TiSmartCar/ti_msp_dl_config.c
Boen_Shi 8be2866433 feat(base): 初始化 MSPM0 开发环境
- 添加头文件和配置文件支持
- 更新.gitignore忽略编译和IDE相关文件
- 添加基础的bsp代码
2026-07-16 14:45:26 +08:00

824 lines
28 KiB
C

/*
* Copyright (c) 2023, Texas Instruments Incorporated
* All rights reserved.
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions
* are met:
*
* * Redistributions of source code must retain the above copyright
* notice, this list of conditions and the following disclaimer.
*
* * Redistributions in binary form must reproduce the above copyright
* notice, this list of conditions and the following disclaimer in the
* documentation and/or other materials provided with the distribution.
*
* * Neither the name of Texas Instruments Incorporated nor the names of
* its contributors may be used to endorse or promote products derived
* from this software without specific prior written permission.
*
* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
* AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO,
* THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
* PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR
* CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
* EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
* PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
* OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
* WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
* OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE,
* EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
*/
/*
* ============ ti_msp_dl_config.c =============
* Configured MSPM0 DriverLib module definitions
*
* DO NOT EDIT - This file is generated for the MSPM0G350X
* by the SysConfig tool.
*/
#include "ti_msp_dl_config.h"
DL_TimerA_backupConfig gMotorBackup;
DL_TimerG_backupConfig gBeepBackup;
DL_TimerG_backupConfig gEncoder1_TIMBackup;
DL_TimerA_backupConfig gEncoder2_TIMBackup;
DL_UART_Main_backupConfig gHOSTBackup;
/*
* ======== SYSCFG_DL_init ========
* Perform any initialization needed before using any board APIs
*/
SYSCONFIG_WEAK void SYSCFG_DL_init(void)
{
SYSCFG_DL_initPower();
SYSCFG_DL_GPIO_init();
/* Module-Specific Initializations*/
SYSCFG_DL_SYSCTL_init();
SYSCFG_DL_Motor_init();
SYSCFG_DL_Beep_init();
SYSCFG_DL_Servo_init();
SYSCFG_DL_Encoder1_TIM_init();
SYSCFG_DL_Encoder2_TIM_init();
SYSCFG_DL_Encoder_Count_init();
SYSCFG_DL_I2C_0_init();
SYSCFG_DL_I2C_1_init();
SYSCFG_DL_PRINTF_init();
SYSCFG_DL_IMU_init();
SYSCFG_DL_HOST_init();
SYSCFG_DL_Stepmotor_init();
/* Ensure backup structures have no valid state */
gMotorBackup.backupRdy = false;
gBeepBackup.backupRdy = false;
gEncoder1_TIMBackup.backupRdy = false;
gEncoder2_TIMBackup.backupRdy = false;
gHOSTBackup.backupRdy = false;
}
/*
* User should take care to save and restore register configuration in application.
* See Retention Configuration section for more details.
*/
SYSCONFIG_WEAK bool SYSCFG_DL_saveConfiguration(void)
{
bool retStatus = true;
retStatus &= DL_TimerA_saveConfiguration(Motor_INST, &gMotorBackup);
retStatus &= DL_TimerG_saveConfiguration(Beep_INST, &gBeepBackup);
retStatus &= DL_TimerG_saveConfiguration(Encoder1_TIM_INST, &gEncoder1_TIMBackup);
