/***************** 嵌入式代码开发*************/
/* 更多例程:https://iot666.blog.csdn.net/ */
/* 技术咨询:https://yotill.taobao.com/ */
/* 网盘下载:http://doc.yotill.com/ */
/****** Powered by YOTILL,IOT Solution *******/
////////////////////////////////////////////////////////
/**
******************************************************************************
* @file stm32f10x_tim.c
* @author MCD Application Team
* @version V3.5.0
* @date 11-March-2011
* @brief This file provides all the TIM firmware functions.
******************************************************************************
* @attention
*
* THE PRESENT FIRMWARE WHICH IS FOR GUIDANCE ONLY AIMS AT PROVIDING CUSTOMERS
* WITH CODING INFORMATION REGARDING THEIR PRODUCTS IN ORDER FOR THEM TO SAVE
* TIME. AS A RESULT, STMICROELECTRONICS SHALL NOT BE HELD LIABLE FOR ANY
* DIRECT, INDIRECT OR CONSEQUENTIAL DAMAGES WITH RESPECT TO ANY CLAIMS ARISING
* FROM THE CONTENT OF SUCH FIRMWARE AND/OR THE USE MADE BY CUSTOMERS OF THE
* CODING INFORMATION CONTAINED HEREIN IN CONNECTION WITH THEIR PRODUCTS.
*
* <h2><center>© COPYRIGHT 2011 STMicroelectronics</center></h2>
******************************************************************************
*/
/* Includes ------------------------------------------------------------------*/
#include "stm32f10x_tim.h"
#include "stm32f10x_rcc.h"
/** @addtogroup STM32F10x_StdPeriph_Driver
* @{
*/
/** @defgroup TIM
* @brief TIM driver modules
* @{
*/
/** @defgroup TIM_Private_TypesDefinitions
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Defines
* @{
*/
/* ---------------------- TIM registers bit mask ------------------------ */
#define SMCR_ETR_Mask ((uint16_t)0x00FF)
#define CCMR_Offset ((uint16_t)0x0018)
#define CCER_CCE_Set ((uint16_t)0x0001)
#define CCER_CCNE_Set ((uint16_t)0x0004)
/**
* @}
*/
/** @defgroup TIM_Private_Macros
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Variables
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_FunctionPrototypes
* @{
*/
static void TI1_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
static void TI2_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
static void TI3_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
static void TI4_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
/**
* @}
*/
/** @defgroup TIM_Private_Macros
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Variables
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_FunctionPrototypes
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Functions
* @{
*/
/**
* @brief Deinitializes the TIMx peripheral registers to their default reset values.
* @param TIMx: where x can be 1 to 17 to select the TIM peripheral.
* @retval None
*/
void TIM_DeInit(TIM_TypeDef* TIMx)
{
/* Check the parameters */
assert_param(IS_TIM_ALL_PERIPH(TIMx));
if (TIMx == TIM1)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM1, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM1, DISABLE);
}
else if (TIMx == TIM2)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM2, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM2, DISABLE);
}
else if (TIMx == TIM3)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM3, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM3, DISABLE);
}
else if (TIMx == TIM4)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM4, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM4, DISABLE);
}
else if (TIMx == TIM5)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM5, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM5, DISABLE);
}
else if (TIMx == TIM6)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM6, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM6, DISABLE);
}
else if (TIMx == TIM7)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM7, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM7, DISABLE);
}
else if (TIMx == TIM8)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM8, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM8, DISABLE);
}
else if (TIMx == TIM9)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM9, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM9, DISABLE);
}
else if (TIMx == TIM10)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM10, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM10, DISABLE);
}
else if (TIMx == TIM11)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM11, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM11, DISABLE);
}
else if (TIMx == TIM12)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM12, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM12, DISABLE);
}
else if (TIMx == TIM13)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM13, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM13, DISABLE);
}
else if (TIMx == TIM14)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM14, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM14, DISABLE);
}
else if (TIMx == TIM15)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM15, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM15, DISABLE);
}
else if (TIMx == TIM16)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM16, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM16, DISABLE);
}
else
{
if (TIMx == TIM17)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM17, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM17, DISABLE);
}
}
}
/**
* @brief Initializes the TIMx Time Base Unit peripheral according to
* the specified parameters in the TIM_TimeBaseInitStruct.
* @param TIMx: where x can be 1 to 17 to select the TIM peripheral.
* @param TIM_TimeBaseInitStruct: pointer to a TIM_TimeBaseInitTypeDef
* structure that contains the configuration information for the
* specified TIM peripheral.
