1 //===- WholeProgramDevirt.cpp - Whole program virtual call optimization ---===//
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 implements whole program optimization of virtual calls in cases
10 // where we know (via !type metadata) that the list of callees is fixed. This
11 // includes the following:
12 // - Single implementation devirtualization: if a virtual call has a single
13 //   possible callee, replace all calls with a direct call to that callee.
14 // - Virtual constant propagation: if the virtual function's return type is an
15 //   integer <=64 bits and all possible callees are readnone, for each class and
16 //   each list of constant arguments: evaluate the function, store the return
17 //   value alongside the virtual table, and rewrite each virtual call as a load
18 //   from the virtual table.
19 // - Uniform return value optimization: if the conditions for virtual constant
20 //   propagation hold and each function returns the same constant value, replace
21 //   each virtual call with that constant.
22 // - Unique return value optimization for i1 return values: if the conditions
23 //   for virtual constant propagation hold and a single vtable's function
24 //   returns 0, or a single vtable's function returns 1, replace each virtual
25 //   call with a comparison of the vptr against that vtable's address.
26 //
27 // This pass is intended to be used during the regular and thin LTO pipelines:
28 //
29 // During regular LTO, the pass determines the best optimization for each
30 // virtual call and applies the resolutions directly to virtual calls that are
31 // eligible for virtual call optimization (i.e. calls that use either of the
32 // llvm.assume(llvm.type.test) or llvm.type.checked.load intrinsics).
33 //
34 // During hybrid Regular/ThinLTO, the pass operates in two phases:
35 // - Export phase: this is run during the thin link over a single merged module
36 //   that contains all vtables with !type metadata that participate in the link.
37 //   The pass computes a resolution for each virtual call and stores it in the
38 //   type identifier summary.
39 // - Import phase: this is run during the thin backends over the individual
40 //   modules. The pass applies the resolutions previously computed during the
41 //   import phase to each eligible virtual call.
42 //
43 // During ThinLTO, the pass operates in two phases:
44 // - Export phase: this is run during the thin link over the index which
45 //   contains a summary of all vtables with !type metadata that participate in
46 //   the link. It computes a resolution for each virtual call and stores it in
47 //   the type identifier summary. Only single implementation devirtualization
48 //   is supported.
49 // - Import phase: (same as with hybrid case above).
50 //
51 //===----------------------------------------------------------------------===//
52 
53 #include "llvm/Transforms/IPO/WholeProgramDevirt.h"
54 #include "llvm/ADT/ArrayRef.h"
55 #include "llvm/ADT/DenseMap.h"
56 #include "llvm/ADT/DenseMapInfo.h"
57 #include "llvm/ADT/DenseSet.h"
58 #include "llvm/ADT/MapVector.h"
59 #include "llvm/ADT/SmallVector.h"
60 #include "llvm/ADT/Triple.h"
61 #include "llvm/ADT/iterator_range.h"
62 #include "llvm/Analysis/AliasAnalysis.h"
63 #include "llvm/Analysis/BasicAliasAnalysis.h"
64 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
65 #include "llvm/Analysis/TypeMetadataUtils.h"
66 #include "llvm/Bitcode/BitcodeReader.h"
67 #include "llvm/Bitcode/BitcodeWriter.h"
68 #include "llvm/IR/Constants.h"
69 #include "llvm/IR/DataLayout.h"
70 #include "llvm/IR/DebugLoc.h"
71 #include "llvm/IR/DerivedTypes.h"
72 #include "llvm/IR/Dominators.h"
73 #include "llvm/IR/Function.h"
74 #include "llvm/IR/GlobalAlias.h"
75 #include "llvm/IR/GlobalVariable.h"
76 #include "llvm/IR/IRBuilder.h"
77 #include "llvm/IR/InstrTypes.h"
78 #include "llvm/IR/Instruction.h"
79 #include "llvm/IR/Instructions.h"
80 #include "llvm/IR/Intrinsics.h"
81 #include "llvm/IR/LLVMContext.h"
82 #include "llvm/IR/Metadata.h"
83 #include "llvm/IR/Module.h"
84 #include "llvm/IR/ModuleSummaryIndexYAML.h"
85 #include "llvm/InitializePasses.h"
86 #include "llvm/Pass.h"
87 #include "llvm/PassRegistry.h"
88 #include "llvm/Support/Casting.h"
89 #include "llvm/Support/CommandLine.h"
90 #include "llvm/Support/Errc.h"
91 #include "llvm/Support/Error.h"
92 #include "llvm/Support/FileSystem.h"
93 #include "llvm/Support/GlobPattern.h"
94 #include "llvm/Support/MathExtras.h"
95 #include "llvm/Transforms/IPO.h"
96 #include "llvm/Transforms/IPO/FunctionAttrs.h"
97 #include "llvm/Transforms/Utils/Evaluator.h"
98 #include <algorithm>
99 #include <cstddef>
100 #include <map>
101 #include <set>
102 #include <string>
103 
104 using namespace llvm;
105 using namespace wholeprogramdevirt;
106 
107 #define DEBUG_TYPE "wholeprogramdevirt"
108 
109 static cl::opt<PassSummaryAction> ClSummaryAction(
110     "wholeprogramdevirt-summary-action",
111     cl::desc("What to do with the summary when running this pass"),
112     cl::values(clEnumValN(PassSummaryAction::None, "none", "Do nothing"),
113                clEnumValN(PassSummaryAction::Import, "import",
114                           "Import typeid resolutions from summary and globals"),
115                clEnumValN(PassSummaryAction::Export, "export",
116                           "Export typeid resolutions to summary and globals")),
117     cl::Hidden);
118 
119 static cl::opt<std::string> ClReadSummary(
120     "wholeprogramdevirt-read-summary",
121     cl::desc(
122         "Read summary from given bitcode or YAML file before running pass"),
123     cl::Hidden);
124 
125 static cl::opt<std::string> ClWriteSummary(
126     "wholeprogramdevirt-write-summary",
127     cl::desc("Write summary to given bitcode or YAML file after running pass. "
128              "Output file format is deduced from extension: *.bc means writing "
129              "bitcode, otherwise YAML"),
130     cl::Hidden);
131 
132 static cl::opt<unsigned>
133     ClThreshold("wholeprogramdevirt-branch-funnel-threshold", cl::Hidden,
134                 cl::init(10), cl::ZeroOrMore,
135                 cl::desc("Maximum number of call targets per "
136                          "call site to enable branch funnels"));
137 
138 static cl::opt<bool>
139     PrintSummaryDevirt("wholeprogramdevirt-print-index-based", cl::Hidden,
140                        cl::init(false), cl::ZeroOrMore,
141                        cl::desc("Print index-based devirtualization messages"));
142 
143 /// Provide a way to force enable whole program visibility in tests.
144 /// This is needed to support legacy tests that don't contain
145 /// !vcall_visibility metadata (the mere presense of type tests
146 /// previously implied hidden visibility).
147 cl::opt<bool>
148     WholeProgramVisibility("whole-program-visibility", cl::init(false),
149                            cl::Hidden, cl::ZeroOrMore,
150                            cl::desc("Enable whole program visibility"));
151 
152 /// Provide a way to force disable whole program for debugging or workarounds,
153 /// when enabled via the linker.
154 cl::opt<bool> DisableWholeProgramVisibility(
155     "disable-whole-program-visibility", cl::init(false), cl::Hidden,
156     cl::ZeroOrMore,
157     cl::desc("Disable whole program visibility (overrides enabling options)"));
158 
159 /// Provide way to prevent certain function from being devirtualized
160 cl::list<std::string>
161     SkipFunctionNames("wholeprogramdevirt-skip",
162                       cl::desc("Prevent function(s) from being devirtualized"),
163                       cl::Hidden, cl::ZeroOrMore, cl::CommaSeparated);
164 
165 namespace {
166 struct PatternList {
167   std::vector<GlobPattern> Patterns;
168   template <class T> void init(const T &StringList) {
169     for (const auto &S : StringList)
170       if (Expected<GlobPattern> Pat = GlobPattern::create(S))
171         Patterns.push_back(std::move(*Pat));
172   }
173   bool match(StringRef S) {
174     for (const GlobPattern &P : Patterns)
175       if (P.match(S))
176         return true;
177     return false;
178   }
179 };
180 } // namespace
181 
182 // Find the minimum offset that we may store a value of size Size bits at. If
183 // IsAfter is set, look for an offset before the object, otherwise look for an
184 // offset after the object.
185 uint64_t
186 wholeprogramdevirt::findLowestOffset(ArrayRef<VirtualCallTarget> Targets,
187                                      bool IsAfter, uint64_t Size) {
188   // Find a minimum offset taking into account only vtable sizes.
189   uint64_t MinByte = 0;
190   for (const VirtualCallTarget &Target : Targets) {
191     if (IsAfter)
192       MinByte = std::max(MinByte, Target.minAfterBytes());
193     else
194       MinByte = std::max(MinByte, Target.minBeforeBytes());
195   }
196 
197   // Build a vector of arrays of bytes covering, for each target, a slice of the
198   // used region (see AccumBitVector::BytesUsed in
199   // llvm/Transforms/IPO/WholeProgramDevirt.h) starting at MinByte. Effectively,
200   // this aligns the used regions to start at MinByte.
201   //
202   // In this example, A, B and C are vtables, # is a byte already allocated for
203   // a virtual function pointer, AAAA... (etc.) are the used regions for the
204   // vtables and Offset(X) is the value computed for the Offset variable below
205   // for X.
206   //
207   //                    Offset(A)
208   //                    |       |
209   //                            |MinByte
210   // A: ################AAAAAAAA|AAAAAAAA
211   // B: ########BBBBBBBBBBBBBBBB|BBBB
212   // C: ########################|CCCCCCCCCCCCCCCC
213   //            |   Offset(B)   |
214   //
215   // This code produces the slices of A, B and C that appear after the divider
216   // at MinByte.
217   std::vector<ArrayRef<uint8_t>> Used;
218   for (const VirtualCallTarget &Target : Targets) {
219     ArrayRef<uint8_t> VTUsed = IsAfter ? Target.TM->Bits->After.BytesUsed
220                                        : Target.TM->Bits->Before.BytesUsed;
221     uint64_t Offset = IsAfter ? MinByte - Target.minAfterBytes()
222                               : MinByte - Target.minBeforeBytes();
223 
224     // Disregard used regions that are smaller than Offset. These are
225     // effectively all-free regions that do not need to be checked.
226     if (VTUsed.size() > Offset)
227       Used.push_back(VTUsed.slice(Offset));
228   }
229 
230   if (Size == 1) {
231     // Find a free bit in each member of Used.
232     for (unsigned I = 0;; ++I) {
233       uint8_t BitsUsed = 0;
234       for (auto &&B : Used)
235         if (I < B.size())
236           BitsUsed |= B[I];
237       if (BitsUsed != 0xff)
238         return (MinByte + I) * 8 +
239                countTrailingZeros(uint8_t(~BitsUsed), ZB_Undefined);
240     }
241   } else {
242     // Find a free (Size/8) byte region in each member of Used.
243     // FIXME: see if alignment helps.
244     for (unsigned I = 0;; ++I) {
245       for (auto &&B : Used) {
246         unsigned Byte = 0;
247         while ((I + Byte) < B.size() && Byte < (Size / 8)) {
248           if (B[I + Byte])
249             goto NextI;
250           ++Byte;
251         }
252       }
253       return (MinByte + I) * 8;
254     NextI:;
255     }
256   }
257 }
258 
259 void wholeprogramdevirt::setBeforeReturnValues(
260     MutableArrayRef<VirtualCallTarget> Targets, uint64_t AllocBefore,
261     unsigned BitWidth, int64_t &OffsetByte, uint64_t &OffsetBit) {
262   if (BitWidth == 1)
263     OffsetByte = -(AllocBefore / 8 + 1);
264   else
265     OffsetByte = -((AllocBefore + 7) / 8 + (BitWidth + 7) / 8);
266   OffsetBit = AllocBefore % 8;
267 
268   for (VirtualCallTarget &Target : Targets) {
269     if (BitWidth == 1)
270       Target.setBeforeBit(AllocBefore);
271     else
272       Target.setBeforeBytes(AllocBefore, (BitWidth + 7) / 8);
273   }
274 }
275 
276 void wholeprogramdevirt::setAfterReturnValues(
277     MutableArrayRef<VirtualCallTarget> Targets, uint64_t AllocAfter,
278     unsigned BitWidth, int64_t &OffsetByte, uint64_t &OffsetBit) {
279   if (BitWidth == 1)
280     OffsetByte = AllocAfter / 8;
281   else
282     OffsetByte = (AllocAfter + 7) / 8;
283   OffsetBit = AllocAfter % 8;
284 
285   for (VirtualCallTarget &Target : Targets) {
286     if (BitWidth == 1)
287       Target.setAfterBit(AllocAfter);
288     else
289       Target.setAfterBytes(AllocAfter, (BitWidth + 7) / 8);
290   }
291 }
292 
293 VirtualCallTarget::VirtualCallTarget(Function *Fn, const TypeMemberInfo *TM)
294     : Fn(Fn), TM(TM),
295       IsBigEndian(Fn->getParent()->getDataLayout().isBigEndian()), WasDevirt(false) {}
296 
297 namespace {
298 
299 // A slot in a set of virtual tables. The TypeID identifies the set of virtual
300 // tables, and the ByteOffset is the offset in bytes from the address point to
301 // the virtual function pointer.
