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56 | mjames | 1 | /** |
2 | ****************************************************************************** |
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3 | * @file stm32l1xx_hal_rtc.c |
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4 | * @author MCD Application Team |
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5 | * @brief RTC HAL module driver. |
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6 | * This file provides firmware functions to manage the following |
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7 | * functionalities of the Real Time Clock (RTC) peripheral: |
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8 | * + Initialization and de-initialization functions |
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9 | * + RTC Time and Date functions |
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10 | * + RTC Alarm functions |
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11 | * + Peripheral Control functions |
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12 | * + Peripheral State functions |
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13 | * |
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14 | @verbatim |
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15 | =============================================================================== |
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16 | ##### RTC Operating Condition ##### |
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17 | =============================================================================== |
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18 | [..] The real-time clock (RTC) and the RTC backup registers can be powered |
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19 | from the VBAT voltage when the main VDD supply is powered off. |
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20 | To retain the content of the RTC backup registers and supply the RTC |
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21 | when VDD is turned off, VBAT pin can be connected to an optional |
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22 | standby voltage supplied by a battery or by another source. |
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23 | |||
24 | [..] To allow the RTC operating even when the main digital supply (VDD) is turned |
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25 | off, the VBAT pin powers the following blocks: |
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26 | (#) The RTC |
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27 | (#) The LSE oscillator |
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28 | (#) PC13 to PC15 I/Os (when available) |
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29 | |||
30 | [..] When the backup domain is supplied by VDD (analog switch connected to VDD), |
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31 | the following pins are available: |
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32 | (#) PC14 and PC15 can be used as either GPIO or LSE pins |
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33 | (#) PC13 can be used as a GPIO or as the RTC_AF1 pin |
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34 | |||
35 | [..] When the backup domain is supplied by VBAT (analog switch connected to VBAT |
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36 | because VDD is not present), the following pins are available: |
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37 | (#) PC14 and PC15 can be used as LSE pins only |
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38 | (#) PC13 can be used as the RTC_AF1 pin |
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39 | |||
40 | ##### Backup Domain Reset ##### |
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41 | =============================================================================== |
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42 | [..] The backup domain reset sets all RTC registers and the RCC_BDCR register |
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43 | to their reset values. |
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44 | [..] A backup domain reset is generated when one of the following events occurs: |
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45 | (#) Software reset, triggered by setting the BDRST bit in the |
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46 | RCC Backup domain control register (RCC_BDCR). |
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47 | (#) VDD or VBAT power on, if both supplies have previously been powered off. |
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48 | |||
49 | ##### Backup Domain Access ##### |
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50 | =================================================================== |
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51 | [..] After reset, the backup domain (RTC registers, RTC backup data |
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52 | registers and backup SRAM) is protected against possible unwanted write |
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53 | accesses. |
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54 | [..] To enable access to the RTC Domain and RTC registers, proceed as follows: |
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55 | (+) Enable the Power Controller (PWR) APB1 interface clock using the |
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56 | __HAL_RCC_PWR_CLK_ENABLE() function. |
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57 | (+) Enable access to RTC domain using the HAL_PWR_EnableBkUpAccess() function. |
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58 | (+) Select the RTC clock source using the __HAL_RCC_RTC_CONFIG() function. |
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59 | (+) Enable RTC Clock using the __HAL_RCC_RTC_ENABLE() function. |
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60 | |||
61 | |||
62 | ##### How to use RTC Driver ##### |
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63 | =================================================================== |
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64 | [..] |
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65 | (+) Enable the RTC domain access (see description in the section above). |
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66 | (+) Configure the RTC Prescaler (Asynchronous and Synchronous) and RTC hour |
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67 | format using the HAL_RTC_Init() function. |
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68 | |||
69 | *** Time and Date configuration *** |
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70 | =================================== |
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71 | [..] |
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72 | (+) To configure the RTC Calendar (Time and Date) use the HAL_RTC_SetTime() |
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73 | and HAL_RTC_SetDate() functions. |
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74 | (+) To read the RTC Calendar, use the HAL_RTC_GetTime() and HAL_RTC_GetDate() functions. |
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75 | |||
76 | *** Alarm configuration *** |
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77 | =========================== |
