mirror of
https://github.com/darlinghq/darling-JavaScriptCore.git
synced 2025-04-17 06:20:04 +00:00
411 lines
14 KiB
C++
411 lines
14 KiB
C++
/*
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* Copyright (C) 2018-2019 Apple Inc. All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions
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* are met:
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* 1. Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* 2. Redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution.
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*
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* THIS SOFTWARE IS PROVIDED BY APPLE INC. ``AS IS'' AND ANY
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* EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
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* PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL APPLE INC. OR
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* CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
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* EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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* PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
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* PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY
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* OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#pragma once
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#include "GetPutInfo.h"
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#include "Interpreter.h"
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#include "Label.h"
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#include "OpcodeSize.h"
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#include "PrivateFieldPutKind.h"
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#include "ProfileTypeBytecodeFlag.h"
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#include "PutByIdFlags.h"
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#include "ResultType.h"
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#include "SymbolTableOrScopeDepth.h"
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#include "VirtualRegister.h"
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#include <type_traits>
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namespace JSC {
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enum FitsAssertion {
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Assert,
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NoAssert
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};
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// Fits template
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template<typename, OpcodeSize, typename = std::true_type>
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struct Fits;
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// Implicit conversion for types of the same size
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template<typename T, OpcodeSize size>
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struct Fits<T, size, std::enable_if_t<sizeof(T) == size && std::is_constructible<T>::value, std::true_type>> {
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using TargetType = typename TypeBySize<size>::unsignedType;
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static bool check(T) { return true; }
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static TargetType convert(T t) { return bitwise_cast<TargetType>(t); }
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template<class T1 = T, OpcodeSize size1 = size, typename = std::enable_if_t<!std::is_same<T1, TargetType>::value, std::true_type>>
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static T1 convert(TargetType t) { return bitwise_cast<T1>(t); }
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};
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template<typename T, OpcodeSize size>
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struct Fits<T, size, std::enable_if_t<std::is_integral<T>::value && sizeof(T) != size && !std::is_same<bool, T>::value, std::true_type>> {
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using TargetType = std::conditional_t<std::is_unsigned<T>::value, typename TypeBySize<size>::unsignedType, typename TypeBySize<size>::signedType>;
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static bool check(T t)
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{
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return t >= std::numeric_limits<TargetType>::min() && t <= std::numeric_limits<TargetType>::max();
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}
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static TargetType convert(T t)
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{
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ASSERT(check(t));
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return static_cast<TargetType>(t);
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}
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template<class T1 = T, OpcodeSize size1 = size, typename TargetType1 = TargetType, typename = std::enable_if_t<!std::is_same<T1, TargetType1>::value, std::true_type>>
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static T1 convert(TargetType1 t) { return static_cast<T1>(t); }
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};
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template<OpcodeSize size>
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struct Fits<bool, size, std::enable_if_t<size != sizeof(bool), std::true_type>> : public Fits<uint8_t, size> {
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using Base = Fits<uint8_t, size>;
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static bool check(bool e) { return Base::check(static_cast<uint8_t>(e)); }
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static typename Base::TargetType convert(bool e)
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{
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return Base::convert(static_cast<uint8_t>(e));
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}
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static bool convert(typename Base::TargetType e)
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{
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return Base::convert(e);
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}
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};
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template<OpcodeSize size>
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struct FirstConstant;
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template<>
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struct FirstConstant<OpcodeSize::Narrow> {
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static constexpr int index = FirstConstantRegisterIndex8;
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};
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template<>
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struct FirstConstant<OpcodeSize::Wide16> {
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static constexpr int index = FirstConstantRegisterIndex16;
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};
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template<OpcodeSize size>
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struct Fits<VirtualRegister, size, std::enable_if_t<size != OpcodeSize::Wide32, std::true_type>> {
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// Narrow:
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// -128..-1 local variables
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// 0..15 arguments
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// 16..127 constants
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//
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// Wide16:
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// -2**15..-1 local variables
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// 0..64 arguments
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// 64..2**15-1 constants
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using TargetType = typename TypeBySize<size>::signedType;
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static constexpr int s_firstConstantIndex = FirstConstant<size>::index;
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static bool check(VirtualRegister r)
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{
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if (r.isConstant())
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return (s_firstConstantIndex + r.toConstantIndex()) <= std::numeric_limits<TargetType>::max();
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return r.offset() >= std::numeric_limits<TargetType>::min() && r.offset() < s_firstConstantIndex;
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}
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static TargetType convert(VirtualRegister r)
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{
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ASSERT(check(r));
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if (r.isConstant())
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return static_cast<TargetType>(s_firstConstantIndex + r.toConstantIndex());
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return static_cast<TargetType>(r.offset());
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}
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static VirtualRegister convert(TargetType u)
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{
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int i = static_cast<int>(static_cast<TargetType>(u));
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if (i >= s_firstConstantIndex)