retStatus &= DL_TimerA_saveConfiguration(Encoder2_TIM_INST, &gEncoder2_TIMBackup);
retStatus &= DL_UART_Main_saveConfiguration(HOST_INST, &gHOSTBackup);
return retStatus;
}
SYSCONFIG_WEAK bool SYSCFG_DL_restoreConfiguration(void)
{
bool retStatus = true;
retStatus &= DL_TimerA_restoreConfiguration(Motor_INST, &gMotorBackup, false);
retStatus &= DL_TimerG_restoreConfiguration(Beep_INST, &gBeepBackup, false);
retStatus &= DL_TimerG_restoreConfiguration(Encoder1_TIM_INST, &gEncoder1_TIMBackup, false);
retStatus &= DL_TimerA_restoreConfiguration(Encoder2_TIM_INST, &gEncoder2_TIMBackup, false);
retStatus &= DL_UART_Main_restoreConfiguration(HOST_INST, &gHOSTBackup);
return retStatus;
}
SYSCONFIG_WEAK void SYSCFG_DL_initPower(void)
{
DL_GPIO_reset(GPIOA);
DL_GPIO_reset(GPIOB);
DL_TimerA_reset(Motor_INST);
DL_TimerG_reset(Beep_INST);
DL_TimerG_reset(Servo_INST);
DL_TimerG_reset(Encoder1_TIM_INST);
DL_TimerA_reset(Encoder2_TIM_INST);
DL_TimerG_reset(Encoder_Count_INST);
DL_I2C_reset(I2C_0_INST);
DL_I2C_reset(I2C_1_INST);
DL_UART_Main_reset(PRINTF_INST);
DL_UART_Main_reset(IMU_INST);
DL_UART_Main_reset(HOST_INST);
DL_UART_Main_reset(Stepmotor_INST);
DL_GPIO_enablePower(GPIOA);
DL_GPIO_enablePower(GPIOB);
DL_TimerA_enablePower(Motor_INST);
DL_TimerG_enablePower(Beep_INST);
DL_TimerG_enablePower(Servo_INST);
DL_TimerG_enablePower(Encoder1_TIM_INST);
DL_TimerA_enablePower(Encoder2_TIM_INST);
DL_TimerG_enablePower(Encoder_Count_INST);
DL_I2C_enablePower(I2C_0_INST);
DL_I2C_enablePower(I2C_1_INST);
DL_UART_Main_enablePower(PRINTF_INST);
DL_UART_Main_enablePower(IMU_INST);
DL_UART_Main_enablePower(HOST_INST);
DL_UART_Main_enablePower(Stepmotor_INST);
delay_cycles(POWER_STARTUP_DELAY);
}
SYSCONFIG_WEAK void SYSCFG_DL_GPIO_init(void)
{
DL_GPIO_initPeripheralOutputFunction(GPIO_Motor_C0_IOMUX,GPIO_Motor_C0_IOMUX_FUNC);
DL_GPIO_enableOutput(GPIO_Motor_C0_PORT, GPIO_Motor_C0_PIN);
DL_GPIO_initPeripheralOutputFunction(GPIO_Motor_C1_IOMUX,GPIO_Motor_C1_IOMUX_FUNC);
DL_GPIO_enableOutput(GPIO_Motor_C1_PORT, GPIO_Motor_C1_PIN);
DL_GPIO_initPeripheralOutputFunction(GPIO_Beep_C1_IOMUX,GPIO_Beep_C1_IOMUX_FUNC);
DL_GPIO_enableOutput(GPIO_Beep_C1_PORT, GPIO_Beep_C1_PIN);
DL_GPIO_initPeripheralOutputFunction(GPIO_Servo_C0_IOMUX,GPIO_Servo_C0_IOMUX_FUNC);
DL_GPIO_enableOutput(GPIO_Servo_C0_PORT, GPIO_Servo_C0_PIN);
DL_GPIO_initPeripheralOutputFunction(GPIO_Servo_C1_IOMUX,GPIO_Servo_C1_IOMUX_FUNC);
DL_GPIO_enableOutput(GPIO_Servo_C1_PORT, GPIO_Servo_C1_PIN);
DL_GPIO_initPeripheralInputFunction(GPIO_Encoder1_TIM_C0_IOMUX,GPIO_Encoder1_TIM_C0_IOMUX_FUNC);
DL_GPIO_initPeripheralInputFunction(GPIO_Encoder2_TIM_C0_IOMUX,GPIO_Encoder2_TIM_C0_IOMUX_FUNC);
DL_GPIO_initPeripheralInputFunctionFeatures(GPIO_I2C_0_IOMUX_SDA,
GPIO_I2C_0_IOMUX_SDA_FUNC, DL_GPIO_INVERSION_DISABLE,
DL_GPIO_RESISTOR_NONE, DL_GPIO_HYSTERESIS_DISABLE,
DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initPeripheralInputFunctionFeatures(GPIO_I2C_0_IOMUX_SCL,
GPIO_I2C_0_IOMUX_SCL_FUNC, DL_GPIO_INVERSION_DISABLE,
DL_GPIO_RESISTOR_NONE, DL_GPIO_HYSTERESIS_DISABLE,
DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_enableHiZ(GPIO_I2C_0_IOMUX_SDA);
DL_GPIO_enableHiZ(GPIO_I2C_0_IOMUX_SCL);
