/*
Copyright (C) 2006 yopyop
Copyright (C) 2007 shash
Copyright (C) 2007-2012 DeSmuME team
This file is free software: you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation, either version 2 of the License, or
(at your option) any later version.
This file is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with the this software. If not, see <http://www.gnu.org/licenses/>.
*/
#pragma once
#include "FIFO.h"
#include "mem.h"
#include "registers.h"
#include "mc.h"
#include "bits.h"
#include "readwrite.h"
#ifdef HAVE_LUA
#include "lua-engine.h"
#endif
#ifdef HAVE_JIT
#include "arm_jit.h"
#endif
#define ARMCPU_ARM7 1
#define ARMCPU_ARM9 0
#define ARMPROC (PROCNUM ? NDS_ARM7 : NDS_ARM9)
typedef const uint8_t TWaitState;
enum EDMAMode
{
EDMAMode_Immediate = 0,
EDMAMode_VBlank = 1,
EDMAMode_HBlank = 2,
EDMAMode_HStart = 3,
EDMAMode_MemDisplay = 4,
EDMAMode_Card = 5,
EDMAMode_GBASlot = 6,
EDMAMode_GXFifo = 7,
EDMAMode7_Wifi = 8,
EDMAMode7_GBASlot = 9
};
enum EDMABitWidth
{
EDMABitWidth_16 = 0,
EDMABitWidth_32 = 1
};
enum EDMASourceUpdate
{
EDMASourceUpdate_Increment = 0,
EDMASourceUpdate_Decrement = 1,
EDMASourceUpdate_Fixed = 2,
EDMASourceUpdate_Invalid = 3
};
enum EDMADestinationUpdate
{
EDMADestinationUpdate_Increment = 0,
EDMADestinationUpdate_Decrement = 1,
EDMADestinationUpdate_Fixed = 2,
EDMADestinationUpdate_IncrementReload = 3
};
// TODO
// n.b. this may be a bad idea, for complex registers like the dma control register.
// we need to know exactly what part was written to, instead of assuming all 32bits were written.
class TRegister_32
{
public:
virtual uint32_t read32() = 0;
virtual void write32(uint32_t val) = 0;
void write(int size, uint32_t adr, uint32_t val)
{
if (size == 32)
this->write32(val);
else
{
uint32_t offset = adr & 3;
if (size == 8)
{
printf("WARNING! 8BIT DMA ACCESS\n");
uint32_t mask = 0xFF << (offset << 3);
this->write32((this->read32() & ~mask) | (val << (offset << 3)));
}
else if (size == 16)
{
uint32_t mask = 0xFFFF << (offset << 3);
this->write32((this->read32() & ~mask) | (val << (offset << 3)));
}
}
}
uint32_t read(int size, uint32_t adr)
{
if (size == 32)
return this->read32();
else
{
uint32_t offset = adr & 3;
if (size == 8)
{
printf("WARNING! 8BIT DMA ACCESS\n");
return (this->read32() >> (offset << 3)) & 0xFF;
}
else
return (this->read32() >> (offset << 3)) & 0xFFFF;
}
}
};
struct TGXSTAT : public TRegister_32
{
TGXSTAT()
{
this->gxfifo_irq = this->se = this->tr = this->tb = this->sb = 0;
this->fifo_empty = true;
this->fifo_low = false;
}
uint8_t tb; // test busy
uint8_t tr; // test result
uint8_t se; // stack error
uint8_t sb; // stack busy
uint8_t gxfifo_irq; // irq configuration
bool fifo_empty, fifo_low;
virtual uint32_t read32();
virtual void write32(uint32_t val);
};
void triggerDma(EDMAMode mode);
class DivController
{
public:
DivController() : mode(0), busy(0) { }
void exec();
uint8_t mode, busy, div0;
uint16_t read16() { return this->mode | (this->busy << 15) | (this->div0 << 14); }
void write16(uint16_t val)
{
this->mode = val & 3;
// todo - do we clear the div0 flag here or is that strictly done by the divider unit?
