555 lines
13 KiB
C
555 lines
13 KiB
C
//
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// Created by bruno on 13. 7. 2026.
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//
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#include "decoder.h"
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#include <SDL.h>
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#include <SDL_audio.h>
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#include <SDL_stdinc.h>
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#include <math.h>
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#include <stdio.h>
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#include <string.h>
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#include "texteditor.h"
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#include "modem_settings.h"
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#include "packet.h"
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#include "protocol.h"
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Decoder decoder;
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float tone_energy(
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Decoder *dec,
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int index) {
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// Return the current accumulated Goertzel energy without clearing state.
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Goertzel *g = &dec->tones[index];
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return g->s1 * g->s1 + g->s2 * g->s2 - g->coeff * g->s1 * g->s2;
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}
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static void decoder_history_push(Decoder *dec, float sample) {
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dec->sampleHistory[dec->sampleHistoryWrite] = sample;
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dec->sampleHistoryWrite =
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(dec->sampleHistoryWrite + 1) % DECODER_SAMPLE_HISTORY;
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if (dec->sampleHistoryCount < DECODER_SAMPLE_HISTORY)
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dec->sampleHistoryCount++;
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dec->totalSamples++;
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}
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static bool decoder_history_get(const Decoder *dec, uint64_t sampleIndex, float *sample) {
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if (sampleIndex >= dec->totalSamples) {
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return false;
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}
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uint64_t oldest = dec->totalSamples - dec->sampleHistoryCount;
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if (sampleIndex < oldest) {
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return false;
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}
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uint32_t start =
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(dec->sampleHistoryWrite + DECODER_SAMPLE_HISTORY - dec->sampleHistoryCount)
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% DECODER_SAMPLE_HISTORY;
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uint32_t rel = (uint32_t) (sampleIndex - oldest);
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*sample = dec->sampleHistory[(start + rel) % DECODER_SAMPLE_HISTORY];
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return true;
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}
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void decoder_init(
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Decoder *dec) {
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memset(dec, 0, sizeof(*dec));
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dec->bitsPerSymbol = 3;
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dec->toneCount = 8;
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dec->startFreq = DEFAULT_START_FREQ;
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dec->endFreq = DEFAULT_END_FREQ;
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uint16_t freqRange = dec->endFreq - dec->startFreq;
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dec->dataSpacing =
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freqRange /
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(encoder.toneCount - 1);
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dec->sampleRate = SAMPLE_RATE;
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dec->symbolSamples =
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SAMPLE_RATE / DEFAULT_SYMBOL_RATE;
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dec->clock0 = goertzel_bin_freq(
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DEFAULT_CLOCK0_FREQ,
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dec->sampleRate,
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dec->symbolSamples
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);
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dec->clock1 = goertzel_bin_freq(
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DEFAULT_CLOCK1_FREQ,
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dec->sampleRate,
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dec->symbolSamples
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);
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decoder_rebuild_tones(dec);
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}
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void decoder_rebuild_tones(Decoder *dec) {
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dec->toneCount = 1 << dec->bitsPerSymbol;
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printf("Decoder tones: %d\n", dec->toneCount);
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// clock tones
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goertzel_init(
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&dec->tones[0],
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dec->clock0,
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dec->sampleRate,
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dec->symbolSamples
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);
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goertzel_init(
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&dec->tones[1],
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dec->clock1,
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dec->sampleRate,
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dec->symbolSamples
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);
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// data tones
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for (int i = 0; i < dec->toneCount; i++) {
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uint16_t freq =
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dec->startFreq +
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i * dec->dataSpacing;
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// MUST match encoder
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freq = goertzel_bin_freq(
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freq,
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dec->sampleRate,
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dec->symbolSamples
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);
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goertzel_init(
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&dec->tones[i + 2],
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freq,
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dec->sampleRate,
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dec->symbolSamples
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);
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printf(
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"Tone %d = %dHz\n",
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i,
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freq
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);
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}
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memset(
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dec->energies,
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0,
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sizeof(dec->energies)
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);
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dec->rxState = RX_SEARCH;
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}
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static int detect_clock(Decoder *dec) {
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// Use instantaneous per-symbol energies (dec->energies) for fast detection
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float e0 = dec->energies[0];
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float e1 = dec->energies[1];
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// Simple silence check
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float peak = fmaxf(e0, e1);
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if (peak < 1e-7f)
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return -1;
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// Determine which clock tone is stronger with a small hysteresis
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if (e1 > e0 * 1.05f)
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return 1;
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if (e0 > e1 * 1.05f)
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return 0;
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return -1; // uncertain
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}
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static void clock_search(
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Decoder *dec,
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int clock) {
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if (clock < 0) {
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dec->clockHistory = 0;
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dec->clockCount = 0;
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return;
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}
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dec->clockHistory =
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(dec->clockHistory << 1) |
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(clock & 1);
