513 lines
22 KiB
C
513 lines
22 KiB
C
/** BusVoodoo SPI mode
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* @file
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* @author King Kévin <kingkevin@cuvoodoo.info>
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* @date 2018-2020
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* @copyright SPDX-License-Identifier: GPL-3.0-or-later
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* @note peripherals used: SPI @ref busvoodoo_spi
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*/
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/* standard libraries */
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#include <stdint.h> // standard integer types
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#include <stdlib.h> // standard utilities
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#include <string.h> // string utilities
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/* STM32 (including CM3) libraries */
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#include <libopencm3/stm32/gpio.h> // general purpose input output library
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#include <libopencm3/stm32/rcc.h> // real-time control clock library
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#include <libopencm3/stm32/spi.h> // SPI library
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/* own libraries */
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#include "global.h" // board definitions
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#include "print.h" // printing utilities
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#include "menu.h" // menu definitions
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#include "busvoodoo_global.h" // BusVoodoo definitions
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#if BUSVOODOO_HARDWARE_VERSION != 2
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#include "busvoodoo_oled.h" // OLED utilities
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#endif
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#include "busvoodoo_spi.h" // own definitions
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/** @defgroup busvoodoo_spi SPI peripheral used for SPI communication
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* @{
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*/
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#define BUSVOODOO_SPI_ID 2 /**< SPI peripheral */
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/** @} */
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/** mode setup stage */
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static enum busvoodoo_spi_setting_t {
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BUSVOODOO_SPI_SETTING_NONE,
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BUSVOODOO_SPI_SETTING_DUPLEX,
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BUSVOODOO_SPI_SETTING_FREQUENCY,
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BUSVOODOO_SPI_SETTING_DATABITS,
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BUSVOODOO_SPI_SETTING_BITORDER,
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BUSVOODOO_SPI_SETTING_MODE,
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BUSVOODOO_SPI_SETTING_DRIVE,
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BUSVOODOO_SPI_SETTING_DONE,
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} busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_NONE; /**< current mode setup stage */
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/** SPI duplex mode (true = full-duplex, false = bidirectional) */
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static bool busvoodoo_spi_duplex = true;
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/** SPI baud rate (corresponding to baud rate control, e.g. 36MHz/(2<<br))) */
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static uint8_t busvoodoo_spi_baudrate = 1;
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/** SPI data frame bit width (8 or 16) */
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static uint8_t busvoodoo_spi_databits = 8;
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/** SPI data frame bit order (true = MSb first, false = LSb first) */
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static bool busvoodoo_spi_bitorder = true;
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/** SPI mode (defining clock polarity and phase) */
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static uint8_t busvoodoo_spi_standard_mode = 0;
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/** pin drive mode (true = push-pull, false = open-drain) */
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static bool busvoodoo_spi_drive = true;
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#if BUSVOODOO_HARDWARE_VERSION != 2
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/** if embedded pull-up resistors are used */
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static bool busvoodoo_spi_pullup = true;
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#endif
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/** setup SPI mode
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* @param[out] prefix terminal prompt prefix
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* @param[in] line terminal prompt line to configure mode
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* @return if setup is complete
