clang 20.0.0 (based on r547379) from build 12806354. Bug: http://b/379133546 Test: N/A Change-Id: I2eb8938af55d809de674be63cb30cf27e801862b Upstream-Commit: ad834e67b1105d15ef907f6255d4c96e8e733f57
344 lines
14 KiB
C++
344 lines
14 KiB
C++
//==- llvm/Analysis/MemoryBuiltins.h - Calls to memory builtins --*- C++ -*-==//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// This family of functions identifies calls to builtin functions that allocate
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// or free memory.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_ANALYSIS_MEMORYBUILTINS_H
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#define LLVM_ANALYSIS_MEMORYBUILTINS_H
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#include "llvm/ADT/APInt.h"
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#include "llvm/ADT/DenseMap.h"
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#include "llvm/ADT/SmallPtrSet.h"
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#include "llvm/Analysis/TargetFolder.h"
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#include "llvm/IR/IRBuilder.h"
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#include "llvm/IR/InstVisitor.h"
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#include "llvm/IR/ValueHandle.h"
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#include <cstdint>
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#include <optional>
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#include <utility>
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namespace llvm {
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class AllocaInst;
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class AAResults;
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class Argument;
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class ConstantPointerNull;
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class DataLayout;
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class ExtractElementInst;
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class ExtractValueInst;
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class GEPOperator;
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class GlobalAlias;
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class GlobalVariable;
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class Instruction;
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class IntegerType;
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class IntrinsicInst;
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class IntToPtrInst;
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class LLVMContext;
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class LoadInst;
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class PHINode;
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class SelectInst;
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class Type;
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class UndefValue;
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class Value;
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/// Tests if a value is a call or invoke to a library function that
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/// allocates or reallocates memory (either malloc, calloc, realloc, or strdup
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/// like).
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bool isAllocationFn(const Value *V, const TargetLibraryInfo *TLI);
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bool isAllocationFn(const Value *V,
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function_ref<const TargetLibraryInfo &(Function &)> GetTLI);
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/// Tests if a value is a call or invoke to a library function that
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/// allocates memory via new.
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bool isNewLikeFn(const Value *V, const TargetLibraryInfo *TLI);
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/// Tests if a value is a call or invoke to a library function that
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/// allocates memory similar to malloc or calloc.
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bool isMallocOrCallocLikeFn(const Value *V, const TargetLibraryInfo *TLI);
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/// Tests if a value is a call or invoke to a library function that
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/// allocates memory (either malloc, calloc, or strdup like).
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bool isAllocLikeFn(const Value *V, const TargetLibraryInfo *TLI);
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/// Tests if a function is a call or invoke to a library function that
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/// reallocates memory (e.g., realloc).
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bool isReallocLikeFn(const Function *F);
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/// If this is a call to a realloc function, return the reallocated operand.
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Value *getReallocatedOperand(const CallBase *CB);
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//===----------------------------------------------------------------------===//
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// free Call Utility Functions.
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//
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/// isLibFreeFunction - Returns true if the function is a builtin free()
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bool isLibFreeFunction(const Function *F, const LibFunc TLIFn);
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/// If this if a call to a free function, return the freed operand.
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Value *getFreedOperand(const CallBase *CB, const TargetLibraryInfo *TLI);
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//===----------------------------------------------------------------------===//
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// Properties of allocation functions
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//
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/// Return true if this is a call to an allocation function that does not have
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/// side effects that we are required to preserve beyond the effect of
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/// allocating a new object.
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/// Ex: If our allocation routine has a counter for the number of objects
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/// allocated, and the program prints it on exit, can the value change due
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/// to optimization? Answer is highly language dependent.
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/// Note: *Removable* really does mean removable; it does not mean observable.
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/// A language (e.g. C++) can allow removing allocations without allowing
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/// insertion or speculative execution of allocation routines.
