forked from LeenkxTeam/Kmake
1459 lines
49 KiB
C++
1459 lines
49 KiB
C++
// Copyright 2011 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#include "src/numbers/conversions.h"
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#include <limits.h>
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#include <stdarg.h>
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#include <cmath>
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#include <optional>
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#include "src/base/fpu.h"
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#include "src/base/numbers/dtoa.h"
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#include "src/base/numbers/strtod.h"
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#include "src/base/small-vector.h"
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#include "src/bigint/bigint.h"
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#include "src/common/assert-scope.h"
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#include "src/handles/handles.h"
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#include "src/heap/factory.h"
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#include "src/objects/bigint.h"
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#include "src/objects/objects-inl.h"
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#include "src/objects/string-inl.h"
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#include "src/strings/char-predicates-inl.h"
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#include "src/utils/allocation.h"
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#include "third_party/fast_float/src/include/fast_float/fast_float.h"
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#include "third_party/fast_float/src/include/fast_float/float_common.h"
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#if defined(_STLP_VENDOR_CSTD)
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// STLPort doesn't import fpclassify into the std namespace.
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#define FPCLASSIFY_NAMESPACE
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#else
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#define FPCLASSIFY_NAMESPACE std
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#endif
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namespace v8 {
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namespace internal {
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// Helper class for building result strings in a character buffer. The
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// purpose of the class is to use safe operations that checks the
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// buffer bounds on all operations in debug mode.
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// This simple base class does not allow formatted output.
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class SimpleStringBuilder final {
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public:
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// Create a string builder with a buffer of the given size. The
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// buffer is allocated through NewArray<char> and must be
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// deallocated by the caller of Finalize().
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explicit SimpleStringBuilder(size_t size) {
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buffer_ = base::Vector<char>::New(size);
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cursor_ = buffer_.begin();
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}
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SimpleStringBuilder(char* buffer, size_t size)
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: buffer_(buffer, size), cursor_(buffer) {}
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~SimpleStringBuilder() {
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if (V8_UNLIKELY(!is_finalized())) Finalize();
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}
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// Get the current position in the builder.
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size_t position() const {
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DCHECK(!is_finalized());
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return cursor_ - buffer_.begin();
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}
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// Add a single character to the builder. It is not allowed to add
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// 0-characters; use the Finalize() method to terminate the string
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// instead.
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V8_INLINE void AddCharacter(char c) {
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DCHECK_NE(c, '\0');
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DCHECK(!is_finalized());
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DCHECK_LT(position(), buffer_.size());
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*cursor_++ = c;
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}
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// Add an entire string to the builder. 'len' must be equal to strlen().
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V8_INLINE void AddString(const char* s, size_t len) {
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DCHECK_EQ(len, strlen(s));
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AddSubstring(s, len);
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}
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// Add a string literal to the builder.
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template <size_t N>
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V8_INLINE void AddStringLiteral(const char (&s)[N]) {
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AddSubstring(s, N - 1);
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}
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// Add the first 'n' characters of the given 0-terminated string 's' to the
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// builder. The input string must have enough characters.
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V8_INLINE void AddSubstring(const char* s, size_t n) {
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DCHECK(!is_finalized());
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DCHECK_LE(position() + n, buffer_.size());
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DCHECK_LE(n, strlen(s));
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MemCopy(cursor_, s, n * kCharSize);
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cursor_ += n;
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}
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// Add character padding to the builder. If count is non-positive,
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// nothing is added to the builder.
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V8_INLINE void AddPadding(char c, int count) {
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DCHECK(!is_finalized());
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DCHECK_LE(position() + std::max(0, count), buffer_.size());
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cursor_ = std::fill_n(cursor_, count, c);
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}
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// Add the decimal representation of the value.
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void AddDecimalInteger(int value) {
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uint32_t number = static_cast<uint32_t>(value);
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if (value < 0) {
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AddCharacter('-');
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number = static_cast<uint32_t>(-value);
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}
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int digits = 1;
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for (uint32_t factor = 10; digits < 10; digits++, factor *= 10) {
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if (factor > number) break;
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}
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cursor_ += digits;
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for (int i = 1; i <= digits; i++) {
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*(cursor_ - i) = '0' + static_cast<char>(number % 10);
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number /= 10;
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}
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}
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// Finalize the string by, checking that there is no null-character in the
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// content. Returns a pointer one past the last character.
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char* Finalize() {
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DCHECK(!is_finalized());
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DCHECK_LE(position(), buffer_.size());
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#ifdef DEBUG
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// Make sure nobody managed to add a 0-character to the
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// buffer while building the string.
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for (const char* buf = buffer_.begin(); buf != cursor_; buf++) {
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DCHECK_NE(*buf, '\0');
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}
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#endif
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char* ret = cursor_;
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cursor_ = nullptr;
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DCHECK(is_finalized());
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return ret;
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}
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private:
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base::Vector<char> buffer_;
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char* cursor_;
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bool is_finalized() const { return cursor_ == nullptr; }
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DISALLOW_IMPLICIT_CONSTRUCTORS(SimpleStringBuilder);
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};
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inline double JunkStringValue() {
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return base::bit_cast<double, uint64_t>(kQuietNaNMask);
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}
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inline double SignedZero(bool negative) {
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return negative ? base::uint64_to_double(base::Double::kSignMask) : 0.0;
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}
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inline bool isDigit(int x, int radix) {
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return (x >= '0' && x <= '9' && x < '0' + radix) ||
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(radix > 10 && x >= 'a' && x < 'a' + radix - 10) ||
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(radix > 10 && x >= 'A' && x < 'A' + radix - 10);
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}
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inline bool isBinaryDigit(int x) { return x == '0' || x == '1'; }
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template <class Char>
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bool SubStringEquals(const Char** current, const Char* end,
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const char* substring) {
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DCHECK(**current == *substring);
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for (substring++; *substring != '\0'; substring++) {
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++*current;
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if (*current == end || **current != *substring) return false;
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}
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++*current;
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return true;
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}
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// Returns true if a nonspace character has been found and false if the
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// end was been reached before finding a nonspace character.
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template <class Char>
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inline bool AdvanceToNonspace(const Char** current, const Char* end) {
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while (*current != end) {
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if (!IsWhiteSpaceOrLineTerminator(**current)) return true;
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++*current;
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}
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return false;
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}
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// Parsing integers with radix 2, 4, 8, 16, 32. Assumes current != end.
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template <int radix_log_2, class Char>
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double InternalStringToIntDouble(const Char* start, const Char* end,
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bool negative, bool allow_trailing_junk) {
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const Char* current = start;
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DCHECK_NE(current, end);
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// Skip leading 0s.
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while (*current == '0') {
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++current;
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if (current == end) return SignedZero(negative);
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}
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int64_t number = 0;
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int exponent = 0;
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constexpr int radix = (1 << radix_log_2);
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constexpr int lim_0 = '0' + (radix < 10 ? radix : 10);
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constexpr int lim_a = 'a' + (radix - 10);
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constexpr int lim_A = 'A' + (radix - 10);
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do {
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int digit;
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if (*current >= '0' && *current < lim_0) {
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digit = static_cast<char>(*current) - '0';
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} else if (*current >= 'a' && *current < lim_a) {
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digit = static_cast<char>(*current) - 'a' + 10;
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} else if (*current >= 'A' && *current < lim_A) {
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digit = static_cast<char>(*current) - 'A' + 10;
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} else {
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// We've not found any digits, this must be junk.
