xref: /freebsd/contrib/llvm-project/llvm/lib/Transforms/IPO/MergeFunctions.cpp (revision b7daab8be1d4555f23a297e60e4128c01caabf82)
1 //===- MergeFunctions.cpp - Merge identical functions ---------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This pass looks for equivalent functions that are mergable and folds them.
10 //
11 // Order relation is defined on set of functions. It was made through
12 // special function comparison procedure that returns
13 // 0 when functions are equal,
14 // -1 when Left function is less than right function, and
15 // 1 for opposite case. We need total-ordering, so we need to maintain
16 // four properties on the functions set:
17 // a <= a (reflexivity)
18 // if a <= b and b <= a then a = b (antisymmetry)
19 // if a <= b and b <= c then a <= c (transitivity).
20 // for all a and b: a <= b or b <= a (totality).
21 //
22 // Comparison iterates through each instruction in each basic block.
23 // Functions are kept on binary tree. For each new function F we perform
24 // lookup in binary tree.
25 // In practice it works the following way:
26 // -- We define Function* container class with custom "operator<" (FunctionPtr).
27 // -- "FunctionPtr" instances are stored in std::set collection, so every
28 //    std::set::insert operation will give you result in log(N) time.
29 //
30 // As an optimization, a hash of the function structure is calculated first, and
31 // two functions are only compared if they have the same hash. This hash is
32 // cheap to compute, and has the property that if function F == G according to
33 // the comparison function, then hash(F) == hash(G). This consistency property
34 // is critical to ensuring all possible merging opportunities are exploited.
35 // Collisions in the hash affect the speed of the pass but not the correctness
36 // or determinism of the resulting transformation.
37 //
38 // When a match is found the functions are folded. If both functions are
39 // overridable, we move the functionality into a new internal function and
40 // leave two overridable thunks to it.
41 //
42 //===----------------------------------------------------------------------===//
43 //
44 // Future work:
45 //
46 // * virtual functions.
47 //
48 // Many functions have their address taken by the virtual function table for
49 // the object they belong to. However, as long as it's only used for a lookup
50 // and call, this is irrelevant, and we'd like to fold such functions.
51 //
52 // * be smarter about bitcasts.
53 //
54 // In order to fold functions, we will sometimes add either bitcast instructions
55 // or bitcast constant expressions. Unfortunately, this can confound further
56 // analysis since the two functions differ where one has a bitcast and the
57 // other doesn't. We should learn to look through bitcasts.
58 //
59 // * Compare complex types with pointer types inside.
60 // * Compare cross-reference cases.
61 // * Compare complex expressions.
62 //
63 // All the three issues above could be described as ability to prove that
64 // fA == fB == fC == fE == fF == fG in example below:
65 //
66 //  void fA() {
67 //    fB();
68 //  }
69 //  void fB() {
70 //    fA();
71 //  }
72 //
73 //  void fE() {
74 //    fF();
75 //  }
76 //  void fF() {
77 //    fG();
78 //  }
79 //  void fG() {
80 //    fE();
81 //  }
82 //
83 // Simplest cross-reference case (fA <--> fB) was implemented in previous
84 // versions of MergeFunctions, though it presented only in two function pairs
85 // in test-suite (that counts >50k functions)
86 // Though possibility to detect complex cross-referencing (e.g.: A->B->C->D->A)
87 // could cover much more cases.
88 //
89 //===----------------------------------------------------------------------===//
90 
91 #include "llvm/Transforms/IPO/MergeFunctions.h"
92 #include "llvm/ADT/ArrayRef.h"
93 #include "llvm/ADT/SmallVector.h"
94 #include "llvm/ADT/Statistic.h"
95 #include "llvm/IR/Argument.h"
96 #include "llvm/IR/BasicBlock.h"
97 #include "llvm/IR/DebugInfoMetadata.h"
98 #include "llvm/IR/DebugLoc.h"
99 #include "llvm/IR/DerivedTypes.h"
100 #include "llvm/IR/Function.h"
101 #include "llvm/IR/GlobalValue.h"
102 #include "llvm/IR/IRBuilder.h"
103 #include "llvm/IR/InstrTypes.h"
104 #include "llvm/IR/Instruction.h"
105 #include "llvm/IR/Instructions.h"
106 #include "llvm/IR/IntrinsicInst.h"
107 #include "llvm/IR/Module.h"
108 #include "llvm/IR/StructuralHash.h"
109 #include "llvm/IR/Type.h"
110 #include "llvm/IR/Use.h"
111 #include "llvm/IR/User.h"
112 #include "llvm/IR/Value.h"
113 #include "llvm/IR/ValueHandle.h"
114 #include "llvm/Support/Casting.h"
115 #include "llvm/Support/CommandLine.h"
116 #include "llvm/Support/Debug.h"
117 #include "llvm/Support/raw_ostream.h"
118 #include "llvm/Transforms/IPO.h"
119 #include "llvm/Transforms/Utils/FunctionComparator.h"
120 #include "llvm/Transforms/Utils/ModuleUtils.h"
121 #include <algorithm>
122 #include <cassert>
123 #include <iterator>
124 #include <set>
125 #include <utility>
126 #include <vector>
127 
128 using namespace llvm;
129 
130 #define DEBUG_TYPE "mergefunc"
131 
132 STATISTIC(NumFunctionsMerged, "Number of functions merged");
133 STATISTIC(NumThunksWritten, "Number of thunks generated");
134 STATISTIC(NumAliasesWritten, "Number of aliases generated");
135 STATISTIC(NumDoubleWeak, "Number of new functions created");
136 
137 static cl::opt<unsigned> NumFunctionsForVerificationCheck(
138     "mergefunc-verify",
139     cl::desc("How many functions in a module could be used for "
140              "MergeFunctions to pass a basic correctness check. "
141              "'0' disables this check. Works only with '-debug' key."),
142     cl::init(0), cl::Hidden);
143 
144 // Under option -mergefunc-preserve-debug-info we:
145 // - Do not create a new function for a thunk.
