Remove the UTF-16 storage mode and make StringBuilder solely build UTF-8 strings again. The remaining UTF-16 adoption path now goes through Utf16StringBuilder, keeping the direct-adoption optimization with the type that owns UTF-16 construction.
631 lines
16 KiB
C++
631 lines
16 KiB
C++
/*
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* Copyright (c) 2018-2021, Andreas Kling <andreas@ladybird.org>
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* Copyright (c) 2023, Liav A. <liavalb@hotmail.co.il>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#include <AK/ByteBuffer.h>
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#include <AK/ByteString.h>
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#include <AK/Checked.h>
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#include <AK/FlyString.h>
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#include <AK/String.h>
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#include <AK/StringBuilder.h>
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#include <AK/StringData.h>
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#include <AK/StringView.h>
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#include <AK/UnicodeUtils.h>
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#include <AK/Utf16String.h>
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#include <AK/Utf16StringData.h>
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#include <AK/Utf16View.h>
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#include <AK/kmalloc.h>
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#include <simdutf.h>
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namespace AK {
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StringBuilder::Buffer::Buffer(Buffer const& other)
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{
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MUST(try_resize(other.size()));
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if (other.size() != 0)
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__builtin_memcpy(data(), other.data(), other.size());
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}
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StringBuilder::Buffer::Buffer(Buffer&& other)
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{
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move_from(move(other));
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}
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StringBuilder::Buffer::~Buffer()
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{
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clear();
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}
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auto StringBuilder::Buffer::operator=(Buffer const& other) -> Buffer&
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{
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if (this != &other) {
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if (m_size > other.size())
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trim(other.size(), true);
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else
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MUST(try_resize(other.size()));
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if (other.size() != 0)
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__builtin_memcpy(data(), other.data(), other.size());
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}
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return *this;
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}
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auto StringBuilder::Buffer::operator=(Buffer&& other) -> Buffer&
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{
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if (this != &other) {
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clear();
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move_from(move(other));
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}
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return *this;
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}
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u8* StringBuilder::Buffer::data()
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{
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return m_inline ? m_inline_buffer : m_outline_buffer;
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}
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u8 const* StringBuilder::Buffer::data() const
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{
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return m_inline ? m_inline_buffer : m_outline_buffer;
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}
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Bytes StringBuilder::Buffer::span()
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{
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return { data(), size() };
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}
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ReadonlyBytes StringBuilder::Buffer::span() const
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{
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return { data(), size() };
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}
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void* StringBuilder::Buffer::end_pointer()
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{
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return data() + m_size;
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}
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void StringBuilder::Buffer::clear()
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{
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if (!m_inline) {
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kfree(m_outline_buffer);
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m_inline = true;
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}
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m_size = 0;
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}
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void StringBuilder::Buffer::resize(size_t new_size)
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{
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MUST(try_resize(new_size));
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}
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void StringBuilder::Buffer::set_size(size_t new_size)
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{
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ASSERT(new_size <= capacity());
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m_size = new_size;
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}
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void StringBuilder::Buffer::ensure_capacity(size_t new_capacity)
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{
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MUST(try_ensure_capacity(new_capacity));
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}
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ErrorOr<void> StringBuilder::Buffer::try_resize(size_t new_size)
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{
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if (new_size <= m_size) {
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trim(new_size, false);
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return {};
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}
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TRY(try_ensure_capacity(new_size));
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set_size(new_size);
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return {};
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}
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ErrorOr<void> StringBuilder::Buffer::try_ensure_capacity(size_t new_capacity)
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{
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if (new_capacity <= capacity())
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return {};
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return try_ensure_capacity_slowpath(new_capacity);
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}
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ErrorOr<void> StringBuilder::Buffer::try_append(char byte)
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{
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auto old_size = size();
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Checked<size_t> new_size = old_size;
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new_size += 1;
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VERIFY(!new_size.has_overflow());
