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add flatgeobuf dependencies [#2]
This commit is contained in:
@@ -0,0 +1,509 @@
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/*
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* Copyright 2017 Google Inc. All rights reserved.
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#ifndef FLATBUFFERS_STL_EMULATION_H_
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#define FLATBUFFERS_STL_EMULATION_H_
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// clang-format off
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#include "flatbuffers/base.h"
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#include <string>
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#include <type_traits>
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#include <vector>
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#include <memory>
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#include <limits>
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// Detect C++17 compatible compiler.
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// __cplusplus >= 201703L - a compiler has support of 'static inline' variables.
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#if defined(FLATBUFFERS_USE_STD_OPTIONAL) \
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|| (defined(__cplusplus) && __cplusplus >= 201703L) \
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|| (defined(_MSVC_LANG) && (_MSVC_LANG >= 201703L))
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#include <optional>
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#ifndef FLATBUFFERS_USE_STD_OPTIONAL
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#define FLATBUFFERS_USE_STD_OPTIONAL
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#endif
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#endif // defined(FLATBUFFERS_USE_STD_OPTIONAL) ...
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// The __cpp_lib_span is the predefined feature macro.
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#if defined(FLATBUFFERS_USE_STD_SPAN)
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#include <span>
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#elif defined(__cpp_lib_span) && defined(__has_include)
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#if __has_include(<span>)
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#include <span>
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#define FLATBUFFERS_USE_STD_SPAN
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#endif
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#else
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// Disable non-trivial ctors if FLATBUFFERS_SPAN_MINIMAL defined.
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#if !defined(FLATBUFFERS_TEMPLATES_ALIASES)
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#define FLATBUFFERS_SPAN_MINIMAL
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#else
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// Enable implicit construction of a span<T,N> from a std::array<T,N>.
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#include <array>
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#endif
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#endif // defined(FLATBUFFERS_USE_STD_SPAN)
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// This header provides backwards compatibility for older versions of the STL.
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namespace flatbuffers {
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#if defined(FLATBUFFERS_TEMPLATES_ALIASES)
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template <typename T>
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using numeric_limits = std::numeric_limits<T>;
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#else
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template <typename T> class numeric_limits :
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public std::numeric_limits<T> {};
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#endif // defined(FLATBUFFERS_TEMPLATES_ALIASES)
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#if defined(FLATBUFFERS_TEMPLATES_ALIASES)
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template <typename T> using is_scalar = std::is_scalar<T>;
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template <typename T, typename U> using is_same = std::is_same<T,U>;
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template <typename T> using is_floating_point = std::is_floating_point<T>;
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template <typename T> using is_unsigned = std::is_unsigned<T>;
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template <typename T> using is_enum = std::is_enum<T>;
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template <typename T> using make_unsigned = std::make_unsigned<T>;
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template<bool B, class T, class F>
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using conditional = std::conditional<B, T, F>;
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template<class T, T v>
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using integral_constant = std::integral_constant<T, v>;
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template <bool B>
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using bool_constant = integral_constant<bool, B>;
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using true_type = std::true_type;
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using false_type = std::false_type;
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#else
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// MSVC 2010 doesn't support C++11 aliases.
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template <typename T> struct is_scalar : public std::is_scalar<T> {};
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template <typename T, typename U> struct is_same : public std::is_same<T,U> {};
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template <typename T> struct is_floating_point :
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public std::is_floating_point<T> {};
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template <typename T> struct is_unsigned : public std::is_unsigned<T> {};
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template <typename T> struct is_enum : public std::is_enum<T> {};
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template <typename T> struct make_unsigned : public std::make_unsigned<T> {};
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template<bool B, class T, class F>
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struct conditional : public std::conditional<B, T, F> {};
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template<class T, T v>
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struct integral_constant : public std::integral_constant<T, v> {};
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template <bool B>
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struct bool_constant : public integral_constant<bool, B> {};
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typedef bool_constant<true> true_type;
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typedef bool_constant<false> false_type;
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#endif // defined(FLATBUFFERS_TEMPLATES_ALIASES)
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#if defined(FLATBUFFERS_TEMPLATES_ALIASES)
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template <class T> using unique_ptr = std::unique_ptr<T>;
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#else
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// MSVC 2010 doesn't support C++11 aliases.
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// We're manually "aliasing" the class here as we want to bring unique_ptr
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// into the flatbuffers namespace. We have unique_ptr in the flatbuffers
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// namespace we have a completely independent implementation (see below)
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// for C++98 STL implementations.