146 // - Retain the debug info for a thunk's parameters (and associated
147 //   instructions for the debug info) from the entry block.
148 //   Note: -debug will display the algorithm at work.
149 // - Create debug-info for the call (to the shared implementation) made by
150 //   a thunk and its return value.
151 // - Erase the rest of the function, retaining the (minimally sized) entry
152 //   block to create a thunk.
153 // - Preserve a thunk's call site to point to the thunk even when both occur
154 //   within the same translation unit, to aid debugability. Note that this
155 //   behaviour differs from the underlying -mergefunc implementation which
156 //   modifies the thunk's call site to point to the shared implementation
157 //   when both occur within the same translation unit.
158 static cl::opt<bool>
159     MergeFunctionsPDI("mergefunc-preserve-debug-info", cl::Hidden,
160                       cl::init(false),
161                       cl::desc("Preserve debug info in thunk when mergefunc "
162                                "transformations are made."));
163 
164 static cl::opt<bool>
165     MergeFunctionsAliases("mergefunc-use-aliases", cl::Hidden,
166                           cl::init(false),
167                           cl::desc("Allow mergefunc to create aliases"));
168 
169 namespace {
170 
171 class FunctionNode {
172   mutable AssertingVH<Function> F;
173   stable_hash Hash;
174 
175 public:
176   // Note the hash is recalculated potentially multiple times, but it is cheap.
177   FunctionNode(Function *F) : F(F), Hash(StructuralHash(*F)) {}
178 
179   Function *getFunc() const { return F; }
180   stable_hash getHash() const { return Hash; }
181 
182   /// Replace the reference to the function F by the function G, assuming their
183   /// implementations are equal.
184   void replaceBy(Function *G) const {
185     F = G;
186   }
187 };
188 
189 /// MergeFunctions finds functions which will generate identical machine code,
190 /// by considering all pointer types to be equivalent. Once identified,
191 /// MergeFunctions will fold them by replacing a call to one to a call to a
192 /// bitcast of the other.
193 class MergeFunctions {
194 public:
195   MergeFunctions() : FnTree(FunctionNodeCmp(&GlobalNumbers)) {
196   }
197 
198   template <typename FuncContainer> bool run(FuncContainer &Functions);
199   DenseMap<Function *, Function *> runOnFunctions(ArrayRef<Function *> F);
200 
201   SmallPtrSet<GlobalValue *, 4> &getUsed();
202 
203 private:
204   // The function comparison operator is provided here so that FunctionNodes do
205   // not need to become larger with another pointer.
206   class FunctionNodeCmp {
207     GlobalNumberState* GlobalNumbers;
208 
209   public:
210     FunctionNodeCmp(GlobalNumberState* GN) : GlobalNumbers(GN) {}
211 
212     bool operator()(const FunctionNode &LHS, const FunctionNode &RHS) const {
213       // Order first by hashes, then full function comparison.
214       if (LHS.getHash() != RHS.getHash())
215         return LHS.getHash() < RHS.getHash();
216       FunctionComparator FCmp(LHS.getFunc(), RHS.getFunc(), GlobalNumbers);
217       return FCmp.compare() < 0;
218     }
219   };
220   using FnTreeType = std::set<FunctionNode, FunctionNodeCmp>;
221 
222   GlobalNumberState GlobalNumbers;
223 
224   /// A work queue of functions that may have been modified and should be
225   /// analyzed again.
226   std::vector<WeakTrackingVH> Deferred;
227 
228   /// Set of values marked as used in llvm.used and llvm.compiler.used.
229   SmallPtrSet<GlobalValue *, 4> Used;
230 
231 #ifndef NDEBUG
232   /// Checks the rules of order relation introduced among functions set.
233   /// Returns true, if check has been passed, and false if failed.
234   bool doFunctionalCheck(std::vector<WeakTrackingVH> &Worklist);
235 #endif
236 
237   /// Insert a ComparableFunction into the FnTree, or merge it away if it's
238   /// equal to one that's already present.
239   bool insert(Function *NewFunction);
240 
241   /// Remove a Function from the FnTree and queue it up for a second sweep of
242   /// analysis.
243   void remove(Function *F);
244 
245   /// Find the functions that use this Value and remove them from FnTree and
246   /// queue the functions.
247   void removeUsers(Value *V);
248 
249   /// Replace all direct calls of Old with calls of New. Will bitcast New if
250   /// necessary to make types match.
251   void replaceDirectCallers(Function *Old, Function *New);
252 
253   /// Merge two equivalent functions. Upon completion, G may be deleted, or may
254   /// be converted into a thunk. In either case, it should never be visited
255   /// again.
256   void mergeTwoFunctions(Function *F, Function *G);
257 
258   /// Fill PDIUnrelatedWL with instructions from the entry block that are
259   /// unrelated to parameter related debug info.
260   /// \param PDVRUnrelatedWL The equivalent non-intrinsic debug records.
261   void
262   filterInstsUnrelatedToPDI(BasicBlock *GEntryBlock,
263                             std::vector<Instruction *> &PDIUnrelatedWL,
264                             std::vector<DbgVariableRecord *> &PDVRUnrelatedWL);
265 
266   /// Erase the rest of the CFG (i.e. barring the entry block).
267   void eraseTail(Function *G);
268 
269   /// Erase the instructions in PDIUnrelatedWL as they are unrelated to the
270   /// parameter debug info, from the entry block.
271   /// \param PDVRUnrelatedWL contains the equivalent set of non-instruction
272   /// debug-info records.
273   void
274   eraseInstsUnrelatedToPDI(std::vector<Instruction *> &PDIUnrelatedWL,
275                            std::vector<DbgVariableRecord *> &PDVRUnrelatedWL);
276 
277   /// Replace G with a simple tail call to bitcast(F). Also (unless
278   /// MergeFunctionsPDI holds) replace direct uses of G with bitcast(F),
279   /// delete G.