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*/
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static bool busvoodoo_spi_setup(char** prefix, const char* line)
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{
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bool complete = false; // is the setup complete
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if (NULL == line) { // first call
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_NONE; // re-start configuration
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}
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switch (busvoodoo_spi_setting) {
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case BUSVOODOO_SPI_SETTING_NONE:
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DUPLEX;
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puts("1) full-duplex\n");
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puts("2) bidirectional\n");
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snprintf(busvoodoo_global_string, LENGTH(busvoodoo_global_string), "duplex mode (1,2) [%c]", busvoodoo_spi_duplex ? '1' : '2');
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*prefix = busvoodoo_global_string; // ask for setting
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break;
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case BUSVOODOO_SPI_SETTING_DUPLEX:
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if (NULL == line || 0 == strlen(line)) { // use default setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_FREQUENCY; // go to next setting
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} else if (1 == strlen(line)) { // setting provided
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uint8_t duplex = atoi(line); // parse setting
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if (1 == duplex || 2 == duplex) { // check setting
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busvoodoo_spi_duplex = (1 == duplex); // remember setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_FREQUENCY; // go to next setting
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}
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}
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if (BUSVOODOO_SPI_SETTING_FREQUENCY == busvoodoo_spi_setting) { // if next setting
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// SPI2 used APB1 as PCLK, which has a maximum frequency of 36 MHz
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for (uint8_t div = 0; div < 8; div++) {
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printf("%u) %u kHz\n", div + 1, 36000 / (2 << div)); // print possible frequencies
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}
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snprintf(busvoodoo_global_string, LENGTH(busvoodoo_global_string), "frequency (1-9) [%u]", busvoodoo_spi_baudrate+1);
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*prefix = busvoodoo_global_string; // display next setting
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}
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break;
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case BUSVOODOO_SPI_SETTING_FREQUENCY:
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if (NULL == line || 0 == strlen(line)) { // use default setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DATABITS; // go to next setting
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} else if (1 == strlen(line)) { // setting provided
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uint8_t baudrate = atoi(line); // parse setting
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if (baudrate > 0 && baudrate <= 9) { // check setting
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busvoodoo_spi_baudrate = baudrate - 1; // remember setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DATABITS; // go to next setting
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}
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}
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if (BUSVOODOO_SPI_SETTING_DATABITS == busvoodoo_spi_setting) { // if next setting
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snprintf(busvoodoo_global_string, LENGTH(busvoodoo_global_string), "data frame width in bits (8,16) [%u]", busvoodoo_spi_databits); // prepare next setting
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*prefix = busvoodoo_global_string; // display next setting
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}
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break;
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case BUSVOODOO_SPI_SETTING_DATABITS:
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if (NULL == line || 0 == strlen(line)) { // use default setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_BITORDER; // go to next setting
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} else if (1 == strlen(line) || 2 == strlen(line)) { // setting provided
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uint8_t databits = atoi(line); // parse setting
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if (8 == databits || 16 == databits) { // check setting
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busvoodoo_spi_databits = databits; // remember setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_BITORDER; // go to next setting
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}
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}