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template <class T> class unique_ptr : public std::unique_ptr<T> {
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public:
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unique_ptr() {}
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explicit unique_ptr(T* p) : std::unique_ptr<T>(p) {}
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unique_ptr(std::unique_ptr<T>&& u) { *this = std::move(u); }
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unique_ptr(unique_ptr&& u) { *this = std::move(u); }
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unique_ptr& operator=(std::unique_ptr<T>&& u) {
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std::unique_ptr<T>::reset(u.release());
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return *this;
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}
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unique_ptr& operator=(unique_ptr&& u) {
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std::unique_ptr<T>::reset(u.release());
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return *this;
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}
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unique_ptr& operator=(T* p) {
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return std::unique_ptr<T>::operator=(p);
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}
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};
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#endif // defined(FLATBUFFERS_TEMPLATES_ALIASES)
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#ifdef FLATBUFFERS_USE_STD_OPTIONAL
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template<class T>
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using Optional = std::optional<T>;
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using nullopt_t = std::nullopt_t;
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inline constexpr nullopt_t nullopt = std::nullopt;
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#else
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// Limited implementation of Optional<T> type for a scalar T.
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// This implementation limited by trivial types compatible with
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// std::is_arithmetic<T> or std::is_enum<T> type traits.
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// A tag to indicate an empty flatbuffers::optional<T>.
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struct nullopt_t {
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explicit FLATBUFFERS_CONSTEXPR_CPP11 nullopt_t(int) {}
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};
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#if defined(FLATBUFFERS_CONSTEXPR_DEFINED)
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namespace internal {
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template <class> struct nullopt_holder {
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static constexpr nullopt_t instance_ = nullopt_t(0);
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};
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template<class Dummy>
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constexpr nullopt_t nullopt_holder<Dummy>::instance_;
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}
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static constexpr const nullopt_t &nullopt = internal::nullopt_holder<void>::instance_;
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#else
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namespace internal {
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template <class> struct nullopt_holder {
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static const nullopt_t instance_;
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};
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template<class Dummy>
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const nullopt_t nullopt_holder<Dummy>::instance_ = nullopt_t(0);
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}
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static const nullopt_t &nullopt = internal::nullopt_holder<void>::instance_;
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#endif
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template<class T>
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class Optional FLATBUFFERS_FINAL_CLASS {
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// Non-scalar 'T' would extremely complicated Optional<T>.
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// Use is_scalar<T> checking because flatbuffers flatbuffers::is_arithmetic<T>
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// isn't implemented.
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static_assert(flatbuffers::is_scalar<T>::value, "unexpected type T");
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public:
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~Optional() {}
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FLATBUFFERS_CONSTEXPR_CPP11 Optional() FLATBUFFERS_NOEXCEPT
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: value_(), has_value_(false) {}
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FLATBUFFERS_CONSTEXPR_CPP11 Optional(nullopt_t) FLATBUFFERS_NOEXCEPT
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: value_(), has_value_(false) {}
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FLATBUFFERS_CONSTEXPR_CPP11 Optional(T val) FLATBUFFERS_NOEXCEPT
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: value_(val), has_value_(true) {}
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FLATBUFFERS_CONSTEXPR_CPP11 Optional(const Optional &other) FLATBUFFERS_NOEXCEPT
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: value_(other.value_), has_value_(other.has_value_) {}
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FLATBUFFERS_CONSTEXPR_CPP14 Optional &operator=(const Optional &other) FLATBUFFERS_NOEXCEPT {
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value_ = other.value_;
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has_value_ = other.has_value_;
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return *this;
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}
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FLATBUFFERS_CONSTEXPR_CPP14 Optional &operator=(nullopt_t) FLATBUFFERS_NOEXCEPT {
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value_ = T();
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has_value_ = false;
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return *this;
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}
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FLATBUFFERS_CONSTEXPR_CPP14 Optional &operator=(T val) FLATBUFFERS_NOEXCEPT {
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value_ = val;
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has_value_ = true;
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return *this;
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}
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void reset() FLATBUFFERS_NOEXCEPT {
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*this = nullopt;
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}
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void swap(Optional &other) FLATBUFFERS_NOEXCEPT {
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std::swap(value_, other.value_);
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std::swap(has_value_, other.has_value_);
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}
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FLATBUFFERS_CONSTEXPR_CPP11 FLATBUFFERS_EXPLICIT_CPP11 operator bool() const FLATBUFFERS_NOEXCEPT {
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return has_value_;
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}
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FLATBUFFERS_CONSTEXPR_CPP11 bool has_value() const FLATBUFFERS_NOEXCEPT {