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if (dec->clockCount < 8)
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dec->clockCount++;
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if (dec->clockCount >= 8) {
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uint8_t h = dec->clockHistory & 0xff;
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if (h == 0x55 || h == 0xAA) {
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printf("CLOCK LOCK pattern=%02X\n", h);
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dec->goodClocks = 8;
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dec->clockHistory = 0;
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dec->clockCount = 0;
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return;
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}
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dec->goodClocks = 0;
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}
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}
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static void update_all_energies(Decoder *dec) {
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const int tones = dec->toneCount + 2;
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uint64_t oldest = dec->totalSamples - dec->sampleHistoryCount;
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if (dec->totalSamples < dec->symbolSamples)
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return; // not enough samples yet
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uint64_t start = dec->totalSamples - dec->symbolSamples;
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if (start < oldest) start = oldest;
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Goertzel work[MAX_FSK_TONES + 2];
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memcpy(work, dec->tones, sizeof(Goertzel) * tones);
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for (int i = 0; i < tones; ++i) {
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work[i].s1 = 0.0f;
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work[i].s2 = 0.0f;
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}
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for (uint32_t s = 0; s < dec->symbolSamples; ++s) {
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float sample;
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if (!decoder_history_get(dec, start + s, &sample)) { sample = 0.0f; }
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for (int t = 0; t < tones; ++t)
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goertzel_add(&work[t], sample);
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}
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float maxE = 0.0f;
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for (int t = 0; t < tones; ++t) {
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float e = goertzel_energy(&work[t]);
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// Instantaneous per-symbol energy
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dec->energies[t] = e;
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if (t == 0) dec->clockEnergy0 = e;
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if (t == 1) dec->clockEnergy1 = e;
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if (e > maxE) maxE = e;
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}
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// Faster decay so visualization follows symbol changes
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dec->maxEnergy = fmaxf(dec->maxEnergy * 0.8f, maxE);
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// Maintain a short visual smoothing for clocks so bars don't flicker
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if (!isfinite(dec->clockEnergy0)) dec->clockEnergy0 = dec->energies[0];
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if (!isfinite(dec->clockEnergy1)) dec->clockEnergy1 = dec->energies[1];
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dec->clockEnergy0 = dec->clockEnergy0 * 0.7f + dec->energies[0] * 0.3f;
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dec->clockEnergy1 = dec->clockEnergy1 * 0.7f + dec->energies[1] * 0.3f;
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#ifdef DEBUG_ENERGIES
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int show = dec->toneCount + 2;
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int upto = show < 12 ? show : 12;
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printf("ENERGIES(start=%llu):", (unsigned long long) start);
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for (int i = 0; i < upto; ++i) {
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printf(" %d:%.6f", i, dec->energies[i]);
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}
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printf(" maxE=%.6f clk0=%.6f clk1=%.6f\n", dec->maxEnergy, dec->clockEnergy0, dec->clockEnergy1);
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#endif
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}
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static int decode_symbol(
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Decoder *dec) {
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float bestEnergy = 0;
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int bestTone = 0;
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/*
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data tones start after clock tones
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*/
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for (int i = 0; i < dec->toneCount; i++) {
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float e =
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dec->energies[i + 2];
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if (e > bestEnergy) {
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bestEnergy = e;
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bestTone = i;
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}
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}
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return bestTone;
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}
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bool decoder_push_byte(
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Decoder *dec,
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uint8_t b) {
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if (dec->rxState == RX_MAGIC) {
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dec->magicBuffer[dec->magicIndex++] = b;
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printf("MAGIC %02X\n", b);
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if (dec->magicIndex >= MAGIC_SIZE) {
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if (memcmp(dec->magicBuffer,
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PACKET_MAGIC,
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MAGIC_SIZE) == 0) {
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printf("MAGIC OK\n");
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dec->rxState = RX_DATA;
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dec->bufferSize = 0;
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dec->currentByte = 0;
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dec->bitIndex = 0;
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}
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printf("BAD MAGIC\n");
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dec->magicIndex = 0;
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dec->preambleCount = 0;
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dec->rxState = RX_SEARCH;
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}
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return false;
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}
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if (dec->rxState == RX_DATA) {
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if (dec->bufferSize < sizeof(dec->buffer)) {
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dec->buffer[dec->bufferSize++] = b;
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}
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if(decoder_parse_packet(dec))
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{
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printf("PACKET OK\n");
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decoder_reset_rx(dec);
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}
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}
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return false;
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}
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static void decoder_push_symbol(
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Decoder *dec,
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unsigned symbol) {
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for (int i = 0; i < dec->bitsPerSymbol; i++) {
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int bit = (symbol >> i) & 1;
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dec->currentByte |= bit << dec->bitIndex;
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if (++dec->bitIndex == 8) {
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printf("BYTE %02X\n", dec->currentByte);
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decoder_push_byte(
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dec,
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dec->currentByte);
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dec->currentByte = 0;
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dec->bitIndex = 0;
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}
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}
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}
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static bool clock_valid(Decoder *dec) {
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float e0 = dec->energies[0];
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float e1 = dec->energies[1];
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float peak = fmaxf(e0, e1);
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if (peak < dec->maxEnergy * 0.10f)
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return false;
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float ratio = fmaxf(e0, e1) /
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(fminf(e0, e1) + 1e-12f);
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return ratio > 1.3f;
