/**
******************************************************************************
* @file stm32f4xx_hal_i2c.c
* @author MCD Application Team
* @brief I2C HAL module driver.
* This file provides firmware functions to manage the following
* functionalities of the Inter Integrated Circuit (I2C) peripheral:
* + Initialization and de-initialization functions
* + IO operation functions
* + Peripheral State, Mode and Error functions
*
@verbatim
==============================================================================
##### How to use this driver #####
==============================================================================
[..]
The I2C HAL driver can be used as follows:
(#) Declare a I2C_HandleTypeDef handle structure, for example:
I2C_HandleTypeDef hi2c;
(#)Initialize the I2C low level resources by implementing the @ref HAL_I2C_MspInit() API:
(##) Enable the I2Cx interface clock
(##) I2C pins configuration
(+++) Enable the clock for the I2C GPIOs
(+++) Configure I2C pins as alternate function open-drain
(##) NVIC configuration if you need to use interrupt process
(+++) Configure the I2Cx interrupt priority
(+++) Enable the NVIC I2C IRQ Channel
(##) DMA Configuration if you need to use DMA process
(+++) Declare a DMA_HandleTypeDef handle structure for the transmit or receive stream
(+++) Enable the DMAx interface clock using
(+++) Configure the DMA handle parameters
(+++) Configure the DMA Tx or Rx stream
(+++) Associate the initialized DMA handle to the hi2c DMA Tx or Rx handle
(+++) Configure the priority and enable the NVIC for the transfer complete interrupt on
the DMA Tx or Rx stream
(#) Configure the Communication Speed, Duty cycle, Addressing mode, Own Address1,
Dual Addressing mode, Own Address2, General call and Nostretch mode in the hi2c Init structure.
(#) Initialize the I2C registers by calling the @ref HAL_I2C_Init(), configures also the low level Hardware
(GPIO, CLOCK, NVIC...etc) by calling the customized @ref HAL_I2C_MspInit() API.
(#) To check if target device is ready for communication, use the function @ref HAL_I2C_IsDeviceReady()
(#) For I2C IO and IO MEM operations, three operation modes are available within this driver :
*** Polling mode IO operation ***
=================================
[..]
(+) Transmit in master mode an amount of data in blocking mode using @ref HAL_I2C_Master_Transmit()
(+) Receive in master mode an amount of data in blocking mode using @ref HAL_I2C_Master_Receive()
(+) Transmit in slave mode an amount of data in blocking mode using @ref HAL_I2C_Slave_Transmit()
(+) Receive in slave mode an amount of data in blocking mode using @ref HAL_I2C_Slave_Receive()
*** Polling mode IO MEM operation ***
=====================================
[..]
(+) Write an amount of data in blocking mode to a specific memory address using @ref HAL_I2C_Mem_Write()
(+) Read an amount of data in blocking mode from a specific memory address using @ref HAL_I2C_Mem_Read()
*** Interrupt mode IO operation ***
===================================
[..]
(+) Transmit in master mode an amount of data in non-blocking mode using @ref HAL_I2C_Master_Transmit_IT()
(+) At transmission end of transfer, @ref HAL_I2C_MasterTxCpltCallback() is executed and user can
add his own code by customization of function pointer @ref HAL_I2C_MasterTxCpltCallback()
(+) Receive in master mode an amount of data in non-blocking mode using @ref HAL_I2C_Master_Receive_IT()
(+) At reception end of transfer, @ref HAL_I2C_MasterRxCpltCallback() is executed and user can
add his own code by customization of function pointer @ref HAL_I2C_MasterRxCpltCallback()
(+) Transmit in slave mode an amount of data in non-blocking mode using @ref HAL_I2C_Slave_Transmit_IT()
(+) At transmission end of transfer, @ref HAL_I2C_SlaveTxCpltCallback() is executed and user can
add his own code by customization of function pointer @ref HAL_I2C_SlaveTxCpltCallback()
(+) Receive in slave mode an amount of data in non-blocking mode using @ref HAL_I2C_Slave_Receive_IT()
(+) At reception end of transfer, @ref HAL_I2C_SlaveRxCpltCallback() is executed and user can
add his own code by customization of function pointer @ref HAL_I2C_SlaveRxCpltCallback()
(+) In case of transfer Error, @ref HAL_I2C_ErrorCallback() function is executed and user can
add his own code by customization of function pointer @ref HAL_I2C_ErrorCallback()
(+) Abort a master I2C process communication with Interrupt using @ref HAL_I2C_Master_Abort_IT()
(+) End of abort process, @ref HAL_I2C_AbortCpltCallback() is executed and user can
add his own code by customization of function pointer @ref HAL_I2C_AbortCpltCallback()
*** Interrupt mode or DMA mode IO sequential operation ***
==========================================================
[..]
