20.01_TIMER-PWM输出
测试步骤
- 使用P0.15并复用为timer0
- 初始化timer0 频率10k 输出占空比50%
- 注意:必须配置输出使能
实测数据
实测频率为9.981361khz
实测输出占空比为50.014572%
参考代码
20.01_TIMER.c
/**
* @brief TIMER-PWM输出
* @details
* 1. 使用P0.15并复用为timer0
* 2. 初始化timer0 频率10k 输出占空比50%
* 3. 注意:必须配置输出使能
*/
#include "lks32mc09x_gpio.h"
#include "lks32mc09x_sys.h"
#include "lks32mc09x_timer.h"
void Timer0_IRQHandler(void);
int main(void)
{
GPIO_Config(GPIO0, GPIO_PinSource_15, GPIO_Mode_OUT, GPIO_AF_TIMER0);
// 初始化TIMER0
TIMER_TimerInitTypeDef TIMER_InitStruct;
TIMER_StructInit(&TIMER_InitStruct);
// 配置TIMER0为比较模式,输出PWM
TIMER_InitStruct.EN = ENABLE; ///< 定时器使能,ENABLE使能,DISABLE失能,影响timer的cnt是否计数
TIMER_InitStruct.CAP1_CLR_EN = 0; ///< 当发生CAP1捕获事件时,清零 Timer 计数器,高有效
TIMER_InitStruct.CAP0_CLR_EN = 0; ///< 当发生CAP0捕获事件时,清零 Timer 计数器,高有效
TIMER_InitStruct.ONE_TRIG = 0; ///< 单次发送模式,此位需要在Timer比较模式下使用,且对应定时器使能需设置为0
TIMER_InitStruct.CENTER = 0; ///< 中心计数模式使能,0:Timer向上从0计数至TH,然后回0,或Timer向下从TH计数至0,然后回到TH,1:Timer向上从0计数至TH,然后向下计数至0
TIMER_InitStruct.DIR = 0; ///< 0:0->TH 递增计数,1:TH->递减计数
TIMER_InitStruct.ClockDiv = 0; ///< Timer计数器频率配置,0:1分频,1:2分频,2:4分频,3:8分频,4:16分频,5:32分频,6:64分频,7:128分频
TIMER_InitStruct.ETON = 0; ///< Timer计数器计数外部启动使能,0: 自动运行,1:外部事件触发计数
TIMER_InitStruct.GATE_EN = 0; ///< Timer暂停使能,0:不暂停 1:当外部信号为低时,Timer暂停计数,外部信号根据TIMER1_EVT.EVT_SRC 进行选择
TIMER_InitStruct.RL_EN = 0; ///< Timer重装使能,0:禁用外部事件重装,1:使能外部事件重装
TIMER_InitStruct.XCLK_EN = 0; ///< Timer时钟源,0: 芯片内部时钟,1:外部时钟
TIMER_InitStruct.SRC1 = 0; ///< Timer 捕获模式通道1信号来源,0:Timer通道0输入信号,1:Timer通道1输入信号,2:CLU0输出信号,3:CLU1输出信号,4:CLU2输出信号,5:CLU3输出信号,6:比较器0输出信号,7:比较器1输出信号,8:比较器2输出信号,9:Timer通道0和1的异或信号
TIMER_InitStruct.CH1Output = 0; ///< Timer 通道1在比较模式下的输出极性控制,当计数器 CNT使用到的库函数
库函数部分代码
#define GPIO_AF_I2C 6
#define REG_RESET(reg,mask) reg &= ~(mask)
#define REG_SET(reg,mask) reg |= (mask)
#define REG_WRITE(reg,mask) reg = (mask)
#define SYS0 ((SYS_TypeDef *)(SYS_BASE))
#define SYS_CLK_CFG_CLK_DIV_MASK (uint32_t)(0xFF << SYS_CLK_CFG_CLK_DIV_POS)
#define SYS_CLK_CFG_CLK_DIV_POS 0
#define SYS_CLK_CFG_CLK_SEL_MASK (uint32_t)(0x3 << SYS_CLK_CFG_CLK_SEL_POS)
#define SYS_CLK_CFG_CLK_SEL_POS 8
#define SYS_MODULE_GPIO BIT11
#define SYS_MODULE_TIMER0 BIT4
#define SYS_MODULE_TIMER1 BIT5
#define SYS_MODULE_TIMER2 BIT6
#define TIMER0 ((TIMER_TypeDef *)TIMER0_BASE)
#define TIMER1 ((TIMER_TypeDef *)TIMER1_BASE)
#define TIMER2 ((TIMER_TypeDef *)TIMER2_BASE)
/**
* @brief GPIO功能配置结构体句柄
*/
typedef struct GPIO_InitTypeDef {
uint32_t GPIO_Pin;
GPIO_Mode_TypeDef GPIO_Mode;
GPIO_PuPd_TypeDef GPIO_PuPd;
