mirror of
https://github.com/flutter/flutter.git
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725 lines
26 KiB
C++
725 lines
26 KiB
C++
/*
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* Copyright (C) 1999 Lars Knoll (knoll@kde.org)
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* Copyright (C) 2005, 2006, 2007, 2008, 2009, 2010, 2013 Apple Inc. All rights reserved.
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* Copyright (C) 2009 Google Inc. All rights reserved.
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*
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* This library is free software; you can redistribute it and/or
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* modify it under the terms of the GNU Library General Public
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* License as published by the Free Software Foundation; either
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* version 2 of the License, or (at your option) any later version.
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*
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* This library is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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* Library General Public License for more details.
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*
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* You should have received a copy of the GNU Library General Public License
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* along with this library; see the file COPYING.LIB. If not, write to
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* the Free Software Foundation, Inc., 51 Franklin Street, Fifth Floor,
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* Boston, MA 02110-1301, USA.
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*
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*/
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#ifndef SKY_ENGINE_WTF_TEXT_STRINGIMPL_H_
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#define SKY_ENGINE_WTF_TEXT_STRINGIMPL_H_
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#include <limits.h>
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#include "flutter/sky/engine/wtf/ASCIICType.h"
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#include "flutter/sky/engine/wtf/Forward.h"
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#include "flutter/sky/engine/wtf/HashMap.h"
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#include "flutter/sky/engine/wtf/StringHasher.h"
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#include "flutter/sky/engine/wtf/Vector.h"
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#include "flutter/sky/engine/wtf/WTFExport.h"
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#include "flutter/sky/engine/wtf/unicode/Unicode.h"
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namespace WTF {
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struct AlreadyHashed;
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struct CStringTranslator;
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template<typename CharacterType> struct HashAndCharactersTranslator;
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struct HashAndUTF8CharactersTranslator;
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struct LCharBufferTranslator;
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struct CharBufferFromLiteralDataTranslator;
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struct SubstringTranslator;
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struct UCharBufferTranslator;
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enum TextCaseSensitivity { TextCaseSensitive, TextCaseInsensitive };
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enum StripBehavior { StripExtraWhiteSpace, DoNotStripWhiteSpace };
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typedef bool (*CharacterMatchFunctionPtr)(UChar);
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typedef bool (*IsWhiteSpaceFunctionPtr)(UChar);
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typedef HashMap<unsigned, StringImpl*, AlreadyHashed> StaticStringsTable;
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// Define STRING_STATS to turn on run time statistics of string sizes and memory usage
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#undef STRING_STATS
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#ifdef STRING_STATS
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struct StringStats {
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inline void add8BitString(unsigned length)
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{
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++m_totalNumberStrings;
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++m_number8BitStrings;
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m_total8BitData += length;
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}
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inline void add16BitString(unsigned length)
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{
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++m_totalNumberStrings;
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++m_number16BitStrings;
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m_total16BitData += length;
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}
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void removeString(StringImpl*);
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void printStats();
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static const unsigned s_printStringStatsFrequency = 5000;
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static unsigned s_stringRemovesTillPrintStats;
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unsigned m_totalNumberStrings;
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unsigned m_number8BitStrings;
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unsigned m_number16BitStrings;
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unsigned long long m_total8BitData;
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unsigned long long m_total16BitData;
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};
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void addStringForStats(StringImpl*);
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void removeStringForStats(StringImpl*);
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#define STRING_STATS_ADD_8BIT_STRING(length) StringImpl::stringStats().add8BitString(length); addStringForStats(this)
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#define STRING_STATS_ADD_16BIT_STRING(length) StringImpl::stringStats().add16BitString(length); addStringForStats(this)
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#define STRING_STATS_REMOVE_STRING(string) StringImpl::stringStats().removeString(string); removeStringForStats(this)
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#else
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#define STRING_STATS_ADD_8BIT_STRING(length) ((void)0)
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#define STRING_STATS_ADD_16BIT_STRING(length) ((void)0)
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#define STRING_STATS_REMOVE_STRING(string) ((void)0)
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#endif
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// You can find documentation about this class in this doc:
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// https://docs.google.com/document/d/1kOCUlJdh2WJMJGDf-WoEQhmnjKLaOYRbiHz5TiGJl14/edit?usp=sharing
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class WTF_EXPORT StringImpl {
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WTF_MAKE_NONCOPYABLE(StringImpl);
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friend struct WTF::CStringTranslator;
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template<typename CharacterType> friend struct WTF::HashAndCharactersTranslator;
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friend struct WTF::HashAndUTF8CharactersTranslator;
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friend struct WTF::CharBufferFromLiteralDataTranslator;
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friend struct WTF::LCharBufferTranslator;
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friend struct WTF::SubstringTranslator;
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friend struct WTF::UCharBufferTranslator;
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private:
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// StringImpls are allocated out of the WTF buffer partition.
