/*
* xSF - 2SF Player
* By Naram Qashat (CyberBotX) [cyberbotx@cyberbotx.com]
* Last modification on 2013-03-30
*
* Based on a modified vio2sf v0.22c
*
* Partially based on the vio*sf framework
*
* Utilizes a modified DeSmuME v0.9.8 for playback
* http://desmume.org/
*/
#include <memory>
#include <zlib.h>
#include "convert.h"
#include "XSFPlayer.h"
#include "XSFCommon.h"
#include "desmume/armcpu.h"
#include "desmume/saves.h"
#include "desmume/NDSSystem.h"
#include "desmume/cp15.h"
class XSFPlayer_2SF : public XSFPlayer
{
public:
XSFPlayer_2SF(const std::string &filename);
XSFPlayer_2SF(const std::wstring &filename);
~XSFPlayer_2SF() { this->Terminate(); }
bool Load();
void GenerateSamples(std::vector<uint8_t> &buf, unsigned offset, unsigned samples);
void Terminate();
};
const char *XSFPlayer::WinampDescription = "2SF Decoder";
const char *XSFPlayer::WinampExts = "2sf;mini2sf\0DS Sound Format files (*.2sf;*.mini2sf)\0";
XSFPlayer *XSFPlayer::Create(const std::string &fn)
{
return new XSFPlayer_2SF(fn);
}
XSFPlayer *XSFPlayer::Create(const std::wstring &fn)
{
return new XSFPlayer_2SF(fn);
}
volatile bool execute = false;
static struct
{
std::vector<uint8_t> rom, state;
unsigned stateptr;
} loaderwork;
static inline uint16_t Get16BitsLE(const uint8_t *input)
{
return input[0] | (input[1] << 8);
}
static void load_getstateinit(unsigned ptr)
{
loaderwork.stateptr = ptr;
}
static void load_getsta(Status_Reg *ptr, unsigned l)
{
unsigned s = l << 2;
if (loaderwork.stateptr > loaderwork.state.size() || loaderwork.stateptr + s > loaderwork.state.size())
return;
if (ptr)
for (unsigned i = 0; i < l; ++i)
{
uint32_t st = Get32BitsLE(&loaderwork.state[loaderwork.stateptr + (i << 2)]);
ptr[i].bits.N = (st >> 31) & 1;
ptr[i].bits.Z = (st >> 30) & 1;
ptr[i].bits.C = (st >> 29) & 1;
ptr[i].bits.V = (st >> 28) & 1;
ptr[i].bits.Q = (st >> 27) & 1;
ptr[i].bits.RAZ = (st >> 8) & ((1 << 19) - 1);
ptr[i].bits.I = (st >> 7) & 1;
ptr[i].bits.F = (st >> 6) & 1;
ptr[i].bits.T = (st >> 5) & 1;
ptr[i].bits.mode = (st >> 0) & 0x1f;
}
loaderwork.stateptr += s;
}
static void load_getbool(bool *ptr, unsigned l)
{
unsigned s = l << 2;
if (loaderwork.stateptr > loaderwork.state.size() || loaderwork.stateptr + s > loaderwork.state.size())
return;
if (ptr)
for (unsigned i = 0; i < l; ++i)
ptr[i] = !!Get32BitsLE(&loaderwork.state[loaderwork.stateptr + (i << 2)]);
loaderwork.stateptr += s;
}
#ifdef SIGNED_IS_NOT_2S_COMPLEMENT
/* 2's complement */
