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Kevin |
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#include "defines.h"
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#include "I2C2.h"
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static I2C2_DATA *i2c_data_p;
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// Set up the data structures for the base_I2C.code
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// Should be called once before any i2c routines are called
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void I2C2_Init(I2C2_DATA *data) {
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i2c_data_p = data;
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i2c_data_p->buffer_in_len = 0;
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i2c_data_p->buffer_in_len_tmp = 0;
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i2c_data_p->buffer_in_read_ind = 0;
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i2c_data_p->buffer_in_write_ind = 0;
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i2c_data_p->buffer_out_ind = 0;
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i2c_data_p->buffer_out_len = 0;
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i2c_data_p->operating_mode = 0;
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i2c_data_p->operating_state = I2C_IDLE;
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i2c_data_p->return_status = 0;
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i2c_data_p->slave_in_last_byte = 0;
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i2c_data_p->slave_sending_data = 0;
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i2c_data_p->master_dest_addr = 0;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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// Enable I2C interrupt
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PIE4bits.SSP2IE = 1;
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}
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// Setup the PIC to operate as a master.
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void I2C2_Configure_Master(uint8_t speed) {
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i2c_data_p->operating_mode = I2C_MODE_MASTER;
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I2C_2_CLK_TRIS = 1;
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I2C_2_DAT_TRIS = 1;
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SSP2STAT = 0x0;
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SSP2CON1 = 0x0;
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SSP2CON2 = 0x0;
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Kevin |
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SSP2CON3 = 0x0;
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Kevin |
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SSP2CON1bits.SSPM = 0x8; // I2C Master Mode
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Kevin |
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if (speed == 0x01) {
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Kevin |
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SSP2ADD = 0x13; // Operate at 400KHz (32MHz)
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Kevin |
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SSP2STATbits.SMP = 1; // Disable Slew Rate Control
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} else if (speed == 0x02) {
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SSP2ADD = 0x07; // Operate at 1Mhz (32Mhz)
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SSP2STATbits.SMP = 1; // Disable Slew Rate Control
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Kevin |
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} else {
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SSP2ADD = 0x4F; // Operate at 100KHz (32MHz)
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SSP2STATbits.SMP = 0; // Enable Slew Rate Control
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Kevin |
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}
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SSP2CON1bits.SSPEN = 1; // Enable MSSP2 Module
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}
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// Sends length number of bytes in msg to specified address (no R/W bit)
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void I2C2_Master_Send(uint8_t address, uint8_t length, uint8_t *msg) {
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uint8_t i;
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if (length == 0)
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return;
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// Copy message to send into buffer and save length/address
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for (i = 0; i < length; i++) {
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i2c_data_p->buffer_in[i] = msg[i];
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}
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i2c_data_p->buffer_in_len = length;
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i2c_data_p->master_dest_addr = address;