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void* operator new(size_t);
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void* operator new(size_t, void* ptr) { return ptr; };
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void operator delete(void*);
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// Used to construct static strings, which have an special refCount that can never hit zero.
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// This means that the static string will never be destroyed, which is important because
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// static strings will be shared across threads & ref-counted in a non-threadsafe manner.
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enum ConstructEmptyStringTag { ConstructEmptyString };
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explicit StringImpl(ConstructEmptyStringTag)
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: m_refCount(1)
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, m_length(0)
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, m_hash(0)
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, m_isAtomic(false)
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, m_is8Bit(true)
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, m_isStatic(true)
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{
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// Ensure that the hash is computed so that AtomicStringHash can call existingHash()
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// with impunity. The empty string is special because it is never entered into
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// AtomicString's HashKey, but still needs to compare correctly.
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STRING_STATS_ADD_8BIT_STRING(m_length);
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hash();
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}
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// FIXME: there has to be a less hacky way to do this.
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enum Force8Bit { Force8BitConstructor };
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StringImpl(unsigned length, Force8Bit)
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: m_refCount(1)
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, m_length(length)
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, m_hash(0)
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, m_isAtomic(false)
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, m_is8Bit(true)
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, m_isStatic(false)
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{
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ASSERT(m_length);
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STRING_STATS_ADD_8BIT_STRING(m_length);
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}
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StringImpl(unsigned length)
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: m_refCount(1)
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, m_length(length)
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, m_hash(0)
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, m_isAtomic(false)
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, m_is8Bit(false)
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, m_isStatic(false)
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{
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ASSERT(m_length);
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STRING_STATS_ADD_16BIT_STRING(m_length);
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}
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enum StaticStringTag { StaticString };
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StringImpl(unsigned length, unsigned hash, StaticStringTag)
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: m_refCount(1)
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, m_length(length)
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, m_hash(hash)
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, m_isAtomic(false)
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, m_is8Bit(true)
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, m_isStatic(true)
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{
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}
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public:
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~StringImpl();
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static StringImpl* createStatic(const char* string, unsigned length, unsigned hash);
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static void freezeStaticStrings();
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static const StaticStringsTable& allStaticStrings();
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static unsigned highestStaticStringLength() { return m_highestStaticStringLength; }
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static PassRefPtr<StringImpl> create(const UChar*, unsigned length);
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static PassRefPtr<StringImpl> create(const LChar*, unsigned length);
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static PassRefPtr<StringImpl> create8BitIfPossible(const UChar*, unsigned length);
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template<size_t inlineCapacity>
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static PassRefPtr<StringImpl> create8BitIfPossible(const Vector<UChar, inlineCapacity>& vector)
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{
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return create8BitIfPossible(vector.data(), vector.size());
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}
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ALWAYS_INLINE static PassRefPtr<StringImpl> create(const char* s, unsigned length) { return create(reinterpret_cast<const LChar*>(s), length); }
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static PassRefPtr<StringImpl> create(const LChar*);
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ALWAYS_INLINE static PassRefPtr<StringImpl> create(const char* s) { return create(reinterpret_cast<const LChar*>(s)); }
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static PassRefPtr<StringImpl> createUninitialized(unsigned length, LChar*& data);
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static PassRefPtr<StringImpl> createUninitialized(unsigned length, UChar*& data);
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// Reallocate the StringImpl. The originalString must be only owned by the PassRefPtr.
