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#include <inttypes.h>
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#include <inttypes.h>
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#include <avr/interrupt.h>
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#include <avr/interrupt.h>
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#include <stdio.h>
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#include <stdio.h>
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#include <string.h>
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#include <string.h>
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#include <config.h> // All configuration parameters
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#include <config.h> // All configuration parameters
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#include <bios.h>   // BIOS interface declarations, including CAN structure and ID defines.
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#include <bios.h>   // BIOS interface declarations, including CAN structure and ID defines.
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//#include <drivers/uart/serial.h>
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//#include <drivers/uart/serial.h>
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#include <drivers/timer/timebase.h>
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#include <drivers/timer/timebase.h>
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#include <drivers/ir/receiver/irreceiver.h>
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#include <drivers/ir/receiver/irreceiver.h>
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#define APP_TYPE    0xf010
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#define APP_TYPE    CAN_APPTYPES_IRRECEIVER
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#define APP_VERSION 0x0001
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#define APP_VERSION 0x0001
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-
 
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#define CAN_IR 0x12
-
 
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#define STATE_IDLE      0
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#define STATE_IDLE      0
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#define STATE_IR_REPEAT 1
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#define STATE_IR_REPEAT 1
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// A simple message "queue", with space for one message only.
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// A simple message "queue", with space for one message only.
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// These are declared volatile to tell the compiler not to optimize away accesses.
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// These are declared volatile to tell the compiler not to optimize away accesses.
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volatile Can_Message_t rxMsg; // Message storage
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volatile Can_Message_t rxMsg; // Message storage
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volatile uint8_t rxMsgFull;   // Synchronization flag
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volatile uint8_t rxMsgFull;   // Synchronization flag
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// CAN message reception callback.
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// CAN message reception callback.
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// This function runs with interrupts disabled, keep it as short as possible.
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// This function runs with interrupts disabled, keep it as short as possible.
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void can_receive(Can_Message_t *msg) {
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void can_receive(Can_Message_t *msg) {
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    if (!rxMsgFull) {
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    if (!rxMsgFull) {
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        memcpy((void*)&rxMsg, msg, sizeof(rxMsg));
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        memcpy((void*)&rxMsg, msg, sizeof(rxMsg));
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        rxMsgFull = 1;
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        rxMsgFull = 1;
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    }
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    }
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}
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}
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int main(void)
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int main(void)
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{
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{
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    // Enable interrupts as early as possible
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    // Enable interrupts as early as possible
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    sei();
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    sei();
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    Timebase_Init();
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    Timebase_Init();
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    //Serial_Init();
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    //Serial_Init();
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    Can_Message_t txMsg;
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    Can_Message_t txMsg;
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    txMsg.Id = (CAN_NMT_APP_START << CAN_SHIFT_NMT_TYPE) | (NODE_ID << CAN_SHIFT_NMT_SID);
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    txMsg.Id = (CAN_NMT_APP_START << CAN_SHIFT_NMT_TYPE) | (NODE_ID << CAN_SHIFT_NMT_SID);
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    txMsg.DataLength = 4;
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    txMsg.DataLength = 4;
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    txMsg.RemoteFlag = 0;
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    txMsg.RemoteFlag = 0;
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    txMsg.ExtendedFlag = 1;
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    txMsg.ExtendedFlag = 1;
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    txMsg.Data.words[0] = APP_TYPE;
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    txMsg.Data.words[0] = APP_TYPE;
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    txMsg.Data.words[1] = APP_VERSION;
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    txMsg.Data.words[1] = APP_VERSION;
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    // Set up callback for CAN reception, this is optional if only sending is required.
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    // Set up callback for CAN reception, this is optional if only sending is required.
