root / Version 1.8 / RS232_MUX.X / main.c @ c82771d8
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/*
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* File: main.c
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* Author: eniro
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* Version : 1.8
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*
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* Created on March 25, 2024, 3:51 PM
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*/
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/*
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TODO LIST :
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*
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*/
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#define F_CPU 24000000UL |
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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 <math.h> |
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#include <stdlib.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 "hardware_uart.h" |
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#include "hardware_timer.h" |
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#include "hardware_TL16C754C.h" |
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#include "hardware_config.h" |
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#include "frame_definitions.h" |
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#include "parameters.h" |
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//USART setup
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//To calculate BAUD value register -> BAUD = 64*FCLK/(16*FBAUDS)
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#define UART_BAUD_VALUE 833 // 10000 is equivalent as 9600 bauds (on 24MHz clock) according to datasheet |
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#define USART0_REG 0x3 |
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#define BOOT_MSG "RS232-MUX\r\n" |
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//OSC. setup
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#define FREQSEL 0x9 |
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#define _FREQSEL_REG_WR ((FREQSEL) << 2) |
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#define _USART0_REG_WR (USART0_REG & 0x7) |
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enum portIndex {
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PORT_VCOMA_INDEX = 0,
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PORT_VCOMB_INDEX, |
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PORT_VCOMC_INDEX, |
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PORT_VCOMD_INDEX, |
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PORT_MCOM_INDEX, |
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}; |
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//////////////////////////////////////////////////////////////
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//Prototypes
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void bootSequence(void); |
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void setRAMCfg(cfgPort *cfg, uint8_t *localBuffer);
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void MCOM_scanframe(uint8_t *data, uint8_t n, cfgPort *localPort);
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void MCOM_sendframe(uint8_t *data, uint8_t n, uint8_t port);
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void VCOM_sendframe(uint8_t *data, uint8_t n);
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void senseDebugLeds(bool *hasWritten, bool *hasRead); |
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void readCFG(bool EEPROM_read, cfgPort *localPort); |
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//String comparator (better version...)
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bool stringComp(uint8_t *str1, uint8_t *str2, uint8_t n, uint8_t m);
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//reset watchdog counter
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#define WATCHDOG_RESET asm("WDR") |
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//////////////////////////////////////////////////////////////////////////////
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//Little Keep save old configuration accessible everywhere (Not good as it is)
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cfgPort OLD_CFG[4];
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///////////////////////////
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#ifdef USE_PORT_1 //USART3 |
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#define INIT_PORT(w,x,y,z) initPort1(w,x,y,z)
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#define TX_WRITE(x) txWrite1(x)
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#define RX_READ rxRead1()
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#define PORT_AVAILABLE portAvailable1()
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#else
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#ifdef USE_PORT_2 // USART1 |
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#define INIT_PORT(w,x,y,z) initPort2(w,x,y,z)
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#define TX_WRITE(x) txWrite2(x)
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#define RX_READ rxRead2()
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#define PORT_AVAILABLE portAvailable2()
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#else
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#ifdef USE_PORT_3 //USART4 |
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#define INIT_PORT(w,x,y,z) initPort3(w,x,y,z)
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#define TX_WRITE(x) txWrite3(x)
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#define RX_READ rxRead3()
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#define PORT_AVAILABLE portAvailable3()
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#else
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#ifdef USE_PORT_4 //USART2 |
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#define INIT_PORT(w,x,y,z) initPort4(w,x,y,z)
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#define TX_WRITE(x) txWrite4(x)
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#define RX_READ rxRead4()
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#define PORT_AVAILABLE portAvailable4()
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#else
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#error "Please choose an uart port..." |
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#endif
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#endif
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#endif
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#endif
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int main(void) { |
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cfgPort VCOM_cfg[4];
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uint8_t masterBuffer[64], bufferA[64], bufferB[64], bufferC[64], bufferD[64]; |
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uint8_t VCOMAIndex = 0, VCOMBIndex = 0, VCOMCIndex = 0, VCOMDIndex = 0, MCOMIndex; |
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uint16_t MCOM_counter = 0;
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uint16_t VCOMA_counter = 0;
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uint16_t VCOMB_counter = 0;
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uint16_t VCOMC_counter = 0;
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uint16_t VCOMD_counter = 0;
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bool VCOM_can_read[] = {false, false, false, false}; |
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uint8_t debug; |
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uint8_t pipoDebugger; |
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bool writtenStatus = false; //put write status on master port |
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bool readStatus[] = {false, false, false, false, false}; // put read status on all ports |
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setWait(5000);
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for(int i = 0; i < 64; i++) |
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{ |
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bufferA[i] = 0;
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} |
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for(int i = 0; i < 64; i++) |
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{ |
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bufferB[i] = 0;
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} |
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for(int i = 0; i < 64; i++) |
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{ |
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bufferC[i] = 0;
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} |
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for(int i = 0; i < 64; i++) |
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{ |
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bufferD[i] = 0;
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} |
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_PROTECTED_WRITE(CLKCTRL.OSCHFCTRLA, _FREQSEL_REG_WR); //switch to 24 MHz
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//_delay_ms(3000);
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//Enable pins (Port direction)
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ADDR_ENABLE; //Address pins
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ENABLE_WR_RD_PINS; //Read and Write pins
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ENABLE_CS_PINS; //Chip select pins
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ENABLE_RESET_PIN; //Reset pin
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//////////////////////////////////////////////////////////////
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//Remember to put high level on cs pins to disable devices...