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// Just like the input pointer of realloc(), the originalString can't be used after this function.
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static PassRefPtr<StringImpl> reallocate(PassRefPtr<StringImpl> originalString, unsigned length);
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// If this StringImpl has only one reference, we can truncate the string by updating
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// its m_length property without actually re-allocating its buffer.
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void truncateAssumingIsolated(unsigned length)
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{
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ASSERT(hasOneRef());
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ASSERT(length <= m_length);
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m_length = length;
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}
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unsigned length() const { return m_length; }
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bool is8Bit() const { return m_is8Bit; }
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ALWAYS_INLINE const LChar* characters8() const { ASSERT(is8Bit()); return reinterpret_cast<const LChar*>(this + 1); }
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ALWAYS_INLINE const UChar* characters16() const { ASSERT(!is8Bit()); return reinterpret_cast<const UChar*>(this + 1); }
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template <typename CharType>
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ALWAYS_INLINE const CharType * getCharacters() const;
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size_t sizeInBytes() const;
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bool isAtomic() const { return m_isAtomic; }
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void setIsAtomic(bool isAtomic) { m_isAtomic = isAtomic; }
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bool isStatic() const { return m_isStatic; }
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private:
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// The high bits of 'hash' are always empty, but we prefer to store our flags
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// in the low bits because it makes them slightly more efficient to access.
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// So, we shift left and right when setting and getting our hash code.
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void setHash(unsigned hash) const
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{
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ASSERT(!hasHash());
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// Multiple clients assume that StringHasher is the canonical string hash function.
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ASSERT(hash == (is8Bit() ? StringHasher::computeHashAndMaskTop8Bits(characters8(), m_length) : StringHasher::computeHashAndMaskTop8Bits(characters16(), m_length)));
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m_hash = hash;
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ASSERT(hash); // Verify that 0 is a valid sentinel hash value.
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}
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unsigned rawHash() const
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{
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return m_hash;
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}
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void destroyIfNotStatic();
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public:
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bool hasHash() const
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{
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return rawHash() != 0;
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}
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unsigned existingHash() const
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{
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ASSERT(hasHash());
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return rawHash();
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}
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unsigned hash() const
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{
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if (hasHash())
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return existingHash();
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return hashSlowCase();
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}
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ALWAYS_INLINE bool hasOneRef() const
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{
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return m_refCount == 1;
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}
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ALWAYS_INLINE void ref()
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{
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++m_refCount;
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}
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ALWAYS_INLINE void deref()
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{
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if (hasOneRef()) {
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destroyIfNotStatic();
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return;
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}
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--m_refCount;
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}
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static StringImpl* empty();
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// FIXME: Does this really belong in StringImpl?
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template <typename T> static void copyChars(T* destination, const T* source, unsigned numCharacters)
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{
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memcpy(destination, source, numCharacters * sizeof(T));
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}
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ALWAYS_INLINE static void copyChars(UChar* destination, const LChar* source, unsigned numCharacters)
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{
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for (unsigned i = 0; i < numCharacters; ++i)
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destination[i] = source[i];
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}
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// Some string features, like refcounting and the atomicity flag, are not
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// thread-safe. We achieve thread safety by isolation, giving each thread
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// its own copy of the string.