280   void writeThunk(Function *F, Function *G);
281 
282   // Replace G with an alias to F (deleting function G)
283   void writeAlias(Function *F, Function *G);
284 
285   // If needed, replace G with an alias to F if possible, or a thunk to F if
286   // profitable. Returns false if neither is the case. If \p G is not needed
287   // (i.e. it is discardable and not used), \p G is removed directly.
288   bool writeThunkOrAliasIfNeeded(Function *F, Function *G);
289 
290   /// Replace function F with function G in the function tree.
291   void replaceFunctionInTree(const FunctionNode &FN, Function *G);
292 
293   /// The set of all distinct functions. Use the insert() and remove() methods
294   /// to modify it. The map allows efficient lookup and deferring of Functions.
295   FnTreeType FnTree;
296 
297   // Map functions to the iterators of the FunctionNode which contains them
298   // in the FnTree. This must be updated carefully whenever the FnTree is
299   // modified, i.e. in insert(), remove(), and replaceFunctionInTree(), to avoid
300   // dangling iterators into FnTree. The invariant that preserves this is that
301   // there is exactly one mapping F -> FN for each FunctionNode FN in FnTree.
302   DenseMap<AssertingVH<Function>, FnTreeType::iterator> FNodesInTree;
303 
304   /// Deleted-New functions mapping
305   DenseMap<Function *, Function *> DelToNewMap;
306 };
307 } // end anonymous namespace
308 
309 PreservedAnalyses MergeFunctionsPass::run(Module &M,
310                                           ModuleAnalysisManager &AM) {
311   if (!MergeFunctionsPass::runOnModule(M))
312     return PreservedAnalyses::all();
313   return PreservedAnalyses::none();
314 }
315 
316 SmallPtrSet<GlobalValue *, 4> &MergeFunctions::getUsed() { return Used; }
317 
318 bool MergeFunctionsPass::runOnModule(Module &M) {
319   MergeFunctions MF;
320   SmallVector<GlobalValue *, 4> UsedV;
321   collectUsedGlobalVariables(M, UsedV, /*CompilerUsed=*/false);
322   collectUsedGlobalVariables(M, UsedV, /*CompilerUsed=*/true);
323   MF.getUsed().insert_range(UsedV);
324   return MF.run(M);
325 }
326 
327 DenseMap<Function *, Function *>
328 MergeFunctionsPass::runOnFunctions(ArrayRef<Function *> F) {
329   MergeFunctions MF;
330   return MF.runOnFunctions(F);
331 }
332 
333 #ifndef NDEBUG
334 bool MergeFunctions::doFunctionalCheck(std::vector<WeakTrackingVH> &Worklist) {
335   if (const unsigned Max = NumFunctionsForVerificationCheck) {
336     unsigned TripleNumber = 0;
337     bool Valid = true;
338 
339     dbgs() << "MERGEFUNC-VERIFY: Started for first " << Max << " functions.\n";
340 
341     unsigned i = 0;
342     for (std::vector<WeakTrackingVH>::iterator I = Worklist.begin(),
343                                                E = Worklist.end();
344          I != E && i < Max; ++I, ++i) {
345       unsigned j = i;
346       for (std::vector<WeakTrackingVH>::iterator J = I; J != E && j < Max;
347            ++J, ++j) {
348         Function *F1 = cast<Function>(*I);
349         Function *F2 = cast<Function>(*J);
350         int Res1 = FunctionComparator(F1, F2, &GlobalNumbers).compare();
351         int Res2 = FunctionComparator(F2, F1, &GlobalNumbers).compare();
352 
353         // If F1 <= F2, then F2 >= F1, otherwise report failure.
354         if (Res1 != -Res2) {
355           dbgs() << "MERGEFUNC-VERIFY: Non-symmetric; triple: " << TripleNumber
356                  << "\n";
357           dbgs() << *F1 << '\n' << *F2 << '\n';
358           Valid = false;
359         }
360 
361         if (Res1 == 0)
362           continue;
363 
364         unsigned k = j;
365         for (std::vector<WeakTrackingVH>::iterator K = J; K != E && k < Max;
366              ++k, ++K, ++TripleNumber) {
367           if (K == J)
368             continue;
369 
370           Function *F3 = cast<Function>(*K);
371           int Res3 = FunctionComparator(F1, F3, &GlobalNumbers).compare();
372           int Res4 = FunctionComparator(F2, F3, &GlobalNumbers).compare();
373 
374           bool Transitive = true;
375 
376           if (Res1 != 0 && Res1 == Res4) {
377             // F1 > F2, F2 > F3 => F1 > F3
378             Transitive = Res3 == Res1;
379           } else if (Res3 != 0 && Res3 == -Res4) {
380             // F1 > F3, F3 > F2 => F1 > F2
381             Transitive = Res3 == Res1;
382           } else if (Res4 != 0 && -Res3 == Res4) {
383             // F2 > F3, F3 > F1 => F2 > F1
384             Transitive = Res4 == -Res1;
385           }
386 
387           if (!Transitive) {
388             dbgs() << "MERGEFUNC-VERIFY: Non-transitive; triple: "
389                    << TripleNumber << "\n";
390             dbgs() << "Res1, Res3, Res4: " << Res1 << ", " << Res3 << ", "
391                    << Res4 << "\n";
392             dbgs() << *F1 << '\n' << *F2 << '\n' << *F3 << '\n';
393             Valid = false;
394           }
395         }
396       }
397     }
398 
399     dbgs() << "MERGEFUNC-VERIFY: " << (Valid ? "Passed." : "Failed.") << "\n";
400     return Valid;
401   }
402   return true;
403 }
404 #endif
405 
406 /// Check whether \p F has an intrinsic which references
407 /// distinct metadata as an operand. The most common
408 /// instance of this would be CFI checks for function-local types.
