| 507 | kaklik | 1 | /*! \file timer.c \brief System Timer function library. */
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           |  |  | 2 | //*****************************************************************************
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           |  |  | 3 | //
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           |  |  | 4 | // File Name	: 'timer.c'
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           |  |  | 5 | // Title		: System Timer function library
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           |  |  | 6 | // Author		: Pascal Stang - Copyright (C) 2000-2002
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           |  |  | 7 | // Created		: 11/22/2000
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           |  |  | 8 | // Revised		: 07/09/2003
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           |  |  | 9 | // Version		: 1.1
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           |  |  | 10 | // Target MCU	: Atmel AVR Series
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           |  |  | 11 | // Editor Tabs	: 4
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           |  |  | 12 | //
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           |  |  | 13 | // This code is distributed under the GNU Public License
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           |  |  | 14 | //		which can be found at http://www.gnu.org/licenses/gpl.txt
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           |  |  | 15 | //
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           |  |  | 16 | //*****************************************************************************
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           |  |  | 17 |   | 
        
           |  |  | 18 | #include <avr/io.h>
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           |  |  | 19 | #include <avr/interrupt.h>
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           |  |  | 20 | #include <avr/pgmspace.h>
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           |  |  | 21 | #include <avr/sleep.h>
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           |  |  | 22 |   | 
        
           |  |  | 23 | #include "global.h"
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           |  |  | 24 | #include "timer.h"
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           |  |  | 25 |   | 
        
           |  |  | 26 | #include "rprintf.h"
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           |  |  | 27 |   | 
        
           |  |  | 28 | // Program ROM constants
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           |  |  | 29 | // the prescale division values stored in order of timer control register index
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           |  |  | 30 | // STOP, CLK, CLK/8, CLK/64, CLK/256, CLK/1024
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           |  |  | 31 | unsigned short __attribute__ ((progmem)) TimerPrescaleFactor[] = {0,1,8,64,256,1024};
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           |  |  | 32 | // the prescale division values stored in order of timer control register index
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           |  |  | 33 | // STOP, CLK, CLK/8, CLK/32, CLK/64, CLK/128, CLK/256, CLK/1024
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           |  |  | 34 | unsigned short __attribute__ ((progmem)) TimerRTCPrescaleFactor[] = {0,1,8,32,64,128,256,1024};
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           |  |  | 35 |   | 
        
           |  |  | 36 | // Global variables
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           |  |  | 37 | // time registers
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           |  |  | 38 | volatile unsigned long TimerPauseReg;
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           |  |  | 39 | volatile unsigned long Timer0Reg0;
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           |  |  | 40 | volatile unsigned long Timer2Reg0;
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           |  |  | 41 |   | 
        
           |  |  | 42 | typedef void (*voidFuncPtr)(void);
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           |  |  | 43 | volatile static voidFuncPtr TimerIntFunc[TIMER_NUM_INTERRUPTS];
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           |  |  | 44 |   | 
        
           |  |  | 45 | // delay for a minimum of <us> microseconds 
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           |  |  | 46 | // the time resolution is dependent on the time the loop takes 
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           |  |  | 47 | // e.g. with 4Mhz and 5 cycles per loop, the resolution is 1.25 us 
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           |  |  | 48 | void delay_us(unsigned short time_us) 
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           |  |  | 49 | {
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           |  |  | 50 | 	unsigned short delay_loops;
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           |  |  | 51 | 	register unsigned short i;
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           |  |  | 52 |   | 
        
           |  |  | 53 | 	delay_loops = (time_us+3)/5*CYCLES_PER_US; // +3 for rounding up (dirty) 
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           |  |  | 54 |   | 
        
           |  |  | 55 | 	// one loop takes 5 cpu cycles 
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           |  |  | 56 | 	for (i=0; i < delay_loops; i++) {};
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           |  |  | 57 | }
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           |  |  | 58 | /*
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           |  |  | 59 | void delay_ms(unsigned char time_ms)
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           |  |  | 60 | {
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           |  |  | 61 | 	unsigned short delay_count = F_CPU / 4000;
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           |  |  | 62 |   | 
        