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i2c_data_p->buffer_in_read_ind = 0;
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i2c_data_p->buffer_in_write_ind = 0;
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// Change status to 'next' operation
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i2c_data_p->operating_state = I2C_SEND_ADDR;
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i2c_data_p->master_status = I2C_MASTER_SEND;
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// Generate start condition
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SSP2CON2bits.SEN = 1;
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}
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// Reads length number of bytes from address (no R/W bit)
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void I2C2_Master_Recv(uint8_t address, uint8_t length) {
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if (length == 0)
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return;
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// Save length and address to get data from
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i2c_data_p->buffer_in_len = length;
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i2c_data_p->master_dest_addr = address;
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i2c_data_p->buffer_in_read_ind = 0;
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i2c_data_p->buffer_in_write_ind = 0;
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// Change status to 'next' operation
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i2c_data_p->operating_state = I2C_SEND_ADDR;
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i2c_data_p->master_status = I2C_MASTER_RECV;
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// Generate start condition
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SSP2CON2bits.SEN = 1;
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}
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// Writes msg to address then reads length number of bytes from address
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void I2C2_Master_Restart(uint8_t address, uint8_t msg, uint8_t length) {
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uint8_t c;
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if (length == 0) {
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c = msg;
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I2C2_Master_Send(address, 1, &c);
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return;
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}
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// Save length and address to get data from
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i2c_data_p->buffer_in[0] = msg;
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i2c_data_p->buffer_in_len = length;
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i2c_data_p->master_dest_addr = address;
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i2c_data_p->buffer_in_read_ind = 0;
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i2c_data_p->buffer_in_write_ind = 0;
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// Change status to 'next' operation
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i2c_data_p->operating_state = I2C_SEND_ADDR;
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i2c_data_p->master_status = I2C_MASTER_RESTART;
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// Generate start condition
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SSP2CON2bits.SEN = 1;
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}
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// Setup the PIC to operate as a slave. The address must not include the R/W bit
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void I2C2_Configure_Slave(uint8_t addr) {
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i2c_data_p->operating_mode = I2C_MODE_SLAVE;
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// Ensure the two lines are set for input (we are a slave)
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I2C_2_CLK_TRIS = 1;
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I2C_2_DAT_TRIS = 1;
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SSP2ADD = addr << 1; // Set the slave address
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SSP2STAT = 0x0;
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SSP2CON1 = 0x0;
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SSP2CON2 = 0x0;
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Kevin |
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SSP2CON3 = 0x0;
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Kevin |
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SSP2CON1bits.SSPM = 0xE; // Enable Slave 7-bit w/ start/stop interrupts
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SSP2STATbits.SMP = 1; // Slew Off
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SSP2CON2bits.SEN = 1; // Enable clock-stretching
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Kevin |
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SSP1CON3bits.PCIE = 1; // Interrupt on stop condition