static inline int32_t u32tos32(uint32_t v) { return static_cast<int32_t>((static_cast<int64_t>(v) ^ 0x8000) - 0x8000); }
#else
/* 2's complement */
static inline int32_t u32tos32(uint32_t v) { return static_cast<int32_t>(v); }
#endif
static void load_gets32(int32_t *ptr, unsigned l)
{
unsigned s = l << 2;
if (loaderwork.stateptr > loaderwork.state.size() || loaderwork.stateptr + s > loaderwork.state.size())
return;
if (ptr)
for (unsigned i = 0; i < l; ++i)
ptr[i] = u32tos32(Get32BitsLE(&loaderwork.state[loaderwork.stateptr + (i << 2)]));
loaderwork.stateptr += s;
}
static void load_getu32(uint32_t *ptr, unsigned l)
{
unsigned s = l << 2;
if (loaderwork.stateptr > loaderwork.state.size() || loaderwork.stateptr + s > loaderwork.state.size())
return;
if (ptr)
for (unsigned i = 0; i < l; ++i)
ptr[i] = Get32BitsLE(&loaderwork.state[loaderwork.stateptr + (i << 2)]);
loaderwork.stateptr += s;
}
static void load_getu16(uint16_t *ptr, unsigned l)
{
unsigned s = l << 1;
if (loaderwork.stateptr > loaderwork.state.size() || loaderwork.stateptr + s > loaderwork.state.size())
return;
if (ptr)
for (unsigned i = 0; i < l; ++i)
ptr[i] = Get16BitsLE(&loaderwork.state[loaderwork.stateptr + (i << 1)]);
loaderwork.stateptr += s;
}
static void load_getu8(uint8_t *ptr, unsigned l)
{
unsigned s = l;
if (loaderwork.stateptr > loaderwork.state.size() || loaderwork.stateptr + s > loaderwork.state.size())
return;
if (ptr)
for (unsigned i = 0; i < l; ++i)
ptr[i] = loaderwork.state[loaderwork.stateptr + i];
loaderwork.stateptr += s;
}
/*static void gdb_stub_fix(armcpu_t *armcpu)
{*/
/* armcpu->R[15] = armcpu->instruct_adr; */
/*armcpu->next_instruction = armcpu->instruct_adr;
if(armcpu->CPSR.bits.T == 0)
{
armcpu->instruction = MMU_read32(armcpu->proc_ID, armcpu->next_instruction);
armcpu->instruct_adr = armcpu->next_instruction;
armcpu->next_instruction += 4;
armcpu->R[15] = armcpu->next_instruction + 4;
}
else
{
armcpu->instruction = MMU_read16(armcpu->proc_ID, armcpu->next_instruction);
armcpu->instruct_adr = armcpu->next_instruction;
armcpu->next_instruction += 2;
armcpu->R[15] = armcpu->next_instruction + 2;
}
}*/
static void load_setstate()
{
if (loaderwork.state.empty())
return;
//std::vector<uint8_t> savestate = std::vector<uint8_t>(&loaderwork.state[0], &loaderwork.state[loaderwork.state.size()]);
EMUFILE_MEMORY f(&loaderwork.state);
if (!savestate_load(&f))
{
//reset the emulator first to clean out the host's state
//while the series of resets below should work,
//we are testing the robustness of the savestate system with this full reset.