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TRY(try_resize(new_size.value()));
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data()[old_size] = static_cast<u8>(byte);
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return {};
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}
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ErrorOr<void> StringBuilder::Buffer::try_append(ReadonlyBytes bytes)
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{
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return try_append(bytes.data(), bytes.size());
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}
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ErrorOr<void> StringBuilder::Buffer::try_append(void const* data, size_t data_size)
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{
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if (data_size == 0)
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return {};
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VERIFY(data != nullptr);
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auto old_size = size();
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Checked<size_t> new_size = old_size;
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new_size += data_size;
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VERIFY(!new_size.has_overflow());
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TRY(try_resize(new_size.value()));
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__builtin_memcpy(this->data() + old_size, data, data_size);
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return {};
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}
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void StringBuilder::Buffer::append(char byte)
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{
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MUST(try_append(byte));
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}
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void StringBuilder::Buffer::append(void const* data, size_t data_size)
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{
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MUST(try_append(data, data_size));
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}
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auto StringBuilder::Buffer::leak_outline_buffer() -> Optional<OutlineBuffer>
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{
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if (m_inline)
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return {};
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auto* outline_buffer = m_outline_buffer;
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auto size = m_size;
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auto outline_capacity = m_outline_capacity;
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m_inline = true;
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m_size = 0;
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return OutlineBuffer { Bytes { outline_buffer, size }, outline_capacity };
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}
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void StringBuilder::Buffer::move_from(Buffer&& other)
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{
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m_size = other.m_size;
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m_inline = other.m_inline;
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if (other.m_inline) {
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VERIFY(other.m_size <= inline_capacity);
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if (other.m_size != 0)
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__builtin_memcpy(m_inline_buffer, other.m_inline_buffer, other.m_size);
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} else {
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m_outline_buffer = other.m_outline_buffer;
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m_outline_capacity = other.m_outline_capacity;
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}
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other.m_size = 0;
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other.m_inline = true;
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}
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void StringBuilder::Buffer::trim(size_t size, bool may_discard_existing_data)
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{
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VERIFY(size <= m_size);
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if (!m_inline && size <= inline_capacity)
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shrink_into_inline_buffer(size, may_discard_existing_data);
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m_size = size;
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}
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void StringBuilder::Buffer::shrink_into_inline_buffer(size_t size, bool may_discard_existing_data)
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{
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auto* outline_buffer = m_outline_buffer;
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if (!may_discard_existing_data)
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__builtin_memcpy(m_inline_buffer, outline_buffer, size);
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kfree(outline_buffer);
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m_inline = true;
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}
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ErrorOr<void> StringBuilder::Buffer::try_ensure_capacity_slowpath(size_t new_capacity)
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{
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new_capacity = max(new_capacity, (capacity() * 3) / 2);
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new_capacity = kmalloc_good_size(new_capacity);
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if (m_inline) {
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auto* new_buffer = static_cast<u8*>(kmalloc(HeapPartition::String, new_capacity));
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if (!new_buffer)
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return Error::from_errno(ENOMEM);
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__builtin_memcpy(new_buffer, data(), m_size);
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m_outline_buffer = new_buffer;
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} else {
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auto* new_buffer = static_cast<u8*>(krealloc(HeapPartition::String, m_outline_buffer, new_capacity));
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if (!new_buffer)
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return Error::from_errno(ENOMEM);
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m_outline_buffer = new_buffer;
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}
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m_outline_capacity = new_capacity;
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m_inline = false;
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return {};
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}
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static constexpr size_t string_builder_prefix_size()
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{
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return sizeof(Detail::StringData);
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}
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void StringBuilder::initialize_buffer(size_t capacity)
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{
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auto prefix_size = string_builder_prefix_size();
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if (capacity > StringBuilder::inline_capacity)
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m_buffer.ensure_capacity(prefix_size + capacity);
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m_buffer.resize(prefix_size);
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}
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StringBuilder::StringBuilder()
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{
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static constexpr auto prefix_size = string_builder_prefix_size();
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static_assert(inline_capacity > prefix_size);
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initialize_buffer(inline_capacity);
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}
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StringBuilder::StringBuilder(size_t initial_capacity)
