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/*
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* File: main.c
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* Author: Enzo Niro
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* Revision history : 2.0
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*
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* Created on August 28, 2024, 2:39 PM
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*/
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#define F_CPU 10000000UL |
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#include <xc.h> |
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#include <stdio.h> |
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#include <string.h> |
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#include <stdint.h> |
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#include <stdbool.h> |
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#include <util/delay.h> |
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#include <avr/interrupt.h> |
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#include <avr/eeprom.h> |
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#include "factory.h" |
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#include "defValues.h" |
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#include "configuration.h" |
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#include "pins.h" |
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#include "moduleCmds.h" |
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/*
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TODO list :
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* ADC for battery
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* Test setBluetoothConfiguration()
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*/
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////////////////////////////////////////////
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//Prototypes & Macros
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//USART functions
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void writeCommand(const uint8_t *buf, uint8_t n); //Write a buffer on usart 1 port |
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void readBuffer(uint8_t *cfg, uint8_t n);
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void usart0_write_byte(uint8_t b); //send a single byte to usart 0 port |
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void usart1_write_byte(uint8_t b); //send a single byte to usart 1 port |
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uint8_t usart0_read_byte(void); //read a single byte from usart 0 port |
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uint8_t usart1_read_byte(void); //read a single byte from usart 1 port |
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uint8_t usart0_available(void); //check number of bytes available into usart 0 buffer |
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uint8_t usart1_available(void); //check number of bytes available into usart 1 buffer |
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void serialDebug(const char *str, uint8_t n); |
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//Analog functions
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void dimmerSetup(void); //start dimmer |
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void adcInit(void); //Init ADC cfg |
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//Control functions
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uint8_t numberOfParity(uint8_t *p, uint8_t n); //Return the sum of bytes' parity
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uint8_t numberOfBit(uint8_t *p, uint8_t n); //Return the total bit at 1 of buffer
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void getEEPROMCfg(uint8_t *cfg); //Get EEPROM buffer into RAM |
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uint8_t controlCfg(uint8_t *cfg); //Control RAM buffer
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void getBluetoothConfiguration(uint8_t *cfg);
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void setBluetoothConfiguration(uint8_t *cfg);
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void restoreFactoryConfiguration(uint8_t *cfg);
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uint8_t controlRN4678(void);
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//MCU Commands functions
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uint8_t gotMCUCommand(uint8_t *buf, uint8_t *frame, uint8_t n); //Method to analyse command
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//Macros
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#define ADC_START_CONV ADC0.COMMAND |= 0x01 //Start conversion |
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#define ADC_READ ADC0.SAMPLE //Get sample value |
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#define BLUETOOTH_CONNECTED ((PORTA.IN & STAT2_PIN) >> 4) //Get Bluetooth connected status |
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#define SET_DATA_LED PORTB.OUT |= STATUS_DATA_PIN
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#define CLR_DATA_LED PORTB.OUT &= ~STATUS_DATA_PIN
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#define SET_CONNECTED_LED PORTB.OUT |= STATUS_CONNECTED_PIN
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#define CLR_CONNECTED_LED PORTB.OUT &= ~STATUS_CONNECTED_PIN
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#define SET_POWER_LED TCA0.SINGLE.CMP1 = 255 //Pin depend on timer |
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#define CLR_POWER_LED TCA0.SINGLE.CMP1 = 0 |
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////////////////////////////////////////////
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/////////////////////////////////////////////////
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//Serial port backend
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enum baudsIndex
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{ |
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B2400 = 0,
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B4800, |
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B9600, |
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B14400, |
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B19200, |
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B28800, |
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B38400, |
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B57600, |
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B115200, |
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}; |
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enum ATtinyMemAddr
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{ |
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AUTH_ADDR = 0x0,
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BLM_ADDR = 0x3,
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DEVN_ADDR = 0x6,
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PINC_ADDR = 0x18,
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BAUD_ADDR = 0x1E,
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COUNT_ADDR = 0x50, //For error memory count |
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}; |
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//Equivalents baudrate at 10MHz of oscillation
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uint16_t _10MHz_Baud_CFG[] = { 16666, 8333, 4166, 2777, 2083, 1389, 1042, 694, 347 }; |
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uint8_t USART0_Buffer[256], USART0_counter = 0; |
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uint8_t USART1_Buffer[256], USART1_counter = 0; |
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/////////////////////////////////////////////////////////////////////////
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//Special MCU Commands
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uint8_t debugSerialBuffer[MAX_WINDOW_BUFFER]; //set window analyse buffer
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uint8_t debugSerialCounter = 0;
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uint8_t debugStatus_cmd[] = { 0x2, 'A', '$', '$', 'G', 'E', 'T', 'M', 'E', 'M', 'S', 'T', 'S', 0x3, }; |
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int main(void) { |
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uint8_t ATtiny826_buffer[TOP_CFG_ADDR]; //saved cfg
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bool serialOk = false; //To find the right baud value |
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uint8_t baudSelector = 0;
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//Memory corrupt variables
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uint8_t ATtiny_mem_err = 0x00;
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uint8_t RN4678_mem_err = 0x00;
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//Memory corrput counter (for debug, if this is not corrupted...)