DL_GPIO_initPeripheralInputFunctionFeatures(GPIO_I2C_1_IOMUX_SDA,
GPIO_I2C_1_IOMUX_SDA_FUNC, DL_GPIO_INVERSION_DISABLE,
DL_GPIO_RESISTOR_NONE, DL_GPIO_HYSTERESIS_DISABLE,
DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initPeripheralInputFunctionFeatures(GPIO_I2C_1_IOMUX_SCL,
GPIO_I2C_1_IOMUX_SCL_FUNC, DL_GPIO_INVERSION_DISABLE,
DL_GPIO_RESISTOR_NONE, DL_GPIO_HYSTERESIS_DISABLE,
DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_enableHiZ(GPIO_I2C_1_IOMUX_SDA);
DL_GPIO_enableHiZ(GPIO_I2C_1_IOMUX_SCL);
DL_GPIO_initPeripheralOutputFunction(
GPIO_PRINTF_IOMUX_TX, GPIO_PRINTF_IOMUX_TX_FUNC);
DL_GPIO_initPeripheralInputFunction(
GPIO_PRINTF_IOMUX_RX, GPIO_PRINTF_IOMUX_RX_FUNC);
DL_GPIO_initPeripheralOutputFunction(
GPIO_IMU_IOMUX_TX, GPIO_IMU_IOMUX_TX_FUNC);
DL_GPIO_initPeripheralInputFunction(
GPIO_IMU_IOMUX_RX, GPIO_IMU_IOMUX_RX_FUNC);
DL_GPIO_initPeripheralOutputFunction(
GPIO_HOST_IOMUX_TX, GPIO_HOST_IOMUX_TX_FUNC);
DL_GPIO_initPeripheralInputFunction(
GPIO_HOST_IOMUX_RX, GPIO_HOST_IOMUX_RX_FUNC);
DL_GPIO_initPeripheralOutputFunction(
GPIO_Stepmotor_IOMUX_TX, GPIO_Stepmotor_IOMUX_TX_FUNC);
DL_GPIO_initPeripheralInputFunction(
GPIO_Stepmotor_IOMUX_RX, GPIO_Stepmotor_IOMUX_RX_FUNC);
DL_GPIO_initDigitalInputFeatures(Encoder1_GPIO_Encoder1B_GPIO_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_NONE,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Encoder2_GPIO_Encoder2B_GPIO_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_NONE,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalOutputFeatures(Lights_Light_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_DOWN,
DL_GPIO_DRIVE_STRENGTH_LOW, DL_GPIO_HIZ_DISABLE);
DL_GPIO_initDigitalOutput(LED_Board_IOMUX);
DL_GPIO_initDigitalOutput(LED_Led1_IOMUX);
DL_GPIO_initDigitalOutput(LED_Led2_IOMUX);
DL_GPIO_initDigitalOutput(LED_Led3_IOMUX);
DL_GPIO_initDigitalInputFeatures(Key_Key1_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_NONE,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Key_Key2_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_NONE,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Key_Key3_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_NONE,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Key_Key4_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_NONE,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalOutput(MotorDirection_AIN1_IOMUX);
DL_GPIO_initDigitalOutput(MotorDirection_AIN2_IOMUX);
DL_GPIO_initDigitalOutput(MotorDirection_BIN1_IOMUX);
DL_GPIO_initDigitalOutput(MotorDirection_BIN2_IOMUX);
DL_GPIO_initDigitalInputFeatures(Tracker_Track1_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Tracker_Track2_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Tracker_Track3_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Tracker_Track4_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Tracker_Track5_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Tracker_Track6_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_initDigitalInputFeatures(Tracker_Track7_IOMUX,
DL_GPIO_INVERSION_DISABLE, DL_GPIO_RESISTOR_PULL_UP,
DL_GPIO_HYSTERESIS_DISABLE, DL_GPIO_WAKEUP_DISABLE);
DL_GPIO_clearPins(GPIOA, Lights_Light_PIN |