uint32_t GPIO_PODEna;
uint32_t GPIO_PFLT;
};
/**
* @brief GPIO模式选择枚举
*/
typedef enum GPIO_Mode_TypeDef {
GPIO_Mode_IN = 0,
GPIO_Mode_OUT = 1,
GPIO_Mode_ANA = 2,
GPIO_Mode_IO = 3,
}} {enum_name};
/**
* @brief Timer初始化结构体
*/
typedef struct TIMER_TimerInitTypeDef {
uint8_t EN;
uint32_t CAP1_CLR_EN;
uint32_t CAP0_CLR_EN;
uint32_t ONE_TRIG;
uint32_t CENTER;
uint32_t DIR;
uint32_t ClockDiv;
uint32_t ETON;
uint32_t GATE_EN;
uint32_t RL_EN;
uint32_t XCLK_EN;
uint32_t SRC1;
uint32_t CH1Output;
uint32_t CH1_WorkMode;
uint32_t CH1_FE_CAP_EN;
uint32_t CH1_RE_CAP_EN;
uint32_t SRC0;
uint32_t CH0Output;
uint32_t CH0_WorkMode;
uint32_t CH0_FE_CAP_EN;
uint32_t CH0_RE_CAP_EN;
uint32_t TH;
uint32_t CNT;
uint32_t CHN0;
uint32_t CHN1;
uint32_t EVT;
uint32_t FLT;
uint32_t IE;
uint32_t CMP0_TRIGGER_MODE;
uint32_t CMP1_TRIGGER_MODE;
uint32_t SHADOW;
uint32_t CH1_DEFAULT;
uint32_t CH0_DEFAULT;
uint32_t HALT_PRT;
uint32_t FAIL_SEL;
uint32_t FAIL_POL;
uint32_t FAIL_EN;
uint32_t MOE;
};
/**
* @brief GPIO配置函数
* @param GPIOx: GPIO端口
* @param GPIO_PinSource: GPIO引脚
* @param mode: GPIO模式
* @param GPIO_AF_x: GPIO复用功能选择
*/
void GPIO_Config(GPIO_TypeDef *GPIOx, uint32_t GPIO_PinSource, GPIO_Mode_TypeDef mode, uint32_t GPIO_AF_x)
{
GPIO_PinAFConfig(GPIOx, GPIO_PinSource, GPIO_AF_x);
GPIO_InitTypeDef GPIO_InitStructure;
GPIO_StructInit(&GPIO_InitStructure);
GPIO_InitStructure.GPIO_Pin = 1 << GPIO_PinSource;
GPIO_InitStructure.GPIO_Mode = mode;
if (GPIO_AF_x == GPIO_AF_I2C)
{
GPIO_InitStructure.GPIO_PuPd = GPIO_PuPd_UP;
}
else
{
__NOP();
}
GPIO_Init(GPIOx, &GPIO_InitStructure);
}
/**
* @brief Timer初始化
* @param TIMERx Timer实例指针
* @param TIMER_InitStruct Timer初始化结构体指针
*/
void TIMER_Init(TIMER_TypeDef *TIMERx, TIMER_TimerInitTypeDef *TIMER_InitStruct)
{
uint32_t th = TIMER_InitStruct->TH;
TIMER_Enable(TIMERx);
if (TIMERx != TIMER2) // 只有timer2是32位定时器
{
if (th > 0xffff)
{
th = 0xffff;
}
else
{
__NOP();
}
}
else
{
__NOP();
}
// 配置Timer寄存器
TIMERx->CFG2 = (TIMER_InitStruct->EN << 15) |
(TIMER_InitStruct->ONE_TRIG << 9) |
(TIMER_InitStruct->CENTER << 8) |
(TIMER_InitStruct->DIR << 6) |
(TIMER_InitStruct->ClockDiv << 4) |
(TIMER_InitStruct->ETON << 3) |
(TIMER_InitStruct->GATE_EN << 2) |
(TIMER_InitStruct->RL_EN << 1) |
TIMER_InitStruct->XCLK_EN;
TIMERx->CFG0 = (TIMER_InitStruct->CMP0_TRIGGER_MODE << 9) |
(TIMER_InitStruct->CAP0_CLR_EN << 8) |
(TIMER_InitStruct->SRC0 << 4) |
(TIMER_InitStruct->CH0Output << 3) |
(TIMER_InitStruct->CH0_WorkMode << 2) |
(TIMER_InitStruct->CH0_FE_CAP_EN << 1) |
