#include "ymfm_opm.h"
#include "ymfm_fm.ipp"
namespace ymfm
{
opm_registers::opm_registers() :
m_lfo_counter(0),
m_noise_lfsr(1),
m_noise_counter(0),
m_noise_state(0),
m_noise_lfo(0),
m_lfo_am(0)
{
for (uint32_t index = 0; index < WAVEFORM_LENGTH; index++)
m_waveform[0][index] = abs_sin_attenuation(index) | (bitfield(index, 9) << 15);
for (uint32_t index = 0; index < LFO_WAVEFORM_LENGTH; index++)
{
uint8_t am = index ^ 0xff;
uint8_t pm = index;
m_lfo_waveform[0][index] = am | (pm << 8);
am = bitfield(index, 7) ? 0 : 0xff;
pm = am ^ 0x80;
m_lfo_waveform[1][index] = am | (pm << 8);
am = bitfield(index, 7) ? (index << 1) : ((index ^ 0xff) << 1);
pm = bitfield(index, 6) ? am : ~am;
m_lfo_waveform[2][index] = am | (pm << 8);
m_lfo_waveform[3][index] = 0;
}
}
void opm_registers::reset()
{
std::fill_n(&m_regdata[0], REGISTERS, 0);
m_regdata[0x20] = m_regdata[0x21] = m_regdata[0x22] = m_regdata[0x23] = 0xc0;
m_regdata[0x24] = m_regdata[0x25] = m_regdata[0x26] = m_regdata[0x27] = 0xc0;
}
void opm_registers::save_restore(ymfm_saved_state &state)
{
state.save_restore(m_lfo_counter);
state.save_restore(m_lfo_am);
state.save_restore(m_noise_lfsr);
state.save_restore(m_noise_counter);
state.save_restore(m_noise_state);
state.save_restore(m_noise_lfo);
state.save_restore(m_regdata);
}
void opm_registers::operator_map(operator_mapping &dest) const
{
static const operator_mapping s_fixed_map =
{ {
operator_list( 0, 16, 8, 24 ), operator_list( 1, 17, 9, 25 ), operator_list( 2, 18, 10, 26 ), operator_list( 3, 19, 11, 27 ), operator_list( 4, 20, 12, 28 ), operator_list( 5, 21, 13, 29 ), operator_list( 6, 22, 14, 30 ), operator_list( 7, 23, 15, 31 ), } };
dest = s_fixed_map;
}
bool opm_registers::write(uint16_t index, uint8_t data, uint32_t &channel, uint32_t &opmask)
{
assert(index < REGISTERS);
if (index == 0x19)
m_regdata[index + bitfield(data, 7)] = data;
else if (index != 0x1a)
m_regdata[index] = data;
if (index == 0x08)
{
channel = bitfield(data, 0, 3);
opmask = bitfield(data, 3, 4);
return true;
}
return false;
}
int32_t opm_registers::clock_noise_and_lfo()
{
uint32_t freq = noise_frequency();
for (int rep = 0; rep < 2; rep++)
{
m_noise_lfsr <<= 1;
m_noise_lfsr |= bitfield(m_noise_lfsr, 17) ^ bitfield(m_noise_lfsr, 14) ^ 1;
if (m_noise_counter++ >= freq)
{
m_noise_counter = 0;
m_noise_state = bitfield(m_noise_lfsr, 17);
}
}
uint32_t rate = lfo_rate();
m_lfo_counter += (0x10 | bitfield(rate, 0, 4)) << bitfield(rate, 4, 4);
if (lfo_reset())
m_lfo_counter = 0;
uint32_t lfo = bitfield(m_lfo_counter, 22, 8);
uint32_t lfo_noise = bitfield(m_noise_lfsr, 17, 8);
m_lfo_waveform[3][(lfo + 1) & 0xff] = lfo_noise | (lfo_noise << 8);
int32_t ampm = m_lfo_waveform[lfo_waveform()][lfo];
m_lfo_am = ((ampm & 0xff) * lfo_am_depth()) >> 7;
return ((ampm >> 8) * int32_t(lfo_pm_depth())) >> 7;
}
uint32_t opm_registers::lfo_am_offset(uint32_t choffs) const
{
uint32_t am_sensitivity = ch_lfo_am_sens(choffs);
if (am_sensitivity == 0)
return 0;
return m_lfo_am << (am_sensitivity - 1);
}
void opm_registers::cache_operator_data(uint32_t choffs, uint32_t opoffs, opdata_cache &cache)
{
cache.waveform = &m_waveform[0][0];
uint32_t block_freq = cache.block_freq = ch_block_freq(choffs);
uint32_t keycode = bitfield(block_freq, 8, 5);
cache.detune = detune_adjustment(op_detune(opoffs), keycode);
cache.multiple = op_multiple(opoffs) * 2;
if (cache.multiple == 0)
cache.multiple = 1;
if (lfo_pm_depth() == 0 || ch_lfo_pm_sens(choffs) == 0)
cache.phase_step = compute_phase_step(choffs, opoffs, cache, 0);
else
cache.phase_step = opdata_cache::PHASE_STEP_DYNAMIC;
cache.total_level = op_total_level(opoffs) << 3;
cache.eg_sustain = op_sustain_level(opoffs);
cache.eg_sustain |= (cache.eg_sustain + 1) & 0x10;
