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PS2Recomp/ps2xRuntime/include/ps2_runtime.h
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2025-05-29 16:20:08 -03:00

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#ifndef PS2_RUNTIME_H
#define PS2_RUNTIME_H
#include <cstdint>
#include <vector>
#include <unordered_map>
#include <string>
#include <functional>
#include <immintrin.h> // For SSE/AVX instructions
#include <filesystem>
#include <iostream>
constexpr uint32_t PS2_RAM_SIZE = 32 * 1024 * 1024; // 32MB
constexpr uint32_t PS2_RAM_MASK = 0x1FFFFFF; // Mask for 32MB alignment
constexpr uint32_t PS2_RAM_BASE = 0x00000000; // Physical base of RDRAM
constexpr uint32_t PS2_SCRATCHPAD_BASE = 0x70000000;
constexpr uint32_t PS2_SCRATCHPAD_SIZE = 16 * 1024; // 16KB
constexpr uint32_t PS2_IO_BASE = 0x10000000; // Base for many I/O regs (Timers, DMAC, INTC)
constexpr uint32_t PS2_IO_SIZE = 0x10000; // 64KB
constexpr uint32_t PS2_BIOS_BASE = 0x1FC00000; // Or BFC00000 depending on KSEG
constexpr uint32_t PS2_BIOS_SIZE = 4 * 1024 * 1024; // 4MB
constexpr uint32_t PS2_VU0_CODE_BASE = 0x11000000; // Base address as seen from EE
constexpr uint32_t PS2_VU0_DATA_BASE = 0x11004000;
constexpr uint32_t PS2_VU0_CODE_SIZE = 4 * 1024; // 4KB Micro Memory
constexpr uint32_t PS2_VU0_DATA_SIZE = 4 * 1024; // 4KB Data Memory (VU Mem)
constexpr uint32_t PS2_VU1_MEM_BASE = 0x11008000; // Base address as seen from EE
constexpr uint32_t PS2_VU1_CODE_SIZE = 16 * 1024; // 16KB Micro Memory
constexpr uint32_t PS2_VU1_DATA_SIZE = 16 * 1024; // 16KB Data Memory (VU Mem)
constexpr uint32_t PS2_VU1_CODE_BASE = 0x11008000;
constexpr uint32_t PS2_VU1_DATA_BASE = 0x1100C000;
constexpr uint32_t PS2_GS_BASE = 0x12000000;
constexpr uint32_t PS2_GS_PRIV_REG_BASE = 0x12000000; // GS Privileged Registers
constexpr uint32_t PS2_GS_PRIV_REG_SIZE = 0x2000;
#define PS2_FIO_O_RDONLY 0x0001
#define PS2_FIO_O_WRONLY 0x0002
#define PS2_FIO_O_RDWR 0x0003
#define PS2_FIO_O_APPEND 0x0100
#define PS2_FIO_O_CREAT 0x0200
#define PS2_FIO_O_TRUNC 0x0400
#define PS2_FIO_O_EXCL 0x0800
#define PS2_FIO_SEEK_SET 0
#define PS2_FIO_SEEK_CUR 1
#define PS2_FIO_SEEK_END 2
#define PS2_FIO_S_IFDIR 0x1000
#define PS2_FIO_S_IFREG 0x2000
enum PS2Exception
{
EXCEPTION_INTEGER_OVERFLOW = 0x0C, // From MIPS spec
};
// PS2 CPU context (R5900)
struct R5900Context
{
// General Purpose Registers (128-bit)
__m128i r[32]; // Main registers
// Control registers
uint32_t pc; // Program counter
uint64_t insn_count; // Instruction counter
uint32_t hi, lo; // HI/LO registers for mult/div results
uint32_t hi1, lo1; // Secondary HI/LO registers for MULT1/DIV1
uint32_t sa; // Shift amount register
// VU0 registers (when used in macro mode)
__m128 vu0_vf[32]; // VU0 vector float registers
uint16_t vi[16]; // VU0 vector integer registers
float vu0_q; // VU0 Q register (quotient)
float vu0_p; // VU0 P register (EFU result)
float vu0_i; // VU0 I register (integer value)
__m128 vu0_r; // VU0 R register
uint16_t vu0_status; // VU0 status register
uint32_t vu0_mac_flags; // VU0 MAC flags
uint32_t vu0_clip_flags; // VU0 clipping flags
uint32_t vu0_cmsar0; // VU0 microprogram start address