}
};
class SqrtController
{
public:
SqrtController() : mode(0), busy(0) { }
void exec();
uint8_t mode, busy;
uint16_t read16() { return this->mode | (this->busy << 15); }
void write16(uint16_t val) { this->mode = val & 1; }
};
class DmaController
{
public:
uint8_t enable, irq, repeatMode, _startmode;
uint8_t userEnable;
uint32_t wordcount;
EDMAMode startmode;
EDMABitWidth bitWidth;
EDMASourceUpdate sar;
EDMADestinationUpdate dar;
uint32_t saddr, daddr;
uint32_t saddr_user, daddr_user;
// indicates whether the dma needs to be checked for triggering
bool dmaCheck;
// indicates whether the dma right now is logically running
// (though for now we copy all the data when it triggers)
bool running;
bool paused;
// this flag will sometimes be set when a start condition is triggered
// other conditions may be automatically triggered based on scanning conditions
bool triggered;
uint64_t nextEvent;
int procnum, chan;
void exec();
template<int PROCNUM> void doCopy();
void doPause();
void doStop();
void doSchedule();
void tryTrigger(EDMAMode mode);
DmaController() :
enable(0), irq(0), repeatMode(0), _startmode(0),
wordcount(0), startmode(EDMAMode_Immediate),
bitWidth(EDMABitWidth_16),
sar(EDMASourceUpdate_Increment), dar(EDMADestinationUpdate_Increment),
// if saddr isnt cleared then rings of fate will trigger copy protection
// by inspecting dma3 saddr when it boots
saddr(0), daddr(0),
saddr_user(0), daddr_user(0),
dmaCheck(false),
running(false),
paused(false),
triggered(false),
nextEvent(0),
sad(&saddr_user),
dad(&daddr_user)
{
this->sad.controller = this;
this->dad.controller = this;
this->ctrl.controller = this;
this->regs[0] = &this->sad;
this->regs[1] = &this->dad;
this->regs[2] = &this->ctrl;
}
class AddressRegister : public TRegister_32
{
public:
// we pass in a pointer to the controller here so we can alert it if anything changes
DmaController *controller;
uint32_t *const ptr;
AddressRegister(uint32_t *_ptr) : ptr(_ptr) { }
virtual uint32_t read32()
{
return *this->ptr;
}
virtual void write32(uint32_t val)
{
*this->ptr = val;
}
};
class ControlRegister : public TRegister_32
{
public:
// we pass in a pointer to the controller here so we can alert it if anything changes
DmaController *controller;
ControlRegister() { }
virtual uint32_t read32()
{
return this->controller->read32();
}
virtual void write32(uint32_t val)
{
return this->controller->write32(val);
}
};
AddressRegister sad, dad;
ControlRegister ctrl;
TRegister_32 *regs[3];
void write32(uint32_t val);
uint32_t read32();
};
enum ECardMode
{
CardMode_Normal = 0,
CardMode_KEY1,
CardMode_KEY2
};
struct nds_dscard
{
uint8_t command[8];
uint32_t address;
uint32_t transfer_count;
ECardMode mode;
// NJSD stuff
int blocklen;
};
#define DUP2(x) x, x
#define DUP4(x) x, x, x, x
#define DUP8(x) x, x, x, x, x, x, x, x
#define DUP16(x) x, x, x, x, x, x, x, x, x, x, x, x, x, x, x, x
struct MMU_struct
{
//ARM9 mem
uint8_t ARM9_ITCM[0x8000];
uint8_t ARM9_DTCM[0x4000];
//u8 MAIN_MEM[4*1024*1024]; // expanded from 4MB to 8MB to support debug consoles
//u8 MAIN_MEM[8*1024*1024]; // expanded from 8MB to 16MB to support dsi
uint8_t MAIN_MEM[16*1024*1024]; // expanded from 8MB to 16MB to support dsi
