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#include <avr/io.h>
#include <avr/pgmspace.h>
#include <avr/interrupt.h>
#define F_CPU 12000000
#include <util/delay.h>
#include <avr/wdt.h>
#include <usbdrv.h>
#include <stdlib.h>
#include <string.h>
#include "config.h"
#include "hiddesc.h"
void doInt(void);
uint8_t getKey(void);
volatile uint8_t pcIntCurr = 0;
volatile uint8_t pcIntLast = 0;
volatile uint8_t pcIntMask = 0;
volatile uint8_t rot_stat = 0;
volatile uint8_t rot_sent = 0;
struct{
int data1; // X axis
int data2; // Y axis
union {
uint8_t data3; // Rotaries
struct {
uint8_t rot1a:1;
uint8_t rot1b:1;
uint8_t rot2a:1;
uint8_t rot2b:1;
};
};
union {
uint16_t data4; // 16 buttons
struct {
uint8_t b00:1;
uint8_t b01:1;
uint8_t b02:1;
uint8_t b03:1;
uint8_t b04:1;
uint8_t b05:1;
uint8_t b06:1;
uint8_t b07:1;
uint8_t b08:1;
uint8_t b09:1;
uint8_t b10:1;
uint8_t b11:1;
uint8_t b12:1;
uint8_t b13:1;
uint8_t b14:1;
uint8_t b15:1;
};
};
} report;
usbMsgLen_t usbFunctionSetup(uchar data[8]) {
usbRequest_t *rq = (void *)data;
if((rq->bmRequestType & USBRQ_TYPE_MASK) == USBRQ_TYPE_CLASS) {
if(rq->bRequest == USBRQ_HID_GET_REPORT) {
return sizeof(report);
} else if(rq->bRequest == USBRQ_HID_GET_IDLE) {
return 1;
}
}
return 0;
}
void hadUsbReset(void) {
}
int main(void) {
ACSR |= (1<<ACD); // Disable analog comparator
/*
DDR : 1 = Output, 0 = Input
PORT: 1 = Pullup for Input, otherwise set output
PIN : Read input pin
*/
/*
PB0 - Input - Keypad 5
PB1 - Input - Keypad 6
PB2 - Input - Keypad 7
PB3 - Input - Keypad 8
PB4 - Input, Pullup - Function select
*/
DDRB = 0B00000000;
PORTB = 0B00010000;
/*
PD0 - Input, Pullup, PCINT16 - Rotary 1a
PD1 - Input, Pullup, PCINT17 - Rotary 1b
PD4 - Output - Keypad 1
PD5 - Output - Keypad 2
PD6 - Output - Keypad 3
PD7 - Output - Keypad 4
*/
DDRD = 0B11110000;
PORTD = 0B00000011;
PCMSK2 |= (( 1 << PCINT16 ) | ( 1 << PCINT17 )); //enable encoder pins interrupt sources
PCICR |= ( 1 << PCIE2 ); //enable pin change interupts
// Timers not used for the moment
// Setup timer0 - Enable overflow, 8 times prescaler
//TIMSK0 = (1<<TOIE0); // Eable timer overflow for Timer0
//TCNT0 = 0x00; // Set Timer0 to 0
//TCCR0B = (1<< CS01) ; // /8 prescaler
usbDeviceDisconnect(); /* enforce re-enumeration, do this while interrupts are disabled! */
_delay_ms(500);
usbDeviceConnect();
wdt_enable(WDTO_1S);
usbInit();
sei();
for(;;) {
wdt_reset();
usbPoll();
if(usbInterruptIsReady()){
report.data1 = 0; // Center X
report.data2 = 0; // Center Y
report.data4 |= (1 << getKey());
// Now work out what rotary to send, if any
// Also record if we sent a positive response,
// so we can send a '0' next time (if selected on PD4)
if (rot_stat == 0x01 && rot_sent == 0) {
report.rot1a = 1;
rot_sent = 1;
} else if (rot_stat == 0x02 && rot_sent == 0) {
report.rot1b = 1;
rot_sent = 1;
} else {
rot_sent = 0;
}
// Reset our stat so ready for next turn
rot_stat = 0;
// If our function select is set, dont bother
// sending a 'o' between consequtive 1's.
if (rbi(PINB, PB4))
rot_sent = 0;
/* called after every poll of the interrupt endpoint */
usbSetInterrupt(&report, sizeof(report));
}
}
}
uint8_t getKey() {
uint8_t col, row = 0;
uint8_t key = 0;
uint8_t n = 0;
for (col=4; col<=7; col++) {
sbi(PORTD, col);
for (row=0; row<=3; row++); {
if (rbi(PINB, row))
key = n;
n++;
}
cbi(PORTD, col);
}
return key;
}
void doInt() {
// If rot_stat is not 0, we havn't sent
// our last results yet. Skip this click.
if (rot_stat != 0) {
pcIntMask = 0;
return;
}
// Check which pin caused the interrupt. If they both
// equal 0, the pin that interrupted is the direction
if (rbi(pcIntCurr, PCINT17) == 0
&& rbi(pcIntCurr, PCINT17) == 0
&& rbi(pcIntMask, PCINT16) ) {
rot_stat = 1;
} else if (rbi(pcIntCurr, PCINT16) == 0
&& rbi(pcIntCurr, PCINT17) == 0
&& rbi(pcIntMask, PCINT17) ) {
rot_stat = 2;
}
// Clear the mask so we know we've delth with it
pcIntMask = 0;
}
/* Not used for the moment
ISR(TIMER0_OVF_vect) {
timer0_ovf++;
}
*/
ISR(PCINT2_vect)
{
// Save the state and work out which pin caused
// the interrupt to occur
pcIntCurr = PIND;
pcIntMask = pcIntCurr ^ pcIntLast;
pcIntLast = pcIntCurr;
doInt();
}