clang 20.0.0 (based on r547379) from build 12806354. Bug: http://b/379133546 Test: N/A Change-Id: I2eb8938af55d809de674be63cb30cf27e801862b Upstream-Commit: ad834e67b1105d15ef907f6255d4c96e8e733f57
387 lines
14 KiB
C++
387 lines
14 KiB
C++
//===- Sequence.h - Utility for producing sequences of values ---*- 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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/// \file
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/// Provides some synthesis utilities to produce sequences of values. The names
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/// are intentionally kept very short as they tend to occur in common and
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/// widely used contexts.
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///
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/// The `seq(A, B)` function produces a sequence of values from `A` to up to
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/// (but not including) `B`, i.e., [`A`, `B`), that can be safely iterated over.
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/// `seq` supports both integral (e.g., `int`, `char`, `uint32_t`) and enum
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/// types. `seq_inclusive(A, B)` produces a sequence of values from `A` to `B`,
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/// including `B`.
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///
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/// Examples with integral types:
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/// ```
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/// for (int x : seq(0, 3))
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/// outs() << x << " ";
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/// ```
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///
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/// Prints: `0 1 2 `.
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///
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/// ```
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/// for (int x : seq_inclusive(0, 3))
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/// outs() << x << " ";
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/// ```
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///
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/// Prints: `0 1 2 3 `.
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///
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/// Similar to `seq` and `seq_inclusive`, the `enum_seq` and
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/// `enum_seq_inclusive` functions produce sequences of enum values that can be
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/// iterated over.
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/// To enable iteration with enum types, you need to either mark enums as safe
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/// to iterate on by specializing `enum_iteration_traits`, or opt into
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/// potentially unsafe iteration at every callsite by passing
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/// `force_iteration_on_noniterable_enum`.
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///
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/// Examples with enum types:
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/// ```
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/// namespace X {
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/// enum class MyEnum : unsigned {A = 0, B, C};
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/// } // namespace X
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///
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/// template <> struct enum_iteration_traits<X::MyEnum> {
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/// static contexpr bool is_iterable = true;
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/// };
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///
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/// class MyClass {
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/// public:
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/// enum Safe { D = 3, E, F };
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/// enum MaybeUnsafe { G = 1, H = 2, I = 4 };
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/// };
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///
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/// template <> struct enum_iteration_traits<MyClass::Safe> {
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/// static contexpr bool is_iterable = true;
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/// };
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/// ```
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///
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/// ```
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/// for (auto v : enum_seq(MyClass::Safe::D, MyClass::Safe::F))
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/// outs() << int(v) << " ";
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/// ```
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///
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/// Prints: `3 4 `.
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///
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/// ```
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/// for (auto v : enum_seq(MyClass::MaybeUnsafe::H, MyClass::MaybeUnsafe::I,
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/// force_iteration_on_noniterable_enum))
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/// outs() << int(v) << " ";
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/// ```
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///
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/// Prints: `2 3 `.
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///
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_ADT_SEQUENCE_H
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#define LLVM_ADT_SEQUENCE_H
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#include <cassert> // assert
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#include <iterator> // std::random_access_iterator_tag
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#include <limits> // std::numeric_limits
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#include <type_traits> // std::is_integral, std::is_enum, std::underlying_type,
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// std::enable_if
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#include "llvm/Support/MathExtras.h" // AddOverflow / SubOverflow
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namespace llvm {
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// Enum traits that marks enums as safe or unsafe to iterate over.
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// By default, enum types are *not* considered safe for iteration.
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// To allow iteration for your enum type, provide a specialization with
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// `is_iterable` set to `true` in the `llvm` namespace.
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// Alternatively, you can pass the `force_iteration_on_noniterable_enum` tag
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// to `enum_seq` or `enum_seq_inclusive`.
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template <typename EnumT> struct enum_iteration_traits {
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static constexpr bool is_iterable = false;
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};
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struct force_iteration_on_noniterable_enum_t {
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explicit force_iteration_on_noniterable_enum_t() = default;
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};
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inline constexpr force_iteration_on_noniterable_enum_t
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force_iteration_on_noniterable_enum;
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namespace detail {
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// Returns whether a value of type U can be represented with type T.
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template <typename T, typename U> bool canTypeFitValue(const U Value) {
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const intmax_t BotT = intmax_t(std::numeric_limits<T>::min());
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const intmax_t BotU = intmax_t(std::numeric_limits<U>::min());
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const uintmax_t TopT = uintmax_t(std::numeric_limits<T>::max());
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const uintmax_t TopU = uintmax_t(std::numeric_limits<U>::max());
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return !((BotT > BotU && Value < static_cast<U>(BotT)) ||
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(TopT < TopU && Value > static_cast<U>(TopT)));
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}
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// An integer type that asserts when:
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// - constructed from a value that doesn't fit into intmax_t,
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// - casted to a type that cannot hold the current value,
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// - its internal representation overflows.
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struct CheckedInt {
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// Integral constructor, asserts if Value cannot be represented as intmax_t.