cache.eg_sustain <<= 5;
uint32_t ksrval = keycode >> (op_ksr(opoffs) ^ 3);
cache.eg_rate[EG_ATTACK] = effective_rate(op_attack_rate(opoffs) * 2, ksrval);
cache.eg_rate[EG_DECAY] = effective_rate(op_decay_rate(opoffs) * 2, ksrval);
cache.eg_rate[EG_SUSTAIN] = effective_rate(op_sustain_rate(opoffs) * 2, ksrval);
cache.eg_rate[EG_RELEASE] = effective_rate(op_release_rate(opoffs) * 4 + 2, ksrval);
}
uint32_t opm_registers::compute_phase_step(uint32_t choffs, uint32_t opoffs, opdata_cache const &cache, int32_t lfo_raw_pm)
{
static const int16_t s_detune2_delta[4] = { 0, (600*64+50)/100, (781*64+50)/100, (950*64+50)/100 };
int32_t delta = s_detune2_delta[op_detune2(opoffs)];
uint32_t pm_sensitivity = ch_lfo_pm_sens(choffs);
if (pm_sensitivity != 0)
{
if (pm_sensitivity < 6)
delta += lfo_raw_pm >> (6 - pm_sensitivity);
else
delta += uint32_t(lfo_raw_pm) << (pm_sensitivity - 5);
}
uint32_t phase_step = opm_key_code_to_phase_step(cache.block_freq, delta);
phase_step += cache.detune;
return (phase_step * cache.multiple) >> 1;
}
std::string opm_registers::log_keyon(uint32_t choffs, uint32_t opoffs)
{
uint32_t chnum = choffs;
uint32_t opnum = opoffs;
char buffer[256];
int end = 0;
end += snprintf(&buffer[end], sizeof(buffer) - end, "%u.%02u freq=%04X dt2=%u dt=%u fb=%u alg=%X mul=%X tl=%02X ksr=%u adsr=%02X/%02X/%02X/%X sl=%X out=%c%c",
chnum, opnum,
ch_block_freq(choffs),
op_detune2(opoffs),
op_detune(opoffs),
ch_feedback(choffs),
ch_algorithm(choffs),
op_multiple(opoffs),
op_total_level(opoffs),
op_ksr(opoffs),
op_attack_rate(opoffs),
op_decay_rate(opoffs),
op_sustain_rate(opoffs),
op_release_rate(opoffs),
op_sustain_level(opoffs),
ch_output_0(choffs) ? 'L' : '-',
ch_output_1(choffs) ? 'R' : '-');
bool am = (lfo_am_depth() != 0 && ch_lfo_am_sens(choffs) != 0 && op_lfo_am_enable(opoffs) != 0);
if (am)
end += snprintf(&buffer[end], sizeof(buffer) - end, " am=%u/%02X", ch_lfo_am_sens(choffs), lfo_am_depth());
bool pm = (lfo_pm_depth() != 0 && ch_lfo_pm_sens(choffs) != 0);
if (pm)
end += snprintf(&buffer[end], sizeof(buffer) - end, " pm=%u/%02X", ch_lfo_pm_sens(choffs), lfo_pm_depth());
if (am || pm)
end += snprintf(&buffer[end], sizeof(buffer) - end, " lfo=%02X/%c", lfo_rate(), "WQTN"[lfo_waveform()]);
if (noise_enable() && opoffs == 31)
end += snprintf(&buffer[end], sizeof(buffer) - end, " noise=1");
return buffer;
}
ym2151::ym2151(ymfm_interface &intf, opm_variant variant) :
m_variant(variant),
m_address(0),
m_fm(intf)
{
}
void ym2151::reset()
{
m_fm.reset();
}
void ym2151::save_restore(ymfm_saved_state &state)
{
m_fm.save_restore(state);
state.save_restore(m_address);
}
uint8_t ym2151::read_status()
{
uint8_t result = m_fm.status();
if (m_fm.intf().ymfm_is_busy())
result |= fm_engine::STATUS_BUSY;
return result;
}
uint8_t ym2151::read(uint32_t offset)
{
uint8_t result = 0xff;
switch (offset & 1)
{
case 0: debug::log_unexpected_read_write("Unexpected read from YM2151 offset %d\n", offset & 3);
break;
case 1: result = read_status();
break;
}
return result;
}
void ym2151::write_address(uint8_t data)
{
m_address = data;
}
void ym2151::write_data(uint8_t data)
{
m_fm.write(m_address, data);
if (m_address == 0x1b)
{
m_fm.intf().ymfm_external_write(ACCESS_IO, 0, data >> 6);
}
m_fm.intf().ymfm_set_busy_end(32 * m_fm.clock_prescale());
}
void ym2151::write(uint32_t offset, uint8_t data)
{
switch (offset & 1)
{
case 0: write_address(data);
break;
case 1: write_data(data);
break;
}
}
void ym2151::generate(output_data *output, uint32_t numsamples)
{
for (uint32_t samp = 0; samp < numsamples; samp++, output++)
{
m_fm.clock(fm_engine::ALL_CHANNELS);
m_fm.output(output->clear(), 0, 32767, fm_engine::ALL_CHANNELS);
output->roundtrip_fp();
}
}
}