void TestDelay(uint32 delay); void TestDelay(uint32 delay) { static volatile uint32 DelayTimer = 0; while (DelayTimer<delay) { DelayTimer++; } DelayTimer=0; } extern void CAN2_ORED_0_31_MB_IRQHandler(void); #if 1 // #include "Can_Ipw.h" #define MSG_ID 20u #define RX_MB_IDX 1U #define TX_MB_IDX 0U volatile int exit_code = 0; extern Flexcan_Ip_StateType Can_Ipw_xStatus0; /* User includes / uint8 dummyData[8] = {1,2,3,4,5,6,7}; /! \brief The main function for the project. \details The startup initialization sequence is the following: * - startup asm routine * - main() / //extern const Clock_Ip_ClockConfigType Clock_Ip_aClockConfig[1]; extern void CAN0_ORED_0_31_MB_IRQHandler(void); int main(void) { uint8 u8TimeOut = 100U; CanIf_bTxFlag = FALSE; CanIf_bRxFlag = FALSE; / Initialize the Mcu driver / #if (MCU_PRECOMPILE_SUPPORT == STD_ON) Mcu_Init(NULL_PTR); #elif (MCU_PRECOMPILE_SUPPORT == STD_OFF) Mcu_Init(&Mcu_Config); / Initialize the clock tree and apply PLL as system clock / Mcu_InitClock(McuClockSettingConfig_0); while ( MCU_PLL_LOCKED != Mcu_GetPllStatus() ) { / Busy wait until the System PLL is locked / } #endif / (MCU_PRECOMPILE_SUPPORT == STD_ON) / / Write your code here / Mcu_DistributePllClock(); Mcu_SetMode(McuModeSettingConf_0); / Initialize Platform driver */ Platform_Init(NULL_PTR); Port_Init(&Port_Config); Spi_Init(&Spi_Config); #if 1 // CanTrcv_TJA1145_Init(); uint8 SWK_WUF_Detection = 0u; uint8 tempRegVal = 0u; /SBC mode StandBy/ /SBC_SetMode(CANTRCV_TRCVMODE_STANDBY);/ /Disable wakepin/ Sbc_Reg_Write(CanTrcv_Tja1145_Wpe, 0x00, FALSE); /Set Lock control register/ Sbc_Reg_Write(CanTrcv_Tja1145_Lc, 0x00, FALSE); /Can baudrate config/ Sbc_Reg_Write(CanTrcv_Tja1145_Dr, CANTRCV_TJA1145_CAN_DATA_RATE, FALSE); /Set CAN control register/ Sbc_Reg_Write(CanTrcv_Tja1145_Cc, 0x31, FALSE); Sbc_Reg_Read(CanTrcv_Tja1145_Ts, &tempRegVal); Sbc_Reg_Read(CanTrcv_Tja1145_Tes, &SWK_WUF_Detection); Sbc_Reg_Write(CanTrcv_Tja1145_Mc, CanTrcv_Tja1145_Mc_MC_Normal, FALSE); Sbc_Reg_Write(CanTrcv_Tja1145_Cc,CanTrcv_Tja1145_Cc_CMC_Active,FALSE); #endif // Clock_Ip_Init(&Clock_Ip_aClockConfig[0]); volatile Flexcan_Ip_StatusType result = 1; volatile Flexcan_Ip_StatusType result1 = 1; IntCtrl_Ip_EnableIrq(FlexCAN0_1_IRQn); IntCtrl_Ip_InstallHandler(FlexCAN0_1_IRQn, CAN0_ORED_0_31_MB_IRQHandler, NULL_PTR); // Dio_WriteChannel(DioConf_DioChannel_DioChannel_O_S_STB_CAN3_M, STD_LOW);//CAN3 STB Flexcan_Ip_DataInfoType rx_info = { .msg_id_type = FLEXCAN_MSG_ID_STD, .data_length = 8u, .is_polling = TRUE, .is_remote = FALSE }; Flexcan_Ip_MsgBuffType rxData; FlexCAN_Ip_Init(CanController_0, &Can_Ipw_xStatus0, &Flexcan_aCtrlConfigPB[0U]);// while (1) { if(rx_compli==1) { FlexCAN_Ip_SetStartMode(CanController_0); FlexCAN_Ip_ConfigRxMb(CanController_0, RX_MB_IDX, &rx_info, MSG_ID); // rx_info.is_polling = FALSE; FlexCAN_Ip_Send(CanController_0, TX_MB_IDX, &rx_info, MSG_ID, (uint8 *)&dummyData); FlexCAN_Ip_Receive(CanController_0, RX_MB_IDX, &rxData, TRUE); while(FlexCAN_Ip_GetTransferStatus(CanController_0, RX_MB_IDX)
时间: 2023-12-10 18:03:52 浏览: 139
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相关问题
volatile static uint32_t delay
这个问题与上一个问题非常相似,只是volatile和static的位置发生了变化。volatile关键字的作用仍然是告诉编译器不要对它进行优化,确保每次访问都是从内存中读取。static关键字的作用是在函数外部定义一个静态的局部变量,使得该变量只能在定义它的函数内部访问。同时,它也会使得该变量的值在函数调用结束后仍然保留,不会被释放。因此,volatile static uint32_t delay可能被用于实现一个静态的延迟函数,可以在函数调用结束后仍然保留。
void delay_us(uint32_t nus)
这是一个函数声明,用于实现微秒级别的延时,函数的实现可能类似于下面的代码:
```c
void delay_us(uint32_t nus)
{
uint32_t ticks = nus * (SystemCoreClock / 1000000);
volatile uint32_t start = DWT->CYCCNT;
while (DWT->CYCCNT - start < ticks);
}
```
其中,`SystemCoreClock` 是系统时钟频率,`DWT->CYCCNT` 是一个用于计时的寄存器。函数的实现思路是利用这个计时寄存器计算出需要延时的时钟周期数,然后在一个循环中等待这些时钟周期过去。由于这个循环中只有一条指令,因此可以认为它是一个非常精确的延时函数。
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