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SETCSA; |
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SETCSB; |
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SETCSC; |
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SETCSD; |
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//Also don't forget IOR and IOW
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SETWR; |
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SETRD; |
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//////////////////////////////////////////////////////////////
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////////////////////////////////////////
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//init TL16C IC
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SETRST; |
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//_delay_ms(10);
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setWait(100);
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CLRRST; |
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setWait(5);
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////////////////////////////////////////
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//Init virtual COM ports
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setWait(20000);
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//Debug
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//char chrDebug[50];
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//sprintf(chrDebug, "%x %x %x %x %x %x %x %x\r\n", eeprom_read_byte(0),eeprom_read_byte(1),eeprom_read_byte(2),eeprom_read_byte(3),eeprom_read_byte(4),eeprom_read_byte(5),eeprom_read_byte(6),eeprom_read_byte(7));
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getEEPROMCfg(); //at first read EEPROM configuration
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readConfiguration(&VCOM_cfg[PORT_VCOMA_INDEX], PORT_VCOMA_INDEX); //Then read configuration for VCOMA
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readConfiguration(&VCOM_cfg[PORT_VCOMB_INDEX], PORT_VCOMB_INDEX); //Then read configuration for VCOMB
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readConfiguration(&VCOM_cfg[PORT_VCOMC_INDEX], PORT_VCOMC_INDEX); //Then read configuration for VCOMC
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readConfiguration(&VCOM_cfg[PORT_VCOMD_INDEX], PORT_VCOMD_INDEX); //Then read configuration for VCOMD
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//Read for old cfg (in case we want to read EEPROM...)
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readConfiguration(&OLD_CFG[PORT_VCOMA_INDEX], PORT_VCOMA_INDEX); //Then read configuration for VCOMA
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readConfiguration(&OLD_CFG[PORT_VCOMB_INDEX], PORT_VCOMB_INDEX); //Then read configuration for VCOMB
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readConfiguration(&OLD_CFG[PORT_VCOMC_INDEX], PORT_VCOMC_INDEX); //Then read configuration for VCOMC
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readConfiguration(&OLD_CFG[PORT_VCOMD_INDEX], PORT_VCOMD_INDEX); //Then read configuration for VCOMD
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//Init Virtual Ports
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initPortA(VCOM_cfg[PORT_VCOMA_INDEX].baud, VCOM_cfg[PORT_VCOMA_INDEX].dataByte, VCOM_cfg[PORT_VCOMA_INDEX].parity, VCOM_cfg[PORT_VCOMA_INDEX].stopBit); |
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initPortB(VCOM_cfg[PORT_VCOMB_INDEX].baud, VCOM_cfg[PORT_VCOMB_INDEX].dataByte, VCOM_cfg[PORT_VCOMB_INDEX].parity, VCOM_cfg[PORT_VCOMB_INDEX].stopBit); |
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initPortC(VCOM_cfg[PORT_VCOMC_INDEX].baud, VCOM_cfg[PORT_VCOMC_INDEX].dataByte, VCOM_cfg[PORT_VCOMC_INDEX].parity, VCOM_cfg[PORT_VCOMC_INDEX].stopBit); |
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initPortD(VCOM_cfg[PORT_VCOMD_INDEX].baud, VCOM_cfg[PORT_VCOMD_INDEX].dataByte, VCOM_cfg[PORT_VCOMD_INDEX].parity, VCOM_cfg[PORT_VCOMD_INDEX].stopBit); |
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//Master Port
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INIT_PORT(UART_BAUD_VALUE, F8BIT_MODE, ONE_STOPBIT, AVR32_NO_PARITY); |
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PORTC.DIR |= 0x04;
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PORTC.OUT |= 0x04;
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setWait(500);
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PORTC.OUT &= ~(0x04);
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/*for(int i = 0; i < 25; i++)
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{
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TX_WRITE(chrDebug[i]);
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}*/
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timerInit(60000); //10 ms interrupt |
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sei(); //never forget to enable global interrupt mask !
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PORTA.DIR = 0x3F;
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TX_WRITE('G');TX_WRITE('G');TX_WRITE(' ');TX_WRITE('B');TX_WRITE('O');TX_WRITE('Y'); |
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bootSequence(); |
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//TODO : Enable WDT
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while(1) |
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{ |
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//WDT refresh (avoid program freeze when on crash...)
