Files
audiocodec/encoder.c
2026-07-14 00:26:01 +02:00

323 lines
6.4 KiB
C

//
// Created by bruno on 13. 7. 2026.
//
#include "encoder.h"
#include <SDL.h>
#include <SDL_audio.h>
#include <SDL_stdinc.h>
#include "goertzel.h"
SDL_AudioDeviceID dev;
AudioData encodedAudioData;
Encoder encoder;
// Internal audio bus
float internalBusSamples[INTERNAL_BUFFER_SIZE] = {0};
volatile uint32_t internalBusWrite = 0;
volatile uint32_t internalBusRead = 0;
#define PREAMBLE_SYMBOLS 128
const uint8_t syncBytes[4] =
{
'B',
'R',
'N',
'Q'
};
static void encoder_set_bit(
AudioData *audio,
Encoder *enc,
unsigned bitIndex,
int bit)
{
/*
float spacing =
(float)(enc->endFreq - enc->startFreq) /
(enc->bitCount * 2 - 1);
*/
uint16_t freq =
enc->startFreq +
enc->dataSpacing * (bitIndex * 2 + bit);
freq = goertzel_bin_freq(
freq,
SAMPLE_RATE,
enc->symbolSamples
);
SynthVoice *v =
&audio->synthVoices[bitIndex + 1];
v->frequency = freq;
v->phaseStep =
((uint64_t)freq << 32) / SAMPLE_RATE;
v->volume = 255;
}
static int encoder_get_bit(Encoder *enc) {
if (enc->byteIndex >= enc->bufferSize)
return -1;
int bit = (enc->buffer[enc->byteIndex] >> enc->bitIndex) & 1;
enc->bitIndex++;
if (enc->bitIndex == 8) {
enc->bitIndex = 0;
enc->byteIndex++;
}
return bit;
}
static void encoder_clock(
Encoder *enc,
AudioData *audio)
{
enc->clockState ^= 1;
SynthVoice *clock =
&audio->synthVoices[0];
uint16_t freq =
enc->clockState ?
enc->clock1 :
enc->clock0;
clock->frequency = freq;
clock->phaseStep =
((uint64_t)freq << 32) /
SAMPLE_RATE;
clock->volume = 255;
}
void encoder_next_symbol(
Encoder *enc,
AudioData *audio)
{
encoder_clock(enc, audio);
switch(enc->state)
{
case TX_PREAMBLE:
/* transmit all-zero symbol */
for(unsigned i=0;i<enc->bitCount;i++)
encoder_set_bit(audio,enc,i,0);
enc->preambleSymbols++;
if(enc->preambleSymbols >= PREAMBLE_SYMBOLS)
{
enc->syncIndex = 0;
enc->bitIndex = 0;
enc->state = TX_SYNC;
}
break;
case TX_SYNC:
{
uint8_t byte =
syncBytes[enc->syncIndex];
for(unsigned i=0;i<enc->bitCount;i++)
{
encoder_set_bit(
audio,
enc,
i,
(byte >> i) & 1);
}
enc->syncIndex++;
if(enc->syncIndex ==
sizeof(syncBytes))
{
enc->state = TX_DATA;
enc->byteIndex = 0;
enc->bitIndex = 0;
}
break;
}
case TX_DATA:
{
int finished = 0;
for(unsigned i=0;i<enc->bitCount;i++)
{
int bit =
encoder_get_bit(enc);
if(bit < 0)
{
bit = 0;
finished++;
}
encoder_set_bit(
audio,
enc,
i,
bit);
}
if(finished ==
enc->bitCount)
{
enc->state = TX_END;
}
break;
}
case TX_END:
stopEncoder(enc);
break;
default:
break;
}
enc->samplesRemaining =
enc->symbolSamples;
}
void startEncoder(Encoder *enc)
{
enc->state = TX_PREAMBLE;
enc->transmitting = true;
enc->byteIndex = 0;
enc->bitIndex = 0;
enc->samplesRemaining = 0;
enc->clockState = false;
enc->preambleSymbols = 0;
enc->syncIndex = 0;
}
void stopEncoder(Encoder *enc)
{
enc->transmitting=false;
enc->state=TX_IDLE;
for(int i=0;i<MAX_BITS+1;i++)
{
encodedAudioData.synthVoices[i].volume=0;
}
}
void audio_callback(void *userdata, Uint8 *stream, int len) {
AudioData *audio = userdata;
Encoder *enc = audio->encoder;
if (enc->state == TX_END ||!enc->transmitting) {
memset(stream, 0, len);
return;
}
float *out = (float *) stream;
int samples = len / sizeof(float);
for (int i = 0; i < samples; i++) {
if (enc->samplesRemaining == 0)
encoder_next_symbol(enc, audio);
enc->samplesRemaining--;
float mix = 0.0f;
int active = 0;
for (unsigned v = 0; v < enc->bitCount + 1; v++) {
SynthVoice *voice = &audio->synthVoices[v];
if (voice->volume == 0)
continue;
voice->phase += voice->phaseStep;
float sample = sinf(
((double) voice->phase / 4294967296.0) *
(2.0 * M_PI));
mix += sample * (voice->volume / 255.0f);
active++;
}
float output = active ? mix / (active + 1) : 0.0f;
out[i] = output;
// Write to internal bus for loopback
internalBusSamples[internalBusWrite] = output;
internalBusWrite = (internalBusWrite + 1) % INTERNAL_BUFFER_SIZE;
}
}
void initEncoder()
{
memset(&encoder,0,sizeof(Encoder));
encoder.bufferSize = 0;
encoder.bitCount = 8;
encoder.byteIndex = 0;
encoder.startFreq = 1000;
encoder.endFreq = 5000;
encoder.dataSpacing = 250;
encoder.symbolSamples = SAMPLE_RATE / 50;
encoder.clock0 = goertzel_bin_freq(
6000,
SAMPLE_RATE,
encoder.symbolSamples
);
encoder.clock1 = goertzel_bin_freq(
6300,
SAMPLE_RATE,
encoder.symbolSamples
);
encoder.state = TX_IDLE;
encoder.transmitting = false;
}
void initAudioEncoder() {
memset(&encodedAudioData, 0, sizeof(AudioData));
initEncoder();
SDL_AudioSpec spec = {0};
spec.freq = SAMPLE_RATE;
spec.format = AUDIO_F32SYS;
spec.channels = 1;
spec.samples = 4096;
spec.callback = audio_callback;
encodedAudioData.encoder = &encoder;
spec.userdata = &encodedAudioData;
dev = SDL_OpenAudioDevice(NULL, 0, &spec, NULL, 0);
printf("Encoder device opened: dev=%u\n", dev);
if (dev == 0) {
printf("Failed to open audio encoder: %s\n", SDL_GetError());
SDL_Quit();
}
SDL_PauseAudioDevice(dev, 0);
}