X-Git-Url: https://git.sesse.net/?p=c64tapwav;a=blobdiff_plain;f=decode.cpp;h=2a27371ac2db191c78c0119e812f8bad01834096;hp=94bc1dd1668abe0482d6071e3de40082741806e1;hb=a730ecdfbf484d73677df2ee9e3635da9750b1bd;hpb=b55d61c30b6c2158589de0d0584a6dcc590e52dd diff --git a/decode.cpp b/decode.cpp index 94bc1dd..2a27371 100644 --- a/decode.cpp +++ b/decode.cpp @@ -26,6 +26,7 @@ static bool output_cycles_plot = false; static bool use_filter = false; static float filter_coeff[NUM_FILTER_COEFF] = { 1.0f }; // The rest is filled with 0. static bool output_filtered = false; +static bool quiet = false; // between [x,x+1] double find_zerocrossing(const std::vector &pcm, int x) @@ -88,8 +89,10 @@ double calibrate(const std::vector &pulses) { sync_pulse_end = try_end; sync_pulse_stddev = stddev; } - fprintf(stderr, "Sync pulse length standard deviation: %.2f cycles\n", - sync_pulse_stddev); + if (!quiet) { + fprintf(stderr, "Sync pulse length standard deviation: %.2f cycles\n", + sync_pulse_stddev); + } double sum = 0.0; for (int i = SYNC_PULSE_START; i < sync_pulse_end; ++i) { @@ -97,8 +100,10 @@ double calibrate(const std::vector &pulses) { } double mean_length = C64_FREQUENCY * sum / (sync_pulse_end - SYNC_PULSE_START); double calibration_factor = SYNC_PULSE_LENGTH / mean_length; - fprintf(stderr, "Calibrated sync pulse length: %.2f -> %.2f (change %+.2f%%)\n", - mean_length, SYNC_PULSE_LENGTH, 100.0 * (calibration_factor - 1.0)); + if (!quiet) { + fprintf(stderr, "Calibrated sync pulse length: %.2f -> %.2f (change %+.2f%%)\n", + mean_length, SYNC_PULSE_LENGTH, 100.0 * (calibration_factor - 1.0)); + } // Check for pulses outside +/- 10% (sign of misdetection). for (int i = SYNC_PULSE_START; i < sync_pulse_end; ++i) { @@ -149,6 +154,7 @@ static struct option long_options[] = { {"hysteresis-limit", required_argument, 0, 'l' }, {"filter", required_argument, 0, 'f' }, {"output-filtered", 0, 0, 'F' }, + {"quiet", 0, 0, 'q' }, {"help", 0, 0, 'h' }, {0, 0, 0, 0 } }; @@ -162,6 +168,7 @@ void help() fprintf(stderr, " -l, --hysteresis-limit VAL change amplitude threshold for ignoring pulses (0..32768)\n"); fprintf(stderr, " -f, --filter C1:C2:C3:... specify FIR filter (up to %d coefficients)\n", NUM_FILTER_COEFF); fprintf(stderr, " -F, --output-filtered output filtered waveform to filtered.raw\n"); + fprintf(stderr, " -q, --quiet suppress some informational messages\n"); fprintf(stderr, " -h, --help display this help, then exit\n"); exit(1); } @@ -170,7 +177,7 @@ void parse_options(int argc, char **argv) { for ( ;; ) { int option_index = 0; - int c = getopt_long(argc, argv, "spl:f:Fh", long_options, &option_index); + int c = getopt_long(argc, argv, "spl:f:Fqh", long_options, &option_index); if (c == -1) break; @@ -182,6 +189,7 @@ void parse_options(int argc, char **argv) case 'p': output_cycles_plot = true; break; + case 'l': hysteresis_limit = atof(optarg) / 32768.0; break; @@ -201,6 +209,10 @@ void parse_options(int argc, char **argv) output_filtered = true; break; + case 'q': + quiet = true; + break; + case 'h': default: help(); @@ -231,34 +243,9 @@ std::vector do_filter(const std::vector& pcm, const float* filter) return filtered_pcm; } -int main(int argc, char **argv) +std::vector detect_pulses(const std::vector &pcm, int sample_rate) { - parse_options(argc, argv); - - make_lanczos_weight_table(); - std::vector pcm; - int sample_rate; - if (!read_audio_file(argv[optind], &pcm, &sample_rate)) { - exit(1); - } - - if (use_filter) { - pcm = do_filter(pcm, filter_coeff); - } - -#if 0 - for (int i = 0; i < LEN; ++i) { - in[i] += rand() % 10000; - } -#endif - -#if 0 - for (int i = 0; i < LEN; ++i) { - printf("%d\n", in[i]); - } -#endif - - std::vector pulses; // in seconds + std::vector pulses; // Find the flanks. int last_bit = -1; @@ -300,6 +287,37 @@ int main(int argc, char **argv) } last_bit = bit; } + return pulses; +} + +int main(int argc, char **argv) +{ + parse_options(argc, argv); + + make_lanczos_weight_table(); + std::vector pcm; + int sample_rate; + if (!read_audio_file(argv[optind], &pcm, &sample_rate)) { + exit(1); + } + + if (use_filter) { + pcm = do_filter(pcm, filter_coeff); + } + +#if 0 + for (int i = 0; i < LEN; ++i) { + in[i] += rand() % 10000; + } +#endif + +#if 0 + for (int i = 0; i < LEN; ++i) { + printf("%d\n", in[i]); + } +#endif + + std::vector pulses = detect_pulses(pcm, sample_rate); double calibration_factor = 1.0; if (do_calibrate) {