mirror of
https://github.com/DCC-EX/CommandStation-EX.git
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208 lines
5.5 KiB
C
208 lines
5.5 KiB
C
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#ifndef ATMEGA328Timer_h
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#define ATMEGA328Timer_h
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#include "../VirtualTimer.h"
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#include <Arduino.h>
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class Timer : public VirtualTimer {
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private:
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int pwmPeriod;
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unsigned long timer_resolution;
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unsigned char clockSelectBits;
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int timer_num;
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unsigned long lastMicroseconds;
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public:
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void (*isrCallback)();
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Timer(int timer_num) {
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switch (timer_num)
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{
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//case 0:
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case 2:
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timer_resolution = 256;
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break;
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case 1:
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timer_resolution = 65536;
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break;
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}
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this->timer_num = timer_num;
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lastMicroseconds = 0;
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}
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void initialize() {
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switch (timer_num)
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{
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// case 0:
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// TCCR0B = _BV(WGM02);
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// TCCR0A = _BV(WGM00) | _BV(WGM01);
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// break;
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case 1:
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TCCR1B = _BV(WGM13) | _BV(WGM12);
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TCCR1A = _BV(WGM11);
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break;
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case 2:
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TCCR2B = _BV(WGM22);
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TCCR2A = _BV(WGM20) | _BV(WGM21);
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break;
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}
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}
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void setPeriod(unsigned long microseconds) {
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if(microseconds == lastMicroseconds)
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return;
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lastMicroseconds = microseconds;
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const unsigned long cycles = (F_CPU / 1000000) * microseconds;
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switch(timer_num) {
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case 2:
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if (cycles < timer_resolution) {
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clockSelectBits = 1 << 0;
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pwmPeriod = cycles;
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} else
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if (cycles < timer_resolution * 8) {
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clockSelectBits = 1 << 1;
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pwmPeriod = cycles / 8;
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} else
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if (cycles < timer_resolution * 32) {
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clockSelectBits = 1 << 0 | 1 << 1;
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pwmPeriod = cycles / 32;
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} else
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if (cycles < timer_resolution * 64) {
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clockSelectBits = 1 << 2;
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pwmPeriod = cycles / 64;
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} else
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if (cycles < timer_resolution * 128) {
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clockSelectBits = 1 << 2 | 1 << 0;
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pwmPeriod = cycles / 128;
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} else
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if (cycles < timer_resolution * 256) {
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clockSelectBits = 1 << 2 | 1 << 1;
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pwmPeriod = cycles / 256;
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} else
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if (cycles < timer_resolution * 1024) {
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clockSelectBits = 1 << 2 | 1 << 1 | 1 << 0;
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pwmPeriod = cycles / 1024;
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} else {
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clockSelectBits = 1 << 2 | 1 << 1 | 1 << 0;
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pwmPeriod = timer_resolution - 1;
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}
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break;
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//case 0:
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case 1:
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if (cycles < timer_resolution) {
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clockSelectBits = 1 << 0;
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pwmPeriod = cycles;
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} else
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if (cycles < timer_resolution * 8) {
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clockSelectBits = 1 << 1;
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pwmPeriod = cycles / 8;
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} else
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if (cycles < timer_resolution * 64) {
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clockSelectBits = (1 << 0) | (1 << 1);
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pwmPeriod = cycles / 64;
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} else
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if (cycles < timer_resolution * 256) {
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clockSelectBits = 1 << 2;
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pwmPeriod = cycles / 256;
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} else
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if (cycles < timer_resolution * 1024) {
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clockSelectBits = (1 << 2) | (1 << 0);
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pwmPeriod = cycles / 1024;
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} else {
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clockSelectBits = (1 << 2) | (1 << 0);
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pwmPeriod = timer_resolution - 1;
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}
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break;
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}
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switch (timer_num)
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{
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// case 0:
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// OCR0A = pwmPeriod;
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// TCCR0B = _BV(WGM02) | clockSelectBits;
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// break;
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case 1:
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ICR1 = pwmPeriod;
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TCCR1B = _BV(WGM13) | _BV(WGM12) | clockSelectBits;
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break;
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case 2:
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OCR2A = pwmPeriod;
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TCCR2B = _BV(WGM22) | clockSelectBits;
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break;
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}
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}
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void start() {
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switch (timer_num)
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{
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// case 0:
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// TCCR0B = 0;
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// TCNT0 = 0; // TODO: does this cause an undesired interrupt?
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// TCCR0B = _BV(WGM02) | clockSelectBits;
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// break;
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case 1:
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TCCR1B = 0;
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TCNT1 = 0; // TODO: does this cause an undesired interrupt?
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TCCR1B = _BV(WGM13) | _BV(WGM12) | clockSelectBits;
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break;
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case 2:
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TCCR2B = 0;
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TCNT2 = 0; // TODO: does this cause an undesired interrupt?
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TCCR2B = _BV(WGM22) | clockSelectBits;
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break;
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}
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}
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void stop() {
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switch (timer_num)
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{
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// case 0:
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// TCCR0B = _BV(WGM02);
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// break;
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case 1:
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TCCR1B = _BV(WGM13) | _BV(WGM12);
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break;
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case 2:
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TCCR2B = _BV(WGM22);
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break;
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}
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}
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void attachInterrupt(void (*isr)()) {
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isrCallback = isr;
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switch (timer_num)
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{
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// case 0:
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// TIMSK0 = _BV(TOIE0);
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// break;
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case 1:
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TIMSK1 = _BV(TOIE1);
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break;
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case 2:
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TIMSK2 = _BV(TOIE2);
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break;
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}
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}
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void detachInterrupt() {
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switch (timer_num)
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{
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// case 0:
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// TIMSK0 = 0;
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// break;
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case 1:
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TIMSK1 = 0;
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break;
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case 2:
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TIMSK2 = 0;
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break;
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}
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}
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};
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extern Timer TimerA;
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extern Timer TimerB;
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#endif
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