//the full reset wipes more things, so we can make sure that they are being restored correctly
//extern bool _HACK_DONT_STOPMOVIE;
//_HACK_DONT_STOPMOVIE = true;
NDS_Reset();
//_HACK_DONT_STOPMOVIE = false;
//reset some options to their old defaults which werent saved
//nds.debugConsole = false;
/* Skip over "Desmume Save File" crap */
load_getstateinit(0x17);
/* Read ARM7 cpu registers */
//load_getu32(&NDS_ARM7.proc_ID, 1);
load_getu32(nullptr, 1);
load_getu32(&NDS_ARM7.instruction, 1);
load_getu32(&NDS_ARM7.instruct_adr, 1);
load_getu32(&NDS_ARM7.next_instruction, 1);
load_getu32(NDS_ARM7.R, 16);
load_getsta(&NDS_ARM7.CPSR, 1);
load_getsta(&NDS_ARM7.SPSR, 1);
load_getu32(&NDS_ARM7.R13_usr, 1);
load_getu32(&NDS_ARM7.R14_usr, 1);
load_getu32(&NDS_ARM7.R13_svc, 1);
load_getu32(&NDS_ARM7.R14_svc, 1);
load_getu32(&NDS_ARM7.R13_abt, 1);
load_getu32(&NDS_ARM7.R14_abt, 1);
load_getu32(&NDS_ARM7.R13_und, 1);
load_getu32(&NDS_ARM7.R14_und, 1);
load_getu32(&NDS_ARM7.R13_irq, 1);
load_getu32(&NDS_ARM7.R14_irq, 1);
load_getu32(&NDS_ARM7.R8_fiq, 1);
load_getu32(&NDS_ARM7.R9_fiq, 1);
load_getu32(&NDS_ARM7.R10_fiq, 1);
load_getu32(&NDS_ARM7.R11_fiq, 1);
load_getu32(&NDS_ARM7.R12_fiq, 1);
load_getu32(&NDS_ARM7.R13_fiq, 1);
load_getu32(&NDS_ARM7.R14_fiq, 1);
load_getsta(&NDS_ARM7.SPSR_svc, 1);
load_getsta(&NDS_ARM7.SPSR_abt, 1);
load_getsta(&NDS_ARM7.SPSR_und, 1);
load_getsta(&NDS_ARM7.SPSR_irq, 1);
load_getsta(&NDS_ARM7.SPSR_fiq, 1);
load_getu32(&NDS_ARM7.intVector, 1);
load_getu8(&NDS_ARM7.LDTBit, 1);
load_getbool(&NDS_ARM7.waitIRQ, 1);
bool tmpbool;
//load_getbool(&NDS_ARM7.wIRQ, 1);
//loaderwork.stateptr += 4;
load_getbool(nullptr, 1);
//load_getbool(&NDS_ARM7.halt_IE_and_IF, 1);
//load_getbool(&NDS_ARM7.wirq, 1);
//loaderwork.stateptr += 4;
//load_getbool(nullptr, 1);
//load_getbool(&NDS_ARM7.intrWaitARM_state, 1);
load_getbool(&tmpbool, 1);
//NDS_ARM7.intrWaitARM_state = tmpbool;
/* Read ARM9 cpu registers */
//load_getu32(&NDS_ARM9.proc_ID, 1);
load_getu32(nullptr, 1);
load_getu32(&NDS_ARM9.instruction, 1);
load_getu32(&NDS_ARM9.instruct_adr, 1);
load_getu32(&NDS_ARM9.next_instruction, 1);
load_getu32(NDS_ARM9.R, 16);
load_getsta(&NDS_ARM9.CPSR, 1);
load_getsta(&NDS_ARM9.SPSR, 1);
load_getu32(&NDS_ARM9.R13_usr, 1);
load_getu32(&NDS_ARM9.R14_usr, 1);
load_getu32(&NDS_ARM9.R13_svc, 1);
load_getu32(&NDS_ARM9.R14_svc, 1);
load_getu32(&NDS_ARM9.R13_abt, 1);
load_getu32(&NDS_ARM9.R14_abt, 1);
load_getu32(&NDS_ARM9.R13_und, 1);
load_getu32(&NDS_ARM9.R14_und, 1);
load_getu32(&NDS_ARM9.R13_irq, 1);
load_getu32(&NDS_ARM9.R14_irq, 1);
load_getu32(&NDS_ARM9.R8_fiq, 1);