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SSP1CON3bits.SCIE = 0; // Disable interrupt on start condition
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Kevin |
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SSP2CON1bits.SSPEN = 1; // Enable MSSP2 Module
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}
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void I2C2_Interrupt_Handler() {
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// Call interrupt depending on which mode we are operating in
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if (i2c_data_p->operating_mode == I2C_MODE_MASTER) {
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I2C2_Interrupt_Master();
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} else if (i2c_data_p->operating_mode == I2C_MODE_SLAVE) {
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I2C2_Interrupt_Slave();
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}
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}
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// An internal subroutine used in the master version of the i2c_interrupt_handler
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void I2C2_Interrupt_Master() {
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// If we are in the middle of sending data
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if (i2c_data_p->master_status == I2C_MASTER_SEND) {
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switch (i2c_data_p->operating_state) {
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case I2C_IDLE:
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break;
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case I2C_SEND_ADDR:
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// Send the address with read bit set
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i2c_data_p->operating_state = I2C_CHECK_ACK_SEND;
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SSP2BUF = (i2c_data_p->master_dest_addr << 1) | 0x0;
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break;
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case I2C_CHECK_ACK_SEND:
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// Check if ACK is received or not
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if (!SSP2CON2bits.ACKSTAT) {
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// If an ACK is received, send next byte of data
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if (i2c_data_p->buffer_in_read_ind < i2c_data_p->buffer_in_len) {
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SSP2BUF = i2c_data_p->buffer_in[i2c_data_p->buffer_in_read_ind];
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i2c_data_p->buffer_in_read_ind++;
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} else {
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// If no more data is to be sent, send stop bit
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_SEND_OK;
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}
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} else {
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// If a NACK is received, stop transmission and send error
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_SEND_FAIL;
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}
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break;
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}
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// If we are in the middle of receiving data
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} else if (i2c_data_p->master_status == I2C_MASTER_RECV) {
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switch (i2c_data_p->operating_state) {
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case I2C_IDLE:
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break;
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case I2C_SEND_ADDR:
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// Send address with write bit set
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i2c_data_p->operating_state = I2C_CHECK_ACK_RECV;
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uint8_t tmp = (i2c_data_p->master_dest_addr << 1);
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tmp |= 0x01;
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SSP2BUF = tmp;
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break;
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case I2C_CHECK_ACK_RECV:
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// Check if ACK is received
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if (!SSP2CON2bits.ACKSTAT) {
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// If an ACK is received, set module to receive 1 byte of data
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i2c_data_p->operating_state = I2C_RCV_DATA;
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SSP2CON2bits.RCEN = 1;
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} else {
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// If a NACK is received, stop transmission and send error
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_RECV_FAIL;
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}