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78 | [..] |
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79 | (+) To configure the RTC Alarm use the HAL_RTC_SetAlarm() function. |
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80 | You can also configure the RTC Alarm with interrupt mode using the |
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81 | HAL_RTC_SetAlarm_IT() function. |
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82 | (+) To read the RTC Alarm, use the HAL_RTC_GetAlarm() function. |
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83 | |||
84 | ##### RTC and low power modes ##### |
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85 | ================================================================== |
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86 | [..] The MCU can be woken up from a low power mode by an RTC alternate |
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87 | function. |
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88 | [..] The RTC alternate functions are the RTC alarms (Alarm A and Alarm B), |
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89 | RTC wakeup, RTC tamper event detection and RTC time stamp event detection. |
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90 | These RTC alternate functions can wake up the system from the Stop and |
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91 | Standby low power modes. |
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92 | [..] The system can also wake up from low power modes without depending |
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93 | on an external interrupt (Auto-wakeup mode), by using the RTC alarm |
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94 | or the RTC wakeup events. |
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95 | [..] The RTC provides a programmable time base for waking up from the |
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96 | Stop or Standby mode at regular intervals. |
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97 | Wakeup from STOP and STANDBY modes is possible only when the RTC clock source |
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98 | is LSE or LSI. |
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99 | |||
100 | *** Callback registration *** |
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101 | ============================================= |
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102 | |||
103 | [..] |
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104 | The compilation define USE_RTC_REGISTER_CALLBACKS when set to 1 |
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105 | allows the user to configure dynamically the driver callbacks. |
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106 | Use Function @ref HAL_RTC_RegisterCallback() to register an interrupt callback. |
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107 | |||
108 | [..] |
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109 | Function @ref HAL_RTC_RegisterCallback() allows to register following callbacks: |
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110 | (+) AlarmAEventCallback : RTC Alarm A Event callback. |
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111 | (+) AlarmBEventCallback : RTC Alarm B Event callback. |
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112 | (+) TimeStampEventCallback : RTC TimeStamp Event callback. |
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113 | (+) WakeUpTimerEventCallback : RTC WakeUpTimer Event callback. |
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114 | (+) Tamper1EventCallback : RTC Tamper 1 Event callback. |
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115 | (+) Tamper2EventCallback : RTC Tamper 2 Event callback. |
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116 | (+) Tamper3EventCallback : RTC Tamper 3 Event callback. |
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117 | (+) MspInitCallback : RTC MspInit callback. |
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118 | (+) MspDeInitCallback : RTC MspDeInit callback. |
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119 | [..] |
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120 | This function takes as parameters the HAL peripheral handle, the Callback ID |
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121 | and a pointer to the user callback function. |
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122 | |||
123 | [..] |
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124 | Use function @ref HAL_RTC_UnRegisterCallback() to reset a callback to the default |
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125 | weak function. |
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126 | @ref HAL_RTC_UnRegisterCallback() takes as parameters the HAL peripheral handle, |
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127 | and the Callback ID. |
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128 | This function allows to reset following callbacks: |
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129 | (+) AlarmAEventCallback : RTC Alarm A Event callback. |
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130 | (+) AlarmBEventCallback : RTC Alarm B Event callback. |
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131 | (+) TimeStampEventCallback : RTC TimeStamp Event callback. |
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132 | (+) WakeUpTimerEventCallback : RTC WakeUpTimer Event callback. |
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133 | (+) Tamper1EventCallback : RTC Tamper 1 Event callback. |
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134 | (+) Tamper2EventCallback : RTC Tamper 2 Event callback. |
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135 | (+) Tamper3EventCallback : RTC Tamper 3 Event callback. |
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136 | (+) MspInitCallback : RTC MspInit callback. |
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137 | (+) MspDeInitCallback : RTC MspDeInit callback. |
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138 | |||
139 | [..] |
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140 | By default, after the @ref HAL_RTC_Init() and when the state is HAL_RTC_STATE_RESET, |
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141 | all callbacks are set to the corresponding weak functions : |
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142 | examples @ref AlarmAEventCallback(), @ref WakeUpTimerEventCallback(). |
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143 | Exception done for MspInit and MspDeInit callbacks that are reset to the legacy weak function |
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144 | in the @ref HAL_RTC_Init()/@ref HAL_RTC_DeInit() only when these callbacks are null |
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145 | (not registered beforehand). |
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146 | If not, MspInit or MspDeInit are not null, @ref HAL_RTC_Init()/@ref HAL_RTC_DeInit() |
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147 | keep and use the user MspInit/MspDeInit callbacks (registered beforehand) |
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148 | |||
149 | [..] |
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150 | Callbacks can be registered/unregistered in HAL_RTC_STATE_READY state only. |