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uint8_t ATtiny_mem_cnt = 0;
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uint8_t RN4678_mem_cnt = 0;
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uint8_t EMRG_mem_cnt = 0;
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uint8_t paramBuffer[64];
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uint8_t paramBuffer_cnt = 0;
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_PROTECTED_WRITE(CLKCTRL.MCLKCTRLB, ENABLE_BIT); //Enable clock prescaler (and divide by 2)
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////////////////////////////////////////////////
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//Basic pins setup
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PORTA.OUT = 0x00;
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PORTA.DIR = BOOT_BL_PIN; //set boot pin as output
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PORTB.OUT = 0x00;
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PORTB.DIR = STATUS_POWER_PIN | STATUS_DATA_PIN | STATUS_CONNECTED_PIN; //set all status pins as output
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////////////////////////////////////////////////
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/////////////////////////
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//Start PWM
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dimmerSetup(); |
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SET_DATA_LED; //display boot status
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/////////////////////////
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//Boot Bluetooth module
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_delay_ms(50);
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PORTA.OUT |= BOOT_BL_PIN; |
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_delay_ms(50);
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PORTA.OUT &= ~(BOOT_BL_PIN); |
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_delay_ms(50);
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PORTA.OUT |= BOOT_BL_PIN; |
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_delay_ms(500);
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CLR_DATA_LED; |
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////////////////////////////////////////////////
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//USART Setup
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#ifdef USE_TWO_SERIAL_PORTS
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cli(); |
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PORTA.DIR |= TX2_PIN; //Only this pin is output, others are input
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PORTB.DIR |= TX1_PIN; //Add TX1 pin as output on PORTB
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USART0.CTRLA = USART_RXCIE_bm; // Enable RXCIE -> Receive complete interrupt flag
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USART0.CTRLB = USART_RXEN_bm | USART_TXEN_bm; //TX and RX enable
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USART0.CTRLC = USART_CHSIZE_8BIT_gc | USART_CMODE_ASYNCHRONOUS_gc | USART_PMODE_DISABLED_gc | USART_SBMODE_2BIT_gc; // 8 bits + 2 stop bit + No parity (Normal mode)
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USART0.BAUD = _10MHz_Baud_CFG[0]; //set baudrate |
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USART1.CTRLA = USART_RXCIE_bm; // Enable RXCIE -> Receive complete interrupt flag
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USART1.CTRLB = USART_RXEN_bm | USART_TXEN_bm; //TX and RX enable
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USART1.CTRLC = USART_CHSIZE_8BIT_gc | USART_CMODE_ASYNCHRONOUS_gc | USART_PMODE_DISABLED_gc; // 8 bits + 2 stop bit + No parity (Normal mode)
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USART1.BAUD = _10MHz_Baud_CFG[0]; //set baudrate |
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sei(); |
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#endif
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////////////////////////////////////////////////
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////////////////////////////////////////////////
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//Start ADC
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//adcInit();
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///////////////////////////////////////////////////////////////
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//Find serial port baud speed
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while(!serialOk)
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{ |
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uint8_t window_analysis[3]; //create window here (to analyse "CMD" command) |
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writeCommand(ENTER_SETUP, 4); //sizeof(ENTER_SETUP) |
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_delay_ms(100); //wait a bit |
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while(usart0_available() > 0) |
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{ |
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paramBuffer[paramBuffer_cnt] = usart0_read_byte(); |
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paramBuffer_cnt++; |
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} |
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while(paramBuffer_cnt > 0) //Try to reach desired buffer and flush "noise" buffer |
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{ |
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//Read 3 first bytes...
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for(int i = 0; i < 3; i++) |
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{ |
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window_analysis[i] = paramBuffer[i]; |
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} |
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//Sweep buffer
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for(int i = 0; i < paramBuffer_cnt-1; i++) |
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{ |
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paramBuffer[i] = paramBuffer[i+1];
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} |
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//Check buffer
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if(window_analysis[0] == 'C' && window_analysis[1] == 'M' && window_analysis[2] == 'D') //we've got data -> Leave ! |
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{ |
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serialOk = true;
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} |
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paramBuffer_cnt--; |
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} |
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if(!serialOk) //if buffer messed up (no "CMD" string found...) |
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{ |
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//Go on next baud
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USART0.BAUD = _10MHz_Baud_CFG[baudSelector]; //set baudrate
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baudSelector++; |
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_delay_ms(10);
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//If we've got the last param
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if(baudSelector >= MAX_BAUD_VALUES)
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serialOk = true; //force |
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} |
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} |
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serialDebug("Start\n", 6); |
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//_delay_ms(50);
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while(usart0_available() > 0) //flush buffer |
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{ |
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usart0_read_byte(); |
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} |
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_delay_ms(1000); //wait a bit |
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USART1.BAUD = USART0.BAUD; //copy baud to another...
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//serialDebug("Dimst\n", 6);
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///////////////////////////////////////////////////////////////
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//Memory boot management
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getEEPROMCfg(ATtiny826_buffer); //read EEPROM saved cfg (At first...)