uint8_t ARM9_REG[0x1000000];
uint8_t ARM9_BIOS[0x8000];
uint8_t ARM9_VMEM[0x800];
#include "PACKED.h"
struct
{
uint8_t ARM9_LCD[0xA4000];
// an extra 128KB for blank memory, directly after arm9_lcd, so that
// we can easily map things to the end of arm9_lcd to represent
// an unmapped state
uint8_t blank_memory[0x20000];
};
#include "PACKED_END.h"
uint8_t ARM9_OAM[0x800];
uint8_t *ExtPal[2][4];
uint8_t *ObjExtPal[2][2];
struct TextureInfo
{
uint8_t *texPalSlot[6];
uint8_t *textureSlotAddr[4];
} texInfo;
// ARM7 mem
uint8_t ARM7_BIOS[0x4000];
uint8_t ARM7_ERAM[0x10000]; // 64KB of exclusive WRAM
uint8_t ARM7_REG[0x10000];
uint8_t ARM7_WIRAM[0x10000]; // WIFI ram
// VRAM mapping
uint8_t VRAM_MAP[4][32];
uint32_t LCD_VRAM_ADDR[10];
uint8_t LCDCenable[10];
// 32KB of shared WRAM - can be switched between ARM7 & ARM9 in two blocks
uint8_t SWIRAM[0x8000];
// Card rom & ram
uint8_t * CART_ROM;
// Unused ram
uint8_t UNUSED_RAM[4];
// this is here so that we can trap glitchy emulator code
// which is accessing offsets 5,6,7 of unused ram due to unaligned accesses
// (also since the emulator doesn't prevent unaligned accesses)
uint8_t MORE_UNUSED_RAM[4];
static uint8_t *MMU_MEM[2][256];
static uint32_t MMU_MASK[2][256];
uint8_t ARM9_RW_MODE;
uint32_t DTCMRegion;
uint32_t ITCMRegion;
uint16_t timer[2][4];
int32_t timerMODE[2][4];
uint32_t timerON[2][4];
uint32_t timerRUN[2][4];
uint16_t timerReload[2][4];
uint32_t reg_IME[2];
uint32_t reg_IE[2];
// these are the user-controlled IF bits. some IF bits are generated as necessary from hardware conditions
uint32_t reg_IF_bits[2];
// these flags are set occasionally to indicate that an irq should have entered the pipeline, and processing will be deferred a tiny bit to help emulate things
uint32_t reg_IF_pending[2];
template<int PROCNUM> uint32_t gen_IF();
bool divRunning;
int64_t divResult;
int64_t divMod;
uint64_t divCycles;
bool sqrtRunning;
uint32_t sqrtResult;
uint64_t sqrtCycles;
uint16_t SPI_CNT;
uint16_t SPI_CMD;
uint16_t AUX_SPI_CNT;
uint16_t AUX_SPI_CMD;
uint8_t WRAMCNT;
uint8_t powerMan_CntReg;
bool powerMan_CntRegWritten;
uint8_t powerMan_Reg[5];
memory_chip_t fw;
nds_dscard dscard[2];
};
// everything in here is derived from libnds behaviours. no hardware tests yet
class DSI_TSC
{
public:
DSI_TSC();
void reset_command();
uint16_t write16(uint16_t val);
private:
uint16_t read16();
uint8_t reg_selection;
uint8_t read_flag;
int32_t state;
int32_t readcount;
// registers[0] contains the current page.
// we are going to go ahead and save these out in case we want to change the way this is emulated in the future..
// we may want to poke registers in here at more convenient times and have the TSC dumbly pluck them out,
// rather than generate the values on the fly
uint8_t registers[0x80];
};
// this contains things which can't be memzeroed because they are smarter classes
struct MMU_struct_new
{
MMU_struct_new();
BackupDevice backupDevice;
DmaController dma[2][4];
TGXSTAT gxstat;
SqrtController sqrt;
DivController div;
DSI_TSC dsi_tsc;
void write_dma(int proc, int size, uint32_t adr, uint32_t val);
uint32_t read_dma(int proc, int size, uint32_t adr);