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PassRefPtr<StringImpl> isolatedCopy() const;
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PassRefPtr<StringImpl> substring(unsigned pos, unsigned len = UINT_MAX);
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UChar operator[](unsigned i) const
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{
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ASSERT_WITH_SECURITY_IMPLICATION(i < m_length);
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if (is8Bit())
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return characters8()[i];
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return characters16()[i];
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}
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UChar32 characterStartingAt(unsigned);
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bool containsOnlyWhitespace();
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int toIntStrict(bool* ok = 0, int base = 10);
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unsigned toUIntStrict(bool* ok = 0, int base = 10);
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int64_t toInt64Strict(bool* ok = 0, int base = 10);
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uint64_t toUInt64Strict(bool* ok = 0, int base = 10);
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intptr_t toIntPtrStrict(bool* ok = 0, int base = 10);
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int toInt(bool* ok = 0); // ignores trailing garbage
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unsigned toUInt(bool* ok = 0); // ignores trailing garbage
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int64_t toInt64(bool* ok = 0); // ignores trailing garbage
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uint64_t toUInt64(bool* ok = 0); // ignores trailing garbage
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intptr_t toIntPtr(bool* ok = 0); // ignores trailing garbage
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// FIXME: Like the strict functions above, these give false for "ok" when there is trailing garbage.
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// Like the non-strict functions above, these return the value when there is trailing garbage.
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// It would be better if these were more consistent with the above functions instead.
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double toDouble(bool* ok = 0);
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float toFloat(bool* ok = 0);
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PassRefPtr<StringImpl> lower();
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PassRefPtr<StringImpl> upper();
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PassRefPtr<StringImpl> lower(const AtomicString& localeIdentifier);
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PassRefPtr<StringImpl> upper(const AtomicString& localeIdentifier);
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PassRefPtr<StringImpl> fill(UChar);
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// FIXME: Do we need fill(char) or can we just do the right thing if UChar is ASCII?
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PassRefPtr<StringImpl> foldCase();
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PassRefPtr<StringImpl> stripWhiteSpace();
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PassRefPtr<StringImpl> stripWhiteSpace(IsWhiteSpaceFunctionPtr);
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PassRefPtr<StringImpl> simplifyWhiteSpace(StripBehavior stripBehavior = StripExtraWhiteSpace);
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PassRefPtr<StringImpl> simplifyWhiteSpace(IsWhiteSpaceFunctionPtr, StripBehavior stripBehavior = StripExtraWhiteSpace);
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PassRefPtr<StringImpl> removeCharacters(CharacterMatchFunctionPtr);
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template <typename CharType>
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ALWAYS_INLINE PassRefPtr<StringImpl> removeCharacters(const CharType* characters, CharacterMatchFunctionPtr);
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size_t find(LChar character, unsigned start = 0);
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size_t find(char character, unsigned start = 0);
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size_t find(UChar character, unsigned start = 0);
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size_t find(CharacterMatchFunctionPtr, unsigned index = 0);
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size_t find(const LChar*, unsigned index = 0);
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ALWAYS_INLINE size_t find(const char* s, unsigned index = 0) { return find(reinterpret_cast<const LChar*>(s), index); }
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size_t find(StringImpl*);
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size_t find(StringImpl*, unsigned index);
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size_t findIgnoringCase(const LChar*, unsigned index = 0);
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ALWAYS_INLINE size_t findIgnoringCase(const char* s, unsigned index = 0) { return findIgnoringCase(reinterpret_cast<const LChar*>(s), index); }
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size_t findIgnoringCase(StringImpl*, unsigned index = 0);
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size_t findNextLineStart(unsigned index = UINT_MAX);
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size_t reverseFind(UChar, unsigned index = UINT_MAX);
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size_t reverseFind(StringImpl*, unsigned index = UINT_MAX);
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size_t reverseFindIgnoringCase(StringImpl*, unsigned index = UINT_MAX);
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size_t count(LChar) const;
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bool startsWith(StringImpl* str, bool caseSensitive = true) { return (caseSensitive ? reverseFind(str, 0) : reverseFindIgnoringCase(str, 0)) == 0; }
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bool startsWith(UChar) const;
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bool startsWith(const char*, unsigned matchLength, bool caseSensitive) const;
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template<unsigned matchLength>