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}
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void decoder_reset_rx(Decoder *dec) {
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dec->rxState = RX_SEARCH;
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dec->locked = false;
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dec->preambleCount = 0;
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dec->magicIndex = 0;
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dec->bufferSize = 0;
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dec->currentByte = 0;
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dec->bitIndex = 0;
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dec->clockHistory = 0;
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dec->clockCount = 0;
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dec->goodClocks = 0;
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}
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void decoder_process(
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Decoder *dec,
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float *samples,
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uint32_t count) {
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const int tones = dec->toneCount + 2;
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for (uint32_t i = 0; i < count; i++) {
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decoder_history_push(dec, samples[i]);
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// Always feed samples to Goertzel for continuous analysis
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for (int t = 0; t < tones; t++)
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goertzel_add(&dec->tones[t], samples[i]);
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dec->sampleCount += 1;
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if (dec->sampleCount != dec->symbolSamples)
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continue;
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dec->sampleCount = 0;
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switch (dec->rxState) {
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case RX_SEARCH: {
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// Update all energies for real-time visual feedback
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update_all_energies(dec);
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int clock = detect_clock(dec);
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clock_search(dec, clock);
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if (dec->goodClocks >= 8) {
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printf("CLOCK LOCKED\n");
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dec->rxState = RX_SYNC;
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dec->locked = true;
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dec->clockHistory = 0;
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dec->clockCount = 0;
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dec->goodClocks = 0;
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}
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// DON'T reset filters - keep energy visible
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break;
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}
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case RX_SYNC: {
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update_all_energies(dec);
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int symbol = decode_symbol(dec);
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if (clock_valid(dec)) {
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dec->lostClockCount = 0;
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printf("Symbol %d energy=%f\n", symbol, dec->energies[symbol + 2]);
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} else {
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if (++dec->lostClockCount > 8) {
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printf("CLOCK LOST\n");
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decoder_reset_rx(dec);
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break;
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}
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}
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if (symbol == (dec->preambleCount & 7)) {
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if (dec->preambleCount < 255)
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dec->preambleCount++;
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if (dec->preambleCount >= 16) {
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printf("PREAMBLE OK\n");
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dec->rxState = RX_MAGIC;
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dec->magicIndex = 0;
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dec->currentByte = 0;
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dec->bitIndex = 0;
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break;
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}
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} else {
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if (dec->preambleCount > 4)
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dec->preambleCount -= 4;
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else
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dec->preambleCount = 0;
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}
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break;
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}
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case RX_MAGIC:
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case RX_DATA: {
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update_all_energies(dec);
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if (!clock_valid(dec)) {
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if (++dec->lostClockCount > 8) {
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printf("CLOCK LOST\n");
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decoder_reset_rx(dec);
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break;
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}
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} else {
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dec->lostClockCount = 0;
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}
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int symbol = decode_symbol(dec);
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decoder_push_symbol(dec, symbol);
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break;
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}
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}
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}
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}
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void input_callback(
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void *userdata,
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Uint8 *stream,
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int len) {
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Decoder *dec = userdata;
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// stream contains audio captured from sound card input
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float *samples = (float *) stream;
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int count = len / sizeof(float);
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decoder_process(
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dec,
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samples,
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count
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);
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}
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SDL_AudioDeviceID inputDev;
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AudioData decodedAudioData;
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void initAudioDecoder(SDL_Renderer *renderer) {
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memset(&decodedAudioData, 0, sizeof(AudioData));
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decoder_init(&decoder);
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decoder.renderer = renderer;
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SDL_AudioSpec inSpec = {0};
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inSpec.freq = SAMPLE_RATE;
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inSpec.format = AUDIO_F32SYS;
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inSpec.channels = 1;
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inSpec.samples = 960; // Match symbolSamples (48000/50)
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inSpec.callback = input_callback;
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inSpec.userdata = &decoder;
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SDL_AudioSpec realSpec = {0};
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inputDev = SDL_OpenAudioDevice(NULL, 1, &inSpec, &realSpec, 0);
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printf("Decoder device opened: inputDev=%u\n", inputDev);
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if (inputDev == 0) {
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printf("Failed to open audio decoder: %s\n", SDL_GetError());
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SDL_Quit();
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}
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printf("Input device spec: freq=%d channels=%d samples=%d format=%d\n",
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realSpec.freq, realSpec.channels, realSpec.samples, realSpec.format);
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// Update decoder sample rate and symbolSamples based on actual device
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decoder.sampleRate = realSpec.freq;
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decoder.symbolSamples = realSpec.freq / DEFAULT_SYMBOL_RATE;
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// Rebuild tones to match actual sample rate
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decoder_rebuild_tones(&decoder);
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SDL_PauseAudioDevice(inputDev, 0);
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}
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