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151 | Exception done MspInit/MspDeInit that can be registered/unregistered |
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152 | in HAL_RTC_STATE_READY or HAL_RTC_STATE_RESET state, |
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153 | thus registered (user) MspInit/DeInit callbacks can be used during the Init/DeInit. |
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154 | In that case first register the MspInit/MspDeInit user callbacks |
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155 | using @ref HAL_RTC_RegisterCallback() before calling @ref HAL_RTC_DeInit() |
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156 | or @ref HAL_RTC_Init() function. |
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157 | |||
158 | [..] |
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159 | When The compilation define USE_HAL_RTC_REGISTER_CALLBACKS is set to 0 or |
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160 | not defined, the callback registration feature is not available and all callbacks |
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161 | are set to the corresponding weak functions. |
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162 | |||
163 | @endverbatim |
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164 | ****************************************************************************** |
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165 | * @attention |
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166 | * |
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167 | * <h2><center>© Copyright (c) 2017 STMicroelectronics. |
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168 | * All rights reserved.</center></h2> |
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169 | * |
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170 | * This software component is licensed by ST under BSD 3-Clause license, |
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171 | * the "License"; You may not use this file except in compliance with the |
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172 | * License. You may obtain a copy of the License at: |
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173 | * opensource.org/licenses/BSD-3-Clause |
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174 | * |
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175 | ****************************************************************************** |
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176 | */ |
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177 | |||
178 | /* Includes ------------------------------------------------------------------*/ |
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179 | #include "stm32l1xx_hal.h" |
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180 | |||
181 | /** @addtogroup STM32L1xx_HAL_Driver |
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182 | * @{ |
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183 | */ |
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184 | |||
185 | |||
186 | /** @addtogroup RTC |
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187 | * @brief RTC HAL module driver |
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188 | * @{ |
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189 | */ |
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190 | |||
191 | #ifdef HAL_RTC_MODULE_ENABLED |
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192 | |||
193 | /* Private typedef -----------------------------------------------------------*/ |
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194 | /* Private define ------------------------------------------------------------*/ |
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195 | /* Private macro -------------------------------------------------------------*/ |
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196 | /* Private variables ---------------------------------------------------------*/ |
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197 | /* Private function prototypes -----------------------------------------------*/ |
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198 | /* Exported functions --------------------------------------------------------*/ |
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199 | |||
200 | /** @addtogroup RTC_Exported_Functions |
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201 | * @{ |
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202 | */ |
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203 | |||
204 | /** @addtogroup RTC_Exported_Functions_Group1 |
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205 | * @brief Initialization and Configuration functions |
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206 | * |
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207 | @verbatim |
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208 | =============================================================================== |
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209 | ##### Initialization and de-initialization functions ##### |
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210 | =============================================================================== |
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211 | [..] This section provides functions allowing to initialize and configure the |
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212 | RTC Prescaler (Synchronous and Asynchronous), RTC Hour format, disable |
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213 | RTC registers Write protection, enter and exit the RTC initialization mode, |
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214 | RTC registers synchronization check and reference clock detection enable. |
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215 | (#) The RTC Prescaler is programmed to generate the RTC 1Hz time base. |
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216 | It is split into 2 programmable prescalers to minimize power consumption. |
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217 | (++) A 7-bit asynchronous prescaler and a 13-bit synchronous prescaler. |
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218 | (++) When both prescalers are used, it is recommended to configure the |
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219 | asynchronous prescaler to a high value to minimize power consumption. |
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220 | (#) All RTC registers are Write protected. Writing to the RTC registers |
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221 | is enabled by writing a key into the Write Protection register, RTC_WPR. |
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222 | (#) To configure the RTC Calendar, user application should enter |
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223 | initialization mode. In this mode, the calendar counter is stopped |
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224 | and its value can be updated. When the initialization sequence is |
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225 | complete, the calendar restarts counting after 4 RTCCLK cycles. |
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226 | (#) To read the calendar through the shadow registers after Calendar |
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227 | initialization, calendar update or after wakeup from low power modes |