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{
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initialize_buffer(initial_capacity);
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}
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inline ErrorOr<void> StringBuilder::will_append(size_t size_in_bytes)
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{
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Checked<size_t> needed_capacity = m_buffer.size();
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needed_capacity += size_in_bytes;
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VERIFY(!needed_capacity.has_overflow());
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// Prefer to completely use the existing capacity first
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if (needed_capacity <= m_buffer.capacity())
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return {};
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Checked<size_t> expanded_capacity = needed_capacity;
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expanded_capacity *= 2;
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VERIFY(!expanded_capacity.has_overflow());
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TRY(m_buffer.try_ensure_capacity(expanded_capacity.value()));
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return {};
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}
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size_t StringBuilder::length() const
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{
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return m_buffer.size() - string_builder_prefix_size();
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}
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bool StringBuilder::is_empty() const
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{
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return length() == 0;
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}
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void StringBuilder::trim(size_t count)
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{
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auto decrease_count = min(m_buffer.size(), count);
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m_buffer.resize(m_buffer.size() - decrease_count);
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}
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ErrorOr<void> StringBuilder::try_append(StringView string)
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{
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if (string.is_empty())
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return {};
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TRY(will_append(string.length()));
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TRY(m_buffer.try_append(string.characters_without_null_termination(), string.length()));
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return {};
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}
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void StringBuilder::append_ascii_without_validation(ReadonlyBytes string)
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{
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MUST(try_append_ascii_without_validation(string));
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}
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ErrorOr<void> StringBuilder::try_append_ascii_without_validation(ReadonlyBytes string)
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{
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if (string.is_empty())
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return {};
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TRY(will_append(string.size()));
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TRY(m_buffer.try_append(string));
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return {};
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}
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ErrorOr<void> StringBuilder::try_append(char ch)
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{
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TRY(will_append(1));
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TRY(m_buffer.try_append(ch));
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return {};
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}
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ErrorOr<void> StringBuilder::try_append_code_unit(char16_t ch)
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{
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return try_append_code_point(ch);
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}
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ErrorOr<void> StringBuilder::try_append_repeated(char ch, size_t n)
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{
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TRY(will_append(n));
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for (size_t i = 0; i < n; ++i)
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TRY(try_append(ch));
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return {};
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}
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ErrorOr<void> StringBuilder::try_append_repeated(StringView string, size_t n)
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{
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if (string.is_empty())
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return {};
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TRY(will_append(string.length() * n));
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for (size_t i = 0; i < n; ++i)
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TRY(try_append(string));
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return {};
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}
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ErrorOr<void> StringBuilder::try_append_repeated(Utf16View const& string, size_t n)
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{
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if (string.is_empty())
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return {};
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if (string.has_ascii_storage()) {
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TRY(will_append(string.length_in_code_units() * n));
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} else {
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auto utf8_length = simdutf::utf8_length_from_utf16(string.utf16_span().data(), string.length_in_code_units());
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TRY(will_append(utf8_length * n));
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}
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for (size_t i = 0; i < n; ++i)
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TRY(try_append(string));
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return {};
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}
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void StringBuilder::append(StringView string)
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{
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MUST(try_append(string));
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}
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ErrorOr<void> StringBuilder::try_append(char const* characters, size_t length)
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{
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return try_append(StringView { characters, length });
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}
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void StringBuilder::append(char const* characters, size_t length)
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{
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MUST(try_append(characters, length));
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}
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void StringBuilder::append(char ch)
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{
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MUST(try_append(ch));
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}
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void StringBuilder::append_code_unit(char16_t ch)
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{
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MUST(try_append_code_unit(ch));
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}
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void StringBuilder::append_repeated(char ch, size_t n)