uint32_t vu0_fbrst; // VIF/VU reset register
float vu0_cf[4]; // VU0 FMAC control floating-point registers
// COP0 System control registers
uint32_t cop0_index;
uint32_t cop0_random;
uint32_t cop0_entrylo0;
uint32_t cop0_entrylo1;
uint32_t cop0_context;
uint32_t cop0_pagemask;
uint32_t cop0_wired;
uint32_t cop0_badvaddr;
uint32_t cop0_count;
uint32_t cop0_entryhi;
uint32_t cop0_compare;
uint32_t cop0_status;
uint32_t cop0_cause;
uint32_t cop0_epc;
uint32_t cop0_prid;
uint32_t cop0_config;
uint32_t cop0_badpaddr;
uint32_t cop0_debug;
uint32_t cop0_perf;
uint32_t cop0_taglo;
uint32_t cop0_taghi;
uint32_t cop0_errorepc;
// FPU registers (COP1)
float f[32];
uint32_t fcr31; // Control/status register
R5900Context()
{
for (int i = 0; i < 32; i++)
{
r[i] = _mm_setzero_si128();
f[i] = 0.0f;
vu0_vf[i] = _mm_setzero_ps();
}
for (int i = 0; i < 4; i++)
{
vu0_cf[i] = 0.0f;
}
for (int i = 0; i < 16; ++i)
{
vi[i] = 0;
}
pc = 0;
insn_count = 0;
lo = hi = lo1 = hi1 = 0;
sa = 0;
// Initialize VU0 registers
vu0_q = 1.0f; // Q register usually initialized to 1.0
vu0_p = 0.0f;
vu0_i = 0.0f;
vu0_r = _mm_setzero_ps();
vu0_status = 0;
vu0_mac_flags = 0;
vu0_clip_flags = 0;
vu0_cmsar0 = 0;
vu0_fbrst = 0;
// Reset COP0 registers
cop0_index = 0;
cop0_random = 47; // Start at maximum value
cop0_entrylo0 = 0;
cop0_entrylo1 = 0;
cop0_context = 0;
cop0_pagemask = 0;
cop0_wired = 0;
cop0_badvaddr = 0;
cop0_count = 0;
cop0_entryhi = 0;
cop0_compare = 0;
cop0_status = 0x400000; // BEV set, ERL clear, kernel mode
cop0_cause = 0;
cop0_epc = 0;
cop0_prid = 0x00002e20; // CPU ID for R5900
cop0_config = 0;
cop0_badpaddr = 0;
cop0_debug = 0;
cop0_perf = 0;
cop0_taglo = 0;
cop0_taghi = 0;
cop0_errorepc = 0;
// Reset COP1 state
fcr31 = 0;
}
void dump() const
{
std::ios_base::fmtflags flags = std::cout.flags();
std::cout << std::hex << std::setfill('0');
std::cout << "--- R5900 Context Dump ---\n";
std::cout << "PC: 0x" << std::setw(8) << pc << "\n";
std::cout << "HI: 0x" << std::setw(8) << hi << " LO: 0x" << std::setw(8) << lo << "\n";
std::cout << "HI1:0x" << std::setw(8) << hi1 << " LO1:0x" << std::setw(8) << lo1 << "\n";
std::cout << "SA: 0x" << std::setw(8) << sa << "\n";
for (int i = 0; i < 32; ++i)
{
std::cout << "R" << std::setw(2) << std::dec << i << ": 0x" << std::hex
<< std::setw(8) << r[i].m128i_u32[3] << std::setw(8) << r[i].m128i_u32[2] << "_"
<< std::setw(8) << r[i].m128i_u32[1] << std::setw(8) << r[i].m128i_u32[0] << "\n";
}
std::cout << "Status: 0x" << std::setw(8) << cop0_status
<< " Cause: 0x" << std::setw(8) << cop0_cause
<< " EPC: 0x" << std::setw(8) << cop0_epc << "\n";
std::cout << "--- End Context Dump ---\n";
std::cout.flags(flags); // Restore format flags
}
~R5900Context() = default;
};
inline uint32_t getRegU32(const R5900Context *ctx, int reg)
{
// Check if reg is valid (0-31)
if (reg < 0 || reg > 31)
return 0;
return ctx->r[reg].m128i_u32[0];
}
inline void setReturnU32(R5900Context *ctx, uint32_t value)
{
ctx->r[2] = _mm_set_epi32(0, 0, 0, value); // $v0
}
inline void setReturnS32(R5900Context *ctx, int32_t value)
{
ctx->r[2] = _mm_set_epi32(0, 0, 0, value); // $v0 Sign extension handled by cast? TODO Check MIPS ABI.
