1 //===-- DeadArgumentElimination.cpp - Eliminate dead arguments ------------===// 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 pass deletes dead arguments from internal functions. Dead argument 11 // elimination removes arguments which are directly dead, as well as arguments 12 // only passed into function calls as dead arguments of other functions. This 13 // pass also deletes dead return values in a similar way. 14 // 15 // This pass is often useful as a cleanup pass to run after aggressive 16 // interprocedural passes, which add possibly-dead arguments or return values. 17 // 18 //===----------------------------------------------------------------------===// 19 20 #include "llvm/Transforms/IPO/DeadArgumentElimination.h" 21 #include "llvm/ADT/SmallVector.h" 22 #include "llvm/ADT/Statistic.h" 23 #include "llvm/ADT/StringExtras.h" 24 #include "llvm/IR/CallSite.h" 25 #include "llvm/IR/CallingConv.h" 26 #include "llvm/IR/Constant.h" 27 #include "llvm/IR/DIBuilder.h" 28 #include "llvm/IR/DebugInfo.h" 29 #include "llvm/IR/DerivedTypes.h" 30 #include "llvm/IR/Instructions.h" 31 #include "llvm/IR/IntrinsicInst.h" 32 #include "llvm/IR/LLVMContext.h" 33 #include "llvm/IR/Module.h" 34 #include "llvm/Pass.h" 35 #include "llvm/Support/Debug.h" 36 #include "llvm/Support/raw_ostream.h" 37 #include "llvm/Transforms/IPO.h" 38 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 39 #include <set> 40 #include <tuple> 41 using namespace llvm; 42 43 #define DEBUG_TYPE "deadargelim" 44 45 STATISTIC(NumArgumentsEliminated, "Number of unread args removed"); 46 STATISTIC(NumRetValsEliminated , "Number of unused return values removed"); 47 STATISTIC(NumArgumentsReplacedWithUndef, 48 "Number of unread args replaced with undef"); 49 namespace { 50 /// DAE - The dead argument elimination pass. 51 /// 52 class DAE : public ModulePass { 53 protected: 54 // DAH uses this to specify a different ID. 55 explicit DAE(char &ID) : ModulePass(ID) {} 56 57 public: 58 static char ID; // Pass identification, replacement for typeid 59 DAE() : ModulePass(ID) { 60 initializeDAEPass(*PassRegistry::getPassRegistry()); 61 } 62 63 bool runOnModule(Module &M) override { 64 if (skipModule(M)) 65 return false; 66 DeadArgumentEliminationPass DAEP(ShouldHackArguments()); 67 PreservedAnalyses PA = DAEP.run(M); 68 return !PA.areAllPreserved(); 69 } 70 71 virtual bool ShouldHackArguments() const { return false; } 72 }; 73 } 74 75 76 char DAE::ID = 0; 77 INITIALIZE_PASS(DAE, "deadargelim", "Dead Argument Elimination", false, false) 78 79 namespace { 80 /// DAH - DeadArgumentHacking pass - Same as dead argument elimination, but 81 /// deletes arguments to functions which are external. This is only for use 82 /// by bugpoint. 83 struct DAH : public DAE { 84 static char ID; 85 DAH() : DAE(ID) {} 86 87 bool ShouldHackArguments() const override { return true; } 88 }; 89 } 90 91 char DAH::ID = 0; 92 INITIALIZE_PASS(DAH, "deadarghaX0r", 93 "Dead Argument Hacking (BUGPOINT USE ONLY; DO NOT USE)", 94 false, false) 95 96 /// createDeadArgEliminationPass - This pass removes arguments from functions 97 /// which are not used by the body of the function. 98 /// 99 ModulePass *llvm::createDeadArgEliminationPass() { return new DAE(); } 100 ModulePass *llvm::createDeadArgHackingPass() { return new DAH(); } 101 102 /// DeleteDeadVarargs - If this is an function that takes a ... list, and if 103 /// llvm.vastart is never called, the varargs list is dead for the function. 104 bool DeadArgumentEliminationPass::DeleteDeadVarargs(Function &Fn) { 105 assert(Fn.getFunctionType()->isVarArg() && "Function isn't varargs!"); 106 if (Fn.isDeclaration() || !Fn.hasLocalLinkage()) return false; 107 108 // Ensure that the function is only directly called. 109 if (Fn.hasAddressTaken()) 110 return false; 111 112 // Don't touch naked functions. The assembly might be using an argument, or 113 // otherwise rely on the frame layout in a way that this analysis will not 114 // see. 115 if (Fn.hasFnAttribute(Attribute::Naked)) { 116 return false; 117 } 118 119 // Okay, we know we can transform this function if safe. Scan its body 120 // looking for calls marked musttail or calls to llvm.vastart. 121 for (Function::iterator BB = Fn.begin(), E = Fn.end(); BB != E; ++BB) { 122 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ++I) { 123 CallInst *CI = dyn_cast<CallInst>(I); 124 if (!CI) 125 continue; 126 if (CI->isMustTailCall()) 127 return false; 128 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(CI)) { 129 if (II->getIntrinsicID() == Intrinsic::vastart) 130 return false; 131 } 132 } 133 } 134 135 // If we get here, there are no calls to llvm.vastart in the function body, 136 // remove the "..." and adjust all the calls. 137 138 // Start by computing a new prototype for the function, which is the same as 139 // the old function, but doesn't have isVarArg set. 140 FunctionType *FTy = Fn.getFunctionType(); 141 142 std::vector<Type*> Params(FTy->param_begin(), FTy->param_end()); 143 FunctionType *NFTy = FunctionType::get(FTy->getReturnType(), 144 Params, false); 145 unsigned NumArgs = Params.size(); 146 147 // Create the new function body and insert it into the module... 