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bool startsWith(const char (&prefix)[matchLength], bool caseSensitive = true) const { return startsWith(prefix, matchLength - 1, caseSensitive); }
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bool endsWith(StringImpl*, bool caseSensitive = true);
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bool endsWith(UChar) const;
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bool endsWith(const char*, unsigned matchLength, bool caseSensitive) const;
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template<unsigned matchLength>
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bool endsWith(const char (&prefix)[matchLength], bool caseSensitive = true) const { return endsWith(prefix, matchLength - 1, caseSensitive); }
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PassRefPtr<StringImpl> replace(UChar, UChar);
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PassRefPtr<StringImpl> replace(UChar, StringImpl*);
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ALWAYS_INLINE PassRefPtr<StringImpl> replace(UChar pattern, const char* replacement, unsigned replacementLength) { return replace(pattern, reinterpret_cast<const LChar*>(replacement), replacementLength); }
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PassRefPtr<StringImpl> replace(UChar, const LChar*, unsigned replacementLength);
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PassRefPtr<StringImpl> replace(UChar, const UChar*, unsigned replacementLength);
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PassRefPtr<StringImpl> replace(StringImpl*, StringImpl*);
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PassRefPtr<StringImpl> replace(unsigned index, unsigned len, StringImpl*);
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PassRefPtr<StringImpl> upconvertedString();
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#ifdef STRING_STATS
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ALWAYS_INLINE static StringStats& stringStats() { return m_stringStats; }
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#endif
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private:
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template<typename CharType> static size_t allocationSize(unsigned length)
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{
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RELEASE_ASSERT(length <= ((std::numeric_limits<unsigned>::max() - sizeof(StringImpl)) / sizeof(CharType)));
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return sizeof(StringImpl) + length * sizeof(CharType);
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}
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template <class UCharPredicate> PassRefPtr<StringImpl> stripMatchedCharacters(UCharPredicate);
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template <typename CharType, class UCharPredicate> PassRefPtr<StringImpl> simplifyMatchedCharactersToSpace(UCharPredicate, StripBehavior);
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NEVER_INLINE unsigned hashSlowCase() const;
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#ifdef STRING_STATS
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static StringStats m_stringStats;
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#endif
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static unsigned m_highestStaticStringLength;
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#if ENABLE(ASSERT)
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void assertHashIsCorrect()
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{
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ASSERT(hasHash());
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ASSERT(existingHash() == StringHasher::computeHashAndMaskTop8Bits(characters8(), length()));
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}
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#endif
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private:
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unsigned m_refCount;
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unsigned m_length;
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mutable unsigned m_hash : 24;
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unsigned m_isAtomic : 1;
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unsigned m_is8Bit : 1;
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unsigned m_isStatic : 1;
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};
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template <>
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ALWAYS_INLINE const LChar* StringImpl::getCharacters<LChar>() const { return characters8(); }
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template <>
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ALWAYS_INLINE const UChar* StringImpl::getCharacters<UChar>() const { return characters16(); }
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WTF_EXPORT bool equal(const StringImpl*, const StringImpl*);
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WTF_EXPORT bool equal(const StringImpl*, const LChar*);
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inline bool equal(const StringImpl* a, const char* b) { return equal(a, reinterpret_cast<const LChar*>(b)); }
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WTF_EXPORT bool equal(const StringImpl*, const LChar*, unsigned);
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WTF_EXPORT bool equal(const StringImpl*, const UChar*, unsigned);
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inline bool equal(const StringImpl* a, const char* b, unsigned length) { return equal(a, reinterpret_cast<const LChar*>(b), length); }
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inline bool equal(const LChar* a, StringImpl* b) { return equal(b, a); }
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inline bool equal(const char* a, StringImpl* b) { return equal(b, reinterpret_cast<const LChar*>(a)); }
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WTF_EXPORT bool equalNonNull(const StringImpl* a, const StringImpl* b);
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template<typename CharType>
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ALWAYS_INLINE bool equal(const CharType* a, const CharType* b, unsigned length) { return !memcmp(a, b, length * sizeof(CharType)); }