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bool isRemovableAlloc(const CallBase *V, const TargetLibraryInfo *TLI);
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/// Gets the alignment argument for an aligned_alloc-like function, using either
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/// built-in knowledge based on fuction names/signatures or allocalign
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/// attributes. Note: the Value returned may not indicate a valid alignment, per
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/// the definition of the allocalign attribute.
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Value *getAllocAlignment(const CallBase *V, const TargetLibraryInfo *TLI);
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/// Return the size of the requested allocation. With a trivial mapper, this is
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/// similar to calling getObjectSize(..., Exact), but without looking through
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/// calls that return their argument. A mapper function can be used to replace
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/// one Value* (operand to the allocation) with another. This is useful when
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/// doing abstract interpretation.
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std::optional<APInt> getAllocSize(
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const CallBase *CB, const TargetLibraryInfo *TLI,
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function_ref<const Value *(const Value *)> Mapper = [](const Value *V) {
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return V;
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});
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/// If this is a call to an allocation function that initializes memory to a
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/// fixed value, return said value in the requested type. Otherwise, return
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/// nullptr.
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Constant *getInitialValueOfAllocation(const Value *V,
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const TargetLibraryInfo *TLI,
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Type *Ty);
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/// If a function is part of an allocation family (e.g.
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/// malloc/realloc/calloc/free), return the identifier for its family
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/// of functions.
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std::optional<StringRef> getAllocationFamily(const Value *I,
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const TargetLibraryInfo *TLI);
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//===----------------------------------------------------------------------===//
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// Utility functions to compute size of objects.
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//
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/// Various options to control the behavior of getObjectSize.
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struct ObjectSizeOpts {
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/// Controls how we handle conditional statements with unknown conditions.
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enum class Mode : uint8_t {
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/// All branches must be known and have the same size, starting from the
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/// offset, to be merged.
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ExactSizeFromOffset,
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/// All branches must be known and have the same underlying size and offset
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/// to be merged.
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ExactUnderlyingSizeAndOffset,
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/// Evaluate all branches of an unknown condition. If all evaluations
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/// succeed, pick the minimum size.
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Min,
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/// Same as Min, except we pick the maximum size of all of the branches.
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Max,
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};
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/// How we want to evaluate this object's size.
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Mode EvalMode = Mode::ExactSizeFromOffset;
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/// Whether to round the result up to the alignment of allocas, byval
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/// arguments, and global variables.
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bool RoundToAlign = false;
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/// If this is true, null pointers in address space 0 will be treated as
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/// though they can't be evaluated. Otherwise, null is always considered to
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/// point to a 0 byte region of memory.
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bool NullIsUnknownSize = false;
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/// If set, used for more accurate evaluation
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AAResults *AA = nullptr;
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};
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/// Compute the size of the object pointed by Ptr. Returns true and the
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/// object size in Size if successful, and false otherwise. In this context, by
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/// object we mean the region of memory starting at Ptr to the end of the
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/// underlying object pointed to by Ptr.
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///
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/// WARNING: The object size returned is the allocation size. This does not
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/// imply dereferenceability at site of use since the object may be freeed in
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/// between.
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bool getObjectSize(const Value *Ptr, uint64_t &Size, const DataLayout &DL,
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const TargetLibraryInfo *TLI, ObjectSizeOpts Opts = {});
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/// Try to turn a call to \@llvm.objectsize into an integer value of the given
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/// Type. Returns null on failure. If MustSucceed is true, this function will
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/// not return null, and may return conservative values governed by the second
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/// argument of the call to objectsize.
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Value *lowerObjectSizeCall(IntrinsicInst *ObjectSize, const DataLayout &DL,
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const TargetLibraryInfo *TLI, bool MustSucceed);
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Value *lowerObjectSizeCall(
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IntrinsicInst *ObjectSize, const DataLayout &DL,
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const TargetLibraryInfo *TLI, AAResults *AA, bool MustSucceed,
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SmallVectorImpl<Instruction *> *InsertedInstructions = nullptr);
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/// SizeOffsetType - A base template class for the object size visitors. Used
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/// here as a self-documenting way to handle the values rather than using a
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/// \p std::pair.