bool is_dma(uint32_t adr) { return adr >= _REG_DMA_CONTROL_MIN && adr <= _REG_DMA_CONTROL_MAX; }
};
extern MMU_struct MMU;
extern MMU_struct_new MMU_new;
void MMU_Init();
void MMU_DeInit();
void MMU_Reset();
void MMU_setRom(uint8_t *rom, uint32_t mask);
void MMU_unsetRom();
#define VRAM_BANKS 9
#define VRAM_BANK_A 0
#define VRAM_BANK_B 1
#define VRAM_BANK_C 2
#define VRAM_BANK_D 3
#define VRAM_BANK_E 4
#define VRAM_BANK_F 5
#define VRAM_BANK_G 6
#define VRAM_BANK_H 7
#define VRAM_BANK_I 8
#define VRAM_PAGE_ABG 0
#define VRAM_PAGE_BBG 128
#define VRAM_PAGE_AOBJ 256
#define VRAM_PAGE_BOBJ 384
struct VramConfiguration
{
enum Purpose
{
OFF,
INVALID,
ABG,
BBG,
AOBJ,
BOBJ,
LCDC,
ARM7,
TEX,
TEXPAL,
ABGEXTPAL,
BBGEXTPAL,
AOBJEXTPAL,
BOBJEXTPAL
};
struct BankInfo
{
Purpose purpose;
int ofs;
} banks[VRAM_BANKS];
void clear()
{
for (int i = 0; i < VRAM_BANKS; ++i)
{
banks[i].ofs = 0;
banks[i].purpose = OFF;
}
}
};
extern VramConfiguration vramConfiguration;
const int VRAM_ARM9_PAGES = 512;
extern uint8_t vram_arm9_map[VRAM_ARM9_PAGES];
template<int PROCNUM, MMU_ACCESS_TYPE AT> uint8_t _MMU_read08(uint32_t addr);
template<int PROCNUM, MMU_ACCESS_TYPE AT> uint16_t _MMU_read16(uint32_t addr);
template<int PROCNUM, MMU_ACCESS_TYPE AT> uint32_t _MMU_read32(uint32_t addr);
template<int PROCNUM, MMU_ACCESS_TYPE AT> void _MMU_write08(uint32_t addr, uint8_t val);
template<int PROCNUM, MMU_ACCESS_TYPE AT> void _MMU_write16(uint32_t addr, uint16_t val);
template<int PROCNUM, MMU_ACCESS_TYPE AT> void _MMU_write32(uint32_t addr, uint32_t val);
template<int PROCNUM> inline uint8_t _MMU_read08(uint32_t addr) { return _MMU_read08<PROCNUM, MMU_AT_DATA>(addr); }
template<int PROCNUM> inline uint16_t _MMU_read16(uint32_t addr) { return _MMU_read16<PROCNUM, MMU_AT_DATA>(addr); }
template<int PROCNUM> inline uint32_t _MMU_read32(uint32_t addr) { return _MMU_read32<PROCNUM, MMU_AT_DATA>(addr); }
template<int PROCNUM> inline void _MMU_write08(uint32_t addr, uint8_t val) { _MMU_write08<PROCNUM, MMU_AT_DATA>(addr,val); }
template<int PROCNUM> inline void _MMU_write16(uint32_t addr, uint16_t val) { _MMU_write16<PROCNUM, MMU_AT_DATA>(addr,val); }
template<int PROCNUM> inline void _MMU_write32(uint32_t addr, uint32_t val) { _MMU_write32<PROCNUM, MMU_AT_DATA>(addr,val); }
void FASTCALL _MMU_ARM9_write08(uint32_t adr, uint8_t val);
void FASTCALL _MMU_ARM9_write16(uint32_t adr, uint16_t val);
void FASTCALL _MMU_ARM9_write32(uint32_t adr, uint32_t val);
uint8_t FASTCALL _MMU_ARM9_read08(uint32_t adr);
uint16_t FASTCALL _MMU_ARM9_read16(uint32_t adr);
uint32_t FASTCALL _MMU_ARM9_read32(uint32_t adr);
void FASTCALL _MMU_ARM7_write08(uint32_t adr, uint8_t val);
void FASTCALL _MMU_ARM7_write16(uint32_t adr, uint16_t val);
void FASTCALL _MMU_ARM7_write32(uint32_t adr, uint32_t val);
uint8_t FASTCALL _MMU_ARM7_read08(uint32_t adr);
uint16_t FASTCALL _MMU_ARM7_read16(uint32_t adr);
uint32_t FASTCALL _MMU_ARM7_read32(uint32_t adr);
extern uint32_t partie;
extern uint32_t _MMU_MAIN_MEM_MASK;
extern uint32_t _MMU_MAIN_MEM_MASK16;
extern uint32_t _MMU_MAIN_MEM_MASK32;
void SetupMMU(bool debugConsole, bool dsi);
// ALERT!!!!!!!!!!!!!!
// the following inline functions dont do the 0x0FFFFFFF mask.