409 static bool hasDistinctMetadataIntrinsic(const Function &F) {
410   for (const BasicBlock &BB : F) {
411     for (const Instruction &I : BB.instructionsWithoutDebug()) {
412       if (!isa<IntrinsicInst>(&I))
413         continue;
414 
415       for (Value *Op : I.operands()) {
416         auto *MDL = dyn_cast<MetadataAsValue>(Op);
417         if (!MDL)
418           continue;
419         if (MDNode *N = dyn_cast<MDNode>(MDL->getMetadata()))
420           if (N->isDistinct())
421             return true;
422       }
423     }
424   }
425   return false;
426 }
427 
428 /// Check whether \p F is eligible for function merging.
429 static bool isEligibleForMerging(Function &F) {
430   return !F.isDeclaration() && !F.hasAvailableExternallyLinkage() &&
431          !hasDistinctMetadataIntrinsic(F);
432 }
433 
434 inline Function *asPtr(Function *Fn) { return Fn; }
435 inline Function *asPtr(Function &Fn) { return &Fn; }
436 
437 template <typename FuncContainer> bool MergeFunctions::run(FuncContainer &M) {
438   bool Changed = false;
439 
440   // All functions in the module, ordered by hash. Functions with a unique
441   // hash value are easily eliminated.
442   std::vector<std::pair<stable_hash, Function *>> HashedFuncs;
443   for (auto &Func : M) {
444     Function *FuncPtr = asPtr(Func);
445     if (isEligibleForMerging(*FuncPtr)) {
446       HashedFuncs.push_back({StructuralHash(*FuncPtr), FuncPtr});
447     }
448   }
449 
450   llvm::stable_sort(HashedFuncs, less_first());
451 
452   auto S = HashedFuncs.begin();
453   for (auto I = HashedFuncs.begin(), IE = HashedFuncs.end(); I != IE; ++I) {
454     // If the hash value matches the previous value or the next one, we must
455     // consider merging it. Otherwise it is dropped and never considered again.
456     if ((I != S && std::prev(I)->first == I->first) ||
457         (std::next(I) != IE && std::next(I)->first == I->first)) {
458       Deferred.push_back(WeakTrackingVH(I->second));
459     }
460   }
461 
462   do {
463     std::vector<WeakTrackingVH> Worklist;
464     Deferred.swap(Worklist);
465 
466     LLVM_DEBUG(doFunctionalCheck(Worklist));
467 
468     LLVM_DEBUG(dbgs() << "size of module: " << M.size() << '\n');
469     LLVM_DEBUG(dbgs() << "size of worklist: " << Worklist.size() << '\n');
470 
471     // Insert functions and merge them.
472     for (WeakTrackingVH &I : Worklist) {
473       if (!I)
474         continue;
475       Function *F = cast<Function>(I);
476       if (!F->isDeclaration() && !F->hasAvailableExternallyLinkage()) {
477         Changed |= insert(F);
478       }
479     }
480     LLVM_DEBUG(dbgs() << "size of FnTree: " << FnTree.size() << '\n');
481   } while (!Deferred.empty());
482 
483   FnTree.clear();
484   FNodesInTree.clear();
485   GlobalNumbers.clear();
486   Used.clear();
487 
488   return Changed;
489 }
490 
491 DenseMap<Function *, Function *>
492 MergeFunctions::runOnFunctions(ArrayRef<Function *> F) {
493   [[maybe_unused]] bool MergeResult = this->run(F);
494   assert(MergeResult == !DelToNewMap.empty());
495   return this->DelToNewMap;
496 }
497 
498 // Replace direct callers of Old with New.
499 void MergeFunctions::replaceDirectCallers(Function *Old, Function *New) {
500   for (Use &U : make_early_inc_range(Old->uses())) {
501     CallBase *CB = dyn_cast<CallBase>(U.getUser());
502     if (CB && CB->isCallee(&U)) {
503       // Do not copy attributes from the called function to the call-site.
504       // Function comparison ensures that the attributes are the same up to
505       // type congruences in byval(), in which case we need to keep the byval
506       // type of the call-site, not the callee function.
507       remove(CB->getFunction());
508       U.set(New);
509     }
510   }
511 }
512 
513 // Erase the instructions in PDIUnrelatedWL as they are unrelated to the
514 // parameter debug info, from the entry block.
515 void MergeFunctions::eraseInstsUnrelatedToPDI(
516     std::vector<Instruction *> &PDIUnrelatedWL,
517     std::vector<DbgVariableRecord *> &PDVRUnrelatedWL) {
518   LLVM_DEBUG(
519       dbgs() << " Erasing instructions (in reverse order of appearance in "
520                 "entry block) unrelated to parameter debug info from entry "
521                 "block: {\n");
522   while (!PDIUnrelatedWL.empty()) {
523     Instruction *I = PDIUnrelatedWL.back();
524     LLVM_DEBUG(dbgs() << "  Deleting Instruction: ");
525     LLVM_DEBUG(I->print(dbgs()));
526     LLVM_DEBUG(dbgs() << "\n");
527     I->eraseFromParent();
528     PDIUnrelatedWL.pop_back();
529   }
530 
531   while (!PDVRUnrelatedWL.empty()) {
532     DbgVariableRecord *DVR = PDVRUnrelatedWL.back();
533     LLVM_DEBUG(dbgs() << "  Deleting DbgVariableRecord ");
534     LLVM_DEBUG(DVR->print(dbgs()));
535     LLVM_DEBUG(dbgs() << "\n");
536     DVR->eraseFromParent();
537     PDVRUnrelatedWL.pop_back();
538   }
539 
540   LLVM_DEBUG(dbgs() << " } // Done erasing instructions unrelated to parameter "
541                        "debug info from entry block. \n");
542 }
543 
544 // Reduce G to its entry block.
545 void MergeFunctions::eraseTail(Function *G) {
546   std::vector<BasicBlock *> WorklistBB;
547   for (BasicBlock &BB : drop_begin(*G)) {
548     BB.dropAllReferences();
549     WorklistBB.push_back(&BB);
550   }
551   while (!WorklistBB.empty()) {
552     BasicBlock *BB = WorklistBB.back();
553     BB->eraseFromParent();
554     WorklistBB.pop_back();
555   }
556 }
557 
558 // We are interested in the following instructions from the entry block as being
559 // related to parameter debug info:
560 // - @llvm.dbg.declare
561 // - stores from the incoming parameters to locations on the stack-frame
562 // - allocas that create these locations on the stack-frame
563 // - @llvm.dbg.value
564 // - the entry block's terminator
565 // The rest are unrelated to debug info for the parameters; fill up
566 // PDIUnrelatedWL with such instructions.
