Changes code style to Google Style.
Renames namespace meta to internal and put copy functions int it. Replaced constexpr by FMT_CONSTEXPR. Replaced std::ptrdiff_t by std::size_t.
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50ee89b223
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@ -24,201 +24,196 @@ namespace fmt {
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template <typename Char>
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struct formatting_base {
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template <typename ParseContext>
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FMT_CONSTEXPR auto parse(ParseContext &ctx) -> decltype(ctx.begin()) { return ctx.begin(); }
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template <typename ParseContext>
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FMT_CONSTEXPR auto parse(ParseContext &ctx) -> decltype(ctx.begin()) {
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return ctx.begin();
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}
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};
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template <typename Char, typename Enable = void>
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struct formatting_range : formatting_base<Char>
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{
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Char prefix = '{';
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Char delimiter = ',';
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Char postfix = '}';
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bool add_spaces = true;
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struct formatting_range : formatting_base<Char> {
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Char prefix = '{';
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Char delimiter = ',';
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Char postfix = '}';
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static FMT_CONSTEXPR bool add_spaces = false;
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};
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template <typename Char, typename Enable = void>
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struct formatting_tuple : formatting_base<Char>
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{
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Char prefix = '[';
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Char delimiter = ',';
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Char postfix = ']';
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bool add_spaces = true;
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struct formatting_tuple : formatting_base<Char> {
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Char prefix = '[';
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Char delimiter = ',';
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Char postfix = ']';
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static FMT_CONSTEXPR bool add_spaces = false;
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};
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template<typename RangeT, typename OutputIterator>
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namespace internal {
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template <typename RangeT, typename OutputIterator>
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void copy(const RangeT &range, OutputIterator out) {
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for (const auto& it : range) {
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*out++ = it;
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}
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for (const auto &it : range) {
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*out++ = it;
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}
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}
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template<typename OutputIterator>
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template <typename OutputIterator>
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void copy(const char *str, OutputIterator out) {
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const char* p_curr = str;
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while (*p_curr) {
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*out++ = *p_curr++;
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}
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const char *p_curr = str;
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while (*p_curr) {
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*out++ = *p_curr++;
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}
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}
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template<typename OutputIterator>
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void copy(const char ch, OutputIterator out) {
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*out++ = ch;
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template <typename OutputIterator>
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void copy(char ch, OutputIterator out) {
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*out++ = ch;
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}
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} // namespace fmt
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} // namespace internal
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namespace fmt {
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namespace meta {
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namespace internal {
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/// Return true value if T has std::string interface, like std::string_view.
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template<typename T>
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template <typename T>
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class is_like_std_string {
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template<typename U> static auto check(U* p) -> decltype(
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p->find('a')
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, p->length()
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, p->data()
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, int());
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template<typename > static void check(...);
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public:
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static const bool value = !std::is_void< decltype(check<T>(nullptr)) >::value;
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template <typename U>
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static auto check(U *p) -> decltype(p->find('a'), p->length(), p->data(), int());
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template <typename>
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static void check(...);
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public:
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static FMT_CONSTEXPR bool value = !std::is_void<decltype(check<T>(nullptr))>::value;
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};
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template<typename T>
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constexpr bool is_like_std_string_v = is_like_std_string<T>::value;
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template <typename T>
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FMT_CONSTEXPR bool is_like_std_string_v = is_like_std_string<T>::value;
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template<typename... Ts>
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template <typename... Ts>
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struct conditional_helper {};
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template<typename T, typename _ = void>
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template <typename T, typename _ = void>
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struct is_range_ : std::false_type {};
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template<typename T>
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struct is_range_<T,
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std::conditional_t< false,
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conditional_helper<
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decltype(std::declval<T>().begin()),
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decltype(std::declval<T>().end())
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>, void>
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> : std::true_type {};
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template<typename T>
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constexpr bool is_range_v = is_range_<T>::value && !is_like_std_string<T>::value;
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template <typename T>
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struct is_range_<T, std::conditional_t<false,
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conditional_helper<decltype(std::declval<T>().begin()),
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decltype(std::declval<T>().end())>,
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void>> : std::true_type {};
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template <typename T>
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FMT_CONSTEXPR bool is_range_v = is_range_<T>::value && !is_like_std_string<T>::value;
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/// tuple_size and tuple_element check.
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template<typename T>
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template <typename T>
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class is_tuple_like_ {
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template<typename U> static auto check(U* p) -> decltype(
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std::tuple_size< U >::value,
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std::declval<typename std::tuple_element<0, U>::type>(),
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int());
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template<typename > static void check(...);
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public:
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static constexpr bool value = !std::is_void< decltype(check<T>(nullptr)) >::value;
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template <typename U>
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static auto check(U *p)
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-> decltype(std::tuple_size<U>::value,
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std::declval<typename std::tuple_element<0, U>::type>(), int());
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template <typename>
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static void check(...);
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public:
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static FMT_CONSTEXPR bool value = !std::is_void<decltype(check<T>(nullptr))>::value;
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};
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template<typename T>
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constexpr bool is_tuple_like_v = is_tuple_like_<T>::value && !is_range_<T>::value;
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template <typename T>
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FMT_CONSTEXPR bool is_tuple_like_v = is_tuple_like_<T>::value && !is_range_<T>::value;
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//=--------------------------------------------------------------------------------------------------------------------
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template<size_t... Is, class Tuple, class F>
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void for_each(std::index_sequence<Is...>, Tuple&& tup, F&& f) noexcept {
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using std::get;
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// using free function get<I>(T) now.