           |  |  | 63 | 	unsigned short cnt;
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           |  |  | 64 | 	asm volatile ("\n"
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           |  |  | 65 |                   "L_dl1%=:\n\t"
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           |  |  | 66 |                   "mov %A0, %A2\n\t"
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           |  |  | 67 |                   "mov %B0, %B2\n"
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           |  |  | 68 |                   "L_dl2%=:\n\t"
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           |  |  | 69 |                   "sbiw %A0, 1\n\t"
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           |  |  | 70 |                   "brne L_dl2%=\n\t"
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           |  |  | 71 |                   "dec %1\n\t" "brne L_dl1%=\n\t":"=&w" (cnt)
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           |  |  | 72 |                   :"r"(time_ms), "r"((unsigned short) (delay_count))
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           |  |  | 73 | 	);
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           |  |  | 74 | }
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           |  |  | 75 | */
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           |  |  | 76 | void timerInit(void)
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           |  |  | 77 | {
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           |  |  | 78 | 	u08 intNum;
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           |  |  | 79 | 	// detach all user functions from interrupts
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           |  |  | 80 | 	for(intNum=0; intNum<TIMER_NUM_INTERRUPTS; intNum++)
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           |  |  | 81 | 		timerDetach(intNum);
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           |  |  | 82 |   | 
        
           |  |  | 83 | 	// initialize all timers
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           |  |  | 84 | 	timer0Init();
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           |  |  | 85 | 	timer1Init();
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           |  |  | 86 | 	#ifdef TCNT2	// support timer2 only if it exists
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           |  |  | 87 | 	timer2Init();
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           |  |  | 88 | 	#endif
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           |  |  | 89 | 	// enable interrupts
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           |  |  | 90 | 	sei();
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           |  |  | 91 | }
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           |  |  | 92 |   | 
        
           |  |  | 93 | void timer0Init()
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           |  |  | 94 | {
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           |  |  | 95 | 	// initialize timer 0
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           |  |  | 96 | 	timer0SetPrescaler( TIMER0PRESCALE );	// set prescaler
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           |  |  | 97 | 	outb(TCNT0, 0);							// reset TCNT0
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           |  |  | 98 | 	sbi(TIMSK, TOIE0);						// enable TCNT0 overflow interrupt
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           |  |  | 99 |   | 
        
           |  |  | 100 | 	timer0ClearOverflowCount();				// initialize time registers
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           |  |  | 101 | }
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           |  |  | 102 |   | 
        
           |  |  | 103 | void timer1Init(void)
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           |  |  | 104 | {
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           |  |  | 105 | 	// initialize timer 1
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           |  |  | 106 | 	timer1SetPrescaler( TIMER1PRESCALE );	// set prescaler
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           |  |  | 107 | 	outb(TCNT1H, 0);						// reset TCNT1
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           |  |  | 108 | 	outb(TCNT1L, 0);
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           |  |  | 109 | 	sbi(TIMSK, TOIE1);						// enable TCNT1 overflow
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           |  |  | 110 | }
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           |  |  | 111 |   | 
        
           |  |  | 112 | #ifdef TCNT2	// support timer2 only if it exists
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           |  |  | 113 | void timer2Init(void)
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           |  |  | 114 | {
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           |  |  | 115 | 	// initialize timer 2
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           |  |  | 116 | 	timer2SetPrescaler( TIMER2PRESCALE );	// set prescaler
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           |  |  | 117 | 	outb(TCNT2, 0);							// reset TCNT2
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           |  |  | 118 | 	sbi(TIMSK, TOIE2);						// enable TCNT2 overflow
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           |  |  | 119 |   | 
        
           |  |  | 120 | 	timer2ClearOverflowCount();				// initialize time registers
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           |  |  | 121 | }
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           |  |  | 122 | #endif
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           |  |  | 123 |   | 
        
           |  |  | 124 | void timer0SetPrescaler(u08 prescale)
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           |  |  | 125 | {
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           |  |  | 126 | 	// set prescaler on timer 0
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           |  |  | 127 | 	outb(TCCR0, (inb(TCCR0) & ~TIMER_PRESCALE_MASK) | prescale);
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           |  |  | 128 | }
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           |  |  | 129 |   | 
        
           |  |  | 130 | void timer1SetPrescaler(u08 prescale)
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           |  |  | 131 | {
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           |  |  | 132 | 	// set prescaler on timer 1
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           |  |  | 133 | 	outb(TCCR1B, (inb(TCCR1B) & ~TIMER_PRESCALE_MASK) | prescale);
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           |  |  | 134 | }
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           |  |  | 135 |   | 
        