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return has_value_;
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}
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FLATBUFFERS_CONSTEXPR_CPP11 const T& operator*() const FLATBUFFERS_NOEXCEPT {
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return value_;
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}
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const T& value() const {
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FLATBUFFERS_ASSERT(has_value());
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return value_;
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}
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T value_or(T default_value) const FLATBUFFERS_NOEXCEPT {
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return has_value() ? value_ : default_value;
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}
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private:
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T value_;
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bool has_value_;
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};
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template<class T>
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FLATBUFFERS_CONSTEXPR_CPP11 bool operator==(const Optional<T>& opt, nullopt_t) FLATBUFFERS_NOEXCEPT {
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return !opt;
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}
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template<class T>
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FLATBUFFERS_CONSTEXPR_CPP11 bool operator==(nullopt_t, const Optional<T>& opt) FLATBUFFERS_NOEXCEPT {
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return !opt;
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}
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template<class T, class U>
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FLATBUFFERS_CONSTEXPR_CPP11 bool operator==(const Optional<T>& lhs, const U& rhs) FLATBUFFERS_NOEXCEPT {
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return static_cast<bool>(lhs) && (*lhs == rhs);
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}
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template<class T, class U>
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FLATBUFFERS_CONSTEXPR_CPP11 bool operator==(const T& lhs, const Optional<U>& rhs) FLATBUFFERS_NOEXCEPT {
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return static_cast<bool>(rhs) && (lhs == *rhs);
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}
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template<class T, class U>
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FLATBUFFERS_CONSTEXPR_CPP11 bool operator==(const Optional<T>& lhs, const Optional<U>& rhs) FLATBUFFERS_NOEXCEPT {
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return static_cast<bool>(lhs) != static_cast<bool>(rhs)
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? false
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: !static_cast<bool>(lhs) ? false : (*lhs == *rhs);
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}
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#endif // FLATBUFFERS_USE_STD_OPTIONAL
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// Very limited and naive partial implementation of C++20 std::span<T,Extent>.
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#if defined(FLATBUFFERS_USE_STD_SPAN)
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inline constexpr std::size_t dynamic_extent = std::dynamic_extent;
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template<class T, std::size_t Extent = std::dynamic_extent>
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using span = std::span<T, Extent>;
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#else // !defined(FLATBUFFERS_USE_STD_SPAN)
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FLATBUFFERS_CONSTEXPR std::size_t dynamic_extent = static_cast<std::size_t>(-1);
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// Exclude this code if MSVC2010 or non-STL Android is active.
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// The non-STL Android doesn't have `std::is_convertible` required for SFINAE.
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#if !defined(FLATBUFFERS_SPAN_MINIMAL)
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namespace internal {
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// This is SFINAE helper class for checking of a common condition:
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// > This overload only participates in overload resolution
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// > Check whether a pointer to an array of U can be converted
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// > to a pointer to an array of E.
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// This helper is used for checking of 'U -> const U'.
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template<class E, std::size_t Extent, class U, std::size_t N>
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struct is_span_convertable {
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using type =
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typename std::conditional<std::is_convertible<U (*)[], E (*)[]>::value
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&& (Extent == dynamic_extent || N == Extent),
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int, void>::type;
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};
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template<typename T>
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struct SpanIterator {
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// TODO: upgrade to std::random_access_iterator_tag.
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using iterator_category = std::forward_iterator_tag;
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using difference_type = std::ptrdiff_t;
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using value_type = typename std::remove_cv<T>::type;
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using reference = T&;
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using pointer = T*;
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// Convince MSVC compiler that this iterator is trusted (it is verified).
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#ifdef _MSC_VER
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using _Unchecked_type = pointer;
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#endif // _MSC_VER
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SpanIterator(pointer ptr) : ptr_(ptr) {}
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reference operator*() const { return *ptr_; }
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pointer operator->() { return ptr_; }
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SpanIterator& operator++() { ptr_++; return *this; }
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SpanIterator operator++(int) { auto tmp = *this; ++(*this); return tmp; }
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friend bool operator== (const SpanIterator& lhs, const SpanIterator& rhs) { return lhs.ptr_ == rhs.ptr_; }
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friend bool operator!= (const SpanIterator& lhs, const SpanIterator& rhs) { return lhs.ptr_ != rhs.ptr_; }
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private:
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pointer ptr_;
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};
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} // namespace internal
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#endif // !defined(FLATBUFFERS_SPAN_MINIMAL)
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// T - element type; must be a complete type that is not an abstract
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// class type.