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if (BUSVOODOO_SPI_SETTING_BITORDER == busvoodoo_spi_setting) { // if next setting
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puts("1) most significant bit first\n");
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puts("2) least significant bit first\n");
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snprintf(busvoodoo_global_string, LENGTH(busvoodoo_global_string), "data frame bit order (1,2) [%c]", busvoodoo_spi_bitorder ? '1' : '2'); // prepare next setting
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*prefix = busvoodoo_global_string; // display next setting
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}
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break;
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case BUSVOODOO_SPI_SETTING_BITORDER:
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if (NULL == line || 0 == strlen(line)) { // use default setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_MODE; // go to next setting
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} else if (1 == strlen(line)) { // setting provided
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uint8_t bitorder = atoi(line); // parse setting
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if (1 == bitorder || 2 == bitorder) { // check setting
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busvoodoo_spi_bitorder = (1 == bitorder); // remember setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_MODE; // go to next setting
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}
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}
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if (BUSVOODOO_SPI_SETTING_MODE == busvoodoo_spi_setting) { // if next setting
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puts("1) mode 0 (clock polarity: idle low, clock phase: sample data on rising edge)\n");
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puts("2) mode 1 (clock polarity: idle low, clock phase: sample data on falling edge)\n");
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puts("3) mode 2 (clock polarity: idle high, clock phase: sample data on falling edge)\n");
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puts("4) mode 3 (clock polarity: idle high, clock phase: sample data on rising edge)\n");
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snprintf(busvoodoo_global_string, LENGTH(busvoodoo_global_string), "mode (1,2,3,4) [%u]", busvoodoo_spi_standard_mode+1); // prepare next setting
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*prefix = busvoodoo_global_string; // display next setting
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}
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break;
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case BUSVOODOO_SPI_SETTING_MODE:
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if (NULL == line || 0 == strlen(line)) { // use default setting
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#if BUSVOODOO_HARDWARE_VERSION != 2
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DRIVE; // go to next setting
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#else
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DONE; // go to next setting
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#endif
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} else if (1 == strlen(line)) { // setting provided
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uint8_t mode = atoi(line); // parse setting
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if (mode >= 1 && mode <= 4) {
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busvoodoo_spi_standard_mode = mode - 1; // remember setting
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#if BUSVOODOO_HARDWARE_VERSION != 2
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DRIVE; // go to next setting
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#else
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DONE; // go to next setting
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#endif
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}
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}
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#if BUSVOODOO_HARDWARE_VERSION != 2
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if (BUSVOODOO_SPI_SETTING_DRIVE == busvoodoo_spi_setting) { // if next setting
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puts("1) push-pull (3.3V)\n");
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puts("2) open-drain, with embedded pull-up resistors (2kO)\n");
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puts("3) open-drain, with external pull-up resistors\n");
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snprintf(busvoodoo_global_string, LENGTH(busvoodoo_global_string), "drive mode (1,2,3) [%c]", busvoodoo_spi_drive ? '1' : (busvoodoo_spi_pullup ? '2' : '3')); // show drive mode
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*prefix = busvoodoo_global_string; // display next setting
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}
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break;
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case BUSVOODOO_SPI_SETTING_DRIVE:
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if (NULL == line || 0 == strlen(line)) { // use default setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DONE; // go to next setting
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} else if (1 == strlen(line)) { // setting provided