302 struct VTableSlot {
303   Metadata *TypeID;
304   uint64_t ByteOffset;
305 };
306 
307 } // end anonymous namespace
308 
309 namespace llvm {
310 
311 template <> struct DenseMapInfo<VTableSlot> {
312   static VTableSlot getEmptyKey() {
313     return {DenseMapInfo<Metadata *>::getEmptyKey(),
314             DenseMapInfo<uint64_t>::getEmptyKey()};
315   }
316   static VTableSlot getTombstoneKey() {
317     return {DenseMapInfo<Metadata *>::getTombstoneKey(),
318             DenseMapInfo<uint64_t>::getTombstoneKey()};
319   }
320   static unsigned getHashValue(const VTableSlot &I) {
321     return DenseMapInfo<Metadata *>::getHashValue(I.TypeID) ^
322            DenseMapInfo<uint64_t>::getHashValue(I.ByteOffset);
323   }
324   static bool isEqual(const VTableSlot &LHS,
325                       const VTableSlot &RHS) {
326     return LHS.TypeID == RHS.TypeID && LHS.ByteOffset == RHS.ByteOffset;
327   }
328 };
329 
330 template <> struct DenseMapInfo<VTableSlotSummary> {
331   static VTableSlotSummary getEmptyKey() {
332     return {DenseMapInfo<StringRef>::getEmptyKey(),
333             DenseMapInfo<uint64_t>::getEmptyKey()};
334   }
335   static VTableSlotSummary getTombstoneKey() {
336     return {DenseMapInfo<StringRef>::getTombstoneKey(),
337             DenseMapInfo<uint64_t>::getTombstoneKey()};
338   }
339   static unsigned getHashValue(const VTableSlotSummary &I) {
340     return DenseMapInfo<StringRef>::getHashValue(I.TypeID) ^
341            DenseMapInfo<uint64_t>::getHashValue(I.ByteOffset);
342   }
343   static bool isEqual(const VTableSlotSummary &LHS,
344                       const VTableSlotSummary &RHS) {
345     return LHS.TypeID == RHS.TypeID && LHS.ByteOffset == RHS.ByteOffset;
346   }
347 };
348 
349 } // end namespace llvm
350 
351 namespace {
352 
353 // A virtual call site. VTable is the loaded virtual table pointer, and CS is
354 // the indirect virtual call.
355 struct VirtualCallSite {
356   Value *VTable = nullptr;
357   CallBase &CB;
358 
359   // If non-null, this field points to the associated unsafe use count stored in
360   // the DevirtModule::NumUnsafeUsesForTypeTest map below. See the description
361   // of that field for details.
362   unsigned *NumUnsafeUses = nullptr;
363 
364   void
365   emitRemark(const StringRef OptName, const StringRef TargetName,
366              function_ref<OptimizationRemarkEmitter &(Function *)> OREGetter) {
367     Function *F = CB.getCaller();
368     DebugLoc DLoc = CB.getDebugLoc();
369     BasicBlock *Block = CB.getParent();
370 
371     using namespace ore;
372     OREGetter(F).emit(OptimizationRemark(DEBUG_TYPE, OptName, DLoc, Block)
373                       << NV("Optimization", OptName)
374                       << ": devirtualized a call to "
375                       << NV("FunctionName", TargetName));
376   }
377 
378   void replaceAndErase(
379       const StringRef OptName, const StringRef TargetName, bool RemarksEnabled,
380       function_ref<OptimizationRemarkEmitter &(Function *)> OREGetter,
381       Value *New) {
382     if (RemarksEnabled)
383       emitRemark(OptName, TargetName, OREGetter);
384     CB.replaceAllUsesWith(New);
385     if (auto *II = dyn_cast<InvokeInst>(&CB)) {
386       BranchInst::Create(II->getNormalDest(), &CB);
387       II->getUnwindDest()->removePredecessor(II->getParent());
388     }
389     CB.eraseFromParent();
390     // This use is no longer unsafe.
391     if (NumUnsafeUses)
392       --*NumUnsafeUses;
393   }
394 };
395 
396 // Call site information collected for a specific VTableSlot and possibly a list
397 // of constant integer arguments. The grouping by arguments is handled by the
398 // VTableSlotInfo class.
399 struct CallSiteInfo {
400   /// The set of call sites for this slot. Used during regular LTO and the
401   /// import phase of ThinLTO (as well as the export phase of ThinLTO for any
402   /// call sites that appear in the merged module itself); in each of these
403   /// cases we are directly operating on the call sites at the IR level.
404   std::vector<VirtualCallSite> CallSites;
405 
406   /// Whether all call sites represented by this CallSiteInfo, including those
407   /// in summaries, have been devirtualized. This starts off as true because a
408   /// default constructed CallSiteInfo represents no call sites.
409   bool AllCallSitesDevirted = true;
410 
411   // These fields are used during the export phase of ThinLTO and reflect
412   // information collected from function summaries.
413 
414   /// Whether any function summary contains an llvm.assume(llvm.type.test) for
415   /// this slot.
416   bool SummaryHasTypeTestAssumeUsers = false;
417 
418   /// CFI-specific: a vector containing the list of function summaries that use
419   /// the llvm.type.checked.load intrinsic and therefore will require
420   /// resolutions for llvm.type.test in order to implement CFI checks if
421   /// devirtualization was unsuccessful. If devirtualization was successful, the
422   /// pass will clear this vector by calling markDevirt(). If at the end of the
423   /// pass the vector is non-empty, we will need to add a use of llvm.type.test
424   /// to each of the function summaries in the vector.
425   std::vector<FunctionSummary *> SummaryTypeCheckedLoadUsers;
426   std::vector<FunctionSummary *> SummaryTypeTestAssumeUsers;
427 
428   bool isExported() const {
429     return SummaryHasTypeTestAssumeUsers ||
430            !SummaryTypeCheckedLoadUsers.empty();
431   }
432 
433   void addSummaryTypeCheckedLoadUser(FunctionSummary *FS) {
434     SummaryTypeCheckedLoadUsers.push_back(FS);
435     AllCallSitesDevirted = false;
436   }
437 
438   void addSummaryTypeTestAssumeUser(FunctionSummary *FS) {
439     SummaryTypeTestAssumeUsers.push_back(FS);
440     SummaryHasTypeTestAssumeUsers = true;
441     AllCallSitesDevirted = false;
442   }
443 
444   void markDevirt() {
445     AllCallSitesDevirted = true;
446 
447     // As explained in the comment for SummaryTypeCheckedLoadUsers.
448     SummaryTypeCheckedLoadUsers.clear();
449   }
450 };
451 
452 // Call site information collected for a specific VTableSlot.
453 struct VTableSlotInfo {
454   // The set of call sites which do not have all constant integer arguments
455   // (excluding "this").
456   CallSiteInfo CSInfo;
457 
458   // The set of call sites with all constant integer arguments (excluding
459   // "this"), grouped by argument list.
460   std::map<std::vector<uint64_t>, CallSiteInfo> ConstCSInfo;
461 
462   void addCallSite(Value *VTable, CallBase &CB, unsigned *NumUnsafeUses);
463 
464 private:
465   CallSiteInfo &findCallSiteInfo(CallBase &CB);
466 };
467 
468 CallSiteInfo &VTableSlotInfo::findCallSiteInfo(CallBase &CB) {
469   std::vector<uint64_t> Args;
470   auto *CBType = dyn_cast<IntegerType>(CB.getType());
471   if (!CBType || CBType->getBitWidth() > 64 || CB.arg_empty())
472     return CSInfo;
473   for (auto &&Arg : make_range(CB.arg_begin() + 1, CB.arg_end())) {
474     auto *CI = dyn_cast<ConstantInt>(Arg);
475     if (!CI || CI->getBitWidth() > 64)
476       return CSInfo;
477     Args.push_back(CI->getZExtValue());
478   }
479   return ConstCSInfo[Args];
480 }
481 
482 void VTableSlotInfo::addCallSite(Value *VTable, CallBase &CB,
483                                  unsigned *NumUnsafeUses) {
484   auto &CSI = findCallSiteInfo(CB);
485   CSI.AllCallSitesDevirted = false;
486   CSI.CallSites.push_back({VTable, CB, NumUnsafeUses});
487 }
488 
489 struct DevirtModule {
490   Module &M;
491   function_ref<AAResults &(Function &)> AARGetter;
492   function_ref<DominatorTree &(Function &)> LookupDomTree;
493 
494   ModuleSummaryIndex *ExportSummary;
495   const ModuleSummaryIndex *ImportSummary;
496 
497   IntegerType *Int8Ty;
498   PointerType *Int8PtrTy;
499   IntegerType *Int32Ty;
500   IntegerType *Int64Ty;
501   IntegerType *IntPtrTy;
502   /// Sizeless array type, used for imported vtables. This provides a signal
503   /// to analyzers that these imports may alias, as they do for example
504   /// when multiple unique return values occur in the same vtable.
505   ArrayType *Int8Arr0Ty;
506 
507   bool RemarksEnabled;
508   function_ref<OptimizationRemarkEmitter &(Function *)> OREGetter;
509 
510   MapVector<VTableSlot, VTableSlotInfo> CallSlots;
511 
512   // This map keeps track of the number of "unsafe" uses of a loaded function
513   // pointer. The key is the associated llvm.type.test intrinsic call generated
514   // by this pass. An unsafe use is one that calls the loaded function pointer
515   // directly. Every time we eliminate an unsafe use (for example, by
516   // devirtualizing it or by applying virtual constant propagation), we
517   // decrement the value stored in this map. If a value reaches zero, we can
518   // eliminate the type check by RAUWing the associated llvm.type.test call with
519   // true.
520   std::map<CallInst *, unsigned> NumUnsafeUsesForTypeTest;
521   PatternList FunctionsToSkip;
522 
523   DevirtModule(Module &M, function_ref<AAResults &(Function &)> AARGetter,
524                function_ref<OptimizationRemarkEmitter &(Function *)> OREGetter,
525                function_ref<DominatorTree &(Function &)> LookupDomTree,
526                ModuleSummaryIndex *ExportSummary,
527                const ModuleSummaryIndex *ImportSummary)
528       : M(M), AARGetter(AARGetter), LookupDomTree(LookupDomTree),
529         ExportSummary(ExportSummary), ImportSummary(ImportSummary),
530         Int8Ty(Type::getInt8Ty(M.getContext())),
531         Int8PtrTy(Type::getInt8PtrTy(M.getContext())),
532         Int32Ty(Type::getInt32Ty(M.getContext())),
533         Int64Ty(Type::getInt64Ty(M.getContext())),
534         IntPtrTy(M.getDataLayout().getIntPtrType(M.getContext(), 0)),
535         Int8Arr0Ty(ArrayType::get(Type::getInt8Ty(M.getContext()), 0)),
536         RemarksEnabled(areRemarksEnabled()), OREGetter(OREGetter) {
537     assert(!(ExportSummary && ImportSummary));
538     FunctionsToSkip.init(SkipFunctionNames);
539   }
540 
541   bool areRemarksEnabled();
542 
543   void
544   scanTypeTestUsers(Function *TypeTestFunc,
545                     DenseMap<Metadata *, std::set<TypeMemberInfo>> &TypeIdMap);
546   void scanTypeCheckedLoadUsers(Function *TypeCheckedLoadFunc);
547 
548   void buildTypeIdentifierMap(
549       std::vector<VTableBits> &Bits,
550       DenseMap<Metadata *, std::set<TypeMemberInfo>> &TypeIdMap);
551   bool
552   tryFindVirtualCallTargets(std::vector<VirtualCallTarget> &TargetsForSlot,
553                             const std::set<TypeMemberInfo> &TypeMemberInfos,
554                             uint64_t ByteOffset);
555 
556   void applySingleImplDevirt(VTableSlotInfo &SlotInfo, Constant *TheFn,
557                              bool &IsExported);
558   bool trySingleImplDevirt(ModuleSummaryIndex *ExportSummary,
559                            MutableArrayRef<VirtualCallTarget> TargetsForSlot,
560                            VTableSlotInfo &SlotInfo,
561                            WholeProgramDevirtResolution *Res);
562 
563   void applyICallBranchFunnel(VTableSlotInfo &SlotInfo, Constant *JT,
564                               bool &IsExported);
565   void tryICallBranchFunnel(MutableArrayRef<VirtualCallTarget> TargetsForSlot,
566                             VTableSlotInfo &SlotInfo,
567                             WholeProgramDevirtResolution *Res, VTableSlot Slot);
568 
569   bool tryEvaluateFunctionsWithArgs(
570       MutableArrayRef<VirtualCallTarget> TargetsForSlot,
571       ArrayRef<uint64_t> Args);
572 
573   void applyUniformRetValOpt(CallSiteInfo &CSInfo, StringRef FnName,
574                              uint64_t TheRetVal);
575   bool tryUniformRetValOpt(MutableArrayRef<VirtualCallTarget> TargetsForSlot,
576                            CallSiteInfo &CSInfo,
577                            WholeProgramDevirtResolution::ByArg *Res);
578 
579   // Returns the global symbol name that is used to export information about the
580   // given vtable slot and list of arguments.
