592 593 // If we inlined or deleted the last possible call site to the function, 594 // delete the function body now. 595 if (Callee && Callee->use_empty() && Callee->hasLocalLinkage() && 596 // TODO: Can remove if in SCC now. 597 !SCCFunctions.count(Callee) && 598 599 // The function may be apparently dead, but if there are indirect 600 // callgraph references to the node, we cannot delete it yet, this 601 // could invalidate the CGSCC iterator. 602 CG[Callee]->getNumReferences() == 0) { 603 DEBUG(dbgs() << " -> Deleting dead function: " << Callee->getName() 604 << "\n"); 605 CallGraphNode *CalleeNode = CG[Callee]; 606 607 // Remove any call graph edges from the callee to its callees. 608 CalleeNode->removeAllCalledFunctions(); 609 610 // Removing the node for callee from the call graph and delete it. 611 delete CG.removeFunctionFromModule(CalleeNode); 612 ++NumDeleted; 613 } 614 615 // Remove this call site from the list. If possible, use 616 // swap/pop_back for efficiency, but do not use it if doing so would 617 // move a call site to a function in this SCC before the 618 // 'FirstCallInSCC' barrier. 619 if (SCC.isSingular()) { 620 CallSites[CSi] = CallSites.back(); 621 CallSites.pop_back(); 622 } else { 623 CallSites.erase(CallSites.begin() + CSi); 624 } 625 --CSi; 626 627 Changed = true; 628 LocalChange = true; 629 } 630 } while (LocalChange); 631 632 return Changed; 633 } 634 635 bool LegacyInlinerBase::inlineCalls(CallGraphSCC &SCC) { 636 CallGraph &CG = getAnalysis<CallGraphWrapperPass>().getCallGraph(); 637 ACT = &getAnalysis<AssumptionCacheTracker>(); 638 PSI = getAnalysis<ProfileSummaryInfoWrapperPass>().getPSI(); 639 auto &TLI = getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(); 640 // We compute dedicated AA results for each function in the SCC as needed. We 641 // use a lambda referencing external objects so that they live long enough to 642 // be queried, but we re-use them each time. 643 Optional<BasicAAResult> BAR; 644 Optional<AAResults> AAR; 645 auto AARGetter = [&](Function &F) -> AAResults & { 646 BAR.emplace(createLegacyPMBasicAAResult(*this, F)); 647 AAR.emplace(createLegacyPMAAResults(*this, F, *BAR)); 648 return *AAR; 649 }; 650 auto GetAssumptionCache = [&](Function &F) -> AssumptionCache & { 651 return ACT->getAssumptionCache(F); 652 }; 653 return inlineCallsImpl(SCC, CG, GetAssumptionCache, PSI, TLI, InsertLifetime, 654 [this](CallSite CS) { return getInlineCost(CS); }, 655 AARGetter, ImportedFunctionsStats); 656 } 657 658 /// Remove now-dead linkonce functions at the end of 659 /// processing to avoid breaking the SCC traversal. 660 bool LegacyInlinerBase::doFinalization(CallGraph &CG) { 661 if (InlinerFunctionImportStats != InlinerFunctionImportStatsOpts::No) 662 ImportedFunctionsStats.dump(InlinerFunctionImportStats == 663 InlinerFunctionImportStatsOpts::Verbose); 664 return removeDeadFunctions(CG); 665 } 666 667 /// Remove dead functions that are not included in DNR (Do Not Remove) list. 668 bool LegacyInlinerBase::removeDeadFunctions(CallGraph &CG, 669 bool AlwaysInlineOnly) { 670 SmallVector<CallGraphNode *, 16> FunctionsToRemove; 671 SmallVector<CallGraphNode *, 16> DeadFunctionsInComdats; 672 SmallDenseMap<const Comdat *, int, 16> ComdatEntriesAlive; 673 674 auto RemoveCGN = [&](CallGraphNode *CGN) { 675 // Remove any call graph edges from the function to its callees. 676 CGN->removeAllCalledFunctions(); 677 678 // Remove any edges from the external node to the function's call graph 679 // node. These edges might have been made irrelegant due to 680 // optimization of the program. 681 CG.getExternalCallingNode()->removeAnyCallEdgeTo(CGN); 682 683 // Removing the node for callee from the call graph and delete it. 684 FunctionsToRemove.push_back(CGN); 685 }; 686 687 // Scan for all of the functions, looking for ones that should now be removed 688 // from the program. Insert the dead ones in the FunctionsToRemove set. 689 for (const auto &I : CG) { 690 CallGraphNode *CGN = I.second.get(); 691 Function *F = CGN->getFunction(); 692 if (!F || F->isDeclaration()) 693 continue; 694 695 // Handle the case when this function is called and we only want to care 696 // about always-inline functions. This is a bit of a hack to share code 697 // between here and the InlineAlways pass. 698 if (AlwaysInlineOnly && !F->hasFnAttribute(Attribute::AlwaysInline)) 699 continue; 700 701 // If the only remaining users of the function are dead constants, remove 702 // them. 703 F->removeDeadConstantUsers(); 704 705 if (!F->isDefTriviallyDead()) 706 continue; 707 708 // It is unsafe to drop a function with discardable linkage from a COMDAT 709 // without also dropping the other members of the COMDAT. 