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    BIOS_CanCallback = &can_receive;
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    BIOS_CanCallback = &can_receive;
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    // Send CAN_NMT_APP_START
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    // Send CAN_NMT_APP_START
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    BIOS_CanSend(&txMsg);
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    BIOS_CanSend(&txMsg);
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    txMsg.Id = ((CAN_SNS << CAN_SHIFT_CLASS) | (SNS_FUNCC_CAN_IR << CAN_SHIFT_SNS_FUNCC) | (NODE_ID << CAN_SHIFT_SNS_SID));
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    txMsg.Id = ((CAN_SNS << CAN_SHIFT_CLASS) | (SNS_FUNCC_CAN_IR << CAN_SHIFT_SNS_FUNCC) | (NODE_ID << CAN_SHIFT_SNS_SID));
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    //printf("AVR Test Application\n");
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    //printf("AVR Test Application\n");
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    //printf("Using AVR BIOS version %x\n", BIOS_VERSION);
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    //printf("Using AVR BIOS version %x\n", BIOS_VERSION);
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    //txMsg.Id = (CAN_SNS << CAN_SHIFT_CLASS) | ((CAN_IR & CAN_MASK_SNS_FUNCC) << CAN_SHIFT_SNS_FUNCC) | (NODE_ID << CAN_SHIFT_SNS_SID);
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    //txMsg.Id = (CAN_SNS << CAN_SHIFT_CLASS) | ((CAN_IR & CAN_MASK_SNS_FUNCC) << CAN_SHIFT_SNS_FUNCC) | (NODE_ID << CAN_SHIFT_SNS_SID);
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    //txMsg.Data.dwords[0] = 0x01020304;
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    //txMsg.Data.dwords[0] = 0x01020304;
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    //txMsg.DataLength = 4;
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    //txMsg.DataLength = 4;
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    IRDDR &= ~(1<<IRBIT);
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    IRDDR &= ~(1<<IRBIT);
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    unsigned long time = Timebase_CurrentTime();
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    unsigned long time = Timebase_CurrentTime();
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    unsigned long irTimeoutTime;
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    unsigned long irTimeoutTime;
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    uint8_t ir_protocol, ir_address, ir_command;
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    uint8_t ir_protocol, ir_address, ir_command;
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    uint8_t state = STATE_IDLE;
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    uint8_t state = STATE_IDLE;
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    while (1) {
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    while (1) {
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        time = Timebase_CurrentTime();
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        time = Timebase_CurrentTime();
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        if (state == STATE_IDLE) {
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        if (state == STATE_IDLE) {
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            if (checkIr(&ir_protocol, &ir_address, &ir_command) == IR_OK) {
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            if (checkIr(&ir_protocol, &ir_address, &ir_command) == IR_OK) {
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                txMsg.Data.bytes[0] = 0x00;
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                txMsg.Data.bytes[0] = 0x00;
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                txMsg.Data.bytes[1] = ir_protocol;
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                txMsg.Data.bytes[1] = ir_protocol;
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                txMsg.Data.bytes[2] = ir_address;
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                txMsg.Data.bytes[2] = ir_address;
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                txMsg.Data.bytes[3] = ir_command;
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                txMsg.Data.bytes[3] = ir_command;
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                txMsg.DataLength = 4;
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                txMsg.DataLength = 4;
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                BIOS_CanSend(&txMsg);
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                BIOS_CanSend(&txMsg);
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                irTimeoutTime = Timebase_CurrentTime();
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                irTimeoutTime = Timebase_CurrentTime();
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                state = STATE_IR_REPEAT;
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                state = STATE_IR_REPEAT;
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            }
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            }
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        } else if (state == STATE_IR_REPEAT) {
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        } else if (state == STATE_IR_REPEAT) {
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            //kolla efter ny ir, om ingen ny ir och timeout så sätt state till IDLE
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            //kolla efter ny ir, om ingen ny ir och timeout så sätt state till IDLE
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            if (time - irTimeoutTime >= 105) {      //getLastProtoTimeout()
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            if (time - irTimeoutTime >= 105) {      //getLastProtoTimeout()
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                state = STATE_IDLE;
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                state = STATE_IDLE;
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                txMsg.Data.bytes[0] = 0x0f;
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                txMsg.Data.bytes[0] = 0x0f;
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                BIOS_CanSend(&txMsg);
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                BIOS_CanSend(&txMsg);
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            }
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            }
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            if (checkIrIdle() == IR_OK) {       //funktion som borde finnas i irreceiver.c
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            if (checkIrIdle() == IR_OK) {       //funktion som borde finnas i irreceiver.c
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                irTimeoutTime = Timebase_CurrentTime();
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                irTimeoutTime = Timebase_CurrentTime();
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            }
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            }
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        }
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        }
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        if (rxMsgFull) {
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        if (rxMsgFull) {
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            // Flush the received message
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            // Flush the received message
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            rxMsgFull = 0; //  
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            rxMsgFull = 0; //  
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        }
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        }
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    }
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    }
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    return 0;
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    return 0;
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}
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}
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