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ATtiny_mem_err = controlCfg(ATtiny826_buffer); //control ATtiny826 Memory
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RN4678_mem_err = controlRN4678(); //control RN4678 Memory Status
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//serialDebug("Cfggt\n", 6);
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ATtiny_mem_cnt = eeprom_read_byte(COUNT_ADDR); |
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_delay_ms(100);
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RN4678_mem_cnt = eeprom_read_byte(COUNT_ADDR+1);
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_delay_ms(100);
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EMRG_mem_cnt = eeprom_read_byte(COUNT_ADDR+2);
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_delay_ms(100);
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if(ATtiny_mem_err != 0x00 && RN4678_mem_err == 0x00) //MCU memory error ! |
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{ |
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ATtiny_mem_cnt++; |
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SET_DATA_LED; |
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_delay_ms(250);
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CLR_DATA_LED; |
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_delay_ms(250);
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SET_DATA_LED; |
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_delay_ms(250);
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CLR_DATA_LED; |
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_delay_ms(250);
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SET_DATA_LED; |
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_delay_ms(250);
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CLR_DATA_LED; |
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_delay_ms(250);
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getBluetoothConfiguration(ATtiny826_buffer); |
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} |
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else if(ATtiny_mem_err == 0x00 && RN4678_mem_err != 0x00) // RN4678 memory error ! |
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{ |
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RN4678_mem_cnt++; |
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SET_CONNECTED_LED; |
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_delay_ms(250);
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CLR_CONNECTED_LED; |
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_delay_ms(250);
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SET_CONNECTED_LED; |
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_delay_ms(250);
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CLR_CONNECTED_LED; |
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_delay_ms(250);
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SET_CONNECTED_LED; |
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_delay_ms(250);
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CLR_CONNECTED_LED; |
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_delay_ms(250);
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setBluetoothConfiguration(ATtiny826_buffer); |
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} |
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else if(ATtiny_mem_err != 0x00 && RN4678_mem_err != 0x00)//Emergency case !!! (Twice memory are corrupted...) |
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{ |
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EMRG_mem_cnt++; |
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SET_POWER_LED; |
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_delay_ms(250);
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CLR_POWER_LED; |
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_delay_ms(250);
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SET_POWER_LED; |
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_delay_ms(250);
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CLR_POWER_LED; |
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_delay_ms(250);
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SET_POWER_LED; |
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_delay_ms(250);
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CLR_POWER_LED; |
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_delay_ms(250);
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restoreFactoryConfiguration(ATtiny826_buffer); |
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} |
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else
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{ |
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SET_DATA_LED; |
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_delay_ms(250);
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CLR_DATA_LED; |
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SET_CONNECTED_LED; |
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_delay_ms(250);
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CLR_CONNECTED_LED; |
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SET_POWER_LED; //STATUS_POWER_PIN
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_delay_ms(250);
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CLR_POWER_LED; //STATUS_POWER_PIN
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SET_DATA_LED; |
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_delay_ms(250);
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CLR_DATA_LED; |
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SET_CONNECTED_LED; |
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_delay_ms(250);
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CLR_CONNECTED_LED; |
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SET_POWER_LED; //STATUS_POWER_PIN
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_delay_ms(250);
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CLR_POWER_LED; //STATUS_POWER_PIN
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} |
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if(EMRG_mem_cnt == 0xFF) //if default EEPROM mem. |
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{ |
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EMRG_mem_cnt = 0; //clear... |
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//And write to EEPROM...
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eeprom_write_byte(COUNT_ADDR+2, EMRG_mem_cnt);
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_delay_ms(100);
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} |
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if(RN4678_mem_cnt == 0xFF) //if default EEPROM mem. |
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{ |
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RN4678_mem_cnt = 0; //clear... |
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//And write to EEPROM...
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eeprom_write_byte(COUNT_ADDR+1, RN4678_mem_cnt);
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_delay_ms(100);
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} |
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if(ATtiny_mem_cnt == 0xFF) //if default EEPROM mem. |
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{ |
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ATtiny_mem_cnt = 0; //clear... |
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//And write to EEPROM...