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if (current == start) return JunkStringValue();
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if (allow_trailing_junk || !AdvanceToNonspace(¤t, end)) break;
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return JunkStringValue();
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}
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number = number * radix + digit;
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int overflow = static_cast<int>(number >> 53);
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if (overflow != 0) {
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// Overflow occurred. Need to determine which direction to round the
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// result.
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int overflow_bits_count = 1;
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while (overflow > 1) {
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overflow_bits_count++;
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overflow >>= 1;
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}
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int dropped_bits_mask = ((1 << overflow_bits_count) - 1);
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int dropped_bits = static_cast<int>(number) & dropped_bits_mask;
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number >>= overflow_bits_count;
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exponent = overflow_bits_count;
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bool zero_tail = true;
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while (true) {
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++current;
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if (current == end || !isDigit(*current, radix)) break;
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zero_tail = zero_tail && *current == '0';
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exponent += radix_log_2;
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}
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if (!allow_trailing_junk && AdvanceToNonspace(¤t, end)) {
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return JunkStringValue();
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}
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int middle_value = (1 << (overflow_bits_count - 1));
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if (dropped_bits > middle_value) {
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number++; // Rounding up.
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} else if (dropped_bits == middle_value) {
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// Rounding to even to consistency with decimals: half-way case rounds
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// up if significant part is odd and down otherwise.
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if ((number & 1) != 0 || !zero_tail) {
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number++; // Rounding up.
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}
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}
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// Rounding up may cause overflow.
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if ((number & (static_cast<int64_t>(1) << 53)) != 0) {
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exponent++;
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number >>= 1;
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}
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break;
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}
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++current;
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} while (current != end);
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DCHECK(number < (int64_t{1} << 53));
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DCHECK(static_cast<int64_t>(static_cast<double>(number)) == number);
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if (exponent == 0) {
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if (negative) {
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if (number == 0) return -0.0;
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number = -number;
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}
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return static_cast<double>(number);
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}
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DCHECK_NE(number, 0);
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return std::ldexp(static_cast<double>(negative ? -number : number), exponent);
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}
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namespace {
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// Subclasses of StringToIntHelper get access to internal state:
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enum class State { kRunning, kError, kJunk, kEmpty, kZero, kDone };
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enum class Sign { kNegative, kPositive, kNone };
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} // namespace
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// ES6 18.2.5 parseInt(string, radix) (with NumberParseIntHelper subclass);
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// and BigInt parsing cases from https://tc39.github.io/proposal-bigint/
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// (with StringToBigIntHelper subclass).
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class StringToIntHelper {
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public:
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StringToIntHelper(DirectHandle<String> subject, int radix)
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: subject_(subject), radix_(radix) {
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DCHECK(subject->IsFlat());
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}
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// Used for the NumberParseInt operation
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StringToIntHelper(const uint8_t* subject, int radix, size_t length)
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: raw_one_byte_subject_(subject), radix_(radix), length_(length) {}
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StringToIntHelper(const base::uc16* subject, int radix, size_t length)
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: raw_two_byte_subject_(subject), radix_(radix), length_(length) {}
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// Used for the StringToBigInt operation.
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explicit StringToIntHelper(DirectHandle<String> subject) : subject_(subject) {
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DCHECK(subject->IsFlat());
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}
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// Used for parsing BigInt literals, where the input is a Zone-allocated
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// buffer of one-byte digits, along with an optional radix prefix.
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StringToIntHelper(const uint8_t* subject, size_t length)
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: raw_one_byte_subject_(subject), length_(length) {}
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virtual ~StringToIntHelper() = default;
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protected:
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// Subclasses must implement these:
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virtual void ParseOneByte(const uint8_t* start) = 0;
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virtual void ParseTwoByte(const base::uc16* start) = 0;
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// Subclasses must call this to do all the work.
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void ParseInt();
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// Subclass constructors should call these for configuration before calling
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// ParseInt().
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void set_allow_binary_and_octal_prefixes() {
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allow_binary_and_octal_prefixes_ = true;
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}
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void set_disallow_trailing_junk() { allow_trailing_junk_ = false; }
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bool allow_trailing_junk() { return allow_trailing_junk_; }
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bool IsOneByte() const {
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if (raw_two_byte_subject_ != nullptr) return false;
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return raw_one_byte_subject_ != nullptr ||
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String::IsOneByteRepresentationUnderneath(*subject_);
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}
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base::Vector<const uint8_t> GetOneByteVector(
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const DisallowGarbageCollection& no_gc) {
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if (raw_one_byte_subject_ != nullptr) {
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return base::Vector<const uint8_t>(raw_one_byte_subject_, length_);
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}
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return subject_->GetFlatContent(no_gc).ToOneByteVector();
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}
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base::Vector<const base::uc16> GetTwoByteVector(
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const DisallowGarbageCollection& no_gc) {
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if (raw_two_byte_subject_ != nullptr) {
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return base::Vector<const base::uc16>(raw_two_byte_subject_, length_);
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}
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return subject_->GetFlatContent(no_gc).ToUC16Vector();
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}
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int radix() { return radix_; }
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size_t cursor() { return cursor_; }
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size_t length() { return length_; }
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bool negative() { return sign_ == Sign::kNegative; }
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Sign sign() { return sign_; }
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State state() { return state_; }
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void set_state(State state) { state_ = state; }
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private:
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template <class Char>
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void DetectRadixInternal(const Char* current, size_t length);
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DirectHandle<String> subject_;
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const uint8_t* raw_one_byte_subject_ = nullptr;
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const base::uc16* raw_two_byte_subject_ = nullptr;
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int radix_ = 0;
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size_t cursor_ = 0;
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size_t length_ = 0;
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Sign sign_ = Sign::kNone;
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bool leading_zero_ = false;
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bool allow_binary_and_octal_prefixes_ = false;
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bool allow_trailing_junk_ = true;
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State state_ = State::kRunning;
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};
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void StringToIntHelper::ParseInt() {
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DisallowGarbageCollection no_gc;
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if (IsOneByte()) {
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base::Vector<const uint8_t> vector = GetOneByteVector(no_gc);
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DetectRadixInternal(vector.begin(), vector.size());
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if (state_ != State::kRunning) return;
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ParseOneByte(vector.begin());
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} else {
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base::Vector<const base::uc16> vector = GetTwoByteVector(no_gc);
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DetectRadixInternal(vector.begin(), vector.size());
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if (state_ != State::kRunning) return;
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ParseTwoByte(vector.begin());
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}
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}
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template <class Char>
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void StringToIntHelper::DetectRadixInternal(const Char* current,
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size_t length) {
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const Char* start = current;
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length_ = length;
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const Char* end = start + length;
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if (!AdvanceToNonspace(¤t, end)) {
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return set_state(State::kEmpty);
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}
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if (*current == '+') {
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// Ignore leading sign; skip following spaces.
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++current;
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if (current == end) {
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return set_state(State::kJunk);
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}
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sign_ = Sign::kPositive;
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} else if (*current == '-') {
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++current;
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if (current == end) {
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return set_state(State::kJunk);
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}
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sign_ = Sign::kNegative;
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}
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if (radix_ == 0) {
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// Radix detection.
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radix_ = 10;
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if (*current == '0') {
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++current;
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if (current == end) return set_state(State::kZero);
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if (*current == 'x' || *current == 'X') {
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radix_ = 16;
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++current;
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if (current == end) return set_state(State::kJunk);
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} else if (allow_binary_and_octal_prefixes_ &&
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(*current == 'o' || *current == 'O')) {
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radix_ = 8;
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++current;
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if (current == end) return set_state(State::kJunk);
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} else if (allow_binary_and_octal_prefixes_ &&
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(*current == 'b' || *current == 'B')) {
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radix_ = 2;
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++current;
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if (current == end) return set_state(State::kJunk);
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} else {
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leading_zero_ = true;
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}
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}
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} else if (radix_ == 16) {
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if (*current == '0') {
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// Allow "0x" prefix.
