Clean-up sign-conversion warnings (8 of n)
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241cf8b0b9
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384e58a758
@ -19,6 +19,7 @@
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#include <cstdarg>
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#include <cstdarg>
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#include <cstring> // for std::memmove
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#include <cstring> // for std::memmove
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#include <cwchar>
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#include <cwchar>
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#include <memory> // for std::uninitialized_fill_n
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#if !defined(FMT_STATIC_THOUSANDS_SEPARATOR)
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#if !defined(FMT_STATIC_THOUSANDS_SEPARATOR)
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# include <locale>
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# include <locale>
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#endif
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#endif
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@ -478,8 +479,8 @@ FMT_FUNC fp get_cached_power(int min_exponent, int& pow10_exponent) {
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const uint64_t one_over_log2_10 = 0x4d104d42; // round(pow(2, 32) / log2(10))
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const uint64_t one_over_log2_10 = 0x4d104d42; // round(pow(2, 32) / log2(10))
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int index = static_cast<int>(
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int index = static_cast<int>(
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static_cast<int64_t>(
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static_cast<int64_t>(
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(min_exponent + fp::significand_size - 1) * one_over_log2_10 +
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static_cast<uint64_t>(min_exponent + fp::significand_size - 1) * one_over_log2_10 +
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((uint64_t(1) << 32) - 1) // ceil
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((1ULL << 32) - 1) // ceil
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) >>
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) >>
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32 // arithmetic shift
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32 // arithmetic shift
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);
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);
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@ -527,14 +528,14 @@ class bigint {
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friend struct formatter<bigint>;
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friend struct formatter<bigint>;
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void subtract_bigits(int index, bigit other, bigit& borrow) {
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void subtract_bigits(size_t index, bigit other, bigit& borrow) {
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auto result = static_cast<double_bigit>(bigits_[index]) - other - borrow;
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auto result = static_cast<double_bigit>(bigits_[index]) - other - borrow;
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bigits_[index] = static_cast<bigit>(result);
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bigits_[index] = static_cast<bigit>(result);
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borrow = static_cast<bigit>(result >> (bigit_bits * 2 - 1));
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borrow = static_cast<bigit>(result >> (bigit_bits * 2 - 1));
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}
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}
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void remove_leading_zeros() {
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void remove_leading_zeros() {
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int num_bigits = static_cast<int>(bigits_.size()) - 1;
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size_t num_bigits = bigits_.size() - 1;
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while (num_bigits > 0 && bigits_[num_bigits] == 0) --num_bigits;
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while (num_bigits > 0 && bigits_[num_bigits] == 0) --num_bigits;
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bigits_.resize(num_bigits + 1);
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bigits_.resize(num_bigits + 1);
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}
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}
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@ -544,8 +545,8 @@ class bigint {
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FMT_ASSERT(other.exp_ >= exp_, "unaligned bigints");
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FMT_ASSERT(other.exp_ >= exp_, "unaligned bigints");
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FMT_ASSERT(compare(*this, other) >= 0, "");
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FMT_ASSERT(compare(*this, other) >= 0, "");
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bigit borrow = 0;
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bigit borrow = 0;
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int i = other.exp_ - exp_;
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size_t i = static_cast<size_t>(other.exp_ - exp_);
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for (int j = 0, n = static_cast<int>(other.bigits_.size()); j != n;
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for (size_t j = 0, n = other.bigits_.size(); j != n;
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++i, ++j) {
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++i, ++j) {
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subtract_bigits(i, other.bigits_[j], borrow);
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subtract_bigits(i, other.bigits_[j], borrow);
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}
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}
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@ -597,7 +598,7 @@ class bigint {
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}
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}
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void assign(uint64_t n) {
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void assign(uint64_t n) {
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int num_bigits = 0;
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size_t num_bigits = 0;
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do {
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do {
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bigits_[num_bigits++] = n & ~bigit(0);
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bigits_[num_bigits++] = n & ~bigit(0);
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n >>= bigit_bits;
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n >>= bigit_bits;
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@ -633,11 +634,11 @@ class bigint {
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int num_lhs_bigits = lhs.num_bigits(), num_rhs_bigits = rhs.num_bigits();
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int num_lhs_bigits = lhs.num_bigits(), num_rhs_bigits = rhs.num_bigits();
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if (num_lhs_bigits != num_rhs_bigits)
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if (num_lhs_bigits != num_rhs_bigits)
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return num_lhs_bigits > num_rhs_bigits ? 1 : -1;
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return num_lhs_bigits > num_rhs_bigits ? 1 : -1;
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int i = static_cast<int>(lhs.bigits_.size()) - 1;
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size_t i = lhs.bigits_.size();
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int j = static_cast<int>(rhs.bigits_.size()) - 1;
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size_t j = rhs.bigits_.size();
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int end = i - j;
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while ((i != 0) && (j != 0)) {
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if (end < 0) end = 0;