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ALWAYS_INLINE bool equal(const LChar* a, const UChar* b, unsigned length)
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{
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for (unsigned i = 0; i < length; ++i) {
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if (a[i] != b[i])
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return false;
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}
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return true;
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}
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ALWAYS_INLINE bool equal(const UChar* a, const LChar* b, unsigned length) { return equal(b, a, length); }
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WTF_EXPORT bool equalIgnoringCase(const StringImpl*, const StringImpl*);
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WTF_EXPORT bool equalIgnoringCase(const StringImpl*, const LChar*);
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inline bool equalIgnoringCase(const LChar* a, const StringImpl* b) { return equalIgnoringCase(b, a); }
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WTF_EXPORT bool equalIgnoringCase(const LChar*, const LChar*, unsigned);
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WTF_EXPORT bool equalIgnoringCase(const UChar*, const LChar*, unsigned);
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inline bool equalIgnoringCase(const UChar* a, const char* b, unsigned length) { return equalIgnoringCase(a, reinterpret_cast<const LChar*>(b), length); }
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inline bool equalIgnoringCase(const LChar* a, const UChar* b, unsigned length) { return equalIgnoringCase(b, a, length); }
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inline bool equalIgnoringCase(const char* a, const UChar* b, unsigned length) { return equalIgnoringCase(b, reinterpret_cast<const LChar*>(a), length); }
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inline bool equalIgnoringCase(const char* a, const LChar* b, unsigned length) { return equalIgnoringCase(b, reinterpret_cast<const LChar*>(a), length); }
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inline bool equalIgnoringCase(const UChar* a, const UChar* b, int length)
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{
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ASSERT(length >= 0);
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return !Unicode::umemcasecmp(a, b, length);
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}
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WTF_EXPORT bool equalIgnoringCaseNonNull(const StringImpl*, const StringImpl*);
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WTF_EXPORT bool equalIgnoringNullity(StringImpl*, StringImpl*);
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template<typename CharacterType>
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inline size_t find(const CharacterType* characters, unsigned length, CharacterType matchCharacter, unsigned index = 0)
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{
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|
while (index < length) {
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if (characters[index] == matchCharacter)
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return index;
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++index;
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}
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return kNotFound;
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|
}
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|
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ALWAYS_INLINE size_t find(const UChar* characters, unsigned length, LChar matchCharacter, unsigned index = 0)
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|
{
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return find(characters, length, static_cast<UChar>(matchCharacter), index);
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}
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|
|
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inline size_t find(const LChar* characters, unsigned length, UChar matchCharacter, unsigned index = 0)
|
|
{
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|
if (matchCharacter & ~0xFF)
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return kNotFound;
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|
return find(characters, length, static_cast<LChar>(matchCharacter), index);
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|
}
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|
|
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inline size_t find(const LChar* characters, unsigned length, CharacterMatchFunctionPtr matchFunction, unsigned index = 0)
|
|
{
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|
while (index < length) {
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|
if (matchFunction(characters[index]))
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return index;
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|
++index;
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|
}
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|
return kNotFound;
|
|
}
|
|
|
|
inline size_t find(const UChar* characters, unsigned length, CharacterMatchFunctionPtr matchFunction, unsigned index = 0)
|
|
{
|
|
while (index < length) {
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|
if (matchFunction(characters[index]))
|
|
return index;
|
|
++index;
|
|
}
|
|
return kNotFound;
|
|
}
|
|
|
|
template<typename CharacterType>
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|
inline size_t findNextLineStart(const CharacterType* characters, unsigned length, unsigned index = 0)
|
|
{
|
|
while (index < length) {
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|
CharacterType c = characters[index++];
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|
if ((c != '\n') && (c != '\r'))
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|
continue;
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|
|
|
// There can only be a start of a new line if there are more characters
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|
// beyond the current character.
|
|
if (index < length) {
|
|
// The 3 common types of line terminators are 1. \r\n (Windows),
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// 2. \r (old MacOS) and 3. \n (Unix'es).