load_getu32(&NDS_ARM9.R9_fiq, 1);
load_getu32(&NDS_ARM9.R10_fiq, 1);
load_getu32(&NDS_ARM9.R11_fiq, 1);
load_getu32(&NDS_ARM9.R12_fiq, 1);
load_getu32(&NDS_ARM9.R13_fiq, 1);
load_getu32(&NDS_ARM9.R14_fiq, 1);
load_getsta(&NDS_ARM9.SPSR_svc, 1);
load_getsta(&NDS_ARM9.SPSR_abt, 1);
load_getsta(&NDS_ARM9.SPSR_und, 1);
load_getsta(&NDS_ARM9.SPSR_irq, 1);
load_getsta(&NDS_ARM9.SPSR_fiq, 1);
load_getu32(&NDS_ARM9.intVector, 1);
load_getu8(&NDS_ARM9.LDTBit, 1);
load_getbool(&NDS_ARM9.waitIRQ, 1);
//load_getbool(&NDS_ARM9.wIRQ, 1);
//loaderwork.stateptr += 4;
load_getbool(nullptr, 1);
//load_getbool(&NDS_ARM9.halt_IE_and_IF, 1);
//load_getbool(&NDS_ARM9.wirq, 1);
//loaderwork.stateptr += 4;
//load_getbool(nullptr, 1);
//load_getbool(&NDS_ARM9.intrWaitARM_state, 1);
load_getbool(&tmpbool, 1);
//NDS_ARM9.intrWaitARM_state = tmpbool;
/* Read in other internal variables that are important */
//int32_t tmps32;
//load_gets32(&nds.ARM9Cycle, 1);
load_gets32(nullptr, 1);
//load_gets32(&nds.ARM7Cycle, 1);
load_gets32(nullptr, 1);
load_gets32(&nds.cycles, 1);
int32_t tmps32_array[4];
//load_getu64(nds.timerCycle[0], 4);
load_gets32(tmps32_array, 4);
for (int i = 0; i < 4; ++i)
nds.timerCycle[0][i] = tmps32_array[i];
//load_getu64(nds.timerCycle[1], 4);
load_gets32(tmps32_array, 4);
for (int i = 0; i < 4; ++i)
nds.timerCycle[1][i] = tmps32_array[i];
//bool tmpbool_array[4];
//load_getbool(nds.timerOver[0], 4);
//loaderwork.stateptr += 16;
load_getbool(nullptr, 4);
//load_getbool(nds.timerOver[1], 4);
//loaderwork.stateptr += 16;
load_getbool(nullptr, 4);
//load_gets32(&nds.nextHBlank, 1);
//loaderwork.stateptr += 4;
load_gets32(nullptr, 1);
load_getu32(&nds.VCount, 1);
load_getu32(&nds.old, 1);
//load_gets32(&nds.diff, 1);
//loaderwork.stateptr += 4;
load_gets32(nullptr, 1);
//load_getbool(&nds.lignerendu, 1);
//loaderwork.stateptr += 4;
load_getbool(nullptr, 1);
load_getu16(nullptr, 1);
load_getu16(nullptr, 1);
/* Read in memory/registers specific to the ARM9 */
//load_getu8 (MMU.ARM9_ITCM, 0x8000);
load_getu8(nullptr, 0x8000);
load_getu8 (MMU.ARM9_DTCM, 0x4000);
//load_getu8 (MMU.MAIN_MEM, 0x1000000);
//load_getu8(MMU.MAIN_MEM, 0x800000);
//load_getu8(nullptr, 0x800000);
//load_getu8(nullptr, 0x1000000);
load_getu8(nullptr, 0xFF8000);
load_getu8(MMU.ARM9_ITCM, 0x8000);
load_getu8 (MMU.MAIN_MEM/*+0x400000*/, 0x400000);
load_getu8 (MMU.ARM9_REG, 0x10000);
load_getu8 (MMU.ARM9_VMEM, 0x800);
load_getu8 (MMU.ARM9_OAM, 0x800);
//uint8_t tmpu8_ABG[0x80000];
//load_getu8 (ARM9Mem.ARM9_ABG, 0x80000);
//loaderwork.stateptr += 0x80000;
load_getu8(nullptr, 0x80000);