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eeprom_write_byte(COUNT_ADDR, ATtiny_mem_cnt); |
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_delay_ms(100);
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} |
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writeCommand(QUIT_SETUP, sizeof(QUIT_SETUP));
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_delay_ms(1000); //wait a bit |
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while(usart0_available() > 0) //flush buffer |
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{ |
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usart0_read_byte(); |
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} |
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while(1) |
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{ |
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//Mux USART Management (Put status and switch together)
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BLUETOOTH_CONNECTED ? (SET_CONNECTED_LED) : (CLR_CONNECTED_LED); |
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//Set USART data flow status
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if((PORTA.IN & (STAT1_PIN | STAT_RX_PIN)) != (STAT1_PIN | STAT_RX_PIN))
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{ |
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SET_DATA_LED; |
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} |
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else
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{ |
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CLR_DATA_LED; |
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} |
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//Set Power status (Depending on ADC_BAT and SECTOR_STAT)
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if((PORTC.IN & SECTOR_PIN) == SECTOR_PIN)
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{ |
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SET_POWER_LED; |
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} |
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else //Battery Only |
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{ |
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CLR_POWER_LED; |
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} |
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///////////////////////////////////////////////////
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//Man-in-the-middle script
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if(usart1_available() > 0) |
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{ |
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//usart0_write_byte(usart1_read_byte());
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/*paramBuffer[paramBuffer_cnt] = usart1_read_byte();
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usart0_write_byte(paramBuffer[paramBuffer_cnt]);
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paramBuffer_cnt++;*/
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//_delay_ms(1);
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if(BLUETOOTH_CONNECTED)
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usart0_write_byte(usart1_read_byte()); |
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else
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{ |
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///////////////////////////////////////////////////
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//Debug Hardware When BL. module disconnected
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debugSerialBuffer[MAX_WINDOW_BUFFER-1] = usart1_read_byte(); //get byte into window buffer |
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//usart1_write_byte(debugSerialBuffer[MAX_WINDOW_BUFFER-1]);
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usart0_write_byte(debugSerialBuffer[MAX_WINDOW_BUFFER-1]); //send it to another serial port (just in case) |
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for(int i = 0; i < MAX_WINDOW_BUFFER-1; i++) |
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{ |
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debugSerialBuffer[i] = debugSerialBuffer[i+1]; //shift bytes from right to left |
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} |
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if(gotMCUCommand(debugSerialBuffer, debugStatus_cmd, sizeof(debugStatus_cmd))) |
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{ |
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//Bad coding...