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WATCHDOG_RESET; |
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////////////////////////////////////////////////////////
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//Read UART A
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if(portA_available()) //Check if one byte available |
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{ |
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/////////////////////////////////////////
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//Frame check
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VCOM_can_read[PORT_VCOMA_INDEX] = true;
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if(getParitySetA()) //if parity set |
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{ |
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if(getErrorStatusA()) //if parity failed (or stop bit also) |
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{ |
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VCOM_can_read[PORT_VCOMA_INDEX] = false;
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} |
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} |
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/////////////////////////////////////////
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if(VCOM_can_read[PORT_VCOMA_INDEX]) //if we can read according to parity |
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{ |
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readStatus[PORT_VCOMA_INDEX] = true;
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bufferA[VCOMAIndex] = rxReadA(); |
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VCOMAIndex++; |
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VCOMA_counter = 0; //for frame timeout |
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} |
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else //if read failed |
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{ |
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rxReadA(); //flush serial
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} |
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} |
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////////////////////////////////////////////////////////
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//Read UART B
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if(portB_available()) //Check if one byte available |
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{ |
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/////////////////////////////////////////
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//Frame check
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VCOM_can_read[PORT_VCOMB_INDEX] = true;
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if(getParitySetB()) //if parity set |
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{ |
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if(getErrorStatusB()) //if parity failed (or stop bit also) |
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{ |
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VCOM_can_read[PORT_VCOMB_INDEX] = false;
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} |
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} |
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/////////////////////////////////////////
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if(VCOM_can_read[PORT_VCOMB_INDEX]) //if we can read according to parity |
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{ |
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readStatus[PORT_VCOMB_INDEX] = true;
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bufferB[VCOMBIndex] = rxReadB(); |
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VCOMBIndex++; |
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//if(VCOMBIndex > 64)
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// VCOMBIndex = 0;
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VCOMB_counter = 0; //for frame timeout |
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} |
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else //if read failed |
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{ |
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rxReadB(); //flush serial
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} |
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} |
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////////////////////////////////////////////////////////
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//Read UART C
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if(portC_available()) //Check if one byte available |
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{ |
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/////////////////////////////////////////
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//Frame check
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VCOM_can_read[PORT_VCOMC_INDEX] = true;
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if(getParitySetC()) //if parity set |
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{ |
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if(getErrorStatusC()) //if parity failed (or stop bit also) |
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{ |
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VCOM_can_read[PORT_VCOMC_INDEX] = false;
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} |
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} |
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/////////////////////////////////////////
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if(VCOM_can_read[PORT_VCOMC_INDEX]) //if we can read according to parity |
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{ |
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readStatus[PORT_VCOMC_INDEX] = true;
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bufferC[VCOMCIndex] = rxReadC(); |
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VCOMCIndex++; |
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//if(VCOMBIndex > 64)
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// VCOMBIndex = 0;
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VCOMC_counter = 0; //for frame timeout |
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} |
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else //if read failed |
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{ |
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rxReadC(); //flush serial
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} |
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} |
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////////////////////////////////////////////////////////
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//Read UART D
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if(portD_available()) //Check if one byte available |
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{ |
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/////////////////////////////////////////
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//Frame check
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VCOM_can_read[PORT_VCOMD_INDEX] = true;
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if(getParitySetD()) //if parity set |
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{ |
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if(getErrorStatusD()) //if parity failed (or stop bit also) |
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{ |
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VCOM_can_read[PORT_VCOMD_INDEX] = false;
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} |
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} |
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/////////////////////////////////////////
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if(VCOM_can_read[PORT_VCOMD_INDEX]) //if we can read according to parity |
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{ |
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readStatus[PORT_VCOMD_INDEX] = true;
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bufferD[VCOMDIndex] = rxReadD(); |
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VCOMDIndex++; |
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//if(VCOMBIndex > 64)
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// VCOMBIndex = 0;
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VCOMD_counter = 0; //for frame timeout |
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} |
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else //if read failed |
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{ |
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rxReadD(); //flush serial
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} |
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} |
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////////////////////////////////////////////////////////
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//Read UART Master
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if(PORT_AVAILABLE > 0) //check if we have bytes to read |
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{ |
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readStatus[PORT_MCOM_INDEX] = true;
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masterBuffer[MCOMIndex] = RX_READ; //store byte into buffer
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MCOMIndex++; //increment to next byte
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//if(MCOMIndex > 64)
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// MCOMIndex = 0;
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MCOM_counter = 0; //refresh timeout counter |
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} |
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/*else
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{
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readStatus[PORT_MCOM_INDEX] = false; //To prevent the bug on uC (Silicon cause ?)
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}*/
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//Timed process (for leds, etc...)