           |  |  | 136 | #ifdef TCNT2	// support timer2 only if it exists
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           |  |  | 137 | void timer2SetPrescaler(u08 prescale)
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           |  |  | 138 | {
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           |  |  | 139 | 	// set prescaler on timer 2
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           |  |  | 140 | 	outb(TCCR2, (inb(TCCR2) & ~TIMER_PRESCALE_MASK) | prescale);
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           |  |  | 141 | }
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           |  |  | 142 | #endif
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           |  |  | 143 |   | 
        
           |  |  | 144 | u16 timer0GetPrescaler(void)
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           |  |  | 145 | {
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           |  |  | 146 | 	// get the current prescaler setting
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           |  |  | 147 | 	return (pgm_read_word(TimerPrescaleFactor+(inb(TCCR0) & TIMER_PRESCALE_MASK)));
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           |  |  | 148 | }
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           |  |  | 149 |   | 
        
           |  |  | 150 | u16 timer1GetPrescaler(void)
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           |  |  | 151 | {
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           |  |  | 152 | 	// get the current prescaler setting
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           |  |  | 153 | 	return (pgm_read_word(TimerPrescaleFactor+(inb(TCCR1B) & TIMER_PRESCALE_MASK)));
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           |  |  | 154 | }
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           |  |  | 155 |   | 
        
           |  |  | 156 | #ifdef TCNT2	// support timer2 only if it exists
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           |  |  | 157 | u16 timer2GetPrescaler(void)
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           |  |  | 158 | {
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           |  |  | 159 | 	//TODO: can we assume for all 3-timer AVR processors,
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           |  |  | 160 | 	// that timer2 is the RTC timer?
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           |  |  | 161 |   | 
        
           |  |  | 162 | 	// get the current prescaler setting
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           |  |  | 163 | 	return (pgm_read_word(TimerRTCPrescaleFactor+(inb(TCCR2) & TIMER_PRESCALE_MASK)));
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           |  |  | 164 | }
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           |  |  | 165 | #endif
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           |  |  | 166 |   | 
        
           |  |  | 167 | void timerAttach(u08 interruptNum, void (*userFunc)(void) )
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           |  |  | 168 | {
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           |  |  | 169 | 	// make sure the interrupt number is within bounds
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           |  |  | 170 | 	if(interruptNum < TIMER_NUM_INTERRUPTS)
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           |  |  | 171 | 	{
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           |  |  | 172 | 		// set the interrupt function to run
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           |  |  | 173 | 		// the supplied user's function
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           |  |  | 174 | 		TimerIntFunc[interruptNum] = userFunc;
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           |  |  | 175 | 	}
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           |  |  | 176 | }
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           |  |  | 177 |   | 
        
           |  |  | 178 | void timerDetach(u08 interruptNum)
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           |  |  | 179 | {
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           |  |  | 180 | 	// make sure the interrupt number is within bounds
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           |  |  | 181 | 	if(interruptNum < TIMER_NUM_INTERRUPTS)
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           |  |  | 182 | 	{
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           |  |  | 183 | 		// set the interrupt function to run nothing
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           |  |  | 184 | 		TimerIntFunc[interruptNum] = 0;
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           |  |  | 185 | 	}
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           |  |  | 186 | }
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           |  |  | 187 | /*
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           |  |  | 188 | u32 timerMsToTics(u16 ms)
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           |  |  | 189 | {
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           |  |  | 190 | 	// calculate the prescaler division rate
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           |  |  | 191 | 	u16 prescaleDiv = 1<<(pgm_read_byte(TimerPrescaleFactor+inb(TCCR0)));
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           |  |  | 192 | 	// calculate the number of timer tics in x milliseconds
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           |  |  | 193 | 	return (ms*(F_CPU/(prescaleDiv*256)))/1000;
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           |  |  | 194 | }
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           |  |  | 195 |   | 
        
           |  |  | 196 | u16 timerTicsToMs(u32 tics)
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           |  |  | 197 | {
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           |  |  | 198 | 	// calculate the prescaler division rate
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           |  |  | 199 | 	u16 prescaleDiv = 1<<(pgm_read_byte(TimerPrescaleFactor+inb(TCCR0)));
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           |  |  | 200 | 	// calculate the number of milliseconds in x timer tics
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           |  |  | 201 | 	return (tics*1000*(prescaleDiv*256))/F_CPU;
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           |  |  | 202 | }
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           |  |  | 203 | */
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           |  |  | 204 | void timerPause(unsigned short pause_ms)
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           |  |  | 205 | {
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           |  |  | 206 | 	// pauses for exactly <pause_ms> number of milliseconds
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           |  |  | 207 | 	u08 timerThres;
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           |  |  | 208 | 	u32 ticRateHz;
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           |  |  | 209 | 	u32 pause;
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           |  |  | 210 |   | 
        