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|
|
|
if (c == '\n')
|
|
return index; // Case 3: just \n.
|
|
|
|
CharacterType c2 = characters[index];
|
|
if (c2 != '\n')
|
|
return index; // Case 2: just \r.
|
|
|
|
// Case 1: \r\n.
|
|
// But, there's only a start of a new line if there are more
|
|
// characters beyond the \r\n.
|
|
if (++index < length)
|
|
return index;
|
|
}
|
|
}
|
|
return kNotFound;
|
|
}
|
|
|
|
template<typename CharacterType>
|
|
inline size_t reverseFindLineTerminator(const CharacterType* characters, unsigned length, unsigned index = UINT_MAX)
|
|
{
|
|
if (!length)
|
|
return kNotFound;
|
|
if (index >= length)
|
|
index = length - 1;
|
|
CharacterType c = characters[index];
|
|
while ((c != '\n') && (c != '\r')) {
|
|
if (!index--)
|
|
return kNotFound;
|
|
c = characters[index];
|
|
}
|
|
return index;
|
|
}
|
|
|
|
template<typename CharacterType>
|
|
inline size_t reverseFind(const CharacterType* characters, unsigned length, CharacterType matchCharacter, unsigned index = UINT_MAX)
|
|
{
|
|
if (!length)
|
|
return kNotFound;
|
|
if (index >= length)
|
|
index = length - 1;
|
|
while (characters[index] != matchCharacter) {
|
|
if (!index--)
|
|
return kNotFound;
|
|
}
|
|
return index;
|
|
}
|
|
|
|
ALWAYS_INLINE size_t reverseFind(const UChar* characters, unsigned length, LChar matchCharacter, unsigned index = UINT_MAX)
|
|
{
|
|
return reverseFind(characters, length, static_cast<UChar>(matchCharacter), index);
|
|
}
|
|
|
|
inline size_t reverseFind(const LChar* characters, unsigned length, UChar matchCharacter, unsigned index = UINT_MAX)
|
|
{
|
|
if (matchCharacter & ~0xFF)
|
|
return kNotFound;
|
|
return reverseFind(characters, length, static_cast<LChar>(matchCharacter), index);
|
|
}
|
|
|
|
inline size_t StringImpl::find(LChar character, unsigned start)
|
|
{
|
|
if (is8Bit())
|
|
return WTF::find(characters8(), m_length, character, start);
|
|
return WTF::find(characters16(), m_length, character, start);
|
|
}
|
|
|
|
ALWAYS_INLINE size_t StringImpl::find(char character, unsigned start)
|
|
{
|
|
return find(static_cast<LChar>(character), start);
|
|
}
|
|
|
|
inline size_t StringImpl::find(UChar character, unsigned start)
|
|
{
|
|
if (is8Bit())
|
|
return WTF::find(characters8(), m_length, character, start);
|
|
return WTF::find(characters16(), m_length, character, start);
|
|
}
|
|
|
|
inline unsigned lengthOfNullTerminatedString(const UChar* string)
|
|
{
|
|
size_t length = 0;
|
|
while (string[length] != UChar(0))
|
|
++length;
|
|
RELEASE_ASSERT(length <= std::numeric_limits<unsigned>::max());
|
|
return static_cast<unsigned>(length);
|
|
}
|
|
|
|
template<size_t inlineCapacity>
|
|
bool equalIgnoringNullity(const Vector<UChar, inlineCapacity>& a, StringImpl* b)
|
|
{
|
|
if (!b)
|
|
return !a.size();
|
|
if (a.size() != b->length())
|
|
return false;
|
|
if (b->is8Bit())
|
|
return equal(a.data(), b->characters8(), b->length());