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++current;
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if (current == end) return set_state(State::kZero);
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if (*current == 'x' || *current == 'X') {
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++current;
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if (current == end) return set_state(State::kJunk);
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} else {
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leading_zero_ = true;
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}
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}
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}
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// Skip leading zeros.
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while (*current == '0') {
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leading_zero_ = true;
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++current;
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if (current == end) return set_state(State::kZero);
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}
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// Detect leading zeros with junk after them, if allowed.
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if (leading_zero_ && allow_trailing_junk_ && !isDigit(*current, radix_)) {
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return set_state(State::kZero);
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}
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if (!leading_zero_ && !isDigit(*current, radix_)) {
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return set_state(State::kJunk);
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}
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DCHECK(radix_ >= 2 && radix_ <= 36);
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cursor_ = current - start;
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}
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class NumberParseIntHelper : public StringToIntHelper {
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public:
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NumberParseIntHelper(DirectHandle<String> string, int radix)
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: StringToIntHelper(string, radix) {}
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NumberParseIntHelper(const uint8_t* string, int radix, size_t length)
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: StringToIntHelper(string, radix, length) {}
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NumberParseIntHelper(const base::uc16* string, int radix, size_t length)
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: StringToIntHelper(string, radix, length) {}
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template <class Char>
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void ParseInternal(const Char* start) {
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const Char* current = start + cursor();
|
|
const Char* end = start + length();
|
|
|
|
if (radix() == 10) return HandleBaseTenCase(current, end);
|
|
if (base::bits::IsPowerOfTwo(radix())) {
|
|
result_ = HandlePowerOfTwoCase(current, end);
|
|
set_state(State::kDone);
|
|
return;
|
|
}
|
|
return HandleGenericCase(current, end);
|
|
}
|
|
void ParseOneByte(const uint8_t* start) final { return ParseInternal(start); }
|
|
void ParseTwoByte(const base::uc16* start) final {
|
|
return ParseInternal(start);
|
|
}
|
|
|
|
double GetResult() {
|
|
ParseInt();
|
|
switch (state()) {
|
|
case State::kJunk:
|
|
case State::kEmpty:
|
|
return JunkStringValue();
|
|
case State::kZero:
|
|
return SignedZero(negative());
|
|
case State::kDone:
|
|
return negative() ? -result_ : result_;
|
|
case State::kError:
|
|
case State::kRunning:
|
|
break;
|
|
}
|
|
UNREACHABLE();
|
|
}
|
|
|
|
private:
|
|
template <class Char>
|
|
void HandleGenericCase(const Char* current, const Char* end);
|
|
|
|
template <class Char>
|
|
double HandlePowerOfTwoCase(const Char* current, const Char* end) {
|
|
const bool allow_trailing_junk = true;
|
|
// GetResult() will take care of the sign bit, so ignore it for now.
|
|
const bool negative = false;
|
|
switch (radix()) {
|
|
case 2:
|
|
return InternalStringToIntDouble<1>(current, end, negative,
|
|
allow_trailing_junk);
|
|
case 4:
|
|
return InternalStringToIntDouble<2>(current, end, negative,
|
|
allow_trailing_junk);
|
|
case 8:
|
|
return InternalStringToIntDouble<3>(current, end, negative,
|
|
allow_trailing_junk);
|
|
|
|
case 16:
|
|
return InternalStringToIntDouble<4>(current, end, negative,
|
|
allow_trailing_junk);
|
|
|
|
case 32:
|
|
return InternalStringToIntDouble<5>(current, end, negative,
|
|
allow_trailing_junk);
|
|
default:
|
|
UNREACHABLE();
|
|
}
|
|
}
|
|
|
|
template <class Char>
|
|
void HandleBaseTenCase(const Char* current, const Char* end) {
|
|
// Parsing with strtod.
|
|
// Doubles are less than 1.8e308.
|
|
constexpr size_t kMaxSignificantDigits = 309;
|
|
// The buffer may contain up to kMaxSignificantDigits + 1 digits and a zero
|
|
// end.
|
|
constexpr size_t kBufferSize = kMaxSignificantDigits + 2;
|
|
char buffer[kBufferSize];
|
|
size_t buffer_pos = 0;
|
|
while (*current >= '0' && *current <= '9') {
|
|
if (buffer_pos <= kMaxSignificantDigits) {
|
|
// If the number has more than kMaxSignificantDigits it will be parsed
|
|
// as infinity.
|
|
static_assert(kMaxSignificantDigits < kBufferSize);
|
|
buffer[buffer_pos++] = static_cast<char>(*current);
|
|
}
|
|
++current;
|
|
if (current == end) break;
|
|
}
|
|
|
|
SLOW_DCHECK(buffer_pos < kBufferSize);
|
|
buffer[buffer_pos] = '\0';
|
|
base::Vector<const char> buffer_vector(buffer, buffer_pos);
|
|
result_ = Strtod(buffer_vector, 0);
|
|
set_state(State::kDone);
|
|
}
|
|
|
|
double result_ = 0;
|
|
};
|
|
|
|
template <class Char>
|
|
void NumberParseIntHelper::HandleGenericCase(const Char* current,
|
|
const Char* end) {
|
|
// The following code causes accumulating rounding error for numbers greater
|
|
// than ~2^56. It's explicitly allowed in the spec: "if R is not 2, 4, 8, 10,
|
|
// 16, or 32, then mathInt may be an implementation-dependent approximation to
|
|
// the mathematical integer value" (15.1.2.2).
|
|
|
|
int lim_0 = '0' + (radix() < 10 ? radix() : 10);
|
|
int lim_a = 'a' + (radix() - 10);
|
|
int lim_A = 'A' + (radix() - 10);
|
|
|
|
// NOTE: The code for computing the value may seem a bit complex at
|
|
// first glance. It is structured to use 32-bit multiply-and-add
|
|
// loops as long as possible to avoid losing precision.
|
|
|
|
bool done = false;
|
|
do {
|
|
// Parse the longest part of the string starting at {current}
|
|
// possible while keeping the multiplier, and thus the part
|
|
// itself, within 32 bits.
|
|
uint32_t part = 0, multiplier = 1;
|
|
while (true) {
|
|
uint32_t d;
|
|
if (*current >= '0' && *current < lim_0) {
|
|
d = *current - '0';
|
|
} else if (*current >= 'a' && *current < lim_a) {
|
|
d = *current - 'a' + 10;
|
|
} else if (*current >= 'A' && *current < lim_A) {
|
|
d = *current - 'A' + 10;
|
|
} else {
|
|
done = true;
|
|
break;
|
|
}
|
|
|
|
// Update the value of the part as long as the multiplier fits
|
|
// in 32 bits. When we can't guarantee that the next iteration
|
|
// will not overflow the multiplier, we stop parsing the part
|
|
// by leaving the loop.
|
|
const uint32_t kMaximumMultiplier = 0xFFFFFFFFU / 36;
|
|
uint32_t m = multiplier * static_cast<uint32_t>(radix());
|
|
if (m > kMaximumMultiplier) break;
|
|
part = part * radix() + d;
|
|
multiplier = m;
|
|
DCHECK(multiplier > part);
|
|
|
|
++current;
|
|
if (current == end) {
|
|
done = true;
|
|
break;
|
|
}
|
|
}
|
|
result_ = result_ * multiplier + part;
|
|
} while (!done);
|
|
|
|
if (!allow_trailing_junk() && AdvanceToNonspace(¤t, end)) {
|
|
return set_state(State::kJunk);
|
|
}
|
|
return set_state(State::kDone);
|
|
}
|
|
|
|
// Converts a string to a double value.