567 void MergeFunctions::filterInstsUnrelatedToPDI(
568     BasicBlock *GEntryBlock, std::vector<Instruction *> &PDIUnrelatedWL,
569     std::vector<DbgVariableRecord *> &PDVRUnrelatedWL) {
570   std::set<Instruction *> PDIRelated;
571   std::set<DbgVariableRecord *> PDVRRelated;
572 
573   // Work out whether a dbg.value intrinsic or an equivalent DbgVariableRecord
574   // is a parameter to be preserved.
575   auto ExamineDbgValue = [](auto *DbgVal, auto &Container) {
576     LLVM_DEBUG(dbgs() << " Deciding: ");
577     LLVM_DEBUG(DbgVal->print(dbgs()));
578     LLVM_DEBUG(dbgs() << "\n");
579     DILocalVariable *DILocVar = DbgVal->getVariable();
580     if (DILocVar->isParameter()) {
581       LLVM_DEBUG(dbgs() << "  Include (parameter): ");
582       LLVM_DEBUG(DbgVal->print(dbgs()));
583       LLVM_DEBUG(dbgs() << "\n");
584       Container.insert(DbgVal);
585     } else {
586       LLVM_DEBUG(dbgs() << "  Delete (!parameter): ");
587       LLVM_DEBUG(DbgVal->print(dbgs()));
588       LLVM_DEBUG(dbgs() << "\n");
589     }
590   };
591 
592   auto ExamineDbgDeclare = [&PDIRelated](auto *DbgDecl, auto &Container) {
593     LLVM_DEBUG(dbgs() << " Deciding: ");
594     LLVM_DEBUG(DbgDecl->print(dbgs()));
595     LLVM_DEBUG(dbgs() << "\n");
596     DILocalVariable *DILocVar = DbgDecl->getVariable();
597     if (DILocVar->isParameter()) {
598       LLVM_DEBUG(dbgs() << "  Parameter: ");
599       LLVM_DEBUG(DILocVar->print(dbgs()));
600       AllocaInst *AI = dyn_cast_or_null<AllocaInst>(DbgDecl->getAddress());
601       if (AI) {
602         LLVM_DEBUG(dbgs() << "  Processing alloca users: ");
603         LLVM_DEBUG(dbgs() << "\n");
604         for (User *U : AI->users()) {
605           if (StoreInst *SI = dyn_cast<StoreInst>(U)) {
606             if (Value *Arg = SI->getValueOperand()) {
607               if (isa<Argument>(Arg)) {
608                 LLVM_DEBUG(dbgs() << "  Include: ");
609                 LLVM_DEBUG(AI->print(dbgs()));
610                 LLVM_DEBUG(dbgs() << "\n");
611                 PDIRelated.insert(AI);
612                 LLVM_DEBUG(dbgs() << "   Include (parameter): ");
613                 LLVM_DEBUG(SI->print(dbgs()));
614                 LLVM_DEBUG(dbgs() << "\n");
615                 PDIRelated.insert(SI);
616                 LLVM_DEBUG(dbgs() << "  Include: ");
617                 LLVM_DEBUG(DbgDecl->print(dbgs()));
618                 LLVM_DEBUG(dbgs() << "\n");
619                 Container.insert(DbgDecl);
620               } else {
621                 LLVM_DEBUG(dbgs() << "   Delete (!parameter): ");
622                 LLVM_DEBUG(SI->print(dbgs()));
623                 LLVM_DEBUG(dbgs() << "\n");
624               }
625             }
626           } else {
627             LLVM_DEBUG(dbgs() << "   Defer: ");
628             LLVM_DEBUG(U->print(dbgs()));
629             LLVM_DEBUG(dbgs() << "\n");
630           }
631         }
632       } else {
633         LLVM_DEBUG(dbgs() << "  Delete (alloca NULL): ");
634         LLVM_DEBUG(DbgDecl->print(dbgs()));
635         LLVM_DEBUG(dbgs() << "\n");
636       }
637     } else {
638       LLVM_DEBUG(dbgs() << "  Delete (!parameter): ");
639       LLVM_DEBUG(DbgDecl->print(dbgs()));
640       LLVM_DEBUG(dbgs() << "\n");
641     }
642   };
643 
644   for (BasicBlock::iterator BI = GEntryBlock->begin(), BIE = GEntryBlock->end();
645        BI != BIE; ++BI) {
646     // Examine DbgVariableRecords as they happen "before" the instruction. Are
647     // they connected to parameters?
648     for (DbgVariableRecord &DVR : filterDbgVars(BI->getDbgRecordRange())) {
649       if (DVR.isDbgValue() || DVR.isDbgAssign()) {
650         ExamineDbgValue(&DVR, PDVRRelated);
651       } else {
652         assert(DVR.isDbgDeclare());
653         ExamineDbgDeclare(&DVR, PDVRRelated);
654       }
655     }
656 
657     if (auto *DVI = dyn_cast<DbgValueInst>(&*BI)) {
658       ExamineDbgValue(DVI, PDIRelated);
659     } else if (auto *DDI = dyn_cast<DbgDeclareInst>(&*BI)) {
660       ExamineDbgDeclare(DDI, PDIRelated);
661     } else if (BI->isTerminator() && &*BI == GEntryBlock->getTerminator()) {
662       LLVM_DEBUG(dbgs() << " Will Include Terminator: ");
663       LLVM_DEBUG(BI->print(dbgs()));
664       LLVM_DEBUG(dbgs() << "\n");
665       PDIRelated.insert(&*BI);
666     } else {
667       LLVM_DEBUG(dbgs() << " Defer: ");
668       LLVM_DEBUG(BI->print(dbgs()));
669       LLVM_DEBUG(dbgs() << "\n");
670     }
671   }
672   LLVM_DEBUG(
673       dbgs()
674       << " Report parameter debug info related/related instructions: {\n");
675 
676   auto IsPDIRelated = [](auto *Rec, auto &Container, auto &UnrelatedCont) {
677     if (Container.find(Rec) == Container.end()) {
678       LLVM_DEBUG(dbgs() << "  !PDIRelated: ");
679       LLVM_DEBUG(Rec->print(dbgs()));
680       LLVM_DEBUG(dbgs() << "\n");
681       UnrelatedCont.push_back(Rec);
682     } else {
683       LLVM_DEBUG(dbgs() << "   PDIRelated: ");
684       LLVM_DEBUG(Rec->print(dbgs()));
685       LLVM_DEBUG(dbgs() << "\n");
686     }
687   };
688 
689   // Collect the set of unrelated instructions and debug records.