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-- i;
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for (; i >= end; --i, --j) {
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-- j;
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bigit lhs_bigit = lhs.bigits_[i], rhs_bigit = rhs.bigits_[j];
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bigit lhs_bigit = lhs.bigits_[i], rhs_bigit = rhs.bigits_[j];
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if (lhs_bigit != rhs_bigit) return lhs_bigit > rhs_bigit ? 1 : -1;
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if (lhs_bigit != rhs_bigit) return lhs_bigit > rhs_bigit ? 1 : -1;
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}
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}
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@ -653,7 +654,7 @@ class bigint {
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if (max_lhs_bigits + 1 < num_rhs_bigits) return -1;
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if (max_lhs_bigits + 1 < num_rhs_bigits) return -1;
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if (max_lhs_bigits > num_rhs_bigits) return 1;
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if (max_lhs_bigits > num_rhs_bigits) return 1;
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auto get_bigit = [](const bigint& n, int i) -> bigit {
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auto get_bigit = [](const bigint& n, int i) -> bigit {
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return i >= n.exp_ && i < n.num_bigits() ? n.bigits_[i - n.exp_] : 0;
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return i >= n.exp_ && i < n.num_bigits() ? n.bigits_[static_cast<size_t>(i - n.exp_)] : 0;
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};
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};
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double_bigit borrow = 0;
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double_bigit borrow = 0;
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int min_exp = (std::min)((std::min)(lhs1.exp_, lhs2.exp_), rhs.exp_);
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int min_exp = (std::min)((std::min)(lhs1.exp_, lhs2.exp_), rhs.exp_);
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@ -691,25 +692,25 @@ class bigint {
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void square() {
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void square() {
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basic_memory_buffer<bigit, bigits_capacity> n(std::move(bigits_));
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basic_memory_buffer<bigit, bigits_capacity> n(std::move(bigits_));
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int num_bigits = static_cast<int>(bigits_.size());
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size_t num_bigits = bigits_.size();
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int num_result_bigits = 2 * num_bigits;
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size_t num_result_bigits = 2 * num_bigits;
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bigits_.resize(num_result_bigits);
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bigits_.resize(num_result_bigits);
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using accumulator_t = conditional_t<FMT_USE_INT128, uint128_t, accumulator>;
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using accumulator_t = conditional_t<FMT_USE_INT128, uint128_t, accumulator>;
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auto sum = accumulator_t();
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auto sum = accumulator_t();
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for (int bigit_index = 0; bigit_index < num_bigits; ++bigit_index) {
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for (size_t bigit_index = 0; bigit_index < num_bigits; ++bigit_index) {
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// Compute bigit at position bigit_index of the result by adding
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// Compute bigit at position bigit_index of the result by adding
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// cross-product terms n[i] * n[j] such that i + j == bigit_index.
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// cross-product terms n[i] * n[j] such that i + j == bigit_index.
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for (int i = 0, j = bigit_index; j >= 0; ++i, --j) {
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for (size_t i = 0; i <= bigit_index; ++ i) {
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// Most terms are multiplied twice which can be optimized in the future.
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// Most terms are multiplied twice which can be optimized in the future.
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sum += static_cast<double_bigit>(n[i]) * n[j];
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sum += static_cast<double_bigit>(n[i]) * n[bigit_index - i];
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}
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}
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bigits_[bigit_index] = static_cast<bigit>(sum);
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bigits_[bigit_index] = static_cast<bigit>(sum);
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sum >>= bits<bigit>::value; // Compute the carry.
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sum >>= bits<bigit>::value; // Compute the carry.
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}
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}
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// Do the same for the top half.
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// Do the same for the top half.
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for (int bigit_index = num_bigits; bigit_index < num_result_bigits;
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for (size_t bigit_index = num_bigits; bigit_index < num_result_bigits;
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++bigit_index) {
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++bigit_index) {
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for (int j = num_bigits - 1, i = bigit_index - j; i < num_bigits;)
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for (size_t j = num_bigits - 1, i = bigit_index - j; i < num_bigits;)
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sum += static_cast<double_bigit>(n[i++]) * n[j--];
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sum += static_cast<double_bigit>(n[i++]) * n[j--];
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bigits_[bigit_index] = static_cast<bigit>(sum);
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bigits_[bigit_index] = static_cast<bigit>(sum);
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sum >>= bits<bigit>::value;
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sum >>= bits<bigit>::value;
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@ -724,16 +725,15 @@ class bigint {
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int divmod_assign(const bigint& divisor) {
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int divmod_assign(const bigint& divisor) {
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FMT_ASSERT(this != &divisor, "");
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FMT_ASSERT(this != &divisor, "");
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if (compare(*this, divisor) < 0) return 0;
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if (compare(*this, divisor) < 0) return 0;
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int num_bigits = static_cast<int>(bigits_.size());
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size_t num_bigits = bigits_.size();
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FMT_ASSERT(divisor.bigits_[divisor.bigits_.size() - 1] != 0, "");
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FMT_ASSERT(divisor.bigits_[divisor.bigits_.size() - 1] != 0, "");
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int exp_difference = exp_ - divisor.exp_;
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if (exp_ > divisor.exp_) {
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if (exp_difference > 0) {
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const auto exp_difference = static_cast<size_t>(exp_ - divisor.exp_);
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// Align bigints by adding trailing zeros to simplify subtraction.
