working with leds now
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@ -7,5 +7,5 @@ project(slider_firmware C)
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add_subdirectory(SliderCommunication)
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add_subdirectory(SliderCommunication)
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add_avr_executable(slider_firmware led.c main.c adc.c button.c)
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add_avr_executable(slider_firmware led.c main.c adc.c button.c comm.c)
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target_link_libraries(slider_firmware DSPLAB_SliderCommunication)
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target_link_libraries(slider_firmware DSPLAB_SliderCommunication)
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@ -16,21 +16,9 @@ adc_t adc;
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/* adc driver */
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/* adc driver */
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void adc_init(uint8_t * channels) {
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void adc_init(uint8_t * channels) {
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adc.current_channel = 0;
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// adc.current_channel = 0;
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adc.channel_map = channels;
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// adc.channel_map = channels;
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ADMUX = channels[0];
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ADMUX = channels[0];
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ADCSRA = (1<<ADATE) | (1<<ADEN) | 7; // enable adc, maximum prescaler value
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ADCSRA = /*(1<<ADATE) | */ (1<<ADEN); // enable adc, maximum prescaler value
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}
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}
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ISR(ADC_vect) {
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adc.buffer[adc.current_channel] = ADC;
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adc.current_channel++;
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if (adc.current_channel == ADC_BUFFER_SIZE) {
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adc.current_channel = 0;
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}
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ADMUX = adc.channel_map[adc.current_channel];
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}
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@ -19,10 +19,11 @@ typedef struct {
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} adc_buffer_t;
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} adc_buffer_t;
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typedef struct adc {
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typedef struct adc {
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adc_sample_t buffer[ADC_BUFFER_SIZE];
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//adc_sample_t buffer[ADC_BUFFER_SIZE];
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volatile uint8_t current_channel;
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/*volatile uint8_t current_channel;
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uint8_t * channel_map;
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uint8_t * channel_map;
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*/
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} adc_t;
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} adc_t;
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// the adc instance
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// the adc instance
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@ -30,7 +31,9 @@ extern adc_t adc;
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void adc_init(uint8_t * channels);
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void adc_init(uint8_t * channels);
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#define adc_start() ADCSRA |= (1<<ADIE) | (1<<ADSC)
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#define adc_start() do { ADCSRA |= (1<<ADSC); } while(0)
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#define adc_stop() ADCSRA &= ~(1<<ADIE)
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#define adc_finished() (ADCSRA & (1<<ADIF))
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#define adc_set_channel(channel) do { ADMUX = channel; } while(0)
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#define adc_value() ADC
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#endif /* ADC_H_ */
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#endif /* ADC_H_ */
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@ -25,7 +25,7 @@ button_state_t button_is_pressed()
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ISR(PCINT1_vect) {
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ISR(PCINT1_vect) {
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if(!(BUTTON_REG&(1<<BUTTON_PIN))) {
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if(!(BUTTON_REG&(1<<BUTTON_PIN))) {
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app.state.state.button = !app.state.state.button;
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app.button = !app.button;
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led_toggle();
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led_toggle();
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}
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}
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}
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}
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14
firmware/slider/comm.c
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14
firmware/slider/comm.c
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@ -0,0 +1,14 @@
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/*
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* comm.c
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*
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* Created on: 13.02.2019
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* Author: julian
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*/
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#include <avr/io.h>
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void comm_init()
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{
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DDRA |= (1<<PA5); // setup MOSI as output
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USICR = (1<<USIWM0)|(1<<USICS1);
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}
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13
firmware/slider/comm.h
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13
firmware/slider/comm.h
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@ -0,0 +1,13 @@
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/*
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* comm.h
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*
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* Created on: 13.02.2019
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* Author: julian
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*/
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#ifndef COMM_H_
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#define COMM_H_
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void comm_init();
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#endif /* COMM_H_ */
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@ -4,6 +4,7 @@
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#include "led.h"
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#include "led.h"
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#include "button.h"
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#include "button.h"
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#include "main.h"
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#include "main.h"
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#include "comm.h"
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/* Communication driver */
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/* Communication driver */
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#define SLAVE_ENABLE_DDR DDRA
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#define SLAVE_ENABLE_DDR DDRA
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@ -12,16 +13,12 @@
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#include <interface.h>
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#include <interface.h>
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#include "main.h"
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void comm_init();
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// the public instance of the app buffer
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// the public instance of the app buffer
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struct app app = {};
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struct app app = {};
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uint8_t channel_map[ADC_BUFFER_SIZE] = {
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uint8_t channel_map[ADC_BUFFER_SIZE] = {
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0,
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1,
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1,
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0,
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2,
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2,
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3,
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3,
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7
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7
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@ -49,12 +46,8 @@ void init()
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sei();
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sei();
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}
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}
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void comm_init()
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{
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DDRA |= (1<<PA5); // setup MOSI as output
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USICR = (1<<USIWM0)|(1<<USICS1);
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}
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// All states of the transaction state machine
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volatile enum {
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volatile enum {
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COMM_WAIT = 0,
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COMM_WAIT = 0,
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COMM_SEND_START ,
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COMM_SEND_START ,
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@ -69,25 +62,33 @@ static inline void comm_service()
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if (USISR & (1<<USIOIF))
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if (USISR & (1<<USIOIF))
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{
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{
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led_on();
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cli();
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cli();
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switch(comm_state)
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switch(comm_state)
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{
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{
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case COMM_WAIT:
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case COMM_WAIT:
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// only trigger on start of transmission
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if (IS_EOM(USIDR)) {
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if (IS_EOM(USIDR)) {
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// pass package through
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USIDR &= ~0x80;
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USIDR &= ~0x80;
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comm_state = COMM_SEND_START;
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comm_state = COMM_SEND_START;
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adc_stop();
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// sample first channel
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adc_start();
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}
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}
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break;
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break;
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case COMM_SEND_START:
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case COMM_SEND_START:
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temp = adc.buffer[count];
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// transmit LSByte of value
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temp = adc_value();
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// sample next channel
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adc_set_channel(channel_map[count+1]);
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adc_start();
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USIDR = temp & 0x7F;
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USIDR = temp & 0x7F;
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comm_state = COMM_SEND_WAIT;
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comm_state = COMM_SEND_WAIT;
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break;
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break;
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case COMM_SEND_WAIT:
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case COMM_SEND_WAIT:
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// transmit MSByte
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USIDR = (temp>>7)&0x7F;
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USIDR = (temp>>7)&0x7F;
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if (++count == ADC_BUFFER_SIZE) {
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if (++count == ADC_BUFFER_SIZE) {
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@ -97,20 +98,23 @@ static inline void comm_service()
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}
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}
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break;
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break;
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case COMM_SEND_END:
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case COMM_SEND_END:
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// cleanup the transaction
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count = 0;
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count = 0;
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USIDR = app.state.state.button | 0x80;
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// transmit the button state and end of transaction
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USIDR = app.button | 0x80;
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default:
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default:
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comm_state = COMM_WAIT;
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comm_state = COMM_WAIT;
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adc_start();
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// reset channel of adc back to 0
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adc_set_channel(channel_map[0]);
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break;
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break;
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}
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}
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USISR |= (1<<USIOIF);
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USISR |= (1<<USIOIF);
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sei();
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sei();
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led_off();
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}
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}
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}
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}
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#include <util/delay.h>
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#include <util/delay.h>
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// little debug helper function
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// little debug helper function
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#include <slave/slave.h>
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#include <slave/slave.h>
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struct app {
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struct app {
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slave_t state;
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volatile uint8_t button;
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};
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};
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extern struct app app;
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extern struct app app;
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#endif
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#endif
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