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return VirtualRegister { (i - s_firstConstantIndex) + FirstConstantRegisterIndex };
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return VirtualRegister { i };
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}
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};
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template<OpcodeSize size>
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struct Fits<SymbolTableOrScopeDepth, size, std::enable_if_t<size != OpcodeSize::Wide32, std::true_type>> : public Fits<unsigned, size> {
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static_assert(sizeof(SymbolTableOrScopeDepth) == sizeof(unsigned));
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using TargetType = typename TypeBySize<size>::unsignedType;
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using Base = Fits<unsigned, size>;
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static bool check(SymbolTableOrScopeDepth u) { return Base::check(u.raw()); }
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static TargetType convert(SymbolTableOrScopeDepth u)
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{
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return Base::convert(u.raw());
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}
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static SymbolTableOrScopeDepth convert(TargetType u)
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{
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return SymbolTableOrScopeDepth::raw(Base::convert(u));
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}
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};
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template<OpcodeSize size>
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struct Fits<GetPutInfo, size, std::enable_if_t<size != OpcodeSize::Wide32, std::true_type>> {
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using TargetType = typename TypeBySize<size>::unsignedType;
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// 13 Resolve Types
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// 3 Initialization Modes
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// 2 Resolve Modes
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// 1 bit isStrict flag
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//
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// Try to encode encode as
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//
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// initialization mode
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// v
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// isStrict -> 0|0000|00|0
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// ^ ^
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// resolve type resolve mode
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static constexpr int s_resolveTypeMax = 1 << 4;
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static constexpr int s_initializationModeMax = 1 << 2;
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static constexpr int s_resolveModeMax = 1 << 1;
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static constexpr int s_isStrictBit = 1 << 7;
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static constexpr int s_resolveTypeBits = (s_resolveTypeMax - 1) << 3;
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static constexpr int s_initializationModeBits = (s_initializationModeMax - 1) << 1;
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static constexpr int s_resolveModeBits = (s_resolveModeMax - 1);
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static_assert(!(s_resolveTypeBits & s_initializationModeBits & s_resolveModeBits), "There should be no intersection between ResolveMode, ResolveType and InitializationMode");
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static bool check(GetPutInfo gpi)
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{
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auto resolveType = static_cast<int>(gpi.resolveType());
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auto initializationMode = static_cast<int>(gpi.initializationMode());
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auto resolveMode = static_cast<int>(gpi.resolveMode());
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return resolveType < s_resolveTypeMax && initializationMode < s_initializationModeMax && resolveMode < s_resolveModeMax;
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}
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static TargetType convert(GetPutInfo gpi)
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{
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ASSERT(check(gpi));
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auto resolveType = static_cast<uint8_t>(gpi.resolveType());
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auto initializationMode = static_cast<uint8_t>(gpi.initializationMode());
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auto resolveMode = static_cast<uint8_t>(gpi.resolveMode());
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auto isStrict = static_cast<uint8_t>(gpi.ecmaMode().isStrict());
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return (isStrict << 7) | (resolveType << 3) | (initializationMode << 1) | resolveMode;
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}
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static GetPutInfo convert(TargetType gpi)
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{
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auto resolveType = static_cast<ResolveType>((gpi & s_resolveTypeBits) >> 3);
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auto initializationMode = static_cast<InitializationMode>((gpi & s_initializationModeBits) >> 1);
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auto resolveMode = static_cast<ResolveMode>(gpi & s_resolveModeBits);
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auto isStrict = static_cast<bool>(gpi & s_isStrictBit);
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return GetPutInfo(resolveMode, resolveType, initializationMode, isStrict ? ECMAMode::strict() : ECMAMode::sloppy());
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}
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};
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template<OpcodeSize size>
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struct Fits<PutByIdFlags, size> {
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using TargetType = typename TypeBySize<size>::unsignedType;
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// PutByIdFlags is just two boolean values encoded as
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//
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// isStrict
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// v
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// 000000|0|0
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// ^
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// isDirect
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static constexpr int s_isDirectBit = 1;
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static constexpr int s_isStrictBit = 2;
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static bool check(PutByIdFlags)
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{
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return true;
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}
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static TargetType convert(PutByIdFlags flags)
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{
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auto isDirect = static_cast<uint8_t>(flags.isDirect());
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auto isStrict = static_cast<uint8_t>(flags.ecmaMode().isStrict());
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return (isStrict << 1) | isDirect;
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}
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static PutByIdFlags convert(TargetType gpi)
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{
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auto isDirect = static_cast<bool>(gpi & s_isDirectBit);
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auto isStrict = static_cast<bool>(gpi & s_isStrictBit);
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auto ecmaMode = isStrict ? ECMAMode::strict() : ECMAMode::sloppy();
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return isDirect ? PutByIdFlags::createDirect(ecmaMode) : PutByIdFlags::create(ecmaMode);
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}
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};
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template<typename E, OpcodeSize size>
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struct Fits<E, size, std::enable_if_t<sizeof(E) != size && std::is_enum<E>::value, std::true_type>> : public Fits<std::underlying_type_t<E>, size> {
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using Base = Fits<std::underlying_type_t<E>, size>;
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static bool check(E e) { return Base::check(static_cast<std::underlying_type_t<E>>(e)); }
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static typename Base::TargetType convert(E e)
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{
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return Base::convert(static_cast<std::underlying_type_t<E>>(e));
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}
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static E convert(typename Base::TargetType e)
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{
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return static_cast<E>(Base::convert(e));