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// Align bigints by adding trailing zeros to simplify subtraction.
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bigits_.resize(num_bigits + exp_difference);
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bigits_.resize(num_bigits + exp_difference);
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for (int i = num_bigits - 1, j = i + exp_difference; i >= 0; --i, --j)
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std::memmove(&bigits_[exp_difference], &bigits_[0], num_bigits * sizeof(bigits_[0]));
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bigits_[j] = bigits_[i];
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std::uninitialized_fill_n(bigits_.data(), exp_difference, 0);
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std::uninitialized_fill_n(bigits_.data(), exp_difference, 0);
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exp_ -= exp_difference;
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exp_ = divisor.exp_;
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}
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}
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int quotient = 0;
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int quotient = 0;
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do {
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do {
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@ -1008,7 +1008,7 @@ void fallback_format(Double d, buffer<char>& buf, int& exp10) {
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if (!upper) upper = &lower;
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if (!upper) upper = &lower;
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// Invariant: value == (numerator / denominator) * pow(10, exp10).
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// Invariant: value == (numerator / denominator) * pow(10, exp10).
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bool even = (value.f & 1) == 0;
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bool even = (value.f & 1) == 0;
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int num_digits = 0;
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size_t num_digits = 0;
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char* data = buf.data();
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char* data = buf.data();
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for (;;) {
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for (;;) {
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int digit = numerator.divmod_assign(denominator);
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int digit = numerator.divmod_assign(denominator);
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@ -1026,7 +1026,7 @@ void fallback_format(Double d, buffer<char>& buf, int& exp10) {
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++data[num_digits - 1];
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++data[num_digits - 1];
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}
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}
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buf.resize(num_digits);
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buf.resize(num_digits);
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exp10 -= num_digits - 1;
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exp10 -= static_cast<int>(num_digits - 1);
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return;
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return;
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}
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}
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numerator *= 10;
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numerator *= 10;
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@ -1068,7 +1068,7 @@ int format_float(T value, int precision, float_specs specs, buffer<char>& buf) {
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fixed_handler handler{buf.data(), 0, precision, -cached_exp10, fixed};
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fixed_handler handler{buf.data(), 0, precision, -cached_exp10, fixed};
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if (grisu_gen_digits(normalized, 1, exp, handler) == digits::error)
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if (grisu_gen_digits(normalized, 1, exp, handler) == digits::error)
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return snprintf_float(value, precision, specs, buf);
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return snprintf_float(value, precision, specs, buf);
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int num_digits = handler.size;
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auto num_digits = static_cast<size_t>(handler.size);
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if (!fixed) {
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if (!fixed) {
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// Remove trailing zeros.
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// Remove trailing zeros.
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while (num_digits > 0 && buf[num_digits - 1] == '0') {
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while (num_digits > 0 && buf[num_digits - 1] == '0') {
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@ -1076,7 +1076,7 @@ int format_float(T value, int precision, float_specs specs, buffer<char>& buf) {
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++exp;
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++exp;
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}
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}
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}
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}
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buf.resize(to_unsigned(num_digits));
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buf.resize(num_digits);
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} else {
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} else {
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fp fp_value;
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fp fp_value;
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auto boundaries = specs.binary32
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auto boundaries = specs.binary32
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@ -1175,10 +1175,10 @@ int snprintf_float(T value, int precision, float_specs specs,
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do {
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do {
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--p;
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--p;
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} while (is_digit(*p));
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} while (is_digit(*p));
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int fraction_size = static_cast<int>(end - p - 1);
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auto fraction_size = end - p - 1;
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std::memmove(p, p + 1, fraction_size);
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std::memmove(p, p + 1, static_cast<size_t>(fraction_size));
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buf.resize(size - 1);
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buf.resize(size - 1);
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return -fraction_size;
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return static_cast<int>(-fraction_size);
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}
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}
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if (specs.format == float_format::hex) {
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if (specs.format == float_format::hex) {
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buf.resize(size + offset);
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buf.resize(size + offset);
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@ -1203,10 +1203,10 @@ int snprintf_float(T value, int precision, float_specs specs,
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auto fraction_end = exp_pos - 1;
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auto fraction_end = exp_pos - 1;
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while (*fraction_end == '0') --fraction_end;
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while (*fraction_end == '0') --fraction_end;
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// Move the fractional part left to get rid of the decimal point.
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// Move the fractional part left to get rid of the decimal point.
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int fraction_size = static_cast<int>(fraction_end - begin - 1);
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const auto fraction_size = static_cast<size_t>(fraction_end - begin - 1);
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std::memmove(begin + 1, begin + 2, fraction_size);
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std::memmove(begin + 1, begin + 2, fraction_size);
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buf.resize(fraction_size + offset + 1);
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buf.resize(fraction_size + offset + 1);
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exp -= fraction_size;
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exp -= static_cast<int>(fraction_size);
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}
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}
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return exp;
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return exp;
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}
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}
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