581   std::string getGlobalName(VTableSlot Slot, ArrayRef<uint64_t> Args,
582                             StringRef Name);
583 
584   bool shouldExportConstantsAsAbsoluteSymbols();
585 
586   // This function is called during the export phase to create a symbol
587   // definition containing information about the given vtable slot and list of
588   // arguments.
589   void exportGlobal(VTableSlot Slot, ArrayRef<uint64_t> Args, StringRef Name,
590                     Constant *C);
591   void exportConstant(VTableSlot Slot, ArrayRef<uint64_t> Args, StringRef Name,
592                       uint32_t Const, uint32_t &Storage);
593 
594   // This function is called during the import phase to create a reference to
595   // the symbol definition created during the export phase.
596   Constant *importGlobal(VTableSlot Slot, ArrayRef<uint64_t> Args,
597                          StringRef Name);
598   Constant *importConstant(VTableSlot Slot, ArrayRef<uint64_t> Args,
599                            StringRef Name, IntegerType *IntTy,
600                            uint32_t Storage);
601 
602   Constant *getMemberAddr(const TypeMemberInfo *M);
603 
604   void applyUniqueRetValOpt(CallSiteInfo &CSInfo, StringRef FnName, bool IsOne,
605                             Constant *UniqueMemberAddr);
606   bool tryUniqueRetValOpt(unsigned BitWidth,
607                           MutableArrayRef<VirtualCallTarget> TargetsForSlot,
608                           CallSiteInfo &CSInfo,
609                           WholeProgramDevirtResolution::ByArg *Res,
610                           VTableSlot Slot, ArrayRef<uint64_t> Args);
611 
612   void applyVirtualConstProp(CallSiteInfo &CSInfo, StringRef FnName,
613                              Constant *Byte, Constant *Bit);
614   bool tryVirtualConstProp(MutableArrayRef<VirtualCallTarget> TargetsForSlot,
615                            VTableSlotInfo &SlotInfo,
616                            WholeProgramDevirtResolution *Res, VTableSlot Slot);
617 
618   void rebuildGlobal(VTableBits &B);
619 
620   // Apply the summary resolution for Slot to all virtual calls in SlotInfo.
621   void importResolution(VTableSlot Slot, VTableSlotInfo &SlotInfo);
622 
623   // If we were able to eliminate all unsafe uses for a type checked load,
624   // eliminate the associated type tests by replacing them with true.
625   void removeRedundantTypeTests();
626 
627   bool run();
628 
629   // Lower the module using the action and summary passed as command line
630   // arguments. For testing purposes only.
631   static bool
632   runForTesting(Module &M, function_ref<AAResults &(Function &)> AARGetter,
633                 function_ref<OptimizationRemarkEmitter &(Function *)> OREGetter,
634                 function_ref<DominatorTree &(Function &)> LookupDomTree);
635 };
636 
637 struct DevirtIndex {
638   ModuleSummaryIndex &ExportSummary;
639   // The set in which to record GUIDs exported from their module by
640   // devirtualization, used by client to ensure they are not internalized.
641   std::set<GlobalValue::GUID> &ExportedGUIDs;
642   // A map in which to record the information necessary to locate the WPD
643   // resolution for local targets in case they are exported by cross module
644   // importing.
645   std::map<ValueInfo, std::vector<VTableSlotSummary>> &LocalWPDTargetsMap;
646 
647   MapVector<VTableSlotSummary, VTableSlotInfo> CallSlots;
648 
649   PatternList FunctionsToSkip;
650 
651   DevirtIndex(
652       ModuleSummaryIndex &ExportSummary,
653       std::set<GlobalValue::GUID> &ExportedGUIDs,
654       std::map<ValueInfo, std::vector<VTableSlotSummary>> &LocalWPDTargetsMap)
655       : ExportSummary(ExportSummary), ExportedGUIDs(ExportedGUIDs),
656         LocalWPDTargetsMap(LocalWPDTargetsMap) {
657     FunctionsToSkip.init(SkipFunctionNames);
658   }
659 
660   bool tryFindVirtualCallTargets(std::vector<ValueInfo> &TargetsForSlot,
661                                  const TypeIdCompatibleVtableInfo TIdInfo,
662                                  uint64_t ByteOffset);
663 
664   bool trySingleImplDevirt(MutableArrayRef<ValueInfo> TargetsForSlot,
665                            VTableSlotSummary &SlotSummary,
666                            VTableSlotInfo &SlotInfo,
667                            WholeProgramDevirtResolution *Res,
668                            std::set<ValueInfo> &DevirtTargets);
669 
670   void run();
671 };
672 
673 struct WholeProgramDevirt : public ModulePass {
674   static char ID;
675 
676   bool UseCommandLine = false;
677 
678   ModuleSummaryIndex *ExportSummary = nullptr;
679   const ModuleSummaryIndex *ImportSummary = nullptr;
680 
681   WholeProgramDevirt() : ModulePass(ID), UseCommandLine(true) {
682     initializeWholeProgramDevirtPass(*PassRegistry::getPassRegistry());
683   }
684 
685   WholeProgramDevirt(ModuleSummaryIndex *ExportSummary,
686                      const ModuleSummaryIndex *ImportSummary)
687       : ModulePass(ID), ExportSummary(ExportSummary),
688         ImportSummary(ImportSummary) {
689     initializeWholeProgramDevirtPass(*PassRegistry::getPassRegistry());
690   }
691 
692   bool runOnModule(Module &M) override {
693     if (skipModule(M))
694       return false;
695 
696     // In the new pass manager, we can request the optimization
697     // remark emitter pass on a per-function-basis, which the
698     // OREGetter will do for us.
699     // In the old pass manager, this is harder, so we just build
700     // an optimization remark emitter on the fly, when we need it.
701     std::unique_ptr<OptimizationRemarkEmitter> ORE;
702     auto OREGetter = [&](Function *F) -> OptimizationRemarkEmitter & {
703       ORE = std::make_unique<OptimizationRemarkEmitter>(F);
704       return *ORE;
705     };
706 
707     auto LookupDomTree = [this](Function &F) -> DominatorTree & {
708       return this->getAnalysis<DominatorTreeWrapperPass>(F).getDomTree();
709     };
710 
711     if (UseCommandLine)
712       return DevirtModule::runForTesting(M, LegacyAARGetter(*this), OREGetter,
713                                          LookupDomTree);
714 
715     return DevirtModule(M, LegacyAARGetter(*this), OREGetter, LookupDomTree,
716                         ExportSummary, ImportSummary)
717         .run();
718   }
719 
720   void getAnalysisUsage(AnalysisUsage &AU) const override {
721     AU.addRequired<AssumptionCacheTracker>();
722     AU.addRequired<TargetLibraryInfoWrapperPass>();
723     AU.addRequired<DominatorTreeWrapperPass>();
724   }
725 };
726 
727 } // end anonymous namespace
728 
729 INITIALIZE_PASS_BEGIN(WholeProgramDevirt, "wholeprogramdevirt",
730                       "Whole program devirtualization", false, false)
731 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker)
732 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
733 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
734 INITIALIZE_PASS_END(WholeProgramDevirt, "wholeprogramdevirt",
735                     "Whole program devirtualization", false, false)
736 char WholeProgramDevirt::ID = 0;
737 
738 ModulePass *
739 llvm::createWholeProgramDevirtPass(ModuleSummaryIndex *ExportSummary,
740                                    const ModuleSummaryIndex *ImportSummary) {
741   return new WholeProgramDevirt(ExportSummary, ImportSummary);
742 }
743 
744 PreservedAnalyses WholeProgramDevirtPass::run(Module &M,
745                                               ModuleAnalysisManager &AM) {
746   auto &FAM = AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
747   auto AARGetter = [&](Function &F) -> AAResults & {
748     return FAM.getResult<AAManager>(F);
749   };
750   auto OREGetter = [&](Function *F) -> OptimizationRemarkEmitter & {
751     return FAM.getResult<OptimizationRemarkEmitterAnalysis>(*F);
752   };
753   auto LookupDomTree = [&FAM](Function &F) -> DominatorTree & {
754     return FAM.getResult<DominatorTreeAnalysis>(F);
755   };
756   if (UseCommandLine) {
757     if (DevirtModule::runForTesting(M, AARGetter, OREGetter, LookupDomTree))
758       return PreservedAnalyses::all();
759     return PreservedAnalyses::none();
760   }
761   if (!DevirtModule(M, AARGetter, OREGetter, LookupDomTree, ExportSummary,
762                     ImportSummary)
763            .run())
764     return PreservedAnalyses::all();
765   return PreservedAnalyses::none();
766 }
767 
768 // Enable whole program visibility if enabled by client (e.g. linker) or
769 // internal option, and not force disabled.
770 static bool hasWholeProgramVisibility(bool WholeProgramVisibilityEnabledInLTO) {
771   return (WholeProgramVisibilityEnabledInLTO || WholeProgramVisibility) &&
772          !DisableWholeProgramVisibility;
773 }
774 
775 namespace llvm {
776 
777 /// If whole program visibility asserted, then upgrade all public vcall
778 /// visibility metadata on vtable definitions to linkage unit visibility in
779 /// Module IR (for regular or hybrid LTO).
780 void updateVCallVisibilityInModule(Module &M,
781                                    bool WholeProgramVisibilityEnabledInLTO) {
782   if (!hasWholeProgramVisibility(WholeProgramVisibilityEnabledInLTO))
783     return;
784   for (GlobalVariable &GV : M.globals())
785     // Add linkage unit visibility to any variable with type metadata, which are
786     // the vtable definitions. We won't have an existing vcall_visibility
787     // metadata on vtable definitions with public visibility.
788     if (GV.hasMetadata(LLVMContext::MD_type) &&
789         GV.getVCallVisibility() == GlobalObject::VCallVisibilityPublic)
790       GV.setVCallVisibilityMetadata(GlobalObject::VCallVisibilityLinkageUnit);
791 }
792 
793 /// If whole program visibility asserted, then upgrade all public vcall
794 /// visibility metadata on vtable definition summaries to linkage unit
795 /// visibility in Module summary index (for ThinLTO).
796 void updateVCallVisibilityInIndex(ModuleSummaryIndex &Index,
797                                   bool WholeProgramVisibilityEnabledInLTO) {
798   if (!hasWholeProgramVisibility(WholeProgramVisibilityEnabledInLTO))
799     return;
800   for (auto &P : Index) {
801     for (auto &S : P.second.SummaryList) {
802       auto *GVar = dyn_cast<GlobalVarSummary>(S.get());
803       if (!GVar || GVar->vTableFuncs().empty() ||
804           GVar->getVCallVisibility() != GlobalObject::VCallVisibilityPublic)
805         continue;
806       GVar->setVCallVisibility(GlobalObject::VCallVisibilityLinkageUnit);
807     }
808   }
809 }
810 
811 void runWholeProgramDevirtOnIndex(
812     ModuleSummaryIndex &Summary, std::set<GlobalValue::GUID> &ExportedGUIDs,
813     std::map<ValueInfo, std::vector<VTableSlotSummary>> &LocalWPDTargetsMap) {
814   DevirtIndex(Summary, ExportedGUIDs, LocalWPDTargetsMap).run();
815 }
816 
817 void updateIndexWPDForExports(
818     ModuleSummaryIndex &Summary,
819     function_ref<bool(StringRef, ValueInfo)> isExported,
820     std::map<ValueInfo, std::vector<VTableSlotSummary>> &LocalWPDTargetsMap) {
821   for (auto &T : LocalWPDTargetsMap) {
822     auto &VI = T.first;
823     // This was enforced earlier during trySingleImplDevirt.
824     assert(VI.getSummaryList().size() == 1 &&
825            "Devirt of local target has more than one copy");
826     auto &S = VI.getSummaryList()[0];
827     if (!isExported(S->modulePath(), VI))
828       continue;
829 
830     // It's been exported by a cross module import.
831     for (auto &SlotSummary : T.second) {
832       auto *TIdSum = Summary.getTypeIdSummary(SlotSummary.TypeID);
833       assert(TIdSum);
834       auto WPDRes = TIdSum->WPDRes.find(SlotSummary.ByteOffset);
835       assert(WPDRes != TIdSum->WPDRes.end());
836       WPDRes->second.SingleImplName = ModuleSummaryIndex::getGlobalNameForLocal(
837           WPDRes->second.SingleImplName,
838           Summary.getModuleHash(S->modulePath()));
839     }
840   }
841 }
842 
843 } // end namespace llvm
844 
845 static Error checkCombinedSummaryForTesting(ModuleSummaryIndex *Summary) {
846   // Check that summary index contains regular LTO module when performing
847   // export to prevent occasional use of index from pure ThinLTO compilation
848   // (-fno-split-lto-module). This kind of summary index is passed to
849   // DevirtIndex::run, not to DevirtModule::run used by opt/runForTesting.