|
|
template <class Char>
|
|
double InternalStringToDouble(const Char* current, const Char* end,
|
|
ConversionFlag flag, double empty_string_val) {
|
|
// To make sure that iterator dereferencing is valid the following
|
|
// convention is used:
|
|
// 1. Each '++current' statement is followed by check for equality to 'end'.
|
|
// 2. If AdvanceToNonspace returned false then current == end.
|
|
// 3. If 'current' becomes be equal to 'end' the function returns or goes to
|
|
// 'parsing_done'.
|
|
// 4. 'current' is not dereferenced after the 'parsing_done' label.
|
|
// 5. Code before 'parsing_done' may rely on 'current != end'.
|
|
if (!AdvanceToNonspace(¤t, end)) {
|
|
return empty_string_val;
|
|
}
|
|
|
|
// The non-decimal prefix has to be the first thing after any whitespace,
|
|
// so check for this first.
|
|
if (flag == ALLOW_NON_DECIMAL_PREFIX) {
|
|
// Copy the current iterator, so that on a failure to find the prefix, we
|
|
// rewind to the start.
|
|
const Char* prefixed = current;
|
|
if (*prefixed == '0') {
|
|
++prefixed;
|
|
if (prefixed == end) return 0;
|
|
|
|
if (*prefixed == 'x' || *prefixed == 'X') {
|
|
++prefixed;
|
|
if (prefixed == end) return JunkStringValue(); // "0x".
|
|
return InternalStringToIntDouble<4>(prefixed, end, false, false);
|
|
} else if (*prefixed == 'o' || *prefixed == 'O') {
|
|
++prefixed;
|
|
if (prefixed == end) return JunkStringValue(); // "0o".
|
|
return InternalStringToIntDouble<3>(prefixed, end, false, false);
|
|
} else if (*prefixed == 'b' || *prefixed == 'B') {
|
|
++prefixed;
|
|
if (prefixed == end) return JunkStringValue(); // "0b".
|
|
return InternalStringToIntDouble<1>(prefixed, end, false, false);
|
|
}
|
|
}
|
|
}
|
|
|
|
// From here we are parsing a StrDecimalLiteral, as per
|
|
// https://tc39.es/ecma262/#sec-tonumber-applied-to-the-string-type
|
|
const bool allow_trailing_junk = flag == ALLOW_TRAILING_JUNK;
|
|
|
|
double value;
|
|
// fast_float takes a char/char16_t instead of a uint8_t/uint16_t. Cast the
|
|
// pointers to match.
|
|
using UC = std::conditional_t<std::is_same_v<Char, uint8_t>, char, char16_t>;
|
|
static_assert(sizeof(UC) == sizeof(Char));
|
|
const UC* current_uc = reinterpret_cast<const UC*>(current);
|
|
const UC* end_uc = reinterpret_cast<const UC*>(end);
|
|
auto ret =
|
|
fast_float::from_chars(current_uc, end_uc, value,
|
|
static_cast<fast_float::chars_format>(
|
|
fast_float::chars_format::general |
|
|
fast_float::chars_format::no_infnan |
|
|
fast_float::chars_format::allow_leading_plus));
|
|
if (ret.ptr == end_uc) return value;
|
|
if (ret.ptr > current_uc) {
|
|
current = reinterpret_cast<const Char*>(ret.ptr);
|
|
if (!allow_trailing_junk && AdvanceToNonspace(¤t, end)) {
|
|
return JunkStringValue();
|
|
}
|
|
return value;
|
|
}
|
|
|
|
// Failed to parse any number -- handle ±Infinity before giving up.
|
|
DCHECK_EQ(ret.ptr, current_uc);
|
|
DCHECK_NE(current, end);
|
|
static constexpr char kInfinityString[] = "Infinity";
|
|
switch (*current) {
|
|
case '+':
|
|
// Ignore leading plus sign.
|
|
++current;
|
|
if (current == end) return JunkStringValue();
|
|
if (*current != kInfinityString[0]) return JunkStringValue();
|
|
[[fallthrough]];
|
|
case kInfinityString[0]:
|
|
if (!SubStringEquals(¤t, end, kInfinityString)) {
|
|
return JunkStringValue();
|
|
}
|
|
if (!allow_trailing_junk && AdvanceToNonspace(¤t, end)) {
|
|
return JunkStringValue();
|
|
}
|
|
return V8_INFINITY;
|
|
|
|
case '-':
|
|
++current;
|
|
if (current == end) return JunkStringValue();
|
|
if (*current != kInfinityString[0]) return JunkStringValue();
|
|
if (!SubStringEquals(¤t, end, kInfinityString)) {
|
|
return JunkStringValue();
|
|
}
|
|
if (!allow_trailing_junk && AdvanceToNonspace(¤t, end)) {
|
|
return JunkStringValue();
|
|
}
|
|
return -V8_INFINITY;
|
|
|
|
default:
|
|
return JunkStringValue();
|
|
}
|
|
}
|
|
|
|
double StringToDouble(const char* str, ConversionFlag flags,
|
|
double empty_string_val) {
|
|
// We use {base::OneByteVector} instead of {base::CStrVector} to avoid
|
|
// instantiating the InternalStringToDouble() template for {const char*} as
|
|
// well.
|
|
return StringToDouble(base::OneByteVector(str), flags, empty_string_val);
|
|
}
|
|
|
|
double StringToDouble(base::Vector<const uint8_t> str, ConversionFlag flags,
|
|
double empty_string_val) {
|
|
return InternalStringToDouble(str.begin(), str.end(), flags,
|
|
empty_string_val);
|
|
}
|
|
|
|
double StringToDouble(base::Vector<const base::uc16> str, ConversionFlag flags,
|
|
double empty_string_val) {
|
|
return InternalStringToDouble(str.begin(), str.end(), flags,
|
|
empty_string_val);
|
|
}
|
|
|
|
double BinaryStringToDouble(base::Vector<const uint8_t> str) {
|
|
DCHECK_EQ(str[0], '0');
|
|
DCHECK_EQ(tolower(str[1]), 'b');
|
|
return InternalStringToIntDouble<1>(str.begin() + 2, str.end(), false, false);
|
|
}
|
|
|
|
double OctalStringToDouble(base::Vector<const uint8_t> str) {
|
|
DCHECK_EQ(str[0], '0');
|
|
DCHECK_EQ(tolower(str[1]), 'o');
|
|
return InternalStringToIntDouble<3>(str.begin() + 2, str.end(), false, false);
|
|
}
|
|
|
|
double HexStringToDouble(base::Vector<const uint8_t> str) {
|
|
DCHECK_EQ(str[0], '0');
|
|
DCHECK_EQ(tolower(str[1]), 'x');
|
|
return InternalStringToIntDouble<4>(str.begin() + 2, str.end(), false, false);
|
|
}
|
|
|
|
double ImplicitOctalStringToDouble(base::Vector<const uint8_t> str) {
|
|
return InternalStringToIntDouble<3>(str.begin(), str.end(), false, false);
|
|
}
|
|
|
|
double StringToInt(Isolate* isolate, DirectHandle<String> string, int radix) {
|
|
NumberParseIntHelper helper(string, radix);
|
|
return helper.GetResult();
|
|
}
|
|
|
|
template <typename IsolateT>
|
|
class StringToBigIntHelper : public StringToIntHelper {
|
|
public:
|
|
enum class Behavior { kStringToBigInt, kLiteral };
|
|
|
|
// Used for StringToBigInt operation (BigInt constructor and == operator).