148 Function *NF = Function::Create(NFTy, Fn.getLinkage()); 149 NF->copyAttributesFrom(&Fn); 150 Fn.getParent()->getFunctionList().insert(Fn.getIterator(), NF); 151 NF->takeName(&Fn); 152 153 // Loop over all of the callers of the function, transforming the call sites 154 // to pass in a smaller number of arguments into the new function. 155 // 156 std::vector<Value*> Args; 157 for (Value::user_iterator I = Fn.user_begin(), E = Fn.user_end(); I != E; ) { 158 CallSite CS(*I++); 159 if (!CS) 160 continue; 161 Instruction *Call = CS.getInstruction(); 162 163 // Pass all the same arguments. 164 Args.assign(CS.arg_begin(), CS.arg_begin() + NumArgs); 165 166 // Drop any attributes that were on the vararg arguments. 167 AttributeSet PAL = CS.getAttributes(); 168 if (!PAL.isEmpty() && PAL.getSlotIndex(PAL.getNumSlots() - 1) > NumArgs) { 169 SmallVector<AttributeSet, 8> AttributesVec; 170 for (unsigned i = 0; PAL.getSlotIndex(i) <= NumArgs; ++i) 171 AttributesVec.push_back(PAL.getSlotAttributes(i)); 172 if (PAL.hasAttributes(AttributeSet::FunctionIndex)) 173 AttributesVec.push_back(AttributeSet::get(Fn.getContext(), 174 PAL.getFnAttributes())); 175 PAL = AttributeSet::get(Fn.getContext(), AttributesVec); 176 } 177 178 SmallVector<OperandBundleDef, 1> OpBundles; 179 CS.getOperandBundlesAsDefs(OpBundles); 180 181 Instruction *New; 182 if (InvokeInst *II = dyn_cast<InvokeInst>(Call)) { 183 New = InvokeInst::Create(NF, II->getNormalDest(), II->getUnwindDest(), 184 Args, OpBundles, "", Call); 185 cast<InvokeInst>(New)->setCallingConv(CS.getCallingConv()); 186 cast<InvokeInst>(New)->setAttributes(PAL); 187 } else { 188 New = CallInst::Create(NF, Args, OpBundles, "", Call); 189 cast<CallInst>(New)->setCallingConv(CS.getCallingConv()); 190 cast<CallInst>(New)->setAttributes(PAL); 191 if (cast<CallInst>(Call)->isTailCall()) 192 cast<CallInst>(New)->setTailCall(); 193 } 194 New->setDebugLoc(Call->getDebugLoc()); 195 196 Args.clear(); 197 198 if (!Call->use_empty()) 199 Call->replaceAllUsesWith(New); 200 201 New->takeName(Call); 202 203 // Finally, remove the old call from the program, reducing the use-count of 204 // F. 205 Call->eraseFromParent(); 206 } 207 208 // Since we have now created the new function, splice the body of the old 209 // function right into the new function, leaving the old rotting hulk of the 210 // function empty. 211 NF->getBasicBlockList().splice(NF->begin(), Fn.getBasicBlockList()); 212 213 // Loop over the argument list, transferring uses of the old arguments over to 214 // the new arguments, also transferring over the names as well. While we're at 215 // it, remove the dead arguments from the DeadArguments list. 216 // 217 for (Function::arg_iterator I = Fn.arg_begin(), E = Fn.arg_end(), 218 I2 = NF->arg_begin(); I != E; ++I, ++I2) { 219 // Move the name and users over to the new version. 220 I->replaceAllUsesWith(&*I2); 221 I2->takeName(&*I); 222 } 223 224 // Patch the pointer to LLVM function in debug info descriptor. 225 NF->setSubprogram(Fn.getSubprogram()); 226 227 // Fix up any BlockAddresses that refer to the function. 228 Fn.replaceAllUsesWith(ConstantExpr::getBitCast(NF, Fn.getType())); 229 // Delete the bitcast that we just created, so that NF does not 230 // appear to be address-taken. 231 NF->removeDeadConstantUsers(); 232 // Finally, nuke the old function. 233 Fn.eraseFromParent(); 234 return true; 235 } 236 237 /// RemoveDeadArgumentsFromCallers - Checks if the given function has any 238 /// arguments that are unused, and changes the caller parameters to be undefined 239 /// instead. 240 bool DeadArgumentEliminationPass::RemoveDeadArgumentsFromCallers(Function &Fn) { 241 // We cannot change the arguments if this TU does not define the function or 242 // if the linker may choose a function body from another TU, even if the 243 // nominal linkage indicates that other copies of the function have the same 244 // semantics. In the below example, the dead load from %p may not have been 245 // eliminated from the linker-chosen copy of f, so replacing %p with undef 246 // in callers may introduce undefined behavior. 247 // 248 // define linkonce_odr void @f(i32* %p) { 249 // %v = load i32 %p 250 // ret void 251 // } 252 if (!Fn.hasExactDefinition()) 253 return false; 254 255 // Functions with local linkage should already have been handled, except the 256 // fragile (variadic) ones which we can improve here. 257 if (Fn.hasLocalLinkage() && !Fn.getFunctionType()->isVarArg()) 258 return false; 259 260 // Don't touch naked functions. The assembly might be using an argument, or 261 // otherwise rely on the frame layout in a way that this analysis will not 262 // see. 263 if (Fn.hasFnAttribute(Attribute::Naked)) 264 return false; 265 266 if (Fn.use_empty()) 267 return false; 268 269 SmallVector<unsigned, 8> UnusedArgs; 270 for (Argument &Arg : Fn.args()) { 271 if (Arg.use_empty() && !Arg.hasByValOrInAllocaAttr()) 272 UnusedArgs.push_back(Arg.getArgNo()); 273 } 274 275 if (UnusedArgs.empty()) 276 return false; 277 278 bool Changed = false; 279 280 for (Use &U : Fn.uses()) { 281 CallSite CS(U.getUser()); 282 if (!CS || !CS.isCallee(&U)) 283 continue; 284 285 // Now go through all unused args and replace them with "undef". 