MotorDirection_AIN1_PIN |
MotorDirection_AIN2_PIN |
MotorDirection_BIN1_PIN |
MotorDirection_BIN2_PIN);
DL_GPIO_enableOutput(GPIOA, Lights_Light_PIN |
MotorDirection_AIN1_PIN |
MotorDirection_AIN2_PIN |
MotorDirection_BIN1_PIN |
MotorDirection_BIN2_PIN);
DL_GPIO_setLowerPinsPolarity(GPIOA, DL_GPIO_PIN_7_EDGE_RISE);
DL_GPIO_clearInterruptStatus(GPIOA, Key_Key1_PIN);
DL_GPIO_enableInterrupt(GPIOA, Key_Key1_PIN);
DL_GPIO_clearPins(GPIOB, LED_Board_PIN |
LED_Led1_PIN |
LED_Led2_PIN |
LED_Led3_PIN);
DL_GPIO_enableOutput(GPIOB, LED_Board_PIN |
LED_Led1_PIN |
LED_Led2_PIN |
LED_Led3_PIN);
DL_GPIO_setLowerPinsPolarity(GPIOB, DL_GPIO_PIN_10_EDGE_RISE |
DL_GPIO_PIN_11_EDGE_RISE |
DL_GPIO_PIN_14_EDGE_RISE |
DL_GPIO_PIN_0_EDGE_FALL |
DL_GPIO_PIN_1_EDGE_FALL);
DL_GPIO_setUpperPinsPolarity(GPIOB, DL_GPIO_PIN_21_EDGE_FALL |
DL_GPIO_PIN_24_EDGE_FALL |
DL_GPIO_PIN_17_EDGE_FALL |
DL_GPIO_PIN_18_EDGE_FALL |
DL_GPIO_PIN_19_EDGE_FALL);
DL_GPIO_clearInterruptStatus(GPIOB, Key_Key2_PIN |
Key_Key3_PIN |
Key_Key4_PIN |
Tracker_Track1_PIN |
Tracker_Track2_PIN |
Tracker_Track3_PIN |
Tracker_Track4_PIN |
Tracker_Track5_PIN |
Tracker_Track6_PIN |
Tracker_Track7_PIN);
DL_GPIO_enableInterrupt(GPIOB, Key_Key2_PIN |
Key_Key3_PIN |
Key_Key4_PIN |
Tracker_Track1_PIN |
Tracker_Track2_PIN |
Tracker_Track3_PIN |
Tracker_Track4_PIN |
Tracker_Track5_PIN |
Tracker_Track6_PIN |
Tracker_Track7_PIN);
}
static const DL_SYSCTL_SYSPLLConfig gSYSPLLConfig = {
.inputFreq = DL_SYSCTL_SYSPLL_INPUT_FREQ_16_32_MHZ,
.rDivClk2x = 3,
.rDivClk1 = 0,
.rDivClk0 = 0,
.enableCLK2x = DL_SYSCTL_SYSPLL_CLK2X_ENABLE,
.enableCLK1 = DL_SYSCTL_SYSPLL_CLK1_DISABLE,
.enableCLK0 = DL_SYSCTL_SYSPLL_CLK0_DISABLE,
.sysPLLMCLK = DL_SYSCTL_SYSPLL_MCLK_CLK2X,
.sysPLLRef = DL_SYSCTL_SYSPLL_REF_SYSOSC,
.qDiv = 9,
.pDiv = DL_SYSCTL_SYSPLL_PDIV_2
};
SYSCONFIG_WEAK void SYSCFG_DL_SYSCTL_init(void)
{
//Low Power Mode is configured to be SLEEP0
DL_SYSCTL_setBORThreshold(DL_SYSCTL_BOR_THRESHOLD_LEVEL_0);
DL_SYSCTL_setFlashWaitState(DL_SYSCTL_FLASH_WAIT_STATE_2);
DL_SYSCTL_setSYSOSCFreq(DL_SYSCTL_SYSOSC_FREQ_BASE);
/* Set default configuration */
DL_SYSCTL_disableHFXT();
DL_SYSCTL_disableSYSPLL();
DL_SYSCTL_configSYSPLL((DL_SYSCTL_SYSPLLConfig *) &gSYSPLLConfig);
DL_SYSCTL_setULPCLKDivider(DL_SYSCTL_ULPCLK_DIV_2);
DL_SYSCTL_enableMFCLK();
DL_SYSCTL_setMCLKSource(SYSOSC, HSCLK, DL_SYSCTL_HSCLK_SOURCE_SYSPLL);
}
/*
* Timer clock configuration to be sourced by / 8 (10000000 Hz)
* timerClkFreq = (timerClkSrc / (timerClkDivRatio * (timerClkPrescale + 1)))
* 10000000 Hz = 10000000 Hz / (8 * (0 + 1))
*/
static const DL_TimerA_ClockConfig gMotorClockConfig = {
.clockSel = DL_TIMER_CLOCK_BUSCLK,
.divideRatio = DL_TIMER_CLOCK_DIVIDE_8,
.prescale = 0U
};
static const DL_TimerA_PWMConfig gMotorConfig = {
.pwmMode = DL_TIMER_PWM_MODE_EDGE_ALIGN,
.period = 10000,
.isTimerWithFourCC = false,
.startTimer = DL_TIMER_START,
};
SYSCONFIG_WEAK void SYSCFG_DL_Motor_init(void) {
DL_TimerA_setClockConfig(
Motor_INST, (DL_TimerA_ClockConfig *) &gMotorClockConfig);
DL_TimerA_initPWMMode(
Motor_INST, (DL_TimerA_PWMConfig *) &gMotorConfig);
DL_TimerA_setCaptureCompareOutCtl(Motor_INST, DL_TIMER_CC_OCTL_INIT_VAL_LOW,
