Files
JaySynth/src/synth/lfo.c
T
2025-08-03 10:57:01 +02:00

564 lines
12 KiB
C

// --------------------------------------------------------------
// --------------------------------------------------------------
#include <string.h>
#include <stdlib.h>
#include <math.h>
#include <time.h>
#include "synth_defs.h"
#include "lfo.h"
// --------------------------------------------------------------
// internal funcs
// --------------------------------------------------------------
void LFO_freq_update(lfo_t *pObj)
{
pObj->omega = pObj->param[LFO_PARAM2_FREQ]/ pObj->fs;
if (pObj->param[LFO_PARAM2_DELAY] > 0)
{
pObj->delay_dx = 1.0/(pObj->fs*pObj->param[LFO_PARAM2_DELAY]);
}
else
{
pObj->delay_dx = 1.0;
}
pObj->attack_a = 1.0/(pObj->fs*pObj->param[LFO_PARAM2_ATTACK]*LFO_KE);
}
void LFO_smmother_update(lfo_t *pObj)
{
pObj->smooth_is_negative = (pObj->param[LFO_PARAM2_SMOOTH] < 0);
if (fabs(pObj->param[LFO_PARAM2_SMOOTH]) < 0.001)
{
pObj->smooth_b = 1;
pObj->smooth_is_negative = 0;
}
else
{
pObj->smooth_b = fabs((synth_float_t)5/(pObj->param[LFO_PARAM2_SMOOTH]*pObj->fs));
}
pObj->smooth_a = 1 - pObj->smooth_b;
}
synth_float_t Sync_mod(synth_float_t x)
{
synth_float_t y = x - (int)x;
if (y < 0)
{
y += 1;
}
return y;
}
synth_float_t phase_det(synth_float_t lo, synth_float_t ref)
{
lo = Sync_mod(lo - 0.5);
synth_float_t perr = Sync_mod(lo - ref) - (synth_float_t)0.5;
return perr;
}
void Sync_init(sync_t *pObj)
{
pObj->phase = 0;
pObj->phase_int = 0;
pObj->phase_ref = 0;
pObj->omega = 0.0;
pObj->accu = 0;
pObj->klead = 1.0;
pObj->klag = 0.04/200;
pObj->phase_update = 0;
}
void Sync_phase_update(sync_t *pObj, synth_float_t phase_ref)
{
pObj->phase_ref = phase_ref;
pObj->phase_update = 1;
}
sync_result_t Sync_process(lfo_t *pObj)
{
sync_t *pSync = &pObj->sync;
synth_float_t omega_base = pObj->omega;
int sync_mode = (int)pObj->param[LFO_PARAM2_MIDISYNC_MODE];
synth_float_t phase_ref = pSync->phase_ref;
sync_result_t result;
pSync->phase_int = Sync_mod(pSync->phase_int + pObj->omega);
result.phase = pSync->phase;
switch (sync_mode)
{
case LFO_SYNC_MODE_OFF:
pSync->phase = Sync_mod(pSync->phase + omega_base);
break;
case LFO_SYNC_MODE_F:
pSync->phase = Sync_mod(pSync->phase + pSync->omega);
break;
case LFO_SYNC_MODE_F_P:
pSync->phase = pSync->phase_int;
break;
case LFO_SYNC_MODE_P:
pSync->phase = Sync_mod(pSync->phase + omega_base);
if (pSync->phase_update && phase_ref == 0)
{
pSync->phase = 0;
}
break;
}
result.is_cycle_start = (pSync->phase < result.phase);
result.phase = pSync->phase;
synth_float_t perr = 0;
if (pSync->phase_update)
{
pSync->phase_update = 0;
perr = phase_det(pSync->phase_int, phase_ref);
SynthDebug("phase_ref=%f, phase_lo=%f, perr=%f\n", phase_ref, pSync->phase_int, perr);
SynthDebug("syncOnFreqUpdate(): BPM=%f\n", pSync->omega*pObj->fs*60);
}
pSync->omega = omega_base-(pSync->klag*pSync->accu + pSync->klead*perr);
pSync->accu += perr;
return result;
}
void Sync_processV(lfo_t* pObj, int len)
{
sync_t *pSync = &pObj->sync;
synth_float_t perr = 0;
synth_float_t omega_base = pObj->omega;
int sync_mode = (int)pObj->param[LFO_PARAM2_MIDISYNC_MODE];
if (pSync->phase_update)
{
pSync->phase_update = 0;
perr = phase_det(pSync->phase_int, pSync->phase_ref);
if (sync_mode == LFO_SYNC_MODE_P)
{
if (pSync->phase_ref == 0)
{
pSync->phase = 0;
}
}
SynthDebug("phase_ref=%f, phase_lo=%f, perr=%f\n", pSync->phase_ref, pSync->phase_int, perr);
SynthDebug("syncOnFreqUpdate(): BPM=%f\n", pSync->omega*pObj->fs*60);
}
for (int i=0; i < len; i++)
{
pObj->pPhase[i].phase_int = pSync->phase_int;