286 for (unsigned I = 0, E = UnusedArgs.size(); I != E; ++I) { 287 unsigned ArgNo = UnusedArgs[I]; 288 289 Value *Arg = CS.getArgument(ArgNo); 290 CS.setArgument(ArgNo, UndefValue::get(Arg->getType())); 291 ++NumArgumentsReplacedWithUndef; 292 Changed = true; 293 } 294 } 295 296 return Changed; 297 } 298 299 /// Convenience function that returns the number of return values. It returns 0 300 /// for void functions and 1 for functions not returning a struct. It returns 301 /// the number of struct elements for functions returning a struct. 302 static unsigned NumRetVals(const Function *F) { 303 Type *RetTy = F->getReturnType(); 304 if (RetTy->isVoidTy()) 305 return 0; 306 else if (StructType *STy = dyn_cast<StructType>(RetTy)) 307 return STy->getNumElements(); 308 else if (ArrayType *ATy = dyn_cast<ArrayType>(RetTy)) 309 return ATy->getNumElements(); 310 else 311 return 1; 312 } 313 314 /// Returns the sub-type a function will return at a given Idx. Should 315 /// correspond to the result type of an ExtractValue instruction executed with 316 /// just that one Idx (i.e. only top-level structure is considered). 317 static Type *getRetComponentType(const Function *F, unsigned Idx) { 318 Type *RetTy = F->getReturnType(); 319 assert(!RetTy->isVoidTy() && "void type has no subtype"); 320 321 if (StructType *STy = dyn_cast<StructType>(RetTy)) 322 return STy->getElementType(Idx); 323 else if (ArrayType *ATy = dyn_cast<ArrayType>(RetTy)) 324 return ATy->getElementType(); 325 else 326 return RetTy; 327 } 328 329 /// MarkIfNotLive - This checks Use for liveness in LiveValues. If Use is not 330 /// live, it adds Use to the MaybeLiveUses argument. Returns the determined 331 /// liveness of Use. 332 DeadArgumentEliminationPass::Liveness 333 DeadArgumentEliminationPass::MarkIfNotLive(RetOrArg Use, 334 UseVector &MaybeLiveUses) { 335 // We're live if our use or its Function is already marked as live. 336 if (LiveFunctions.count(Use.F) || LiveValues.count(Use)) 337 return Live; 338 339 // We're maybe live otherwise, but remember that we must become live if 340 // Use becomes live. 341 MaybeLiveUses.push_back(Use); 342 return MaybeLive; 343 } 344 345 346 /// SurveyUse - This looks at a single use of an argument or return value 347 /// and determines if it should be alive or not. Adds this use to MaybeLiveUses 348 /// if it causes the used value to become MaybeLive. 349 /// 350 /// RetValNum is the return value number to use when this use is used in a 351 /// return instruction. This is used in the recursion, you should always leave 352 /// it at 0. 353 DeadArgumentEliminationPass::Liveness 354 DeadArgumentEliminationPass::SurveyUse(const Use *U, UseVector &MaybeLiveUses, 355 unsigned RetValNum) { 356 const User *V = U->getUser(); 357 if (const ReturnInst *RI = dyn_cast<ReturnInst>(V)) { 358 // The value is returned from a function. It's only live when the 359 // function's return value is live. We use RetValNum here, for the case 360 // that U is really a use of an insertvalue instruction that uses the 361 // original Use. 362 const Function *F = RI->getParent()->getParent(); 363 if (RetValNum != -1U) { 364 RetOrArg Use = CreateRet(F, RetValNum); 365 // We might be live, depending on the liveness of Use. 366 return MarkIfNotLive(Use, MaybeLiveUses); 367 } else { 368 DeadArgumentEliminationPass::Liveness Result = MaybeLive; 369 for (unsigned i = 0; i < NumRetVals(F); ++i) { 370 RetOrArg Use = CreateRet(F, i); 371 // We might be live, depending on the liveness of Use. If any 372 // sub-value is live, then the entire value is considered live. This 373 // is a conservative choice, and better tracking is possible. 374 DeadArgumentEliminationPass::Liveness SubResult = 375 MarkIfNotLive(Use, MaybeLiveUses); 376 if (Result != Live) 377 Result = SubResult; 378 } 379 return Result; 380 } 381 } 382 if (const InsertValueInst *IV = dyn_cast<InsertValueInst>(V)) { 383 if (U->getOperandNo() != InsertValueInst::getAggregateOperandIndex() 384 && IV->hasIndices()) 385 // The use we are examining is inserted into an aggregate. Our liveness 386 // depends on all uses of that aggregate, but if it is used as a return 387 // value, only index at which we were inserted counts. 388 RetValNum = *IV->idx_begin(); 389 390 // Note that if we are used as the aggregate operand to the insertvalue, 391 // we don't change RetValNum, but do survey all our uses. 392 393 Liveness Result = MaybeLive; 394 for (const Use &UU : IV->uses()) { 395 Result = SurveyUse(&UU, MaybeLiveUses, RetValNum); 396 if (Result == Live) 397 break; 398 } 399 return Result; 400 } 401 402 if (auto CS = ImmutableCallSite(V)) { 403 const Function *F = CS.getCalledFunction(); 404 if (F) { 405 // Used in a direct call. 406 407 // The function argument is live if it is used as a bundle operand. 408 if (CS.isBundleOperand(U)) 409 return Live; 410 411 // Find the argument number. We know for sure that this use is an 412 // argument, since if it was the function argument this would be an 413 // indirect call and the we know can't be looking at a value of the 414 // label type (for the invoke instruction). 