DL_TIMER_CC_OCTL_INV_OUT_ENABLED, DL_TIMER_CC_OCTL_SRC_FUNCVAL,
DL_TIMERA_CAPTURE_COMPARE_0_INDEX);
DL_TimerA_setCaptCompUpdateMethod(Motor_INST, DL_TIMER_CC_UPDATE_METHOD_IMMEDIATE, DL_TIMERA_CAPTURE_COMPARE_0_INDEX);
DL_TimerA_setCaptureCompareValue(Motor_INST, 5000, DL_TIMER_CC_0_INDEX);
DL_TimerA_setCaptureCompareOutCtl(Motor_INST, DL_TIMER_CC_OCTL_INIT_VAL_LOW,
DL_TIMER_CC_OCTL_INV_OUT_ENABLED, DL_TIMER_CC_OCTL_SRC_FUNCVAL,
DL_TIMERA_CAPTURE_COMPARE_1_INDEX);
DL_TimerA_setCaptCompUpdateMethod(Motor_INST, DL_TIMER_CC_UPDATE_METHOD_IMMEDIATE, DL_TIMERA_CAPTURE_COMPARE_1_INDEX);
DL_TimerA_setCaptureCompareValue(Motor_INST, 5000, DL_TIMER_CC_1_INDEX);
DL_TimerA_enableClock(Motor_INST);
DL_TimerA_setCCPDirection(Motor_INST , DL_TIMER_CC0_OUTPUT | DL_TIMER_CC1_OUTPUT );
}
/*
* Timer clock configuration to be sourced by / 8 (10000000 Hz)
* timerClkFreq = (timerClkSrc / (timerClkDivRatio * (timerClkPrescale + 1)))
* 10000000 Hz = 10000000 Hz / (8 * (0 + 1))
*/
static const DL_TimerG_ClockConfig gBeepClockConfig = {
.clockSel = DL_TIMER_CLOCK_BUSCLK,
.divideRatio = DL_TIMER_CLOCK_DIVIDE_8,
.prescale = 0U
};
static const DL_TimerG_PWMConfig gBeepConfig = {
.pwmMode = DL_TIMER_PWM_MODE_EDGE_ALIGN,
.period = 2500,
.isTimerWithFourCC = false,
.startTimer = DL_TIMER_STOP,
};
SYSCONFIG_WEAK void SYSCFG_DL_Beep_init(void) {
DL_TimerG_setClockConfig(
Beep_INST, (DL_TimerG_ClockConfig *) &gBeepClockConfig);
DL_TimerG_initPWMMode(
Beep_INST, (DL_TimerG_PWMConfig *) &gBeepConfig);
DL_TimerG_setCaptureCompareOutCtl(Beep_INST, DL_TIMER_CC_OCTL_INIT_VAL_LOW,
DL_TIMER_CC_OCTL_INV_OUT_DISABLED, DL_TIMER_CC_OCTL_SRC_FUNCVAL,
DL_TIMERG_CAPTURE_COMPARE_1_INDEX);
DL_TimerG_setCaptCompUpdateMethod(Beep_INST, DL_TIMER_CC_UPDATE_METHOD_IMMEDIATE, DL_TIMERG_CAPTURE_COMPARE_1_INDEX);
DL_TimerG_setCaptureCompareValue(Beep_INST, 1250, DL_TIMER_CC_1_INDEX);
DL_TimerG_enableClock(Beep_INST);
DL_TimerG_setCCPDirection(Beep_INST , DL_TIMER_CC1_OUTPUT );
}
/*
* Timer clock configuration to be sourced by / 8 (5000000 Hz)
* timerClkFreq = (timerClkSrc / (timerClkDivRatio * (timerClkPrescale + 1)))
* 500000 Hz = 5000000 Hz / (8 * (9 + 1))
*/
static const DL_TimerG_ClockConfig gServoClockConfig = {
.clockSel = DL_TIMER_CLOCK_BUSCLK,
.divideRatio = DL_TIMER_CLOCK_DIVIDE_8,
.prescale = 9U
};
static const DL_TimerG_PWMConfig gServoConfig = {
.pwmMode = DL_TIMER_PWM_MODE_EDGE_ALIGN,
.period = 10000,
.isTimerWithFourCC = false,
.startTimer = DL_TIMER_START,
};
SYSCONFIG_WEAK void SYSCFG_DL_Servo_init(void) {
DL_TimerG_setClockConfig(
Servo_INST, (DL_TimerG_ClockConfig *) &gServoClockConfig);
DL_TimerG_initPWMMode(
Servo_INST, (DL_TimerG_PWMConfig *) &gServoConfig);
DL_TimerG_setCaptureCompareOutCtl(Servo_INST, DL_TIMER_CC_OCTL_INIT_VAL_LOW,
DL_TIMER_CC_OCTL_INV_OUT_ENABLED, DL_TIMER_CC_OCTL_SRC_FUNCVAL,
DL_TIMERG_CAPTURE_COMPARE_0_INDEX);
DL_TimerG_setCaptCompUpdateMethod(Servo_INST, DL_TIMER_CC_UPDATE_METHOD_IMMEDIATE, DL_TIMERG_CAPTURE_COMPARE_0_INDEX);
DL_TimerG_setCaptureCompareValue(Servo_INST, 9250, DL_TIMER_CC_0_INDEX);
DL_TimerG_setCaptureCompareOutCtl(Servo_INST, DL_TIMER_CC_OCTL_INIT_VAL_LOW,
DL_TIMER_CC_OCTL_INV_OUT_ENABLED, DL_TIMER_CC_OCTL_SRC_FUNCVAL,