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break;
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case I2C_RCV_DATA:
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// On receive, save byte into buffer
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// TODO: Handle I2C buffer overflow
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i2c_data_p->buffer_in[i2c_data_p->buffer_in_write_ind] = SSP2BUF;
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i2c_data_p->buffer_in_write_ind++;
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if (i2c_data_p->buffer_in_write_ind < i2c_data_p->buffer_in_len) {
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// If we still need to read, send an ACK to the slave
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i2c_data_p->operating_state = I2C_REQ_DATA;
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SSP2CON2bits.ACKDT = 0; // ACK
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SSP2CON2bits.ACKEN = 1;
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} else {
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// If we are done reading, send an NACK to the slave
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i2c_data_p->operating_state = I2C_SEND_STOP;
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SSP2CON2bits.ACKDT = 1; // NACK
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SSP2CON2bits.ACKEN = 1;
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}
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break;
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case I2C_REQ_DATA:
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// Set module to receive one byte of data
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i2c_data_p->operating_state = I2C_RCV_DATA;
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SSP2CON2bits.RCEN = 1;
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break;
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case I2C_SEND_STOP:
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// Send the stop bit and copy message to send to Main()
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_RECV_OK;
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break;
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}
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} else if (i2c_data_p->master_status == I2C_MASTER_RESTART) {
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switch (i2c_data_p->operating_state) {
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case I2C_IDLE:
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break;
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case I2C_SEND_ADDR:
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// Send the address with read bit set
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i2c_data_p->operating_state = I2C_CHECK_ACK_SEND;
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SSP2BUF = (i2c_data_p->master_dest_addr << 1) | 0x0;
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break;
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case I2C_CHECK_ACK_SEND:
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// Check if ACK is received or not
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if (!SSP2CON2bits.ACKSTAT) {
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// If an ACK is received, send first byte of data
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SSP2BUF = i2c_data_p->buffer_in[0];
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i2c_data_p->operating_state = I2C_CHECK_ACK_RESTART;
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} else {
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// If a NACK is received, stop transmission and send error
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_SEND_FAIL;
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}
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break;
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case I2C_CHECK_ACK_RESTART:
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if (!SSP2CON2bits.ACKSTAT) {
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SSP2CON2bits.RSEN = 1;
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i2c_data_p->operating_state = I2C_SEND_ADDR_2;
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} else {
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// If a NACK is received, stop transmission and send error
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_SEND_FAIL;
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}
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break;
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case I2C_SEND_ADDR_2:
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// Send the address with read bit set
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i2c_data_p->operating_state = I2C_CHECK_ACK_RECV;
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uint8_t tmp = (i2c_data_p->master_dest_addr << 1);
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tmp |= 0x01;
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SSP2BUF = tmp;
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break;