* @retval None
*/
void TIM_TimeBaseInit(TIM_TypeDef* TIMx, TIM_TimeBaseInitTypeDef* TIM_TimeBaseInitStruct)
{
uint16_t tmpcr1 = 0;
/* Check the parameters */
assert_param(IS_TIM_ALL_PERIPH(TIMx));
assert_param(IS_TIM_COUNTER_MODE(TIM_TimeBaseInitStruct->TIM_CounterMode));
assert_param(IS_TIM_CKD_DIV(TIM_TimeBaseInitStruct->TIM_ClockDivision));
tmpcr1 = TIMx->CR1;
if((TIMx == TIM1) || (TIMx == TIM8)|| (TIMx == TIM2) || (TIMx == TIM3)||
(TIMx == TIM4) || (TIMx == TIM5))
{
/* Select the Counter Mode */
tmpcr1 &= (uint16_t)(~((uint16_t)(TIM_CR1_DIR | TIM_CR1_CMS)));
tmpcr1 |= (uint32_t)TIM_TimeBaseInitStruct->TIM_CounterMode;
}
if((TIMx != TIM6) && (TIMx != TIM7))
{
/* Set the clock division */
tmpcr1 &= (uint16_t)(~((uint16_t)TIM_CR1_CKD));
tmpcr1 |= (uint32_t)TIM_TimeBaseInitStruct->TIM_ClockDivision;
}
TIMx->CR1 = tmpcr1;
/* Set the Autoreload value */
TIMx->ARR = TIM_TimeBaseInitStruct->TIM_Period ;
/* Set the Prescaler value */
TIMx->PSC = TIM_TimeBaseInitStruct->TIM_Prescaler;
if ((TIMx == TIM1) || (TIMx == TIM8)|| (TIMx == TIM15)|| (TIMx == TIM16) || (TIMx == TIM17))
{
/* Set the Repetition Counter value */
TIMx->RCR = TIM_TimeBaseInitStruct->TIM_RepetitionCounter;
}
/* Generate an update event to reload the Prescaler and the Repetition counter
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STM32F103单片机连接EC800-4G模块实现将多个参数JSON格式数据发送阿里云物联网和平台并接收下发控制指令.zip
共230个文件
h:43个
d:40个
crf:39个
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1、嵌入式物联网单片机项目开发例程,简单、方便、好用,节省开发时间。 2、代码使用KEIL 标准库开发,当前在STM32F103运行,如果是STM32F103其他型号芯片,依然适用,请自行更改KEIL芯片型号以及FLASH容量即可。 3、软件下载时,请注意keil选择项是jlink还是stlink。 4、有偿指导v:wulianjishu666; 5、如果接入其他传感器,请查看账号发布的其他资料。 6、单片机与模块的接线,在代码当中均有定义,请自行对照。 7、若硬件有差异,请根据自身情况调整代码,程序仅供参考学习。 8、代码有注释说明,请耐心阅读。
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STM32F103单片机连接EC800-4G模块实现将多个参数JSON格式数据发送阿里云物联网和平台并接收下发控制指令.zip (230个子文件)
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下发控制灯的时候.bmp 7.68MB
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stm32f10x_tim.c 107KB
stm32f10x_flash.c 61KB
stm32f10x_rcc.c 50KB
stm32f10x_adc.c 46KB
stm32f10x_i2c.c 45KB
stm32f10x_can.c 44KB
stm32f10x_usart.c 38KB
system_stm32f10x.c 37KB
stm32f10x_fsmc.c 35KB
stm32f10x_spi.c 30KB
stm32f10x_dma.c 29KB
stm32f10x_sdio.c 29KB
stm32f10x_gpio.c 23KB
stm32f10x_dac.c 19KB
core_cm3.c 17KB
4G.c 14KB
stm32f10x_cec.c 12KB
usart.c 10KB
stm32f10x_pwr.c 9KB
stm32f10x_rtc.c 9KB
stm32f10x_bkp.c 9KB
GUI.c 8KB
misc.c 7KB
stm32f10x_exti.c 7KB
Lcd_Driver.c 7KB
stm32f10x_wwdg.c 6KB
stm32f10x_dbgmcu.c 5KB
dht11.c 5KB
stm32f10x_iwdg.c 5KB
main.c 4KB
delay.c 4KB
stm32f10x_crc.c 4KB
timer.c 3KB
QDTFT_demo.c 3KB
stm32f10x_it.c 3KB
led.c 2KB
wdg.c 827B
sys.c 488B
main.crf 310KB
stm32f10x_tim.crf 299KB
usart.crf 289KB
timer.crf 285KB
stm32f10x_adc.crf 272KB
4g.crf 271KB
stm32f10x_flash.crf 269KB
stm32f10x_i2c.crf 269KB
stm32f10x_sdio.crf 268KB
stm32f10x_spi.crf 267KB
stm32f10x_dma.crf 265KB
bc20.crf 265KB
gui.crf 264KB
stm32f10x_can.crf 264KB
system_stm32f10x.crf 264KB
stm32f10x_rcc.crf 263KB
stm32f10x_usart.crf 261KB
stm32f10x_dac.crf 261KB
stm32f10x_fsmc.crf 261KB
lcd_driver.crf 261KB
qdtft_demo.crf 260KB
stm32f10x_cec.crf 259KB
stm32f10x_gpio.crf 259KB
stm32f10x_bkp.crf 259KB
stm32f10x_exti.crf 258KB
dht11.crf 258KB
stm32f10x_pwr.crf 258KB
stm32f10x_rtc.crf 258KB
wdg.crf 257KB
led.crf 257KB
stm32f10x_wwdg.crf 257KB
delay.crf 257KB
stm32f10x_iwdg.crf 256KB
stm32f10x_dbgmcu.crf 256KB
sys.crf 256KB
misc.crf 256KB
stm32f10x_crc.crf 256KB
stm32f10x_it.crf 255KB
core_cm3.crf 4KB
main.d 1KB
4g.d 1KB
timer.d 1KB
usart.d 1KB
qdtft_demo.d 988B
lcd_driver.d 941B
stm32f10x_dbgmcu.d 903B
stm32f10x_flash.d 887B
stm32f10x_usart.d 887B
stm32f10x_fsmc.d 871B
stm32f10x_iwdg.d 871B
stm32f10x_sdio.d 871B
stm32f10x_gpio.d 871B
stm32f10x_exti.d 871B
stm32f10x_wwdg.d 871B
stm32f10x_rcc.d 855B
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