//uint8_t tmpu8_BBG[0x20000];
//load_getu8 (ARM9Mem.ARM9_BBG, 0x20000);
//loaderwork.stateptr += 0x20000;
load_getu8(nullptr, 0x20000);
//uint8_t tmpu8_AOBJ[0x40000];
//load_getu8 (ARM9Mem.ARM9_AOBJ, 0x40000);
//loaderwork.stateptr += 0x40000;
load_getu8(nullptr, 0x40000);
//uint8_t tmpu8_BOBJ[0x20000];
//load_getu8 (ARM9Mem.ARM9_BOBJ, 0x20000);
//loaderwork.stateptr += 0x20000;
load_getu8(nullptr, 0x20000);
load_getu8 (MMU.ARM9_LCD, 0xA4000);
//loaderwork.stateptr += 12;
/* Read in memory/registers specific to the ARM7 */
load_getu8 (MMU.ARM7_ERAM, 0x10000);
load_getu8 (MMU.ARM7_REG, 0x10000);
load_getu8 (MMU.ARM7_WIRAM, 0x10000);
/* Read in shared memory */
load_getu8 (MMU.SWIRAM, 0x8000);
//gdb_stub_fix(&NDS_ARM9);
//gdb_stub_fix(&NDS_ARM7);
loadstate();
}
}
static struct
{
std::vector<uint8_t> buf;
unsigned filled, used;
uint32_t bufferbytes, cycles;
int xfs_load, sync_type;
} sndifwork = {std::vector<uint8_t>(), 0, 0, 0, 0, 0, 0};
static void SNDIFDeInit() { }
static int SNDIFInit(int buffersize)
{
uint32_t bufferbytes = buffersize * sizeof(int16_t);
SNDIFDeInit();
sndifwork.buf.resize(bufferbytes + 3);
sndifwork.bufferbytes = bufferbytes;
sndifwork.filled = sndifwork.used = 0;
sndifwork.cycles = 0;
return 0;
}
static void SNDIFMuteAudio() { }
static void SNDIFUnMuteAudio() { }
static void SNDIFSetVolume(int) { }
static uint32_t SNDIFGetAudioSpace()
{
return sndifwork.bufferbytes >> 2; // bytes to samples
}
static void SNDIFUpdateAudio(int16_t *buffer, uint32_t num_samples)
{
uint32_t num_bytes = num_samples << 2;
if (num_bytes > sndifwork.bufferbytes)
num_bytes = sndifwork.bufferbytes;
memcpy(&sndifwork.buf[0], buffer, num_bytes);
sndifwork.filled = num_bytes;
sndifwork.used = 0;
}
static const int SNDIFID_2SF = 1;
static SoundInterface_struct SNDIF_2SF =
{
SNDIFID_2SF,
"2sf Sound Interface",
SNDIFInit,
SNDIFDeInit,
SNDIFUpdateAudio,
SNDIFGetAudioSpace,
SNDIFMuteAudio,
SNDIFUnMuteAudio,
SNDIFSetVolume,
nullptr
};
SoundInterface_struct *SNDCoreList[] =
{
&SNDIF_2SF,
&SNDDummy,
nullptr
};
static void Map2SFSection(const std::vector<uint8_t> §ion, bool isSave)
{
auto &data = isSave ? loaderwork.state : loaderwork.rom;
uint32_t offset = Get32BitsLE(§ion[0]), size = Get32BitsLE(§ion[4]), finalSize = size + offset;
if (!isSave)
finalSize = NextHighestPowerOf2(finalSize);
if (data.empty())
data.resize(finalSize + 10, 0);
else if (data.size() < size + offset)
data.resize(offset + finalSize + 10);
memcpy(&data[offset], §ion[8], size);
}
static bool Map2SF(XSFFile *xSF)
{
if (!xSF->IsValidType(0x24))
return false;
