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