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// Extent - the number of elements in the sequence, or dynamic.
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template<class T, std::size_t Extent = dynamic_extent>
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class span FLATBUFFERS_FINAL_CLASS {
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public:
|
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typedef T element_type;
|
||||
typedef T& reference;
|
||||
typedef const T& const_reference;
|
||||
typedef T* pointer;
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||||
typedef const T* const_pointer;
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typedef std::size_t size_type;
|
||||
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static FLATBUFFERS_CONSTEXPR size_type extent = Extent;
|
||||
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||||
// Returns the number of elements in the span.
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FLATBUFFERS_CONSTEXPR_CPP11 size_type size() const FLATBUFFERS_NOEXCEPT {
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return count_;
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}
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||||
|
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// Returns the size of the sequence in bytes.
|
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FLATBUFFERS_CONSTEXPR_CPP11
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size_type size_bytes() const FLATBUFFERS_NOEXCEPT {
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||||
return size() * sizeof(element_type);
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||||
}
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||||
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||||
// Checks if the span is empty.
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 bool empty() const FLATBUFFERS_NOEXCEPT {
|
||||
return size() == 0;
|
||||
}
|
||||
|
||||
// Returns a pointer to the beginning of the sequence.
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 pointer data() const FLATBUFFERS_NOEXCEPT {
|
||||
return data_;
|
||||
}
|
||||
|
||||
#if !defined(FLATBUFFERS_SPAN_MINIMAL)
|
||||
using Iterator = internal::SpanIterator<T>;
|
||||
using ConstIterator = internal::SpanIterator<const T>;
|
||||
|
||||
Iterator begin() const { return Iterator(data()); }
|
||||
Iterator end() const { return Iterator(data() + size()); }
|
||||
|
||||
ConstIterator cbegin() const { return ConstIterator(data()); }
|
||||
ConstIterator cend() const { return ConstIterator(data() + size()); }
|
||||
#endif
|
||||
|
||||
// Returns a reference to the idx-th element of the sequence.
|
||||
// The behavior is undefined if the idx is greater than or equal to size().
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 reference operator[](size_type idx) const {
|
||||
return data()[idx];
|
||||
}
|
||||
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span(const span &other) FLATBUFFERS_NOEXCEPT
|
||||
: data_(other.data_), count_(other.count_) {}
|
||||
|
||||
FLATBUFFERS_CONSTEXPR_CPP14 span &operator=(const span &other)
|
||||
FLATBUFFERS_NOEXCEPT {
|
||||
data_ = other.data_;
|
||||
count_ = other.count_;
|
||||
}
|
||||
|
||||
// Limited implementation of
|
||||
// `template <class It> constexpr std::span(It first, size_type count);`.
|
||||
//
|
||||
// Constructs a span that is a view over the range [first, first + count);
|
||||
// the resulting span has: data() == first and size() == count.
|
||||
// The behavior is undefined if [first, first + count) is not a valid range,
|
||||
// or if (extent != flatbuffers::dynamic_extent && count != extent).
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
explicit span(pointer first, size_type count) FLATBUFFERS_NOEXCEPT
|
||||
: data_ (Extent == dynamic_extent ? first : (Extent == count ? first : nullptr)),
|
||||
count_(Extent == dynamic_extent ? count : (Extent == count ? Extent : 0)) {
|
||||
// Make span empty if the count argument is incompatible with span<T,N>.
|
||||
}
|
||||
|
||||
// Exclude this code if MSVC2010 is active. The MSVC2010 isn't C++11
|
||||
// compliant, it doesn't support default template arguments for functions.
|
||||
#if defined(FLATBUFFERS_SPAN_MINIMAL)
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span() FLATBUFFERS_NOEXCEPT : data_(nullptr),
|
||||
count_(0) {
|
||||
static_assert(extent == 0 || extent == dynamic_extent, "invalid span");
|
||||
}
|
||||
|
||||
#else
|
||||
// Constructs an empty span whose data() == nullptr and size() == 0.
|
||||
// This overload only participates in overload resolution if
|
||||
// extent == 0 || extent == flatbuffers::dynamic_extent.
|
||||
// A dummy template argument N is need dependency for SFINAE.
|
||||
template<std::size_t N = 0,
|
||||
typename internal::is_span_convertable<element_type, Extent, element_type, (N - N)>::type = 0>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span() FLATBUFFERS_NOEXCEPT : data_(nullptr),
|
||||
count_(0) {
|
||||
static_assert(extent == 0 || extent == dynamic_extent, "invalid span");
|
||||
}
|
||||
|
||||
// Constructs a span that is a view over the array arr; the resulting span
|
||||
// has size() == N and data() == std::data(arr). These overloads only
|
||||
// participate in overload resolution if
|
||||
// extent == std::dynamic_extent || N == extent is true and
|
||||
// std::remove_pointer_t<decltype(std::data(arr))>(*)[]
|
||||
// is convertible to element_type (*)[].