415 unsigned ArgNo = CS.getArgumentNo(U); 416 417 if (ArgNo >= F->getFunctionType()->getNumParams()) 418 // The value is passed in through a vararg! Must be live. 419 return Live; 420 421 assert(CS.getArgument(ArgNo) 422 == CS->getOperand(U->getOperandNo()) 423 && "Argument is not where we expected it"); 424 425 // Value passed to a normal call. It's only live when the corresponding 426 // argument to the called function turns out live. 427 RetOrArg Use = CreateArg(F, ArgNo); 428 return MarkIfNotLive(Use, MaybeLiveUses); 429 } 430 } 431 // Used in any other way? Value must be live. 432 return Live; 433 } 434 435 /// SurveyUses - This looks at all the uses of the given value 436 /// Returns the Liveness deduced from the uses of this value. 437 /// 438 /// Adds all uses that cause the result to be MaybeLive to MaybeLiveRetUses. If 439 /// the result is Live, MaybeLiveUses might be modified but its content should 440 /// be ignored (since it might not be complete). 441 DeadArgumentEliminationPass::Liveness 442 DeadArgumentEliminationPass::SurveyUses(const Value *V, 443 UseVector &MaybeLiveUses) { 444 // Assume it's dead (which will only hold if there are no uses at all..). 445 Liveness Result = MaybeLive; 446 // Check each use. 447 for (const Use &U : V->uses()) { 448 Result = SurveyUse(&U, MaybeLiveUses); 449 if (Result == Live) 450 break; 451 } 452 return Result; 453 } 454 455 // SurveyFunction - This performs the initial survey of the specified function, 456 // checking out whether or not it uses any of its incoming arguments or whether 457 // any callers use the return value. This fills in the LiveValues set and Uses 458 // map. 459 // 460 // We consider arguments of non-internal functions to be intrinsically alive as 461 // well as arguments to functions which have their "address taken". 462 // 463 void DeadArgumentEliminationPass::SurveyFunction(const Function &F) { 464 // Functions with inalloca parameters are expecting args in a particular 465 // register and memory layout. 466 if (F.getAttributes().hasAttrSomewhere(Attribute::InAlloca)) { 467 MarkLive(F); 468 return; 469 } 470 471 // Don't touch naked functions. The assembly might be using an argument, or 472 // otherwise rely on the frame layout in a way that this analysis will not 473 // see. 474 if (F.hasFnAttribute(Attribute::Naked)) { 475 MarkLive(F); 476 return; 477 } 478 479 unsigned RetCount = NumRetVals(&F); 480 // Assume all return values are dead 481 typedef SmallVector<Liveness, 5> RetVals; 482 RetVals RetValLiveness(RetCount, MaybeLive); 483 484 typedef SmallVector<UseVector, 5> RetUses; 485 // These vectors map each return value to the uses that make it MaybeLive, so 486 // we can add those to the Uses map if the return value really turns out to be 487 // MaybeLive. Initialized to a list of RetCount empty lists. 488 RetUses MaybeLiveRetUses(RetCount); 489 490 for (Function::const_iterator BB = F.begin(), E = F.end(); BB != E; ++BB) 491 if (const ReturnInst *RI = dyn_cast<ReturnInst>(BB->getTerminator())) 492 if (RI->getNumOperands() != 0 && RI->getOperand(0)->getType() 493 != F.getFunctionType()->getReturnType()) { 494 // We don't support old style multiple return values. 495 MarkLive(F); 496 return; 497 } 498 499 if (!F.hasLocalLinkage() && (!ShouldHackArguments || F.isIntrinsic())) { 500 MarkLive(F); 501 return; 502 } 503 504 DEBUG(dbgs() << "DeadArgumentEliminationPass - Inspecting callers for fn: " 505 << F.getName() << "\n"); 506 // Keep track of the number of live retvals, so we can skip checks once all 507 // of them turn out to be live. 508 unsigned NumLiveRetVals = 0; 509 // Loop all uses of the function. 510 for (const Use &U : F.uses()) { 511 // If the function is PASSED IN as an argument, its address has been 512 // taken. 513 ImmutableCallSite CS(U.getUser()); 514 if (!CS || !CS.isCallee(&U)) { 515 MarkLive(F); 516 return; 517 } 518 519 // If this use is anything other than a call site, the function is alive. 520 const Instruction *TheCall = CS.getInstruction(); 521 if (!TheCall) { // Not a direct call site? 522 MarkLive(F); 523 return; 524 } 525 526 // If we end up here, we are looking at a direct call to our function. 527 528 // Now, check how our return value(s) is/are used in this caller. Don't 529 // bother checking return values if all of them are live already. 530 if (NumLiveRetVals == RetCount) 531 continue; 532 533 // Check all uses of the return value. 534 for (const Use &U : TheCall->uses()) { 535 if (ExtractValueInst *Ext = dyn_cast<ExtractValueInst>(U.getUser())) { 536 // This use uses a part of our return value, survey the uses of 537 // that part and store the results for this index only. 538 unsigned Idx = *Ext->idx_begin(); 539 if (RetValLiveness[Idx] != Live) { 540 RetValLiveness[Idx] = SurveyUses(Ext, MaybeLiveRetUses[Idx]); 541 if (RetValLiveness[Idx] == Live) 542 NumLiveRetVals++; 543 } 544 } else { 545 // Used by something else than extractvalue. Survey, but assume that the 546 // result applies to all sub-values. 547 UseVector MaybeLiveAggregateUses; 548 if (SurveyUse(&U, MaybeLiveAggregateUses) == Live) { 549 NumLiveRetVals = RetCount; 550 RetValLiveness.assign(RetCount, Live); 551 break; 552 } else { 553 for (unsigned i = 0; i != RetCount; ++i) { 554 if (RetValLiveness[i] != Live) 555 MaybeLiveRetUses[i].append(MaybeLiveAggregateUses.begin(), 556 MaybeLiveAggregateUses.end()); 557 } 558 } 559 } 560 } 561 } 562 563 // Now we've inspected all callers, record the liveness of our return values. 