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uint8_t drive = atoi(line); // parse setting
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if (1 == drive || 2 == drive || 3 == drive) { // check setting
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busvoodoo_spi_drive = (1 == drive); // remember setting
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busvoodoo_spi_pullup = (2 == drive); // remember setting
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_DONE; // go to next setting
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}
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}
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#endif
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if (BUSVOODOO_SPI_SETTING_DONE == busvoodoo_spi_setting) { // we have all settings, configure SPI
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rcc_periph_clock_enable(RCC_AFIO); // enable clock for SPI alternate function
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rcc_periph_clock_enable(RCC_SPI(BUSVOODOO_SPI_ID)); // enable clock for SPI peripheral
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spi_reset(SPI(BUSVOODOO_SPI_ID)); // clear SPI values to default
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spi_set_baudrate_prescaler(SPI(BUSVOODOO_SPI_ID), busvoodoo_spi_baudrate); // set baud rate (i.e. frequency)
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spi_set_standard_mode(SPI(BUSVOODOO_SPI_ID), busvoodoo_spi_standard_mode); // set SPI mode
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if (8==busvoodoo_spi_databits) { // set data frame bit width
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spi_set_dff_8bit(SPI(BUSVOODOO_SPI_ID)); // set to 8 bits
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} else {
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spi_set_dff_16bit(SPI(BUSVOODOO_SPI_ID)); // set to 16 bits
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}
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if (busvoodoo_spi_bitorder) { // set bit order
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spi_send_msb_first(SPI(BUSVOODOO_SPI_ID)); // MSb-first
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} else {
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spi_send_lsb_first(SPI(BUSVOODOO_SPI_ID)); // LSb-first
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}
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rcc_periph_clock_enable(RCC_SPI_MOSI_PORT(BUSVOODOO_SPI_ID)); // enable clock for GPIO peripheral for MOSI signal
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if (busvoodoo_spi_drive) {
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gpio_set_mode(SPI_MOSI_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_PUSHPULL, SPI_MOSI_PIN(BUSVOODOO_SPI_ID)); // set MOSI as output
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} else {
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gpio_set_mode(SPI_MOSI_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_OPENDRAIN, SPI_MOSI_PIN(BUSVOODOO_SPI_ID)); // set MOSI as output
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}
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if (busvoodoo_spi_duplex) {
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spi_set_full_duplex_mode(SPI(BUSVOODOO_SPI_ID)); // set full duplex mode
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rcc_periph_clock_enable(RCC_SPI_MISO_PORT(BUSVOODOO_SPI_ID)); // enable clock for GPIO peripheral for MISO signal
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if (busvoodoo_spi_drive) {
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gpio_set_mode(SPI_MISO_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_MISO_PIN(BUSVOODOO_SPI_ID)); // set MISO as input
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} else {
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gpio_set_mode(SPI_MISO_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_MISO_PIN(BUSVOODOO_SPI_ID)); // set MISO as input
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}
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} else {
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spi_set_bidirectional_mode(SPI(BUSVOODOO_SPI_ID)); // set bidirectional mode
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}
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rcc_periph_clock_enable(RCC_SPI_SCK_PORT(BUSVOODOO_SPI_ID)); // enable clock for GPIO peripheral for SCK signal
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if (busvoodoo_spi_drive) {
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gpio_set_mode(SPI_SCK_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_PUSHPULL, SPI_SCK_PIN(BUSVOODOO_SPI_ID)); // set SCK as output
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} else {
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gpio_set_mode(SPI_SCK_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_OPENDRAIN, SPI_SCK_PIN(BUSVOODOO_SPI_ID)); // set SCK as output
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}
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spi_enable_software_slave_management(SPI(BUSVOODOO_SPI_ID)); // control SS by software
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spi_set_nss_high(SPI(BUSVOODOO_SPI_ID)); // set NSS high (internally) so we can output
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rcc_periph_clock_enable(RCC_SPI_NSS_PORT(BUSVOODOO_SPI_ID)); // enable clock for GPIO peripheral for SS signal