850   const auto &ModPaths = Summary->modulePaths();
851   if (ClSummaryAction != PassSummaryAction::Import &&
852       ModPaths.find(ModuleSummaryIndex::getRegularLTOModuleName()) ==
853           ModPaths.end())
854     return createStringError(
855         errc::invalid_argument,
856         "combined summary should contain Regular LTO module");
857   return ErrorSuccess();
858 }
859 
860 bool DevirtModule::runForTesting(
861     Module &M, function_ref<AAResults &(Function &)> AARGetter,
862     function_ref<OptimizationRemarkEmitter &(Function *)> OREGetter,
863     function_ref<DominatorTree &(Function &)> LookupDomTree) {
864   std::unique_ptr<ModuleSummaryIndex> Summary =
865       std::make_unique<ModuleSummaryIndex>(/*HaveGVs=*/false);
866 
867   // Handle the command-line summary arguments. This code is for testing
868   // purposes only, so we handle errors directly.
869   if (!ClReadSummary.empty()) {
870     ExitOnError ExitOnErr("-wholeprogramdevirt-read-summary: " + ClReadSummary +
871                           ": ");
872     auto ReadSummaryFile =
873         ExitOnErr(errorOrToExpected(MemoryBuffer::getFile(ClReadSummary)));
874     if (Expected<std::unique_ptr<ModuleSummaryIndex>> SummaryOrErr =
875             getModuleSummaryIndex(*ReadSummaryFile)) {
876       Summary = std::move(*SummaryOrErr);
877       ExitOnErr(checkCombinedSummaryForTesting(Summary.get()));
878     } else {
879       // Try YAML if we've failed with bitcode.
880       consumeError(SummaryOrErr.takeError());
881       yaml::Input In(ReadSummaryFile->getBuffer());
882       In >> *Summary;
883       ExitOnErr(errorCodeToError(In.error()));
884     }
885   }
886 
887   bool Changed =
888       DevirtModule(M, AARGetter, OREGetter, LookupDomTree,
889                    ClSummaryAction == PassSummaryAction::Export ? Summary.get()
890                                                                 : nullptr,
891                    ClSummaryAction == PassSummaryAction::Import ? Summary.get()
892                                                                 : nullptr)
893           .run();
894 
895   if (!ClWriteSummary.empty()) {
896     ExitOnError ExitOnErr(
897         "-wholeprogramdevirt-write-summary: " + ClWriteSummary + ": ");
898     std::error_code EC;
899     if (StringRef(ClWriteSummary).endswith(".bc")) {
900       raw_fd_ostream OS(ClWriteSummary, EC, sys::fs::OF_None);
901       ExitOnErr(errorCodeToError(EC));
902       WriteIndexToFile(*Summary, OS);
903     } else {
904       raw_fd_ostream OS(ClWriteSummary, EC, sys::fs::OF_Text);
905       ExitOnErr(errorCodeToError(EC));
906       yaml::Output Out(OS);
907       Out << *Summary;
908     }
909   }
910 
911   return Changed;
912 }
913 
914 void DevirtModule::buildTypeIdentifierMap(
915     std::vector<VTableBits> &Bits,
916     DenseMap<Metadata *, std::set<TypeMemberInfo>> &TypeIdMap) {
917   DenseMap<GlobalVariable *, VTableBits *> GVToBits;
918   Bits.reserve(M.getGlobalList().size());
919   SmallVector<MDNode *, 2> Types;
920   for (GlobalVariable &GV : M.globals()) {
921     Types.clear();
922     GV.getMetadata(LLVMContext::MD_type, Types);
923     if (GV.isDeclaration() || Types.empty())
924       continue;
925 
926     VTableBits *&BitsPtr = GVToBits[&GV];
927     if (!BitsPtr) {
928       Bits.emplace_back();
929       Bits.back().GV = &GV;
930       Bits.back().ObjectSize =
931           M.getDataLayout().getTypeAllocSize(GV.getInitializer()->getType());
932       BitsPtr = &Bits.back();
933     }
934 
935     for (MDNode *Type : Types) {
936       auto TypeID = Type->getOperand(1).get();
937 
938       uint64_t Offset =
939           cast<ConstantInt>(
940               cast<ConstantAsMetadata>(Type->getOperand(0))->getValue())
941               ->getZExtValue();
942 
943       TypeIdMap[TypeID].insert({BitsPtr, Offset});
944     }
945   }
946 }
947 
948 bool DevirtModule::tryFindVirtualCallTargets(
949     std::vector<VirtualCallTarget> &TargetsForSlot,
950     const std::set<TypeMemberInfo> &TypeMemberInfos, uint64_t ByteOffset) {
951   for (const TypeMemberInfo &TM : TypeMemberInfos) {
952     if (!TM.Bits->GV->isConstant())
953       return false;
954 
955     // We cannot perform whole program devirtualization analysis on a vtable
956     // with public LTO visibility.
957     if (TM.Bits->GV->getVCallVisibility() ==
958         GlobalObject::VCallVisibilityPublic)
959       return false;
960 
961     Constant *Ptr = getPointerAtOffset(TM.Bits->GV->getInitializer(),
962                                        TM.Offset + ByteOffset, M);
963     if (!Ptr)
964       return false;
965 
966     auto Fn = dyn_cast<Function>(Ptr->stripPointerCasts());
967     if (!Fn)
968       return false;
969 
970     if (FunctionsToSkip.match(Fn->getName()))
971       return false;
972 
973     // We can disregard __cxa_pure_virtual as a possible call target, as
974     // calls to pure virtuals are UB.
975     if (Fn->getName() == "__cxa_pure_virtual")
976       continue;
977 
978     TargetsForSlot.push_back({Fn, &TM});
979   }
980 
981   // Give up if we couldn't find any targets.
982   return !TargetsForSlot.empty();
983 }
984 
985 bool DevirtIndex::tryFindVirtualCallTargets(
986     std::vector<ValueInfo> &TargetsForSlot, const TypeIdCompatibleVtableInfo TIdInfo,
987     uint64_t ByteOffset) {
988   for (const TypeIdOffsetVtableInfo &P : TIdInfo) {
989     // Find the first non-available_externally linkage vtable initializer.
990     // We can have multiple available_externally, linkonce_odr and weak_odr
991     // vtable initializers, however we want to skip available_externally as they
992     // do not have type metadata attached, and therefore the summary will not
993     // contain any vtable functions. We can also have multiple external
994     // vtable initializers in the case of comdats, which we cannot check here.
995     // The linker should give an error in this case.
996     //
997     // Also, handle the case of same-named local Vtables with the same path
998     // and therefore the same GUID. This can happen if there isn't enough
999     // distinguishing path when compiling the source file. In that case we
1000     // conservatively return false early.
1001     const GlobalVarSummary *VS = nullptr;
1002     bool LocalFound = false;
1003     for (auto &S : P.VTableVI.getSummaryList()) {
1004       if (GlobalValue::isLocalLinkage(S->linkage())) {
1005         if (LocalFound)
1006           return false;
1007         LocalFound = true;
1008       }
1009       if (!GlobalValue::isAvailableExternallyLinkage(S->linkage())) {
1010         VS = cast<GlobalVarSummary>(S->getBaseObject());
1011         // We cannot perform whole program devirtualization analysis on a vtable
1012         // with public LTO visibility.
1013         if (VS->getVCallVisibility() == GlobalObject::VCallVisibilityPublic)
1014           return false;
1015       }
1016     }
1017     if (!VS->isLive())
1018       continue;
1019     for (auto VTP : VS->vTableFuncs()) {
1020       if (VTP.VTableOffset != P.AddressPointOffset + ByteOffset)
1021         continue;
1022 
1023       TargetsForSlot.push_back(VTP.FuncVI);
1024     }
1025   }
1026 
1027   // Give up if we couldn't find any targets.
1028   return !TargetsForSlot.empty();
1029 }
1030 
1031 void DevirtModule::applySingleImplDevirt(VTableSlotInfo &SlotInfo,
1032                                          Constant *TheFn, bool &IsExported) {
1033   auto Apply = [&](CallSiteInfo &CSInfo) {
1034     for (auto &&VCallSite : CSInfo.CallSites) {
1035       if (RemarksEnabled)
1036         VCallSite.emitRemark("single-impl",
1037                              TheFn->stripPointerCasts()->getName(), OREGetter);
1038       VCallSite.CB.setCalledOperand(ConstantExpr::getBitCast(
1039           TheFn, VCallSite.CB.getCalledOperand()->getType()));
1040       // This use is no longer unsafe.
1041       if (VCallSite.NumUnsafeUses)
1042         --*VCallSite.NumUnsafeUses;
1043     }
1044     if (CSInfo.isExported())
1045       IsExported = true;
1046     CSInfo.markDevirt();
1047   };
1048   Apply(SlotInfo.CSInfo);
1049   for (auto &P : SlotInfo.ConstCSInfo)
1050     Apply(P.second);
1051 }
1052 
1053 static bool AddCalls(VTableSlotInfo &SlotInfo, const ValueInfo &Callee) {
1054   // We can't add calls if we haven't seen a definition
1055   if (Callee.getSummaryList().empty())
1056     return false;
1057 
1058   // Insert calls into the summary index so that the devirtualized targets
1059   // are eligible for import.
1060   // FIXME: Annotate type tests with hotness. For now, mark these as hot
1061   // to better ensure we have the opportunity to inline them.
1062   bool IsExported = false;
1063   auto &S = Callee.getSummaryList()[0];
1064   CalleeInfo CI(CalleeInfo::HotnessType::Hot, /* RelBF = */ 0);
1065   auto AddCalls = [&](CallSiteInfo &CSInfo) {
1066     for (auto *FS : CSInfo.SummaryTypeCheckedLoadUsers) {
1067       FS->addCall({Callee, CI});
1068       IsExported |= S->modulePath() != FS->modulePath();
1069     }
1070     for (auto *FS : CSInfo.SummaryTypeTestAssumeUsers) {
1071       FS->addCall({Callee, CI});
1072       IsExported |= S->modulePath() != FS->modulePath();
1073     }
1074   };
1075   AddCalls(SlotInfo.CSInfo);
1076   for (auto &P : SlotInfo.ConstCSInfo)
1077     AddCalls(P.second);
1078   return IsExported;
1079 }
1080 
1081 bool DevirtModule::trySingleImplDevirt(
1082     ModuleSummaryIndex *ExportSummary,
1083     MutableArrayRef<VirtualCallTarget> TargetsForSlot, VTableSlotInfo &SlotInfo,
1084     WholeProgramDevirtResolution *Res) {
1085   // See if the program contains a single implementation of this virtual
1086   // function.
1087   Function *TheFn = TargetsForSlot[0].Fn;
1088   for (auto &&Target : TargetsForSlot)
1089     if (TheFn != Target.Fn)
1090       return false;
1091 
1092   // If so, update each call site to call that implementation directly.
1093   if (RemarksEnabled)
1094     TargetsForSlot[0].WasDevirt = true;
1095 
1096   bool IsExported = false;
1097   applySingleImplDevirt(SlotInfo, TheFn, IsExported);
1098   if (!IsExported)
1099     return false;
1100 
1101   // If the only implementation has local linkage, we must promote to external
1102   // to make it visible to thin LTO objects. We can only get here during the
1103   // ThinLTO export phase.
1104   if (TheFn->hasLocalLinkage()) {
1105     std::string NewName = (TheFn->getName() + "$merged").str();
1106 
1107     // Since we are renaming the function, any comdats with the same name must
1108     // also be renamed. This is required when targeting COFF, as the comdat name
1109     // must match one of the names of the symbols in the comdat.
1110     if (Comdat *C = TheFn->getComdat()) {
1111       if (C->getName() == TheFn->getName()) {
1112         Comdat *NewC = M.getOrInsertComdat(NewName);
1113         NewC->setSelectionKind(C->getSelectionKind());
1114         for (GlobalObject &GO : M.global_objects())
1115           if (GO.getComdat() == C)
1116             GO.setComdat(NewC);
1117       }
1118     }
1119 
1120     TheFn->setLinkage(GlobalValue::ExternalLinkage);
1121     TheFn->setVisibility(GlobalValue::HiddenVisibility);
1122     TheFn->setName(NewName);
1123   }
1124   if (ValueInfo TheFnVI = ExportSummary->getValueInfo(TheFn->getGUID()))
1125     // Any needed promotion of 'TheFn' has already been done during
1126     // LTO unit split, so we can ignore return value of AddCalls.
1127     AddCalls(SlotInfo, TheFnVI);
1128 
1129   Res->TheKind = WholeProgramDevirtResolution::SingleImpl;
1130   Res->SingleImplName = std::string(TheFn->getName());
1131 
1132   return true;
1133 }
1134 
1135 bool DevirtIndex::trySingleImplDevirt(MutableArrayRef<ValueInfo> TargetsForSlot,
1136                                       VTableSlotSummary &SlotSummary,
1137                                       VTableSlotInfo &SlotInfo,
1138                                       WholeProgramDevirtResolution *Res,
1139                                       std::set<ValueInfo> &DevirtTargets) {
1140   // See if the program contains a single implementation of this virtual
1141   // function.