690   for (Instruction &I : *GEntryBlock) {
691     for (DbgVariableRecord &DVR : filterDbgVars(I.getDbgRecordRange()))
692       IsPDIRelated(&DVR, PDVRRelated, PDVRUnrelatedWL);
693     IsPDIRelated(&I, PDIRelated, PDIUnrelatedWL);
694   }
695   LLVM_DEBUG(dbgs() << " }\n");
696 }
697 
698 /// Whether this function may be replaced by a forwarding thunk.
699 static bool canCreateThunkFor(Function *F) {
700   if (F->isVarArg())
701     return false;
702 
703   // Don't merge tiny functions using a thunk, since it can just end up
704   // making the function larger.
705   if (F->size() == 1) {
706     if (F->front().sizeWithoutDebug() < 2) {
707       LLVM_DEBUG(dbgs() << "canCreateThunkFor: " << F->getName()
708                         << " is too small to bother creating a thunk for\n");
709       return false;
710     }
711   }
712   return true;
713 }
714 
715 /// Copy all metadata of a specific kind from one function to another.
716 static void copyMetadataIfPresent(Function *From, Function *To,
717                                   StringRef Kind) {
718   SmallVector<MDNode *, 4> MDs;
719   From->getMetadata(Kind, MDs);
720   for (MDNode *MD : MDs)
721     To->addMetadata(Kind, *MD);
722 }
723 
724 // Replace G with a simple tail call to bitcast(F). Also (unless
725 // MergeFunctionsPDI holds) replace direct uses of G with bitcast(F),
726 // delete G. Under MergeFunctionsPDI, we use G itself for creating
727 // the thunk as we preserve the debug info (and associated instructions)
728 // from G's entry block pertaining to G's incoming arguments which are
729 // passed on as corresponding arguments in the call that G makes to F.
730 // For better debugability, under MergeFunctionsPDI, we do not modify G's
731 // call sites to point to F even when within the same translation unit.
732 void MergeFunctions::writeThunk(Function *F, Function *G) {
733   BasicBlock *GEntryBlock = nullptr;
734   std::vector<Instruction *> PDIUnrelatedWL;
735   std::vector<DbgVariableRecord *> PDVRUnrelatedWL;
736   BasicBlock *BB = nullptr;
737   Function *NewG = nullptr;
738   if (MergeFunctionsPDI) {
739     LLVM_DEBUG(dbgs() << "writeThunk: (MergeFunctionsPDI) Do not create a new "
740                          "function as thunk; retain original: "
741                       << G->getName() << "()\n");
742     GEntryBlock = &G->getEntryBlock();
743     LLVM_DEBUG(
744         dbgs() << "writeThunk: (MergeFunctionsPDI) filter parameter related "
745                   "debug info for "
746                << G->getName() << "() {\n");
747     filterInstsUnrelatedToPDI(GEntryBlock, PDIUnrelatedWL, PDVRUnrelatedWL);
748     GEntryBlock->getTerminator()->eraseFromParent();
749     BB = GEntryBlock;
750   } else {
751     NewG = Function::Create(G->getFunctionType(), G->getLinkage(),
752                             G->getAddressSpace(), "", G->getParent());
753     NewG->setComdat(G->getComdat());
754     BB = BasicBlock::Create(F->getContext(), "", NewG);
755   }
756 
757   IRBuilder<> Builder(BB);
758   Function *H = MergeFunctionsPDI ? G : NewG;
759   SmallVector<Value *, 16> Args;
760   unsigned i = 0;
761   FunctionType *FFTy = F->getFunctionType();
762   for (Argument &AI : H->args()) {
763     Args.push_back(Builder.CreateAggregateCast(&AI, FFTy->getParamType(i)));
764     ++i;
765   }
766 
767   CallInst *CI = Builder.CreateCall(F, Args);
768   ReturnInst *RI = nullptr;
769   bool isSwiftTailCall = F->getCallingConv() == CallingConv::SwiftTail &&
770                          G->getCallingConv() == CallingConv::SwiftTail;
771   CI->setTailCallKind(isSwiftTailCall ? CallInst::TCK_MustTail
772                                       : CallInst::TCK_Tail);
773   CI->setCallingConv(F->getCallingConv());
774   CI->setAttributes(F->getAttributes());
775   if (H->getReturnType()->isVoidTy()) {
776     RI = Builder.CreateRetVoid();
777   } else {
778     RI = Builder.CreateRet(Builder.CreateAggregateCast(CI, H->getReturnType()));
779   }
780 
781   if (MergeFunctionsPDI) {
782     DISubprogram *DIS = G->getSubprogram();
783     if (DIS) {
784       DebugLoc CIDbgLoc =
785           DILocation::get(DIS->getContext(), DIS->getScopeLine(), 0, DIS);
786       DebugLoc RIDbgLoc =
787           DILocation::get(DIS->getContext(), DIS->getScopeLine(), 0, DIS);
788       CI->setDebugLoc(CIDbgLoc);
789       RI->setDebugLoc(RIDbgLoc);
790     } else {
791       LLVM_DEBUG(
792           dbgs() << "writeThunk: (MergeFunctionsPDI) No DISubprogram for "
793                  << G->getName() << "()\n");
794     }
795     eraseTail(G);
796     eraseInstsUnrelatedToPDI(PDIUnrelatedWL, PDVRUnrelatedWL);
797     LLVM_DEBUG(
798         dbgs() << "} // End of parameter related debug info filtering for: "
799                << G->getName() << "()\n");
800   } else {
801     NewG->copyAttributesFrom(G);
802     NewG->takeName(G);
803     // Ensure CFI type metadata is propagated to the new function.
