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Refactor fallback ints
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@ -141,7 +141,7 @@ FMT_FUNC std::system_error vsystem_error(int error_code, string_view format_str,
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namespace detail {
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template <> FMT_FUNC int count_digits<4>(detail::fallback_uintptr n) {
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template <> FMT_FUNC int count_digits<4>(detail::uintptr_fallback n) {
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// fallback_uintptr is always stored in little endian.
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int i = static_cast<int>(sizeof(void*)) - 1;
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while (i > 0 && n.value[i] == 0) --i;
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@ -315,12 +315,12 @@ inline auto is_big_endian() -> bool {
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}
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// A fallback implementation of uintptr_t for systems that lack it.
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struct fallback_uintptr {
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struct uintptr_fallback {
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unsigned char value[sizeof(void*)];
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fallback_uintptr() = default;
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explicit fallback_uintptr(const void* p) {
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*this = bit_cast<fallback_uintptr>(p);
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uintptr_fallback() = default;
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explicit uintptr_fallback(const void* p) {
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*this = bit_cast<uintptr_fallback>(p);
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if (const_check(is_big_endian())) {
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for (size_t i = 0, j = sizeof(void*) - 1; i < j; ++i, --j)
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std::swap(value[i], value[j]);
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@ -333,42 +333,46 @@ inline auto to_uintptr(const void* p) -> uintptr_t {
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return bit_cast<uintptr_t>(p);
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}
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#else
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using uintptr_t = fallback_uintptr;
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inline auto to_uintptr(const void* p) -> fallback_uintptr {
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return fallback_uintptr(p);
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using uintptr_t = uintptr_fallback;
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inline auto to_uintptr(const void* p) -> uintptr_fallback {
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return uintptr_fallback(p);
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}
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#endif
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class uint128_t {
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class uint128_fallback {
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private:
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uint64_t lo_, hi_;
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constexpr uint128_t(uint64_t hi, uint64_t lo) : lo_(lo), hi_(hi) {}
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constexpr uint128_fallback(uint64_t hi, uint64_t lo) : lo_(lo), hi_(hi) {}
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public:
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constexpr uint128_t(uint64_t value = 0) : lo_(value), hi_(0) {}
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constexpr uint128_fallback(uint64_t value = 0) : lo_(value), hi_(0) {}
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explicit operator int() const { return static_cast<int>(lo_); }
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explicit operator uint64_t() const { return lo_; }
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friend auto operator==(const uint128_t& lhs, const uint128_t& rhs) -> bool {
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friend auto operator==(const uint128_fallback& lhs,
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const uint128_fallback& rhs) -> bool {
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return lhs.hi_ == rhs.hi_ && lhs.lo_ == rhs.lo_;
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}
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friend auto operator&(const uint128_t& lhs, const uint128_t& rhs)
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-> uint128_t {
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friend auto operator&(const uint128_fallback& lhs,
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const uint128_fallback& rhs) -> uint128_fallback {
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return {lhs.hi_ & rhs.hi_, lhs.lo_ & rhs.lo_};
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}
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friend auto operator-(const uint128_t& lhs, uint64_t rhs) -> uint128_t {
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friend auto operator-(const uint128_fallback& lhs, uint64_t rhs)
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-> uint128_fallback {
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FMT_ASSERT(lhs.lo_ >= rhs, "");
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return {lhs.hi_, lhs.lo_ - rhs};
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}
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auto operator>>(int shift) const -> uint128_t {
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auto operator>>(int shift) const -> uint128_fallback {
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if (shift == 64) return {0, hi_};
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return {hi_ >> shift, (hi_ << (64 - shift)) | (lo_ >> shift)};
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}
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auto operator<<(int shift) const -> uint128_t {
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auto operator<<(int shift) const -> uint128_fallback {
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if (shift == 64) return {lo_, 0};
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return {hi_ << shift | (lo_ >> (64 - shift)), (lo_ << shift)};
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}
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};
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using uint128_t = conditional_t<FMT_USE_INT128, uint128_opt, uint128_fallback>;
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// Returns the largest possible value for type T. Same as
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// std::numeric_limits<T>::max() but shorter and not affected by the max macro.
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template <typename T> constexpr auto max_value() -> T {
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@ -380,7 +384,7 @@ template <typename T> constexpr auto num_bits() -> int {
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// std::numeric_limits<T>::digits may return 0 for 128-bit ints.
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template <> constexpr auto num_bits<int128_opt>() -> int { return 128; }
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template <> constexpr auto num_bits<uint128_t>() -> int { return 128; }
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template <> constexpr auto num_bits<fallback_uintptr>() -> int {
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template <> constexpr auto num_bits<uintptr_fallback>() -> int {
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return static_cast<int>(sizeof(void*) *
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std::numeric_limits<unsigned char>::digits);
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}
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@ -1035,7 +1039,7 @@ FMT_CONSTEXPR auto count_digits(UInt n) -> int {
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}(n);
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}
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template <> auto count_digits<4>(detail::fallback_uintptr n) -> int;
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template <> auto count_digits<4>(detail::uintptr_fallback n) -> int;
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#ifdef FMT_BUILTIN_CLZ
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// It is a separate function rather than a part of count_digits to workaround
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@ -1179,7 +1183,7 @@ FMT_CONSTEXPR auto format_uint(Char* buffer, UInt value, int num_digits,
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}
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template <unsigned BASE_BITS, typename Char>
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auto format_uint(Char* buffer, detail::fallback_uintptr n, int num_digits,
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auto format_uint(Char* buffer, detail::uintptr_fallback n, int num_digits,
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bool = false) -> Char* {
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auto char_digits = std::numeric_limits<unsigned char>::digits / 4;
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int start = (num_digits + char_digits - 1) / char_digits - 1;
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@ -361,7 +361,7 @@ TEST(format_impl_test, write_fallback_uintptr) {
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std::string s;
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fmt::detail::write_ptr<char>(
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std::back_inserter(s),
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fmt::detail::fallback_uintptr(reinterpret_cast<void*>(0xface)), nullptr);
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fmt::detail::uintptr_fallback(reinterpret_cast<void*>(0xface)), nullptr);
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EXPECT_EQ(s, "0xface");
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}
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@ -40,16 +40,16 @@ using testing::StrictMock;
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enum { buffer_size = 256 };
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TEST(uint128_test, ctor) {
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using fmt::detail::uint128_t;
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auto n = uint128_t();
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using fmt::detail::uint128_fallback;
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auto n = uint128_fallback();
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EXPECT_EQ(n, 0);
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n = uint128_t(42);
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n = uint128_fallback(42);
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EXPECT_EQ(n, 42);
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EXPECT_EQ(static_cast<uint64_t>(n), 42);
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}
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TEST(uint128_test, shift) {
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auto n = fmt::detail::uint128_t(42);
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auto n = fmt::detail::uint128_fallback(42);
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n = n << 64;
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EXPECT_EQ(static_cast<uint64_t>(n), 0);
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n = n >> 64;
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@ -62,7 +62,7 @@ TEST(uint128_test, shift) {
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}
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TEST(uint128_test, minus) {
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auto n = fmt::detail::uint128_t(42);
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auto n = fmt::detail::uint128_fallback(42);
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EXPECT_EQ(n - 2, 40);
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}
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