mirror of
https://github.com/darlinghq/darling-JavaScriptCore.git
synced 2025-04-09 10:20:59 +00:00
252 lines
7.8 KiB
C++
252 lines
7.8 KiB
C++
/*
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* Copyright (C) 2017 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 "MacroAssembler.h"
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#include "ProbeStack.h"
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#if ENABLE(MASM_PROBE)
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namespace JSC {
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namespace Probe {
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struct CPUState {
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using RegisterID = MacroAssembler::RegisterID;
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using SPRegisterID = MacroAssembler::SPRegisterID;
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using FPRegisterID = MacroAssembler::FPRegisterID;
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static inline const char* gprName(RegisterID id) { return MacroAssembler::gprName(id); }
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static inline const char* sprName(SPRegisterID id) { return MacroAssembler::sprName(id); }
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static inline const char* fprName(FPRegisterID id) { return MacroAssembler::fprName(id); }
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inline UCPURegister& gpr(RegisterID);
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inline UCPURegister& spr(SPRegisterID);
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inline double& fpr(FPRegisterID);
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template<typename T> T gpr(RegisterID) const;
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template<typename T> T spr(SPRegisterID) const;
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template<typename T> T fpr(FPRegisterID) const;
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void*& pc();
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void*& fp();
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void*& sp();
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template<typename T> T pc() const;
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template<typename T> T fp() const;
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template<typename T> T sp() const;
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UCPURegister gprs[MacroAssembler::numberOfRegisters()];
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UCPURegister sprs[MacroAssembler::numberOfSPRegisters()];
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double fprs[MacroAssembler::numberOfFPRegisters()];
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};
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inline UCPURegister& CPUState::gpr(RegisterID id)
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{
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ASSERT(id >= MacroAssembler::firstRegister() && id <= MacroAssembler::lastRegister());
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return gprs[id];
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}
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inline UCPURegister& CPUState::spr(SPRegisterID id)
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{
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ASSERT(id >= MacroAssembler::firstSPRegister() && id <= MacroAssembler::lastSPRegister());
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return sprs[id];
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}
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inline double& CPUState::fpr(FPRegisterID id)
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{
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ASSERT(id >= MacroAssembler::firstFPRegister() && id <= MacroAssembler::lastFPRegister());
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return fprs[id];
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}
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template<typename T>
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T CPUState::gpr(RegisterID id) const
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{
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CPUState* cpu = const_cast<CPUState*>(this);
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auto& from = cpu->gpr(id);
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typename std::remove_const<T>::type to { };
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std::memcpy(static_cast<void*>(&to), &from, sizeof(to)); // Use std::memcpy to avoid strict aliasing issues.
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return to;
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}
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template<typename T>
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T CPUState::spr(SPRegisterID id) const
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{
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CPUState* cpu = const_cast<CPUState*>(this);
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auto& from = cpu->spr(id);
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typename std::remove_const<T>::type to { };
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std::memcpy(static_cast<void*>(&to), &from, sizeof(to)); // Use std::memcpy to avoid strict aliasing issues.
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return to;
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}
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template<typename T>
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T CPUState::fpr(FPRegisterID id) const
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{
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CPUState* cpu = const_cast<CPUState*>(this);
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return bitwise_cast<T>(cpu->fpr(id));
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}
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inline void*& CPUState::pc()
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{
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#if CPU(X86) || CPU(X86_64)
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return *reinterpret_cast<void**>(&spr(X86Registers::eip));
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#elif CPU(ARM64)
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return *reinterpret_cast<void**>(&spr(ARM64Registers::pc));
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#elif CPU(ARM_THUMB2)
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return *reinterpret_cast<void**>(&gpr(ARMRegisters::pc));
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#elif CPU(MIPS)
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return *reinterpret_cast<void**>(&spr(MIPSRegisters::pc));
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#else
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#error "Unsupported CPU"
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#endif
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}
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inline void*& CPUState::fp()
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{
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#if CPU(X86) || CPU(X86_64)
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return *reinterpret_cast<void**>(&gpr(X86Registers::ebp));
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#elif CPU(ARM64)
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return *reinterpret_cast<void**>(&gpr(ARM64Registers::fp));
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#elif CPU(ARM_THUMB2)
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return *reinterpret_cast<void**>(&gpr(ARMRegisters::fp));
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#elif CPU(MIPS)
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return *reinterpret_cast<void**>(&gpr(MIPSRegisters::fp));
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#else