(@) These interfaces allow to manage a sequential transfer with a repeated start condition
when a direction change during transfer
[..]
(+) A specific option field manage the different steps of a sequential transfer
(+) Option field values are defined through @ref I2C_XferOptions_definition and are listed below:
(++) I2C_FIRST_AND_LAST_FRAME: No sequential usage, functionnal is same as associated interfaces in no sequential mode
(++) I2C_FIRST_FRAME: Sequential usage, this option allow to manage a sequence with start condition, address
and data to transfer without a final stop condition
(++) I2C_FIRST_AND_NEXT_FRAME: Sequential usage (Master only), this option allow to manage a sequence with start condition, address
and data to transfer without a final stop condition, an then permit a call the same master sequential interface
several times (like @ref HAL_I2C_Master_Seq_Transmit_IT() then @ref HAL_I2C_Master_Seq_Transmit_IT()
or @ref HAL_I2C_Master_Seq_Transmit_DMA() then @ref HAL_I2C_Master_Seq_Transmit_DMA())
(++) I2C_NEXT_FRAME: Sequential usage, this option allow to manage a sequence with a restart condition, address
and with new data to transfer if the direction change or manage only the new data to transfer
if no direction change and without a final stop condition in both cases
(++) I2C_LAST_FRAME: Sequential usage, this option allow to manage a sequance with a restart condition, address
and with new data to transfer if the direction change or manage only the new data to transfer
if no direction change and with a final stop condition in both cases
(++) I2C_LAST_FRAME_NO_STOP: Sequential usage (Master only), this option allow to manage a restart condition after several call of the same master sequential
interface several times (link with option I2C_FIRST_AND_NEXT_FRAME).
Usage can, transfer several bytes one by one using HAL_I2C_Master_Seq_Transmit_IT(option I2C_FIRST_AND_NEXT_FRAME then I2C_NEXT_FRAME)
or HAL_I2C_Master_Seq_Receive_IT(option I2C_FIRST_AND_NEXT_FRAME then I2C_NEXT_FRAME)
or HAL_I2C_Master_Seq_Transmit_DMA(option I2C_FIRST_AND_NEXT_FRAME then I2C_NEXT_FRAME)
or HAL_I2C_Master_Seq_Receive_DMA
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STM32F4上游戏摇杆模块JOYStick的测试源码
共317个文件
h:117个
c:103个
d:27个
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2020-12-01
10:10:22
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在stm32上测试x,y,z,键,并在串口输出x,y,z的状态,x,y决定上下左右,z决定按键。通过遥感的摆动在串口上看到对应(摇杆位置)的状态。
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收起资源包目录
STM32F4上游戏摇杆模块JOYStick的测试源码 (317个子文件)
Template.axf 1.35MB
keilkilll.bat 399B
stm32f4xx_hal_i2c.c 233KB
stm32f4xx_hal_fmpi2c.c 232KB
stm32f4xx_hal_cryp.c 230KB
stm32f4xx_hal_tim.c 213KB
stm32f4xx_hal_dfsdm.c 154KB
stm32f4xx_hal_rcc_ex.c 154KB
stm32f4xx_hal_hash.c 130KB
