Make FailBochs compile again (after changes in r1966).
For now, only breakpoints are working. Other event sources need to be revised, too. git-svn-id: https://www4.informatik.uni-erlangen.de/i4svn/danceos/trunk/devel/fail@1981 8c4709b5-6ec9-48aa-a5cd-a96041d1645a
This commit is contained in:
@ -9,6 +9,7 @@ if(BUILD_BOCHS)
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SimulatorController.cc
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bochs/BochsController.cc
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bochs/BochsListener.cc
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bochs/BochsCPU.cc
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)
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elseif(BUILD_GEM5)
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set(SRCS
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@ -65,7 +66,7 @@ endif(BUILD_BOCHS)
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if(BUILD_X86)
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set(SRCS ${SRCS}
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x86/Architecture.cc
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)
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elseif(BUILD_ARM)
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set(SRCS ${SRCS}
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60
src/core/sal/bochs/BochsCPU.cc
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60
src/core/sal/bochs/BochsCPU.cc
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@ -0,0 +1,60 @@
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#include "BochsCPU.hpp"
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#include "../SALConfig.hpp"
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#include <cassert>
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namespace fail {
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regdata_t BochsCPU::getRegisterContent(Register* reg)
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{
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assert(reg != NULL && "FATAL ERROR: reg-ptr cannot be NULL!");
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// TODO: BX_CPU(0) *always* correct?
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if (reg->getId() == RID_FLAGS) // EFLAGS register?
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return *reinterpret_cast<regdata_t*>(&(BX_CPU(id)->eflags));
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#ifdef SIM_SUPPORT_64
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if (reg->getId() == RID_PC) // program counter?
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return static_cast<regdata_t>(BX_CPU(id)->gen_reg[BX_64BIT_REG_RIP].rrx);
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else // 64 bit general purpose registers
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return static_cast<regdata_t>(BX_CPU(id)->gen_reg[reg->getId()].rrx);
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#else // 32 bit mode
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if (reg->getId() == RID_PC)
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return static_cast<regdata_t>(BX_CPU(id)->gen_reg[BX_32BIT_REG_EIP].dword.erx);
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else // 32 bit general purpose registers
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return static_cast<regdata_t>(BX_CPU(id)->gen_reg[reg->getId()].dword.erx);
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#endif // SIM_SUPPORT_64
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}
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void BochsCPU::setRegisterContent(Register* reg, regdata_t value)
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{
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assert(reg != NULL && "FATAL ERROR: reg-ptr cannot be NULL!");
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// TODO: BX_CPU(0) *always* correct?
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if (reg->getId() == RID_FLAGS) { // EFLAGS register?
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regdata_t* pData = reinterpret_cast<regdata_t*>(&(BX_CPU(id)->eflags));
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#ifdef SIM_SUPPORT_64
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// We are in 64 bit mode: Just assign the lower 32 bits!
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*pData = ((*pData) & 0xFFFFFFFF00000000ULL) | (value & 0xFFFFFFFFULL);
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#else
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*pData = value;
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#endif
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return;
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}
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regdata_t* pData;
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#ifdef SIM_SUPPORT_64
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if (reg->getId() == RID_PC) // program counter?
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pData = &(BX_CPU(id)->gen_reg[BX_64BIT_REG_RIP].rrx);
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else // 64 bit general purpose registers
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pData = &(BX_CPU(id)->gen_reg[reg->getId()].rrx);
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#else // 32 bit mode
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if (reg->getId() == RID_PC)
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pData = &(BX_CPU(id)->gen_reg[BX_32BIT_REG_EIP].dword.erx);
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else // 32 bit general purpose registers
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pData = &(BX_CPU(id)->gen_reg[reg->getId()].dword.erx);
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#endif // SIM_SUPPORT_64
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*pData = value;
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}
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} // end-of-namespace: fail
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107
src/core/sal/bochs/BochsCPU.hpp
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107
src/core/sal/bochs/BochsCPU.hpp
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@ -0,0 +1,107 @@
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#ifndef __BOCHS_CPU_HPP__
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#define __BOCHS_CPU_HPP__
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#include "../x86/Architecture.hpp"
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#include "../x86/CPUState.hpp"
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#include "bochs.h"
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#include "cpu/cpu.h"
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namespace fail {
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/**
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* \class BochsCPU
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* TODO.
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*/
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class BochsCPU : public X86Architecture, public X86CPUState {
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private:
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unsigned int m_Id; //!< TODO: Whats this for?
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public:
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/**
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* Initializes the Bochs CPU with the provided \c id.
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* @param id TODO
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*/
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BochsCPU(unsigned int id) : m_Id(id) { }
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/**
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* Retrieves the content of the register \c reg.
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* @param reg the register pointer of interest (cannot be \c NULL)
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* @return the content of the register \c reg
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*/
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regdata_t getRegisterContent(Register* reg);
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/**
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* Sets the content of the register \c reg to \c value.