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if(getTimerFlag())
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{ |
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/////////////////////////////////////////////////////////
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//Timeout process
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//For master port
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if(MCOMIndex > 0) |
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MCOM_counter++; |
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//For virtual port 1
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if(VCOMAIndex > 0) |
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VCOMA_counter++; |
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//For virtual port 2
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if(VCOMBIndex > 0) |
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VCOMB_counter++; |
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//For virtual port 3
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if(VCOMCIndex > 0) |
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VCOMC_counter++; |
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//For virtual port 4
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if(VCOMDIndex > 0) |
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VCOMD_counter++; |
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senseDebugLeds(&writtenStatus, readStatus); |
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clearTimerFlag(); |
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} |
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///////////////////////////////////////
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//When buf is ready from master
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if(MCOM_counter > SERIAL_PORT_TIMEOUT_COUNT || MCOMIndex >= 64) |
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{ |
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//Send buffer to VCOM
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if(masterBuffer[1] == MASTER_ID) //check if frame is destinated to the MUX232 |
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{ |
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MCOM_scanframe(masterBuffer, MCOMIndex, VCOM_cfg); |
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} |
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else //otherwise send it through a VCOM |
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{ |
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VCOM_sendframe(masterBuffer, MCOMIndex); |
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} |
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MCOMIndex = 0; //reset index buffer |
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MCOM_counter = 0; //reset counter |
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} |
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///////////////////////////////////////
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//When buf is ready from VCOMA
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if(VCOMA_counter > SERIAL_PORT_TIMEOUT_COUNT || VCOMAIndex >= 64) |
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{ |
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writtenStatus = true;//Say a wrote has been made |
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//Send buffer to VCOM
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MCOM_sendframe(bufferA, VCOMAIndex, PORT_VCOMA_INDEX); |
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VCOMAIndex = 0; //reset index buffer |
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VCOMA_counter = 0; //reset counter |
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} |
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///////////////////////////////////////
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//When buf is ready from VCOMB
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if(VCOMB_counter > SERIAL_PORT_TIMEOUT_COUNT || VCOMBIndex >= 64) |
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{ |
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writtenStatus = true;//Say a wrote has been made |
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//Send buffer to VCOM
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MCOM_sendframe(bufferB, VCOMBIndex, PORT_VCOMB_INDEX); |
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VCOMBIndex = 0; //reset index buffer |
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VCOMB_counter = 0; //reset counter |
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} |
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///////////////////////////////////////
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//When buf is ready from VCOMC
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if(VCOMC_counter > SERIAL_PORT_TIMEOUT_COUNT || VCOMCIndex >= 64) |
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{ |
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writtenStatus = true;//Say a wrote has been made |
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//Send buffer to VCOM
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MCOM_sendframe(bufferC, VCOMCIndex, PORT_VCOMC_INDEX); |
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VCOMCIndex = 0; //reset index buffer |
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VCOMC_counter = 0; //reset counter |
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} |
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if(VCOMD_counter > SERIAL_PORT_TIMEOUT_COUNT || VCOMDIndex >= 64) |
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{ |
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writtenStatus = true; //Say a wrote has been made |
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//Send buffer to VCOM
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MCOM_sendframe(bufferD, VCOMDIndex, PORT_VCOMD_INDEX); |
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VCOMDIndex = 0; //reset index buffer |
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VCOMD_counter = 0; //reset counter |
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} |