pObj->pPhase[i].is_cycle_start = 0;
pSync->phase_int = Sync_mod(pSync->phase_int + pSync->omega);
pSync->omega = omega_base-(pSync->klag*pSync->accu + pSync->klead*perr);
pSync->accu += perr;
perr = 0;
}
switch (sync_mode)
{
case LFO_SYNC_MODE_P:
case LFO_SYNC_MODE_OFF:
{
for (int i=0; i < len; i++)
{
pObj->pPhase[i].phase = pSync->phase;
synth_float_t phase = pSync->phase;
pSync->phase = Sync_mod(pSync->phase + omega_base);
pObj->pPhase[i].is_cycle_start = (phase > pSync->phase);
}
}
break;
case LFO_SYNC_MODE_F:
{
for (int i=0; i < len; i++)
{
pObj->pPhase[i].phase = pSync->phase;
synth_float_t phase = pSync->phase;
pSync->phase = Sync_mod(pSync->phase + pSync->omega);
pObj->pPhase[i].is_cycle_start = (phase > pSync->phase);
}
}
break;
case LFO_SYNC_MODE_F_P:
{
for (int i=0; i < len; i++)
{
synth_float_t phase = pSync->phase;
pSync->phase = pObj->pPhase[i].phase_int;
pObj->pPhase[i].is_cycle_start = (phase > pSync->phase);
pObj->pPhase[i].phase = pSync->phase;
}
}
break;
default:
break;
}
}
// --------------------------------------------------------------
// Exported functions
// --------------------------------------------------------------
void LFO_Init(lfo_t *pObj, synth_float_t fs)
{
pObj->fs = fs;
pObj->pOut = NULL;
pObj->bufsize = 0;
pObj->pPhase = NULL;
pObj->pWave = NULL;
pObj->param[LFO_PARAM2_WAVEFORM] = LFO_WAVEFORM_SINE;
pObj->param[LFO_PARAM2_FREQ] = 1;
pObj->param[LFO_PARAM2_SMOOTH] = 0.001; // seconds
pObj->param[LFO_PARAM2_DELAY] = 0; // seconds
pObj->param[LFO_PARAM2_ATTACK] = 0; // seconds
pObj->sh_sample = 0;
pObj->smooth_out = 0;
pObj->offset = 0.0;
LFO_Reset(pObj, 0);
pObj->freq_update_req = 0;
LFO_SetBufsize(pObj, SYNTH_MAX_BUFSIZE);
Noise_Init(&pObj->noise, 1+(UINT32)clock() * (UINT32)clock());
Sync_init(&pObj->sync);
}
void LFO_Free(lfo_t *pObj)
{
LFO_SetBufsize(pObj, 0);
}
void LFO_SetBufsize(lfo_t *pObj, UINT32 size)
{
if (pObj->bufsize == size)
return;
pObj->bufsize = size;
if (pObj->pOut)
free(pObj->pOut);
pObj->pOut = NULL;
if (pObj->pPhase)
free(pObj->pPhase);
pObj->pPhase = NULL;
if (pObj->pWave)
free(pObj->pWave);
pObj->pWave = NULL;
if (!size)
return;
pObj->pOut = (synth_float_t*)malloc(pObj->bufsize*sizeof(synth_float_t));
pObj->pPhase = (sync_result_t*)malloc(pObj->bufsize*sizeof(sync_result_t));
pObj->pWave = (synth_float_t*)malloc(pObj->bufsize*sizeof(synth_float_t));
}
void LFO_SetFS(lfo_t *pObj, synth_float_t fs)
{
pObj->fs = fs;
LFO_freq_update(pObj);
}
void LFO_Reset(lfo_t *pObj, synth_float_t initial_phase)
{
pObj->sync.phase = initial_phase;
pObj->smooth_out = 0;
pObj->delay_x = 0;
pObj->attack_y = 0;
LFO_freq_update(pObj);
LFO_smmother_update(pObj);
}
synth_float_t LFO_sync(lfo_t *pObj, synth_float_t phase_ref)
{
synth_float_t note_1_x = pObj->param[LFO_PARAM2_MIDISYNC_BEATDIV];
phase_ref = Sync_mod(note_1_x*phase_ref);
Sync_phase_update(&pObj->sync, phase_ref);
// Return BPM
return 4*60*pObj->fs*pObj->sync.omega/note_1_x;
}
void LFO_Param2Set(lfo_t *pObj, UINT32 type, synth_float_t value)
{
int param_changed = 0;
if (pObj->param[type] != value)
{
pObj->param[type] = value;
param_changed = 1;
}
switch(type)
{
case LFO_PARAM2_WAVEFORM:
pObj->freq_update_req = param_changed;
break;
case LFO_PARAM2_FREQ:
pObj->freq_update_req = param_changed;
break;
case LFO_PARAM2_SMOOTH:
if (param_changed)
{
LFO_smmother_update(pObj);
}
break;
case LFO_PARAM2_DELAY:
pObj->freq_update_req = param_changed;
break;
case LFO_PARAM2_ATTACK:
pObj->freq_update_req = param_changed;
break;
case LFO_PARAM2_SYMMETRY:
if (param_changed)
{
pObj->offset = 0.5 *value;