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template <typename T, class C> struct SizeOffsetType {
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public:
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T Size;
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T Offset;
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SizeOffsetType() = default;
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SizeOffsetType(T Size, T Offset)
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: Size(std::move(Size)), Offset(std::move(Offset)) {}
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bool knownSize() const { return C::known(Size); }
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bool knownOffset() const { return C::known(Offset); }
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bool anyKnown() const { return knownSize() || knownOffset(); }
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bool bothKnown() const { return knownSize() && knownOffset(); }
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bool operator==(const SizeOffsetType<T, C> &RHS) const {
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return Size == RHS.Size && Offset == RHS.Offset;
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}
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bool operator!=(const SizeOffsetType<T, C> &RHS) const {
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return !(*this == RHS);
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}
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};
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/// SizeOffsetAPInt - Used by \p ObjectSizeOffsetVisitor, which works with
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/// \p APInts.
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struct SizeOffsetAPInt : public SizeOffsetType<APInt, SizeOffsetAPInt> {
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SizeOffsetAPInt() = default;
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SizeOffsetAPInt(APInt Size, APInt Offset)
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: SizeOffsetType(std::move(Size), std::move(Offset)) {}
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static bool known(const APInt &V) { return V.getBitWidth() > 1; }
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};
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/// Evaluate the size and offset of an object pointed to by a Value*
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/// statically. Fails if size or offset are not known at compile time.
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class ObjectSizeOffsetVisitor
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: public InstVisitor<ObjectSizeOffsetVisitor, SizeOffsetAPInt> {
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const DataLayout &DL;
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const TargetLibraryInfo *TLI;
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ObjectSizeOpts Options;
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unsigned IntTyBits;
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APInt Zero;
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SmallDenseMap<Instruction *, SizeOffsetAPInt, 8> SeenInsts;
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unsigned InstructionsVisited;
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APInt align(APInt Size, MaybeAlign Align);
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static SizeOffsetAPInt unknown() { return SizeOffsetAPInt(); }
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public:
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ObjectSizeOffsetVisitor(const DataLayout &DL, const TargetLibraryInfo *TLI,
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LLVMContext &Context, ObjectSizeOpts Options = {});
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SizeOffsetAPInt compute(Value *V);
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// These are "private", except they can't actually be made private. Only
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// compute() should be used by external users.
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SizeOffsetAPInt visitAllocaInst(AllocaInst &I);
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SizeOffsetAPInt visitArgument(Argument &A);
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SizeOffsetAPInt visitCallBase(CallBase &CB);
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SizeOffsetAPInt visitConstantPointerNull(ConstantPointerNull &);
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SizeOffsetAPInt visitExtractElementInst(ExtractElementInst &I);
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SizeOffsetAPInt visitExtractValueInst(ExtractValueInst &I);
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SizeOffsetAPInt visitGlobalAlias(GlobalAlias &GA);
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SizeOffsetAPInt visitGlobalVariable(GlobalVariable &GV);
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SizeOffsetAPInt visitIntToPtrInst(IntToPtrInst &);
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SizeOffsetAPInt visitLoadInst(LoadInst &I);
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SizeOffsetAPInt visitPHINode(PHINode &);
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SizeOffsetAPInt visitSelectInst(SelectInst &I);
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SizeOffsetAPInt visitUndefValue(UndefValue &);
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SizeOffsetAPInt visitInstruction(Instruction &I);
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private:
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SizeOffsetAPInt findLoadSizeOffset(
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LoadInst &LoadFrom, BasicBlock &BB, BasicBlock::iterator From,
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SmallDenseMap<BasicBlock *, SizeOffsetAPInt, 8> &VisitedBlocks,
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unsigned &ScannedInstCount);
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SizeOffsetAPInt combineSizeOffset(SizeOffsetAPInt LHS, SizeOffsetAPInt RHS);
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SizeOffsetAPInt computeImpl(Value *V);
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SizeOffsetAPInt computeValue(Value *V);
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bool CheckedZextOrTrunc(APInt &I);
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};
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/// SizeOffsetValue - Used by \p ObjectSizeOffsetEvaluator, which works with
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/// \p Values.