(TIMER_InitStruct->CH0_RE_CAP_EN << 0);
TIMERx->CFG1 = (TIMER_InitStruct->CMP1_TRIGGER_MODE << 9) |
(TIMER_InitStruct->CAP1_CLR_EN << 8) |
(TIMER_InitStruct->SRC1 << 4) |
(TIMER_InitStruct->CH1Output << 3) |
(TIMER_InitStruct->CH1_WorkMode << 2) |
(TIMER_InitStruct->CH1_FE_CAP_EN << 1) |
(TIMER_InitStruct->CH1_RE_CAP_EN << 0);
TIMERx->CHN0 = TIMER_InitStruct->CHN0;
TIMERx->CHN1 = TIMER_InitStruct->CHN1;
TIMERx->TH = th;
TIMERx->CNT = TIMER_InitStruct->CNT;
TIMERx->EVT = TIMER_InitStruct->EVT;
TIMERx->FLT = TIMER_InitStruct->FLT;
TIMERx->IE = TIMER_InitStruct->IE;
TIMERx->IO = (TIMER_InitStruct->HALT_PRT << 7) |
(TIMER_InitStruct->CH0_DEFAULT << 8) |
(TIMER_InitStruct->CH1_DEFAULT << 9) |
(TIMER_InitStruct->MOE << 6) |
(TIMER_InitStruct->FAIL_SEL << 2) |
(TIMER_InitStruct->FAIL_POL << 1) |
(TIMER_InitStruct->FAIL_EN << 0);
// 影子寄存器配置
TIMERx->CFG2 |= (TIMER_InitStruct->SHADOW << 10);
}
/**
* @brief Timer结构体初始化
* @param TIMER_InitStruct Timer初始化结构体指针
*/
void TIMER_StructInit(TIMER_TimerInitTypeDef *TIMER_InitStruct)
{
for (int i = 0; i < sizeof(TIMER_TimerInitTypeDef) / sizeof(uint32_t); i++)
{
((uint32_t *)TIMER_InitStruct)[i] = 0;
}
}
/**
* @brief 使能Timer
* @param TIMERx Timer实例指针
*/
void TIMER_Enable(TIMER_TypeDef *TIMERx)
{
if (TIMERx == TIMER0)
{
SYS_ModuleClockCmd(SYS_MODULE_TIMER0, ENABLE);
}
else if (TIMERx == TIMER1)
{
SYS_ModuleClockCmd(SYS_MODULE_TIMER1, ENABLE);
}
else if (TIMERx == TIMER2)
{
SYS_ModuleClockCmd(SYS_MODULE_TIMER2, ENABLE);
}
else
{
__NOP();
}
}
/**
* @brief 初始化GPIO
* @param GPIOx GPIO模块指针
* @param GPIO_InitStruct 指向包含初始化参数的GPIO_InitTypeDef结构体
*/
void GPIO_Init(GPIO_TypeDef *GPIOx, GPIO_InitTypeDef *GPIO_InitStruct)
{
// 使能GPIO时钟
SYS_ModuleClockCmd(SYS_MODULE_GPIO, ENABLE);
// 配置引脚模式
if (GPIO_InitStruct->GPIO_Mode == GPIO_Mode_IN)
{
GPIOx->PIE |= GPIO_InitStruct->GPIO_Pin; // 打开输入使能
GPIOx->POE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭输出使能
GPIOx->PUE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭上拉使能
}
else if (GPIO_InitStruct->GPIO_Mode == GPIO_Mode_OUT)
{
GPIOx->PIE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭输入使能
GPIOx->POE |= GPIO_InitStruct->GPIO_Pin; // 使能输出
}
else if (GPIO_InitStruct->GPIO_Mode == GPIO_Mode_IO)
{
GPIOx->PIE |= GPIO_InitStruct->GPIO_Pin; // 使能输入
GPIOx->POE |= GPIO_InitStruct->GPIO_Pin; // 使能输出
}
else // GPIO_Mode_ANA
{
GPIOx->PIE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭输入使能
GPIOx->POE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭输出使能