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template <typename Integral,
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std::enable_if_t<std::is_integral<Integral>::value, bool> = 0>
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static CheckedInt from(Integral FromValue) {
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if (!canTypeFitValue<intmax_t>(FromValue))
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assertOutOfBounds();
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CheckedInt Result;
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Result.Value = static_cast<intmax_t>(FromValue);
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return Result;
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}
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// Enum constructor, asserts if Value cannot be represented as intmax_t.
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template <typename Enum,
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std::enable_if_t<std::is_enum<Enum>::value, bool> = 0>
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static CheckedInt from(Enum FromValue) {
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using type = std::underlying_type_t<Enum>;
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return from<type>(static_cast<type>(FromValue));
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}
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// Equality
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bool operator==(const CheckedInt &O) const { return Value == O.Value; }
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bool operator!=(const CheckedInt &O) const { return Value != O.Value; }
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CheckedInt operator+(intmax_t Offset) const {
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CheckedInt Result;
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if (AddOverflow(Value, Offset, Result.Value))
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assertOutOfBounds();
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return Result;
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}
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intmax_t operator-(CheckedInt Other) const {
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intmax_t Result;
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if (SubOverflow(Value, Other.Value, Result))
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assertOutOfBounds();
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return Result;
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}
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// Convert to integral, asserts if Value cannot be represented as Integral.
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template <typename Integral,
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std::enable_if_t<std::is_integral<Integral>::value, bool> = 0>
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Integral to() const {
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if (!canTypeFitValue<Integral>(Value))
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assertOutOfBounds();
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return static_cast<Integral>(Value);
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}
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// Convert to enum, asserts if Value cannot be represented as Enum's
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// underlying type.
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template <typename Enum,
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std::enable_if_t<std::is_enum<Enum>::value, bool> = 0>
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Enum to() const {
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using type = std::underlying_type_t<Enum>;
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return Enum(to<type>());
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}
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private:
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static void assertOutOfBounds() { assert(false && "Out of bounds"); }
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intmax_t Value;
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};
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template <typename T, bool IsReverse> struct SafeIntIterator {
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using iterator_category = std::random_access_iterator_tag;
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using value_type = T;
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using difference_type = intmax_t;
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using pointer = T *;
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using reference = value_type; // The iterator does not reference memory.
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// Construct from T.
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explicit SafeIntIterator(T Value) : SI(CheckedInt::from<T>(Value)) {}
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// Construct from other direction.
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SafeIntIterator(const SafeIntIterator<T, !IsReverse> &O) : SI(O.SI) {}
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// Dereference
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reference operator*() const { return SI.to<T>(); }
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// Indexing
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reference operator[](intmax_t Offset) const { return *(*this + Offset); }
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// Can be compared for equivalence using the equality/inequality operators.
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bool operator==(const SafeIntIterator &O) const { return SI == O.SI; }
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bool operator!=(const SafeIntIterator &O) const { return SI != O.SI; }
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// Comparison
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bool operator<(const SafeIntIterator &O) const { return (*this - O) < 0; }
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bool operator>(const SafeIntIterator &O) const { return (*this - O) > 0; }
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bool operator<=(const SafeIntIterator &O) const { return (*this - O) <= 0; }
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bool operator>=(const SafeIntIterator &O) const { return (*this - O) >= 0; }
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// Pre Increment/Decrement
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void operator++() { offset(1); }
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void operator--() { offset(-1); }
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// Post Increment/Decrement
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SafeIntIterator operator++(int) {
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const auto Copy = *this;
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++*this;
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return Copy;
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}
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SafeIntIterator operator--(int) {
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const auto Copy = *this;
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--*this;
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return Copy;
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}
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// Compound assignment operators
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void operator+=(intmax_t Offset) { offset(Offset); }
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void operator-=(intmax_t Offset) { offset(-Offset); }
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// Arithmetic
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SafeIntIterator operator+(intmax_t Offset) const { return add(Offset); }
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SafeIntIterator operator-(intmax_t Offset) const { return add(-Offset); }
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// Difference
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intmax_t operator-(const SafeIntIterator &O) const {
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return IsReverse ? O.SI - SI : SI - O.SI;
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}
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private:
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SafeIntIterator(const CheckedInt &SI) : SI(SI) {}
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static intmax_t getOffset(intmax_t Offset) {
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return IsReverse ? -Offset : Offset;
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}
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CheckedInt add(intmax_t Offset) const { return SI + getOffset(Offset); }
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void offset(intmax_t Offset) { SI = SI + getOffset(Offset); }
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CheckedInt SI;
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// To allow construction from the other direction.