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serialDebug("COUNT: ", 7); |
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usart1_write_byte(ATtiny_mem_cnt); |
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_delay_ms(1);
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usart1_write_byte(' ');
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_delay_ms(1);
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usart1_write_byte(RN4678_mem_cnt); |
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_delay_ms(1);
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usart1_write_byte(' ');
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_delay_ms(1);
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usart1_write_byte(EMRG_mem_cnt); |
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_delay_ms(1);
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//clearDebugBuffer(debugSerialBuffer, MAX_WINDOW_BUFFER); //if needed, implement it !
|
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} |
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} |
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|
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} |
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//When buffer is filled, load it to serial port
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/*for(int i = 0; i < paramBuffer_cnt; i++)
|
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{
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usart0_write_byte(paramBuffer[i]);
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}
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paramBuffer_cnt = 0;*/
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if(usart0_available() > 0) |
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{ |
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usart1_write_byte(usart0_read_byte()); |
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} |
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|
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|
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|
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/*
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if(!BLUETOOTH_CONNECTED) //Check STAT2 pin if not connected
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{
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//Now we accept setup mode
|
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}
|
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*/
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|
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/*if((PORTA.IN & 0x10) == 0x00) //button pushed
|
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{
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//wait a bit
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500 |
_delay_ms(500);
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_delay_ms(500);
|
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SLPCTRL.CTRLA = (0x01 << 1); //standby sleep mode
|
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SLPCTRL.CTRLA |= ENABLE_BIT;
|
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}
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|
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PORTA.OUT ^= 0x20;
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counter++;
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_delay_ms(500);*/
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|
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} |
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|
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return 0; |
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} |
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519 |
|
520 |
|
521 |
|
522 |
|
523 |
|
524 |
|
525 |
|
526 |
////////////////////////////////////////////////////////////////////////////
|
527 |
//Functions
|
528 |
|
529 |
//Memory configuration functions
|
530 |
|
531 |
//Control RN4678 memory status
|
532 |
uint8_t controlRN4678(void)
|
533 |
{ |
534 |
uint8_t result = 0x02;
|
535 |
uint8_t _name[16];
|
536 |
//uint8_t cmd[3];
|
537 |
uint8_t devNameTrig[] = {'R','N','4','6','7','8'}; |
538 |
|
539 |
|
540 |
//TODO : Add more reading through Bluetooth module
|
541 |
//sprintf(cmd, "%s\r", GET_BLM); //prepare get Bluetooth mode cmd
|
542 |
|
543 |
do
|
544 |
{ |
545 |
writeCommand(GET_DEVN, 3); //send command |
546 |
_delay_ms(500); //wait a bit |
547 |
} |
548 |