GPIOx->PUE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭上拉使能
}
if (GPIO_InitStruct->GPIO_PuPd == GPIO_PuPd_UP)
{
GPIOx->PUE |= GPIO_InitStruct->GPIO_Pin; // 使能上拉
}
else
{
GPIOx->PUE &= ~GPIO_InitStruct->GPIO_Pin; // 关闭上拉
}
// 配置开漏使能
if (GPIO_InitStruct->GPIO_PODEna)
{
GPIOx->PODE |= GPIO_InitStruct->GPIO_Pin;
}
else
{
GPIOx->PODE &= ~GPIO_InitStruct->GPIO_Pin;
}
// 配置滤波使能
if (GPIO_InitStruct->GPIO_PFLT)
{
GPIOx->PFLT |= GPIO_InitStruct->GPIO_Pin;
}
else
{
GPIOx->PFLT &= ~GPIO_InitStruct->GPIO_Pin;
}
}
/**
* @brief 初始化GPIO结构体为默认值
* @param GPIO_InitStruct 指向要初始化的GPIO_InitTypeDef结构体
*/
void GPIO_StructInit(GPIO_InitTypeDef *GPIO_InitStruct)
{
for (int i = 0; i < sizeof(GPIO_InitTypeDef); i++)
{
((uint8_t *)GPIO_InitStruct)[i] = 0;
}
}
/**
* @brief 数字模块时钟使能
* @param nModule 模块编号
* @param state 使能或禁用状态
*/
void SYS_ModuleClockCmd(uint32_t nModule, uint8_t state)
{
REG_WRITE(SYS0->PROTECT, 0x7a83);
if (state)
{
REG_SET(SYS0->CLK_FEN, nModule);
}
else
{
REG_RESET(SYS0->CLK_FEN, nModule);
}
REG_WRITE(SYS0->PROTECT, 0);
}
/**
* @brief 获取当前MCU时钟
* @return 当前MCU时钟频率
*/
uint32_t SYS_ReadMcuClk(void)
{
uint32_t clk = 96000000;
uint32_t clkdiv = (SYS_CLK_CFG & SYS_CLK_CFG_CLK_DIV_MASK) >> SYS_CLK_CFG_CLK_DIV_POS;
uint32_t clksel = (SYS_CLK_CFG & SYS_CLK_CFG_CLK_SEL_MASK) >> SYS_CLK_CFG_CLK_SEL_POS;
switch (clksel) // 0: HRC 1: PLL 2: LRC
{
case 0: // HRC
clk = 8000000;
break;
case 1: // PLL
switch (clkdiv)
{
case 0xff: // 96M
clk = 96000000;
break;
case 0x55: // 48M
clk = 48000000;
break;
case 0x11: // 24M
clk = 24000000;
break;
case 0x01: // 12M
clk = 12000000;
break;
case 0x00: // 12M
clk = 12000000;
break;
default: // 逐位计算
clk = 0;
for (int i = 0; i < 8; i++)
{
if (clkdiv & (1 << i))
{
clk += 12000000;
}
else
{
__NOP();
}
}
break;
}
break;
case 2: // LRC
clk = 32000;
break;
default:
break;
}
return clk;
}
/**
* @brief 配置GPIO引脚复用功能
* @param GPIOx GPIO模块指针
* @param GPIO_PinSource 引脚源
* @param GPIO_AF 复用功能选择
*/
void GPIO_PinAFConfig(GPIO_TypeDef *GPIOx, uint32_t GPIO_PinSource, uint32_t GPIO_AF)
{
uint8_t offset;
uint8_t pins = GPIO_PinSource >> 2;
offset = ((GPIO_PinSource & 0x3) * 4);
switch (pins)
{
case 0:
GPIOx->F3210 = (GPIOx->F3210 & ~(0xf << offset)) | (GPIO_AF << offset);
break;
case 1:
GPIOx->F7654 = (GPIOx->F7654 & ~(0xf << offset)) | (GPIO_AF << offset);
break;
case 2:
GPIOx->FBA98 = (GPIOx->FBA98 & ~(0xf << offset)) | (GPIO_AF << offset);
break;
case 3:
GPIOx->FFEDC = (GPIOx->FFEDC & ~(0xf << offset)) | (GPIO_AF << offset);
break;
default:
break;
}
}