710 // The inliner doesn't visit non-function entities which are in COMDAT 711 // groups so it is unsafe to do so *unless* the linkage is local. 712 if (!F->hasLocalLinkage()) { 713 if (const Comdat *C = F->getComdat()) { 714 --ComdatEntriesAlive[C]; 715 DeadFunctionsInComdats.push_back(CGN); 716 continue; 717 } 718 } 719 720 RemoveCGN(CGN); 721 } 722 if (!DeadFunctionsInComdats.empty()) { 723 // Count up all the entities in COMDAT groups 724 auto ComdatGroupReferenced = [&](const Comdat *C) { 725 auto I = ComdatEntriesAlive.find(C); 726 if (I != ComdatEntriesAlive.end()) 727 ++(I->getSecond()); 728 }; 729 for (const Function &F : CG.getModule()) 730 if (const Comdat *C = F.getComdat()) 731 ComdatGroupReferenced(C); 732 for (const GlobalVariable &GV : CG.getModule().globals()) 733 if (const Comdat *C = GV.getComdat()) 734 ComdatGroupReferenced(C); 735 for (const GlobalAlias &GA : CG.getModule().aliases()) 736 if (const Comdat *C = GA.getComdat()) 737 ComdatGroupReferenced(C); 738 for (CallGraphNode *CGN : DeadFunctionsInComdats) { 739 Function *F = CGN->getFunction(); 740 const Comdat *C = F->getComdat(); 741 int NumAlive = ComdatEntriesAlive[C]; 742 // We can remove functions in a COMDAT group if the entire group is dead. 743 assert(NumAlive >= 0); 744 if (NumAlive > 0) 745 continue; 746 747 RemoveCGN(CGN); 748 } 749 } 750 751 if (FunctionsToRemove.empty()) 752 return false; 753 754 // Now that we know which functions to delete, do so. We didn't want to do 755 // this inline, because that would invalidate our CallGraph::iterator 756 // objects. :( 757 // 758 // Note that it doesn't matter that we are iterating over a non-stable order 759 // here to do this, it doesn't matter which order the functions are deleted 760 // in. 761 array_pod_sort(FunctionsToRemove.begin(), FunctionsToRemove.end()); 762 FunctionsToRemove.erase( 763 std::unique(FunctionsToRemove.begin(), FunctionsToRemove.end()), 764 FunctionsToRemove.end()); 765 for (CallGraphNode *CGN : FunctionsToRemove) { 766 delete CG.removeFunctionFromModule(CGN); 767 ++NumDeleted; 768 } 769 return true; 770 } 771 772 PreservedAnalyses InlinerPass::run(LazyCallGraph::SCC &InitialC, 773 CGSCCAnalysisManager &AM, LazyCallGraph &CG, 774 CGSCCUpdateResult &UR) { 775 FunctionAnalysisManager &FAM = 776 AM.getResult<FunctionAnalysisManagerCGSCCProxy>(InitialC, CG) 777 .getManager(); 778 const ModuleAnalysisManager &MAM = 779 AM.getResult<ModuleAnalysisManagerCGSCCProxy>(InitialC, CG).getManager(); 780 bool Changed = false; 781 782 assert(InitialC.size() > 0 && "Cannot handle an empty SCC!"); 783 Module &M = *InitialC.begin()->getFunction().getParent(); 784 ProfileSummaryInfo *PSI = MAM.getCachedResult<ProfileSummaryAnalysis>(M); 785 786 std::function<AssumptionCache &(Function &)> GetAssumptionCache = 787 [&](Function &F) -> AssumptionCache & { 788 return FAM.getResult<AssumptionAnalysis>(F); 789 }; 790 791 // Setup the data structure used to plumb customization into the 792 // `InlineFunction` routine. 793 InlineFunctionInfo IFI(/*cg=*/nullptr, &GetAssumptionCache); 794 795 auto GetInlineCost = [&](CallSite CS) { 796 Function &Callee = *CS.getCalledFunction(); 797 auto &CalleeTTI = FAM.getResult<TargetIRAnalysis>(Callee); 798 return getInlineCost(CS, Params, CalleeTTI, GetAssumptionCache, PSI); 799 }; 800 801 // We use a worklist of nodes to process so that we can handle if the SCC 802 // structure changes and some nodes are no longer part of the current SCC. We 803 // also need to use an updatable pointer for the SCC as a consequence. 804 SmallVector<LazyCallGraph::Node *, 16> Nodes; 805 for (auto &N : InitialC) 806 Nodes.push_back(&N); 807 auto *C = &InitialC; 808 auto *RC = &C->getOuterRefSCC(); 809 810 // We also use a secondary worklist of call sites within a particular node to 811 // allow quickly continuing to inline through newly inlined call sites where 812 // possible. 813 SmallVector<CallSite, 16> Calls; 814 815 // Track a set vector of inlined callees so that we can augment the caller 816 // with all of their edges in the call graph before pruning out the ones that 817 // got simplified away. 818 SmallSetVector<Function *, 4> InlinedCallees; 819 820 // Track the dead functions to delete once finished with inlining calls. We 821 // defer deleting these to make it easier to handle the call graph updates. 