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} |
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return 0; |
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} |
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|
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///////////////////////////////////////////////////////////
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//Functions / macros
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|
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void readCFG(bool EEPROM_read, cfgPort *localPort) |
534 |
{ |
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cfgPort *debugPort; |
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|
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const uint8_t *dispBaud[] = {"9600", "19200", "38400"}; |
538 |
const uint8_t dispParity[] = {'N', 'E', 'O'}; //The Matrix has you... |
539 |
const uint8_t dispData[] = {'5', '6', '7', '8'}; |
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const uint8_t dispBit[] = {'1', '2'}; |
541 |
char msg[30]; //23 characters max |
542 |
|
543 |
|
544 |
//Read EEPROM configuration or RAM ?
|
545 |
//if(EEPROM_read)
|
546 |
// getEEPROMCfg();
|
547 |
|
548 |
|
549 |
|
550 |
if(!EEPROM_read) //Read RAM CFG ? |
551 |
debugPort = &localPort[PORT_VCOMA_INDEX]; |
552 |
else
|
553 |
debugPort = &OLD_CFG[PORT_VCOMA_INDEX]; |
554 |
|
555 |
//readConfiguration(debugPort, PORT_VCOMA_INDEX); //or just get CFG read from EEPROM
|
556 |
//Disp CFGRead bytes and display directly CFG
|
557 |
for(int i = 0; i < 30; i++) |
558 |
{ |
559 |
msg[i] = 0;
|
560 |
} |
561 |
sprintf(msg, "%c%c%c%cVCOMA B%s F%c%c%c\r\n",
|
562 |
STX, |
563 |
MASTER_ID, |
564 |
FRAME_ADDR_1, |
565 |
FRAME_ADDR_2, |
566 |
dispBaud[debugPort->baud], |
567 |
dispData[debugPort->dataByte], |
568 |
dispParity[debugPort->parity], |
569 |
dispBit[debugPort->stopBit] |
570 |
); |
571 |
for(uint8_t i = 0; i < 22; i++) |
572 |
TX_WRITE(msg[i]); //Display string
|
573 |
|
574 |
if(!EEPROM_read) //Read RAM CFG ? |
575 |
debugPort = &localPort[PORT_VCOMB_INDEX]; |
576 |
else
|
577 |
debugPort = &OLD_CFG[PORT_VCOMB_INDEX]; |
578 |
//readConfiguration(debugPort, PORT_VCOMB_INDEX); //or just get CFG read from EEPROM
|
579 |
//Disp CFGRead bytes and display directly CFG
|
580 |
for(int i = 0; i < 30; i++) |
581 |
{ |
582 |
msg[i] = 0;
|
583 |
} |
584 |
|
585 |
sprintf(msg, "%c%c%c%cVCOMB B%s F%c%c%c\r\n",
|
586 |
STX, |
587 |
MASTER_ID, |
588 |
FRAME_ADDR_1, |
589 |
FRAME_ADDR_2, |
590 |
dispBaud[debugPort->baud], |
591 |
dispData[debugPort->dataByte], |
592 |
dispParity[debugPort->parity], |
593 |
dispBit[debugPort->stopBit] |
594 |
); |
595 |
for(uint8_t i = 0; i < 22; i++) |
596 |
TX_WRITE(msg[i]); //Display string
|
597 |
|
598 |
if(!EEPROM_read) //Read RAM CFG ? |
599 |
debugPort = &localPort[PORT_VCOMC_INDEX]; |
600 |
else
|
601 |
debugPort = &OLD_CFG[PORT_VCOMC_INDEX]; |
602 |
//readConfiguration(debugPort, PORT_VCOMC_INDEX); //or just get CFG read from EEPROM
|
603 |
//Disp CFGRead bytes and display directly CFG
|
604 |
for(int i = 0; i < 30; i++) |
605 |
{ |
606 |
msg[i] = 0;
|
607 |
} |
608 |
sprintf(msg, "%c%c%c%cVCOMC B%s F%c%c%c\r\n",
|
609 |
STX, |
610 |
MASTER_ID, |
611 |
FRAME_ADDR_1, |
612 |
FRAME_ADDR_2, |
613 |
dispBaud[debugPort->baud], |
614 |
dispData[debugPort->dataByte], |
615 |
dispParity[debugPort->parity], |
616 |
dispBit[debugPort->stopBit] |
617 |
); |
618 |
for(uint8_t i = 0; i < 22; i++) |
619 |
TX_WRITE(msg[i]); //Display string
|
620 |
|
621 |
if(!EEPROM_read) //Read RAM CFG ? |
622 |
debugPort = &localPort[PORT_VCOMD_INDEX]; |
623 |
else
|
624 |
debugPort = &OLD_CFG[PORT_VCOMD_INDEX]; |
625 |
//readConfiguration(debugPort, PORT_VCOMD_INDEX); //or just get CFG read from EEPROM
|
626 |
//Disp CFGRead bytes and display directly CFG
|
627 |
for(int i = 0; i < 30; i++) |
628 |
{ |
629 |
msg[i] = 0;
|
630 |
} |
631 |
sprintf(msg, "%c%c%c%cVCOMD B%s F%c%c%c\r\n",
|
632 |
STX, |
633 |
MASTER_ID, |
634 |
FRAME_ADDR_1, |
635 |
FRAME_ADDR_2, |
636 |
dispBaud[debugPort->baud], |
637 |
dispData[debugPort->dataByte], |
638 |
dispParity[debugPort->parity], |
639 |
dispBit[debugPort->stopBit] |
640 |
); |
641 |
for(uint8_t i = 0; i < 22; i++) |
642 |
TX_WRITE(msg[i]); //Display string
|
643 |
} |
644 |
|
645 |
|
646 |
//Set RAM Cfg that we must apply it to the EEPROM !
|
647 |
void setRAMCfg(cfgPort *cfg, uint8_t *localBuffer)
|
648 |
{ |
649 |
//Set default CFG
|
650 |
uint8_t localBaudsCfg = ADDR_BAUD_9600, localDataCfg = ADDR_DATA_F8; |
651 |
uint8_t localParityCfg = ADDR_PARITY_NONE, localSBCfg = ADDR_STOP_ONE; |
652 |
uint8_t localVCOMIndex; |
653 |
uint8_t localIndex; |
654 |
uint8_t i; |
655 |
|
656 |
////////////////////////////////////////////////////////
|
657 |
//VCOM CONFIGURATION
|
658 |
|
659 |
//Be sure our first character is B (so we can estimate that frame is good enough)
|
660 |
if (localBuffer[MAX232_B_STR_INDEX] == MAX232_B_STR_CHAR)
|
661 |
{ |
662 |
localIndex = MAX232_B_STR_INDEX; |
663 |
i = 0;
|
664 |
//Calculate number of bytes between B and F char into frame (9600 bauds or 19200/38400 bauds for example)
|
665 |
while (localBuffer[localIndex] != MAX232_F_STR_CHAR)
|
666 |
{ |
667 |
i++; |
668 |
localIndex++; |
669 |
} |
670 |
if (i < 6) //number of char = 4 ? ("9600") |
671 |
{ |
672 |
|
673 |
//////////////////////////////////////////
|
674 |
//At first set bauds speed
|
675 |
if (localBuffer[MAX232_B_STR_INDEX + 1] == '9' && localBuffer[MAX232_B_STR_INDEX + 2] == '6' && |
676 |
localBuffer[MAX232_B_STR_INDEX + 3] == '0' && localBuffer[MAX232_B_STR_INDEX + 4] == '0') |
677 |
{ |
678 |
//Put CFG into 9600 bauds
|
679 |
localBaudsCfg = ADDR_BAUD_9600; |
680 |
} |
681 |
//////////////////////////////////////////
|
682 |
//Set Data bits
|
683 |
localDataCfg = localBuffer[MAX232_B_STR_INDEX + 6] - '5'; // Shift to 0 because ADDR_DATA_F5 = 0, ADDR_DATA_F6 = 1, ect... |
684 |
//We have already localDataCfg as ADDR_PARITY_NONE (keep aat this value if it equals to 'N')
|
685 |
//localParityCfg = (localBuffer[MAX232_B_STR_INDEX + 7] == 'N') ? ADDR_PARITY_NONE : localDataCfg;
|
686 |
//Does it equals to ODD ?
|
687 |
localParityCfg = (localBuffer[MAX232_B_STR_INDEX + 7] == 'O') ? ADDR_PARITY_ODD : localParityCfg; |
688 |
//or EVEN ?