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228 | the software must first clear the RSF flag. The software must then |
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229 | wait until it is set again before reading the calendar, which means |
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230 | that the calendar registers have been correctly copied into the |
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231 | RTC_TR and RTC_DR shadow registers.The HAL_RTC_WaitForSynchro() function |
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232 | implements the above software sequence (RSF clear and RSF check). |
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233 | |||
234 | @endverbatim |
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235 | * @{ |
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236 | */ |
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237 | |||
238 | /** |
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239 | * @brief Initialize the RTC peripheral |
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240 | * @param hrtc RTC handle |
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241 | * @retval HAL status |
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242 | */ |
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243 | HAL_StatusTypeDef HAL_RTC_Init(RTC_HandleTypeDef *hrtc) |
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244 | { |
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245 | /* Check the RTC peripheral state */ |
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246 | if (hrtc == NULL) |
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247 | { |
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248 | return HAL_ERROR; |
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249 | } |
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250 | |||
251 | /* Check the parameters */ |
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252 | assert_param(IS_RTC_ALL_INSTANCE(hrtc->Instance)); |
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253 | assert_param(IS_RTC_HOUR_FORMAT(hrtc->Init.HourFormat)); |
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254 | assert_param(IS_RTC_ASYNCH_PREDIV(hrtc->Init.AsynchPrediv)); |
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255 | assert_param(IS_RTC_SYNCH_PREDIV(hrtc->Init.SynchPrediv)); |
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256 | assert_param(IS_RTC_OUTPUT(hrtc->Init.OutPut)); |
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257 | assert_param(IS_RTC_OUTPUT_POL(hrtc->Init.OutPutPolarity)); |
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258 | assert_param(IS_RTC_OUTPUT_TYPE(hrtc->Init.OutPutType)); |
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259 | |||
260 | #if (USE_HAL_RTC_REGISTER_CALLBACKS == 1) |
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261 | if (hrtc->State == HAL_RTC_STATE_RESET) |
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262 | { |
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263 | /* Allocate lock resource and initialize it */ |
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264 | hrtc->Lock = HAL_UNLOCKED; |
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265 | |||
266 | hrtc->AlarmAEventCallback = HAL_RTC_AlarmAEventCallback; /* Legacy weak AlarmAEventCallback */ |
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267 | hrtc->AlarmBEventCallback = HAL_RTCEx_AlarmBEventCallback; /* Legacy weak AlarmBEventCallback */ |
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268 | hrtc->TimeStampEventCallback = HAL_RTCEx_TimeStampEventCallback; /* Legacy weak TimeStampEventCallback */ |
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269 | hrtc->WakeUpTimerEventCallback = HAL_RTCEx_WakeUpTimerEventCallback; /* Legacy weak WakeUpTimerEventCallback */ |
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270 | hrtc->Tamper1EventCallback = HAL_RTCEx_Tamper1EventCallback; /* Legacy weak Tamper1EventCallback */ |
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271 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
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272 | hrtc->Tamper2EventCallback = HAL_RTCEx_Tamper2EventCallback; /* Legacy weak Tamper2EventCallback */ |
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273 | hrtc->Tamper3EventCallback = HAL_RTCEx_Tamper3EventCallback; /* Legacy weak Tamper3EventCallback */ |
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274 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
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275 | |||
276 | if (hrtc->MspInitCallback == NULL) |
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277 | { |
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278 | hrtc->MspInitCallback = HAL_RTC_MspInit; |
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279 | } |
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280 | /* Init the low level hardware */ |
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281 | hrtc->MspInitCallback(hrtc); |
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282 | |||
283 | if (hrtc->MspDeInitCallback == NULL) |
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284 | { |
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285 | hrtc->MspDeInitCallback = HAL_RTC_MspDeInit; |
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286 | } |
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287 | } |
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288 | #else |
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289 | if (hrtc->State == HAL_RTC_STATE_RESET) |
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290 | { |
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291 | /* Allocate lock resource and initialize it */ |
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292 | hrtc->Lock = HAL_UNLOCKED; |
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293 | |||
294 | /* Initialize RTC MSP */ |
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295 | HAL_RTC_MspInit(hrtc); |
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296 | } |
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297 | #endif /* (USE_HAL_RTC_REGISTER_CALLBACKS) */ |
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298 | |||
299 | /* Set RTC state */ |
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300 | hrtc->State = HAL_RTC_STATE_BUSY; |
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301 | |||
302 | /* Disable the write protection for RTC registers */ |
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303 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
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304 | |||
305 | /* Set Initialization mode */ |
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306 | if (RTC_EnterInitMode(hrtc) != HAL_OK) |
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307 | { |
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308 | /* Enable the write protection for RTC registers */ |
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309 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
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310 | |||
311 | /* Set RTC state */ |
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312 | hrtc->State = HAL_RTC_STATE_ERROR; |
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313 | |||
314 | return HAL_ERROR; |
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315 | } |
