forked from buddhabrot/fusion-zauberstab
transience entfernt
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@ -65,7 +65,7 @@ int rounds = 0;
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void setup() {
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Serial.begin(115200);
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Serial.begin(250000);
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FastLED.addLeds<WS2812, LED_PIN, RGB>(leds, NUM_LEDS);
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FastLED.setMaxPowerInVoltsAndMilliamps(5, 300);
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@ -1,6 +1,9 @@
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#include "zauberstab.h"
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#include <algorithm>
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#undef NUM_LEDS
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#define NUM_LEDS 45
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#define SAMPLING_FREQUENCY_BP 40 // number of energy chunks per second
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#define SAMPLING_FREQUENCY_CONTROL 1 // check number of times per second if the current band pass is the best one
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#define Q 20. // quality factor of band pass filters
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@ -34,8 +37,6 @@ static float u1[n_BP];
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static float u2[n_BP];
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static float y[n_BP];
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static float y_fil[n_BP];
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static float y_fil_avg;
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static float transience = 0;
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static float angle;
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static float angle2;
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@ -45,14 +46,16 @@ static float angle2;
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static float pos_target = NUM_LEDS / 2;
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static float pos_target_filtered = NUM_LEDS / 2;
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static float microphone_offset = 675;
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static float microphone_offset = 1900;
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static long initial_time;
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static int active = 15;
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static int candidate = 15;
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static int rounds = 0;
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static float get_value(int pos, float pos0)
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static int n_samples = 0;
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static int get_value(int pos, float pos0)
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{
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if (abs(pos0 - pos) > 5)
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{
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@ -83,23 +86,27 @@ static void set_filter()
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void setup()
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{
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zauberstab_init();
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Serial.begin(115200);
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Serial.begin(250000);
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set_filter();
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initial_time = micros();
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}
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void loop()
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{
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int sample = int(analogRead(MIC_PIN) - microphone_offset);
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energy += abs(sample) * abs(sample);
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n_samples++;
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if (micros() - last_us_bp > sampling_period_bp)
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{
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Serial.println(sample);
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Serial.println(n_samples);
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n_samples = 0;
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microphone_offset += (analogRead(MIC_PIN) - microphone_offset) * 0.001;
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last_us_bp += sampling_period_bp;
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//energy_fil += (energy - energy_fil) * 0.01;
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y_fil_avg = 0;
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for (int i = 0; i < n_BP; i++)
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{
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y[i] = (b0[i] / a0[i]) * energy + 0. + (b2[i] / a0[i]) * u2[i] - (a1[i] / a0[i]) * yy1[i] - (a2[i] / a0[i]) * yy2[i];
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@ -112,9 +119,8 @@ void loop()
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yy2[i] = yy1[i];
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yy1[i] = y[i];
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y_fil[i] += (abs(y[i]) - y_fil[i]) * 0.005; //linie der scheitelpunkte
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y_fil_avg += y_fil[i];
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}
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y_fil_avg /= n_BP;
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float delays = constrain(SAMPLING_FREQUENCY_BP * 0.25 / (1.75 + active * (2.4 - 1.75) / n_BP), 4., 6.);
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@ -152,15 +158,12 @@ void loop()
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energy = 0;
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transience += ((y_fil[active]/y_fil_avg-1.6) - transience)*0.02;
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transience = max(transience, 0.0f);
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transience = min(transience, 1.0f);
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for (int i = 0; i < NUM_LEDS; i++)
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{
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leds[i].g = int(get_value(i, pos_target_filtered)*transience);
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leds[i].r = int(get_value(i, pos_target_filtered+2)*transience);
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leds[i].b = int(get_value(i, pos_target_filtered-2)*transience);
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leds[i].g = get_value(i, pos_target_filtered);
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leds[i].r = get_value(i, pos_target_filtered+2);
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leds[i].b = get_value(i, pos_target_filtered-2);
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//leds[i].setRGB(brightness_red, brightness_green, brightness_blue);
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//leds[i].setHSV(160, (rounds == 6) ? 0xFF : 0, brightness);
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