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#include "nw4r/snd/snd_FxReverbStdDpl2.h"
#include "common.h"
#include "nw4r/snd/snd_AxManager.h"
#include "nw4r/snd/snd_global.h"
#include "nw4r/ut/ut_algorithm.h"
namespace nw4r {
namespace snd {
FxReverbStdDpl2::FxReverbStdDpl2() : mIsActive(0) {
detail::FxReverbStdParam p;
SetParam(p);
}
u32 FxReverbStdDpl2::GetRequiredMemSize() {
return ut::Max(
ut::RoundUp(AXFXReverbStdExpGetMemSizeDpl2(&mAxfxParamDpl) + detail::AxfxImpl::HEAP_SIZE_MIN, 32),
ut::RoundUp(AXFXReverbStdExpGetMemSize(&mAxfxParam) + detail::AxfxImpl::HEAP_SIZE_MIN, 32)
);
}
bool FxReverbStdDpl2::AssignWorkBuffer(void *pBuffer, u32 size) {
return mImpl.CreateHeap(pBuffer, size);
}
void FxReverbStdDpl2::ReleaseWorkBuffer() {
mImpl.DestroyHeap();
}
bool FxReverbStdDpl2::StartUp() {
u32 memSize = GetRequiredMemSize();
if (memSize > mImpl.GetHeapTotalSize()) {
return false;
}
AXFXAllocHook allocHook;
AXFXFreeHook freeHook;
BOOL success;
switch (detail::AxManager::GetInstance().GetOutputMode()) {
case OUTPUT_MODE_DPL2: {
mOutputMode = 1;
mImpl.HookAlloc(&allocHook, &freeHook);
success = AXFXReverbStdExpInitDpl2(&mAxfxParamDpl);
mImpl.RestoreAlloc(allocHook, freeHook);
(void)AXFXReverbStdExpGetMemSizeDpl2(&mAxfxParamDpl); // debug leftover
break;
}
default: {
mOutputMode = 0;
mImpl.HookAlloc(&allocHook, &freeHook);
success = AXFXReverbStdExpInit(&mAxfxParam);
mImpl.RestoreAlloc(allocHook, freeHook);
(void)AXFXReverbStdExpGetMemSize(&mAxfxParam); // debug leftover
break;
}
}
mIsActive = 1;
return success;
}
void FxReverbStdDpl2::Shutdown() {
if (!mIsActive) {
return;
}
AXFXAllocHook allocHook;
AXFXFreeHook freeHook;
mIsActive = 0;
mImpl.HookAlloc(&allocHook, &freeHook);
switch (mOutputMode) {
case 1: {
AXFXReverbStdExpShutdownDpl2(&mAxfxParamDpl);
break;
}
default: {
AXFXReverbStdExpShutdown(&mAxfxParam);
break;
}
}
mImpl.RestoreAlloc(allocHook, freeHook);
}
bool FxReverbStdDpl2::SetParam(const detail::FxReverbStdParam &rParam) {
mParam = rParam;
f32 f1 = ut::Max(rParam.field_0x18, 0.0f);
bool b = f1 != mAxfxParam.field_0xB8;
mAxfxParam.field_0xB4 = mAxfxParamDpl.field_0xD0 = rParam.field_0x14;
mAxfxParam.field_0xB8 = mAxfxParamDpl.field_0xD4 = f1;
mAxfxParam.field_0xBC = mAxfxParamDpl.field_0xD8 = ut::Clamp(rParam.field_0x00, 0.0f, rParam.field_0x18);
mAxfxParam.field_0xC0 = mAxfxParamDpl.field_0xDC = rParam.field_0x1C;
mAxfxParam.field_0xC4 = mAxfxParamDpl.field_0xE0 = ut::Max(rParam.field_0x04, 0.0f);
mAxfxParam.field_0xC8 = mAxfxParamDpl.field_0xE4 = ut::Clamp(rParam.field_0x08, 0.0f, 1.0f);
mAxfxParam.field_0xCC = mAxfxParamDpl.field_0xE8 = ut::Clamp(rParam.field_0x0C, 0.0f, 1.0f);
mAxfxParam.field_0xD0 = mAxfxParamDpl.field_0xEC = ut::Clamp(rParam.field_0x20, 0.0f, 1.0f);
mAxfxParam.field_0xD4 = mAxfxParamDpl.field_0xF0 = ut::Clamp(rParam.field_0x24, 0.0f, 1.0f);
mAxfxParam.field_0xE0 = mAxfxParamDpl.field_0xFC = ut::Clamp(rParam.field_0x10, 0.0f, 1.0f);
mAxfxParam.field_0xD8 = 0;
mAxfxParam.field_0xDC = 0;
mAxfxParam.field_0xE4 = 0.0f;
mAxfxParamDpl.field_0xF4 = 0;
mAxfxParamDpl.field_0xF8 = 0;
mAxfxParamDpl.field_0x100 = 0.0f;
if (!mIsActive) {
return true;
}
u32 memSize = GetRequiredMemSize();
if (memSize > mImpl.GetHeapTotalSize()) {
return false;
}
AXFXAllocHook allocHook;
AXFXFreeHook freeHook;
BOOL success;
if (b) {
mImpl.HookAlloc(&allocHook, &freeHook);
switch (mOutputMode) {
case 1: success = AXFXReverbStdExpSettingsDpl2(&mAxfxParamDpl); break;
default: success = AXFXReverbStdExpSettings(&mAxfxParam); break;
}
mImpl.RestoreAlloc(allocHook, freeHook);
} else {
switch (mOutputMode) {
case 1: success = AXFXReverbStdExpSettingsUpdateDpl2(&mAxfxParamDpl); break;
default: success = AXFXReverbStdExpSettingsUpdate(&mAxfxParam); break;
}
}
return success;
}
void FxReverbStdDpl2::UpdateBuffer(
int channels, void **ppBuffer, u32 size, SampleFormat sampleFormat, f32 sampleRate, OutputMode outputMode
) {
if (!mIsActive) {
return;
}
if ((outputMode == OUTPUT_MODE_DPL2) != mOutputMode) {
return;
}
switch (mOutputMode) {
case 1: {
void *chans[AX_DPL2_MAX];
chans[AX_DPL2_L] = ppBuffer[AX_DPL2_L];
chans[AX_DPL2_R] = ppBuffer[AX_DPL2_R];
chans[AX_DPL2_LS] = ppBuffer[AX_DPL2_LS];
chans[AX_DPL2_RS] = ppBuffer[AX_DPL2_RS];
AXFXReverbStdExpCallbackDpl2(chans, &mAxfxParamDpl);
break;
}
default: {
void *chans[3];
chans[0] = ppBuffer[0];
chans[1] = ppBuffer[1];
chans[2] = ppBuffer[2];
AXFXReverbStdExpCallback(chans, &mAxfxParam);
break;
}
}
}
void FxReverbStdDpl2::OnChangeOutputMode() {
if (mOutputMode != (detail::AxManager::GetInstance().GetOutputMode() == OUTPUT_MODE_DPL2)) {
Shutdown();
StartUp();
}
}
} // namespace snd
} // namespace nw4r
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