|
|
StringToBigIntHelper(IsolateT* isolate, DirectHandle<String> string)
|
|
: StringToIntHelper(string),
|
|
isolate_(isolate),
|
|
behavior_(Behavior::kStringToBigInt) {
|
|
set_allow_binary_and_octal_prefixes();
|
|
set_disallow_trailing_junk();
|
|
}
|
|
|
|
// Used for parsing BigInt literals, where the input is a buffer of
|
|
// one-byte ASCII digits, along with an optional radix prefix.
|
|
StringToBigIntHelper(IsolateT* isolate, const uint8_t* string, size_t length)
|
|
: StringToIntHelper(string, length),
|
|
isolate_(isolate),
|
|
behavior_(Behavior::kLiteral) {
|
|
set_allow_binary_and_octal_prefixes();
|
|
}
|
|
|
|
void ParseOneByte(const uint8_t* start) final { return ParseInternal(start); }
|
|
void ParseTwoByte(const base::uc16* start) final {
|
|
return ParseInternal(start);
|
|
}
|
|
|
|
MaybeHandle<BigInt> GetResult() {
|
|
ParseInt();
|
|
if (behavior_ == Behavior::kStringToBigInt && sign() != Sign::kNone &&
|
|
radix() != 10) {
|
|
return MaybeHandle<BigInt>();
|
|
}
|
|
if (state() == State::kEmpty) {
|
|
if (behavior_ == Behavior::kStringToBigInt) {
|
|
set_state(State::kZero);
|
|
} else {
|
|
UNREACHABLE();
|
|
}
|
|
}
|
|
switch (this->state()) {
|
|
case State::kJunk:
|
|
case State::kError:
|
|
return MaybeHandle<BigInt>();
|
|
case State::kZero:
|
|
return BigInt::Zero(isolate(), allocation_type());
|
|
case State::kDone:
|
|
return BigInt::Allocate(isolate(), &accumulator_, negative(),
|
|
allocation_type());
|
|
case State::kEmpty:
|
|
case State::kRunning:
|
|
break;
|
|
}
|
|
UNREACHABLE();
|
|
}
|
|
|
|
// Used for converting BigInt literals. The scanner has already checked
|
|
// that the literal is valid and not too big, so this always succeeds.
|
|
std::unique_ptr<char[]> DecimalString(bigint::Processor* processor) {
|
|
DCHECK_EQ(behavior_, Behavior::kLiteral);
|
|
ParseInt();
|
|
if (state() == State::kZero) {
|
|
// Input may have been "0x0" or similar.
|
|
return std::unique_ptr<char[]>(new char[2]{'0', '\0'});
|
|
}
|
|
DCHECK_EQ(state(), State::kDone);
|
|
int num_digits = accumulator_.ResultLength();
|
|
base::SmallVector<bigint::digit_t, 8> digit_storage(num_digits);
|
|
bigint::RWDigits digits(digit_storage.data(), num_digits);
|
|
processor->FromString(digits, &accumulator_);
|
|
uint32_t num_chars = bigint::ToStringResultLength(digits, 10, false);
|
|
std::unique_ptr<char[]> out(new char[num_chars + 1]);
|
|
processor->ToString(out.get(), &num_chars, digits, 10, false);
|
|
out[num_chars] = '\0';
|
|
return out;
|
|
}
|
|
IsolateT* isolate() { return isolate_; }
|
|
|
|
private:
|
|
template <class Char>
|
|
void ParseInternal(const Char* start) {
|
|
using Result = bigint::FromStringAccumulator::Result;
|
|
const Char* current = start + cursor();
|
|
const Char* end = start + length();
|
|
current = accumulator_.Parse(current, end, radix());
|
|
|
|
Result result = accumulator_.result();
|
|
if (result == Result::kMaxSizeExceeded) {
|
|
return set_state(State::kError);
|
|
}
|
|
if (!allow_trailing_junk() && AdvanceToNonspace(¤t, end)) {
|
|
return set_state(State::kJunk);
|
|
}
|
|
return set_state(State::kDone);
|
|
}
|
|
|
|
AllocationType allocation_type() {
|
|
// For literals, we pretenure the allocated BigInt, since it's about
|
|
// to be stored in the interpreter's constants array.
|
|
return behavior_ == Behavior::kLiteral ? AllocationType::kOld
|
|
: AllocationType::kYoung;
|
|
}
|
|
|
|
IsolateT* isolate_;
|
|
bigint::FromStringAccumulator accumulator_{BigInt::kMaxLength};
|
|
Behavior behavior_;
|
|
};
|
|
|
|
MaybeHandle<BigInt> StringToBigInt(Isolate* isolate,
|
|
DirectHandle<String> string) {
|
|
string = String::Flatten(isolate, string);
|
|
StringToBigIntHelper<Isolate> helper(isolate, string);
|
|
return helper.GetResult();
|
|
}
|
|
|
|
template <typename IsolateT>
|
|
MaybeHandle<BigInt> BigIntLiteral(IsolateT* isolate, const char* string) {
|
|
StringToBigIntHelper<IsolateT> helper(
|
|
isolate, reinterpret_cast<const uint8_t*>(string), strlen(string));
|
|
return helper.GetResult();
|
|
}
|
|
template EXPORT_TEMPLATE_DEFINE(V8_EXPORT_PRIVATE)
|
|
MaybeHandle<BigInt> BigIntLiteral(Isolate* isolate, const char* string);
|
|
template EXPORT_TEMPLATE_DEFINE(V8_EXPORT_PRIVATE)
|
|
MaybeHandle<BigInt> BigIntLiteral(LocalIsolate* isolate,
|
|
const char* string);
|
|
|
|
std::unique_ptr<char[]> BigIntLiteralToDecimal(
|
|
LocalIsolate* isolate, base::Vector<const uint8_t> literal) {
|
|
StringToBigIntHelper<LocalIsolate> helper(nullptr, literal.begin(),
|
|
literal.size());
|
|
return helper.DecimalString(isolate->bigint_processor());
|
|
}
|
|
|
|
std::string_view DoubleToStringView(double v, base::Vector<char> buffer) {
|
|
switch (FPCLASSIFY_NAMESPACE::fpclassify(v)) {
|
|
case FP_NAN:
|
|
return "NaN";
|
|
case FP_INFINITE:
|
|
return (v < 0.0 ? "-Infinity" : "Infinity");
|
|
case FP_ZERO:
|
|
return "0";
|
|
default: {
|
|
if (IsInt32Double(v)) {
|
|
// This will trigger if v is -0 and -0.0 is stringified to "0".
|
|
// (see ES section 7.1.12.1 #sec-tostring-applied-to-the-number-type)
|
|
return IntToStringView(FastD2I(v), buffer);
|
|
}
|
|
SimpleStringBuilder builder(buffer.begin(), buffer.size());
|
|
int decimal_point;
|
|
int sign;
|
|
constexpr int kV8DtoaBufferCapacity = base::kBase10MaximalLength + 1;
|
|
char decimal_rep[kV8DtoaBufferCapacity];
|
|
int length;
|
|
|
|
base::DoubleToAscii(
|
|
v, base::DTOA_SHORTEST, 0,
|
|
base::Vector<char>(decimal_rep, kV8DtoaBufferCapacity), &sign,
|
|
&length, &decimal_point);
|
|
|
|
if (sign) builder.AddCharacter('-');
|
|
|
|
if (length <= decimal_point && decimal_point <= 21) {
|
|
// ECMA-262 section 9.8.1 step 6.