DL_TIMERG_CAPTURE_COMPARE_1_INDEX);
DL_TimerG_setCaptCompUpdateMethod(Servo_INST, DL_TIMER_CC_UPDATE_METHOD_IMMEDIATE, DL_TIMERG_CAPTURE_COMPARE_1_INDEX);
DL_TimerG_setCaptureCompareValue(Servo_INST, 9250, DL_TIMER_CC_1_INDEX);
DL_TimerG_enableClock(Servo_INST);
DL_TimerG_setCCPDirection(Servo_INST , DL_TIMER_CC0_OUTPUT | DL_TIMER_CC1_OUTPUT );
}
/*
* Timer clock configuration to be sourced by BUSCLK / (80000000 Hz)
* timerClkFreq = (timerClkSrc / (timerClkDivRatio * (timerClkPrescale + 1)))
* 80000000 Hz = 80000000 Hz / (1 * (0 + 1))
*/
static const DL_TimerG_ClockConfig gEncoder1_TIMClockConfig = {
.clockSel = DL_TIMER_CLOCK_BUSCLK,
.divideRatio = DL_TIMER_CLOCK_DIVIDE_1,
.prescale = 0U
};
static const DL_TimerG_CompareConfig gEncoder1_TIMCompareConfig = {
.compareMode = DL_TIMER_COMPARE_MODE_EDGE_COUNT_UP,
.count = 0,
.startTimer = DL_TIMER_STOP,
.edgeDetectMode = DL_TIMER_COMPARE_EDGE_DETECTION_MODE_RISING,
.inputChan = DL_TIMER_INPUT_CHAN_0,
.inputInvMode = DL_TIMER_CC_INPUT_INV_NOINVERT,
};
SYSCONFIG_WEAK void SYSCFG_DL_Encoder1_TIM_init(void) {
DL_TimerG_setClockConfig(Encoder1_TIM_INST,
(DL_TimerG_ClockConfig *) &gEncoder1_TIMClockConfig);
DL_TimerG_initCompareMode(Encoder1_TIM_INST,
(DL_TimerG_CompareConfig *) &gEncoder1_TIMCompareConfig);
DL_TimerG_setCaptureCompareInputFilter(Encoder1_TIM_INST,
DL_TIMER_CC_INPUT_FILT_CPV_VOTING, DL_TIMER_CC_INPUT_FILT_FP_PER_3,
DL_TIMER_CC_0_INDEX);
DL_TimerG_enableCaptureCompareInputFilter(Encoder1_TIM_INST,
DL_TIMER_CC_0_INDEX);
DL_TimerG_enableInterrupt(Encoder1_TIM_INST , DL_TIMERG_INTERRUPT_LOAD_EVENT);
DL_TimerG_enableClock(Encoder1_TIM_INST);
}
/*
* Timer clock configuration to be sourced by BUSCLK / (80000000 Hz)
* timerClkFreq = (timerClkSrc / (timerClkDivRatio * (timerClkPrescale + 1)))
* 80000000 Hz = 80000000 Hz / (1 * (0 + 1))
*/
static const DL_TimerA_ClockConfig gEncoder2_TIMClockConfig = {
.clockSel = DL_TIMER_CLOCK_BUSCLK,
.divideRatio = DL_TIMER_CLOCK_DIVIDE_1,
.prescale = 0U
};
static const DL_TimerA_CompareConfig gEncoder2_TIMCompareConfig = {
.compareMode = DL_TIMER_COMPARE_MODE_EDGE_COUNT_UP,
.count = 0,
.startTimer = DL_TIMER_STOP,
.edgeDetectMode = DL_TIMER_COMPARE_EDGE_DETECTION_MODE_RISING,
.inputChan = DL_TIMER_INPUT_CHAN_0,
.inputInvMode = DL_TIMER_CC_INPUT_INV_NOINVERT,
};
SYSCONFIG_WEAK void SYSCFG_DL_Encoder2_TIM_init(void) {
DL_TimerA_setClockConfig(Encoder2_TIM_INST,
(DL_TimerA_ClockConfig *) &gEncoder2_TIMClockConfig);
DL_TimerA_initCompareMode(Encoder2_TIM_INST,
(DL_TimerA_CompareConfig *) &gEncoder2_TIMCompareConfig);
DL_TimerA_setCaptureCompareInputFilter(Encoder2_TIM_INST,
DL_TIMER_CC_INPUT_FILT_CPV_VOTING, DL_TIMER_CC_INPUT_FILT_FP_PER_3,
DL_TIMER_CC_0_INDEX);
DL_TimerA_enableCaptureCompareInputFilter(Encoder2_TIM_INST,
DL_TIMER_CC_0_INDEX);
DL_TimerA_enableInterrupt(Encoder2_TIM_INST , DL_TIMERA_INTERRUPT_LOAD_EVENT);
DL_TimerA_enableClock(Encoder2_TIM_INST);
}
/*
* Timer clock configuration to be sourced by BUSCLK / (5000000 Hz)
* timerClkFreq = (timerClkSrc / (timerClkDivRatio * (timerClkPrescale + 1)))
* 500000 Hz = 5000000 Hz / (8 * (9 + 1))
*/
static const DL_TimerG_ClockConfig gEncoder_CountClockConfig = {