stm32f4xx_hal_spi.c 122KB
stm32f4xx_hal_uart.c 111KB
stm32f4xx_hal_sd.c 103KB
stm32f4xx_hal_usart.c 101KB
stm32f4xx_hal_fmpsmbus.c 100KB
stm32f4xx_hal_smbus.c 97KB
stm32f4xx_hal_irda.c 95KB
stm32f4xx_hal_qspi.c 94KB
stm32f4xx_hal_mmc.c 93KB
stm32f4xx_hal_dsi.c 88KB
stm32f4xx_hal_smartcard.c 85KB
stm32f4xx_hal_can.c 82KB
stm32f4xx_hal_sai.c 81KB
stm32f4xx_hal_eth.c 81KB
stm32f4xx_hal_adc.c 77KB
stm32f4xx_hal_lptim.c 76KB
stm32f4xx_hal_dma2d.c 73KB
stm32f4xx_hal_ltdc.c 71KB
stm32f4xx_hal_i2s.c 70KB
stm32f4xx_hal_nand.c 68KB
stm32f4xx_hal_tim_ex.c 66KB
stm32f4xx_hal_rtc.c 63KB
stm32f4xx_hal_pcd.c 60KB
stm32f4xx_ll_fmc.c 60KB
stm32f4xx_ll_usb.c 59KB
stm32f4xx_hal_rtc_ex.c 57KB
stm32f4xx_hal_can.c 55KB
stm32f4xx_hal_spdifrx.c 53KB
stm32f4xx_ll_rcc.c 52KB
stm32f4xx_hal_flash_ex.c 51KB
stm32f4xx_ll_sdmmc.c 49KB
stm32f4xx_hal_hash_ex.c 48KB
stm32f4xx_hal_hcd.c 47KB
stm32f4xx_hal_dac.c 45KB
stm32f4xx_ll_tim.c 45KB
stm32f4xx_ll_adc.c 42KB
stm32f4xx_hal_rcc.c 42KB
stm32f4xx_hal_adc_ex.c 41KB
stm32f4xx_hal_dma.c 40KB
stm32f4xx_hal_i2s_ex.c 39KB
stm32f4xx_hal_nor.c 38KB
stm32f4xx_hal_dcmi.c 38KB
stm32f4xx_ll_fsmc.c 37KB
stm32f4xx_hal_sdram.c 35KB
stm32f4xx_hal_cec.c 32KB
stm32f4xx_ll_utils.c 32KB
stm32f4xx_ll_rtc.c 32KB
stm32f4xx_hal_pccard.c 31KB
stm32f4xx_hal_sram.c 30KB
stm32f4xx_hal_rng.c 26KB
system_stm32f4xx.c 26KB
stm32f4xx_hal_flash.c 24KB
stm32f4xx_ll_spi.c 24KB
stm32f4xx_ll_dma2d.c 23KB
stm32f4xx_hal_pwr_ex.c 23KB
stm32f4xx_hal_cryp_ex.c 22KB
stm32f4xx_hal_pwr.c 20KB
stm32f4xx_hal.c 19KB
stm32f4xx_hal_gpio.c 19KB
stm32f4xx_ll_usart.c 19KB
stm32f4xx_hal_cortex.c 19KB
stm32f4xx_ll_dma.c 18KB
stm32f4xx_hal_exti.c 15KB
stm32f4xx_hal_dac_ex.c 15KB
stm32f4xx_hal_wwdg.c 15KB
stm32f4xx_hal_timebase_rtc_alarm_template.c 11KB
stm32f4xx_hal_sai_ex.c 11KB
stm32f4xx_ll_gpio.c 11KB
stm32f4xx_hal_pcd_ex.c 11KB
stm32f4xx_ll_dac.c 11KB
stm32f4xx_hal_dma_ex.c 11KB
stm32f4xx_hal_timebase_rtc_wakeup_template.c 11KB
stm32f4xx_hal_crc.c 10KB
stm32f4xx_ll_lptim.c 9KB
stm32f4xx_ll_i2c.c 9KB
stm32f4xx_hal_iwdg.c 9KB
stm32f4xx_hal_fmpi2c_ex.c 8KB
stm32f4xx_ll_fmpi2c.c 8KB
stm32f4xx_ll_exti.c 7KB
stm32f4xx_hal_dcmi_ex.c 7KB
stm32f4xx_hal_flash_ramfunc.c 6KB
stm32f4xx_hal_ltdc_ex.c 6KB
stm32f4xx_hal_i2c_ex.c 6KB
stm32f4xx_it.c 5KB
stm32f4xx_hal_timebase_tim_template.c 5KB
lsens.c 5KB
usart.c 4KB
stm32f4xx_hal_msp.c 4KB
stm32f4xx_hal_msp_template.c 3KB
stm32f4xx_ll_rng.c 3KB
system.c 3KB
共 317 条
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资源评论
- 地图帝2023-07-28这个文件提供了一个很好的示例,可以帮助大家理解如何在STM32F4上使用游戏摇杆模块。
- 熊比哒2023-07-28这个文件的作者给出了很实用的代码解决方案,非常值得参考。
- weixin_357804262023-07-28这个文件的源码很清晰易懂,对于初学者来说很友好。
- 亚赛大人2023-07-28虽然这个文件可能有一些改进的地方,但总体来说,它是一个很不错的指南,对于摇杆模块的使用有很大帮助。
- love彤彤2023-07-28通过这个文件,我成功实现了游戏摇杆模块在STM32F4上的测试,非常满意。
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