|
|
builder.AddString(decimal_rep, length);
|
|
builder.AddPadding('0', decimal_point - length);
|
|
|
|
} else if (0 < decimal_point && decimal_point <= 21) {
|
|
// ECMA-262 section 9.8.1 step 7.
|
|
builder.AddSubstring(decimal_rep, decimal_point);
|
|
builder.AddCharacter('.');
|
|
builder.AddString(decimal_rep + decimal_point, length - decimal_point);
|
|
|
|
} else if (decimal_point <= 0 && decimal_point > -6) {
|
|
// ECMA-262 section 9.8.1 step 8.
|
|
builder.AddStringLiteral("0.");
|
|
builder.AddPadding('0', -decimal_point);
|
|
builder.AddString(decimal_rep, length);
|
|
|
|
} else {
|
|
// ECMA-262 section 9.8.1 step 9 and 10 combined.
|
|
builder.AddCharacter(decimal_rep[0]);
|
|
if (length != 1) {
|
|
builder.AddCharacter('.');
|
|
builder.AddString(decimal_rep + 1, length - 1);
|
|
}
|
|
builder.AddCharacter('e');
|
|
builder.AddCharacter((decimal_point >= 0) ? '+' : '-');
|
|
int exponent = decimal_point - 1;
|
|
if (exponent < 0) exponent = -exponent;
|
|
builder.AddDecimalInteger(exponent);
|
|
}
|
|
return {buffer.begin(), builder.Finalize()};
|
|
}
|
|
}
|
|
}
|
|
|
|
std::string_view IntToStringView(int n, base::Vector<char> buffer) {
|
|
bool negative = true;
|
|
if (n >= 0) {
|
|
n = -n;
|
|
negative = false;
|
|
}
|
|
// Build the string backwards from the least significant digit.
|
|
size_t i = buffer.size();
|
|
do {
|
|
// We ensured n <= 0, so the subtraction does the right addition.
|
|
buffer[--i] = '0' - (n % 10);
|
|
n /= 10;
|
|
} while (n);
|
|
if (negative) buffer[--i] = '-';
|
|
return {buffer.begin() + i, buffer.end()};
|
|
}
|
|
|
|
std::string_view DoubleToFixedStringView(double value, int f,
|
|
base::Vector<char> buffer) {
|
|
const double kFirstNonFixed = 1e21;
|
|
DCHECK_GE(f, 0);
|
|
DCHECK_LE(f, kMaxFractionDigits);
|
|
|
|
bool negative = false;
|
|
double abs_value = value;
|
|
if (value < 0) {
|
|
abs_value = -value;
|
|
negative = true;
|
|
}
|
|
|
|
// If abs_value has more than kDoubleToFixedMaxDigitsBeforePoint digits before
|
|
// the point use the non-fixed conversion routine.
|
|
if (abs_value >= kFirstNonFixed) {
|
|
return DoubleToStringView(value, buffer);
|
|
}
|
|
|
|
// Find a sufficiently precise decimal representation of n.
|
|
int decimal_point;
|
|
int sign;
|
|
// Add space for the '\0' byte.
|
|
constexpr int kDecimalRepCapacity =
|
|
kDoubleToFixedMaxDigitsBeforePoint + kMaxFractionDigits + 1;
|
|
char decimal_rep[kDecimalRepCapacity];
|
|
int decimal_rep_length;
|
|
base::DoubleToAscii(value, base::DTOA_FIXED, f,
|
|
base::Vector<char>(decimal_rep, kDecimalRepCapacity),
|
|
&sign, &decimal_rep_length, &decimal_point);
|
|
|
|
// Create a representation that is padded with zeros if needed.
|
|
int zero_prefix_length = 0;
|
|
int zero_postfix_length = 0;
|
|
|
|
if (decimal_point <= 0) {
|
|
zero_prefix_length = -decimal_point + 1;
|
|
decimal_point = 1;
|
|
}
|
|
|
|
if (zero_prefix_length + decimal_rep_length < decimal_point + f) {
|
|
zero_postfix_length =
|
|
decimal_point + f - decimal_rep_length - zero_prefix_length;
|
|
}
|
|
|
|
unsigned rep_length =
|
|
zero_prefix_length + decimal_rep_length + zero_postfix_length;
|
|
// TODO(pthier): Get rid of this intermediate string builder.
|
|
base::Vector<char> rep_buffer = base::Vector<char>::New(rep_length + 1);
|
|
SimpleStringBuilder rep_builder(rep_buffer.begin(), rep_buffer.size());
|
|
rep_builder.AddPadding('0', zero_prefix_length);
|
|
rep_builder.AddString(decimal_rep, decimal_rep_length);
|
|
rep_builder.AddPadding('0', zero_postfix_length);
|
|
char* rep_end = rep_builder.Finalize();
|
|
// AddSubstring requires a null-terminated string (for DCHECKs only).
|
|
*rep_end = '\0';
|
|
|
|
// Create the result string by appending a minus and putting in a
|
|
// decimal point if needed.
|
|
SimpleStringBuilder builder(buffer.begin(), buffer.size());
|
|
if (negative) builder.AddCharacter('-');
|
|
builder.AddSubstring(rep_buffer.begin(), decimal_point);
|
|
if (f > 0) {
|
|
builder.AddCharacter('.');
|
|
builder.AddSubstring(rep_buffer.begin() + decimal_point, f);
|
|
}
|
|
DeleteArray(rep_buffer.begin());
|
|
return {buffer.begin(), builder.Finalize()};
|
|
}
|
|
|
|
static std::string_view CreateExponentialRepresentation(
|
|
char* decimal_rep, int rep_length, int exponent, bool negative,
|
|
int significant_digits, base::Vector<char> buffer) {
|
|
bool negative_exponent = false;
|
|
if (exponent < 0) {
|
|
negative_exponent = true;
|
|
exponent = -exponent;
|
|
}
|
|
|
|
SimpleStringBuilder builder(buffer.begin(), buffer.size());
|
|
|
|
if (negative) builder.AddCharacter('-');
|
|
builder.AddCharacter(decimal_rep[0]);
|
|
if (significant_digits != 1) {
|
|
builder.AddCharacter('.');
|
|
DCHECK_EQ(rep_length, strlen(decimal_rep));
|
|
DCHECK_GE(significant_digits, rep_length);
|
|
builder.AddString(decimal_rep + 1, rep_length - 1);
|
|
builder.AddPadding('0', significant_digits - rep_length);
|
|
}
|
|
|
|
builder.AddCharacter('e');
|
|
builder.AddCharacter(negative_exponent ? '-' : '+');
|
|
builder.AddDecimalInteger(exponent);
|
|
return {buffer.begin(), builder.Finalize()};
|
|
}
|
|
|
|
std::string_view DoubleToExponentialStringView(double value, int f,
|
|
base::Vector<char> buffer) {
|
|
// f might be -1 to signal that f was undefined in JavaScript.
|
|
DCHECK(f >= -1 && f <= kMaxFractionDigits);
|
|
|
|
bool negative = false;
|
|
if (value < 0) {
|
|
value = -value;
|
|
negative = true;
|
|
}
|
|
|
|
// Find a sufficiently precise decimal representation of n.
|
|
int decimal_point;
|
|
int sign;
|
|
// f corresponds to the digits after the point. There is always one digit
|
|
// before the point. The number of requested_digits equals hence f + 1.
|
|
// And we have to add one character for the null-terminator.