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316 | else |
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317 | { |
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318 | /* Clear RTC_CR FMT, OSEL and POL Bits */ |
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319 | hrtc->Instance->CR &= ((uint32_t)~(RTC_CR_FMT | RTC_CR_OSEL | RTC_CR_POL)); |
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320 | /* Set RTC_CR register */ |
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321 | hrtc->Instance->CR |= (uint32_t)(hrtc->Init.HourFormat | hrtc->Init.OutPut | hrtc->Init.OutPutPolarity); |
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322 | |||
323 | /* Configure the RTC PRER */ |
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324 | hrtc->Instance->PRER = (uint32_t)(hrtc->Init.SynchPrediv); |
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325 | hrtc->Instance->PRER |= (uint32_t)(hrtc->Init.AsynchPrediv << 16U); |
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326 | |||
327 | /* Exit Initialization mode */ |
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328 | hrtc->Instance->ISR &= (uint32_t)~RTC_ISR_INIT; |
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61 | mjames | 329 | #if defined (RTC_CR_BYPSHAD) |
330 | /* If CR_BYPSHAD bit = 0, wait for synchro else this check is not needed */ |
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331 | if((hrtc->Instance->CR & RTC_CR_BYPSHAD) == RESET) |
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332 | #endif /* RTC_CR_BYPSHAD */ |
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333 | { |
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334 | if(HAL_RTC_WaitForSynchro(hrtc) != HAL_OK) |
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335 | { |
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336 | /* Enable the write protection for RTC registers */ |
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337 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
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56 | mjames | 338 | |
61 | mjames | 339 | hrtc->State = HAL_RTC_STATE_ERROR; |
340 | |||
341 | return HAL_ERROR; |
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342 | } |
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343 | } |
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56 | mjames | 344 | hrtc->Instance->TAFCR &= (uint32_t)~RTC_TAFCR_ALARMOUTTYPE; |
345 | hrtc->Instance->TAFCR |= (uint32_t)(hrtc->Init.OutPutType); |
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346 | |||
347 | /* Enable the write protection for RTC registers */ |
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348 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
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349 | |||
350 | /* Set RTC state */ |
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351 | hrtc->State = HAL_RTC_STATE_READY; |
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352 | |||
353 | return HAL_OK; |
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354 | } |
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355 | } |
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356 | |||
357 | /** |
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358 | * @brief DeInitialize the RTC peripheral. |
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359 | * @param hrtc RTC handle |
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360 | * @note This function does not reset the RTC Backup Data registers. |
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361 | * @retval HAL status |
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362 | */ |
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363 | HAL_StatusTypeDef HAL_RTC_DeInit(RTC_HandleTypeDef *hrtc) |
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364 | { |
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365 | uint32_t tickstart; |
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366 | |||
367 | /* Check the parameters */ |
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368 | assert_param(IS_RTC_ALL_INSTANCE(hrtc->Instance)); |
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369 | |||
370 | /* Set RTC state */ |
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371 | hrtc->State = HAL_RTC_STATE_BUSY; |
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372 | |||
373 | /* Disable the write protection for RTC registers */ |
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374 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
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375 | |||
376 | /* Set Initialization mode */ |
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377 | if (RTC_EnterInitMode(hrtc) != HAL_OK) |
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378 | { |
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379 | /* Enable the write protection for RTC registers */ |
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380 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
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381 | |||
382 | /* Set RTC state */ |
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383 | hrtc->State = HAL_RTC_STATE_ERROR; |
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384 | |||
385 | return HAL_ERROR; |
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386 | } |
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387 | else |
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388 | { |
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389 | /* Reset TR, DR and CR registers */ |
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390 | hrtc->Instance->TR = 0x00000000U; |
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391 | hrtc->Instance->DR = 0x00002101U; |
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392 | /* Reset All CR bits except CR[2:0] */ |
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393 | hrtc->Instance->CR &= 0x00000007U; |
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394 | |||
395 | tickstart = HAL_GetTick(); |
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396 | |||
397 | /* Wait till WUTWF flag is set and if Time out is reached exit */ |
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398 | while (((hrtc->Instance->ISR) & RTC_ISR_WUTWF) == 0U) |
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399 | { |
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400 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
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401 | { |
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402 | /* Enable the write protection for RTC registers */ |
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403 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
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404 | |||
405 | /* Set RTC state */ |
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406 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
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407 | |||
408 | return HAL_TIMEOUT; |
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409 | } |
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410 | } |
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411 | |||
412 | /* Reset all RTC CR register bits */ |
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413 | hrtc->Instance->CR &= 0x00000000U; |
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414 | hrtc->Instance->WUTR = 0x0000FFFFU; |