// this may result in some unexpected behavior
inline uint8_t _MMU_read08(int PROCNUM, MMU_ACCESS_TYPE AT, uint32_t addr)
{
// special handling for DMA: read 0 from TCM
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_DMA)
{
if (addr < 0x02000000)
return 0; // itcm
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
return 0; // dtcm
}
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 1, /*FIXME*/ 0, LUAMEMHOOK_READ);
#endif
if (PROCNUM == ARMCPU_ARM9 && (addr & ~0x3FFF) == MMU.DTCMRegion)
// Returns data from DTCM (ARM9 only)
return T1ReadByte(MMU.ARM9_DTCM, addr & 0x3FFF);
if ((addr & 0x0F000000) == 0x02000000)
return T1ReadByte(MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK);
if (PROCNUM == ARMCPU_ARM9)
return _MMU_ARM9_read08(addr);
else
return _MMU_ARM7_read08(addr);
}
inline uint16_t _MMU_read16(int PROCNUM, MMU_ACCESS_TYPE AT, uint32_t addr)
{
// special handling for DMA: read 0 from TCM
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_DMA)
{
if (addr < 0x02000000)
return 0; // itcm
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
return 0; // dtcm
}
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 2, /*FIXME*/ 0, LUAMEMHOOK_READ);
#endif
// special handling for execution from arm9, since we spend so much time in there
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_CODE)
{
if ((addr & 0x0F000000) == 0x02000000)
return T1ReadWord_guaranteedAligned(MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK16);
if (addr < 0x02000000)
return T1ReadWord_guaranteedAligned(MMU.ARM9_ITCM, addr&0x7FFE);
goto dunno;
}
if (PROCNUM == ARMCPU_ARM9 && (addr & ~0x3FFF) == MMU.DTCMRegion)
// Returns data from DTCM (ARM9 only)
return T1ReadWord_guaranteedAligned(MMU.ARM9_DTCM, addr & 0x3FFE);
if ((addr & 0x0F000000) == 0x02000000)
return T1ReadWord_guaranteedAligned(MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK16);
dunno:
if (PROCNUM == ARMCPU_ARM9)
return _MMU_ARM9_read16(addr);
else
return _MMU_ARM7_read16(addr);
}
inline uint32_t _MMU_read32(int PROCNUM, MMU_ACCESS_TYPE AT, uint32_t addr)
{
// special handling for DMA: read 0 from TCM
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_DMA)
{
if (addr < 0x02000000)
return 0; // itcm
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
return 0; // dtcm
}
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 4, /*FIXME*/ 0, LUAMEMHOOK_READ);
#endif
//s pecial handling for execution from arm9, since we spend so much time in there
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_CODE)
{
if ((addr & 0x0F000000) == 0x02000000)
return T1ReadLong_guaranteedAligned(MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK32);
if (addr < 0x02000000)
return T1ReadLong_guaranteedAligned(MMU.ARM9_ITCM, addr&0x7FFC);
// what happens when we execute from DTCM? nocash makes it look like we get 0xFFFFFFFF but i can't seem to verify it
// historically, desmume would fall through to its old memory map struct
// which would return unused memory (0)
// it seems the hardware returns 0 or something benign because in actuality 0xFFFFFFFF is an undefined opcode
// and we know our handling for that is solid
goto dunno;
}
// special handling for execution from arm7. try reading from main memory first
if (PROCNUM == ARMCPU_ARM7 && (addr & 0x0F000000) == 0x02000000)
return T1ReadLong_guaranteedAligned(MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK32);
// for other arm9 cases, we have to check from dtcm first because it is patched on top of the main memory range
if (PROCNUM == ARMCPU_ARM9)
{
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
// Returns data from DTCM (ARM9 only)
return T1ReadLong_guaranteedAligned(MMU.ARM9_DTCM, addr & 0x3FFC);
if ((addr & 0x0F000000) == 0x02000000)
return T1ReadLong_guaranteedAligned(MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK32);
}
dunno:
if (PROCNUM == ARMCPU_ARM9)
return _MMU_ARM9_read32(addr);
else
return _MMU_ARM7_read32(addr);
}
inline void _MMU_write08(int PROCNUM, MMU_ACCESS_TYPE AT, uint32_t addr, uint8_t val)
{