while(usart0_available <= 0); //wait until we've got data |
549 |
|
550 |
readBuffer(_name, 16); //get request for 16 bytes |
551 |
|
552 |
while(usart0_available() > 0) //flush dust bytes... |
553 |
{ |
554 |
usart0_read_byte(); |
555 |
} |
556 |
|
557 |
for(uint8_t i = 0; i < 6; i++) |
558 |
{ |
559 |
result = (_name[i] != devNameTrig[i]) ? 0x00 : result;
|
560 |
} |
561 |
if(result == 0x02) //fault detected -> Dev. name = "RN4678-XXXXX" ! |
562 |
result = 0x01;
|
563 |
|
564 |
return result;
|
565 |
} |
566 |
|
567 |
|
568 |
//Control ATtiny memory CFG
|
569 |
uint8_t controlCfg(uint8_t *cfg) |
570 |
{ |
571 |
uint8_t err_code = 0;
|
572 |
uint16_t local_crc; |
573 |
|
574 |
|
575 |
//Check Authentification mode
|
576 |
local_crc = numberOfBit(&cfg[AUTH_ADDR], 1) << 8 | numberOfParity(&cfg[AUTH_ADDR], 1); |
577 |
if(local_crc != ((cfg[AUTH_ADDR + 1] << 8) | cfg[AUTH_ADDR + 2])) |
578 |
{ |
579 |
err_code |= 0x01;
|
580 |
} |
581 |
|
582 |
//Check Bluetooth mode
|
583 |
local_crc = numberOfBit(&cfg[BLM_ADDR], 1) << 8 | numberOfParity(&cfg[BLM_ADDR], 1); |
584 |
if(local_crc != ((cfg[BLM_ADDR + 1] << 8) | cfg[BLM_ADDR + 2])) |
585 |
{ |
586 |
err_code |= 0x02;
|
587 |
} |
588 |
|
589 |
//Check Device name (ISSUE HERE)
|
590 |
local_crc = numberOfBit(&cfg[DEVN_ADDR], 16) << 8 | numberOfParity(&cfg[DEVN_ADDR], 16); |
591 |
if(local_crc != ((cfg[DEVN_ADDR + 16] << 8) | cfg[DEVN_ADDR + 17])) //read CRC at DEVN_ADDR + STR_LENGTH (16 alphanumeric char) |
592 |
{ |
593 |
err_code |= 0x04;
|
594 |
} |
595 |
|
596 |
//Check Pincode
|
597 |
local_crc = numberOfBit(&cfg[PINC_ADDR], 4) << 8 | numberOfParity(&cfg[PINC_ADDR], 4); |
598 |
if(local_crc != ((cfg[PINC_ADDR + 4] << 8) | cfg[PINC_ADDR + 5])) //read CRC at PINC_ADDR + STR_LENGTH (4 char number) |
599 |
{ |
600 |
err_code |= 0x08;
|
601 |
} |
602 |
|
603 |
//Check Baud (ISSUE HERE)
|
604 |
local_crc = numberOfBit(&cfg[BAUD_ADDR], 1) << 8 | numberOfParity(&cfg[BAUD_ADDR], 1); |
605 |
if(local_crc != ((cfg[BAUD_ADDR + 1] << 8) | cfg[BAUD_ADDR + 2])) |
606 |
{ |
607 |
err_code |= 0x10;
|
608 |
} |
609 |
|
610 |
|
611 |
return err_code;
|
612 |
} |
613 |
|
614 |
|
615 |
|
616 |
//Read RN4678 in case of ATtiny826 memory corrupt
|
617 |
void getBluetoothConfiguration(uint8_t *cfg)
|
618 |
{ |
619 |
|
620 |
char cmd[25]; |
621 |
int i;
|
622 |
|
623 |
uint8_t buffer[25];
|
624 |
|
625 |
|
626 |
//Implement get bluetooth value with index here
|
627 |
//Authentification Mode
|
628 |
sprintf(cmd, "%s", GET_AUTH); //prepare get authentification cmd |
629 |
writeCommand(cmd, 25); //send command |
630 |
_delay_ms(1000);
|
631 |
//serialDebug("\r\ncmd : ", 8);
|
632 |
//serialDebug(cmd, 25);
|
633 |
|
634 |
readBuffer(buffer, 25); //get request (for 1 byte here) |
635 |
|
636 |
//serialDebug("\r\nbuf : ", 8);
|
637 |
//serialDebug(buffer, 25);
|
638 |
|
639 |
cfg[AUTH_ADDR] = buffer[0]-ASCII_NUMBER_CONVERSION; //store result |
640 |
//crc calcultate
|
641 |
cfg[AUTH_ADDR + 1] = numberOfBit(&cfg[AUTH_ADDR], 1); |
642 |
cfg[AUTH_ADDR + 2] = numberOfParity(&cfg[AUTH_ADDR], 1); |
643 |
|
644 |
//Bluetooth Mode
|
645 |
sprintf(cmd, "%s", GET_BLM); //prepare get Bluetooth mode cmd |
646 |
writeCommand(cmd, 25); //send command |
647 |
_delay_ms(1000);
|
648 |
readBuffer(buffer, 25); //get request for 1 byte again |
649 |
cfg[BLM_ADDR] = buffer[0]-ASCII_NUMBER_CONVERSION; //store result |
650 |
//serialDebug("\r\nbuffer[0] : ", 14);
|
651 |
//serialDebug(buffer[0], 1);
|
652 |
//serialDebug("\r\nbascii[0] : ", 14);
|
653 |
//serialDebug(buffer[0]-ASCII_NUMBER_CONVERSION, 1);
|
654 |
//crc calcultate
|
655 |
cfg[BLM_ADDR + 1] = numberOfBit(&cfg[BLM_ADDR], 1); |
656 |
cfg[BLM_ADDR + 2] = numberOfParity(&cfg[BLM_ADDR], 1); |
657 |
|
658 |
|
659 |
//Device Name
|
660 |
sprintf(cmd, "%s", GET_DEVN); //prepare get Bluetooth dev. name |
661 |
|
662 |
//serialDebug("\r\ncmd : ", 8);
|
663 |
//serialDebug(cmd, 25);
|
664 |
|
665 |
writeCommand(cmd, 25); //send command |
666 |
_delay_ms(1000);
|
667 |
readBuffer(buffer, 25); //get request for 16 bytes |
668 |
//serialDebug("\r\nbuf : ", 8);
|
669 |
//serialDebug(buffer, 25);
|
670 |
i = 15; //max buffer for device name |
671 |
while(buffer[i] != '\r') //clear buffer exclusivity (for name structure) |
672 |
{ |
673 |
buffer[i] = 0xFF;
|
674 |
i--; |
675 |
} |
676 |
for(i = 0; i < 16; i++) |
677 |
{ |
678 |
cfg[DEVN_ADDR + i] = buffer[i]; //store name
|
679 |
} |
680 |
cfg[DEVN_ADDR + 16] = numberOfBit(&cfg[DEVN_ADDR], 16); |
681 |
cfg[DEVN_ADDR + 17] = numberOfParity(&cfg[DEVN_ADDR], 16); |
682 |
|
683 |
|
684 |
//Pincode
|
685 |
sprintf(cmd, "%s", GET_PINC); //prepare get Bluetooth pin code |