|
689 |
localParityCfg = (localBuffer[MAX232_B_STR_INDEX + 7] == 'E') ? ADDR_PARITY_EVEN : localParityCfg; |
690 |
//Read (localBuffer[MAX232_B_STR_INDEX + 8] for stop bits -> 1/2
|
691 |
localSBCfg = (localBuffer[MAX232_B_STR_INDEX + 8] == '2'); //Return condition state only... |
692 |
//Read (localBuffer[MAX232_B_STR_INDEX + 10] VCOM -> A/B/C/D
|
693 |
localVCOMIndex = localBuffer[MAX232_B_STR_INDEX + 10] - CESAR_SHIFT;
|
694 |
} |
695 |
else //number of char = 5 ? ("19200"/"38400") |
696 |
{ |
697 |
//////////////////////////////////////////
|
698 |
//At first set bauds speed
|
699 |
|
700 |
if (localBuffer[MAX232_B_STR_INDEX + 1] == '1' && localBuffer[MAX232_B_STR_INDEX + 2] == '9' && |
701 |
localBuffer[MAX232_B_STR_INDEX + 3] == '2' && localBuffer[MAX232_B_STR_INDEX + 4] == '0' && |
702 |
localBuffer[MAX232_B_STR_INDEX + 5] == '0') |
703 |
{ |
704 |
//Put CFG into 19200 bauds
|
705 |
localBaudsCfg = ADDR_BAUD_19200; |
706 |
} |
707 |
|
708 |
if (localBuffer[MAX232_B_STR_INDEX + 1] == '3' && localBuffer[MAX232_B_STR_INDEX + 2] == '8' && |
709 |
localBuffer[MAX232_B_STR_INDEX + 3] == '4' && localBuffer[MAX232_B_STR_INDEX + 4] == '0' && |
710 |
localBuffer[MAX232_B_STR_INDEX + 5] == '0') |
711 |
{ |
712 |
//Put CFG into 38400 bauds
|
713 |
localBaudsCfg = ADDR_BAUD_38400; |
714 |
} |
715 |
|
716 |
//////////////////////////////////////////
|
717 |
|
718 |
//Set Data bits
|
719 |
localDataCfg = localBuffer[MAX232_B_STR_INDEX + 7] - '5'; // Shift to 0 because ADDR_DATA_F5 = 0, ADDR_DATA_F6 = 1, ect... |
720 |
//We have already localDataCfg as ADDR_PARITY_NONE (keep aat this value if it equals to 'N')
|
721 |
//localParityCfg = (localBuffer[MAX232_B_STR_INDEX + 7] == 'N') ? ADDR_PARITY_NONE : localDataCfg;
|
722 |
//Does it equals to ODD ?
|
723 |
localParityCfg = (localBuffer[MAX232_B_STR_INDEX + 8] == 'O') ? ADDR_PARITY_ODD : localParityCfg; |
724 |
//or EVEN ?
|
725 |
localParityCfg = (localBuffer[MAX232_B_STR_INDEX + 8] == 'E') ? ADDR_PARITY_EVEN : localParityCfg; |
726 |
//Read (localBuffer[MAX232_B_STR_INDEX + 8] for stop bits -> 1/2
|
727 |
localSBCfg = (localBuffer[MAX232_B_STR_INDEX + 9] == '2'); //Return condition state only for stop bits... |
728 |
//Read (localBuffer[MAX232_B_STR_INDEX + 10] VCOM -> A/B/C/D
|
729 |
localVCOMIndex = localBuffer[MAX232_B_STR_INDEX + 11] - CESAR_SHIFT;
|
730 |
//TX_WRITE('F'); TX_WRITE('D'); TX_WRITE('P'); TX_WRITE(localBuffer[MAX232_B_STR_INDEX + 9]);
|
731 |
//TX_WRITE('F'); TX_WRITE('D'); TX_WRITE('P'); TX_WRITE(localBuffer[MAX232_B_STR_INDEX + 11]);
|
732 |
//TX_WRITE('F'); TX_WRITE('D'); TX_WRITE('P'); TX_WRITE(localParityCfg);
|
733 |
} |
734 |
//Write into RAM buffer (and prepare for EEPROM writing)
|
735 |
writeConfiguration(&cfg[localVCOMIndex], localBaudsCfg, localParityCfg, localDataCfg, localSBCfg, localVCOMIndex); |
736 |
} |
737 |
////////////////////////////////////////////////////////
|
738 |
|
739 |
} |
740 |
|
741 |
|
742 |
//Read a frame destinated to the MUX232 itself
|
743 |
|
744 |
void MCOM_scanframe(uint8_t *data, uint8_t n, cfgPort *localPort)
|
745 |
{ |
746 |
|
747 |
uint8_t *localBuffer; //Calculate byte quantity of effective data
|
748 |
uint8_t i; |
749 |
|
750 |