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415 | hrtc->Instance->PRER = 0x007F00FFU; |
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416 | hrtc->Instance->CALIBR = 0x00000000U; |
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417 | hrtc->Instance->ALRMAR = 0x00000000U; |
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418 | hrtc->Instance->ALRMBR = 0x00000000U; |
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419 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
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420 | hrtc->Instance->SHIFTR = 0x00000000U; |
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421 | hrtc->Instance->CALR = 0x00000000U; |
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422 | hrtc->Instance->ALRMASSR = 0x00000000U; |
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423 | hrtc->Instance->ALRMBSSR = 0x00000000U; |
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424 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
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425 | /* Reset ISR register and exit initialization mode */ |
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426 | hrtc->Instance->ISR = 0x00000000U; |
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427 | |||
428 | /* Reset Tamper and alternate functions configuration register */ |
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429 | hrtc->Instance->TAFCR = 0x00000000U; |
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430 | |||
431 | /* Wait for synchro */ |
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432 | if (HAL_RTC_WaitForSynchro(hrtc) != HAL_OK) |
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433 | { |
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434 | /* Enable the write protection for RTC registers */ |
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435 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
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436 | |||
437 | hrtc->State = HAL_RTC_STATE_ERROR; |
||
438 | |||
439 | return HAL_ERROR; |
||
440 | } |
||
441 | } |
||
442 | |||
443 | /* Enable the write protection for RTC registers */ |
||
444 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
445 | |||
446 | #if (USE_HAL_RTC_REGISTER_CALLBACKS == 1) |
||
447 | if (hrtc->MspDeInitCallback == NULL) |
||
448 | { |
||
449 | hrtc->MspDeInitCallback = HAL_RTC_MspDeInit; |
||
450 | } |
||
451 | |||
452 | /* DeInit the low level hardware: CLOCK, NVIC.*/ |
||
453 | hrtc->MspDeInitCallback(hrtc); |
||
454 | |||
455 | #else |
||
456 | /* De-Initialize RTC MSP */ |
||
457 | HAL_RTC_MspDeInit(hrtc); |
||
458 | #endif /* (USE_HAL_RTC_REGISTER_CALLBACKS) */ |
||
459 | |||
460 | hrtc->State = HAL_RTC_STATE_RESET; |
||
461 | |||
462 | /* Release Lock */ |
||
463 | __HAL_UNLOCK(hrtc); |
||
464 | |||
465 | return HAL_OK; |
||
466 | } |
||
467 | |||
468 | #if (USE_HAL_RTC_REGISTER_CALLBACKS == 1) |
||
469 | /** |
||
470 | * @brief Register a User RTC Callback |
||
471 | * To be used instead of the weak predefined callback |
||
472 | * @param hrtc RTC handle |
||
473 | * @param CallbackID ID of the callback to be registered |
||
474 | * This parameter can be one of the following values: |
||
475 | * @arg @ref HAL_RTC_ALARM_A_EVENT_CB_ID Alarm A Event Callback ID |
||
476 | * @arg @ref HAL_RTC_ALARM_B_EVENT_CB_ID Alarm B Event Callback ID |
||
477 | * @arg @ref HAL_RTC_TIMESTAMP_EVENT_CB_ID TimeStamp Event Callback ID |
||
478 | * @arg @ref HAL_RTC_WAKEUPTIMER_EVENT_CB_ID WakeUp Timer Event Callback ID |
||
479 | * @arg @ref HAL_RTC_TAMPER1_EVENT_CB_ID Tamper 1 Callback ID |
||
480 | * @arg @ref HAL_RTC_TAMPER2_EVENT_CB_ID Tamper 2 Callback ID |
||
481 | * @arg @ref HAL_RTC_TAMPER3_EVENT_CB_ID Tamper 3 Callback ID |
||
482 | * @arg @ref HAL_RTC_MSPINIT_CB_ID Msp Init callback ID |
||
483 | * @arg @ref HAL_RTC_MSPDEINIT_CB_ID Msp DeInit callback ID |
||
484 | * @param pCallback pointer to the Callback function |
||
485 | * @retval HAL status |
||
486 | */ |
||
487 | HAL_StatusTypeDef HAL_RTC_RegisterCallback(RTC_HandleTypeDef *hrtc, HAL_RTC_CallbackIDTypeDef CallbackID, pRTC_CallbackTypeDef pCallback) |
||
488 | { |
||
489 | HAL_StatusTypeDef status = HAL_OK; |
||
490 | |||
491 | if (pCallback == NULL) |
||
492 | { |
||
493 | return HAL_ERROR; |
||
494 | } |
||
495 | |||
496 | /* Process locked */ |
||
497 | __HAL_LOCK(hrtc); |
||
498 | |||
499 | if (HAL_RTC_STATE_READY == hrtc->State) |
||
500 | { |
||
501 | switch (CallbackID) |
||
502 | { |
||
503 | case HAL_RTC_ALARM_A_EVENT_CB_ID : |
||
504 | hrtc->AlarmAEventCallback = pCallback; |
||
505 | break; |
||
506 | |||
507 | case HAL_RTC_ALARM_B_EVENT_CB_ID : |
||
508 | hrtc->AlarmBEventCallback = pCallback; |
||
509 | break; |
||
510 | |||
511 | case HAL_RTC_TIMESTAMP_EVENT_CB_ID : |
||
512 | hrtc->TimeStampEventCallback = pCallback; |
||
513 | break; |
||
514 | |||
515 | case HAL_RTC_WAKEUPTIMER_EVENT_CB_ID : |
||
516 | hrtc->WakeUpTimerEventCallback = pCallback; |
||
517 | break; |
||
518 | |||
519 | case HAL_RTC_TAMPER1_EVENT_CB_ID : |
||
520 | hrtc->Tamper1EventCallback = pCallback; |
||
521 | break; |
||
522 | |||
523 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
524 | case HAL_RTC_TAMPER2_EVENT_CB_ID : |
||
525 | hrtc->Tamper2EventCallback = pCallback; |
||
526 | break; |
||
527 | |||
528 | case HAL_RTC_TAMPER3_EVENT_CB_ID : |
||
529 | hrtc->Tamper3EventCallback = pCallback; |
||
530 | break; |
||
531 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
532 | |||
533 | case HAL_RTC_MSPINIT_CB_ID : |
||
534 | hrtc->MspInitCallback = pCallback; |
||
535 | break; |
||
536 | |||
537 | case HAL_RTC_MSPDEINIT_CB_ID : |
||
538 | hrtc->MspDeInitCallback = pCallback; |
||
539 | break; |
||
540 | |||
541 | default : |
||
542 | /* Return error status */ |
||
543 | status = HAL_ERROR; |
||
544 | break; |
||
545 | } |
||
546 | } |
||
547 | else if (HAL_RTC_STATE_RESET == hrtc->State) |
||
548 | { |
||
549 | switch (CallbackID) |
||
550 | { |
||
551 | case HAL_RTC_MSPINIT_CB_ID : |
||
552 | hrtc->MspInitCallback = pCallback; |
||
553 | break; |
||
554 | |||
555 | case HAL_RTC_MSPDEINIT_CB_ID : |
||
556 | hrtc->MspDeInitCallback = pCallback; |
||
557 | break; |
||
558 | |||
559 | default : |
||
560 | /* Return error status */ |
||
561 | status = HAL_ERROR; |
||
562 | break; |
||
563 | } |
||
564 | } |
||
565 | else |
||
566 | { |
||
567 | /* Return error status */ |
||
568 | status = HAL_ERROR; |
||
569 | } |
||
570 | |||
571 | /* Release Lock */ |
||
572 | __HAL_UNLOCK(hrtc); |
||
573 | |||
574 | return status; |
||
575 | } |
||
576 | |||
577 | /** |
||
578 | * @brief Unregister an RTC Callback |
||
579 | * RTC callabck is redirected to the weak predefined callback |
||
580 | * @param hrtc RTC handle |
||
581 | * @param CallbackID ID of the callback to be unregistered |
||
582 | * This parameter can be one of the following values: |
||
583 | * @arg @ref HAL_RTC_ALARM_A_EVENT_CB_ID Alarm A Event Callback ID |
||
584 | * @arg @ref HAL_RTC_ALARM_B_EVENT_CB_ID Alarm B Event Callback ID |
||
585 | * @arg @ref HAL_RTC_TIMESTAMP_EVENT_CB_ID TimeStamp Event Callback ID |
||
586 | * @arg @ref HAL_RTC_WAKEUPTIMER_EVENT_CB_ID WakeUp Timer Event Callback ID |
||
587 | * @arg @ref HAL_RTC_TAMPER1_EVENT_CB_ID Tamper 1 Callback ID |
||
588 | * @arg @ref HAL_RTC_TAMPER2_EVENT_CB_ID Tamper 2 Callback ID |
||
589 | * @arg @ref HAL_RTC_TAMPER3_EVENT_CB_ID Tamper 3 Callback ID |
||
590 | * @arg @ref HAL_RTC_MSPINIT_CB_ID Msp Init callback ID |
||
591 | * @arg @ref HAL_RTC_MSPDEINIT_CB_ID Msp DeInit callback ID |