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gpio_set(SPI_NSS_PORT(BUSVOODOO_SPI_ID), SPI_NSS_PIN(BUSVOODOO_SPI_ID)); // de-select slave (on high)
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if (busvoodoo_spi_drive) {
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gpio_set_mode(SPI_NSS_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_PUSHPULL, SPI_NSS_PIN(BUSVOODOO_SPI_ID)); // set NSS as output
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} else {
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gpio_set_mode(SPI_NSS_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_OPENDRAIN, SPI_NSS_PIN(BUSVOODOO_SPI_ID)); // set NSS as output
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}
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spi_set_master_mode(SPI(BUSVOODOO_SPI_ID)); // set master mode
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spi_enable(SPI(BUSVOODOO_SPI_ID)); // enable SPI
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#if BUSVOODOO_HARDWARE_VERSION != 2
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if (!busvoodoo_spi_drive && busvoodoo_spi_pullup) {
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busvoodoo_embedded_pullup(true); // set embedded pull-ups
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puts("use LV to set pull-up voltage\n");
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}
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#endif
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busvoodoo_led_blue_off(); // disable blue LED because there is no activity
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_NONE; // restart settings next time
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*prefix = "SPI"; // display mode
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const char* pinout_io[10] = {"GND", "5V", "3V3", "LV", NULL, NULL, "MISO", "SCK", "MOSI", "SS"}; // SPI mode pinout
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if (!busvoodoo_spi_duplex) {
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pinout_io[6] = NULL; // MISO is not used
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pinout_io[8] = "MOSIMISO"; // MOSI is also used as MISO
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}
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for (uint8_t i = 0 ; i < LENGTH(pinout_io) && i < LENGTH(busvoodoo_global_pinout_io); i++) {
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busvoodoo_global_pinout_io[i] = pinout_io[i]; // set pin names
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}
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#if BUSVOODOO_HARDWARE_VERSION != 2
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if (busvoodoo_full) {
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const char* pinout_rscan[5] = {"HV", NULL, NULL, NULL, NULL}; // HiZ mode RS/CAN pinout
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for (uint8_t i = 0; i < LENGTH(pinout_rscan) && i < LENGTH(busvoodoo_global_pinout_rscan); i++) {
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busvoodoo_global_pinout_rscan[i] = pinout_rscan[i]; // set pin names
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}
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}
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busvoodoo_oled_text_left(*prefix); // set mode title on OLED display
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busvoodoo_oled_text_pinout(pinout_io, true); // set pinout on display
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busvoodoo_oled_update(); // update display to show text and pinout
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#endif
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complete = true; // configuration is complete
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}
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break;
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default: // unknown case
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busvoodoo_spi_setting = BUSVOODOO_SPI_SETTING_NONE; // restart settings next time
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break;
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}
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return complete;
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}
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/** write to SPI
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* @param[in] value value to write
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*/
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static void busvoodoo_spi_write(uint16_t value)
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{
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if (8==busvoodoo_spi_databits) {
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printf("write: 0x%02x\n", (uint8_t)value);
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} else {
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printf("write: 0x%04x\n", value);
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}
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busvoodoo_led_blue_pulse(BUSVOODOO_LED_PULSE); // pulse blue LED to show we are writing
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while (!(SPI_SR(SPI(BUSVOODOO_SPI_ID))&SPI_SR_TXE)); // wait until Tx is empty
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(void)SPI_DR(SPI(BUSVOODOO_SPI_ID)); // clear RXNE flag by reading previously received data