auto &reservedSection = xSF->GetReservedSection(), &programSection = xSF->GetProgramSection();
if (!reservedSection.empty())
{
size_t reservedPosition = 0, reservedSize = reservedSection.size();
while (reservedPosition + 12 < reservedSize)
{
uint32_t saveSize = Get32BitsLE(&reservedSection[reservedPosition + 4]);
if (Get32BitsLE(&reservedSection[reservedPosition]) == 0x45564153) // "SAVE"
{
if (reservedPosition + 12 + saveSize > reservedSize)
return false;
uint8_t tmpSaveUncompressed[8];
unsigned long saveUncompressedSize = 8;
uncompress(tmpSaveUncompressed, &saveUncompressedSize, &reservedSection[reservedPosition + 12], saveSize);
saveUncompressedSize = Get32BitsLE(&tmpSaveUncompressed[4]) + 8;
auto saveUncompressed = std::vector<uint8_t>(saveUncompressedSize);
uncompress(&saveUncompressed[0], &saveUncompressedSize, &reservedSection[reservedPosition + 12], saveSize);
Map2SFSection(saveUncompressed, true);
}
reservedPosition += saveSize + 12;
}
}
if (!programSection.empty())
Map2SFSection(programSection, false);
return true;
}
static bool RecursiveLoad2SF(XSFFile *xSF, int level)
{
if (level <= 10 && xSF->GetTagExists("_lib"))
{
#ifdef _WIN32
auto libxSF = std::unique_ptr<XSFFile>(new XSFFile(ExtractDirectoryFromPath(xSF->GetFilename().GetWStr()) + xSF->GetTagValue("_lib").GetWStr(), 4, 8));
#else
auto libxSF = std::unique_ptr<XSFFile>(new XSFFile(ExtractDirectoryFromPath(xSF->GetFilename().GetAnsi()) + xSF->GetTagValue("_lib").GetAnsi(), 4, 8));
#endif
if (!RecursiveLoad2SF(libxSF.get(), level + 1))
return false;
}
if (!Map2SF(xSF))
return false;
unsigned n = 2;
bool found;
do
{
found = false;
std::string libTag = "_lib" + stringify(n++);
if (xSF->GetTagExists(libTag))
{
found = true;
#ifdef _WIN32
auto libxSF = std::unique_ptr<XSFFile>(new XSFFile(ExtractDirectoryFromPath(xSF->GetFilename().GetWStr()) + xSF->GetTagValue(libTag).GetWStr(), 4, 8));
#else
auto libxSF = std::unique_ptr<XSFFile>(new XSFFile(ExtractDirectoryFromPath(xSF->GetFilename().GetAnsi()) + xSF->GetTagValue(libTag).GetAnsi(), 4, 8));
#endif
if (!RecursiveLoad2SF(libxSF.get(), level + 1))
return false;
}
} while (found);
return true;
}
static bool Load2SF(XSFFile *xSF)
{
loaderwork.rom.clear();
loaderwork.state.clear();
loaderwork.stateptr = 0;
return RecursiveLoad2SF(xSF, 1);
}
XSFPlayer_2SF::XSFPlayer_2SF(const std::string &filename) : XSFPlayer()
{
this->xSF = new XSFFile(filename, 4, 8);
}
XSFPlayer_2SF::XSFPlayer_2SF(const std::wstring &filename) : XSFPlayer()
{
this->xSF = new XSFFile(filename, 4, 8);
}
bool XSFPlayer_2SF::Load()
{
int frames = xSF->GetTagValue("_frames", -1);
sndifwork.sync_type = xSF->GetTagValue("_2sf_sync_type", 0);