1142   auto TheFn = TargetsForSlot[0];
1143   for (auto &&Target : TargetsForSlot)
1144     if (TheFn != Target)
1145       return false;
1146 
1147   // Don't devirtualize if we don't have target definition.
1148   auto Size = TheFn.getSummaryList().size();
1149   if (!Size)
1150     return false;
1151 
1152   // Don't devirtualize function if we're told to skip it
1153   // in -wholeprogramdevirt-skip.
1154   if (FunctionsToSkip.match(TheFn.name()))
1155     return false;
1156 
1157   // If the summary list contains multiple summaries where at least one is
1158   // a local, give up, as we won't know which (possibly promoted) name to use.
1159   for (auto &S : TheFn.getSummaryList())
1160     if (GlobalValue::isLocalLinkage(S->linkage()) && Size > 1)
1161       return false;
1162 
1163   // Collect functions devirtualized at least for one call site for stats.
1164   if (PrintSummaryDevirt)
1165     DevirtTargets.insert(TheFn);
1166 
1167   auto &S = TheFn.getSummaryList()[0];
1168   bool IsExported = AddCalls(SlotInfo, TheFn);
1169   if (IsExported)
1170     ExportedGUIDs.insert(TheFn.getGUID());
1171 
1172   // Record in summary for use in devirtualization during the ThinLTO import
1173   // step.
1174   Res->TheKind = WholeProgramDevirtResolution::SingleImpl;
1175   if (GlobalValue::isLocalLinkage(S->linkage())) {
1176     if (IsExported)
1177       // If target is a local function and we are exporting it by
1178       // devirtualizing a call in another module, we need to record the
1179       // promoted name.
1180       Res->SingleImplName = ModuleSummaryIndex::getGlobalNameForLocal(
1181           TheFn.name(), ExportSummary.getModuleHash(S->modulePath()));
1182     else {
1183       LocalWPDTargetsMap[TheFn].push_back(SlotSummary);
1184       Res->SingleImplName = std::string(TheFn.name());
1185     }
1186   } else
1187     Res->SingleImplName = std::string(TheFn.name());
1188 
1189   // Name will be empty if this thin link driven off of serialized combined
1190   // index (e.g. llvm-lto). However, WPD is not supported/invoked for the
1191   // legacy LTO API anyway.
1192   assert(!Res->SingleImplName.empty());
1193 
1194   return true;
1195 }
1196 
1197 void DevirtModule::tryICallBranchFunnel(
1198     MutableArrayRef<VirtualCallTarget> TargetsForSlot, VTableSlotInfo &SlotInfo,
1199     WholeProgramDevirtResolution *Res, VTableSlot Slot) {
1200   Triple T(M.getTargetTriple());
1201   if (T.getArch() != Triple::x86_64)
1202     return;
1203 
1204   if (TargetsForSlot.size() > ClThreshold)
1205     return;
1206 
1207   bool HasNonDevirt = !SlotInfo.CSInfo.AllCallSitesDevirted;
1208   if (!HasNonDevirt)
1209     for (auto &P : SlotInfo.ConstCSInfo)
1210       if (!P.second.AllCallSitesDevirted) {
1211         HasNonDevirt = true;
1212         break;
1213       }
1214 
1215   if (!HasNonDevirt)
1216     return;
1217 
1218   FunctionType *FT =
1219       FunctionType::get(Type::getVoidTy(M.getContext()), {Int8PtrTy}, true);
1220   Function *JT;
1221   if (isa<MDString>(Slot.TypeID)) {
1222     JT = Function::Create(FT, Function::ExternalLinkage,
1223                           M.getDataLayout().getProgramAddressSpace(),
1224                           getGlobalName(Slot, {}, "branch_funnel"), &M);
1225     JT->setVisibility(GlobalValue::HiddenVisibility);
1226   } else {
1227     JT = Function::Create(FT, Function::InternalLinkage,
1228                           M.getDataLayout().getProgramAddressSpace(),
1229                           "branch_funnel", &M);
1230   }
1231   JT->addAttribute(1, Attribute::Nest);
1232 
1233   std::vector<Value *> JTArgs;
1234   JTArgs.push_back(JT->arg_begin());
1235   for (auto &T : TargetsForSlot) {
1236     JTArgs.push_back(getMemberAddr(T.TM));
1237     JTArgs.push_back(T.Fn);
1238   }
1239 
1240   BasicBlock *BB = BasicBlock::Create(M.getContext(), "", JT, nullptr);
1241   Function *Intr =
1242       Intrinsic::getDeclaration(&M, llvm::Intrinsic::icall_branch_funnel, {});
1243 
1244   auto *CI = CallInst::Create(Intr, JTArgs, "", BB);
1245   CI->setTailCallKind(CallInst::TCK_MustTail);
1246   ReturnInst::Create(M.getContext(), nullptr, BB);
1247 
1248   bool IsExported = false;
1249   applyICallBranchFunnel(SlotInfo, JT, IsExported);
1250   if (IsExported)
1251     Res->TheKind = WholeProgramDevirtResolution::BranchFunnel;
1252 }
1253 
1254 void DevirtModule::applyICallBranchFunnel(VTableSlotInfo &SlotInfo,
1255                                           Constant *JT, bool &IsExported) {
1256   auto Apply = [&](CallSiteInfo &CSInfo) {
1257     if (CSInfo.isExported())
1258       IsExported = true;
1259     if (CSInfo.AllCallSitesDevirted)
1260       return;
1261     for (auto &&VCallSite : CSInfo.CallSites) {
1262       CallBase &CB = VCallSite.CB;
1263 
1264       // Jump tables are only profitable if the retpoline mitigation is enabled.
1265       Attribute FSAttr = CB.getCaller()->getFnAttribute("target-features");
1266       if (!FSAttr.isValid() ||
1267           !FSAttr.getValueAsString().contains("+retpoline"))
1268         continue;
1269 
1270       if (RemarksEnabled)
1271         VCallSite.emitRemark("branch-funnel",
1272                              JT->stripPointerCasts()->getName(), OREGetter);
1273 
1274       // Pass the address of the vtable in the nest register, which is r10 on
1275       // x86_64.
1276       std::vector<Type *> NewArgs;
1277       NewArgs.push_back(Int8PtrTy);
1278       for (Type *T : CB.getFunctionType()->params())
1279         NewArgs.push_back(T);
1280       FunctionType *NewFT =
1281           FunctionType::get(CB.getFunctionType()->getReturnType(), NewArgs,
1282                             CB.getFunctionType()->isVarArg());
1283       PointerType *NewFTPtr = PointerType::getUnqual(NewFT);
1284 
1285       IRBuilder<> IRB(&CB);
1286       std::vector<Value *> Args;
1287       Args.push_back(IRB.CreateBitCast(VCallSite.VTable, Int8PtrTy));
1288       Args.insert(Args.end(), CB.arg_begin(), CB.arg_end());
1289 
1290       CallBase *NewCS = nullptr;
1291       if (isa<CallInst>(CB))
1292         NewCS = IRB.CreateCall(NewFT, IRB.CreateBitCast(JT, NewFTPtr), Args);
1293       else
1294         NewCS = IRB.CreateInvoke(NewFT, IRB.CreateBitCast(JT, NewFTPtr),
1295                                  cast<InvokeInst>(CB).getNormalDest(),
1296                                  cast<InvokeInst>(CB).getUnwindDest(), Args);
1297       NewCS->setCallingConv(CB.getCallingConv());
1298 
1299       AttributeList Attrs = CB.getAttributes();
1300       std::vector<AttributeSet> NewArgAttrs;
1301       NewArgAttrs.push_back(AttributeSet::get(
1302           M.getContext(), ArrayRef<Attribute>{Attribute::get(
1303                               M.getContext(), Attribute::Nest)}));
1304       for (unsigned I = 0; I + 2 <  Attrs.getNumAttrSets(); ++I)
1305         NewArgAttrs.push_back(Attrs.getParamAttributes(I));
1306       NewCS->setAttributes(
1307           AttributeList::get(M.getContext(), Attrs.getFnAttributes(),
1308                              Attrs.getRetAttributes(), NewArgAttrs));
1309 
1310       CB.replaceAllUsesWith(NewCS);
1311       CB.eraseFromParent();
1312 
1313       // This use is no longer unsafe.
1314       if (VCallSite.NumUnsafeUses)
1315         --*VCallSite.NumUnsafeUses;
1316     }
1317     // Don't mark as devirtualized because there may be callers compiled without
1318     // retpoline mitigation, which would mean that they are lowered to
1319     // llvm.type.test and therefore require an llvm.type.test resolution for the
1320     // type identifier.
1321   };
1322   Apply(SlotInfo.CSInfo);
1323   for (auto &P : SlotInfo.ConstCSInfo)
1324     Apply(P.second);
1325 }
1326 
1327 bool DevirtModule::tryEvaluateFunctionsWithArgs(
1328     MutableArrayRef<VirtualCallTarget> TargetsForSlot,
1329     ArrayRef<uint64_t> Args) {
1330   // Evaluate each function and store the result in each target's RetVal
1331   // field.
1332   for (VirtualCallTarget &Target : TargetsForSlot) {
1333     if (Target.Fn->arg_size() != Args.size() + 1)
1334       return false;
1335 
1336     Evaluator Eval(M.getDataLayout(), nullptr);
1337     SmallVector<Constant *, 2> EvalArgs;
1338     EvalArgs.push_back(
1339         Constant::getNullValue(Target.Fn->getFunctionType()->getParamType(0)));
1340     for (unsigned I = 0; I != Args.size(); ++I) {
1341       auto *ArgTy = dyn_cast<IntegerType>(
1342           Target.Fn->getFunctionType()->getParamType(I + 1));
1343       if (!ArgTy)
1344         return false;
1345       EvalArgs.push_back(ConstantInt::get(ArgTy, Args[I]));
1346     }
1347 
1348     Constant *RetVal;
1349     if (!Eval.EvaluateFunction(Target.Fn, RetVal, EvalArgs) ||
1350         !isa<ConstantInt>(RetVal))
1351       return false;
1352     Target.RetVal = cast<ConstantInt>(RetVal)->getZExtValue();
1353   }
1354   return true;
1355 }
1356 
1357 void DevirtModule::applyUniformRetValOpt(CallSiteInfo &CSInfo, StringRef FnName,
1358                                          uint64_t TheRetVal) {
1359   for (auto Call : CSInfo.CallSites)
1360     Call.replaceAndErase(
1361         "uniform-ret-val", FnName, RemarksEnabled, OREGetter,
1362         ConstantInt::get(cast<IntegerType>(Call.CB.getType()), TheRetVal));
1363   CSInfo.markDevirt();
1364 }
1365 
1366 bool DevirtModule::tryUniformRetValOpt(
1367     MutableArrayRef<VirtualCallTarget> TargetsForSlot, CallSiteInfo &CSInfo,
1368     WholeProgramDevirtResolution::ByArg *Res) {
1369   // Uniform return value optimization. If all functions return the same
1370   // constant, replace all calls with that constant.
1371   uint64_t TheRetVal = TargetsForSlot[0].RetVal;
1372   for (const VirtualCallTarget &Target : TargetsForSlot)
1373     if (Target.RetVal != TheRetVal)
1374       return false;
1375 
1376   if (CSInfo.isExported()) {
1377     Res->TheKind = WholeProgramDevirtResolution::ByArg::UniformRetVal;
1378     Res->Info = TheRetVal;
1379   }
1380 
1381   applyUniformRetValOpt(CSInfo, TargetsForSlot[0].Fn->getName(), TheRetVal);
1382   if (RemarksEnabled)
1383     for (auto &&Target : TargetsForSlot)
1384       Target.WasDevirt = true;
1385   return true;
1386 }
1387 
1388 std::string DevirtModule::getGlobalName(VTableSlot Slot,
1389                                         ArrayRef<uint64_t> Args,
1390                                         StringRef Name) {
1391   std::string FullName = "__typeid_";
1392   raw_string_ostream OS(FullName);
1393   OS << cast<MDString>(Slot.TypeID)->getString() << '_' << Slot.ByteOffset;
1394   for (uint64_t Arg : Args)
1395     OS << '_' << Arg;
1396   OS << '_' << Name;
1397   return OS.str();
1398 }
1399 
1400 bool DevirtModule::shouldExportConstantsAsAbsoluteSymbols() {
1401   Triple T(M.getTargetTriple());
1402   return T.isX86() && T.getObjectFormat() == Triple::ELF;
1403 }
1404 
1405 void DevirtModule::exportGlobal(VTableSlot Slot, ArrayRef<uint64_t> Args,
1406                                 StringRef Name, Constant *C) {
1407   GlobalAlias *GA = GlobalAlias::create(Int8Ty, 0, GlobalValue::ExternalLinkage,
1408                                         getGlobalName(Slot, Args, Name), C, &M);
1409   GA->setVisibility(GlobalValue::HiddenVisibility);
1410 }
1411 
1412 void DevirtModule::exportConstant(VTableSlot Slot, ArrayRef<uint64_t> Args,
1413                                   StringRef Name, uint32_t Const,
1414                                   uint32_t &Storage) {
1415   if (shouldExportConstantsAsAbsoluteSymbols()) {
1416     exportGlobal(
1417         Slot, Args, Name,
1418         ConstantExpr::getIntToPtr(ConstantInt::get(Int32Ty, Const), Int8PtrTy));
1419     return;
1420   }
1421 
1422   Storage = Const;
1423 }
1424 
1425 Constant *DevirtModule::importGlobal(VTableSlot Slot, ArrayRef<uint64_t> Args,
1426                                      StringRef Name) {
1427   Constant *C =
1428       M.getOrInsertGlobal(getGlobalName(Slot, Args, Name), Int8Arr0Ty);
1429   auto *GV = dyn_cast<GlobalVariable>(C);
1430   if (GV)
1431     GV->setVisibility(GlobalValue::HiddenVisibility);
1432   return C;
1433 }
1434 
1435 Constant *DevirtModule::importConstant(VTableSlot Slot, ArrayRef<uint64_t> Args,
1436                                        StringRef Name, IntegerType *IntTy,
1437                                        uint32_t Storage) {
1438   if (!shouldExportConstantsAsAbsoluteSymbols())
1439     return ConstantInt::get(IntTy, Storage);
1440 
1441   Constant *C = importGlobal(Slot, Args, Name);
1442   auto *GV = cast<GlobalVariable>(C->stripPointerCasts());
1443   C = ConstantExpr::getPtrToInt(C, IntTy);
1444 
1445   // We only need to set metadata if the global is newly created, in which
1446   // case it would not have hidden visibility.