564 for (unsigned i = 0; i != RetCount; ++i) 565 MarkValue(CreateRet(&F, i), RetValLiveness[i], MaybeLiveRetUses[i]); 566 567 DEBUG(dbgs() << "DeadArgumentEliminationPass - Inspecting args for fn: " 568 << F.getName() << "\n"); 569 570 // Now, check all of our arguments. 571 unsigned i = 0; 572 UseVector MaybeLiveArgUses; 573 for (Function::const_arg_iterator AI = F.arg_begin(), 574 E = F.arg_end(); AI != E; ++AI, ++i) { 575 Liveness Result; 576 if (F.getFunctionType()->isVarArg()) { 577 // Variadic functions will already have a va_arg function expanded inside 578 // them, making them potentially very sensitive to ABI changes resulting 579 // from removing arguments entirely, so don't. For example AArch64 handles 580 // register and stack HFAs very differently, and this is reflected in the 581 // IR which has already been generated. 582 Result = Live; 583 } else { 584 // See what the effect of this use is (recording any uses that cause 585 // MaybeLive in MaybeLiveArgUses). 586 Result = SurveyUses(&*AI, MaybeLiveArgUses); 587 } 588 589 // Mark the result. 590 MarkValue(CreateArg(&F, i), Result, MaybeLiveArgUses); 591 // Clear the vector again for the next iteration. 592 MaybeLiveArgUses.clear(); 593 } 594 } 595 596 /// MarkValue - This function marks the liveness of RA depending on L. If L is 597 /// MaybeLive, it also takes all uses in MaybeLiveUses and records them in Uses, 598 /// such that RA will be marked live if any use in MaybeLiveUses gets marked 599 /// live later on. 600 void DeadArgumentEliminationPass::MarkValue(const RetOrArg &RA, Liveness L, 601 const UseVector &MaybeLiveUses) { 602 switch (L) { 603 case Live: MarkLive(RA); break; 604 case MaybeLive: 605 { 606 // Note any uses of this value, so this return value can be 607 // marked live whenever one of the uses becomes live. 608 for (UseVector::const_iterator UI = MaybeLiveUses.begin(), 609 UE = MaybeLiveUses.end(); UI != UE; ++UI) 610 Uses.insert(std::make_pair(*UI, RA)); 611 break; 612 } 613 } 614 } 615 616 /// MarkLive - Mark the given Function as alive, meaning that it cannot be 617 /// changed in any way. Additionally, 618 /// mark any values that are used as this function's parameters or by its return 619 /// values (according to Uses) live as well. 620 void DeadArgumentEliminationPass::MarkLive(const Function &F) { 621 DEBUG(dbgs() << "DeadArgumentEliminationPass - Intrinsically live fn: " 622 << F.getName() << "\n"); 623 // Mark the function as live. 624 LiveFunctions.insert(&F); 625 // Mark all arguments as live. 626 for (unsigned i = 0, e = F.arg_size(); i != e; ++i) 627 PropagateLiveness(CreateArg(&F, i)); 628 // Mark all return values as live. 629 for (unsigned i = 0, e = NumRetVals(&F); i != e; ++i) 630 PropagateLiveness(CreateRet(&F, i)); 631 } 632 633 /// MarkLive - Mark the given return value or argument as live. Additionally, 634 /// mark any values that are used by this value (according to Uses) live as 635 /// well. 636 void DeadArgumentEliminationPass::MarkLive(const RetOrArg &RA) { 637 if (LiveFunctions.count(RA.F)) 638 return; // Function was already marked Live. 639 640 if (!LiveValues.insert(RA).second) 641 return; // We were already marked Live. 642 643 DEBUG(dbgs() << "DeadArgumentEliminationPass - Marking " 644 << RA.getDescription() << " live\n"); 645 PropagateLiveness(RA); 646 } 647 648 /// PropagateLiveness - Given that RA is a live value, propagate it's liveness 649 /// to any other values it uses (according to Uses). 650 void DeadArgumentEliminationPass::PropagateLiveness(const RetOrArg &RA) { 651 // We don't use upper_bound (or equal_range) here, because our recursive call 652 // to ourselves is likely to cause the upper_bound (which is the first value 653 // not belonging to RA) to become erased and the iterator invalidated. 654 UseMap::iterator Begin = Uses.lower_bound(RA); 655 UseMap::iterator E = Uses.end(); 656 UseMap::iterator I; 657 for (I = Begin; I != E && I->first == RA; ++I) 658 MarkLive(I->second); 659 660 // Erase RA from the Uses map (from the lower bound to wherever we ended up 661 // after the loop). 662 Uses.erase(Begin, I); 663 } 664 665 // RemoveDeadStuffFromFunction - Remove any arguments and return values from F 666 // that are not in LiveValues. Transform the function and all of the callees of 667 // the function to not have these arguments and return values. 668 // 669 bool DeadArgumentEliminationPass::RemoveDeadStuffFromFunction(Function *F) { 670 // Don't modify fully live functions 671 if (LiveFunctions.count(F)) 672 return false; 673 674 // Start by computing a new prototype for the function, which is the same as 675 // the old function, but has fewer arguments and a different return type. 676 FunctionType *FTy = F->getFunctionType(); 677 std::vector<Type*> Params; 678 679 // Keep track of if we have a live 'returned' argument 680 bool HasLiveReturnedArg = false; 681 682 // Set up to build a new list of parameter attributes. 683 SmallVector<AttributeSet, 8> AttributesVec; 684 const AttributeSet &PAL = F->getAttributes(); 685 686 // Remember which arguments are still alive. 