|
|
constexpr int kV8DtoaBufferCapacity = kMaxFractionDigits + 1 + 1;
|
|
// Make sure that the buffer is big enough, even if we fall back to the
|
|
// shortest representation (which happens when f equals -1).
|
|
DCHECK_LE(base::kBase10MaximalLength, kMaxFractionDigits + 1);
|
|
char decimal_rep[kV8DtoaBufferCapacity];
|
|
int decimal_rep_length;
|
|
|
|
if (f == -1) {
|
|
base::DoubleToAscii(value, base::DTOA_SHORTEST, 0,
|
|
base::Vector<char>(decimal_rep, kV8DtoaBufferCapacity),
|
|
&sign, &decimal_rep_length, &decimal_point);
|
|
f = decimal_rep_length - 1;
|
|
} else {
|
|
base::DoubleToAscii(value, base::DTOA_PRECISION, f + 1,
|
|
base::Vector<char>(decimal_rep, kV8DtoaBufferCapacity),
|
|
&sign, &decimal_rep_length, &decimal_point);
|
|
}
|
|
DCHECK_GT(decimal_rep_length, 0);
|
|
DCHECK(decimal_rep_length <= f + 1);
|
|
|
|
int exponent = decimal_point - 1;
|
|
return CreateExponentialRepresentation(decimal_rep, decimal_rep_length,
|
|
exponent, negative, f + 1, buffer);
|
|
}
|
|
|
|
std::string_view DoubleToPrecisionStringView(double value, int p,
|
|
base::Vector<char> buffer) {
|
|
constexpr int kMinimalDigits = 1;
|
|
DCHECK(p >= kMinimalDigits && p <= kMaxFractionDigits);
|
|
USE(kMinimalDigits);
|
|
|
|
bool negative = false;
|
|
if (value < 0) {
|
|
value = -value;
|
|
negative = true;
|
|
}
|
|
|
|
// Find a sufficiently precise decimal representation of n.
|
|
int decimal_point;
|
|
int sign;
|
|
// Add one for the terminating null character.
|
|
constexpr int kV8DtoaBufferCapacity = kMaxFractionDigits + 1;
|
|
char decimal_rep[kV8DtoaBufferCapacity];
|
|
int decimal_rep_length;
|
|
|
|
base::DoubleToAscii(value, base::DTOA_PRECISION, p,
|
|
base::Vector<char>(decimal_rep, kV8DtoaBufferCapacity),
|
|
&sign, &decimal_rep_length, &decimal_point);
|
|
DCHECK(decimal_rep_length <= p);
|
|
|
|
int exponent = decimal_point - 1;
|
|
|
|
std::string_view result;
|
|
|
|
if (exponent < -6 || exponent >= p) {
|
|
result = CreateExponentialRepresentation(decimal_rep, decimal_rep_length,
|
|
exponent, negative, p, buffer);
|
|
} else {
|
|
// Use fixed notation.
|
|
SimpleStringBuilder builder(buffer.begin(), buffer.size());
|
|
if (negative) builder.AddCharacter('-');
|
|
if (decimal_point <= 0) {
|
|
builder.AddStringLiteral("0.");
|
|
builder.AddPadding('0', -decimal_point);
|
|
builder.AddString(decimal_rep, decimal_rep_length);
|
|
builder.AddPadding('0', p - decimal_rep_length);
|
|
} else {
|
|
const size_t m = std::min(decimal_rep_length, decimal_point);
|
|
builder.AddSubstring(decimal_rep, m);
|
|
builder.AddPadding('0', decimal_point - decimal_rep_length);
|
|
if (decimal_point < p) {
|
|
builder.AddCharacter('.');
|
|
const int extra = negative ? 2 : 1;
|
|
if (decimal_rep_length > decimal_point) {
|
|
DCHECK_EQ(decimal_rep_length - decimal_point,
|
|
strlen(decimal_rep + decimal_point));
|
|
const int len = decimal_rep_length - decimal_point;
|
|
DCHECK_LE(builder.position(), kMaxInt);
|
|
const size_t n =
|
|
std::min(len, p - static_cast<int>(builder.position() - extra));
|
|
builder.AddSubstring(decimal_rep + decimal_point, n);
|
|
}
|
|
builder.AddPadding('0',
|
|
extra + (p - static_cast<int>(builder.position())));
|
|
}
|
|
}
|
|
result = {buffer.begin(), builder.Finalize()};
|
|
}
|
|
|
|
return result;
|
|
}
|
|
|
|
std::string_view DoubleToRadixStringView(double value, int radix,
|
|
base::Vector<char> buffer) {
|
|
// We don't expect to see zero here (callers should handle it).
|
|
DCHECK_NE(0.0, value);
|
|
|
|
// Certain invalid inputs will cause this function to corrupt memory (write
|
|
// out-of-bounds of the given buffer), so defend against that with CHECKs.
|
|
CHECK(radix >= 2 && radix <= 36);
|
|
CHECK(std::isfinite(value));
|
|
|
|
// Character array used for conversion.
|
|
static const char chars[] = "0123456789abcdefghijklmnopqrstuvwxyz";
|
|
|
|
size_t integer_cursor = buffer.size() / 2;
|
|
size_t fraction_cursor = integer_cursor;
|
|
|
|
bool negative = value < 0;
|
|
if (negative) value = -value;
|
|
|
|
// Split the value into an integer part and a fractional part.
|
|
double integer = std::floor(value);
|
|
double fraction = value - integer;
|
|
// We only compute fractional digits up to the input double's precision.
|
|
double delta = 0.5 * (base::Double(value).NextDouble() - value);
|
|
bool delta_is_positive = true;
|
|
// If the delta rounded down to zero, use the minimum (denormal) delta
|
|
// value. Be careful around denormal flushing when doing so.
|
|
if (delta <= 0) {
|
|
if (base::FPU::GetFlushDenormals()) {
|
|
// We're flushing the delta value to zero, so the loop below won't
|
|
// make progress. Skip it instead.
|
|
delta_is_positive = false;
|
|
} else {
|
|
static_assert(base::Double(0.0).NextDouble() > 0);
|
|
delta = base::Double(0.0).NextDouble();
|
|
}
|
|
}
|
|
if (delta_is_positive && fraction >= delta) {
|
|
// Insert decimal point.
|
|
buffer[fraction_cursor++] = '.';
|
|
do {
|
|
// Shift up by one digit.
|
|
fraction *= radix;
|
|
delta *= radix;
|
|
// Write digit.
|
|
int digit = static_cast<int>(fraction);
|
|
buffer[fraction_cursor++] = chars[digit];
|
|
// Calculate remainder.
|
|
fraction -= digit;
|
|
// Round to even.
|
|
if (fraction > 0.5 || (fraction == 0.5 && (digit & 1))) {
|
|
if (fraction + delta > 1) {
|
|
// We need to back trace already written digits in case of carry-over.
|
|
while (true) {
|
|
fraction_cursor--;
|
|
if (fraction_cursor == buffer.size() / 2) {
|
|
CHECK_EQ('.', buffer[fraction_cursor]);
|
|
// Carry over to the integer part.
|
|
integer += 1;
|
|
break;
|
|
}
|
|
char c = buffer[fraction_cursor];
|
|
// Reconstruct digit.
|
|
digit = c > '9' ? (c - 'a' + 10) : (c - '0');
|
|
if (digit + 1 < radix) {
|
|
buffer[fraction_cursor++] = chars[digit + 1];
|
|
break;
|
|
}
|
|
}
|
|
break;
|
|
}
|
|
}
|
|
} while (fraction >= delta);
|
|
}
|
|
|
|
// Compute integer digits. Fill unrepresented digits with zero.