           |  |  | 211 | 	// capture current pause timer value
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           |  |  | 212 | 	timerThres = inb(TCNT0);
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           |  |  | 213 | 	// reset pause timer overflow count
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           |  |  | 214 | 	TimerPauseReg = 0;
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           |  |  | 215 | 	// calculate delay for [pause_ms] milliseconds
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           |  |  | 216 | 	// prescaler division = 1<<(pgm_read_byte(TimerPrescaleFactor+inb(TCCR0)))
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           |  |  | 217 | 	ticRateHz = F_CPU/timer0GetPrescaler();
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           |  |  | 218 | 	// precision management
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           |  |  | 219 | 	// prevent overflow and precision underflow
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           |  |  | 220 | 	//	-could add more conditions to improve accuracy
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           |  |  | 221 | 	if( ((ticRateHz < 429497) && (pause_ms <= 10000)) )
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           |  |  | 222 | 		pause = (pause_ms*ticRateHz)/1000;
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           |  |  | 223 | 	else
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           |  |  | 224 | 		pause = pause_ms*(ticRateHz/1000);
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           |  |  | 225 |   | 
        
           |  |  | 226 | 	// loop until time expires
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           |  |  | 227 | 	while( ((TimerPauseReg<<8) | inb(TCNT0)) < (pause+timerThres) )
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           |  |  | 228 | 	{
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           |  |  | 229 | 		if( TimerPauseReg < (pause>>8));
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           |  |  | 230 | 		{
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           |  |  | 231 | 			// save power by idling the processor
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           |  |  | 232 | 			set_sleep_mode(SLEEP_MODE_IDLE);
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           |  |  | 233 | 			sleep_mode();
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           |  |  | 234 | 		}
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           |  |  | 235 | 	}
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           |  |  | 236 |   | 
        
           |  |  | 237 | 	/* old inaccurate code, for reference
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           |  |  | 238 |   | 
        
           |  |  | 239 | 	// calculate delay for [pause_ms] milliseconds
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           |  |  | 240 | 	u16 prescaleDiv = 1<<(pgm_read_byte(TimerPrescaleFactor+inb(TCCR0)));
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           |  |  | 241 | 	u32 pause = (pause_ms*(F_CPU/(prescaleDiv*256)))/1000;
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           |  |  | 242 |   | 
        
           |  |  | 243 | 	TimerPauseReg = 0;
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           |  |  | 244 | 	while(TimerPauseReg < pause);
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           |  |  | 245 |   | 
        
           |  |  | 246 | 	*/
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           |  |  | 247 | }
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           |  |  | 248 |   | 
        
           |  |  | 249 | void timer0ClearOverflowCount(void)
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           |  |  | 250 | {
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           |  |  | 251 | 	// clear the timer overflow counter registers
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           |  |  | 252 | 	Timer0Reg0 = 0;	// initialize time registers
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           |  |  | 253 | }
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           |  |  | 254 |   | 
        
           |  |  | 255 | long timer0GetOverflowCount(void)
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           |  |  | 256 | {
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           |  |  | 257 | 	// return the current timer overflow count
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           |  |  | 258 | 	// (this is since the last timer0ClearOverflowCount() command was called)
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           |  |  | 259 | 	return Timer0Reg0;
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           |  |  | 260 | }
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           |  |  | 261 |   | 
        
           |  |  | 262 | #ifdef TCNT2	// support timer2 only if it exists
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           |  |  | 263 | void timer2ClearOverflowCount(void)
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           |  |  | 264 | {
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           |  |  | 265 | 	// clear the timer overflow counter registers
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           |  |  | 266 | 	Timer2Reg0 = 0;	// initialize time registers
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           |  |  | 267 | }
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           |  |  | 268 |   | 
        
           |  |  | 269 | long timer2GetOverflowCount(void)
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           |  |  | 270 | {
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           |  |  | 271 | 	// return the current timer overflow count
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           |  |  | 272 | 	// (this is since the last timer2ClearOverflowCount() command was called)
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           |  |  | 273 | 	return Timer2Reg0;
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           |  |  | 274 | }
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           |  |  | 275 | #endif
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           |  |  | 276 |   | 
        