|
|
return equal(a.data(), b->characters16(), b->length());
|
|
}
|
|
|
|
template<typename CharacterType1, typename CharacterType2>
|
|
static inline int codePointCompare(unsigned l1, unsigned l2, const CharacterType1* c1, const CharacterType2* c2)
|
|
{
|
|
const unsigned lmin = l1 < l2 ? l1 : l2;
|
|
unsigned pos = 0;
|
|
while (pos < lmin && *c1 == *c2) {
|
|
++c1;
|
|
++c2;
|
|
++pos;
|
|
}
|
|
|
|
if (pos < lmin)
|
|
return (c1[0] > c2[0]) ? 1 : -1;
|
|
|
|
if (l1 == l2)
|
|
return 0;
|
|
|
|
return (l1 > l2) ? 1 : -1;
|
|
}
|
|
|
|
static inline int codePointCompare8(const StringImpl* string1, const StringImpl* string2)
|
|
{
|
|
return codePointCompare(string1->length(), string2->length(), string1->characters8(), string2->characters8());
|
|
}
|
|
|
|
static inline int codePointCompare16(const StringImpl* string1, const StringImpl* string2)
|
|
{
|
|
return codePointCompare(string1->length(), string2->length(), string1->characters16(), string2->characters16());
|
|
}
|
|
|
|
static inline int codePointCompare8To16(const StringImpl* string1, const StringImpl* string2)
|
|
{
|
|
return codePointCompare(string1->length(), string2->length(), string1->characters8(), string2->characters16());
|
|
}
|
|
|
|
static inline int codePointCompare(const StringImpl* string1, const StringImpl* string2)
|
|
{
|
|
if (!string1)
|
|
return (string2 && string2->length()) ? -1 : 0;
|
|
|
|
if (!string2)
|
|
return string1->length() ? 1 : 0;
|
|
|
|
bool string1Is8Bit = string1->is8Bit();
|
|
bool string2Is8Bit = string2->is8Bit();
|
|
if (string1Is8Bit) {
|
|
if (string2Is8Bit)
|
|
return codePointCompare8(string1, string2);
|
|
return codePointCompare8To16(string1, string2);
|
|
}
|
|
if (string2Is8Bit)
|
|
return -codePointCompare8To16(string2, string1);
|
|
return codePointCompare16(string1, string2);
|
|
}
|
|
|
|
static inline bool isSpaceOrNewline(UChar c)
|
|
{
|
|
// Use isASCIISpace() for basic Latin-1.
|
|
// This will include newlines, which aren't included in Unicode DirWS.
|
|
return c <= 0x7F ? WTF::isASCIISpace(c) : WTF::Unicode::direction(c) == WTF::Unicode::WhiteSpaceNeutral;
|
|
}
|
|
|
|
inline PassRefPtr<StringImpl> StringImpl::isolatedCopy() const
|
|
{
|
|
if (is8Bit())
|
|
return create(characters8(), m_length);
|
|
return create(characters16(), m_length);
|
|
}
|
|
|
|
struct StringHash;
|
|
|
|
// StringHash is the default hash for StringImpl* and RefPtr<StringImpl>
|
|
template<typename T> struct DefaultHash;
|
|
template<> struct DefaultHash<StringImpl*> {
|
|
typedef StringHash Hash;
|
|
};
|
|
template<> struct DefaultHash<RefPtr<StringImpl> > {
|
|
typedef StringHash Hash;
|
|
};
|
|
|
|
}
|
|
|
|
using WTF::StringImpl;
|
|
using WTF::equal;
|
|
using WTF::equalNonNull;
|
|
using WTF::TextCaseSensitivity;
|
|
using WTF::TextCaseSensitive;
|
|
using WTF::TextCaseInsensitive;
|
|
|
|
#endif // SKY_ENGINE_WTF_TEXT_STRINGIMPL_H_
|