804     copyMetadataIfPresent(G, NewG, "type");
805     copyMetadataIfPresent(G, NewG, "kcfi_type");
806     removeUsers(G);
807     G->replaceAllUsesWith(NewG);
808     G->eraseFromParent();
809   }
810 
811   LLVM_DEBUG(dbgs() << "writeThunk: " << H->getName() << '\n');
812   ++NumThunksWritten;
813 }
814 
815 // Whether this function may be replaced by an alias
816 static bool canCreateAliasFor(Function *F) {
817   if (!MergeFunctionsAliases || !F->hasGlobalUnnamedAddr())
818     return false;
819 
820   // We should only see linkages supported by aliases here
821   assert(F->hasLocalLinkage() || F->hasExternalLinkage()
822       || F->hasWeakLinkage() || F->hasLinkOnceLinkage());
823   return true;
824 }
825 
826 // Replace G with an alias to F (deleting function G)
827 void MergeFunctions::writeAlias(Function *F, Function *G) {
828   PointerType *PtrType = G->getType();
829   auto *GA = GlobalAlias::create(G->getValueType(), PtrType->getAddressSpace(),
830                                  G->getLinkage(), "", F, G->getParent());
831 
832   const MaybeAlign FAlign = F->getAlign();
833   const MaybeAlign GAlign = G->getAlign();
834   if (FAlign || GAlign)
835     F->setAlignment(std::max(FAlign.valueOrOne(), GAlign.valueOrOne()));
836   else
837     F->setAlignment(std::nullopt);
838   GA->takeName(G);
839   GA->setVisibility(G->getVisibility());
840   GA->setUnnamedAddr(GlobalValue::UnnamedAddr::Global);
841 
842   removeUsers(G);
843   G->replaceAllUsesWith(GA);
844   G->eraseFromParent();
845 
846   LLVM_DEBUG(dbgs() << "writeAlias: " << GA->getName() << '\n');
847   ++NumAliasesWritten;
848 }
849 
850 // If needed, replace G with an alias to F if possible, or a thunk to F if
851 // profitable. Returns false if neither is the case. If \p G is not needed (i.e.
852 // it is discardable and unused), \p G is removed directly.
853 bool MergeFunctions::writeThunkOrAliasIfNeeded(Function *F, Function *G) {
854   if (G->isDiscardableIfUnused() && G->use_empty() && !MergeFunctionsPDI) {
855     G->eraseFromParent();
856     return true;
857   }
858   if (canCreateAliasFor(G)) {
859     writeAlias(F, G);
860     return true;
861   }
862   if (canCreateThunkFor(F)) {
863     writeThunk(F, G);
864     return true;
865   }
866   return false;
867 }
868 
869 /// Returns true if \p F is either weak_odr or linkonce_odr.
870 static bool isODR(const Function *F) {
871   return F->hasWeakODRLinkage() || F->hasLinkOnceODRLinkage();
872 }
873 
874 // Merge two equivalent functions. Upon completion, Function G is deleted.
875 void MergeFunctions::mergeTwoFunctions(Function *F, Function *G) {
876 
877   // Create a new thunk that both F and G can call, if F cannot call G directly.
878   // That is the case if F is either interposable or if G is either weak_odr or
879   // linkonce_odr.
880   if (F->isInterposable() || (isODR(F) && isODR(G))) {
881     assert((!isODR(G) || isODR(F)) &&
882            "if G is ODR, F must also be ODR due to ordering");
883 
884     // Both writeThunkOrAliasIfNeeded() calls below must succeed, either because
885     // we can create aliases for G and NewF, or because a thunk for F is
886     // profitable. F here has the same signature as NewF below, so that's what
887     // we check.
888     if (!canCreateThunkFor(F) &&
889         (!canCreateAliasFor(F) || !canCreateAliasFor(G)))
890       return;
891 
892     // Make them both thunks to the same internal function.
893     Function *NewF = Function::Create(F->getFunctionType(), F->getLinkage(),
894                                       F->getAddressSpace(), "", F->getParent());
895     NewF->copyAttributesFrom(F);
896     NewF->takeName(F);
897     NewF->setComdat(F->getComdat());
898     F->setComdat(nullptr);
899     // Ensure CFI type metadata is propagated to the new function.
900     copyMetadataIfPresent(F, NewF, "type");
901     copyMetadataIfPresent(F, NewF, "kcfi_type");
902     removeUsers(F);
903     F->replaceAllUsesWith(NewF);
904 
905     // If G or NewF are (weak|linkonce)_odr, update all callers to call the
906     // thunk.
907     if (isODR(G))
908       replaceDirectCallers(G, F);
909     if (isODR(F))
910       replaceDirectCallers(NewF, F);
911 
912     // We collect alignment before writeThunkOrAliasIfNeeded that overwrites
913     // NewF and G's content.
914     const MaybeAlign NewFAlign = NewF->getAlign();
915     const MaybeAlign GAlign = G->getAlign();
916 
917     writeThunkOrAliasIfNeeded(F, G);
918     writeThunkOrAliasIfNeeded(F, NewF);
919 
920     if (NewFAlign || GAlign)
921       F->setAlignment(std::max(NewFAlign.valueOrOne(), GAlign.valueOrOne()));
922     else
923       F->setAlignment(std::nullopt);
924     F->setLinkage(GlobalValue::PrivateLinkage);
925     ++NumDoubleWeak;
926     ++NumFunctionsMerged;
927   } else {
928     // For better debugability, under MergeFunctionsPDI, we do not modify G's
929     // call sites to point to F even when within the same translation unit.