687 SmallVector<bool, 10> ArgAlive(FTy->getNumParams(), false); 688 // Construct the new parameter list from non-dead arguments. Also construct 689 // a new set of parameter attributes to correspond. Skip the first parameter 690 // attribute, since that belongs to the return value. 691 unsigned i = 0; 692 for (Function::arg_iterator I = F->arg_begin(), E = F->arg_end(); 693 I != E; ++I, ++i) { 694 RetOrArg Arg = CreateArg(F, i); 695 if (LiveValues.erase(Arg)) { 696 Params.push_back(I->getType()); 697 ArgAlive[i] = true; 698 699 // Get the original parameter attributes (skipping the first one, that is 700 // for the return value. 701 if (PAL.hasAttributes(i + 1)) { 702 AttrBuilder B(PAL, i + 1); 703 if (B.contains(Attribute::Returned)) 704 HasLiveReturnedArg = true; 705 AttributesVec. 706 push_back(AttributeSet::get(F->getContext(), Params.size(), B)); 707 } 708 } else { 709 ++NumArgumentsEliminated; 710 DEBUG(dbgs() << "DeadArgumentEliminationPass - Removing argument " << i 711 << " (" << I->getName() << ") from " << F->getName() 712 << "\n"); 713 } 714 } 715 716 // Find out the new return value. 717 Type *RetTy = FTy->getReturnType(); 718 Type *NRetTy = nullptr; 719 unsigned RetCount = NumRetVals(F); 720 721 // -1 means unused, other numbers are the new index 722 SmallVector<int, 5> NewRetIdxs(RetCount, -1); 723 std::vector<Type*> RetTypes; 724 725 // If there is a function with a live 'returned' argument but a dead return 726 // value, then there are two possible actions: 727 // 1) Eliminate the return value and take off the 'returned' attribute on the 728 // argument. 729 // 2) Retain the 'returned' attribute and treat the return value (but not the 730 // entire function) as live so that it is not eliminated. 731 // 732 // It's not clear in the general case which option is more profitable because, 733 // even in the absence of explicit uses of the return value, code generation 734 // is free to use the 'returned' attribute to do things like eliding 735 // save/restores of registers across calls. Whether or not this happens is 736 // target and ABI-specific as well as depending on the amount of register 737 // pressure, so there's no good way for an IR-level pass to figure this out. 738 // 739 // Fortunately, the only places where 'returned' is currently generated by 740 // the FE are places where 'returned' is basically free and almost always a 741 // performance win, so the second option can just be used always for now. 742 // 743 // This should be revisited if 'returned' is ever applied more liberally. 744 if (RetTy->isVoidTy() || HasLiveReturnedArg) { 745 NRetTy = RetTy; 746 } else { 747 // Look at each of the original return values individually. 748 for (unsigned i = 0; i != RetCount; ++i) { 749 RetOrArg Ret = CreateRet(F, i); 750 if (LiveValues.erase(Ret)) { 751 RetTypes.push_back(getRetComponentType(F, i)); 752 NewRetIdxs[i] = RetTypes.size() - 1; 753 } else { 754 ++NumRetValsEliminated; 755 DEBUG(dbgs() << "DeadArgumentEliminationPass - Removing return value " 756 << i << " from " << F->getName() << "\n"); 757 } 758 } 759 if (RetTypes.size() > 1) { 760 // More than one return type? Reduce it down to size. 761 if (StructType *STy = dyn_cast<StructType>(RetTy)) { 762 // Make the new struct packed if we used to return a packed struct 763 // already. 764 NRetTy = StructType::get(STy->getContext(), RetTypes, STy->isPacked()); 765 } else { 766 assert(isa<ArrayType>(RetTy) && "unexpected multi-value return"); 767 NRetTy = ArrayType::get(RetTypes[0], RetTypes.size()); 768 } 769 } else if (RetTypes.size() == 1) 770 // One return type? Just a simple value then, but only if we didn't use to 771 // return a struct with that simple value before. 772 NRetTy = RetTypes.front(); 773 else if (RetTypes.size() == 0) 774 // No return types? Make it void, but only if we didn't use to return {}. 775 NRetTy = Type::getVoidTy(F->getContext()); 776 } 777 778 assert(NRetTy && "No new return type found?"); 779 780 // The existing function return attributes. 781 AttributeSet RAttrs = PAL.getRetAttributes(); 782 783 // Remove any incompatible attributes, but only if we removed all return 784 // values. Otherwise, ensure that we don't have any conflicting attributes 785 // here. Currently, this should not be possible, but special handling might be 786 // required when new return value attributes are added. 787 if (NRetTy->isVoidTy()) 788 RAttrs = RAttrs.removeAttributes(NRetTy->getContext(), 789 AttributeSet::ReturnIndex, 790 AttributeFuncs::typeIncompatible(NRetTy)); 791 else 792 assert(!AttrBuilder(RAttrs, AttributeSet::ReturnIndex). 793 overlaps(AttributeFuncs::typeIncompatible(NRetTy)) && 794 "Return attributes no longer compatible?"); 795 796 if (RAttrs.hasAttributes(AttributeSet::ReturnIndex)) 797 AttributesVec.push_back(AttributeSet::get(NRetTy->getContext(), RAttrs)); 798 799 if (PAL.hasAttributes(AttributeSet::FunctionIndex)) 800 AttributesVec.push_back(AttributeSet::get(F->getContext(), 801 PAL.getFnAttributes())); 802 803 // Reconstruct the AttributesList based on the vector we constructed. 804 AttributeSet NewPAL = AttributeSet::get(F->getContext(), AttributesVec); 805 806 // Create the new function type based on the recomputed parameters. 