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struct SizeOffsetWeakTrackingVH;
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struct SizeOffsetValue : public SizeOffsetType<Value *, SizeOffsetValue> {
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SizeOffsetValue() : SizeOffsetType(nullptr, nullptr) {}
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SizeOffsetValue(Value *Size, Value *Offset) : SizeOffsetType(Size, Offset) {}
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SizeOffsetValue(const SizeOffsetWeakTrackingVH &SOT);
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static bool known(Value *V) { return V != nullptr; }
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};
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/// SizeOffsetWeakTrackingVH - Used by \p ObjectSizeOffsetEvaluator in a
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/// \p DenseMap.
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struct SizeOffsetWeakTrackingVH
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: public SizeOffsetType<WeakTrackingVH, SizeOffsetWeakTrackingVH> {
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SizeOffsetWeakTrackingVH() : SizeOffsetType(nullptr, nullptr) {}
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SizeOffsetWeakTrackingVH(Value *Size, Value *Offset)
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: SizeOffsetType(Size, Offset) {}
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SizeOffsetWeakTrackingVH(const SizeOffsetValue &SOV)
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: SizeOffsetType(SOV.Size, SOV.Offset) {}
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static bool known(WeakTrackingVH V) { return V.pointsToAliveValue(); }
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};
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/// Evaluate the size and offset of an object pointed to by a Value*.
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/// May create code to compute the result at run-time.
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class ObjectSizeOffsetEvaluator
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: public InstVisitor<ObjectSizeOffsetEvaluator, SizeOffsetValue> {
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using BuilderTy = IRBuilder<TargetFolder, IRBuilderCallbackInserter>;
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using WeakEvalType = SizeOffsetWeakTrackingVH;
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using CacheMapTy = DenseMap<const Value *, WeakEvalType>;
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using PtrSetTy = SmallPtrSet<const Value *, 8>;
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const DataLayout &DL;
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const TargetLibraryInfo *TLI;
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LLVMContext &Context;
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BuilderTy Builder;
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IntegerType *IntTy;
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Value *Zero;
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CacheMapTy CacheMap;
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PtrSetTy SeenVals;
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ObjectSizeOpts EvalOpts;
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SmallPtrSet<Instruction *, 8> InsertedInstructions;
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SizeOffsetValue compute_(Value *V);
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public:
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ObjectSizeOffsetEvaluator(const DataLayout &DL, const TargetLibraryInfo *TLI,
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LLVMContext &Context, ObjectSizeOpts EvalOpts = {});
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static SizeOffsetValue unknown() { return SizeOffsetValue(); }
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SizeOffsetValue compute(Value *V);
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// The individual instruction visitors should be treated as private.
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SizeOffsetValue visitAllocaInst(AllocaInst &I);
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SizeOffsetValue visitCallBase(CallBase &CB);
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SizeOffsetValue visitExtractElementInst(ExtractElementInst &I);
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SizeOffsetValue visitExtractValueInst(ExtractValueInst &I);
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SizeOffsetValue visitGEPOperator(GEPOperator &GEP);
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SizeOffsetValue visitIntToPtrInst(IntToPtrInst &);
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SizeOffsetValue visitLoadInst(LoadInst &I);
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SizeOffsetValue visitPHINode(PHINode &PHI);
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SizeOffsetValue visitSelectInst(SelectInst &I);
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SizeOffsetValue visitInstruction(Instruction &I);
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};
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} // end namespace llvm
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#endif // LLVM_ANALYSIS_MEMORYBUILTINS_H
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