930     if (!G->isInterposable() && !MergeFunctionsPDI) {
931       // Functions referred to by llvm.used/llvm.compiler.used are special:
932       // there are uses of the symbol name that are not visible to LLVM,
933       // usually from inline asm.
934       if (G->hasGlobalUnnamedAddr() && !Used.contains(G)) {
935         // G might have been a key in our GlobalNumberState, and it's illegal
936         // to replace a key in ValueMap<GlobalValue *> with a non-global.
937         GlobalNumbers.erase(G);
938         // If G's address is not significant, replace it entirely.
939         removeUsers(G);
940         G->replaceAllUsesWith(F);
941       } else {
942         // Redirect direct callers of G to F. (See note on MergeFunctionsPDI
943         // above).
944         replaceDirectCallers(G, F);
945       }
946     }
947 
948     // If G was internal then we may have replaced all uses of G with F. If so,
949     // stop here and delete G. There's no need for a thunk. (See note on
950     // MergeFunctionsPDI above).
951     if (G->isDiscardableIfUnused() && G->use_empty() && !MergeFunctionsPDI) {
952       G->eraseFromParent();
953       ++NumFunctionsMerged;
954       return;
955     }
956 
957     if (writeThunkOrAliasIfNeeded(F, G)) {
958       ++NumFunctionsMerged;
959     }
960   }
961 }
962 
963 /// Replace function F by function G.
964 void MergeFunctions::replaceFunctionInTree(const FunctionNode &FN,
965                                            Function *G) {
966   Function *F = FN.getFunc();
967   assert(FunctionComparator(F, G, &GlobalNumbers).compare() == 0 &&
968          "The two functions must be equal");
969 
970   auto I = FNodesInTree.find(F);
971   assert(I != FNodesInTree.end() && "F should be in FNodesInTree");
972   assert(FNodesInTree.count(G) == 0 && "FNodesInTree should not contain G");
973 
974   FnTreeType::iterator IterToFNInFnTree = I->second;
975   assert(&(*IterToFNInFnTree) == &FN && "F should map to FN in FNodesInTree.");
976   // Remove F -> FN and insert G -> FN
977   FNodesInTree.erase(I);
978   FNodesInTree.insert({G, IterToFNInFnTree});
979   // Replace F with G in FN, which is stored inside the FnTree.
980   FN.replaceBy(G);
981 }
982 
983 // Ordering for functions that are equal under FunctionComparator
984 static bool isFuncOrderCorrect(const Function *F, const Function *G) {
985   if (isODR(F) != isODR(G)) {
986     // ODR functions before non-ODR functions. A ODR function can call a non-ODR
987     // function if it is not interposable, but not the other way around.
988     return isODR(G);
989   }
990 
991   if (F->isInterposable() != G->isInterposable()) {
992     // Strong before weak, because the weak function may call the strong
993     // one, but not the other way around.
994     return !F->isInterposable();
995   }
996 
997   if (F->hasLocalLinkage() != G->hasLocalLinkage()) {
998     // External before local, because we definitely have to keep the external
999     // function, but may be able to drop the local one.
1000     return !F->hasLocalLinkage();
1001   }
1002 
1003   // Impose a total order (by name) on the replacement of functions. This is
1004   // important when operating on more than one module independently to prevent
1005   // cycles of thunks calling each other when the modules are linked together.
1006   return F->getName() <= G->getName();
1007 }
1008 
1009 // Insert a ComparableFunction into the FnTree, or merge it away if equal to one
1010 // that was already inserted.
1011 bool MergeFunctions::insert(Function *NewFunction) {
1012   std::pair<FnTreeType::iterator, bool> Result =
1013       FnTree.insert(FunctionNode(NewFunction));
1014 
1015   if (Result.second) {
1016     assert(FNodesInTree.count(NewFunction) == 0);
1017     FNodesInTree.insert({NewFunction, Result.first});
1018     LLVM_DEBUG(dbgs() << "Inserting as unique: " << NewFunction->getName()
1019                       << '\n');
1020     return false;
1021   }
1022 
1023   const FunctionNode &OldF = *Result.first;
1024 
1025   if (!isFuncOrderCorrect(OldF.getFunc(), NewFunction)) {
1026     // Swap the two functions.
1027     Function *F = OldF.getFunc();
1028     replaceFunctionInTree(*Result.first, NewFunction);
1029     NewFunction = F;
1030     assert(OldF.getFunc() != F && "Must have swapped the functions.");
1031   }
1032 
1033   LLVM_DEBUG(dbgs() << "  " << OldF.getFunc()->getName()
1034                     << " == " << NewFunction->getName() << '\n');
1035 
1036   Function *DeleteF = NewFunction;
1037   mergeTwoFunctions(OldF.getFunc(), DeleteF);
1038   this->DelToNewMap.insert({DeleteF, OldF.getFunc()});
1039   return true;
1040 }
1041 
1042 // Remove a function from FnTree. If it was already in FnTree, add
1043 // it to Deferred so that we'll look at it in the next round.
1044 void MergeFunctions::remove(Function *F) {
1045   auto I = FNodesInTree.find(F);
1046   if (I != FNodesInTree.end()) {
1047     LLVM_DEBUG(dbgs() << "Deferred " << F->getName() << ".\n");
1048     FnTree.erase(I->second);
1049     // I->second has been invalidated, remove it from the FNodesInTree map to
1050     // preserve the invariant.
1051     FNodesInTree.erase(I);
1052     Deferred.emplace_back(F);
1053   }
1054 }
1055 
1056 // For each instruction used by the value, remove() the function that contains
1057 // the instruction. This should happen right before a call to RAUW.
1058 void MergeFunctions::removeUsers(Value *V) {
1059   for (User *U : V->users())
1060     if (auto *I = dyn_cast<Instruction>(U))
1061       remove(I->getFunction());
1062 }
1063