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194 lines
6.0 KiB
194 lines
6.0 KiB
/* Audio Library for Teensy 3.X
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* Dynamics Processor (Gate, Compressor & Limiter)
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* Copyright (c) 2018, Marc Paquette (marc@dacsystemes.com)
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* Based on analyse_rms, effect_envelope & mixer objects by Paul Stoffregen
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*
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* Development of this audio library was funded by PJRC.COM, LLC by sales of
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* Teensy and Audio Adaptor boards. Please support PJRC's efforts to develop
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* open source software by purchasing Teensy or other PJRC products.
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to deal
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* in the Software without restriction, including without limitation the rights
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* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice, development funding notice, and this permission
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* notice shall be included in all copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
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* THE SOFTWARE.
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*/
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#ifndef effect_dynamics_h_
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#define effect_dynamics_h_
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#include "Arduino.h"
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#include "AudioStream.h"
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#define MIN_DB -110.0f
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#define MAX_DB 0.0f
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#define MIN_T 0.03f //Roughly 1 block
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#define MAX_T 4.00f
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#define RATIO_OFF 1.0f
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#define RATIO_INFINITY 60.0f
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class AudioEffectDynamics : public AudioStream
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{
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public:
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AudioEffectDynamics(void) : AudioStream(1, inputQueueArray) {
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gate();
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compression();
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limit();
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autoMakeupGain();
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gatedb = MIN_DB;
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compdb = MIN_DB;
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limitdb = MIN_DB;
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}
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//Sets the gate parameters.
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//threshold is in dbFS
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//attack & release are in seconds
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void gate(float threshold = -50.0f, float attack = MIN_T, float release = 0.3f, float hysterisis = 6.0f) {
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gateEnabled = threshold > MIN_DB;
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gateThresholdOpen = constrain(threshold, MIN_DB, MAX_DB);
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gateThresholdClose = gateThresholdOpen - constrain(hysterisis, 0.0f, 6.0f);
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float gateAttackTime = constrain(attack, MIN_T, MAX_T);
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float gateReleaseTime = constrain(release, MIN_T, MAX_T);
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aGateAttack = timeToAlpha(gateAttackTime);
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aOneMinusGateAttack = 1.0f - aGateAttack;
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aGateRelease = timeToAlpha(gateReleaseTime);
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aOneMinusGateRelease = 1.0f - aGateRelease;
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}
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//Sets the compression parameters.
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//threshold & kneeWidth are in db(FS)
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//attack and release are in seconds
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//ratio is expressed as x:1 i.e. 1 for no compression, 60 for brickwall limiting
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//Set kneeWidth to 0 for hard knee
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void compression(float threshold = -40.0f, float attack = MIN_T, float release = 0.5f, float ratio = 35.0f, float kneeWidth = 6.0f) {
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compEnabled = threshold < MAX_DB;
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compThreshold = constrain(threshold, MIN_DB, MAX_DB);
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float compAttackTime = constrain(attack, MIN_T, MAX_T);
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float compReleaseTime = constrain(release, MIN_T, MAX_T);
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compRatio = 1.0f / constrain(abs(ratio), RATIO_OFF, RATIO_INFINITY);
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float compKneeWidth = constrain(abs(kneeWidth), 0.0f, 32.0f);
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computeMakeupGain();
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aCompAttack = timeToAlpha(compAttackTime);
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aOneMinusCompAttack = 1.0f - aCompAttack;
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aCompRelease = timeToAlpha(compReleaseTime);
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aOneMinusCompRelease = 1.0f - aCompRelease;
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aHalfKneeWidth = compKneeWidth / 2.0f;
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aTwoKneeWidth = 1.0f / (compKneeWidth * 2.0f);
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aKneeRatio = compRatio - 1.0f;
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aLowKnee = compThreshold - aHalfKneeWidth;
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aHighKnee = compThreshold + aHalfKneeWidth;
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}
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//Sets the hard limiter parameters
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//threshold is in dbFS
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//attack & release are in seconds
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void limit(float threshold = -3.0f, float attack = MIN_T, float release = MIN_T) {
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limiterEnabled = threshold < MAX_DB;
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limitThreshold = constrain(threshold, MIN_DB, MAX_DB);
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float limitAttackTime = constrain(attack, MIN_T, MAX_T);
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float limitReleaseTime = constrain(release, MIN_T, MAX_T);
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computeMakeupGain();
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aLimitAttack = timeToAlpha(limitAttackTime);
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aOneMinusLimitAttack = 1.0f - aLimitAttack;
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aLimitRelease = timeToAlpha(limitReleaseTime);
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}
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//Enables automatic makeup gain setting
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//headroom is in dbFS
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void autoMakeupGain(float headroom = 6.0f) {
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mgAutoEnabled = true;
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mgHeadroom = constrain(headroom, 0.0f, 60.0f);
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computeMakeupGain();
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}
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//Sets a fixed makeup gain value.
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//gain is in dbFS
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void makeupGain(float gain = 0.0f) {
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mgAutoEnabled = false;
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makeupdb = constrain(gain, -12.0f, 24.0f);
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}
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private:
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audio_block_t *inputQueueArray[1];
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bool gateEnabled = false;
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float gateThresholdOpen;
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float gateThresholdClose;
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float gatedb;
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bool compEnabled = false;
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float compThreshold;
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float compRatio;
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float compdb;
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bool limiterEnabled = false;
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float limitThreshold;
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float limitdb;
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bool mgAutoEnabled;
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float mgHeadroom;
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float makeupdb;
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float aGateAttack;
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float aOneMinusGateAttack;
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float aGateRelease;
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float aOneMinusGateRelease;
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float aHalfKneeWidth;
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float aTwoKneeWidth;
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float aKneeRatio;
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float aLowKnee;
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float aHighKnee;
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float aCompAttack;
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float aOneMinusCompAttack;
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float aCompRelease;
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float aOneMinusCompRelease;
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float aLimitAttack;
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float aOneMinusLimitAttack;
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float aLimitRelease;
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int32_t last_mult;
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void computeMakeupGain() {
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if (mgAutoEnabled) {
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makeupdb = -compThreshold + (compThreshold * compRatio) + limitThreshold - mgHeadroom;
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}
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}
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//Computes smoothing time constants for a 10% to 90% change
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float timeToAlpha(float time) {
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return expf(-0.9542f / (((float)AUDIO_SAMPLE_RATE_EXACT / (float)AUDIO_BLOCK_SAMPLES) * time));
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}
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virtual void update(void);
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};
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#endif
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