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template <typename, bool> friend struct SafeIntIterator;
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};
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} // namespace detail
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template <typename T> struct iota_range {
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using value_type = T;
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using reference = T &;
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using const_reference = const T &;
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using iterator = detail::SafeIntIterator<value_type, false>;
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using const_iterator = iterator;
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using reverse_iterator = detail::SafeIntIterator<value_type, true>;
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using const_reverse_iterator = reverse_iterator;
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using difference_type = intmax_t;
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using size_type = std::size_t;
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explicit iota_range(T Begin, T End, bool Inclusive)
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: BeginValue(Begin), PastEndValue(End) {
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assert(Begin <= End && "Begin must be less or equal to End.");
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if (Inclusive)
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++PastEndValue;
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}
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size_t size() const { return PastEndValue - BeginValue; }
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bool empty() const { return BeginValue == PastEndValue; }
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auto begin() const { return const_iterator(BeginValue); }
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auto end() const { return const_iterator(PastEndValue); }
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auto rbegin() const { return const_reverse_iterator(PastEndValue - 1); }
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auto rend() const { return const_reverse_iterator(BeginValue - 1); }
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private:
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static_assert(std::is_integral<T>::value || std::is_enum<T>::value,
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"T must be an integral or enum type");
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static_assert(std::is_same<T, std::remove_cv_t<T>>::value,
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"T must not be const nor volatile");
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iterator BeginValue;
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iterator PastEndValue;
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};
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/// Iterate over an integral type from Begin up to - but not including - End.
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/// Note: Begin and End values have to be within [INTMAX_MIN, INTMAX_MAX] for
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/// forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX] for reverse
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/// iteration).
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template <typename T, typename = std::enable_if_t<std::is_integral<T>::value &&
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!std::is_enum<T>::value>>
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auto seq(T Begin, T End) {
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return iota_range<T>(Begin, End, false);
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}
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/// Iterate over an integral type from 0 up to - but not including - Size.
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/// Note: Size value has to be within [INTMAX_MIN, INTMAX_MAX - 1] for
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/// forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX - 1] for reverse
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/// iteration).
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template <typename T, typename = std::enable_if_t<std::is_integral<T>::value &&
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!std::is_enum<T>::value>>
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auto seq(T Size) {
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return seq<T>(0, Size);
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}
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/// Iterate over an integral type from Begin to End inclusive.
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/// Note: Begin and End values have to be within [INTMAX_MIN, INTMAX_MAX - 1]
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/// for forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX - 1] for reverse
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/// iteration).
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template <typename T, typename = std::enable_if_t<std::is_integral<T>::value &&
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!std::is_enum<T>::value>>
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auto seq_inclusive(T Begin, T End) {
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return iota_range<T>(Begin, End, true);
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}
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/// Iterate over an enum type from Begin up to - but not including - End.
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/// Note: `enum_seq` will generate each consecutive value, even if no
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/// enumerator with that value exists.
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/// Note: Begin and End values have to be within [INTMAX_MIN, INTMAX_MAX] for
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/// forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX] for reverse
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/// iteration).
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template <typename EnumT,
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typename = std::enable_if_t<std::is_enum<EnumT>::value>>
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auto enum_seq(EnumT Begin, EnumT End) {
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static_assert(enum_iteration_traits<EnumT>::is_iterable,
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"Enum type is not marked as iterable.");
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return iota_range<EnumT>(Begin, End, false);
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}
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/// Iterate over an enum type from Begin up to - but not including - End, even
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/// when `EnumT` is not marked as safely iterable by `enum_iteration_traits`.
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/// Note: `enum_seq` will generate each consecutive value, even if no
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/// enumerator with that value exists.
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/// Note: Begin and End values have to be within [INTMAX_MIN, INTMAX_MAX] for
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/// forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX] for reverse
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/// iteration).
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template <typename EnumT,
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typename = std::enable_if_t<std::is_enum<EnumT>::value>>
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auto enum_seq(EnumT Begin, EnumT End, force_iteration_on_noniterable_enum_t) {
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return iota_range<EnumT>(Begin, End, false);
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}
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/// Iterate over an enum type from Begin to End inclusive.
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/// Note: `enum_seq_inclusive` will generate each consecutive value, even if no
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/// enumerator with that value exists.
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/// Note: Begin and End values have to be within [INTMAX_MIN, INTMAX_MAX - 1]
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/// for forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX - 1] for reverse
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/// iteration).
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template <typename EnumT,
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typename = std::enable_if_t<std::is_enum<EnumT>::value>>
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auto enum_seq_inclusive(EnumT Begin, EnumT End) {
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static_assert(enum_iteration_traits<EnumT>::is_iterable,
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"Enum type is not marked as iterable.");
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return iota_range<EnumT>(Begin, End, true);
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}
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/// Iterate over an enum type from Begin to End inclusive, even when `EnumT`
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/// is not marked as safely iterable by `enum_iteration_traits`.
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/// Note: `enum_seq_inclusive` will generate each consecutive value, even if no
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/// enumerator with that value exists.
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/// Note: Begin and End values have to be within [INTMAX_MIN, INTMAX_MAX - 1]
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/// for forward iteration (resp. [INTMAX_MIN + 1, INTMAX_MAX - 1] for reverse
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/// iteration).
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template <typename EnumT,
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typename = std::enable_if_t<std::is_enum<EnumT>::value>>
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auto enum_seq_inclusive(EnumT Begin, EnumT End,
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force_iteration_on_noniterable_enum_t) {
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return iota_range<EnumT>(Begin, End, true);
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}
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} // end namespace llvm
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#endif // LLVM_ADT_SEQUENCE_H
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