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{
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MUST(try_append_repeated(ch, n));
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}
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void StringBuilder::append_repeated(StringView string, size_t n)
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{
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MUST(try_append_repeated(string, n));
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}
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void StringBuilder::append_repeated(Utf16View const& string, size_t n)
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{
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MUST(try_append_repeated(string, n));
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}
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ErrorOr<ByteBuffer> StringBuilder::to_byte_buffer() const
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{
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return ByteBuffer::copy(data(), length());
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}
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ByteString StringBuilder::to_byte_string() const
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{
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if (is_empty())
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return ByteString::empty();
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return ByteString((char const*)data(), length());
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}
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ErrorOr<String> StringBuilder::to_string()
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{
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if (m_buffer.is_inline())
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return String::from_utf8(string_view());
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return String::from_string_builder({}, *this);
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}
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String StringBuilder::to_string_without_validation()
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{
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if (m_buffer.is_inline())
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return String::from_utf8_without_validation(string_view().bytes());
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return String::from_string_builder_without_validation({}, *this);
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}
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FlyString StringBuilder::to_fly_string_without_validation() const
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{
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return FlyString::from_utf8_without_validation(string_view().bytes());
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}
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ErrorOr<FlyString> StringBuilder::to_fly_string() const
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{
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return FlyString::from_utf8(string_view());
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}
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u8* StringBuilder::data()
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{
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return m_buffer.data() + string_builder_prefix_size();
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}
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u8 const* StringBuilder::data() const
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{
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return m_buffer.data() + string_builder_prefix_size();
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}
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StringView StringBuilder::string_view() const
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{
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return m_buffer.span().slice(string_builder_prefix_size());
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}
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void StringBuilder::clear()
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{
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m_buffer.resize(string_builder_prefix_size());
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}
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ErrorOr<void> StringBuilder::try_append_code_point(u32 code_point)
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{
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if (!is_unicode(code_point)) {
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TRY(try_append_code_point(UnicodeUtils::REPLACEMENT_CODE_POINT));
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return {};
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}
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TRY(AK::UnicodeUtils::try_code_point_to_utf8(code_point, [this](char c) { return try_append(c); }));
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return {};
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}
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void StringBuilder::append_code_point(u32 code_point)
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{
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if (!is_unicode(code_point)) {
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append_code_point(UnicodeUtils::REPLACEMENT_CODE_POINT);
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return;
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}
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if (code_point <= 0x7f) {
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m_buffer.append(static_cast<char>(code_point));
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} else if (code_point <= 0x07ff) {
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(void)will_append(2);
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m_buffer.append(static_cast<char>((((code_point >> 6) & 0x1f) | 0xc0)));
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m_buffer.append(static_cast<char>((((code_point >> 0) & 0x3f) | 0x80)));
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} else if (code_point <= 0xffff) {
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(void)will_append(3);
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m_buffer.append(static_cast<char>((((code_point >> 12) & 0x0f) | 0xe0)));
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m_buffer.append(static_cast<char>((((code_point >> 6) & 0x3f) | 0x80)));
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m_buffer.append(static_cast<char>((((code_point >> 0) & 0x3f) | 0x80)));
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} else {
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(void)will_append(4);
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m_buffer.append(static_cast<char>((((code_point >> 18) & 0x07) | 0xf0)));
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m_buffer.append(static_cast<char>((((code_point >> 12) & 0x3f) | 0x80)));
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m_buffer.append(static_cast<char>((((code_point >> 6) & 0x3f) | 0x80)));
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m_buffer.append(static_cast<char>((((code_point >> 0) & 0x3f) | 0x80)));
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}
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}
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ErrorOr<void> StringBuilder::try_append(Utf16View const& utf16_view)
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{
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if (utf16_view.is_empty())
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return {};
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if (utf16_view.has_ascii_storage())
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return try_append_ascii_without_validation(utf16_view.bytes());
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auto remaining_view = utf16_view.utf16_span();
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auto maximum_utf8_length = UnicodeUtils::maximum_utf8_length_from_utf16(remaining_view);
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// Possibly over-allocate a little to ensure we don't have to allocate later.
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TRY(will_append(maximum_utf8_length));
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for (;;) {
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auto* uninitialized_data_pointer = static_cast<char*>(m_buffer.end_pointer());
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// Fast path.