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spi_send(SPI(BUSVOODOO_SPI_ID), value); // send data
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if (busvoodoo_spi_duplex) {
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busvoodoo_led_blue_pulse(BUSVOODOO_LED_PULSE); // pulse blue LED to show we read data
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value = spi_read(SPI(BUSVOODOO_SPI_ID)); // read data
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if (8 == busvoodoo_spi_databits) {
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printf("read: 0x%02x\n", (uint8_t)value);
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} else {
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printf("read: 0x%04x\n", value);
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}
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}
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}
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/** read from SPI
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*/
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static void busvoodoo_spi_read(void)
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{
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if (busvoodoo_spi_duplex) { // in full duplex mode
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busvoodoo_spi_write(0xffff); // send any value in order to read
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} else { // unidirectional mode
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busvoodoo_led_blue_pulse(BUSVOODOO_LED_PULSE); // pulse blue LED to show we are reading
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gpio_set_mode(SPI_MOSI_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_MOSI_PIN(BUSVOODOO_SPI_ID)); // set MOSI as input
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while (!(SPI_SR(SPI(BUSVOODOO_SPI_ID))&SPI_SR_TXE)); // wait until Tx is empty
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(void)SPI_DR(SPI(BUSVOODOO_SPI_ID)); // clear RXNE flag by reading previously received data
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spi_send(SPI(BUSVOODOO_SPI_ID), 0xffff); // send any value
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uint16_t value = spi_read(SPI(BUSVOODOO_SPI_ID)); // read data back
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if (8 == busvoodoo_spi_databits) {
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printf("read: 0x%02x\n", (uint8_t)value);
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} else {
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printf("read: 0x%04x\n", value);
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}
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if (busvoodoo_spi_drive) {
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gpio_set_mode(SPI_MOSI_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_PUSHPULL, SPI_MOSI_PIN(BUSVOODOO_SPI_ID)); // set MOSI as output
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} else {
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gpio_set_mode(SPI_MOSI_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_OUTPUT_50_MHZ, GPIO_CNF_OUTPUT_ALTFN_OPENDRAIN, SPI_MOSI_PIN(BUSVOODOO_SPI_ID)); // set MOSI as output
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}
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}
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}
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/** exit SPI mode
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*/
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static void busvoodoo_spi_exit(void)
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{
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spi_reset(SPI(BUSVOODOO_SPI_ID)); // clear SPI values to default
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spi_disable(SPI(BUSVOODOO_SPI_ID)); // disable SPI
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rcc_periph_clock_disable(RCC_SPI(BUSVOODOO_SPI_ID)); // disable domain clock
|
|
gpio_set_mode(SPI_SCK_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_SCK_PIN(BUSVOODOO_SPI_ID)); // set pin back to floating input
|
|
gpio_set_mode(SPI_NSS_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_NSS_PIN(BUSVOODOO_SPI_ID)); // set pin back to floating input
|
|
gpio_set_mode(SPI_MISO_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_MISO_PIN(BUSVOODOO_SPI_ID)); // set pin back to floating input
|
|
gpio_set_mode(SPI_MOSI_PORT(BUSVOODOO_SPI_ID), GPIO_MODE_INPUT, GPIO_CNF_INPUT_FLOAT, SPI_MOSI_PIN(BUSVOODOO_SPI_ID)); // set pin back to floating input
|
|
busvoodoo_embedded_pullup(false); // disable embedded pull-ups
|
|
}
|
|
|
|
/** perform SPI action
|
|
* @param[in] action action to perform
|
|
* @param[in] repetition how many times to perform the action
|
|
* @param[in] perform the action (true) or just check it (false)
|
|
* @return true if the action has been performed, false if it is malformed
|
|
*/
|
|
static bool busvoodoo_spi_action(const char* action, uint32_t repetition, bool perform)
|
|
{
|
|
uint32_t length = strlen(action); // remember length since it will be used a number of times
|
|
if (NULL == action || 0 == length) { // there is nothing to do
|
|
return true;
|
|
}
|
|
|
|
if (1 == length && 'r' == action[0]) { // read data
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
for (uint32_t i = 0; i < repetition; i++) {
|
|