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* @param reg the destination register object pointer (cannot be \c NULL)
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* @param value the new value to assign
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*/
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void setRegisterContent(Register* reg, regdata_t value);
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/**
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* Returns the current instruction pointer (aka program counter).
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* @return the current (e)ip register content
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*/
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address_t getInstructionPointer() { return getRegisterContent(getRegister(RID_PC)); }
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/**
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* Returns the current stack pointer.
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* @return the current (e)sp register content
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*/
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address_t getStackPointer() { return getRegisterContent(getRegister(RID_CSP)); }
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/**
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* Returns the current base pointer.
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* @return the current (e)bp register content
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*/
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address_t getBasePointer() { return getRegisterContent(getRegister(RID_CBP)); }
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/**
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* Returns the current (E)FLAGS.
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* @return the current (E)FLAGS processor register content
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*/
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regdata_t getFlagsRegister() { return getRegisterContent(getRegister(RID_FLAGS)); }
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/**
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* Returns \c true if the corresponding flag is set, or \c false
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* otherwise.
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*/
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bool getCarryFlag() const { return BX_CPU(0)->get_CF(); }
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bool getParityFlag() const { return BX_CPU(0)->get_PF(); }
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bool getZeroFlag() const { return BX_CPU(0)->get_ZF(); }
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bool getSignFlag() const { return BX_CPU(0)->get_SF(); }
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bool getOverflowFlag() const { return BX_CPU(0)->get_OF(); }
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bool getTrapFlag() const { return BX_CPU(0)->get_TF(); }
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bool getInterruptFlag() const { return BX_CPU(0)->get_IF(); }
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bool getDirectionFlag() const { return BX_CPU(0)->get_DF(); }
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unsigned getIOPrivilegeLevel() const { return BX_CPU(0)->get_IOPL(); }
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bool getNestedTaskFlag() const { return BX_CPU(0)->get_NT(); }
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bool getResumeFlag() const { return BX_CPU(0)->get_RF(); }
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bool getVMFlag() const { return BX_CPU(0)->get_VM(); }
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bool getAlignmentCheckFlag() const { return BX_CPU(0)->get_AC(); }
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bool getVInterruptFlag() const { return BX_CPU(0)->get_VIF(); }
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bool getVInterruptPendingFlag() const { return BX_CPU(0)->get_VIP(); }
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bool getIdentificationFlag() const { return BX_CPU(0)->get_ID(); }
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/**
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* Sets/resets various status FLAGS.
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*/
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void setCarryFlag(bool bit) { BX_CPU(0)->set_CF(bit); }
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void setParityFlag(bool bit) { BX_CPU(0)->set_PF(bit); }
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void setZeroFlag(bool bit) { BX_CPU(0)->set_ZF(bit); }
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void setSignFlag(bool bit) { BX_CPU(0)->set_SF(bit); }
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void setOverflowFlag(bool bit) { BX_CPU(0)->set_OF(bit); }
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void setTrapFlag(bool bit) { BX_CPU(0)->set_TF(bit); }
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void setInterruptFlag(bool bit) { BX_CPU(0)->set_IF(bit); }
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void setDirectionFlag(bool bit) { BX_CPU(0)->set_DF(bit); }
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void setIOPrivilegeLevel(unsigned lvl) { BX_CPU(0)->set_IOPL(lvl); }
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void setNestedTaskFlag(bool bit) { BX_CPU(0)->set_NT(bit); }
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void setResumeFlag(bool bit) { BX_CPU(0)->set_RF(bit); }
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void setVMFlag(bool bit) { BX_CPU(0)->set_VM(bit); }
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void setAlignmentCheckFlag(bool bit) { BX_CPU(0)->set_AC(bit); }
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void setVInterruptFlag(bool bit) { BX_CPU(0)->set_VIF(bit); }
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void setVInterruptPendingFlag(bool bit) { BX_CPU(0)->set_VIP(bit); }
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void setIdentificationFlag(bool bit) { BX_CPU(0)->set_ID(bit); }
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/**
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* Returns the current id of this CPU.