}
inline uint8_t *getMemPtr(uint8_t *rdram, uint32_t addr)
{
constexpr uint32_t PS2_RAM_MASK = PS2_RAM_SIZE - 1;
return rdram + (addr & PS2_RAM_MASK);
}
inline const uint8_t *getConstMemPtr(uint8_t *rdram, uint32_t addr)
{
constexpr uint32_t PS2_RAM_MASK = PS2_RAM_SIZE - 1;
return rdram + (addr & PS2_RAM_MASK);
}
// PS2 GS (Graphics Synthesizer) registers
struct GSRegisters
{
uint64_t pmode; // Pixel mode
uint64_t smode1; // Sync mode 1
uint64_t smode2; // Sync mode 2
uint64_t srfsh; // Refresh control
uint64_t synch1; // Synchronization control 1
uint64_t synch2; // Synchronization control 2
uint64_t syncv; // Synchronization control V
uint64_t dispfb1; // Display buffer 1
uint64_t display1; // Display area 1
uint64_t dispfb2; // Display buffer 2
uint64_t display2; // Display area 2
uint64_t extbuf; // External buffer
uint64_t extdata; // External data
uint64_t extwrite; // External write
uint64_t bgcolor; // Background color
uint64_t csr; // Status
uint64_t imr; // Interrupt mask
uint64_t busdir; // Bus direction
uint64_t siglblid; // Signal label ID
};
// PS2 VIF (VPU Interface) registers
struct VIFRegisters
{
uint32_t stat; // Status
uint32_t fbrst; // VIF Force Break
uint32_t err; // Error status
uint32_t mark; // Interrupt control
uint32_t cycle; // Transfer mode
uint32_t mode; // Mode control
uint32_t num; // Data amount counter
uint32_t mask; // Data mask
uint32_t code; // VIFcode
uint32_t itops; // ITOP save
uint32_t base; // Base address
uint32_t ofst; // Offset
uint32_t tops; // TOPS
uint32_t itop; // ITOP
uint32_t top; // TOP
uint32_t row[4]; // Transfer row data
uint32_t col[4]; // Transfer column data
};
// PS2 DMA registers
struct DMARegisters
{
uint32_t chcr; // Channel control
uint32_t madr; // Memory address
uint32_t qwc; // Quadword count
uint32_t tadr; // Tag address
uint32_t asr0; // Address stack 0
uint32_t asr1; // Address stack 1
uint32_t sadr; // Source address
};
struct JumpTable
{
uint32_t address; // Base address of the jump table
uint32_t baseRegister; // Register used for index
std::vector<uint32_t> targets; // Jump targets
};
class PS2Memory
{
public:
PS2Memory();
~PS2Memory();
// Initialize memory
bool initialize(size_t ramSize = PS2_RAM_SIZE);
// Memory access methods
uint8_t *getRDRAM() { return m_rdram; }
uint8_t *getScratchpad() { return m_scratchpad; }
uint8_t *getIOPRAM() { return iop_ram; }
// Read/write memory
uint8_t read8(uint32_t address);
uint16_t read16(uint32_t address);
uint32_t read32(uint32_t address);
uint64_t read64(uint32_t address);
__m128i read128(uint32_t address);
void write8(uint32_t address, uint8_t value);
void write16(uint32_t address, uint16_t value);
void write32(uint32_t address, uint32_t value);
void write64(uint32_t address, uint64_t value);
void write128(uint32_t address, __m128i value);
// TLB handling
uint32_t translateAddress(uint32_t virtualAddress);
// Hardware register interface
bool writeIORegister(uint32_t address, uint32_t value);
uint32_t readIORegister(uint32_t address);
// Track code modifications for self-modifying code
void registerCodeRegion(uint32_t start, uint32_t end);
bool isCodeModified(uint32_t address, uint32_t size);
void clearModifiedFlag(uint32_t address, uint32_t size);
private:
// Main RAM (32MB)
uint8_t *m_rdram;
// Scratchpad memory (16KB)
uint8_t *m_scratchpad;
// IOP RAM (2MB)
uint8_t *iop_ram;
// I/O registers
std::unordered_map<uint32_t, uint32_t> m_ioRegisters;
// Registers
GSRegisters gs_regs;
VIFRegisters vif0_regs;
VIFRegisters vif1_regs;
DMARegisters dma_regs[10]; // 10 DMA channels
// TLB entries
struct TLBEntry
{
uint32_t vpn;
uint32_t pfn;
uint32_t mask;
bool valid;
};
std::vector<TLBEntry> m_tlbEntries;
struct CodeRegion
{
uint32_t start;
uint32_t end;
std::vector<bool> modified; // Bitmap of modified 4-byte blocks
};
std::vector<CodeRegion> m_codeRegions;
bool isAddressInRegion(uint32_t address, const CodeRegion &region);
void markModified(uint32_t address, uint32_t size);
};
class PS2Runtime
{
public:
PS2Runtime();
~PS2Runtime();
bool initialize();
bool loadELF(const std::string &elfPath);
void run();
using RecompiledFunction = void (*)(uint8_t *, R5900Context *);
void registerFunction(uint32_t address, RecompiledFunction func);
RecompiledFunction lookupFunction(uint32_t address);
void SignalException(R5900Context* ctx, PS2Exception exception);
private:
void HandleIntegerOverflow(R5900Context* ctx);
private:
PS2Memory m_memory;
R5900Context m_cpuContext;
bool check_overflow = false;
std::unordered_map<uint32_t, RecompiledFunction> m_functionTable;
struct LoadedModule
{
std::string name;
uint32_t baseAddress;
size_t size;
bool active;
};
std::vector<LoadedModule> m_loadedModules;
};
#endif // PS2_RUNTIME_H