807 FunctionType *NFTy = FunctionType::get(NRetTy, Params, FTy->isVarArg()); 808 809 // No change? 810 if (NFTy == FTy) 811 return false; 812 813 // Create the new function body and insert it into the module... 814 Function *NF = Function::Create(NFTy, F->getLinkage()); 815 NF->copyAttributesFrom(F); 816 NF->setAttributes(NewPAL); 817 // Insert the new function before the old function, so we won't be processing 818 // it again. 819 F->getParent()->getFunctionList().insert(F->getIterator(), NF); 820 NF->takeName(F); 821 822 // Loop over all of the callers of the function, transforming the call sites 823 // to pass in a smaller number of arguments into the new function. 824 // 825 std::vector<Value*> Args; 826 while (!F->use_empty()) { 827 CallSite CS(F->user_back()); 828 Instruction *Call = CS.getInstruction(); 829 830 AttributesVec.clear(); 831 const AttributeSet &CallPAL = CS.getAttributes(); 832 833 // The call return attributes. 834 AttributeSet RAttrs = CallPAL.getRetAttributes(); 835 836 // Adjust in case the function was changed to return void. 837 RAttrs = RAttrs.removeAttributes(NRetTy->getContext(), 838 AttributeSet::ReturnIndex, 839 AttributeFuncs::typeIncompatible(NF->getReturnType())); 840 if (RAttrs.hasAttributes(AttributeSet::ReturnIndex)) 841 AttributesVec.push_back(AttributeSet::get(NF->getContext(), RAttrs)); 842 843 // Declare these outside of the loops, so we can reuse them for the second 844 // loop, which loops the varargs. 845 CallSite::arg_iterator I = CS.arg_begin(); 846 unsigned i = 0; 847 // Loop over those operands, corresponding to the normal arguments to the 848 // original function, and add those that are still alive. 849 for (unsigned e = FTy->getNumParams(); i != e; ++I, ++i) 850 if (ArgAlive[i]) { 851 Args.push_back(*I); 852 // Get original parameter attributes, but skip return attributes. 853 if (CallPAL.hasAttributes(i + 1)) { 854 AttrBuilder B(CallPAL, i + 1); 855 // If the return type has changed, then get rid of 'returned' on the 856 // call site. The alternative is to make all 'returned' attributes on 857 // call sites keep the return value alive just like 'returned' 858 // attributes on function declaration but it's less clearly a win 859 // and this is not an expected case anyway 860 if (NRetTy != RetTy && B.contains(Attribute::Returned)) 861 B.removeAttribute(Attribute::Returned); 862 AttributesVec. 863 push_back(AttributeSet::get(F->getContext(), Args.size(), B)); 864 } 865 } 866 867 // Push any varargs arguments on the list. Don't forget their attributes. 868 for (CallSite::arg_iterator E = CS.arg_end(); I != E; ++I, ++i) { 869 Args.push_back(*I); 870 if (CallPAL.hasAttributes(i + 1)) { 871 AttrBuilder B(CallPAL, i + 1); 872 AttributesVec. 873 push_back(AttributeSet::get(F->getContext(), Args.size(), B)); 874 } 875 } 876 877 if (CallPAL.hasAttributes(AttributeSet::FunctionIndex)) 878 AttributesVec.push_back(AttributeSet::get(Call->getContext(), 879 CallPAL.getFnAttributes())); 880 881 // Reconstruct the AttributesList based on the vector we constructed. 882 AttributeSet NewCallPAL = AttributeSet::get(F->getContext(), AttributesVec); 883 884 SmallVector<OperandBundleDef, 1> OpBundles; 885 CS.getOperandBundlesAsDefs(OpBundles); 886 887 Instruction *New; 888 if (InvokeInst *II = dyn_cast<InvokeInst>(Call)) { 889 New = InvokeInst::Create(NF, II->getNormalDest(), II->getUnwindDest(), 890 Args, OpBundles, "", Call->getParent()); 891 cast<InvokeInst>(New)->setCallingConv(CS.getCallingConv()); 892 cast<InvokeInst>(New)->setAttributes(NewCallPAL); 893 } else { 894 New = CallInst::Create(NF, Args, OpBundles, "", Call); 895 cast<CallInst>(New)->setCallingConv(CS.getCallingConv()); 896 cast<CallInst>(New)->setAttributes(NewCallPAL); 897 if (cast<CallInst>(Call)->isTailCall()) 898 cast<CallInst>(New)->setTailCall(); 899 } 900 New->setDebugLoc(Call->getDebugLoc()); 901 902 Args.clear(); 903 904 if (!Call->use_empty()) { 905 if (New->getType() == Call->getType()) { 906 // Return type not changed? Just replace users then. 907 Call->replaceAllUsesWith(New); 908 New->takeName(Call); 909 } else if (New->getType()->isVoidTy()) { 910 // Our return value has uses, but they will get removed later on. 911 // Replace by null for now. 912 if (!Call->getType()->isX86_MMXTy()) 913 Call->replaceAllUsesWith(Constant::getNullValue(Call->getType())); 914 } else { 915 assert((RetTy->isStructTy() || RetTy->isArrayTy()) && 916 "Return type changed, but not into a void. The old return type" 917 " must have been a struct or an array!"); 918 Instruction *InsertPt = Call; 919 if (InvokeInst *II = dyn_cast<InvokeInst>(Call)) { 920 BasicBlock *NewEdge = SplitEdge(New->getParent(), II->getNormalDest()); 921 InsertPt = &*NewEdge->getFirstInsertionPt(); 922 } 923 924 // We used to return a struct or array. Instead of doing smart stuff 925 // with all the uses, we will just rebuild it using extract/insertvalue 926 // chaining and let instcombine clean that up. 927 // 928 // Start out building up our return value from undef 929 Value *RetVal = UndefValue::get(RetTy); 930 for (unsigned i = 0; i != RetCount; ++i) 931 if (NewRetIdxs[i] != -1) { 932 Value *V; 933 if (RetTypes.size() > 1) 934 // We are still returning a struct, so