|
751 |
while(localBuffer == NULL) |
752 |
{ |
753 |
localBuffer = malloc(n-6);
|
754 |
setWait(5);
|
755 |
} |
756 |
|
757 |
for(i = 0; i < n-6; i++) |
758 |
localBuffer[i] = 0;
|
759 |
|
760 |
//At first, check if first byte is the start of text
|
761 |
if(data[0] == STX) |
762 |
{ |
763 |
if(data[2] == FRAME_ADDR_1 && data[3] == FRAME_ADDR_2) //check if we have the MUX address identifier |
764 |
{ |
765 |
if(data[n-1] == CR_CHAR) //check the end of text (second byte) |
766 |
{ |
767 |
if(data[n-2] == LF_CHAR) //check the end of text (first byte) |
768 |
{ |
769 |
for(i = 0; i < n-6; i++) //regarder la valeur de n |
770 |
{ |
771 |
localBuffer[i] = data[i + 4]; //Get effective data |
772 |
} |
773 |
//Once data was collected, analysis it
|
774 |
if(!stringComp(localBuffer, MAX232_WRITE_COMMAND, n-6, MAX232_WRITE_SIZE)) //if the command is Write configuration |
775 |
{ |
776 |
//Save CFG into EEPROM
|
777 |
setEEPROMCfg(); |
778 |
TX_WRITE(0x2);
|
779 |
TX_WRITE(FRAME_ADDR_1); |
780 |
TX_WRITE(FRAME_ADDR_2); |
781 |
TX_WRITE(MASTER_ID); |
782 |
TX_WRITE('W');TX_WRITE('R'); |
783 |
TX_WRITE('C');TX_WRITE('F');TX_WRITE('G'); |
784 |
TX_WRITE(LF_CHAR);TX_WRITE(CR_CHAR); |
785 |
|
786 |
TX_WRITE(0x2);
|
787 |
TX_WRITE(FRAME_ADDR_1); |
788 |
TX_WRITE(FRAME_ADDR_2); |
789 |
TX_WRITE(MASTER_ID); |
790 |
TX_WRITE('R');TX_WRITE('E');TX_WRITE('B');TX_WRITE('O');TX_WRITE('O');TX_WRITE('T'); |
791 |
TX_WRITE(LF_CHAR);TX_WRITE(CR_CHAR); |
792 |
|
793 |
while(1); //Force WDT reboot |
794 |
} |
795 |
else if(!stringComp(localBuffer, MAX232_READ_RAM_COMMAND, n-6, MAX232_READ_RAM_SIZE)) //is this Read configuration ? |
796 |
{ |
797 |
//Read CFG from RAM
|
798 |
readCFG(false, localPort);
|
799 |
} |
800 |
else if(!stringComp(localBuffer, MAX232_READ_ROM_COMMAND, n-6, MAX232_READ_ROM_SIZE)) //is this Read configuration ? |
801 |
{ |
802 |
//Read CFG from EEPROM
|
803 |
readCFG(true, localPort);
|
804 |
} |
805 |
else //otherwise that might be set configuration |
806 |
{ |
807 |
setRAMCfg(localPort, localBuffer); |
808 |
TX_WRITE(0x2);
|
809 |
TX_WRITE(FRAME_ADDR_1); |
810 |
TX_WRITE(FRAME_ADDR_2); |
811 |
TX_WRITE(MASTER_ID); |
812 |
TX_WRITE('S');TX_WRITE('E');TX_WRITE('T'); |
813 |
TX_WRITE('C');TX_WRITE('F');TX_WRITE('G'); |
814 |
TX_WRITE(LF_CHAR);TX_WRITE(CR_CHAR); |
815 |
} |
816 |
} |
817 |
} |
818 |
} |
819 |
} |
820 |
} |
821 |
|
822 |
|
823 |
|
824 |
//Send a frame from virtual port to master port
|
825 |
|
826 |
void MCOM_sendframe(uint8_t *data, uint8_t n, uint8_t port)
|
827 |
{ |
828 |
//////////////////////////
|
829 |
//Send frame
|
830 |
|
831 |
TX_WRITE(0x02); //STX |
832 |
TX_WRITE(port + CESAR_SHIFT); //Which virtual port called master port ?
|
833 |
TX_WRITE(FRAME_ADDR_1); //ADDR
|
834 |
TX_WRITE(FRAME_ADDR_2); //ADDR
|
835 |
|
836 |
for(uint8_t i = 0; i < n; i++) //DATA |
837 |
TX_WRITE(data[i]); |
838 |
|
839 |
TX_WRITE(LF_CHAR); //End of frame
|
840 |
TX_WRITE(CR_CHAR); //End of frame
|
841 |
//////////////////////////
|
842 |
} |
843 |
|
844 |
//////////////////////////////////////////////////////////////////////////////////////////
|
845 |
//Send a frame from master port to virtual port (that calculate whose port to send ?)