.clockSel = DL_TIMER_CLOCK_BUSCLK,
.divideRatio = DL_TIMER_CLOCK_DIVIDE_8,
.prescale = 9U,
};
/*
* Timer load value (where the counter starts from) is calculated as (timerPeriod * timerClockFreq) - 1
* Encoder_Count_INST_LOAD_VALUE = (100 ms * 500000 Hz) - 1
*/
static const DL_TimerG_TimerConfig gEncoder_CountTimerConfig = {
.period = Encoder_Count_INST_LOAD_VALUE,
.timerMode = DL_TIMER_TIMER_MODE_PERIODIC_UP,
.startTimer = DL_TIMER_START,
};
SYSCONFIG_WEAK void SYSCFG_DL_Encoder_Count_init(void) {
DL_TimerG_setClockConfig(Encoder_Count_INST,
(DL_TimerG_ClockConfig *) &gEncoder_CountClockConfig);
DL_TimerG_initTimerMode(Encoder_Count_INST,
(DL_TimerG_TimerConfig *) &gEncoder_CountTimerConfig);
DL_TimerG_enableInterrupt(Encoder_Count_INST , DL_TIMERG_INTERRUPT_ZERO_EVENT);
DL_TimerG_enableClock(Encoder_Count_INST);
}
static const DL_I2C_ClockConfig gI2C_0ClockConfig = {
.clockSel = DL_I2C_CLOCK_BUSCLK,
.divideRatio = DL_I2C_CLOCK_DIVIDE_1,
};
SYSCONFIG_WEAK void SYSCFG_DL_I2C_0_init(void) {
DL_I2C_setClockConfig(I2C_0_INST,
(DL_I2C_ClockConfig *) &gI2C_0ClockConfig);
DL_I2C_setAnalogGlitchFilterPulseWidth(I2C_0_INST,
DL_I2C_ANALOG_GLITCH_FILTER_WIDTH_50NS);
DL_I2C_enableAnalogGlitchFilter(I2C_0_INST);
/* Configure Controller Mode */
DL_I2C_resetControllerTransfer(I2C_0_INST);
/* Set frequency to 100000 Hz*/
DL_I2C_setTimerPeriod(I2C_0_INST, 39);
DL_I2C_setControllerTXFIFOThreshold(I2C_0_INST, DL_I2C_TX_FIFO_LEVEL_EMPTY);
DL_I2C_setControllerRXFIFOThreshold(I2C_0_INST, DL_I2C_RX_FIFO_LEVEL_BYTES_1);
DL_I2C_enableControllerClockStretching(I2C_0_INST);
/* Enable module */
DL_I2C_enableController(I2C_0_INST);
}
static const DL_I2C_ClockConfig gI2C_1ClockConfig = {
.clockSel = DL_I2C_CLOCK_BUSCLK,
.divideRatio = DL_I2C_CLOCK_DIVIDE_1,
};
SYSCONFIG_WEAK void SYSCFG_DL_I2C_1_init(void) {
DL_I2C_setClockConfig(I2C_1_INST,
(DL_I2C_ClockConfig *) &gI2C_1ClockConfig);
DL_I2C_setAnalogGlitchFilterPulseWidth(I2C_1_INST,
DL_I2C_ANALOG_GLITCH_FILTER_WIDTH_50NS);
DL_I2C_enableAnalogGlitchFilter(I2C_1_INST);
/* Configure Controller Mode */
DL_I2C_resetControllerTransfer(I2C_1_INST);
/* Set frequency to 100000 Hz*/
DL_I2C_setTimerPeriod(I2C_1_INST, 39);
DL_I2C_setControllerTXFIFOThreshold(I2C_1_INST, DL_I2C_TX_FIFO_LEVEL_EMPTY);
DL_I2C_setControllerRXFIFOThreshold(I2C_1_INST, DL_I2C_RX_FIFO_LEVEL_BYTES_1);
DL_I2C_enableControllerClockStretching(I2C_1_INST);
/* Enable module */
DL_I2C_enableController(I2C_1_INST);
}
static const DL_UART_Main_ClockConfig gPRINTFClockConfig = {
.clockSel = DL_UART_MAIN_CLOCK_MFCLK,
.divideRatio = DL_UART_MAIN_CLOCK_DIVIDE_RATIO_1
};
static const DL_UART_Main_Config gPRINTFConfig = {
.mode = DL_UART_MAIN_MODE_NORMAL,
.direction = DL_UART_MAIN_DIRECTION_TX_RX,
.flowControl = DL_UART_MAIN_FLOW_CONTROL_NONE,
.parity = DL_UART_MAIN_PARITY_NONE,
.wordLength = DL_UART_MAIN_WORD_LENGTH_8_BITS,
.stopBits = DL_UART_MAIN_STOP_BITS_ONE
};
SYSCONFIG_WEAK void SYSCFG_DL_PRINTF_init(void)
{
DL_UART_Main_setClockConfig(PRINTF_INST, (DL_UART_Main_ClockConfig *) &gPRINTFClockConfig);
DL_UART_Main_init(PRINTF_INST, (DL_UART_Main_Config *) &gPRINTFConfig);
/*
* Configure baud rate by setting oversampling and baud rate divisors.