}
break;
default:
break;
}
}
synth_float_t* LFO_ProcessDataV(lfo_t *pObj, UINT32 len)
{
UINT32 i;
sync_result_t *pPhase = pObj->pPhase;
if (pObj->freq_update_req)
{
pObj->freq_update_req = 0;
LFO_freq_update(pObj);
}
// Process Phase and Frequency
#if 0
for (i=0; i< len; i++)
{
*(pPhase++) = Sync_process(&pObj->sync);
}
#else
Sync_processV(pObj, len);
#endif
pPhase = pObj->pPhase;
synth_float_t *pWave = pObj->pWave;
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SAW)
{
// Create phase
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = 2*sync_result.phase - 1.0;
*(pWave++) = 0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SAW_REV)
{
// Create phase
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = 2*sync_result.phase - 1.0;
*(pWave++) = -0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SH_UNI)
{
// Create phase for S/H
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
if (sync_result.is_cycle_start)
{
pObj->sh_sample = Noise_Uniform(&pObj->noise, 1, 0.5);
}
*(pWave++) = pObj->sh_sample + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SH_GAUSS)
{
// Create phase for S/H
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
if (sync_result.is_cycle_start)
{
do
{
pObj->sh_sample = Noise_Gaussian(&pObj->noise, sqrt(1.f/36), 0.5);
} while ((pObj->sh_sample < 0) || (pObj->sh_sample > 1.f));
}
*(pWave++) = pObj->sh_sample + pObj->offset;
}
}
// Create output
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SINE)
{
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = sin(2*M_PI*sync_result.phase);
*(pWave++) = 0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SINE_REV)
{
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = sin(2*M_PI*sync_result.phase);
*(pWave++) = -0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_COSINE)
{
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = cos(2*M_PI*sync_result.phase);
*(pWave++) = 0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_COSINE_REV)
{
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = cos(2*M_PI*sync_result.phase);
*(pWave++) = -0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SQUARE)
{
// Create phase
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = 2*(synth_float_t)(sync_result.phase < 0.5) - 1.0;
*(pWave++) = 0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_SQUARE_REV)
{
// Create phase
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = 2*(synth_float_t)(sync_result.phase < 0.5) - 1.0;
*(pWave++) = -0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_TRIANGLE)
{
// Create phase
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = 2*(1-sync_result.phase) - 1.0;
if (sync_result.phase < 0.5)
{
y = 2*sync_result.phase - 1.0;
}
*(pWave++) = 0.5*y + pObj->offset;
}
}
if (pObj->param[LFO_PARAM2_WAVEFORM] == LFO_WAVEFORM_TRIANGLE_REV)
{
// Create phase
for (i=0; i< len; i++)
{
sync_result_t sync_result = *(pPhase++);
synth_float_t y = 2*(1-sync_result.phase) - 0.5;
if (sync_result.phase < 0.5)
{
y = 2*sync_result.phase - 0.5;
}
*(pWave++) = -0.5*y + pObj->offset;
}
}
// Output smoothing and delay
pWave = pObj->pWave;
synth_float_t *pOut = pObj->pOut;
for (i=0; i< len; i++)
{
synth_float_t in = *(pWave++);
pObj->delay_x += pObj->delay_dx;
if (pObj->delay_x < 1.0)
{
in = 0;
}
pObj->smooth_out = pObj->smooth_a*pObj->smooth_out + pObj->smooth_b*in;
synth_float_t out = pObj->smooth_out;
if (pObj->smooth_is_negative)
out = 2*in - pObj->smooth_out;
*(pOut++) = out*pObj->attack_y;
pObj->attack_y += pObj->attack_a*(1-pObj->attack_y);
}
return pObj->pOut;
}