           |  |  | 277 | void timer1PWMInit(u08 bitRes)
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           |  |  | 278 | {
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           |  |  | 279 | 	// configures timer1 for use with PWM output
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           |  |  | 280 | 	// on OC1A and OC1B pins
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           |  |  | 281 |   | 
        
           |  |  | 282 | 	// enable timer1 as 8,9,10bit PWM
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           |  |  | 283 | 	if(bitRes == 9)
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           |  |  | 284 | 	{	// 9bit mode
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           |  |  | 285 | 		sbi(TCCR1A,PWM11);
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           |  |  | 286 | 		cbi(TCCR1A,PWM10);
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           |  |  | 287 | 	}
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           |  |  | 288 | 	else if( bitRes == 10 )
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           |  |  | 289 | 	{	// 10bit mode
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           |  |  | 290 | 		sbi(TCCR1A,PWM11);
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           |  |  | 291 | 		sbi(TCCR1A,PWM10);
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           |  |  | 292 | 	}
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           |  |  | 293 | 	else
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           |  |  | 294 | 	{	// default 8bit mode
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           |  |  | 295 | 		cbi(TCCR1A,PWM11);
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           |  |  | 296 | 		sbi(TCCR1A,PWM10);
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           |  |  | 297 | 	}
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           |  |  | 298 |   | 
        
           |  |  | 299 | 	// clear output compare value A
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           |  |  | 300 | 	outb(OCR1AH, 0);
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           |  |  | 301 | 	outb(OCR1AL, 0);
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           |  |  | 302 | 	// clear output compare value B
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           |  |  | 303 | 	outb(OCR1BH, 0);
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           |  |  | 304 | 	outb(OCR1BL, 0);
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           |  |  | 305 | }
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           |  |  | 306 |   | 
        
           |  |  | 307 | #ifdef WGM10
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           |  |  | 308 | // include support for arbitrary top-count PWM
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           |  |  | 309 | // on new AVR processors that support it
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           |  |  | 310 | void timer1PWMInitICR(u16 topcount)
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           |  |  | 311 | {
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           |  |  | 312 | 	// set PWM mode with ICR top-count
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           |  |  | 313 | 	cbi(TCCR1A,WGM10);
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           |  |  | 314 | 	sbi(TCCR1A,WGM11);
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           |  |  | 315 | 	sbi(TCCR1B,WGM12);
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           |  |  | 316 | 	sbi(TCCR1B,WGM13);
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           |  |  | 317 |   | 
        
           |  |  | 318 | 	// set top count value
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           |  |  | 319 | 	ICR1 = topcount;
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           |  |  | 320 |   | 
        
           |  |  | 321 | 	// clear output compare value A
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           |  |  | 322 | 	OCR1A = 0;
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           |  |  | 323 | 	// clear output compare value B
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           |  |  | 324 | 	OCR1B = 0;
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           |  |  | 325 |   | 
        
           |  |  | 326 | }
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           |  |  | 327 | #endif
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           |  |  | 328 |   | 
        
           |  |  | 329 | void timer1PWMOff(void)
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           |  |  | 330 | {
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           |  |  | 331 | 	// turn off timer1 PWM mode
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           |  |  | 332 | 	cbi(TCCR1A,PWM11);
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           |  |  | 333 | 	cbi(TCCR1A,PWM10);
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           |  |  | 334 | 	// set PWM1A/B (OutputCompare action) to none
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           |  |  | 335 | 	timer1PWMAOff();
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           |  |  | 336 | 	timer1PWMBOff();
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           |  |  | 337 | }
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           |  |  | 338 |   | 
        
           |  |  | 339 | void timer1PWMAOn(void)
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           |  |  | 340 | {
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           |  |  | 341 | 	// turn on channel A (OC1A) PWM output
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           |  |  | 342 | 	// set OC1A as non-inverted PWM
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           |  |  | 343 | 	sbi(TCCR1A,COM1A1);
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           |  |  | 344 | 	cbi(TCCR1A,COM1A0);
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           |  |  | 345 | }
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           |  |  | 346 |   | 
        