|
||||
template<std::size_t N,
|
||||
typename internal::is_span_convertable<element_type, Extent, element_type, N>::type = 0>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span(element_type (&arr)[N]) FLATBUFFERS_NOEXCEPT
|
||||
: data_(arr), count_(N) {}
|
||||
|
||||
template<class U, std::size_t N,
|
||||
typename internal::is_span_convertable<element_type, Extent, U, N>::type = 0>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span(std::array<U, N> &arr) FLATBUFFERS_NOEXCEPT
|
||||
: data_(arr.data()), count_(N) {}
|
||||
|
||||
//template<class U, std::size_t N,
|
||||
// int = 0>
|
||||
//FLATBUFFERS_CONSTEXPR_CPP11 span(std::array<U, N> &arr) FLATBUFFERS_NOEXCEPT
|
||||
// : data_(arr.data()), count_(N) {}
|
||||
|
||||
template<class U, std::size_t N,
|
||||
typename internal::is_span_convertable<element_type, Extent, U, N>::type = 0>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span(const std::array<U, N> &arr) FLATBUFFERS_NOEXCEPT
|
||||
: data_(arr.data()), count_(N) {}
|
||||
|
||||
// Converting constructor from another span s;
|
||||
// the resulting span has size() == s.size() and data() == s.data().
|
||||
// This overload only participates in overload resolution
|
||||
// if extent == std::dynamic_extent || N == extent is true and U (*)[]
|
||||
// is convertible to element_type (*)[].
|
||||
template<class U, std::size_t N,
|
||||
typename internal::is_span_convertable<element_type, Extent, U, N>::type = 0>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11 span(const flatbuffers::span<U, N> &s) FLATBUFFERS_NOEXCEPT
|
||||
: span(s.data(), s.size()) {
|
||||
}
|
||||
|
||||
#endif // !defined(FLATBUFFERS_SPAN_MINIMAL)
|
||||
|
||||
private:
|
||||
// This is a naive implementation with 'count_' member even if (Extent != dynamic_extent).
|
||||
pointer const data_;
|
||||
const size_type count_;
|
||||
};
|
||||
#endif // defined(FLATBUFFERS_USE_STD_SPAN)
|
||||
|
||||
#if !defined(FLATBUFFERS_SPAN_MINIMAL)
|
||||
template<class U, std::size_t N>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
flatbuffers::span<U, N> make_span(U(&arr)[N]) FLATBUFFERS_NOEXCEPT {
|
||||
return span<U, N>(arr);
|
||||
}
|
||||
|
||||
template<class U, std::size_t N>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
flatbuffers::span<const U, N> make_span(const U(&arr)[N]) FLATBUFFERS_NOEXCEPT {
|
||||
return span<const U, N>(arr);
|
||||
}
|
||||
|
||||
template<class U, std::size_t N>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
flatbuffers::span<U, N> make_span(std::array<U, N> &arr) FLATBUFFERS_NOEXCEPT {
|
||||
return span<U, N>(arr);
|
||||
}
|
||||
|
||||
template<class U, std::size_t N>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
flatbuffers::span<const U, N> make_span(const std::array<U, N> &arr) FLATBUFFERS_NOEXCEPT {
|
||||
return span<const U, N>(arr);
|
||||
}
|
||||
|
||||
template<class U, std::size_t N>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
flatbuffers::span<U, dynamic_extent> make_span(U *first, std::size_t count) FLATBUFFERS_NOEXCEPT {
|
||||
return span<U, dynamic_extent>(first, count);
|
||||
}
|
||||
|
||||
template<class U, std::size_t N>
|
||||
FLATBUFFERS_CONSTEXPR_CPP11
|
||||
flatbuffers::span<const U, dynamic_extent> make_span(const U *first, std::size_t count) FLATBUFFERS_NOEXCEPT {
|
||||
return span<const U, dynamic_extent>(first, count);
|
||||
}
|
||||
#endif // !defined(FLATBUFFERS_SPAN_MINIMAL)
|
||||
|
||||
} // namespace flatbuffers
|
||||
|
||||
#endif // FLATBUFFERS_STL_EMULATION_H_
|
||||
Reference in New Issue
Block a user