686 |
writeCommand(cmd, 25); //send command |
687 |
_delay_ms(1000);
|
688 |
readBuffer(buffer, 25); //get request for 4 bytes |
689 |
for(i = 0; i < 4; i++) |
690 |
{ |
691 |
cfg[PINC_ADDR + i] = buffer[i]; //store name
|
692 |
} |
693 |
cfg[PINC_ADDR + 4] = numberOfBit(&cfg[PINC_ADDR], 4); |
694 |
cfg[PINC_ADDR + 5] = numberOfParity(&cfg[PINC_ADDR], 4); |
695 |
|
696 |
//Baudrate
|
697 |
sprintf(cmd, "%s", GET_BAUD); //prepare get Bluetooth mode cmd |
698 |
writeCommand(cmd, 25); //send command |
699 |
_delay_ms(1000);
|
700 |
readBuffer(buffer, 25); //get request for 4 bytes |
701 |
//Buffer will get "0x" -> buffer[0] = '0' and buffer[1] = 'x'
|
702 |
cfg[BAUD_ADDR] = (buffer[1] == 'A') ? 0x0A : (buffer[1] == 'B') ? 0x0B : buffer[1] - '0'; //Method "0A", "0B" and "03" to "09" |
703 |
cfg[BAUD_ADDR + 1] = numberOfBit(&cfg[BAUD_ADDR], 1); |
704 |
cfg[BAUD_ADDR + 2] = numberOfParity(&cfg[BAUD_ADDR], 1); |
705 |
|
706 |
//Write into eeprom
|
707 |
for(i = 0; i < TOP_CFG_ADDR; i++) |
708 |
{ |
709 |
eeprom_write_byte(i, cfg[i]); |
710 |
} |
711 |
} |
712 |
|
713 |
|
714 |
|
715 |
//Read ATtiny826 in case of RN4678 memory corrupt
|
716 |
void setBluetoothConfiguration(uint8_t *cfg)
|
717 |
{ |
718 |
//Implement set bluetooth value with index here
|
719 |
char cmd[25]; |
720 |
char _name[16]; |
721 |
char _pin[4]; |
722 |
char _authValues[] = { '1', '2', '3', '4', }; |
723 |
char _blmValues[] = { '0', '1', '2', }; |
724 |
char *_baudsValues[] = { BAUD_VAL_115200, BAUD_VAL_57600, BAUD_VAL_38400, BAUD_VAL_28800, BAUD_VAL_19200, BAUD_VAL_14400, BAUD_VAL_9600, BAUD_VAL_4800, BAUD_VAL_2400, };
|
725 |
|
726 |
//Write authentification mode
|
727 |
sprintf(cmd, "%s%c\r", SET_AUTH, _authValues[cfg[AUTH_ADDR]]);
|
728 |
writeCommand(cmd, 25); //always put max buffer value, it stop with chara \r ! |
729 |
//serialDebug(cmd, 25);
|
730 |
//Write bluetooth mode
|
731 |
sprintf(cmd, "%s%c\r", SET_BLM, _blmValues[cfg[BLM_ADDR]]);
|
732 |
writeCommand(cmd, 25); //always put max buffer value, it stop with chara \r ! |
733 |
//serialDebug(cmd, 25);
|
734 |
//Write device name
|
735 |
/*serialDebug("Copy : ", 7);
|
736 |
serialDebug(&cfg[DEVN_ADDR], 16);
|
737 |
serialDebug("\r\n", 2);
|
738 |
serialDebug("Name : ", 7);*/
|
739 |
strncpy(_name, &cfg[DEVN_ADDR], 16);
|
740 |
/*serialDebug(_name, 16);
|
741 |
serialDebug("\r\n", 2);
|
742 |
serialDebug("DEVN : ", 7);
|
743 |
serialDebug(SET_DEVN, 3);
|
744 |
serialDebug("\r\n", 2);*/
|
745 |
sprintf(cmd, "%s%s\r", SET_DEVN, _name);
|
746 |
writeCommand(cmd, 25); //always put max buffer value, it stop with chara \r ! |
747 |
/*serialDebug("cmd : ", 6);
|
748 |
serialDebug(cmd, 25);
|
749 |
serialDebug("\r\n", 2);*/
|
750 |
//Write pin code
|
751 |
strncpy(_pin, &cfg[PINC_ADDR], 4);
|
752 |
sprintf(cmd, "%s%s\r", SET_PINC, _pin);
|
753 |
writeCommand(cmd, 25); //always put max buffer value, it stop with chara \r ! |
754 |
//serialDebug(cmd, 25);
|
755 |
//Write baudrate
|
756 |
sprintf(cmd, "%s%s\r", SET_BAUD, _baudsValues[cfg[BAUD_ADDR]]);
|
757 |
writeCommand(cmd, 25); //always put max buffer value, it stop with chara \r ! |
758 |
//serialDebug(cmd, 25);
|
759 |
} |
760 |
|
761 |
|
762 |
|
763 |
//Restore Factory setting in ATtiny826 EEPROM and RN4678 EEPROM
|
764 |
void restoreFactoryConfiguration(uint8_t *cfg)
|
765 |
{ |
766 |
//Write factory settings inside ATtiny826 EEPROM
|
767 |
for(int i = 0; i < sizeof(ATtiny826_factory_buffer); i++) |
768 |
{ |
769 |
cfg[i] = ATtiny826_factory_buffer[i]; |
770 |
eeprom_write_byte(i, cfg[i]); |
771 |
} |
772 |
setBluetoothConfiguration(cfg); //Once we wrote configuration inside ATtiny EEPROM -> Write it on RN4678 EEPROM
|
773 |
serialDebug("FactoryDone\r\n", 13); |
774 |
} |
775 |
|
776 |
|
777 |
|
778 |
|
779 |
void getEEPROMCfg(uint8_t *cfg)
|
780 |
{ |
781 |
for(uint8_t i = 0; i < TOP_CFG_ADDR; i++) |
782 |
{ |
783 |
cfg[i] = eeprom_read_byte(i); |
784 |
_delay_ms(100); //wait a bit when reading eeprom... (so slow :'| ) |
785 |
} |
786 |
} |
787 |
|
788 |
|
789 |
|
790 |
|
791 |
|
792 |
|
793 |
|
794 |
|
795 |
/////////////////////////////////////////////
|
796 |
//CRC functions
|
797 |
uint8_t numberOfParity(uint8_t *p, uint8_t n) |
798 |
{ |
799 |
uint8_t r = 0;
|
800 |
for(int i = 0; i < n; i++) |
801 |
{ |
802 |
if(p[i] % 2 == 0) |
803 |
r+=2;
|
804 |
else // == 1 |
805 |
r++; |
806 |
} |
807 |
return r;
|
808 |
} |
809 |
|
810 |
uint8_t numberOfBit(uint8_t *p, uint8_t n) |
811 |
{ |
812 |
uint8_t r = 0;
|
813 |
for(int i = 0; i < n; i++) |
814 |
{ |
815 |
for(uint8_t j = 1; j != 0; j <<= 1) |
816 |
{ |
817 |