|
|
while (base::Double(integer / radix).Exponent() > 0) {
|
|
integer /= radix;
|
|
buffer[--integer_cursor] = '0';
|
|
}
|
|
do {
|
|
double remainder = Modulo(integer, radix);
|
|
buffer[--integer_cursor] = chars[static_cast<int>(remainder)];
|
|
integer = (integer - remainder) / radix;
|
|
} while (integer > 0);
|
|
|
|
// Add sign and terminate string.
|
|
if (negative) buffer[--integer_cursor] = '-';
|
|
DCHECK_LE(integer_cursor, 1u << 31); // Didn't underflow.
|
|
DCHECK_GT(fraction_cursor, integer_cursor);
|
|
return {buffer.begin() + integer_cursor, fraction_cursor - integer_cursor};
|
|
}
|
|
|
|
// ES6 18.2.4 parseFloat(string)
|
|
double StringToDouble(Isolate* isolate, DirectHandle<String> string,
|
|
ConversionFlag flag, double empty_string_val) {
|
|
DirectHandle<String> flattened = String::Flatten(isolate, string);
|
|
return FlatStringToDouble(*flattened, flag, empty_string_val);
|
|
}
|
|
|
|
double FlatStringToDouble(Tagged<String> string, ConversionFlag flag,
|
|
double empty_string_val) {
|
|
DisallowGarbageCollection no_gc;
|
|
DCHECK(string->IsFlat());
|
|
String::FlatContent flat = string->GetFlatContent(no_gc);
|
|
DCHECK(flat.IsFlat());
|
|
if (flat.IsOneByte()) {
|
|
return StringToDouble(flat.ToOneByteVector(), flag, empty_string_val);
|
|
} else {
|
|
return StringToDouble(flat.ToUC16Vector(), flag, empty_string_val);
|
|
}
|
|
}
|
|
|
|
std::optional<double> TryStringToDouble(LocalIsolate* isolate,
|
|
DirectHandle<String> object,
|
|
uint32_t max_length_for_conversion) {
|
|
DisallowGarbageCollection no_gc;
|
|
uint32_t length = object->length();
|
|
if (length > max_length_for_conversion) {
|
|
return std::nullopt;
|
|
}
|
|
|
|
auto buffer = std::make_unique<base::uc16[]>(max_length_for_conversion);
|
|
SharedStringAccessGuardIfNeeded access_guard(isolate);
|
|
String::WriteToFlat(*object, buffer.get(), 0, length, access_guard);
|
|
base::Vector<const base::uc16> v(buffer.get(), length);
|
|
return StringToDouble(v, ALLOW_NON_DECIMAL_PREFIX);
|
|
}
|
|
|
|
std::optional<double> TryStringToInt(LocalIsolate* isolate,
|
|
DirectHandle<String> object, int radix) {
|
|
DisallowGarbageCollection no_gc;
|
|
const uint32_t kMaxLengthForConversion = 20;
|
|
uint32_t length = object->length();
|
|
if (length > kMaxLengthForConversion) {
|
|
return std::nullopt;
|
|
}
|
|
|
|
if (String::IsOneByteRepresentationUnderneath(*object)) {
|
|
uint8_t buffer[kMaxLengthForConversion];
|
|
SharedStringAccessGuardIfNeeded access_guard(isolate);
|
|
String::WriteToFlat(*object, buffer, 0, length, access_guard);
|
|
NumberParseIntHelper helper(buffer, radix, length);
|
|
return helper.GetResult();
|
|
} else {
|
|
base::uc16 buffer[kMaxLengthForConversion];
|
|
SharedStringAccessGuardIfNeeded access_guard(isolate);
|
|
String::WriteToFlat(*object, buffer, 0, length, access_guard);
|
|
NumberParseIntHelper helper(buffer, radix, length);
|
|
return helper.GetResult();
|
|
}
|
|
}
|
|
|
|
bool IsSpecialIndex(Tagged<String> string) {
|
|
DCHECK(!SharedStringAccessGuardIfNeeded::IsNeeded(string));
|
|
SharedStringAccessGuardIfNeeded access_guard =
|
|
SharedStringAccessGuardIfNeeded::NotNeeded();
|
|
return IsSpecialIndex(string, access_guard);
|
|
}
|
|
|
|
bool IsSpecialIndex(Tagged<String> string,
|
|
SharedStringAccessGuardIfNeeded& access_guard) {
|
|
// Max length of canonical double: -X.XXXXXXXXXXXXXXXXX-eXXX
|
|
const uint32_t kBufferSize = 24;
|
|
const uint32_t length = string->length();
|
|
if (length == 0 || length > kBufferSize) return false;
|
|
uint16_t buffer[kBufferSize];
|
|
String::WriteToFlat(string, buffer, 0, length, access_guard);
|
|
// If the first char is not a digit or a '-' or we can't match 'NaN' or
|
|
// '(-)Infinity', bailout immediately.
|
|
uint32_t offset = 0;
|
|
if (!IsDecimalDigit(buffer[0])) {
|
|
if (buffer[0] == '-') {
|
|
if (length == 1) return false; // Just '-' is bad.
|
|
if (!IsDecimalDigit(buffer[1])) {
|
|
if (buffer[1] == 'I' && length == 9) {
|
|
// Allow matching of '-Infinity' below.
|
|
} else {
|
|
return false;
|
|
}
|
|
}
|
|
offset++;
|
|
} else if (buffer[0] == 'I' && length == 8) {
|
|
// Allow matching of 'Infinity' below.
|
|
} else if (buffer[0] == 'N' && length == 3) {
|
|
// Match NaN.
|
|
return buffer[1] == 'a' && buffer[2] == 'N';
|
|
} else {
|
|
return false;
|
|
}
|
|
}
|
|
// Expected fast path: key is an integer.
|
|
static const uint32_t kRepresentableIntegerLength = 15; // (-)XXXXXXXXXXXXXXX
|
|
if (length - offset <= kRepresentableIntegerLength) {
|
|
const uint32_t initial_offset = offset;
|
|
bool matches = true;
|
|
for (; offset < length; offset++) {
|
|
matches &= IsDecimalDigit(buffer[offset]);
|
|
}
|
|
if (matches) {
|
|
// Match 0 and -0.
|
|
if (buffer[initial_offset] == '0') return initial_offset == length - 1;
|
|
return true;
|
|
}
|
|
}
|
|
// Slow path: test DoubleToString(StringToDouble(string)) == string.
|
|
base::Vector<const uint16_t> vector(buffer, length);
|
|
double d = StringToDouble(vector, NO_CONVERSION_FLAG);
|
|
if (std::isnan(d)) return false;
|
|
// Compute reverse string.
|
|
char reverse_buffer[kBufferSize + 1]; // Result will be /0 terminated.
|
|
base::Vector<char> reverse_vector(reverse_buffer, arraysize(reverse_buffer));
|
|
std::string_view reverse_string = DoubleToStringView(d, reverse_vector);
|
|
|
|
if (reverse_string.length() != length) return false;
|
|
for (uint32_t i = 0; i < length; ++i) {
|
|
if (static_cast<uint16_t>(reverse_string[i]) != buffer[i]) return false;
|
|
}
|
|
return true;
|
|
}
|
|
|
|
float DoubleToFloat32_NoInline(double x) { return DoubleToFloat32(x); }
|
|
|
|
int32_t DoubleToInt32_NoInline(double x) { return DoubleToInt32(x); }
|
|
|
|
} // namespace internal
|
|
} // namespace v8
|
|
|
|
#undef FPCLASSIFY_NAMESPACE
|