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const int _[] = { 0,
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((void)f(get<Is>(tup)),
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0)... };
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(void)_; // blocks warnings
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template <size_t... Is, class Tuple, class F>
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void for_each(std::index_sequence<Is...>, Tuple &&tup, F &&f) noexcept {
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using std::get;
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// using free function get<I>(T) now.
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const int _[] = {0, ((void)f(get<Is>(tup)), 0)...};
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(void)_; // blocks warnings
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}
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//=--------------------------------------------------------------------------------------------------------------------
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template<class T>
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constexpr std::make_index_sequence<std::tuple_size<T>::value>
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get_indexes(T const&) { return {}; }
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template <class T>
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FMT_CONSTEXPR std::make_index_sequence<std::tuple_size<T>::value>
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get_indexes(T const &) { return {}; }
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//=--------------------------------------------------------------------------------------------------------------------
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template<class Tuple, class F>
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void for_each(Tuple&& tup, F&& f) {
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const auto indexes = get_indexes(tup);
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for_each(indexes, std::forward<Tuple>(tup), std::forward<F>(f));
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template <class Tuple, class F>
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void for_each(Tuple &&tup, F &&f) {
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const auto indexes = get_indexes(tup);
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for_each(indexes, std::forward<Tuple>(tup), std::forward<F>(f));
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}
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} // namespace meta
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} // namespace fmt
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namespace fmt {
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} // namespace internal
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// =====================================================================================================================
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template<typename TupleT, typename Char>
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struct formatter< TupleT, Char
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, std::enable_if_t<fmt::meta::is_tuple_like_v<TupleT>> >
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{
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fmt::formatting_tuple<Char> formating;
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template <typename TupleT, typename Char>
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struct formatter<TupleT, Char, std::enable_if_t<fmt::internal::is_tuple_like_v<TupleT>>> {
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fmt::formatting_tuple<Char> formating;
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template <typename ParseContext>
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FMT_CONSTEXPR auto parse(ParseContext &ctx) -> decltype(ctx.begin()) {
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return formating.parse(ctx);
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}
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template <typename ParseContext>
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FMT_CONSTEXPR auto parse(ParseContext &ctx) -> decltype(ctx.begin()) {
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return formating.parse(ctx);
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}
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template <typename FormatContext = format_context>
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auto format(const TupleT &values, FormatContext &ctx) -> decltype(ctx.out()) {
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auto out = ctx.out();
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std::ptrdiff_t i = 0;
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fmt::copy(formating.prefix, out);
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fmt::meta::for_each(values, [&](const auto &v) {
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if (i++ > 0) { fmt::copy(formating.delimiter, out); }
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if (formating.add_spaces) { format_to(out, " {}", v); }
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else { format_to(out, "{}", v); }
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});
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if (formating.add_spaces) { *out++ = ' '; }
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fmt::copy(formating.postfix, out);
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template <typename FormatContext = format_context>
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auto format(const TupleT &values, FormatContext &ctx) -> decltype(ctx.out()) {
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auto out = ctx.out();
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std::size_t i = 0;
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internal::copy(formating.prefix, out);
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internal::for_each(values, [&](const auto &v) {
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if (i++ > 0) {
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internal::copy(formating.delimiter, out);
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}
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if (formating.add_spaces) {
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format_to(out, " {}", v);
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} else {
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format_to(out, "{}", v);
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}
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});
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if (formating.add_spaces) {
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*out++ = ' ';
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}
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internal::copy(formating.postfix, out);
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return ctx.out();
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}
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return ctx.out();
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}
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};
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} // namespace fmt
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template <typename RangeT, typename Char>
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struct formatter<RangeT, Char, std::enable_if_t<fmt::internal::is_range_v<RangeT>>> {
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static FMT_CONSTEXPR std::size_t range_length_limit =
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FMT_RANGE_OUTPUT_LENGTH_LIMIT; // output only up to N items from the range.
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fmt::formatting_range<Char> formating;
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template <typename ParseContext>
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FMT_CONSTEXPR auto parse(ParseContext &ctx) -> decltype(ctx.begin()) {
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return formating.parse(ctx);
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}
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namespace fmt {
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template<typename RangeT, typename Char>
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struct formatter <RangeT, Char, std::enable_if_t<fmt::meta::is_range_v<RangeT>> >
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{
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static constexpr std::ptrdiff_t range_length_limit = FMT_RANGE_OUTPUT_LENGTH_LIMIT; // output only up to N items from the range.
