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Summary: This is patch is part of a series to introduce an Alignment type. See this thread for context: http://lists.llvm.org/pipermail/llvm-dev/2019-July/133851.html See this patch for the introduction of the type: https://reviews.llvm.org/D64790 Reviewers: courbet, JDevlieghere, alexshap, rupprecht, jhenderson Subscribers: sdardis, nemanjai, hiraditya, kbarton, jakehehrlich, jrtc27, MaskRay, atanasyan, jsji, seiya, cfe-commits, llvm-commits Tags: #clang, #llvm Differential Revision: https://reviews.llvm.org/D67499 git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@371742 91177308-0d34-0410-b5e6-96231b3b80d8
335 lines
11 KiB
C++
335 lines
11 KiB
C++
//===-- llvm/Support/Alignment.h - Useful alignment functions ---*- 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 file contains types to represent alignments.
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// They are instrumented to guarantee some invariants are preserved and prevent
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// invalid manipulations.
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//
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// - Align represents an alignment in bytes, it is always set and always a valid
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// power of two, its minimum value is 1 which means no alignment requirements.
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//
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// - MaybeAlign is an optional type, it may be undefined or set. When it's set
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// you can get the underlying Align type by using the getValue() method.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_SUPPORT_ALIGNMENT_H_
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#define LLVM_SUPPORT_ALIGNMENT_H_
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#include "llvm/ADT/Optional.h"
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#include "llvm/Support/Compiler.h"
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#include "llvm/Support/MathExtras.h"
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#include <cassert>
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#include <limits>
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namespace llvm {
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#define ALIGN_CHECK_ISPOSITIVE(decl) \
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assert(decl > 0 && (#decl " should be defined"))
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#define ALIGN_CHECK_ISSET(decl) \
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assert(decl.hasValue() && (#decl " should be defined"))
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/// This struct is a compact representation of a valid (non-zero power of two)
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/// alignment.
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/// It is suitable for use as static global constants.
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struct Align {
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private:
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uint8_t ShiftValue = 0; /// The log2 of the required alignment.
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/// ShiftValue is less than 64 by construction.
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friend struct MaybeAlign;
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friend unsigned Log2(Align);
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friend bool operator==(Align Lhs, Align Rhs);
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friend bool operator!=(Align Lhs, Align Rhs);
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friend bool operator<=(Align Lhs, Align Rhs);
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friend bool operator>=(Align Lhs, Align Rhs);
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friend bool operator<(Align Lhs, Align Rhs);
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friend bool operator>(Align Lhs, Align Rhs);
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friend unsigned encode(struct MaybeAlign A);
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friend struct MaybeAlign decodeMaybeAlign(unsigned Value);
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public:
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/// Default is byte-aligned.
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Align() = default;
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/// Do not perform checks in case of copy/move construct/assign, because the
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/// checks have been performed when building `Other`.
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Align(const Align &Other) = default;
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Align &operator=(const Align &Other) = default;
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Align(Align &&Other) = default;
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Align &operator=(Align &&Other) = default;
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explicit Align(uint64_t Value) {
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assert(Value > 0 && "Value must not be 0");
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assert(llvm::isPowerOf2_64(Value) && "Alignment is not a power of 2");
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ShiftValue = Log2_64(Value);
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assert(ShiftValue < 64 && "Broken invariant");
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}
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/// This is a hole in the type system and should not be abused.
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/// Needed to interact with C for instance.
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uint64_t value() const { return uint64_t(1) << ShiftValue; }
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};
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/// Treats the value 0 as a 1, so Align is always at least 1.
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inline Align assumeAligned(uint64_t Value) {
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return Value ? Align(Value) : Align();
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}
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/// This struct is a compact representation of a valid (power of two) or
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/// undefined (0) alignment.
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struct MaybeAlign : public llvm::Optional<Align> {
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private:
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using UP = llvm::Optional<Align>;
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public:
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/// Default is undefined.
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MaybeAlign() = default;
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/// Do not perform checks in case of copy/move construct/assign, because the
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/// checks have been performed when building `Other`.
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MaybeAlign(const MaybeAlign &Other) = default;
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MaybeAlign &operator=(const MaybeAlign &Other) = default;
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MaybeAlign(MaybeAlign &&Other) = default;
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MaybeAlign &operator=(MaybeAlign &&Other) = default;
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/// Use llvm::Optional<Align> constructor.