extract the value from our 935 // return value 936 V = ExtractValueInst::Create(New, NewRetIdxs[i], "newret", 937 InsertPt); 938 else 939 // We are now returning a single element, so just insert that 940 V = New; 941 // Insert the value at the old position 942 RetVal = InsertValueInst::Create(RetVal, V, i, "oldret", InsertPt); 943 } 944 // Now, replace all uses of the old call instruction with the return 945 // struct we built 946 Call->replaceAllUsesWith(RetVal); 947 New->takeName(Call); 948 } 949 } 950 951 // Finally, remove the old call from the program, reducing the use-count of 952 // F. 953 Call->eraseFromParent(); 954 } 955 956 // Since we have now created the new function, splice the body of the old 957 // function right into the new function, leaving the old rotting hulk of the 958 // function empty. 959 NF->getBasicBlockList().splice(NF->begin(), F->getBasicBlockList()); 960 961 // Loop over the argument list, transferring uses of the old arguments over to 962 // the new arguments, also transferring over the names as well. 963 i = 0; 964 for (Function::arg_iterator I = F->arg_begin(), E = F->arg_end(), 965 I2 = NF->arg_begin(); I != E; ++I, ++i) 966 if (ArgAlive[i]) { 967 // If this is a live argument, move the name and users over to the new 968 // version. 969 I->replaceAllUsesWith(&*I2); 970 I2->takeName(&*I); 971 ++I2; 972 } else { 973 // If this argument is dead, replace any uses of it with null constants 974 // (these are guaranteed to become unused later on). 975 if (!I->getType()->isX86_MMXTy()) 976 I->replaceAllUsesWith(Constant::getNullValue(I->getType())); 977 } 978 979 // If we change the return value of the function we must rewrite any return 980 // instructions. Check this now. 981 if (F->getReturnType() != NF->getReturnType()) 982 for (Function::iterator BB = NF->begin(), E = NF->end(); BB != E; ++BB) 983 if (ReturnInst *RI = dyn_cast<ReturnInst>(BB->getTerminator())) { 984 Value *RetVal; 985 986 if (NFTy->getReturnType()->isVoidTy()) { 987 RetVal = nullptr; 988 } else { 989 assert(RetTy->isStructTy() || RetTy->isArrayTy()); 990 // The original return value was a struct or array, insert 991 // extractvalue/insertvalue chains to extract only the values we need 992 // to return and insert them into our new result. 993 // This does generate messy code, but we'll let it to instcombine to 994 // clean that up. 995 Value *OldRet = RI->getOperand(0); 996 // Start out building up our return value from undef 997 RetVal = UndefValue::get(NRetTy); 998 for (unsigned i = 0; i != RetCount; ++i) 999 if (NewRetIdxs[i] != -1) { 1000 ExtractValueInst *EV = ExtractValueInst::Create(OldRet, i, 1001 "oldret", RI); 1002 if (RetTypes.size() > 1) { 1003 // We're still returning a struct, so reinsert the value into 1004 // our new return value at the new index 1005 1006 RetVal = InsertValueInst::Create(RetVal, EV, NewRetIdxs[i], 1007 "newret", RI); 1008 } else { 1009 // We are now only returning a simple value, so just return the 1010 // extracted value. 1011 RetVal = EV; 1012 } 1013 } 1014 } 1015 // Replace the return instruction with one returning the new return 1016 // value (possibly 0 if we became void). 1017 ReturnInst::Create(F->getContext(), RetVal, RI); 1018 BB->getInstList().erase(RI); 1019 } 1020 1021 // Patch the pointer to LLVM function in debug info descriptor. 1022 NF->setSubprogram(F->getSubprogram()); 1023 1024 // Now that the old function is dead, delete it. 1025 F->eraseFromParent(); 1026 1027 return true; 1028 } 1029 1030 PreservedAnalyses DeadArgumentEliminationPass::run(Module &M) { 1031 bool Changed = false; 1032 1033 // First pass: Do a simple check to see if any functions can have their "..." 1034 // removed. We can do this if they never call va_start. This loop cannot be 1035 // fused with the next loop, because deleting a function invalidates 1036 // information computed while surveying other functions. 1037 DEBUG(dbgs() << "DeadArgumentEliminationPass - Deleting dead varargs\n"); 1038 for (Module::iterator I = M.begin(), E = M.end(); I != E; ) { 1039 Function &F = *I++; 1040 if (F.getFunctionType()->isVarArg()) 1041 Changed |= DeleteDeadVarargs(F); 1042 } 1043 1044 // Second phase:loop through the module, determining which arguments are live. 1045 // We assume all arguments are dead unless proven otherwise (allowing us to 1046 // determine that dead arguments passed into recursive functions are dead). 1047 // 1048 DEBUG(dbgs() << "DeadArgumentEliminationPass - Determining liveness\n"); 1049 for (auto &F : M) 1050 SurveyFunction(F); 1051 1052 // Now, remove all dead arguments and return values from each function in 1053 // turn. 1054 for (Module::iterator I = M.begin(), E = M.end(); I != E; ) { 1055 // Increment now, because the function will probably get removed (ie. 1056 // replaced by a new one). 1057 Function *F = &*I++; 1058 Changed |= RemoveDeadStuffFromFunction(F); 1059 } 1060 1061 // Finally, look for any unused parameters in functions with non-local 1062 // linkage and replace the passed in parameters with undef. 1063 for (auto &F : M) 1064 Changed |= RemoveDeadArgumentsFromCallers(F); 1065 1066 if (!Changed) 1067 return PreservedAnalyses::all(); 1068 return PreservedAnalyses::none(); 1069 } 1070