small changes
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f7270fd437
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@ -20,13 +20,6 @@ static inline void adc_next() {
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if (!adc.current_channel) {
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adc.current_sample = adc.buffer.ptr-1;
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// update app state (remap channels)
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app.state.state.slider = adc.buffer.ptr[4];
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app.state.state.poti[0] = adc.buffer.ptr[3];
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app.state.state.poti[1] = adc.buffer.ptr[2];
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app.state.state.poti[2] = adc.buffer.ptr[0];
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app.state.state.poti[3] = adc.buffer.ptr[1];
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}
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} while(!(adc.channel_mask & (1<<adc.current_channel)));
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@ -55,7 +48,7 @@ void adc_init(adc_buffer_t buffer, uint8_t mask) {
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}
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ADMUX = 0;
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ADCSRA = (1<<ADATE) | (1<<ADEN) ; // enable adc, maximum prescaler value
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ADCSRA = (1<<ADATE) | (1<<ADEN) | 5 ; // enable adc, maximum prescaler value
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}
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void adc_start() {
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@ -66,8 +59,9 @@ void adc_stop( ){
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ADCSRA &= ~(1<<ADIE);
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}
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#include "led.h"
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ISR(ADC_vect) {
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*adc.current_sample = ADC;
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**adc.current_sample = ADC;
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adc_next();
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}
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@ -13,7 +13,7 @@
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typedef uint16_t adc_sample_t;
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typedef struct {
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adc_sample_t * ptr;
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adc_sample_t ** ptr;
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uint8_t size;
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} adc_buffer_t;
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@ -21,7 +21,7 @@ typedef struct adc {
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adc_buffer_t buffer;
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uint8_t current_channel;
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adc_sample_t * current_sample;
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adc_sample_t ** current_sample;
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uint8_t channel_mask;
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} adc_t;
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@ -13,35 +13,71 @@
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#include <interface.h>
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typedef struct {
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byte_t * buffer_start, * buffer_end;
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volatile byte_t * read;
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volatile byte_t * write;
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volatile byte_t count;
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iface_t iface;
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} comm_t;
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comm_t comm;
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void comm_write(iface_t * iface, byte_t byte) {
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// disable interrupt (temporarily)
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uint8_t temp = USICR;
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USICR &= ~(1<<USIOIE);
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// write data register
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USIDR = byte;
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// wait for buffer overflow
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while(!(USICR&(1<<USIOIE))) {}
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// restore control register
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USICR = temp;
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if ((comm.write == comm.read) && comm.count) {
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// write overflow
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return;
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}
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void comm_init() {
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*comm.write = byte;
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++comm.count;
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// advance write pointer
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if ((++comm.write) >= comm.buffer_end) {
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comm.write = comm.buffer_start;
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}
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}
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inline byte_t comm_read() {
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if (!comm.count)
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return 0x00;
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byte_t result = *comm.read;
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--comm.count;
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if ((++comm.read) >= comm.buffer_end) {
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comm.read = comm.buffer_start;
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}
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return result;
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}
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byte_t comm_buffer[10];
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void comm_init()
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{
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comm.buffer_start = comm_buffer;
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comm.buffer_end = comm_buffer + sizeof(comm_buffer);
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// reset buffer
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comm.write = comm.buffer_start;
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comm.read = comm.buffer_start;
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comm.count = 0;
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// TODO: setup pins
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DDRA |= (1<<PA5); // setup MOSI as output
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// TODO: setup USART in synchronous mode
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USICR = (1<<USIWM0)|(1<<USICS1);
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// init interface
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comm.iface.write = comm_write;
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comm.iface.on_read = 0;
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}
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void comm_start() {
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void comm_start()
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{
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// don't start without interrupt handler
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if (!comm.iface.on_read)
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return;
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@ -50,19 +86,18 @@ void comm_start() {
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USICR |= (1<<USIOIE);
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}
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ISR(USI_OVF_vect) {
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ISR(USI_OVF_vect)
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{
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cli();
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// write buffer out if there is data to be written
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//if (!comm.count) {
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// call interrupt handler
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comm.iface.on_read(&comm.iface, USIBR, comm.iface.callback_data);
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}
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//comm.iface.on_read(&comm.iface, USIDR, comm.iface.callback_data);
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//}
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void on_read(iface_t * sender, byte_t b) {
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if (!IS_EOM(b)) {
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sender->write(sender, b);
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return;
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}
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// strip EOM message
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sender->write(sender, b&0x7F);
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USIDR = 0x02;
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sei();
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//USIDR = comm_read();
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}
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#include "main.h"
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@ -70,8 +105,18 @@ void on_read(iface_t * sender, byte_t b) {
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// the public instance of the app buffer
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struct app app = {};
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adc_sample_t * channel_map[] = {
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// update app state (remap channels)
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&app.state.state.poti[2],
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&app.state.state.poti[3],
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&app.state.state.poti[1],
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&app.state.state.poti[0],
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&app.state.state.slider
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};
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// initalizes the application modules
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void init() {
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void init()
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{
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// init button module (making the button light up on press)
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// module also updates app.buffer.button for us
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button_init();
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@ -80,8 +125,8 @@ void init() {
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// will sample 0x8F (CHANNEL 8 and 0-3)
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// this module also updates app.buffer.poti and slider for us
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adc_init((adc_buffer_t){
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.ptr = app.adc_buffer,
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.size = 5,
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.ptr = channel_map,
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.size = sizeof(channel_map),
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}, 0x8F);
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// init communication module
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@ -98,21 +143,22 @@ void init() {
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sei();
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}
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#include <util/delay.h>
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// little debug helper function
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// FIXME: remove when not needed
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void delay(uint16_t d) {
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while(d--) {
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__asm("nop");
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void delay(uint16_t d)
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{
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while(d--)
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{
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_delay_ms(1);
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}
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}
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int main() {
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int main()
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{
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init();
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// start relevant periphials
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adc_start();
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while(1) {
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// nothing to do here, the application is interrupt-driven
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}
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struct app {
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slave_t state;
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adc_sample_t adc_buffer[5];
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};
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extern struct app app;
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