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case I2C_CHECK_ACK_RECV:
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// Check if ACK is received
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if (!SSP2CON2bits.ACKSTAT) {
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// If an ACK is received, set module to receive 1 byte of data
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i2c_data_p->operating_state = I2C_RCV_DATA;
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SSP2CON2bits.RCEN = 1;
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} else {
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// If a NACK is received, stop transmission and send error
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i2c_data_p->operating_state = I2C_IDLE;
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SSP2CON2bits.PEN = 1;
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i2c_data_p->master_status = I2C_MASTER_IDLE;
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i2c_data_p->return_status = I2C_RECV_FAIL;
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}
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break;
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case I2C_RCV_DATA:
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// On receive, save byte into buffer
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// TODO: Handle I2C buffer overflow
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|
305 |
i2c_data_p->buffer_in[i2c_data_p->buffer_in_write_ind] = SSP2BUF;
|
|
|
306 |
i2c_data_p->buffer_in_write_ind++;
|
|
|
307 |
if (i2c_data_p->buffer_in_write_ind < i2c_data_p->buffer_in_len) {
|
|
|
308 |
// If we still need to read, send an ACK to the slave
|
|
|
309 |
i2c_data_p->operating_state = I2C_REQ_DATA;
|
|
|
310 |
SSP2CON2bits.ACKDT = 0; // ACK
|
|
|
311 |
SSP2CON2bits.ACKEN = 1;
|
|
|
312 |
} else {
|
|
|
313 |
// If we are done reading, send an NACK to the slave
|
|
|
314 |
i2c_data_p->operating_state = I2C_SEND_STOP;
|
|
|
315 |
SSP2CON2bits.ACKDT = 1; // NACK
|
|
|
316 |
SSP2CON2bits.ACKEN = 1;
|
|
|
317 |
}
|
|
|
318 |
break;
|
|
|
319 |
case I2C_REQ_DATA:
|
|
|
320 |
// Set module to receive one byte of data
|
|
|
321 |
i2c_data_p->operating_state = I2C_RCV_DATA;
|
|
|
322 |
SSP2CON2bits.RCEN = 1;
|
|
|
323 |
break;
|
|
|
324 |
case I2C_SEND_STOP:
|
|
|
325 |
// Send the stop bit
|
|
|
326 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
327 |
SSP2CON2bits.PEN = 1;
|
|
|
328 |
i2c_data_p->master_status = I2C_MASTER_IDLE;
|
|
|
329 |
i2c_data_p->return_status = I2C_RECV_OK;
|
|
|
330 |
break;
|
|
|
331 |
}
|
|
|
332 |
}
|
|
|
333 |
}
|
|
|
334 |
|
|
|
335 |
void I2C2_Interrupt_Slave() {
|
|
|
336 |
uint8_t received_data;
|
|
|
337 |
uint8_t data_read_from_buffer = 0;
|
|
|
338 |
uint8_t data_written_to_buffer = 0;
|
|
|
339 |
uint8_t overrun_error = 0;
|
|
|
340 |
|
|
|
341 |
// Clear SSP2OV (overflow bit)
|
|
|
342 |
if (SSP2CON1bits.SSPOV == 1) {
|
|
|
343 |
SSP2CON1bits.SSPOV = 0;
|
|
|
344 |
// We failed to read the buffer in time, so we know we
|
|
|
345 |
// can't properly receive this message, just put us in the
|
|
|
346 |
// a state where we are looking for a new message
|
|
|
347 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
348 |
overrun_error = 1;
|
|
|
349 |
i2c_data_p->return_status = I2C_ERR_OVERRUN;
|
|
|
350 |
}
|
|
|
351 |
|
|
|
352 |
// Read SPPxBUF if it is full
|
|
|
353 |
if (SSP2STATbits.BF == 1) {
|
|
|
354 |
received_data = SSP2BUF;
|
|
|
355 |
// DBG_PRINT_I2C("I2C: data read from buffer: %x\r\n", SSP2BUF);
|
|
|
356 |
data_read_from_buffer = 1;
|
|
|
357 |
}
|
|
|
358 |
|
|
|
359 |
if (!overrun_error) {
|
|
|
360 |
switch (i2c_data_p->operating_state) {
|
|
|
361 |
case I2C_IDLE:
|
| 277 |
Kevin |
362 |
// {
|
|
|
363 |
// // Ignore anything except a start
|
|
|
364 |
// if (SSP2STATbits.S == 1) {
|
|
|
365 |
// i2c_data_p->buffer_in_len_tmp = 0;
|
|
|
366 |
// i2c_data_p->operating_state = I2C_STARTED;
|
|
|
367 |
// }
|
|
|
368 |
// break;
|
|
|
369 |
// }
|
|
|
370 |
// case I2C_STARTED:
|
| 260 |
Kevin |
371 |
{
|
|
|
372 |
// In this case, we expect either an address or a stop bit
|
|
|
373 |
if (SSP2STATbits.P == 1) {
|
|
|
374 |
// Return to idle mode
|
|
|
375 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
376 |
} else if (data_read_from_buffer) {
|
|
|
377 |
if (SSP2STATbits.D_nA == 0) {
|
|
|
378 |
// Address received
|
|
|
379 |
if (SSP2STATbits.R_nW == 0) {
|
|
|
380 |
// Slave write mode
|
|
|
381 |
i2c_data_p->operating_state = I2C_RCV_DATA;
|
|
|
382 |
} else {
|
|
|
383 |
// Slave read mode
|
|
|
384 |
i2c_data_p->operating_state = I2C_SEND_DATA;
|
|
|
385 |
// Process the first byte immediatly if sending data
|
|
|
386 |
goto send;
|
|
|
387 |
}
|
|
|
388 |
} else {
|
|
|
389 |
i2c_data_p->operating_state = I2C_IDLE;
|
| 277 |
Kevin |
390 |
i2c_data_p->return_status = I2C_ERR_NOADDR;
|
| 260 |
Kevin |
391 |
}
|
|
|
392 |
}
|
|
|
393 |
break;
|
|
|
394 |
}
|
|
|
395 |
send:
|
|
|
396 |
case I2C_SEND_DATA:
|
|
|
397 |
{
|
|
|
398 |
if (!i2c_data_p->slave_sending_data) {
|
|
|
399 |
// If we are not currently sending data, figure out what to reply with
|
|
|
400 |
if (I2C2_Process_Receive(i2c_data_p->slave_in_last_byte)) {
|
|