* Target baud rate: 115200
* Actual baud rate: 115107.91
*/
DL_UART_Main_setOversampling(PRINTF_INST, DL_UART_OVERSAMPLING_RATE_16X);
DL_UART_Main_setBaudRateDivisor(PRINTF_INST, PRINTF_IBRD_4_MHZ_115200_BAUD, PRINTF_FBRD_4_MHZ_115200_BAUD);
/* Configure Interrupts */
DL_UART_Main_enableInterrupt(PRINTF_INST,
DL_UART_MAIN_INTERRUPT_RX);
DL_UART_Main_enable(PRINTF_INST);
}
static const DL_UART_Main_ClockConfig gIMUClockConfig = {
.clockSel = DL_UART_MAIN_CLOCK_MFCLK,
.divideRatio = DL_UART_MAIN_CLOCK_DIVIDE_RATIO_1
};
static const DL_UART_Main_Config gIMUConfig = {
.mode = DL_UART_MAIN_MODE_NORMAL,
.direction = DL_UART_MAIN_DIRECTION_TX_RX,
.flowControl = DL_UART_MAIN_FLOW_CONTROL_NONE,
.parity = DL_UART_MAIN_PARITY_NONE,
.wordLength = DL_UART_MAIN_WORD_LENGTH_8_BITS,
.stopBits = DL_UART_MAIN_STOP_BITS_ONE
};
SYSCONFIG_WEAK void SYSCFG_DL_IMU_init(void)
{
DL_UART_Main_setClockConfig(IMU_INST, (DL_UART_Main_ClockConfig *) &gIMUClockConfig);
DL_UART_Main_init(IMU_INST, (DL_UART_Main_Config *) &gIMUConfig);
/*
* Configure baud rate by setting oversampling and baud rate divisors.
* Target baud rate: 115200
* Actual baud rate: 115107.91
*/
DL_UART_Main_setOversampling(IMU_INST, DL_UART_OVERSAMPLING_RATE_16X);
DL_UART_Main_setBaudRateDivisor(IMU_INST, IMU_IBRD_4_MHZ_115200_BAUD, IMU_FBRD_4_MHZ_115200_BAUD);
/* Configure Interrupts */
DL_UART_Main_enableInterrupt(IMU_INST,
DL_UART_MAIN_INTERRUPT_RX);
DL_UART_Main_enable(IMU_INST);
}
static const DL_UART_Main_ClockConfig gHOSTClockConfig = {
.clockSel = DL_UART_MAIN_CLOCK_MFCLK,
.divideRatio = DL_UART_MAIN_CLOCK_DIVIDE_RATIO_1
};
static const DL_UART_Main_Config gHOSTConfig = {
.mode = DL_UART_MAIN_MODE_NORMAL,
.direction = DL_UART_MAIN_DIRECTION_TX_RX,
.flowControl = DL_UART_MAIN_FLOW_CONTROL_NONE,
.parity = DL_UART_MAIN_PARITY_NONE,
.wordLength = DL_UART_MAIN_WORD_LENGTH_8_BITS,
.stopBits = DL_UART_MAIN_STOP_BITS_ONE
};
SYSCONFIG_WEAK void SYSCFG_DL_HOST_init(void)
{
DL_UART_Main_setClockConfig(HOST_INST, (DL_UART_Main_ClockConfig *) &gHOSTClockConfig);
DL_UART_Main_init(HOST_INST, (DL_UART_Main_Config *) &gHOSTConfig);
/*
* Configure baud rate by setting oversampling and baud rate divisors.
* Target baud rate: 115200
* Actual baud rate: 115107.91
*/
DL_UART_Main_setOversampling(HOST_INST, DL_UART_OVERSAMPLING_RATE_16X);
DL_UART_Main_setBaudRateDivisor(HOST_INST, HOST_IBRD_4_MHZ_115200_BAUD, HOST_FBRD_4_MHZ_115200_BAUD);
/* Configure Interrupts */
DL_UART_Main_enableInterrupt(HOST_INST,
DL_UART_MAIN_INTERRUPT_RX);
DL_UART_Main_enable(HOST_INST);
}
static const DL_UART_Main_ClockConfig gStepmotorClockConfig = {
.clockSel = DL_UART_MAIN_CLOCK_MFCLK,
.divideRatio = DL_UART_MAIN_CLOCK_DIVIDE_RATIO_1
};
static const DL_UART_Main_Config gStepmotorConfig = {
.mode = DL_UART_MAIN_MODE_NORMAL,
.direction = DL_UART_MAIN_DIRECTION_TX_RX,
.flowControl = DL_UART_MAIN_FLOW_CONTROL_NONE,
.parity = DL_UART_MAIN_PARITY_NONE,
.wordLength = DL_UART_MAIN_WORD_LENGTH_8_BITS,
.stopBits = DL_UART_MAIN_STOP_BITS_ONE
};
SYSCONFIG_WEAK void SYSCFG_DL_Stepmotor_init(void)
{
DL_UART_Main_setClockConfig(Stepmotor_INST, (DL_UART_Main_ClockConfig *) &gStepmotorClockConfig);
DL_UART_Main_init(Stepmotor_INST, (DL_UART_Main_Config *) &gStepmotorConfig);
/*
* Configure baud rate by setting oversampling and baud rate divisors.
* Target baud rate: 115200
* Actual baud rate: 115107.91
*/
DL_UART_Main_setOversampling(Stepmotor_INST, DL_UART_OVERSAMPLING_RATE_16X);
DL_UART_Main_setBaudRateDivisor(Stepmotor_INST, Stepmotor_IBRD_4_MHZ_115200_BAUD, Stepmotor_FBRD_4_MHZ_115200_BAUD);
/* Configure Interrupts */
DL_UART_Main_enableInterrupt(Stepmotor_INST,
DL_UART_MAIN_INTERRUPT_RX);
DL_UART_Main_enable(Stepmotor_INST);
}