           |  |  | 347 | void timer1PWMBOn(void)
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           |  |  | 348 | {
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           |  |  | 349 | 	// turn on channel B (OC1B) PWM output
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           |  |  | 350 | 	// set OC1B as non-inverted PWM
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           |  |  | 351 | 	sbi(TCCR1A,COM1B1);
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           |  |  | 352 | 	cbi(TCCR1A,COM1B0);
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           |  |  | 353 | }
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           |  |  | 354 |   | 
        
           |  |  | 355 | void timer1PWMAOff(void)
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           |  |  | 356 | {
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           |  |  | 357 | 	// turn off channel A (OC1A) PWM output
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           |  |  | 358 | 	// set OC1A (OutputCompare action) to none
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           |  |  | 359 | 	cbi(TCCR1A,COM1A1);
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           |  |  | 360 | 	cbi(TCCR1A,COM1A0);
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           |  |  | 361 | }
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           |  |  | 362 |   | 
        
           |  |  | 363 | void timer1PWMBOff(void)
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           |  |  | 364 | {
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           |  |  | 365 | 	// turn off channel B (OC1B) PWM output
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           |  |  | 366 | 	// set OC1B (OutputCompare action) to none
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           |  |  | 367 | 	cbi(TCCR1A,COM1B1);
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           |  |  | 368 | 	cbi(TCCR1A,COM1B0);
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           |  |  | 369 | }
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           |  |  | 370 |   | 
        
           |  |  | 371 | void timer1PWMASet(u16 pwmDuty)
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           |  |  | 372 | {
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           |  |  | 373 | 	// set PWM (output compare) duty for channel A
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           |  |  | 374 | 	// this PWM output is generated on OC1A pin
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           |  |  | 375 | 	// NOTE:	pwmDuty should be in the range 0-255 for 8bit PWM
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           |  |  | 376 | 	//			pwmDuty should be in the range 0-511 for 9bit PWM
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           |  |  | 377 | 	//			pwmDuty should be in the range 0-1023 for 10bit PWM
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           |  |  | 378 | 	//outp( (pwmDuty>>8), OCR1AH);		// set the high 8bits of OCR1A
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           |  |  | 379 | 	//outp( (pwmDuty&0x00FF), OCR1AL);	// set the low 8bits of OCR1A
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           |  |  | 380 | 	OCR1A = pwmDuty;
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           |  |  | 381 | }
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           |  |  | 382 |   | 
        
           |  |  | 383 | void timer1PWMBSet(u16 pwmDuty)
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           |  |  | 384 | {
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           |  |  | 385 | 	// set PWM (output compare) duty for channel B
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           |  |  | 386 | 	// this PWM output is generated on OC1B pin
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           |  |  | 387 | 	// NOTE:	pwmDuty should be in the range 0-255 for 8bit PWM
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           |  |  | 388 | 	//			pwmDuty should be in the range 0-511 for 9bit PWM
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           |  |  | 389 | 	//			pwmDuty should be in the range 0-1023 for 10bit PWM
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           |  |  | 390 | 	//outp( (pwmDuty>>8), OCR1BH);		// set the high 8bits of OCR1B
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           |  |  | 391 | 	//outp( (pwmDuty&0x00FF), OCR1BL);	// set the low 8bits of OCR1B
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           |  |  | 392 | 	OCR1B = pwmDuty;
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           |  |  | 393 | }
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           |  |  | 394 |   | 
        
           |  |  | 395 | //! Interrupt handler for tcnt0 overflow interrupt
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           |  |  | 396 | TIMER_INTERRUPT_HANDLER(SIG_OVERFLOW0)
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           |  |  | 397 | {
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           |  |  | 398 | 	Timer0Reg0++;			// increment low-order counter
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           |  |  | 399 |   | 
        
           |  |  | 400 | 	// increment pause counter
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           |  |  | 401 | 	TimerPauseReg++;
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           |  |  | 402 |   | 
        
           |  |  | 403 | 	// if a user function is defined, execute it too
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           |  |  | 404 | 	if(TimerIntFunc[TIMER0OVERFLOW_INT])
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           |  |  | 405 | 		TimerIntFunc[TIMER0OVERFLOW_INT]();
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           |  |  | 406 | }
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           |  |  | 407 |   | 
        