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using UP::UP;
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explicit MaybeAlign(uint64_t Value) {
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assert((Value == 0 || llvm::isPowerOf2_64(Value)) &&
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"Alignment is neither 0 nor a power of 2");
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if (Value)
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emplace(Value);
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}
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/// For convenience, returns a valid alignment or 1 if undefined.
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Align valueOrOne() const { return hasValue() ? getValue() : Align(); }
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};
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/// Checks that SizeInBytes is a multiple of the alignment.
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inline bool isAligned(Align Lhs, uint64_t SizeInBytes) {
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return SizeInBytes % Lhs.value() == 0;
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}
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/// Checks that SizeInBytes is a multiple of the alignment.
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/// Returns false if the alignment is undefined.
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inline bool isAligned(MaybeAlign Lhs, uint64_t SizeInBytes) {
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ALIGN_CHECK_ISSET(Lhs);
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return SizeInBytes % (*Lhs).value() == 0;
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}
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/// Returns a multiple of A needed to store `Size` bytes.
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inline uint64_t alignTo(uint64_t Size, Align A) {
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return (Size + A.value() - 1) / A.value() * A.value();
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}
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/// Returns a multiple of A needed to store `Size` bytes.
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/// Returns `Size` if current alignment is undefined.
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inline uint64_t alignTo(uint64_t Size, MaybeAlign A) {
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return A ? alignTo(Size, A.getValue()) : Size;
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}
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/// Returns the offset to the next integer (mod 2**64) that is greater than
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/// or equal to \p Value and is a multiple of \p Align.
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inline uint64_t offsetToAlignment(uint64_t Value, llvm::Align Align) {
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return alignTo(Value, Align) - Value;
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}
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/// Returns the log2 of the alignment.
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inline unsigned Log2(Align A) { return A.ShiftValue; }
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/// Returns the log2 of the alignment.
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/// \pre A must be defined.
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inline unsigned Log2(MaybeAlign A) {
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ALIGN_CHECK_ISSET(A);
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return Log2(A.getValue());
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}
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/// Returns the alignment that satisfies both alignments.
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/// Same semantic as MinAlign.
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inline Align commonAlignment(Align A, Align B) { return std::min(A, B); }
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/// Returns the alignment that satisfies both alignments.
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/// Same semantic as MinAlign.
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inline Align commonAlignment(Align A, uint64_t Offset) {
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return Align(MinAlign(A.value(), Offset));
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}
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/// Returns the alignment that satisfies both alignments.
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/// Same semantic as MinAlign.
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inline MaybeAlign commonAlignment(MaybeAlign A, MaybeAlign B) {
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return A && B ? commonAlignment(*A, *B) : A ? A : B;
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}
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/// Returns the alignment that satisfies both alignments.
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/// Same semantic as MinAlign.
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inline MaybeAlign commonAlignment(MaybeAlign A, uint64_t Offset) {
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return MaybeAlign(MinAlign((*A).value(), Offset));
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}
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/// Returns a representation of the alignment that encodes undefined as 0.
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inline unsigned encode(MaybeAlign A) { return A ? A->ShiftValue + 1 : 0; }
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/// Dual operation of the encode function above.
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inline MaybeAlign decodeMaybeAlign(unsigned Value) {
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if (Value == 0)
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return MaybeAlign();
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Align Out;
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Out.ShiftValue = Value - 1;
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return Out;
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}
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/// Returns a representation of the alignment, the encoded value is positive by
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/// definition.
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inline unsigned encode(Align A) { return encode(MaybeAlign(A)); }
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/// Comparisons between Align and scalars. Rhs must be positive.
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inline bool operator==(Align Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return Lhs.value() == Rhs;
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}
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inline bool operator!=(Align Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return Lhs.value() != Rhs;
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}
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inline bool operator<=(Align Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return Lhs.value() <= Rhs;
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}
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inline bool operator>=(Align Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return Lhs.value() >= Rhs;
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}
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inline bool operator<(Align Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return Lhs.value() < Rhs;
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}
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inline bool operator>(Align Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return Lhs.value() > Rhs;
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}
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/// Comparisons between MaybeAlign and scalars.