busvoodoo_spi_read(); // read from SPI
|
|
}
|
|
} else if (1 == length && '[' == action[0]) { // select slave
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
puts("select slave\n");
|
|
while (SPI_SR(SPI(BUSVOODOO_SPI_ID))&SPI_SR_BSY); // wait until not busy
|
|
gpio_clear(SPI_NSS_PORT(BUSVOODOO_SPI_ID), SPI_NSS_PIN(BUSVOODOO_SPI_ID)); // select slave (on low)
|
|
} else if (1 == length && ']' == action[0]) { // deselect slave
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
puts("de-select slave\n");
|
|
while (SPI_SR(SPI(BUSVOODOO_SPI_ID))&SPI_SR_BSY); // wait until not busy
|
|
gpio_set(SPI_NSS_PORT(BUSVOODOO_SPI_ID), SPI_NSS_PIN(BUSVOODOO_SPI_ID)); // de-select slave (on high)
|
|
} else if (1 == length && 'u' == action[0]) { // sleep us
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
printf("wait for %u us\n", repetition);
|
|
sleep_us(repetition); // sleep
|
|
} else if (1 == length && 'm' == action[0]) { // sleep ms
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
printf("wait for %u ms\n", repetition);
|
|
sleep_ms(repetition); // sleep
|
|
} else if ('0' == action[0]) { // send digit
|
|
if (1 == length) { // just send 0
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
for (uint32_t i = 0; i < repetition; i++) {
|
|
busvoodoo_spi_write(0); // write to SPI
|
|
}
|
|
} else if ('x' == action[1] || 'b' == action[1]) { // send hex/binary
|
|
return busvoodoo_spi_action(action + 1, repetition, perform); // just retry without leading 0
|
|
} else if (action[1] >= '0' && action[1] <= '9') { // send decimal
|
|
return busvoodoo_spi_action(action + 1, repetition, perform); // just retry without leading 0
|
|
} else { // malformed action
|
|
return false;
|
|
}
|
|
} else if ('x' == action[0] && length > 1) { // send hexadecimal value
|
|
for (uint32_t i = 1; i < length; i++) { // check string
|
|
if (!((action[i] >= '0' && action[i] <= '9') || (action[i] >= 'a' && action[i] <= 'f') || (action[i] >= 'A' && action[i] <= 'F'))) { // check for hexadecimal character
|
|
return false; // not an hexadecimal string
|
|
}
|
|
}
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
uint32_t value = strtol(&action[1], NULL, 16); // get hex value
|
|
for (uint32_t i = 0; i < repetition; i++) {
|
|
busvoodoo_spi_write(value); // write to SPI
|
|
}
|
|
} else if ('b' == action[0] && length > 1) { // send binary value
|
|
for (uint32_t i = 1; i < length; i++) { // check string
|
|
if (action[i] < '0' || action[i] > '1') { // check for binary character
|
|
return false; // not a binary string
|
|
}
|
|
}
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
uint32_t value = strtol(&action[1], NULL, 2); // get binary value
|
|
for (uint32_t i = 0; i < repetition; i++) {
|
|
busvoodoo_spi_write(value); // write to SPI
|
|
}
|
|
} else if (action[0] >= '1' && action[0] <= '9') { // send decimal value
|
|
for (uint32_t i = 1; i < length; i++) { // check string
|
|
if (action[i] < '0' || action[i] > '9') { // check for decimal character
|
|
return false; // not a decimal string
|
|
}
|
|
}
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
uint32_t value = strtol(&action[0], NULL, 10); // get decimal value
|
|
for (uint32_t i = 0; i < repetition; i++) {
|
|
busvoodoo_spi_write(value); // write to SPI
|
|
}
|
|
} else if (length >= 2 && ('"' == action[0] || '\'' == action[0]) && (action[length - 1] == action[0])) { // send ASCII character
|
|
if (!perform) {
|
|
return true;
|
|
}
|
|
for (uint32_t r = 0; r < repetition; r++) {
|
|
for (uint32_t i = 1; i < length - 1; i++) { // go through string
|
|
busvoodoo_spi_write(action[i]); // write to SPI
|
|
}
|
|
}
|
|
} else { // malformed action
|
|
return false;
|
|
}
|
|
return true; // all went well
|
|
}
|
|
|
|
// command handlers
|
|
|
|
/** command to perform actions
|
|
* @param[in] argument actions to perform
|
|
*/
|
|
static void busvoodoo_spi_command_actions(void* argument)
|
|
{
|
|
if (NULL == argument || 0 == strlen(argument)) {
|
|
puts("available actions (separated by space or ,):\n");
|
|
puts("[/]\tselect/deselect slave\n");
|
|
puts("0\twrite decimal value\n");
|
|
puts("0x0\twrite hexadecimal value\n");
|
|
puts("0b0\twrite binary value\n");
|
|
puts("\"a\"/'a'\twrite ASCII characters\n");
|
|
puts("r\tread value\n");
|
|
puts("u/m\twait 1 us/ms\n");
|
|
puts(":n\trepeat action n times\n");
|
|
return;
|
|
}
|
|
// copy argument since it will be modified
|
|
char* copy = calloc(strlen(argument) + 1, sizeof(char));
|
|
if (!copy) {
|
|
while (true);
|
|
}
|
|
strncpy(copy, argument, strlen(argument) + 1);
|
|
// verify and perform actions
|
|
if (!busvoodoo_global_actions(copy, false, &busvoodoo_spi_action)) { // verify actions
|
|
puts("malformed action(s)\n");
|
|
} else { // action are ok
|
|
busvoodoo_global_actions(argument, true, &busvoodoo_spi_action); // perform action
|
|
}
|
|
free(copy); // release memory
|
|
}
|
|
|
|
/** SPI menu commands */
|
|
static const struct menu_command_t busvoodoo_spi_commands[] = {
|
|
{
|
|
.shortcut = 'a',
|
|
.name = "action",
|
|
.command_description = "perform protocol actions",
|
|
.argument = MENU_ARGUMENT_STRING,
|
|
.argument_description = "[actions]",
|
|
.command_handler = &busvoodoo_spi_command_actions,
|
|
},
|
|
};
|
|
|
|
const struct busvoodoo_mode_t busvoodoo_spi_mode = {
|
|
.name = "spi",
|
|
.description = "Serial Peripheral Interface",
|
|
.full_only = false,
|
|
.setup = &busvoodoo_spi_setup,
|
|
.commands = busvoodoo_spi_commands,
|
|
.commands_nb = LENGTH(busvoodoo_spi_commands),
|
|
.exit = &busvoodoo_spi_exit,
|
|
};
|