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auto result = simdutf::convert_utf16_to_utf8_with_errors(remaining_view.data(), remaining_view.size(), uninitialized_data_pointer);
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if (result.error == simdutf::SUCCESS) {
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auto bytes_just_written = result.count;
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m_buffer.set_size(m_buffer.size() + bytes_just_written);
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break;
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}
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|
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// Slow path. Found unmatched surrogate code unit.
|
|
auto first_invalid_code_unit = result.count;
|
|
ASSERT(first_invalid_code_unit < remaining_view.size());
|
|
|
|
// Unfortunately, `simdutf` does not tell us how many bytes it just wrote in case of an error, so we have to calculate it ourselves.
|
|
auto bytes_just_written = simdutf::utf8_length_from_utf16(remaining_view.data(), first_invalid_code_unit);
|
|
|
|
do {
|
|
auto code_unit = remaining_view[first_invalid_code_unit++];
|
|
|
|
// Invalid surrogate code units are U+D800 - U+DFFF, so they are always encoded using 3 bytes.
|
|
ASSERT(code_unit >= 0xD800 && code_unit <= 0xDFFF);
|
|
ASSERT(m_buffer.size() + bytes_just_written + 3 < m_buffer.capacity());
|
|
uninitialized_data_pointer[bytes_just_written++] = (((code_unit >> 12) & 0x0f) | 0xe0);
|
|
uninitialized_data_pointer[bytes_just_written++] = (((code_unit >> 6) & 0x3f) | 0x80);
|
|
uninitialized_data_pointer[bytes_just_written++] = (((code_unit >> 0) & 0x3f) | 0x80);
|
|
} while (first_invalid_code_unit < remaining_view.size() && UnicodeUtils::is_utf16_low_surrogate(remaining_view.data()[first_invalid_code_unit]));
|
|
|
|
// Code unit might no longer be invalid, retry on the remaining data.
|
|
m_buffer.set_size(m_buffer.size() + bytes_just_written);
|
|
remaining_view = remaining_view.slice(first_invalid_code_unit);
|
|
}
|
|
|
|
return {};
|
|
}
|
|
|
|
void StringBuilder::append(Utf16View const& utf16_view)
|
|
{
|
|
MUST(try_append(utf16_view));
|
|
}
|
|
|
|
void StringBuilder::append_as_lowercase(char ch)
|
|
{
|
|
if (ch >= 'A' && ch <= 'Z')
|
|
append(ch + 0x20);
|
|
else
|
|
append(ch);
|
|
}
|
|
|
|
void StringBuilder::append_escaped_for_json(StringView string)
|
|
{
|
|
MUST(try_append_escaped_for_json(string));
|
|
}
|
|
|
|
ErrorOr<void> StringBuilder::try_append_escaped_for_json(StringView string)
|
|
{
|
|
for (auto ch : string) {
|
|
switch (ch) {
|
|
case '\b':
|
|
TRY(try_append("\\b"sv));
|
|
break;
|
|
case '\n':
|
|
TRY(try_append("\\n"sv));
|
|
break;
|
|
case '\t':
|
|
TRY(try_append("\\t"sv));
|
|
break;
|
|
case '\"':
|
|
TRY(try_append("\\\""sv));
|
|
break;
|
|
case '\\':
|
|
TRY(try_append("\\\\"sv));
|
|
break;
|
|
default:
|
|
if (ch >= 0 && ch <= 0x1f)
|
|
TRY(try_appendff("\\u{:04x}", ch));
|
|
else
|
|
TRY(try_append(ch));
|
|
}
|
|
}
|
|
return {};
|
|
}
|
|
|
|
auto StringBuilder::leak_buffer_for_string_construction() -> Optional<Buffer::OutlineBuffer>
|
|
{
|
|
if (auto buffer = m_buffer.leak_outline_buffer(); buffer.has_value()) {
|
|
clear();
|
|
return buffer;
|
|
}
|
|
|
|
return {};
|
|
}
|
|
|
|
}
|