sndifwork.xfs_load = false;
if (!Load2SF(this->xSF))
return false;
if (NDS_Init())
return false;
SPU_ChangeSoundCore(SNDIFID_2SF, 737);
execute = false;
MMU_unsetRom();
if (!loaderwork.rom.empty())
{
NDS_SetROM(&loaderwork.rom[0], loaderwork.rom.size() - 1);
gameInfo.loadData(reinterpret_cast<char *>(&loaderwork.rom[0]), loaderwork.rom.size() - 1);
}
NDS_Reset();
execute = true;
if (!loaderwork.state.empty())
{
armcp15_t *c9 = reinterpret_cast<armcp15_t *>(NDS_ARM9.coproc[15]);
//int proc;
if (frames == -1)
{
/* set initial ARM9 coprocessor state */
armcp15_moveARM2CP(c9, 0x00000000, 0x01, 0x00, 0, 0);
armcp15_moveARM2CP(c9, 0x00000000, 0x07, 0x05, 0, 0);
armcp15_moveARM2CP(c9, 0x00000000, 0x07, 0x06, 0, 0);
armcp15_moveARM2CP(c9, 0x00000000, 0x07, 0x0a, 0, 4);
armcp15_moveARM2CP(c9, 0x04000033, 0x06, 0x00, 0, 4);
armcp15_moveARM2CP(c9, 0x0200002d, 0x06, 0x01, 0, 0);
armcp15_moveARM2CP(c9, 0x027e0021, 0x06, 0x02, 0, 0);
armcp15_moveARM2CP(c9, 0x08000035, 0x06, 0x03, 0, 0);
armcp15_moveARM2CP(c9, 0x027e001b, 0x06, 0x04, 0, 0);
armcp15_moveARM2CP(c9, 0x0100002f, 0x06, 0x05, 0, 0);
armcp15_moveARM2CP(c9, 0xffff001d, 0x06, 0x06, 0, 0);
armcp15_moveARM2CP(c9, 0x027ff017, 0x06, 0x07, 0, 0);
armcp15_moveARM2CP(c9, 0x00000020, 0x09, 0x01, 0, 1);
armcp15_moveARM2CP(c9, 0x027e000a, 0x09, 0x01, 0, 0);
armcp15_moveARM2CP(c9, 0x00000042, 0x02, 0x00, 0, 1);
armcp15_moveARM2CP(c9, 0x00000042, 0x02, 0x00, 0, 0);
armcp15_moveARM2CP(c9, 0x00000002, 0x03, 0x00, 0, 0);
armcp15_moveARM2CP(c9, 0x05100011, 0x05, 0x00, 0, 3);
armcp15_moveARM2CP(c9, 0x15111011, 0x05, 0x00, 0, 2);
armcp15_moveARM2CP(c9, 0x07dd1e10, 0x01, 0x00, 0, 0);
armcp15_moveARM2CP(c9, 0x0005707d, 0x01, 0x00, 0, 0);
armcp15_moveARM2CP(c9, 0x00000000, 0x07, 0x0a, 0, 4);
armcp15_moveARM2CP(c9, 0x02004000, 0x07, 0x05, 0, 1);
armcp15_moveARM2CP(c9, 0x02004000, 0x07, 0x0e, 0, 1);
/* set initial timer state */
/*MMU_write16(0, REG_TM0CNTL, 0x0000);
MMU_write16(0, REG_TM0CNTH, 0x00C1);
MMU_write16(1, REG_TM0CNTL, 0x0000);
MMU_write16(1, REG_TM0CNTH, 0x00C1);
MMU_write16(1, REG_TM1CNTL, 0xf7e7);
MMU_write16(1, REG_TM1CNTH, 0x00C1);*/
/* set initial interrupt state */
MMU.reg_IME[0] = 0x00000001;
MMU.reg_IE[0] = 0x00042001;
MMU.reg_IME[1] = 0x00000001;
MMU.reg_IE[1] = 0x0104009d;
}
else if (frames > 0)
{
/* execute boot code */
for (int i = 0; i < frames; ++i)
NDS_exec<true>();
}
/* load state */
execute = false;
SPU_Reset();
load_setstate();
loaderwork.state.clear();
if (frames == -1)
armcp15_moveARM2CP(c9, (NDS_ARM9.R13_irq & 0x0fff0000) | 0x0a, 0x09, 0x01, 0, 0);
/* restore timer state */