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* @return the current id
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*/
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unsigned int getId() { return m_Id; }
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};
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typedef BochsCPU ConcreteCPU;
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} // end-of-namespace: fail
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#endif // __BOCHS_CPU_HPP__
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@ -2,8 +2,8 @@
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#include "BochsController.hpp"
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#include "BochsMemory.hpp"
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#include "BochsRegister.hpp"
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#include "../Register.hpp"
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//#include "BochsRegister.hpp"
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//#include "../Register.hpp"
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#include "../SALInst.hpp"
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#include "../Listener.hpp"
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@ -19,58 +19,15 @@ bx_bool reboot_bochs_request = false;
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bx_bool interrupt_injection_request = false;
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BochsController::BochsController()
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: SimulatorController(new BochsRegisterManager(), new BochsMemoryManager()),
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: SimulatorController(new BochsMemoryManager()),
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m_CPUContext(NULL), m_CurrentInstruction(NULL)
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{
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// -------------------------------------
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// Add the general purpose register:
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#if BX_SUPPORT_X86_64
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// -- 64 bit register --
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const std::string names[] = { "RAX", "RCX", "RDX", "RBX", "RSP", "RBP", "RSI",
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"RDI", "R8", "R9", "R10", "R11", "R12", "R13",
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"R14", "R15" };
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for (unsigned short i = 0; i < 16; i++) {
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BxGPReg* pReg = new BxGPReg(i, 64, &(BX_CPU(0)->gen_reg[i].rrx));
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pReg->setName(names[i]);
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m_Regs->add(pReg);
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}
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#else
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// -- 32 bit register --
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const std::string names[] = { "EAX", "ECX", "EDX", "EBX", "ESP", "EBP", "ESI",
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"EDI" };
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for (unsigned short i = 0; i < 8; i++) {
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BxGPReg* pReg = new BxGPReg(i, 32, &(BX_CPU(0)->gen_reg[i].dword.erx));
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pReg->setName(names[i]);
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m_Regs->add(pReg);
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}
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#endif // BX_SUPPORT_X86_64
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// -------------------------------------
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// Add the Program counter register:
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#if BX_SUPPORT_X86_64
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BxPCReg* pPCReg = new BxPCReg(RID_PC, 64, &(BX_CPU(0)->gen_reg[BX_64BIT_REG_RIP].rrx));
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pPCReg->setName("RIP");
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#else
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BxPCReg* pPCReg = new BxPCReg(RID_PC, 32, &(BX_CPU(0)->gen_reg[BX_32BIT_REG_EIP].dword.erx));
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pPCReg->setName("EIP");
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#endif // BX_SUPPORT_X86_64
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// -------------------------------------
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// Add the Status register (x86 cpu FLAGS):
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BxFlagsReg* pFlagReg = new BxFlagsReg(RID_FLAGS, reinterpret_cast<regdata_t*>(&(BX_CPU(0)->eflags)));
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// Note: "eflags" is (always) of type Bit32u which matches the regdata_t only in
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// case of the 32 bit version (id est !BX_SUPPORT_X86_64). Therefor we need
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// to ensure to assign only 32 bit to the Bochs internal register variable
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// (see SAL/bochs/BochsRegister.hpp, setData) if we are in 64 bit mode.
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pFlagReg->setName("FLAGS");
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m_Regs->add(pFlagReg);
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m_Regs->add(pPCReg);
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for (unsigned i = 0; i < BX_SMP_PROCESSORS; i++)
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addCPU(new ConcreteCPU(i));
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}
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BochsController::~BochsController()
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{
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for (RegisterManager::iterator it = m_Regs->begin(); it != m_Regs->end(); it++)
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delete (*it); // free the memory, allocated in the constructor
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m_Regs->clear();
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delete m_Regs;
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delete m_Mem;
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}
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@ -16,6 +16,7 @@
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#include "config.h"
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#include "iodev/iodev.h"
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#include "pc_system.h"
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#include "gui/siminterface.h" // for BX_SMP_PROCESSORS
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#define DEBUG
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@ -1,3 +1,4 @@
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#if 0
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#ifndef __BOCHS_REGISTER_HPP__
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#define __BOCHS_REGISTER_HPP__
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@ -199,3 +200,4 @@ public:
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} // end-of-namespace: fail
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#endif // __BOCHS_REGISTER_HPP__
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#endif
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@ -1,3 +1,4 @@
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#if 0
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#ifndef __BOCHS_REGISTER_IDS_HPP__
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#define __BOCHS_REGISTER_IDS_HPP__
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@ -43,3 +44,4 @@ enum FlagsRegisterId { RID_FLAGS = RID_LAST_PC_ID };
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}
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#endif
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#endif
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@ -8,6 +8,7 @@
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#include "bochs.h"
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#include "cpu/cpu.h"
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#include "gui/siminterface.h" // for BX_SMP_PROCESSORS
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#include "../SALInst.hpp"
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@ -22,9 +23,20 @@ aspect Breakpoints {
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// Points to the *current* bxInstruction-object
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bxInstruction_c* pInstr = *(tjp->arg<1>());
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// Detect the CPU that triggered the change:
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unsigned i = 0;
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#if BX_SUPPORT_SMP
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for (; i < BX_SMP_PROCESSORS; i++) {
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if (BX_CPU_C[i] == pThis) // cmp this ptr with all possible CPU objects
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break; // index "i" found! -> stop!
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}
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#endif
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fail::ConcreteCPU& triggerCPU = fail::simulator.getCPU(i);
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// FIXME: slice ConcreteCPU object reference into BOCHS_CPU -> simplified
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// Report this event to the Bochs controller:
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fail::simulator.updateBPEventInfo(pThis, pInstr);
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fail::simulator.onBreakpoint(pThis->get_instruction_pointer(), pThis->cr3);
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fail::simulator.onBreakpoint(&triggerCPU, pThis->get_instruction_pointer(), pThis->cr3);
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// Note: get_bx_opcode_name(pInstr->getIaOpcode()) retrieves the mnemonics.
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}
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};
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