if((j & p[i]) != 0) |
818 |
r++; |
819 |
} |
820 |
} |
821 |
return r;
|
822 |
} |
823 |
/////////////////////////////////////////////
|
824 |
//MCU commands function
|
825 |
|
826 |
//Method to analyse command
|
827 |
uint8_t gotMCUCommand(uint8_t *buf, uint8_t *frame, uint8_t n) |
828 |
{ |
829 |
bool result = true; |
830 |
|
831 |
for(int i = 0; i < n; i++) |
832 |
{ |
833 |
if((buf[i] != frame[i]))
|
834 |
{ |
835 |
result = false;
|
836 |
} |
837 |
} |
838 |
return result;
|
839 |
} |
840 |
|
841 |
|
842 |
|
843 |
|
844 |
|
845 |
|
846 |
//////////////////////////
|
847 |
//Analog functions
|
848 |
|
849 |
void adcInit(void) |
850 |
{ |
851 |
ADC0.CTRLA = ENABLE_BIT; //Enable register
|
852 |
ADC0.COMMAND = (ADC_SINGLE_12BIT << 4); //Just use 12 bit resolution (no differential mode) |
853 |
ADC0.CTRLB = ADC_PRESCALER; //divide clock for conversion
|
854 |
ADC0.CTRLC = (ADC_TIMEBASE << 3) | ADC_REF; //Set analog reference |
855 |
ADC0.PGACTRL = (ADC_PGA_GAIN << 5) | (ADC_PGA_BIAS << 3) | (ADC_PGA_SMD << 1) | ENABLE_BIT; //set PGA cfg |
856 |
ADC0.CTRLE = 0x80; //Set sample duration (SAMPDUR -> p.407) |
857 |
ADC0.MUXPOS = (ADC_VIA_PGA << 6) | (ADC_MUX_AIN12); //PC0 connected to AIN12 |
858 |
ADC0.MUXNEG = (ADC_VIA_DIRECT << 6) | (ADC_MUXN_GND); //Set reference in common mode |
859 |
} |
860 |
|
861 |
uint16_t adcGetSample(void)
|
862 |
{ |
863 |
ADC_START_CONV; //as for a conversion
|
864 |
_delay_ms(1); //wait a bit |
865 |
while(!ADC0.STATUS); //Wait when conversion is now complete |
866 |
return ADC_READ; //get stored value |
867 |
} |
868 |
|
869 |
|
870 |
void dimmerSetup(void) |
871 |
{ |
872 |
TCA0.SINGLE.CTRLA = (PWM_DIV << 1) | ENABLE_BIT; //enable register set PWM frequency (datasheet p.209) |
873 |
TCA0.SINGLE.CTRLB = 0x13; //set output frequency in Single-slope PWM |
874 |
TCA0.SINGLE.CTRLD = ENABLE_BIT; //enable split mode
|
875 |
TCA0.SINGLE.CMP0 = PWM_RATE; //set duty cycle
|
876 |
PORTB.DIR |= PWM_DIMMER_PIN; |
877 |
} |
878 |
|
879 |
|
880 |
|
881 |
/////////////////
|
882 |
//Usart functions
|
883 |
|
884 |
void serialDebug(const char *str, uint8_t n) |
885 |
{ |
886 |
for(int i = 0; i < n; i++) |
887 |
{ |
888 |
usart1_write_byte(str[i]); |
889 |
_delay_ms(1);
|
890 |
} |
891 |
} |
892 |
|
893 |
void readBuffer(uint8_t *cfg, uint8_t n)
|
894 |
{ |
895 |
uint8_t _counter = 0;
|
896 |
_delay_ms(50); //force wait to let buffer filling inside interrutp |
897 |
while(usart0_available() > 0 && _counter < n) //ensure not overflow buffer... |
898 |
{ |
899 |
cfg[_counter] = usart0_read_byte(); //now read the stuff
|
900 |
_counter++; |
901 |
} |
902 |
} |
903 |
|
904 |
void writeCommand(const uint8_t *buf, uint8_t n) |
905 |
{ |
906 |
int i = 0; |
907 |
while(i < n)
|
908 |
{ |
909 |
usart0_write_byte(buf[i]); |
910 |
//serialDebug("\n\rb: ", 5);
|
911 |
//usart1_write_byte(buf[i]);
|
912 |
if(buf[i] == '\r') //read before and increment after |
913 |
{ |
914 |
i = n; //stop right there
|
915 |
} |
916 |
i++; |
917 |
_delay_ms(10); //wait a bit... |
918 |
} |
919 |
} |
920 |
|
921 |
//Write on TX0 buffer
|
922 |
void usart0_write_byte(uint8_t b)
|
923 |
{ |
924 |
USART0.TXDATAL = b; |
925 |
} |
926 |
|
927 |
//Write on TX1 buffer
|
928 |
void usart1_write_byte(uint8_t b)
|
929 |
{ |
930 |
USART1.TXDATAL = b; |
931 |
} |
932 |
|
933 |
//Read on RX0 FIFO buffer
|
934 |
uint8_t usart0_read_byte(void)
|
935 |
{ |
936 |
uint8_t r = USART0_Buffer[0];
|
937 |
for(int i = 0; i < USART0_counter-1; i++) |
938 |
{ |
939 |
USART0_Buffer[i] = USART0_Buffer[i+1];
|
940 |
} |
941 |
USART0_counter--; |
942 |
return r;
|
943 |
} |
944 |
|
945 |
//Read on RX1 FIFO buffer
|
946 |
uint8_t usart1_read_byte(void)
|
947 |
{ |
948 |
uint8_t r = USART1_Buffer[0];
|
949 |
for(int i = 0; i < USART1_counter-1; i++) |
950 |
{ |
951 |
USART1_Buffer[i] = USART1_Buffer[i+1];
|
952 |
} |
953 |
USART1_counter--; |
954 |
return r;
|
955 |
} |
956 |
|
957 |
|
958 |
//Check RX0 FIFO buffer
|
959 |
uint8_t usart0_available(void)
|
960 |
{ |
961 |
return USART0_counter;
|
962 |
} |
963 |
|
964 |
//Check RX1 FIFO buffer
|
965 |
uint8_t usart1_available(void)
|
966 |
{ |
967 |
return USART1_counter;
|
968 |
} |
969 |
|
970 |
|
971 |
|
972 |
//////////
|
973 |
//ISR part
|
974 |
|
975 |
//When interrupt is occured (Receive complete flag), read RX buffer and store it into the equivalent software buffer
|
976 |
|
977 |
ISR(USART0_RXC_vect) |
978 |
{ |
979 |
USART0_Buffer[USART0_counter++] = USART0.RXDATAL; |
980 |
} |
981 |
|
982 |
|
983 |
ISR(USART1_RXC_vect) |
984 |
{ |
985 |
USART1_Buffer[USART1_counter++] = USART1.RXDATAL; |
986 |
} |