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inline bool operator==(MaybeAlign Lhs, uint64_t Rhs) {
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return Lhs ? (*Lhs).value() == Rhs : Rhs == 0;
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}
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inline bool operator!=(MaybeAlign Lhs, uint64_t Rhs) {
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return Lhs ? (*Lhs).value() != Rhs : Rhs != 0;
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}
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inline bool operator<=(MaybeAlign Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return (*Lhs).value() <= Rhs;
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}
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inline bool operator>=(MaybeAlign Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return (*Lhs).value() >= Rhs;
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}
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inline bool operator<(MaybeAlign Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return (*Lhs).value() < Rhs;
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}
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inline bool operator>(MaybeAlign Lhs, uint64_t Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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ALIGN_CHECK_ISPOSITIVE(Rhs);
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return (*Lhs).value() > Rhs;
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}
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/// Comparisons operators between Align.
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inline bool operator==(Align Lhs, Align Rhs) {
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return Lhs.ShiftValue == Rhs.ShiftValue;
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}
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inline bool operator!=(Align Lhs, Align Rhs) {
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return Lhs.ShiftValue != Rhs.ShiftValue;
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}
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inline bool operator<=(Align Lhs, Align Rhs) {
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return Lhs.ShiftValue <= Rhs.ShiftValue;
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}
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inline bool operator>=(Align Lhs, Align Rhs) {
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return Lhs.ShiftValue >= Rhs.ShiftValue;
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}
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inline bool operator<(Align Lhs, Align Rhs) {
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return Lhs.ShiftValue < Rhs.ShiftValue;
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}
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inline bool operator>(Align Lhs, Align Rhs) {
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return Lhs.ShiftValue > Rhs.ShiftValue;
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}
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/// Comparisons operators between Align and MaybeAlign.
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inline bool operator==(Align Lhs, MaybeAlign Rhs) {
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ALIGN_CHECK_ISSET(Rhs);
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return Lhs.value() == (*Rhs).value();
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}
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inline bool operator!=(Align Lhs, MaybeAlign Rhs) {
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ALIGN_CHECK_ISSET(Rhs);
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return Lhs.value() != (*Rhs).value();
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}
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inline bool operator<=(Align Lhs, MaybeAlign Rhs) {
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ALIGN_CHECK_ISSET(Rhs);
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return Lhs.value() <= (*Rhs).value();
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}
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inline bool operator>=(Align Lhs, MaybeAlign Rhs) {
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ALIGN_CHECK_ISSET(Rhs);
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return Lhs.value() >= (*Rhs).value();
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}
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inline bool operator<(Align Lhs, MaybeAlign Rhs) {
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ALIGN_CHECK_ISSET(Rhs);
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return Lhs.value() < (*Rhs).value();
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}
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inline bool operator>(Align Lhs, MaybeAlign Rhs) {
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ALIGN_CHECK_ISSET(Rhs);
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return Lhs.value() > (*Rhs).value();
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}
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/// Comparisons operators between MaybeAlign and Align.
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inline bool operator==(MaybeAlign Lhs, Align Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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return Lhs && (*Lhs).value() == Rhs.value();
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}
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inline bool operator!=(MaybeAlign Lhs, Align Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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return Lhs && (*Lhs).value() != Rhs.value();
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}
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inline bool operator<=(MaybeAlign Lhs, Align Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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return Lhs && (*Lhs).value() <= Rhs.value();
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}
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inline bool operator>=(MaybeAlign Lhs, Align Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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return Lhs && (*Lhs).value() >= Rhs.value();
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}
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inline bool operator<(MaybeAlign Lhs, Align Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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return Lhs && (*Lhs).value() < Rhs.value();
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}
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inline bool operator>(MaybeAlign Lhs, Align Rhs) {
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ALIGN_CHECK_ISSET(Lhs);
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return Lhs && (*Lhs).value() > Rhs.value();
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}
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inline Align operator/(Align Lhs, uint64_t Divisor) {
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assert(llvm::isPowerOf2_64(Divisor) &&
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"Divisor must be positive and a power of 2");
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assert(Lhs != 1 && "Can't halve byte alignment");
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return Align(Lhs.value() / Divisor);
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}
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inline MaybeAlign operator/(MaybeAlign Lhs, uint64_t Divisor) {
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assert(llvm::isPowerOf2_64(Divisor) &&
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"Divisor must be positive and a power of 2");
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return Lhs ? Lhs.getValue() / Divisor : MaybeAlign();
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}
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#undef ALIGN_CHECK_ISPOSITIVE
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#undef ALIGN_CHECK_ISSET
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} // namespace llvm
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#endif // LLVM_SUPPORT_ALIGNMENT_H_
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