           |  |  | 408 | //! Interrupt handler for tcnt1 overflow interrupt
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           |  |  | 409 | TIMER_INTERRUPT_HANDLER(SIG_OVERFLOW1)
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           |  |  | 410 | {
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           |  |  | 411 | 	// if a user function is defined, execute it
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           |  |  | 412 | 	if(TimerIntFunc[TIMER1OVERFLOW_INT])
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           |  |  | 413 | 		TimerIntFunc[TIMER1OVERFLOW_INT]();
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           |  |  | 414 | }
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           |  |  | 415 |   | 
        
           |  |  | 416 | #ifdef TCNT2	// support timer2 only if it exists
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           |  |  | 417 | //! Interrupt handler for tcnt2 overflow interrupt
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           |  |  | 418 | TIMER_INTERRUPT_HANDLER(SIG_OVERFLOW2)
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           |  |  | 419 | {
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           |  |  | 420 | 	Timer2Reg0++;			// increment low-order counter
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           |  |  | 421 |   | 
        
           |  |  | 422 | 	// if a user function is defined, execute it
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           |  |  | 423 | 	if(TimerIntFunc[TIMER2OVERFLOW_INT])
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           |  |  | 424 | 		TimerIntFunc[TIMER2OVERFLOW_INT]();
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           |  |  | 425 | }
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           |  |  | 426 | #endif
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           |  |  | 427 |   | 
        
           |  |  | 428 | #ifdef OCR0
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           |  |  | 429 | // include support for Output Compare 0 for new AVR processors that support it
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           |  |  | 430 | //! Interrupt handler for OutputCompare0 match (OC0) interrupt
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           |  |  | 431 | TIMER_INTERRUPT_HANDLER(SIG_OUTPUT_COMPARE0)
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           |  |  | 432 | {
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           |  |  | 433 | 	// if a user function is defined, execute it
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           |  |  | 434 | 	if(TimerIntFunc[TIMER0OUTCOMPARE_INT])
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           |  |  | 435 | 		TimerIntFunc[TIMER0OUTCOMPARE_INT]();
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           |  |  | 436 | }
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           |  |  | 437 | #endif
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           |  |  | 438 |   | 
        
           |  |  | 439 | //! Interrupt handler for CutputCompare1A match (OC1A) interrupt
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           |  |  | 440 | TIMER_INTERRUPT_HANDLER(SIG_OUTPUT_COMPARE1A)
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           |  |  | 441 | {
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           |  |  | 442 | 	// if a user function is defined, execute it
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           |  |  | 443 | 	if(TimerIntFunc[TIMER1OUTCOMPAREA_INT])
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           |  |  | 444 | 		TimerIntFunc[TIMER1OUTCOMPAREA_INT]();
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           |  |  | 445 | }
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           |  |  | 446 |   | 
        
           |  |  | 447 | //! Interrupt handler for OutputCompare1B match (OC1B) interrupt
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           |  |  | 448 | TIMER_INTERRUPT_HANDLER(SIG_OUTPUT_COMPARE1B)
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           |  |  | 449 | {
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           |  |  | 450 | 	// if a user function is defined, execute it
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           |  |  | 451 | 	if(TimerIntFunc[TIMER1OUTCOMPAREB_INT])
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           |  |  | 452 | 		TimerIntFunc[TIMER1OUTCOMPAREB_INT]();
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           |  |  | 453 | }
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           |  |  | 454 |   | 
        
           |  |  | 455 | //! Interrupt handler for InputCapture1 (IC1) interrupt
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           |  |  | 456 | TIMER_INTERRUPT_HANDLER(SIG_INPUT_CAPTURE1)
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           |  |  | 457 | {
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           |  |  | 458 | 	// if a user function is defined, execute it
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           |  |  | 459 | 	if(TimerIntFunc[TIMER1INPUTCAPTURE_INT])
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           |  |  | 460 | 		TimerIntFunc[TIMER1INPUTCAPTURE_INT]();
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           |  |  | 461 | }
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           |  |  | 462 |   | 
        
           |  |  | 463 | //! Interrupt handler for OutputCompare2 match (OC2) interrupt
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           |  |  | 464 | TIMER_INTERRUPT_HANDLER(SIG_OUTPUT_COMPARE2)
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           |  |  | 465 | {
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           |  |  | 466 | 	// if a user function is defined, execute it
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           |  |  | 467 | 	if(TimerIntFunc[TIMER2OUTCOMPARE_INT])
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           |  |  | 468 | 		TimerIntFunc[TIMER2OUTCOMPARE_INT]();
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           |  |  | 469 | }
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