|
401 |
// Data exists to be returned, send first byte
|
|
|
402 |
SSP2BUF = i2c_data_p->buffer_out[0];
|
|
|
403 |
i2c_data_p->buffer_out_ind = 1;
|
|
|
404 |
i2c_data_p->slave_sending_data = 1;
|
|
|
405 |
data_written_to_buffer = 1;
|
|
|
406 |
} else {
|
|
|
407 |
// Unknown request
|
|
|
408 |
i2c_data_p->slave_sending_data = 0;
|
|
|
409 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
410 |
}
|
|
|
411 |
} else {
|
|
|
412 |
// Sending remaining data back to master
|
|
|
413 |
if (i2c_data_p->buffer_out_ind < i2c_data_p->buffer_out_len) {
|
|
|
414 |
SSP2BUF = i2c_data_p->buffer_out[i2c_data_p->buffer_out_ind];
|
|
|
415 |
i2c_data_p->buffer_out_ind++;
|
|
|
416 |
data_written_to_buffer = 1;
|
|
|
417 |
} else {
|
|
|
418 |
// Nothing left to send
|
|
|
419 |
i2c_data_p->slave_sending_data = 0;
|
|
|
420 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
421 |
}
|
|
|
422 |
}
|
|
|
423 |
break;
|
|
|
424 |
}
|
|
|
425 |
case I2C_RCV_DATA:
|
|
|
426 |
{
|
|
|
427 |
// We expect either data or a stop bit or a (if a restart, an addr)
|
|
|
428 |
if (SSP2STATbits.P == 1) {
|
|
|
429 |
// Stop bit detected, we need to check to see if we also read data
|
|
|
430 |
if (data_read_from_buffer) {
|
|
|
431 |
if (SSP2STATbits.D_nA == 1) {
|
|
|
432 |
// Data received with stop bit
|
|
|
433 |
// TODO: Handle I2C buffer overflow
|
|
|
434 |
i2c_data_p->buffer_in[i2c_data_p->buffer_in_write_ind] = received_data;
|
|
|
435 |
if (i2c_data_p->buffer_in_write_ind == MAXI2C2BUF-1) {
|
|
|
436 |
i2c_data_p->buffer_in_write_ind = 0;
|
|
|
437 |
} else {
|
|
|
438 |
i2c_data_p->buffer_in_write_ind++;
|
|
|
439 |
}
|
|
|
440 |
i2c_data_p->buffer_in_len_tmp++;
|
|
|
441 |
// Save the last byte received
|
|
|
442 |
i2c_data_p->slave_in_last_byte = received_data;
|
|
|
443 |
i2c_data_p->return_status = I2C_DATA_AVAL;
|
|
|
444 |
} else {
|
|
|
445 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
446 |
i2c_data_p->return_status = I2C_ERR_NODATA;
|
|
|
447 |
}
|
|
|
448 |
}
|
|
|
449 |
i2c_data_p->buffer_in_len += i2c_data_p->buffer_in_len_tmp;
|
|
|
450 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
451 |
} else if (data_read_from_buffer) {
|
|
|
452 |
if (SSP2STATbits.D_nA == 1) {
|
|
|
453 |
// Data received
|
|
|
454 |
i2c_data_p->buffer_in[i2c_data_p->buffer_in_write_ind] = received_data;
|
|
|
455 |
if (i2c_data_p->buffer_in_write_ind == MAXI2C2BUF-1) {
|
|
|
456 |
i2c_data_p->buffer_in_write_ind = 0;
|
|
|
457 |
} else {
|
|
|
458 |
i2c_data_p->buffer_in_write_ind++;
|
|
|
459 |
}
|
|
|
460 |
i2c_data_p->buffer_in_len_tmp++;
|
|
|
461 |
// Save the last byte received
|
|
|
462 |
i2c_data_p->slave_in_last_byte = received_data;
|
|
|
463 |
i2c_data_p->return_status = I2C_DATA_AVAL;
|
|
|
464 |
} else {
|
|
|
465 |
// Restart bit detected
|
|
|
466 |
if (SSP2STATbits.R_nW == 1) {
|
|
|
467 |
i2c_data_p->buffer_in_len += i2c_data_p->buffer_in_len_tmp;
|
|
|
468 |
i2c_data_p->operating_state = I2C_SEND_DATA;
|
|
|
469 |
// Process the first byte immediatly if sending data
|
|
|
470 |
goto send;
|
|
|
471 |
} else {
|
|
|
472 |
// Bad to recv an address again, we aren't ready
|
|
|
473 |
i2c_data_p->operating_state = I2C_IDLE;
|
|
|
474 |
i2c_data_p->return_status = I2C_ERR_NODATA;
|
|
|
475 |
}
|
|
|
476 |
}
|
|
|
477 |
}
|
|
|
478 |
break;
|
|
|
479 |
}
|
|
|
480 |
}
|
|
|
481 |
}
|
|
|
482 |
|
|
|
483 |
// Release the clock stretching bit (if we should)
|
|
|
484 |
if (data_read_from_buffer || data_written_to_buffer) {
|
|
|
485 |
// Release the clock
|
|
|
486 |
if (SSP2CON1bits.CKP == 0) {
|
|
|
487 |
SSP2CON1bits.CKP = 1;
|
|
|
488 |
}
|
|
|
489 |
}
|
|
|
490 |
}
|
|
|
491 |
|
|
|
492 |
/* Returns 0 if I2C module is currently busy, otherwise returns status code */
|
|
|
493 |
uint8_t I2C2_Get_Status() {
|
|
|
494 |
if (i2c_data_p->operating_mode == I2C_MODE_MASTER) {
|
|
|
495 |
if (i2c_data_p->master_status != I2C_MASTER_IDLE || i2c_data_p->buffer_in_len == 0) {
|
|
|
496 |
return 0;
|
|
|
497 |
} else {
|
|
|
498 |
return i2c_data_p->return_status;
|
|
|
499 |
}
|
|
|
500 |
} else {
|
|
|
501 |
if (i2c_data_p->operating_state != I2C_IDLE || i2c_data_p->buffer_in_len == 0) {
|
|
|
502 |
return 0;
|
|
|
503 |
} else {
|
|
|
504 |
return i2c_data_p->return_status;
|
|
|
505 |
}
|
|
|
506 |
}
|
|
|
507 |
}
|
|
|
508 |
|
|
|
509 |
uint8_t I2C2_Buffer_Len() {
|
|
|
510 |
return i2c_data_p->buffer_in_len;
|
|
|
511 |
}
|
|
|
512 |
|
|
|
513 |
/* Returns 0 if I2C module is currently busy, otherwise returns buffer length */
|
|
|
514 |
uint8_t I2C2_Read_Buffer(uint8_t *buffer) {
|
|
|
515 |
uint8_t i = 0;
|
|
|
516 |
while (i2c_data_p->buffer_in_len != 0) {
|
|
|
517 |
buffer[i] = i2c_data_p->buffer_in[i2c_data_p->buffer_in_read_ind];
|
|
|
518 |
i++;
|
|
|
519 |
if (i2c_data_p->buffer_in_read_ind == MAXI2C2BUF-1) {
|
|
|
520 |
i2c_data_p->buffer_in_read_ind = 0;
|
|
|
521 |
} else {
|
|
|
522 |
i2c_data_p->buffer_in_read_ind++;
|
|
|
523 |
}
|
|
|
524 |
i2c_data_p->buffer_in_len--;
|
|
|
525 |
}
|
|
|
526 |
return i;
|
|
|
527 |
}
|
|
|
528 |
|
|
|
529 |
/* Put data to be returned here */
|
|
|
530 |
uint8_t I2C2_Process_Receive(uint8_t c) {
|
|
|
531 |
uint8_t ret = 0;
|
| 273 |
Kevin |
532 |
|
| 260 |
Kevin |
533 |
return ret;
|
|
|
534 |
}
|