||
592 | * @retval HAL status |
||
593 | */ |
||
594 | HAL_StatusTypeDef HAL_RTC_UnRegisterCallback(RTC_HandleTypeDef *hrtc, HAL_RTC_CallbackIDTypeDef CallbackID) |
||
595 | { |
||
596 | HAL_StatusTypeDef status = HAL_OK; |
||
597 | |||
598 | /* Process locked */ |
||
599 | __HAL_LOCK(hrtc); |
||
600 | |||
601 | if (HAL_RTC_STATE_READY == hrtc->State) |
||
602 | { |
||
603 | switch (CallbackID) |
||
604 | { |
||
605 | case HAL_RTC_ALARM_A_EVENT_CB_ID : |
||
606 | hrtc->AlarmAEventCallback = HAL_RTC_AlarmAEventCallback; /* Legacy weak AlarmAEventCallback */ |
||
607 | break; |
||
608 | |||
609 | case HAL_RTC_ALARM_B_EVENT_CB_ID : |
||
610 | hrtc->AlarmBEventCallback = HAL_RTCEx_AlarmBEventCallback; /* Legacy weak AlarmBEventCallback */ |
||
611 | break; |
||
612 | |||
613 | case HAL_RTC_TIMESTAMP_EVENT_CB_ID : |
||
614 | hrtc->TimeStampEventCallback = HAL_RTCEx_TimeStampEventCallback; /* Legacy weak TimeStampEventCallback */ |
||
615 | break; |
||
616 | |||
617 | case HAL_RTC_WAKEUPTIMER_EVENT_CB_ID : |
||
618 | hrtc->WakeUpTimerEventCallback = HAL_RTCEx_WakeUpTimerEventCallback; /* Legacy weak WakeUpTimerEventCallback */ |
||
619 | break; |
||
620 | |||
621 | case HAL_RTC_TAMPER1_EVENT_CB_ID : |
||
622 | hrtc->Tamper1EventCallback = HAL_RTCEx_Tamper1EventCallback; /* Legacy weak Tamper1EventCallback */ |
||
623 | break; |
||
624 | |||
625 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
626 | case HAL_RTC_TAMPER2_EVENT_CB_ID : |
||
627 | hrtc->Tamper2EventCallback = HAL_RTCEx_Tamper2EventCallback; /* Legacy weak Tamper2EventCallback */ |
||
628 | break; |
||
629 | |||
630 | case HAL_RTC_TAMPER3_EVENT_CB_ID : |
||
631 | hrtc->Tamper3EventCallback = HAL_RTCEx_Tamper3EventCallback; /* Legacy weak Tamper3EventCallback */ |
||
632 | break; |
||
633 | #endif |
||
634 | case HAL_RTC_MSPINIT_CB_ID : |
||
635 | hrtc->MspInitCallback = HAL_RTC_MspInit; |
||
636 | break; |
||
637 | |||
638 | case HAL_RTC_MSPDEINIT_CB_ID : |
||
639 | hrtc->MspDeInitCallback = HAL_RTC_MspDeInit; |
||
640 | break; |
||
641 | |||
642 | default : |
||
643 | /* Return error status */ |
||
644 | status = HAL_ERROR; |
||
645 | break; |
||
646 | } |
||
647 | } |
||
648 | else if (HAL_RTC_STATE_RESET == hrtc->State) |
||
649 | { |
||
650 | switch (CallbackID) |
||
651 | { |
||
652 | case HAL_RTC_MSPINIT_CB_ID : |
||
653 | hrtc->MspInitCallback = HAL_RTC_MspInit; |
||
654 | break; |
||
655 | |||
656 | case HAL_RTC_MSPDEINIT_CB_ID : |
||
657 | hrtc->MspDeInitCallback = HAL_RTC_MspDeInit; |
||
658 | break; |
||
659 | |||
660 | default : |
||
661 | /* Return error status */ |
||
662 | status = HAL_ERROR; |
||
663 | break; |
||
664 | } |
||
665 | } |
||
666 | else |
||
667 | { |
||
668 | /* Return error status */ |
||
669 | status = HAL_ERROR; |
||
670 | } |
||
671 | |||
672 | /* Release Lock */ |
||
673 | __HAL_UNLOCK(hrtc); |
||
674 | |||
675 | return status; |
||
676 | } |
||
677 | #endif /* USE_HAL_RTC_REGISTER_CALLBACKS */ |
||
678 | |||
679 | /** |
||
680 | * @brief Initialize the RTC MSP. |
||
681 | * @param hrtc RTC handle |
||
682 | * @retval None |
||
683 | */ |
||
684 | __weak void HAL_RTC_MspInit(RTC_HandleTypeDef *hrtc) |
||
685 | { |
||
686 | /* Prevent unused argument(s) compilation warning */ |
||
687 | UNUSED(hrtc); |
||
688 | |||
689 | /* NOTE : This function Should not be modified, when the callback is needed, |
||
690 | the HAL_RTC_MspInit could be implemented in the user file |
||
691 | */ |
||
692 | } |
||
693 | |||
694 | /** |
||
695 | * @brief DeInitialize the RTC MSP. |
||
696 | * @param hrtc RTC handle |
||
697 | * @retval None |
||
698 | */ |
||
699 | __weak void HAL_RTC_MspDeInit(RTC_HandleTypeDef *hrtc) |
||
700 | { |
||
701 | /* Prevent unused argument(s) compilation warning */ |
||
702 | UNUSED(hrtc); |
||
703 | |||
704 | /* NOTE : This function Should not be modified, when the callback is needed, |
||
705 | the HAL_RTC_MspDeInit could be implemented in the user file |
||
706 | */ |
||
707 | } |
||
708 | |||
709 | /** |
||
710 | * @} |
||
711 | */ |
||
712 | |||
713 | /** @addtogroup RTC_Exported_Functions_Group2 |
||
714 | * @brief RTC Time and Date functions |
||
715 | * |
||
716 | @verbatim |
||
717 | =============================================================================== |
||
718 | ##### RTC Time and Date functions ##### |
||
719 | =============================================================================== |
||
720 | |||
721 | [..] This section provides functions allowing to configure Time and Date features |
||
722 | |||
723 | @endverbatim |
||
724 | * @{ |
||
725 | */ |
||
726 | |||
727 | /** |
||
728 | * @brief Set RTC current time. |
||
729 | * @param hrtc RTC handle |
||
730 | * @param sTime Pointer to Time structure |
||
731 | * @param Format Specifies the format of the entered parameters. |
||
732 | * This parameter can be one of the following values: |
||
733 | * @arg RTC_FORMAT_BIN: Binary data format |
||
734 | * @arg RTC_FORMAT_BCD: BCD data format |
||
735 | * @retval HAL status |
||
736 | */ |
||
737 | HAL_StatusTypeDef HAL_RTC_SetTime(RTC_HandleTypeDef *hrtc, RTC_TimeTypeDef *sTime, uint32_t Format) |
||
738 | { |
||
739 | uint32_t tmpreg; |
||
740 | |||
741 | /* Check the parameters */ |
||
742 | assert_param(IS_RTC_FORMAT(Format)); |
||
743 | assert_param(IS_RTC_DAYLIGHT_SAVING(sTime->DayLightSaving)); |
||
744 | assert_param(IS_RTC_STORE_OPERATION(sTime->StoreOperation)); |
||
745 | |||
746 | /* Process Locked */ |
||
747 | __HAL_LOCK(hrtc); |
||
748 | |||
749 | hrtc->State = HAL_RTC_STATE_BUSY; |
||
750 | |||
751 | if (Format == RTC_FORMAT_BIN) |
||
752 | { |
||
753 | if ((hrtc->Instance->CR & RTC_CR_FMT) != 0U) |
||
754 | { |
||
755 | assert_param(IS_RTC_HOUR12(sTime->Hours)); |
||
756 | assert_param(IS_RTC_HOURFORMAT12(sTime->TimeFormat)); |
||
757 | } |
||
758 | else |
||
759 | { |
||
760 | sTime->TimeFormat = 0x00U; |
||
761 | assert_param(IS_RTC_HOUR24(sTime->Hours)); |
||
762 | } |
||
763 | assert_param(IS_RTC_MINUTES(sTime->Minutes)); |
||
764 | assert_param(IS_RTC_SECONDS(sTime->Seconds)); |
||
765 | |||
766 | tmpreg = (uint32_t)(((uint32_t)RTC_ByteToBcd2(sTime->Hours) << 16U) | \ |
||
767 | ((uint32_t)RTC_ByteToBcd2(sTime->Minutes) << 8U) | \ |
||
768 | ((uint32_t)RTC_ByteToBcd2(sTime->Seconds)) | \ |
||
769 | (((uint32_t)sTime->TimeFormat) << 16U)); |
||
770 | } |
||
771 | else |
||
772 | { |
||
773 | if ((hrtc->Instance->CR & RTC_CR_FMT) != 0U) |
||
774 | { |
||
775 | assert_param(IS_RTC_HOUR12(RTC_Bcd2ToByte(sTime->Hours))); |
||
776 | assert_param(IS_RTC_HOURFORMAT12(sTime->TimeFormat)); |
||
777 | } |
||
778 | else |
||
779 | { |
||
780 | sTime->TimeFormat = 0x00U; |
||
781 | assert_param(IS_RTC_HOUR24(RTC_Bcd2ToByte(sTime->Hours))); |
||
782 | } |
||
783 | assert_param(IS_RTC_MINUTES(RTC_Bcd2ToByte(sTime->Minutes))); |
||
784 | assert_param(IS_RTC_SECONDS(RTC_Bcd2ToByte(sTime->Seconds))); |
||
785 | tmpreg = (((uint32_t)(sTime->Hours) << 16U) | \ |
||
786 | ((uint32_t)(sTime->Minutes) << 8U) | \ |
||
787 | ((uint32_t)sTime->Seconds) | \ |
||
788 | ((uint32_t)(sTime->TimeFormat) << 16U)); |
||
789 | } |
||
790 | UNUSED(tmpreg); |
||
791 | /* Disable the write protection for RTC registers */ |
||
792 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
793 | |||
794 | /* Set Initialization mode */ |
||
795 | if (RTC_EnterInitMode(hrtc) != HAL_OK) |
||
796 | { |
||
797 | /* Enable the write protection for RTC registers */ |
||
798 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
799 | |||
800 | /* Set RTC state */ |
||
801 | hrtc->State = HAL_RTC_STATE_ERROR; |