// special handling for DMA: discard writes to TCM
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_DMA)
{
if (addr < 0x02000000)
return; // itcm
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
return; // dtcm
}
if (PROCNUM == ARMCPU_ARM9 && (addr & ~0x3FFF) == MMU.DTCMRegion)
{
T1WriteByte(MMU.ARM9_DTCM, addr & 0x3FFF, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 1, val, LUAMEMHOOK_WRITE);
#endif
return;
}
if ((addr & 0x0F000000) == 0x02000000)
{
#ifdef HAVE_JIT
JIT_COMPILED_FUNC_KNOWNBANK(addr, MAIN_MEM, _MMU_MAIN_MEM_MASK, 0) = 0;
#endif
T1WriteByte( MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 1, val, LUAMEMHOOK_WRITE);
#endif
return;
}
if (PROCNUM == ARMCPU_ARM9)
_MMU_ARM9_write08(addr, val);
else
_MMU_ARM7_write08(addr, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 1, val, LUAMEMHOOK_WRITE);
#endif
}
inline void _MMU_write16(int PROCNUM, MMU_ACCESS_TYPE AT, uint32_t addr, uint16_t val)
{
// special handling for DMA: discard writes to TCM
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_DMA)
{
if (addr < 0x02000000)
return; // itcm
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
return; // dtcm
}
if (PROCNUM == ARMCPU_ARM9 && (addr & ~0x3FFF) == MMU.DTCMRegion)
{
T1WriteWord(MMU.ARM9_DTCM, addr & 0x3FFE, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 2, val, LUAMEMHOOK_WRITE);
#endif
return;
}
if ((addr & 0x0F000000) == 0x02000000)
{
#ifdef HAVE_JIT
JIT_COMPILED_FUNC_KNOWNBANK(addr, MAIN_MEM, _MMU_MAIN_MEM_MASK16, 0) = 0;
#endif
T1WriteWord( MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK16, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 2, val, LUAMEMHOOK_WRITE);
#endif
return;
}
if (PROCNUM == ARMCPU_ARM9)
_MMU_ARM9_write16(addr, val);
else
_MMU_ARM7_write16(addr, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 2, val, LUAMEMHOOK_WRITE);
#endif
}
inline void _MMU_write32(int PROCNUM, MMU_ACCESS_TYPE AT, uint32_t addr, uint32_t val)
{
// special handling for DMA: discard writes to TCM
if (PROCNUM == ARMCPU_ARM9 && AT == MMU_AT_DMA)
{
if (addr < 0x02000000)
return; // itcm
if ((addr & ~0x3FFF) == MMU.DTCMRegion)
return; // dtcm
}
if (PROCNUM == ARMCPU_ARM9 && (addr & ~0x3FFF) == MMU.DTCMRegion)
{
T1WriteLong(MMU.ARM9_DTCM, addr & 0x3FFC, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 4, val, LUAMEMHOOK_WRITE);
#endif
return;
}
if ((addr & 0x0F000000) == 0x02000000)
{
#ifdef HAVE_JIT
JIT_COMPILED_FUNC_KNOWNBANK(addr, MAIN_MEM, _MMU_MAIN_MEM_MASK32, 0) = 0;
JIT_COMPILED_FUNC_KNOWNBANK(addr, MAIN_MEM, _MMU_MAIN_MEM_MASK32, 1) = 0;
#endif
T1WriteLong( MMU.MAIN_MEM, addr & _MMU_MAIN_MEM_MASK32, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 4, val, LUAMEMHOOK_WRITE);
#endif
return;
}
if (PROCNUM == ARMCPU_ARM9)
_MMU_ARM9_write32(addr, val);
else
_MMU_ARM7_write32(addr, val);
#ifdef HAVE_LUA
CallRegisteredLuaMemHook(addr, 4, val, LUAMEMHOOK_WRITE);
#endif
}
#define READ32(a,b) _MMU_read32<PROCNUM>((b) & 0xFFFFFFFC)
#define WRITE32(a,b,c) _MMU_write32<PROCNUM>((b) & 0xFFFFFFFC,c)
#define READ16(a,b) _MMU_read16<PROCNUM>((b) & 0xFFFFFFFE)
#define WRITE16(a,b,c) _MMU_write16<PROCNUM>((b) & 0xFFFFFFFE,c)
#define READ8(a,b) _MMU_read08<PROCNUM>(b)
#define WRITE8(a,b,c) _MMU_write08<PROCNUM>(b, c)
template<int PROCNUM, MMU_ACCESS_TYPE AT> inline uint8_t _MMU_read08(uint32_t addr) { return _MMU_read08(PROCNUM, AT, addr); }
template<int PROCNUM, MMU_ACCESS_TYPE AT> inline uint16_t _MMU_read16(uint32_t addr) { return _MMU_read16(PROCNUM, AT, addr); }
template<int PROCNUM, MMU_ACCESS_TYPE AT> inline uint32_t _MMU_read32(uint32_t addr) { return _MMU_read32(PROCNUM, AT, addr); }
template<int PROCNUM, MMU_ACCESS_TYPE AT> inline void _MMU_write08(uint32_t addr, uint8_t val) { _MMU_write08(PROCNUM, AT, addr, val); }
template<int PROCNUM, MMU_ACCESS_TYPE AT> inline void _MMU_write16(uint32_t addr, uint16_t val) { _MMU_write16(PROCNUM, AT, addr, val); }
template<int PROCNUM, MMU_ACCESS_TYPE AT> inline void _MMU_write32(uint32_t addr, uint32_t val) { _MMU_write32(PROCNUM, AT, addr, val); }