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fmt::formatting_range<Char> formating;
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template <typename ParseContext>
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FMT_CONSTEXPR auto parse(ParseContext &ctx) -> decltype(ctx.begin()) {
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return formating.parse(ctx);
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}
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template <typename FormatContext>
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auto format(const RangeT &values, FormatContext &ctx) -> decltype(ctx.out()) {
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auto out = ctx.out();
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fmt::copy(formating.prefix, out);
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std::ptrdiff_t i = 0;
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for (const auto& it : values) {
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if (i > 0) { fmt::copy(formating.delimiter, out); }
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if (formating.add_spaces) { format_to(out, " {}", it); }
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else { format_to(out, "{}", it); }
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if (++i > range_length_limit) {
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format_to(out, " ... <other elements>");
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break;
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}
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}
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if (formating.add_spaces) { *out++ = ' '; }
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fmt::copy(formating.postfix, out);
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return ctx.out();
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}
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template <typename FormatContext>
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auto format(const RangeT &values, FormatContext &ctx) -> decltype(ctx.out()) {
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auto out = ctx.out();
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internal::copy(formating.prefix, out);
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std::size_t i = 0;
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for (const auto &it : values) {
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if (i > 0) {
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internal::copy(formating.delimiter, out);
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}
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if (formating.add_spaces) {
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format_to(out, " {}", it);
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} else {
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format_to(out, "{}", it);
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}
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if (++i > range_length_limit) {
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format_to(out, " ... <other elements>");
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break;
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}
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}
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if (formating.add_spaces) {
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*out++ = ' ';
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}
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internal::copy(formating.postfix, out);
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return ctx.out();
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}
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};
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} // namespace fmt
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} // namespace fmt
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#endif // FMT_RANGES_H_
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@ -20,32 +20,71 @@
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#include <vector>
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#include <array>
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#include <map>
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#include <string>
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TEST(RangesTest, FormatVector) {
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std::vector<int32_t> iv{ 1,2,3,5,7,11 };
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std::vector<int32_t> iv{1, 2, 3, 5, 7, 11};
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auto ivf = fmt::format("{}", iv);
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EXPECT_EQ("{ 1, 2, 3, 5, 7, 11 }", ivf);
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EXPECT_EQ("{1,2,3,5,7,11}", ivf);
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}
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TEST(RangesTest, FormatVector2) {
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std::vector<std::vector<int32_t>> ivv{ {1,2},{3,5},{7,11} };
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std::vector<std::vector<int32_t>> ivv{{1, 2}, {3, 5}, {7, 11}};
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auto ivf = fmt::format("{}", ivv);
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EXPECT_EQ("{ { 1, 2 }, { 3, 5 }, { 7, 11 } }", ivf);
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EXPECT_EQ("{{1,2},{3,5},{7,11}}", ivf);
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}
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TEST(RangesTest, FormatMap) {
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std::map<std::string, int32_t> simap{ {"one",1}, {"two",2} };
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EXPECT_EQ("{ [ one, 1 ], [ two, 2 ] }", fmt::format("{}", simap));
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std::map<std::string, int32_t> simap{{"one", 1}, {"two", 2}};
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EXPECT_EQ("{[one,1],[two,2]}", fmt::format("{}", simap));
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}
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TEST(RangesTest, FormatPair) {
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std::pair<int64_t, float> pa1{42, 3.14159265358979f};
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EXPECT_EQ("[ 42, 3.14159 ]", fmt::format("{}", pa1));
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EXPECT_EQ("[42,3.14159]", fmt::format("{}", pa1));
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}
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TEST(RangesTest, FormatTuple) {
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std::tuple<int64_t, float, std::string> tu1{42, 3.14159265358979f, "this is tuple"};
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EXPECT_EQ("[ 42, 3.14159, this is tuple ]", fmt::format("{}", tu1));
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std::tuple<int64_t, float, std::string> tu1{42, 3.14159265358979f,
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"this is tuple"};
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EXPECT_EQ("[42,3.14159,this is tuple]", fmt::format("{}", tu1));
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}
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#if (__cplusplus > 201402L) || \
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(defined(_MSVC_LANG) && _MSVC_LANG > 201402L && _MSC_VER >= 1910)
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struct my_struct {
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int32_t i;
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std::string str; // can throw
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template <std::size_t N>
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decltype(auto) get() const noexcept {
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if constexpr (N == 0)
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return i;
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else if constexpr (N == 1)
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return fmt::string_view{str};
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}
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};
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template <std::size_t N>
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decltype(auto) get(const my_struct& s) noexcept {
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return s.get<N>();
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}
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namespace std {
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template <>
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struct tuple_size<my_struct> : std::integral_constant<std::size_t, 2> {};
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template <std::size_t N>
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struct tuple_element<N, my_struct> {
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using type = decltype(std::declval<my_struct>().get<N>());
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};
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} // namespace std
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TEST(RangesTest, FormatStruct) {
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my_struct mst{13, "my struct"};
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EXPECT_EQ("[13,my struct]", fmt::format("{}", mst));
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}
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#endif // (__cplusplus > 201402L) || (defined(_MSVC_LANG) && _MSVC_LANG > 201402L && _MSC_VER >= 1910)
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