1447   if (GV->hasMetadata(LLVMContext::MD_absolute_symbol))
1448     return C;
1449 
1450   auto SetAbsRange = [&](uint64_t Min, uint64_t Max) {
1451     auto *MinC = ConstantAsMetadata::get(ConstantInt::get(IntPtrTy, Min));
1452     auto *MaxC = ConstantAsMetadata::get(ConstantInt::get(IntPtrTy, Max));
1453     GV->setMetadata(LLVMContext::MD_absolute_symbol,
1454                     MDNode::get(M.getContext(), {MinC, MaxC}));
1455   };
1456   unsigned AbsWidth = IntTy->getBitWidth();
1457   if (AbsWidth == IntPtrTy->getBitWidth())
1458     SetAbsRange(~0ull, ~0ull); // Full set.
1459   else
1460     SetAbsRange(0, 1ull << AbsWidth);
1461   return C;
1462 }
1463 
1464 void DevirtModule::applyUniqueRetValOpt(CallSiteInfo &CSInfo, StringRef FnName,
1465                                         bool IsOne,
1466                                         Constant *UniqueMemberAddr) {
1467   for (auto &&Call : CSInfo.CallSites) {
1468     IRBuilder<> B(&Call.CB);
1469     Value *Cmp =
1470         B.CreateICmp(IsOne ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE, Call.VTable,
1471                      B.CreateBitCast(UniqueMemberAddr, Call.VTable->getType()));
1472     Cmp = B.CreateZExt(Cmp, Call.CB.getType());
1473     Call.replaceAndErase("unique-ret-val", FnName, RemarksEnabled, OREGetter,
1474                          Cmp);
1475   }
1476   CSInfo.markDevirt();
1477 }
1478 
1479 Constant *DevirtModule::getMemberAddr(const TypeMemberInfo *M) {
1480   Constant *C = ConstantExpr::getBitCast(M->Bits->GV, Int8PtrTy);
1481   return ConstantExpr::getGetElementPtr(Int8Ty, C,
1482                                         ConstantInt::get(Int64Ty, M->Offset));
1483 }
1484 
1485 bool DevirtModule::tryUniqueRetValOpt(
1486     unsigned BitWidth, MutableArrayRef<VirtualCallTarget> TargetsForSlot,
1487     CallSiteInfo &CSInfo, WholeProgramDevirtResolution::ByArg *Res,
1488     VTableSlot Slot, ArrayRef<uint64_t> Args) {
1489   // IsOne controls whether we look for a 0 or a 1.
1490   auto tryUniqueRetValOptFor = [&](bool IsOne) {
1491     const TypeMemberInfo *UniqueMember = nullptr;
1492     for (const VirtualCallTarget &Target : TargetsForSlot) {
1493       if (Target.RetVal == (IsOne ? 1 : 0)) {
1494         if (UniqueMember)
1495           return false;
1496         UniqueMember = Target.TM;
1497       }
1498     }
1499 
1500     // We should have found a unique member or bailed out by now. We already
1501     // checked for a uniform return value in tryUniformRetValOpt.
1502     assert(UniqueMember);
1503 
1504     Constant *UniqueMemberAddr = getMemberAddr(UniqueMember);
1505     if (CSInfo.isExported()) {
1506       Res->TheKind = WholeProgramDevirtResolution::ByArg::UniqueRetVal;
1507       Res->Info = IsOne;
1508 
1509       exportGlobal(Slot, Args, "unique_member", UniqueMemberAddr);
1510     }
1511 
1512     // Replace each call with the comparison.
1513     applyUniqueRetValOpt(CSInfo, TargetsForSlot[0].Fn->getName(), IsOne,
1514                          UniqueMemberAddr);
1515 
1516     // Update devirtualization statistics for targets.
1517     if (RemarksEnabled)
1518       for (auto &&Target : TargetsForSlot)
1519         Target.WasDevirt = true;
1520 
1521     return true;
1522   };
1523 
1524   if (BitWidth == 1) {
1525     if (tryUniqueRetValOptFor(true))
1526       return true;
1527     if (tryUniqueRetValOptFor(false))
1528       return true;
1529   }
1530   return false;
1531 }
1532 
1533 void DevirtModule::applyVirtualConstProp(CallSiteInfo &CSInfo, StringRef FnName,
1534                                          Constant *Byte, Constant *Bit) {
1535   for (auto Call : CSInfo.CallSites) {
1536     auto *RetType = cast<IntegerType>(Call.CB.getType());
1537     IRBuilder<> B(&Call.CB);
1538     Value *Addr =
1539         B.CreateGEP(Int8Ty, B.CreateBitCast(Call.VTable, Int8PtrTy), Byte);
1540     if (RetType->getBitWidth() == 1) {
1541       Value *Bits = B.CreateLoad(Int8Ty, Addr);
1542       Value *BitsAndBit = B.CreateAnd(Bits, Bit);
1543       auto IsBitSet = B.CreateICmpNE(BitsAndBit, ConstantInt::get(Int8Ty, 0));
1544       Call.replaceAndErase("virtual-const-prop-1-bit", FnName, RemarksEnabled,
1545                            OREGetter, IsBitSet);
1546     } else {
1547       Value *ValAddr = B.CreateBitCast(Addr, RetType->getPointerTo());
1548       Value *Val = B.CreateLoad(RetType, ValAddr);
1549       Call.replaceAndErase("virtual-const-prop", FnName, RemarksEnabled,
1550                            OREGetter, Val);
1551     }
1552   }
1553   CSInfo.markDevirt();
1554 }
1555 
1556 bool DevirtModule::tryVirtualConstProp(
1557     MutableArrayRef<VirtualCallTarget> TargetsForSlot, VTableSlotInfo &SlotInfo,
1558     WholeProgramDevirtResolution *Res, VTableSlot Slot) {
1559   // This only works if the function returns an integer.
1560   auto RetType = dyn_cast<IntegerType>(TargetsForSlot[0].Fn->getReturnType());
1561   if (!RetType)
1562     return false;
1563   unsigned BitWidth = RetType->getBitWidth();
1564   if (BitWidth > 64)
1565     return false;
1566 
1567   // Make sure that each function is defined, does not access memory, takes at
1568   // least one argument, does not use its first argument (which we assume is
1569   // 'this'), and has the same return type.
1570   //
1571   // Note that we test whether this copy of the function is readnone, rather
1572   // than testing function attributes, which must hold for any copy of the
1573   // function, even a less optimized version substituted at link time. This is
1574   // sound because the virtual constant propagation optimizations effectively
1575   // inline all implementations of the virtual function into each call site,
1576   // rather than using function attributes to perform local optimization.
1577   for (VirtualCallTarget &Target : TargetsForSlot) {
1578     if (Target.Fn->isDeclaration() ||
1579         computeFunctionBodyMemoryAccess(*Target.Fn, AARGetter(*Target.Fn)) !=
1580             MAK_ReadNone ||
1581         Target.Fn->arg_empty() || !Target.Fn->arg_begin()->use_empty() ||
1582         Target.Fn->getReturnType() != RetType)
1583       return false;
1584   }
1585 
1586   for (auto &&CSByConstantArg : SlotInfo.ConstCSInfo) {
1587     if (!tryEvaluateFunctionsWithArgs(TargetsForSlot, CSByConstantArg.first))
1588       continue;
1589 
1590     WholeProgramDevirtResolution::ByArg *ResByArg = nullptr;
1591     if (Res)
1592       ResByArg = &Res->ResByArg[CSByConstantArg.first];
1593 
1594     if (tryUniformRetValOpt(TargetsForSlot, CSByConstantArg.second, ResByArg))
1595       continue;
1596 
1597     if (tryUniqueRetValOpt(BitWidth, TargetsForSlot, CSByConstantArg.second,
1598                            ResByArg, Slot, CSByConstantArg.first))
1599       continue;
1600 
1601     // Find an allocation offset in bits in all vtables associated with the
1602     // type.
1603     uint64_t AllocBefore =
1604         findLowestOffset(TargetsForSlot, /*IsAfter=*/false, BitWidth);
1605     uint64_t AllocAfter =
1606         findLowestOffset(TargetsForSlot, /*IsAfter=*/true, BitWidth);
1607 
1608     // Calculate the total amount of padding needed to store a value at both
1609     // ends of the object.
1610     uint64_t TotalPaddingBefore = 0, TotalPaddingAfter = 0;
1611     for (auto &&Target : TargetsForSlot) {
1612       TotalPaddingBefore += std::max<int64_t>(
1613           (AllocBefore + 7) / 8 - Target.allocatedBeforeBytes() - 1, 0);
1614       TotalPaddingAfter += std::max<int64_t>(
1615           (AllocAfter + 7) / 8 - Target.allocatedAfterBytes() - 1, 0);
1616     }
1617 
1618     // If the amount of padding is too large, give up.
1619     // FIXME: do something smarter here.
1620     if (std::min(TotalPaddingBefore, TotalPaddingAfter) > 128)
1621       continue;
1622 
1623     // Calculate the offset to the value as a (possibly negative) byte offset
1624     // and (if applicable) a bit offset, and store the values in the targets.
1625     int64_t OffsetByte;
1626     uint64_t OffsetBit;
1627     if (TotalPaddingBefore <= TotalPaddingAfter)
1628       setBeforeReturnValues(TargetsForSlot, AllocBefore, BitWidth, OffsetByte,
1629                             OffsetBit);
1630     else
1631       setAfterReturnValues(TargetsForSlot, AllocAfter, BitWidth, OffsetByte,
1632                            OffsetBit);
1633 
1634     if (RemarksEnabled)
1635       for (auto &&Target : TargetsForSlot)
1636         Target.WasDevirt = true;
1637 
1638 
1639     if (CSByConstantArg.second.isExported()) {
1640       ResByArg->TheKind = WholeProgramDevirtResolution::ByArg::VirtualConstProp;
1641       exportConstant(Slot, CSByConstantArg.first, "byte", OffsetByte,
1642                      ResByArg->Byte);
1643       exportConstant(Slot, CSByConstantArg.first, "bit", 1ULL << OffsetBit,
1644                      ResByArg->Bit);
1645     }
1646 
1647     // Rewrite each call to a load from OffsetByte/OffsetBit.
1648     Constant *ByteConst = ConstantInt::get(Int32Ty, OffsetByte);
1649     Constant *BitConst = ConstantInt::get(Int8Ty, 1ULL << OffsetBit);
1650     applyVirtualConstProp(CSByConstantArg.second,
1651                           TargetsForSlot[0].Fn->getName(), ByteConst, BitConst);
1652   }
1653   return true;
1654 }
1655 
1656 void DevirtModule::rebuildGlobal(VTableBits &B) {
1657   if (B.Before.Bytes.empty() && B.After.Bytes.empty())
1658     return;
1659 
1660   // Align the before byte array to the global's minimum alignment so that we
1661   // don't break any alignment requirements on the global.
1662   Align Alignment = M.getDataLayout().getValueOrABITypeAlignment(
1663       B.GV->getAlign(), B.GV->getValueType());
1664   B.Before.Bytes.resize(alignTo(B.Before.Bytes.size(), Alignment));
1665 
1666   // Before was stored in reverse order; flip it now.
1667   for (size_t I = 0, Size = B.Before.Bytes.size(); I != Size / 2; ++I)
1668     std::swap(B.Before.Bytes[I], B.Before.Bytes[Size - 1 - I]);
1669 
1670   // Build an anonymous global containing the before bytes, followed by the
1671   // original initializer, followed by the after bytes.