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}
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};
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template<OpcodeSize size>
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struct Fits<ResultType, size, std::enable_if_t<sizeof(ResultType) != size, std::true_type>> : public Fits<uint8_t, size> {
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static_assert(sizeof(ResultType) == sizeof(uint8_t));
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using Base = Fits<uint8_t, size>;
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static bool check(ResultType type) { return Base::check(type.bits()); }
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static typename Base::TargetType convert(ResultType type) { return Base::convert(type.bits()); }
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static ResultType convert(typename Base::TargetType type) { return ResultType(Base::convert(type)); }
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};
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template<OpcodeSize size>
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struct Fits<OperandTypes, size, std::enable_if_t<sizeof(OperandTypes) != size, std::true_type>> {
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static_assert(sizeof(OperandTypes) == sizeof(uint16_t));
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using TargetType = typename TypeBySize<size>::unsignedType;
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// a pair of (ResultType::Type, ResultType::Type) - try to fit each type into 4 bits
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// additionally, encode unknown types as 0 rather than the | of all types
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static constexpr unsigned typeWidth = 4;
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static constexpr unsigned maxType = (1 << typeWidth) - 1;
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static bool check(OperandTypes types)
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{
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if (size == OpcodeSize::Narrow) {
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auto first = types.first().bits();
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auto second = types.second().bits();
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if (first == ResultType::unknownType().bits())
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first = 0;
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if (second == ResultType::unknownType().bits())
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second = 0;
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return first <= maxType && second <= maxType;
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}
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return true;
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}
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static TargetType convert(OperandTypes types)
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{
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if (size == OpcodeSize::Narrow) {
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ASSERT(check(types));
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auto first = types.first().bits();
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auto second = types.second().bits();
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if (first == ResultType::unknownType().bits())
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first = 0;
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if (second == ResultType::unknownType().bits())
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second = 0;
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return (first << typeWidth) | second;
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}
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return static_cast<TargetType>(types.bits());
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}
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static OperandTypes convert(TargetType types)
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{
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if (size == OpcodeSize::Narrow) {
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auto first = types >> typeWidth;
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auto second = types & maxType;
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if (!first)
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first = ResultType::unknownType().bits();
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if (!second)
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second = ResultType::unknownType().bits();
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return OperandTypes(ResultType(first), ResultType(second));
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}
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return OperandTypes::fromBits(static_cast<uint16_t>(types));
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}
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};
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template<OpcodeSize size, typename GeneratorTraits>
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struct Fits<GenericBoundLabel<GeneratorTraits>, size> : public Fits<int, size> {
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// This is a bit hacky: we need to delay computing jump targets, since we
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// might have to emit `nop`s to align the instructions stream. Additionally,
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// we have to compute the target before we start writing to the instruction
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// stream, since the offset is computed from the start of the bytecode. We
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// achieve this by computing the target when we `check` and saving it, then
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// later we use the saved target when we call convert.
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using Base = Fits<int, size>;
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static bool check(GenericBoundLabel<GeneratorTraits>& label)
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{
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return Base::check(label.saveTarget());
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}
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static typename Base::TargetType convert(GenericBoundLabel<GeneratorTraits>& label)
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{
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return Base::convert(label.commitTarget());
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}
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static GenericBoundLabel<GeneratorTraits> convert(typename Base::TargetType target)
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{
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return GenericBoundLabel<GeneratorTraits>(Base::convert(target));
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}
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};
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template<OpcodeSize size>
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struct Fits<ECMAMode, size> : public Fits<uint8_t, size> {
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using Base = Fits<uint8_t, size>;
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static bool check(ECMAMode ecmaMode)
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{
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return Base::check(ecmaMode.value());
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}
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static typename Base::TargetType convert(ECMAMode ecmaMode)
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{
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return Base::convert(ecmaMode.value());
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}
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static ECMAMode convert(typename Base::TargetType ecmaMode)
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{
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return ECMAMode::fromByte(Base::convert(ecmaMode));
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}
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};
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template<OpcodeSize size>
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struct Fits<PrivateFieldPutKind, size> : public Fits<uint8_t, size> {
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using Base = Fits<uint8_t, size>;
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static bool check(PrivateFieldPutKind putMode)
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{
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return Base::check(putMode.value());
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}
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static typename Base::TargetType convert(PrivateFieldPutKind putMode)
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{
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return Base::convert(putMode.value());
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}
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static PrivateFieldPutKind convert(typename Base::TargetType putMode)
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{
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return PrivateFieldPutKind::fromByte(Base::convert(putMode));
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}
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};
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} // namespace JSC
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