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#error "Unsupported CPU"
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#endif
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}
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inline void*& CPUState::sp()
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{
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#if CPU(X86) || CPU(X86_64)
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return *reinterpret_cast<void**>(&gpr(X86Registers::esp));
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#elif CPU(ARM64)
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return *reinterpret_cast<void**>(&gpr(ARM64Registers::sp));
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#elif CPU(ARM_THUMB2)
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return *reinterpret_cast<void**>(&gpr(ARMRegisters::sp));
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#elif CPU(MIPS)
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return *reinterpret_cast<void**>(&gpr(MIPSRegisters::sp));
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#else
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#error "Unsupported CPU"
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#endif
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}
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template<typename T>
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T CPUState::pc() const
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{
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CPUState* cpu = const_cast<CPUState*>(this);
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return reinterpret_cast<T>(cpu->pc());
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}
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template<typename T>
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T CPUState::fp() const
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{
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CPUState* cpu = const_cast<CPUState*>(this);
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return reinterpret_cast<T>(cpu->fp());
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}
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template<typename T>
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T CPUState::sp() const
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{
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CPUState* cpu = const_cast<CPUState*>(this);
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return reinterpret_cast<T>(cpu->sp());
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}
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struct State;
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typedef void (*StackInitializationFunction)(State*);
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#if CPU(ARM64E)
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#define PROBE_FUNCTION_PTRAUTH __ptrauth(ptrauth_key_process_dependent_code, 0, JITProbePtrTag)
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#define PROBE_STACK_INITIALIZATION_FUNCTION_PTRAUTH __ptrauth(ptrauth_key_process_dependent_code, 0, JITProbeStackInitializationFunctionPtrTag)
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#else
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#define PROBE_FUNCTION_PTRAUTH
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#define PROBE_STACK_INITIALIZATION_FUNCTION_PTRAUTH
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#endif
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struct State {
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Probe::Function PROBE_FUNCTION_PTRAUTH probeFunction;
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void* arg;
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StackInitializationFunction PROBE_STACK_INITIALIZATION_FUNCTION_PTRAUTH initializeStackFunction;
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void* initializeStackArg;
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CPUState cpu;
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};
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class Context {
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WTF_MAKE_FAST_ALLOCATED;
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public:
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using RegisterID = MacroAssembler::RegisterID;
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using SPRegisterID = MacroAssembler::SPRegisterID;
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using FPRegisterID = MacroAssembler::FPRegisterID;
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Context(State* state)
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: cpu(state->cpu)
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, m_state(state)
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{ }
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template<typename T>
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T arg() { return reinterpret_cast<T>(m_state->arg); }
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UCPURegister& gpr(RegisterID id) { return cpu.gpr(id); }
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UCPURegister& spr(SPRegisterID id) { return cpu.spr(id); }
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double& fpr(FPRegisterID id) { return cpu.fpr(id); }
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const char* gprName(RegisterID id) { return cpu.gprName(id); }
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const char* sprName(SPRegisterID id) { return cpu.sprName(id); }
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const char* fprName(FPRegisterID id) { return cpu.fprName(id); }
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template<typename T> T gpr(RegisterID id) const { return cpu.gpr<T>(id); }
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template<typename T> T spr(SPRegisterID id) const { return cpu.spr<T>(id); }
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template<typename T> T fpr(FPRegisterID id) const { return cpu.fpr<T>(id); }
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void*& pc() { return cpu.pc(); }
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void*& fp() { return cpu.fp(); }
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void*& sp() { return cpu.sp(); }
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template<typename T> T pc() { return cpu.pc<T>(); }
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template<typename T> T fp() { return cpu.fp<T>(); }
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template<typename T> T sp() { return cpu.sp<T>(); }
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Stack& stack()
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{
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ASSERT(m_stack.isValid());
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return m_stack;
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};
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bool hasWritesToFlush() { return m_stack.hasWritesToFlush(); }
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Stack* releaseStack() { return new Stack(WTFMove(m_stack)); }
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CPUState& cpu;
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private:
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State* m_state;
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Stack m_stack;
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friend JS_EXPORT_PRIVATE void* probeStateForContext(Context&); // Not for general use. This should only be for writing tests.
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};
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void executeProbe(State*);
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} // namespace Probe
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} // namespace JSC
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#endif // ENABLE(MASM_PROBE)
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