/*for (proc = 0; proc < 2; proc++)
{
MMU_write16(proc, REG_TM0CNTH, T1ReadWord(MMU.MMU_MEM[proc][0x40], REG_TM0CNTH & 0xFFF));
MMU_write16(proc, REG_TM1CNTH, T1ReadWord(MMU.MMU_MEM[proc][0x40], REG_TM1CNTH & 0xFFF));
MMU_write16(proc, REG_TM2CNTH, T1ReadWord(MMU.MMU_MEM[proc][0x40], REG_TM2CNTH & 0xFFF));
MMU_write16(proc, REG_TM3CNTH, T1ReadWord(MMU.MMU_MEM[proc][0x40], REG_TM3CNTH & 0xFFF));
}*/
}
else if (frames > 0)
{
/* skip 1 sec */
for (int i = 0; i < frames; ++i)
NDS_exec<false>();
}
execute = true;
sndifwork.xfs_load = true;
//CommonSettings.spu_advanced = true;
//CommonSettings.advanced_timing = false;
return XSFPlayer::Load();
}
void XSFPlayer_2SF::GenerateSamples(std::vector<uint8_t> &buf, unsigned offset, unsigned samples)
{
static const double HBASE_CYCLES = 33509300.322234;
static const int HLINE_CYCLES = 6 * (99 + 256);
static const uint32_t HSAMPLES = static_cast<uint32_t>(static_cast<double>(this->sampleRate * HLINE_CYCLES) / HBASE_CYCLES);
static const int VDIVISION = 100;
static const int VLINES = 263;
static const double VBASE_CYCLES = HBASE_CYCLES / VDIVISION;
static const uint32_t VSAMPLES = static_cast<uint32_t>(static_cast<double>(this->sampleRate * HLINE_CYCLES * VLINES) / HBASE_CYCLES);
if (!sndifwork.xfs_load)
return;
unsigned bytes = samples << 2;
while (bytes)
{
unsigned remainbytes = sndifwork.filled - sndifwork.used;
if (remainbytes > 0)
{
if (remainbytes > bytes)
{
memcpy(&buf[offset], &sndifwork.buf[sndifwork.used], bytes);
sndifwork.used += bytes;
offset += bytes;
remainbytes -= bytes;
bytes = 0;
break;
}
else
{
memcpy(&buf[offset], &sndifwork.buf[sndifwork.used], remainbytes);
sndifwork.used += remainbytes;
offset += remainbytes;
bytes -= remainbytes;
remainbytes = 0;
}
}
if (!remainbytes)
{
if (sndifwork.sync_type == 1)
{
/* vsync */
sndifwork.cycles += (this->sampleRate / VDIVISION) * HLINE_CYCLES * VLINES;
if (sndifwork.cycles >= static_cast<uint32_t>(VBASE_CYCLES * (VSAMPLES + 1)))
sndifwork.cycles -= static_cast<uint32_t>(VBASE_CYCLES * (VSAMPLES + 1));
else
sndifwork.cycles -= static_cast<uint32_t>(VBASE_CYCLES * VSAMPLES);
}
else
{
/* hsync */
sndifwork.cycles += this->sampleRate * HLINE_CYCLES;
if (sndifwork.cycles >= static_cast<uint32_t>(HBASE_CYCLES * (HSAMPLES + 1)))
sndifwork.cycles -= static_cast<uint32_t>(HBASE_CYCLES * (HSAMPLES + 1));
else
sndifwork.cycles -= static_cast<uint32_t>(HBASE_CYCLES * HSAMPLES);
}
NDS_exec<false>();
SPU_Emulate_user();
}
}
}
void XSFPlayer_2SF::Terminate()
{
MMU_unsetRom();
NDS_DeInit();
loaderwork.rom.clear();
loaderwork.state.clear();
loaderwork.stateptr = 0;
}