|
846 |
|
847 |
void VCOM_sendframe(uint8_t *data, uint8_t n)
|
848 |
{ |
849 |
uint16_t addrFunctions[] = {&txWriteA, &txWriteB, &txWriteC, &txWriteD }; //list of available functions addresses
|
850 |
void (*localTxWrite)(); //function pointer |
851 |
|
852 |
|
853 |
////////////////////////////////
|
854 |
|
855 |
//At first, check if first byte is the start of text
|
856 |
if(data[0] == STX) |
857 |
{ |
858 |
if(data[2] == FRAME_ADDR_1 && data[3] == FRAME_ADDR_2) //check if we have the MUX address identifier |
859 |
{ |
860 |
if(data[n-1] == CR_CHAR) //check the end of text (second byte) |
861 |
{ |
862 |
if(data[n-2] == LF_CHAR) //check the end of text (first byte) |
863 |
{ |
864 |
data[1]-=CESAR_SHIFT; //convert port index to buffer equivalent |
865 |
localTxWrite = addrFunctions[(data[1] < 3) ? data[1] : 3 ]; //data[3] |
866 |
for(int i = 4; i < n-2; i++) //send frame without (STX + FRAME_ADDR_B1 + FRAME_ADDR_B2 + LF_CHAR + CR_CHAR) |
867 |
{ |
868 |
localTxWrite(data[i]); |
869 |
} |
870 |
|
871 |
} |
872 |
} |
873 |
} |
874 |
} |
875 |
} |
876 |
|
877 |
|
878 |
|
879 |
|
880 |
|
881 |
|
882 |
|
883 |
void bootSequence(void) |
884 |
{ |
885 |
debugLedsTest(); |
886 |
} |
887 |
|
888 |
|
889 |
|
890 |
|
891 |
/**
|
892 |
<p><b>void debugLedsTest(void)</b></p>
|
893 |
<p><b>Debug leds test sequence</b></p>
|
894 |
*/
|
895 |
void debugLedsTest(void) |
896 |
{ |
897 |
|
898 |
PORTA.OUT = 1;
|
899 |
for(int i = 0; i < 6; i++) |
900 |
{ |
901 |
PORTA.OUT <<= 1;
|
902 |
_delay_ms(250);
|
903 |
} |
904 |
PORTA.OUT = 0;
|
905 |
} |
906 |
|
907 |
/**
|
908 |
<p><b>void senseDebugLeds(void)</b></p>
|
909 |
<p><b>Call this to update leds status</b></p>
|
910 |
*/
|
911 |
void senseDebugLeds(bool *hasWritten, bool *hasRead) |
912 |
{ |
913 |
|
914 |
|
915 |
|
916 |
///////////////////////////
|
917 |
//Check Master Port
|
918 |
if(*hasWritten)
|
919 |
{ |
920 |
PORTA.OUT |= 0x20;
|
921 |
*hasWritten = false;
|
922 |
} |
923 |
else
|
924 |
PORTA.OUT &= ~(0x20);
|
925 |
|
926 |
if(hasRead[PORT_MCOM_INDEX])
|
927 |
{ |
928 |
PORTA.OUT |= 0x10;
|
929 |
hasRead[PORT_MCOM_INDEX] = false;
|
930 |
} |
931 |
else
|
932 |
PORTA.OUT &= ~(0x10);
|
933 |
|
934 |
///////////////////////////
|
935 |
//Check VCOMA
|
936 |
if(hasRead[PORT_VCOMA_INDEX])
|
937 |
{ |
938 |
PORTA.OUT |= 0x01;
|
939 |
hasRead[PORT_VCOMA_INDEX] = false;
|
940 |
} |
941 |
else
|
942 |
PORTA.OUT &= ~(0x01);
|
943 |
|
944 |
///////////////////////////
|
945 |
//Check VCOMB
|
946 |
if(hasRead[PORT_VCOMB_INDEX])
|
947 |
{ |
948 |
PORTA.OUT |= 0x02;
|
949 |
hasRead[PORT_VCOMB_INDEX] = false;
|
950 |
} |
951 |
else
|
952 |
PORTA.OUT &= ~(0x02);
|
953 |
|
954 |
///////////////////////////
|
955 |
//Check VCOMC
|
956 |
if(hasRead[PORT_VCOMC_INDEX])
|
957 |
{ |
958 |
PORTA.OUT |= 0x04;
|
959 |
hasRead[PORT_VCOMC_INDEX] = false;
|
960 |
} |
961 |
else
|
962 |
PORTA.OUT &= ~(0x04);
|
963 |
|
964 |
|
965 |
///////////////////////////
|
966 |
//Check VCOMD
|
967 |
if(hasRead[PORT_VCOMD_INDEX])
|
968 |
{ |
969 |
PORTA.OUT |= 0x08;
|
970 |
hasRead[PORT_VCOMD_INDEX] = false;
|
971 |
} |
972 |
else
|
973 |
PORTA.OUT &= ~(0x08);
|
974 |
} |
975 |
|
976 |
|
977 |
//String comparator (better version...)
|
978 |
bool stringComp(uint8_t *str1, uint8_t *str2, uint8_t n, uint8_t m)
|
979 |
{ |
980 |
bool result = false; |
981 |
|
982 |
if(n == m)
|
983 |
{ |
984 |
for(int i = 0; i < n; i++) |
985 |
{ |
986 |
//TX_WRITE('A');TX_WRITE(':');TX_WRITE(str1[i]);TX_WRITE(" ");
|
987 |
//TX_WRITE('B');TX_WRITE(':');TX_WRITE(str2[i]);TX_WRITE("\n");TX_WRITE("\r");
|
988 |
if(str1[i] != str2[i]) //different string... |
989 |
result = true; //haaaaaaaaaaaaaaaaaaaaaaaaaaaax |
990 |
} |
991 |
} |
992 |
else
|
993 |
{ |
994 |
result = true;
|
995 |
} |
996 |
|
997 |
|
998 |
|
999 |
return result;
|
1000 |
} |
1001 |
|
1002 |
|
1003 |
|
1004 |
|
1005 |
|
1006 |
|