1672   auto NewInit = ConstantStruct::getAnon(
1673       {ConstantDataArray::get(M.getContext(), B.Before.Bytes),
1674        B.GV->getInitializer(),
1675        ConstantDataArray::get(M.getContext(), B.After.Bytes)});
1676   auto NewGV =
1677       new GlobalVariable(M, NewInit->getType(), B.GV->isConstant(),
1678                          GlobalVariable::PrivateLinkage, NewInit, "", B.GV);
1679   NewGV->setSection(B.GV->getSection());
1680   NewGV->setComdat(B.GV->getComdat());
1681   NewGV->setAlignment(MaybeAlign(B.GV->getAlignment()));
1682 
1683   // Copy the original vtable's metadata to the anonymous global, adjusting
1684   // offsets as required.
1685   NewGV->copyMetadata(B.GV, B.Before.Bytes.size());
1686 
1687   // Build an alias named after the original global, pointing at the second
1688   // element (the original initializer).
1689   auto Alias = GlobalAlias::create(
1690       B.GV->getInitializer()->getType(), 0, B.GV->getLinkage(), "",
1691       ConstantExpr::getGetElementPtr(
1692           NewInit->getType(), NewGV,
1693           ArrayRef<Constant *>{ConstantInt::get(Int32Ty, 0),
1694                                ConstantInt::get(Int32Ty, 1)}),
1695       &M);
1696   Alias->setVisibility(B.GV->getVisibility());
1697   Alias->takeName(B.GV);
1698 
1699   B.GV->replaceAllUsesWith(Alias);
1700   B.GV->eraseFromParent();
1701 }
1702 
1703 bool DevirtModule::areRemarksEnabled() {
1704   const auto &FL = M.getFunctionList();
1705   for (const Function &Fn : FL) {
1706     const auto &BBL = Fn.getBasicBlockList();
1707     if (BBL.empty())
1708       continue;
1709     auto DI = OptimizationRemark(DEBUG_TYPE, "", DebugLoc(), &BBL.front());
1710     return DI.isEnabled();
1711   }
1712   return false;
1713 }
1714 
1715 void DevirtModule::scanTypeTestUsers(
1716     Function *TypeTestFunc,
1717     DenseMap<Metadata *, std::set<TypeMemberInfo>> &TypeIdMap) {
1718   // Find all virtual calls via a virtual table pointer %p under an assumption
1719   // of the form llvm.assume(llvm.type.test(%p, %md)). This indicates that %p
1720   // points to a member of the type identifier %md. Group calls by (type ID,
1721   // offset) pair (effectively the identity of the virtual function) and store
1722   // to CallSlots.
1723   for (auto I = TypeTestFunc->use_begin(), E = TypeTestFunc->use_end();
1724        I != E;) {
1725     auto CI = dyn_cast<CallInst>(I->getUser());
1726     ++I;
1727     if (!CI)
1728       continue;
1729 
1730     // Search for virtual calls based on %p and add them to DevirtCalls.
1731     SmallVector<DevirtCallSite, 1> DevirtCalls;
1732     SmallVector<CallInst *, 1> Assumes;
1733     auto &DT = LookupDomTree(*CI->getFunction());
1734     findDevirtualizableCallsForTypeTest(DevirtCalls, Assumes, CI, DT);
1735 
1736     Metadata *TypeId =
1737         cast<MetadataAsValue>(CI->getArgOperand(1))->getMetadata();
1738     // If we found any, add them to CallSlots.
1739     if (!Assumes.empty()) {
1740       Value *Ptr = CI->getArgOperand(0)->stripPointerCasts();
1741       for (DevirtCallSite Call : DevirtCalls)
1742         CallSlots[{TypeId, Call.Offset}].addCallSite(Ptr, Call.CB, nullptr);
1743     }
1744 
1745     auto RemoveTypeTestAssumes = [&]() {
1746       // We no longer need the assumes or the type test.
1747       for (auto Assume : Assumes)
1748         Assume->eraseFromParent();
1749       // We can't use RecursivelyDeleteTriviallyDeadInstructions here because we
1750       // may use the vtable argument later.
1751       if (CI->use_empty())
1752         CI->eraseFromParent();
1753     };
1754 
1755     // At this point we could remove all type test assume sequences, as they
1756     // were originally inserted for WPD. However, we can keep these in the
1757     // code stream for later analysis (e.g. to help drive more efficient ICP
1758     // sequences). They will eventually be removed by a second LowerTypeTests
1759     // invocation that cleans them up. In order to do this correctly, the first
1760     // LowerTypeTests invocation needs to know that they have "Unknown" type
1761     // test resolution, so that they aren't treated as Unsat and lowered to
1762     // False, which will break any uses on assumes. Below we remove any type
1763     // test assumes that will not be treated as Unknown by LTT.
1764 
1765     // The type test assumes will be treated by LTT as Unsat if the type id is
1766     // not used on a global (in which case it has no entry in the TypeIdMap).
1767     if (!TypeIdMap.count(TypeId))
1768       RemoveTypeTestAssumes();
1769 
1770     // For ThinLTO importing, we need to remove the type test assumes if this is
1771     // an MDString type id without a corresponding TypeIdSummary. Any
1772     // non-MDString type ids are ignored and treated as Unknown by LTT, so their
1773     // type test assumes can be kept. If the MDString type id is missing a
1774     // TypeIdSummary (e.g. because there was no use on a vcall, preventing the
1775     // exporting phase of WPD from analyzing it), then it would be treated as
1776     // Unsat by LTT and we need to remove its type test assumes here. If not
1777     // used on a vcall we don't need them for later optimization use in any
1778     // case.
1779     else if (ImportSummary && isa<MDString>(TypeId)) {
1780       const TypeIdSummary *TidSummary =
1781           ImportSummary->getTypeIdSummary(cast<MDString>(TypeId)->getString());
1782       if (!TidSummary)
1783         RemoveTypeTestAssumes();
1784       else
1785         // If one was created it should not be Unsat, because if we reached here
1786         // the type id was used on a global.
1787         assert(TidSummary->TTRes.TheKind != TypeTestResolution::Unsat);
1788     }
1789   }
1790 }
1791 
1792 void DevirtModule::scanTypeCheckedLoadUsers(Function *TypeCheckedLoadFunc) {
1793   Function *TypeTestFunc = Intrinsic::getDeclaration(&M, Intrinsic::type_test);
1794 
1795   for (auto I = TypeCheckedLoadFunc->use_begin(),
1796             E = TypeCheckedLoadFunc->use_end();
1797        I != E;) {
1798     auto CI = dyn_cast<CallInst>(I->getUser());
1799     ++I;
1800     if (!CI)
1801       continue;
1802 
1803     Value *Ptr = CI->getArgOperand(0);
1804     Value *Offset = CI->getArgOperand(1);
1805     Value *TypeIdValue = CI->getArgOperand(2);
1806     Metadata *TypeId = cast<MetadataAsValue>(TypeIdValue)->getMetadata();
1807 
1808     SmallVector<DevirtCallSite, 1> DevirtCalls;
1809     SmallVector<Instruction *, 1> LoadedPtrs;
1810     SmallVector<Instruction *, 1> Preds;
1811     bool HasNonCallUses = false;
1812     auto &DT = LookupDomTree(*CI->getFunction());
1813     findDevirtualizableCallsForTypeCheckedLoad(DevirtCalls, LoadedPtrs, Preds,
1814                                                HasNonCallUses, CI, DT);
1815 
1816     // Start by generating "pessimistic" code that explicitly loads the function
1817     // pointer from the vtable and performs the type check. If possible, we will
1818     // eliminate the load and the type check later.
1819 
1820     // If possible, only generate the load at the point where it is used.
1821     // This helps avoid unnecessary spills.
1822     IRBuilder<> LoadB(
1823         (LoadedPtrs.size() == 1 && !HasNonCallUses) ? LoadedPtrs[0] : CI);
1824     Value *GEP = LoadB.CreateGEP(Int8Ty, Ptr, Offset);
1825     Value *GEPPtr = LoadB.CreateBitCast(GEP, PointerType::getUnqual(Int8PtrTy));
1826     Value *LoadedValue = LoadB.CreateLoad(Int8PtrTy, GEPPtr);
1827 
1828     for (Instruction *LoadedPtr : LoadedPtrs) {
1829       LoadedPtr->replaceAllUsesWith(LoadedValue);
1830       LoadedPtr->eraseFromParent();
1831     }
1832 
1833     // Likewise for the type test.
1834     IRBuilder<> CallB((Preds.size() == 1 && !HasNonCallUses) ? Preds[0] : CI);
1835     CallInst *TypeTestCall = CallB.CreateCall(TypeTestFunc, {Ptr, TypeIdValue});
1836 
1837     for (Instruction *Pred : Preds) {
1838       Pred->replaceAllUsesWith(TypeTestCall);
1839       Pred->eraseFromParent();
1840     }
1841 
1842     // We have already erased any extractvalue instructions that refer to the
1843     // intrinsic call, but the intrinsic may have other non-extractvalue uses
1844     // (although this is unlikely). In that case, explicitly build a pair and
1845     // RAUW it.
1846     if (!CI->use_empty()) {
1847       Value *Pair = UndefValue::get(CI->getType());
1848       IRBuilder<> B(CI);
1849       Pair = B.CreateInsertValue(Pair, LoadedValue, {0});
1850       Pair = B.CreateInsertValue(Pair, TypeTestCall, {1});
1851       CI->replaceAllUsesWith(Pair);
1852     }
1853 
1854     // The number of unsafe uses is initially the number of uses.
1855     auto &NumUnsafeUses = NumUnsafeUsesForTypeTest[TypeTestCall];
1856     NumUnsafeUses = DevirtCalls.size();
1857 
1858     // If the function pointer has a non-call user, we cannot eliminate the type
1859     // check, as one of those users may eventually call the pointer. Increment
1860     // the unsafe use count to make sure it cannot reach zero.
1861     if (HasNonCallUses)
1862       ++NumUnsafeUses;
1863     for (DevirtCallSite Call : DevirtCalls) {
1864       CallSlots[{TypeId, Call.Offset}].addCallSite(Ptr, Call.CB,
1865                                                    &NumUnsafeUses);
1866     }
1867 
1868     CI->eraseFromParent();
1869   }
1870 }
1871 
1872 void DevirtModule::importResolution(VTableSlot Slot, VTableSlotInfo &SlotInfo) {
1873   auto *TypeId = dyn_cast<MDString>(Slot.TypeID);
1874   if (!TypeId)
1875     return;
1876   const TypeIdSummary *TidSummary =
1877       ImportSummary->getTypeIdSummary(TypeId->getString());
1878   if (!TidSummary)
1879     return;
1880   auto ResI = TidSummary->WPDRes.find(Slot.ByteOffset);
1881   if (ResI == TidSummary->WPDRes.end())
1882     return;
1883   const WholeProgramDevirtResolution &Res = ResI->second;
1884 
1885   if (Res.TheKind == WholeProgramDevirtResolution::SingleImpl) {
1886     assert(!Res.SingleImplName.empty());
1887     // The type of the function in the declaration is irrelevant because every
1888     // call site will cast it to the correct type.
1889     Constant *SingleImpl =
1890         cast<Constant>(M.getOrInsertFunction(Res.SingleImplName,
1891                                              Type::getVoidTy(M.getContext()))
1892                            .getCallee());
1893 
1894     // This is the import phase so we should not be exporting anything.
1895     bool IsExported = false;
1896     applySingleImplDevirt(SlotInfo, SingleImpl, IsExported);
1897     assert(!IsExported);
1898   }
1899 
1900   for (auto &CSByConstantArg : SlotInfo.ConstCSInfo) {
1901     auto I = Res.ResByArg.find(CSByConstantArg.first);
1902     if (I == Res.ResByArg.end())
1903       continue;
1904     auto &ResByArg = I->second;
1905     // FIXME: We should figure out what to do about the "function name" argument
1906     // to the apply* functions, as the function names are unavailable during the
1907     // importing phase. For now we just pass the empty string. This does not
1908     // impact correctness because the function names are just used for remarks.
1909     switch (ResByArg.TheKind) {
1910     case WholeProgramDevirtResolution::ByArg::UniformRetVal:
1911       applyUniformRetValOpt(CSByConstantArg.second, "", ResByArg.Info);
1912       break;
1913     case WholeProgramDevirtResolution::ByArg::UniqueRetVal: {
1914       Constant *UniqueMemberAddr =
1915           importGlobal(Slot, CSByConstantArg.first, "unique_member");
1916       applyUniqueRetValOpt(CSByConstantArg.second, "", ResByArg.Info,
1917                            UniqueMemberAddr);
1918       break;
1919     }
1920     case WholeProgramDevirtResolution::ByArg::VirtualConstProp: {
1921       Constant *Byte = importConstant(Slot, CSByConstantArg.first, "byte",
1922                                       Int32Ty, ResByArg.Byte);
1923       Constant *Bit = importConstant(Slot, CSByConstantArg.first, "bit", Int8Ty,
1924                                      ResByArg.Bit);
1925       applyVirtualConstProp(CSByConstantArg.second, "", Byte, Bit);
1926       break;
1927     }
1928     default:
1929       break;
1930     }
1931   }
1932 
1933   if (Res.TheKind == WholeProgramDevirtResolution::BranchFunnel) {
1934     // The type of the function is irrelevant, because it's bitcast at calls
1935     // anyhow.