822 SmallVector<Function *, 4> DeadFunctions; 823 824 do { 825 auto &N = *Nodes.pop_back_val(); 826 if (CG.lookupSCC(N) != C) 827 continue; 828 Function &F = N.getFunction(); 829 if (F.hasFnAttribute(Attribute::OptimizeNone)) 830 continue; 831 832 // Get the remarks emission analysis for the caller. 833 auto &ORE = FAM.getResult<OptimizationRemarkEmitterAnalysis>(F); 834 835 // We want to generally process call sites top-down in order for 836 // simplifications stemming from replacing the call with the returned value 837 // after inlining to be visible to subsequent inlining decisions. So we 838 // walk the function backwards and then process the back of the vector. 839 // FIXME: Using reverse is a really bad way to do this. Instead we should 840 // do an actual PO walk of the function body. 841 for (Instruction &I : reverse(instructions(F))) 842 if (auto CS = CallSite(&I)) 843 if (Function *Callee = CS.getCalledFunction()) 844 if (!Callee->isDeclaration()) 845 Calls.push_back(CS); 846 847 bool DidInline = false; 848 while (!Calls.empty()) { 849 CallSite CS = Calls.pop_back_val(); 850 Function &Callee = *CS.getCalledFunction(); 851 852 // Check whether we want to inline this callsite. 853 if (!shouldInline(CS, GetInlineCost, ORE)) 854 continue; 855 856 if (!InlineFunction(CS, IFI)) 857 continue; 858 DidInline = true; 859 InlinedCallees.insert(&Callee); 860 861 // Add any new callsites to defined functions to the worklist. 862 for (CallSite &CS : reverse(IFI.InlinedCallSites)) 863 if (Function *NewCallee = CS.getCalledFunction()) 864 if (!NewCallee->isDeclaration()) 865 Calls.push_back(CS); 866 867 // For local functions, check whether this makes the callee trivially 868 // dead. In that case, we can drop the body of the function eagerly 869 // which may reduce the number of callers of other functions to one, 870 // changing inline cost thresholds. 871 if (Callee.hasLocalLinkage()) { 872 // To check this we also need to nuke any dead constant uses (perhaps 873 // made dead by this operation on other functions). 874 Callee.removeDeadConstantUsers(); 875 if (Callee.use_empty()) { 876 // Clear the body and queue the function itself for deletion when we 877 // finish inlining and call graph updates. 878 // Note that after this point, it is an error to do anything other 879 // than use the callee's address or delete it. 880 Callee.dropAllReferences(); 881 assert(find(DeadFunctions, &Callee) == DeadFunctions.end() && 882 "Cannot put cause a function to become dead twice!"); 883 DeadFunctions.push_back(&Callee); 884 } 885 } 886 } 887 888 if (!DidInline) 889 continue; 890 Changed = true; 891 892 // Add all the inlined callees' edges to the caller. These are by 893 // definition trivial edges as we already had a transitive call edge to the 894 // callee. 895 for (Function *InlinedCallee : InlinedCallees) { 896 LazyCallGraph::Node &CalleeN = *CG.lookup(*InlinedCallee); 897 for (LazyCallGraph::Edge &E : CalleeN) 898 if (E.isCall()) 899 RC->insertTrivialCallEdge(N, *E.getNode()); 900 else 901 RC->insertTrivialRefEdge(N, *E.getNode()); 902 } 903 InlinedCallees.clear(); 904 905 // At this point, since we have made changes we have at least removed 906 // a call instruction. However, in the process we do some incremental 907 // simplification of the surrounding code. This simplification can 908 // essentially do all of the same things as a function pass and we can 909 // re-use the exact same logic for updating the call graph to reflect the 910 // change.. 911 C = &updateCGAndAnalysisManagerForFunctionPass(CG, *C, N, AM, UR); 912 RC = &C->getOuterRefSCC(); 913 } while (!Nodes.empty()); 914 915 // Now that we've finished inlining all of the calls across this SCC, delete 916 // all of the trivially dead functions, updating the call graph and the CGSCC 917 // pass manager in the process. 918 // 919 // Note that this walks a pointer set which has non-deterministic order but 920 // that is OK as all we do is delete things and add pointers to unordered 921 // sets. 922 for (Function *DeadF : DeadFunctions) { 923 // Get the necessary information out of the call graph and nuke the 924 // function there. 925 auto &DeadC = *CG.lookupSCC(*CG.lookup(*DeadF)); 926 auto &DeadRC = DeadC.getOuterRefSCC(); 927 CG.removeDeadFunction(*DeadF); 928 929 // Mark the relevant parts of the call graph as invalid so we don't visit 930 // them. 931 UR.InvalidatedSCCs.insert(&DeadC); 932 UR.InvalidatedRefSCCs.insert(&DeadRC); 933 934 // And delete the actual function from the module. 935 M.getFunctionList().erase(DeadF); 936 } 937 return Changed ? PreservedAnalyses::none() : PreservedAnalyses::all(); 938 } 939