1936     Constant *JT = cast<Constant>(
1937         M.getOrInsertFunction(getGlobalName(Slot, {}, "branch_funnel"),
1938                               Type::getVoidTy(M.getContext()))
1939             .getCallee());
1940     bool IsExported = false;
1941     applyICallBranchFunnel(SlotInfo, JT, IsExported);
1942     assert(!IsExported);
1943   }
1944 }
1945 
1946 void DevirtModule::removeRedundantTypeTests() {
1947   auto True = ConstantInt::getTrue(M.getContext());
1948   for (auto &&U : NumUnsafeUsesForTypeTest) {
1949     if (U.second == 0) {
1950       U.first->replaceAllUsesWith(True);
1951       U.first->eraseFromParent();
1952     }
1953   }
1954 }
1955 
1956 bool DevirtModule::run() {
1957   // If only some of the modules were split, we cannot correctly perform
1958   // this transformation. We already checked for the presense of type tests
1959   // with partially split modules during the thin link, and would have emitted
1960   // an error if any were found, so here we can simply return.
1961   if ((ExportSummary && ExportSummary->partiallySplitLTOUnits()) ||
1962       (ImportSummary && ImportSummary->partiallySplitLTOUnits()))
1963     return false;
1964 
1965   Function *TypeTestFunc =
1966       M.getFunction(Intrinsic::getName(Intrinsic::type_test));
1967   Function *TypeCheckedLoadFunc =
1968       M.getFunction(Intrinsic::getName(Intrinsic::type_checked_load));
1969   Function *AssumeFunc = M.getFunction(Intrinsic::getName(Intrinsic::assume));
1970 
1971   // Normally if there are no users of the devirtualization intrinsics in the
1972   // module, this pass has nothing to do. But if we are exporting, we also need
1973   // to handle any users that appear only in the function summaries.
1974   if (!ExportSummary &&
1975       (!TypeTestFunc || TypeTestFunc->use_empty() || !AssumeFunc ||
1976        AssumeFunc->use_empty()) &&
1977       (!TypeCheckedLoadFunc || TypeCheckedLoadFunc->use_empty()))
1978     return false;
1979 
1980   // Rebuild type metadata into a map for easy lookup.
1981   std::vector<VTableBits> Bits;
1982   DenseMap<Metadata *, std::set<TypeMemberInfo>> TypeIdMap;
1983   buildTypeIdentifierMap(Bits, TypeIdMap);
1984 
1985   if (TypeTestFunc && AssumeFunc)
1986     scanTypeTestUsers(TypeTestFunc, TypeIdMap);
1987 
1988   if (TypeCheckedLoadFunc)
1989     scanTypeCheckedLoadUsers(TypeCheckedLoadFunc);
1990 
1991   if (ImportSummary) {
1992     for (auto &S : CallSlots)
1993       importResolution(S.first, S.second);
1994 
1995     removeRedundantTypeTests();
1996 
1997     // We have lowered or deleted the type instrinsics, so we will no
1998     // longer have enough information to reason about the liveness of virtual
1999     // function pointers in GlobalDCE.
2000     for (GlobalVariable &GV : M.globals())
2001       GV.eraseMetadata(LLVMContext::MD_vcall_visibility);
2002 
2003     // The rest of the code is only necessary when exporting or during regular
2004     // LTO, so we are done.
2005     return true;
2006   }
2007 
2008   if (TypeIdMap.empty())
2009     return true;
2010 
2011   // Collect information from summary about which calls to try to devirtualize.
2012   if (ExportSummary) {
2013     DenseMap<GlobalValue::GUID, TinyPtrVector<Metadata *>> MetadataByGUID;
2014     for (auto &P : TypeIdMap) {
2015       if (auto *TypeId = dyn_cast<MDString>(P.first))
2016         MetadataByGUID[GlobalValue::getGUID(TypeId->getString())].push_back(
2017             TypeId);
2018     }
2019 
2020     for (auto &P : *ExportSummary) {
2021       for (auto &S : P.second.SummaryList) {
2022         auto *FS = dyn_cast<FunctionSummary>(S.get());
2023         if (!FS)
2024           continue;
2025         // FIXME: Only add live functions.
2026         for (FunctionSummary::VFuncId VF : FS->type_test_assume_vcalls()) {
2027           for (Metadata *MD : MetadataByGUID[VF.GUID]) {
2028             CallSlots[{MD, VF.Offset}].CSInfo.addSummaryTypeTestAssumeUser(FS);
2029           }
2030         }
2031         for (FunctionSummary::VFuncId VF : FS->type_checked_load_vcalls()) {
2032           for (Metadata *MD : MetadataByGUID[VF.GUID]) {
2033             CallSlots[{MD, VF.Offset}].CSInfo.addSummaryTypeCheckedLoadUser(FS);
2034           }
2035         }
2036         for (const FunctionSummary::ConstVCall &VC :
2037              FS->type_test_assume_const_vcalls()) {
2038           for (Metadata *MD : MetadataByGUID[VC.VFunc.GUID]) {
2039             CallSlots[{MD, VC.VFunc.Offset}]
2040                 .ConstCSInfo[VC.Args]
2041                 .addSummaryTypeTestAssumeUser(FS);
2042           }
2043         }
2044         for (const FunctionSummary::ConstVCall &VC :
2045              FS->type_checked_load_const_vcalls()) {
2046           for (Metadata *MD : MetadataByGUID[VC.VFunc.GUID]) {
2047             CallSlots[{MD, VC.VFunc.Offset}]
2048                 .ConstCSInfo[VC.Args]
2049                 .addSummaryTypeCheckedLoadUser(FS);
2050           }
2051         }
2052       }
2053     }
2054   }
2055 
2056   // For each (type, offset) pair:
2057   bool DidVirtualConstProp = false;
2058   std::map<std::string, Function*> DevirtTargets;
2059   for (auto &S : CallSlots) {
2060     // Search each of the members of the type identifier for the virtual
2061     // function implementation at offset S.first.ByteOffset, and add to
2062     // TargetsForSlot.
2063     std::vector<VirtualCallTarget> TargetsForSlot;
2064     WholeProgramDevirtResolution *Res = nullptr;
2065     const std::set<TypeMemberInfo> &TypeMemberInfos = TypeIdMap[S.first.TypeID];
2066     if (ExportSummary && isa<MDString>(S.first.TypeID) &&
2067         TypeMemberInfos.size())
2068       // For any type id used on a global's type metadata, create the type id
2069       // summary resolution regardless of whether we can devirtualize, so that
2070       // lower type tests knows the type id is not Unsat. If it was not used on
2071       // a global's type metadata, the TypeIdMap entry set will be empty, and
2072       // we don't want to create an entry (with the default Unknown type
2073       // resolution), which can prevent detection of the Unsat.
2074       Res = &ExportSummary
2075                  ->getOrInsertTypeIdSummary(
2076                      cast<MDString>(S.first.TypeID)->getString())
2077                  .WPDRes[S.first.ByteOffset];
2078     if (tryFindVirtualCallTargets(TargetsForSlot, TypeMemberInfos,
2079                                   S.first.ByteOffset)) {
2080 
2081       if (!trySingleImplDevirt(ExportSummary, TargetsForSlot, S.second, Res)) {
2082         DidVirtualConstProp |=
2083             tryVirtualConstProp(TargetsForSlot, S.second, Res, S.first);
2084 
2085         tryICallBranchFunnel(TargetsForSlot, S.second, Res, S.first);
2086       }
2087 
2088       // Collect functions devirtualized at least for one call site for stats.
2089       if (RemarksEnabled)
2090         for (const auto &T : TargetsForSlot)
2091           if (T.WasDevirt)
2092             DevirtTargets[std::string(T.Fn->getName())] = T.Fn;
2093     }
2094 
2095     // CFI-specific: if we are exporting and any llvm.type.checked.load
2096     // intrinsics were *not* devirtualized, we need to add the resulting
2097     // llvm.type.test intrinsics to the function summaries so that the
2098     // LowerTypeTests pass will export them.
2099     if (ExportSummary && isa<MDString>(S.first.TypeID)) {
2100       auto GUID =
2101           GlobalValue::getGUID(cast<MDString>(S.first.TypeID)->getString());
2102       for (auto FS : S.second.CSInfo.SummaryTypeCheckedLoadUsers)
2103         FS->addTypeTest(GUID);
2104       for (auto &CCS : S.second.ConstCSInfo)
2105         for (auto FS : CCS.second.SummaryTypeCheckedLoadUsers)
2106           FS->addTypeTest(GUID);
2107     }
2108   }
2109 
2110   if (RemarksEnabled) {
2111     // Generate remarks for each devirtualized function.
2112     for (const auto &DT : DevirtTargets) {
2113       Function *F = DT.second;
2114 
2115       using namespace ore;
2116       OREGetter(F).emit(OptimizationRemark(DEBUG_TYPE, "Devirtualized", F)
2117                         << "devirtualized "
2118                         << NV("FunctionName", DT.first));
2119     }
2120   }
2121 
2122   removeRedundantTypeTests();
2123 
2124   // Rebuild each global we touched as part of virtual constant propagation to
2125   // include the before and after bytes.
2126   if (DidVirtualConstProp)
2127     for (VTableBits &B : Bits)
2128       rebuildGlobal(B);
2129 
2130   // We have lowered or deleted the type instrinsics, so we will no
2131   // longer have enough information to reason about the liveness of virtual
2132   // function pointers in GlobalDCE.
2133   for (GlobalVariable &GV : M.globals())
2134     GV.eraseMetadata(LLVMContext::MD_vcall_visibility);
2135 
2136   return true;
2137 }
2138 
2139 void DevirtIndex::run() {
2140   if (ExportSummary.typeIdCompatibleVtableMap().empty())
2141     return;
2142 
2143   DenseMap<GlobalValue::GUID, std::vector<StringRef>> NameByGUID;
2144   for (auto &P : ExportSummary.typeIdCompatibleVtableMap()) {
2145     NameByGUID[GlobalValue::getGUID(P.first)].push_back(P.first);
2146   }
2147 
2148   // Collect information from summary about which calls to try to devirtualize.
2149   for (auto &P : ExportSummary) {
2150     for (auto &S : P.second.SummaryList) {
2151       auto *FS = dyn_cast<FunctionSummary>(S.get());
2152       if (!FS)
2153         continue;
2154       // FIXME: Only add live functions.
2155       for (FunctionSummary::VFuncId VF : FS->type_test_assume_vcalls()) {
2156         for (StringRef Name : NameByGUID[VF.GUID]) {
2157           CallSlots[{Name, VF.Offset}].CSInfo.addSummaryTypeTestAssumeUser(FS);
2158         }
2159       }
2160       for (FunctionSummary::VFuncId VF : FS->type_checked_load_vcalls()) {
2161         for (StringRef Name : NameByGUID[VF.GUID]) {
2162           CallSlots[{Name, VF.Offset}].CSInfo.addSummaryTypeCheckedLoadUser(FS);
2163         }
2164       }
2165       for (const FunctionSummary::ConstVCall &VC :
2166            FS->type_test_assume_const_vcalls()) {
2167         for (StringRef Name : NameByGUID[VC.VFunc.GUID]) {
2168           CallSlots[{Name, VC.VFunc.Offset}]
2169               .ConstCSInfo[VC.Args]
2170               .addSummaryTypeTestAssumeUser(FS);
2171         }
2172       }
2173       for (const FunctionSummary::ConstVCall &VC :
2174            FS->type_checked_load_const_vcalls()) {
2175         for (StringRef Name : NameByGUID[VC.VFunc.GUID]) {
2176           CallSlots[{Name, VC.VFunc.Offset}]
2177               .ConstCSInfo[VC.Args]
2178               .addSummaryTypeCheckedLoadUser(FS);
2179         }
2180       }
2181     }
2182   }
2183 
2184   std::set<ValueInfo> DevirtTargets;
2185   // For each (type, offset) pair:
2186   for (auto &S : CallSlots) {
2187     // Search each of the members of the type identifier for the virtual
2188     // function implementation at offset S.first.ByteOffset, and add to
2189     // TargetsForSlot.
2190     std::vector<ValueInfo> TargetsForSlot;
2191     auto TidSummary = ExportSummary.getTypeIdCompatibleVtableSummary(S.first.TypeID);
2192     assert(TidSummary);
2193     // Create the type id summary resolution regardlness of whether we can
2194     // devirtualize, so that lower type tests knows the type id is used on
2195     // a global and not Unsat.
2196     WholeProgramDevirtResolution *Res =
2197         &ExportSummary.getOrInsertTypeIdSummary(S.first.TypeID)
2198              .WPDRes[S.first.ByteOffset];
2199     if (tryFindVirtualCallTargets(TargetsForSlot, *TidSummary,
2200                                   S.first.ByteOffset)) {
2201 
2202       if (!trySingleImplDevirt(TargetsForSlot, S.first, S.second, Res,
2203                                DevirtTargets))
2204         continue;
2205     }
2206   }
2207 
2208   // Optionally have the thin link print message for each devirtualized
2209   // function.
2210   if (PrintSummaryDevirt)
2211     for (const auto &DT : DevirtTargets)
2212       errs() << "Devirtualized call to " << DT << "\n";
2213 
2214   return;
2215 }
2216