||
802 | |||
803 | /* Process Unlocked */ |
||
804 | __HAL_UNLOCK(hrtc); |
||
805 | |||
806 | return HAL_ERROR; |
||
807 | } |
||
808 | else |
||
809 | { |
||
810 | /* Set the RTC_TR register */ |
||
811 | hrtc->Instance->TR = (uint32_t)(tmpreg & RTC_TR_RESERVED_MASK); |
||
812 | |||
61 | mjames | 813 | /* Clear the bits to be configured (Deprecated. Use HAL_RTC_DST_xxx functions instead) */ |
56 | mjames | 814 | hrtc->Instance->CR &= ((uint32_t)~RTC_CR_BKP); |
815 | |||
61 | mjames | 816 | /* Configure the RTC_CR register (Deprecated. Use HAL_RTC_DST_xxx functions instead) */ |
56 | mjames | 817 | hrtc->Instance->CR |= (uint32_t)(sTime->DayLightSaving | sTime->StoreOperation); |
818 | |||
819 | /* Exit Initialization mode */ |
||
820 | hrtc->Instance->ISR &= ((uint32_t)~RTC_ISR_INIT); |
||
821 | |||
822 | /* Wait for synchro */ |
||
823 | if (HAL_RTC_WaitForSynchro(hrtc) != HAL_OK) |
||
824 | { |
||
825 | /* Enable the write protection for RTC registers */ |
||
826 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
827 | |||
828 | hrtc->State = HAL_RTC_STATE_ERROR; |
||
829 | |||
830 | /* Process Unlocked */ |
||
831 | __HAL_UNLOCK(hrtc); |
||
832 | |||
833 | return HAL_ERROR; |
||
834 | } |
||
835 | |||
836 | /* Enable the write protection for RTC registers */ |
||
837 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
838 | |||
839 | hrtc->State = HAL_RTC_STATE_READY; |
||
840 | |||
841 | __HAL_UNLOCK(hrtc); |
||
842 | |||
843 | return HAL_OK; |
||
844 | } |
||
845 | } |
||
846 | |||
847 | /** |
||
848 | * @brief Get RTC current time. |
||
849 | * @param hrtc RTC handle |
||
850 | * @param sTime Pointer to Time structure with Hours, Minutes and Seconds fields returned |
||
851 | * with input format (BIN or BCD), also SubSeconds field (if availabale) returning the |
||
852 | * RTC_SSR register content and SecondFraction field the Synchronous pre-scaler |
||
853 | * factor to be used for second fraction ratio computation. |
||
854 | * @param Format Specifies the format of the entered parameters. |
||
855 | * This parameter can be one of the following values: |
||
856 | * @arg RTC_FORMAT_BIN: Binary data format |
||
857 | * @arg RTC_FORMAT_BCD: BCD data format |
||
858 | * @note If available, you can use SubSeconds and SecondFraction (sTime structure fields returned) to convert SubSeconds |
||
859 | * value in second fraction ratio with time unit following generic formula: |
||
860 | * Second fraction ratio * time_unit= [(SecondFraction-SubSeconds)/(SecondFraction+1)] * time_unit |
||
861 | * This conversion can be performed only if no shift operation is pending (ie. SHFP=0) when PREDIV_S >= SS |
||
862 | * @note You must call HAL_RTC_GetDate() after HAL_RTC_GetTime() to unlock the values |
||
863 | * in the higher-order calendar shadow registers to ensure consistency between the time and date values. |
||
864 | * Reading RTC current time locks the values in calendar shadow registers until Current date is read |
||
865 | * to ensure consistency between the time and date values. |
||
866 | * @retval HAL status |
||
867 | */ |
||
868 | HAL_StatusTypeDef HAL_RTC_GetTime(RTC_HandleTypeDef *hrtc, RTC_TimeTypeDef *sTime, uint32_t Format) |
||
869 | { |
||
870 | uint32_t tmpreg; |
||
871 | |||
872 | /* Check the parameters */ |
||
873 | assert_param(IS_RTC_FORMAT(Format)); |
||
874 | |||
875 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
876 | /* Get subseconds structure field from the corresponding register*/ |
||
877 | sTime->SubSeconds = (uint32_t)((hrtc->Instance->SSR) & RTC_SSR_SS); |
||
878 | |||
879 | /* Get SecondFraction structure field from the corresponding register field*/ |
||
880 | sTime->SecondFraction = (uint32_t)(hrtc->Instance->PRER & RTC_PRER_PREDIV_S); |
||
881 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
882 | |||
883 | /* Get the TR register */ |
||
884 | tmpreg = (uint32_t)(hrtc->Instance->TR & RTC_TR_RESERVED_MASK); |
||
885 | |||
886 | /* Fill the structure fields with the read parameters */ |
||
887 | sTime->Hours = (uint8_t)((tmpreg & (RTC_TR_HT | RTC_TR_HU)) >> 16U); |
||
888 | sTime->Minutes = (uint8_t)((tmpreg & (RTC_TR_MNT | RTC_TR_MNU)) >> 8U); |
||
889 | sTime->Seconds = (uint8_t)(tmpreg & (RTC_TR_ST | RTC_TR_SU)); |
||
890 | sTime->TimeFormat = (uint8_t)((tmpreg & (RTC_TR_PM)) >> 16U); |
||
891 | |||
892 | /* Check the input parameters format */ |
||
893 | if (Format == RTC_FORMAT_BIN) |
||
894 | { |
||
895 | /* Convert the time structure parameters to Binary format */ |
||
896 | sTime->Hours = (uint8_t)RTC_Bcd2ToByte(sTime->Hours); |
||
897 | sTime->Minutes = (uint8_t)RTC_Bcd2ToByte(sTime->Minutes); |
||
898 | sTime->Seconds = (uint8_t)RTC_Bcd2ToByte(sTime->Seconds); |
||
899 | } |
||
900 | |||
901 | return HAL_OK; |
||
902 | } |
||
903 | |||
904 | /** |
||
905 | * @brief Set RTC current date. |
||
906 | * @param hrtc RTC handle |
||
907 | * @param sDate Pointer to date structure |
||
908 | * @param Format specifies the format of the entered parameters. |
||
909 | * This parameter can be one of the following values: |
||
910 | * @arg RTC_FORMAT_BIN: Binary data format |
||
911 | * @arg RTC_FORMAT_BCD: BCD data format |
||
912 | * @retval HAL status |
||
913 | */ |
||
914 | HAL_StatusTypeDef HAL_RTC_SetDate(RTC_HandleTypeDef *hrtc, RTC_DateTypeDef *sDate, uint32_t Format) |
||
915 | { |
||
916 | uint32_t datetmpreg; |
||
917 | |||
918 | /* Check the parameters */ |
||
919 | assert_param(IS_RTC_FORMAT(Format)); |
||
920 | |||
921 | /* Process Locked */ |
||
922 | __HAL_LOCK(hrtc); |
||
923 | |||
924 | hrtc->State = HAL_RTC_STATE_BUSY; |
||
925 | |||
926 | if ((Format == RTC_FORMAT_BIN) && ((sDate->Month & 0x10U) == 0x10U)) |
||
927 | { |
||
928 | sDate->Month = (uint8_t)((sDate->Month & (uint8_t)~(0x10U)) + (uint8_t)0x0AU); |
||
929 | } |
||
930 | |||
931 | assert_param(IS_RTC_WEEKDAY(sDate->WeekDay)); |
||
932 | |||
933 | if (Format == RTC_FORMAT_BIN) |
||
934 | { |
||
935 | assert_param(IS_RTC_YEAR(sDate->Year)); |
||
936 | assert_param(IS_RTC_MONTH(sDate->Month)); |
||
937 | assert_param(IS_RTC_DATE(sDate->Date)); |
||
938 | |||
939 | datetmpreg = (((uint32_t)RTC_ByteToBcd2(sDate->Year) << 16U) | \ |
||
940 | ((uint32_t)RTC_ByteToBcd2(sDate->Month) << 8U) | \ |
||
941 | ((uint32_t)RTC_ByteToBcd2(sDate->Date)) | \ |
||
942 | ((uint32_t)sDate->WeekDay << 13U)); |
||
943 | } |
||
944 | else |
||
945 | { |
||
946 | assert_param(IS_RTC_YEAR(RTC_Bcd2ToByte(sDate->Year))); |
||
947 | assert_param(IS_RTC_MONTH(RTC_Bcd2ToByte(sDate->Month))); |
||
948 | assert_param(IS_RTC_DATE(RTC_Bcd2ToByte(sDate->Date))); |
||
949 | |||
950 | datetmpreg = ((((uint32_t)sDate->Year) << 16U) | \ |
||
951 | (((uint32_t)sDate->Month) << 8U) | \ |
||
952 | ((uint32_t)sDate->Date) | \ |
||
953 | (((uint32_t)sDate->WeekDay) << 13U)); |
||
954 | } |
||
955 | |||
956 | /* Disable the write protection for RTC registers */ |
||
957 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
958 | |||
959 | /* Set Initialization mode */ |
||
960 | if (RTC_EnterInitMode(hrtc) != HAL_OK) |
||
961 | { |
||
962 | /* Enable the write protection for RTC registers */ |
||
963 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
964 | |||
965 | /* Set RTC state*/ |
||
966 | hrtc->State = HAL_RTC_STATE_ERROR; |
||
967 | |||
968 | /* Process Unlocked */ |
||
969 | __HAL_UNLOCK(hrtc); |
||
970 | |||
971 | return HAL_ERROR; |
||
972 | } |
||
973 | else |
||
974 | { |
||
975 | /* Set the RTC_DR register */ |
||
976 | hrtc->Instance->DR = (uint32_t)(datetmpreg & RTC_DR_RESERVED_MASK); |
||
977 | |||
978 | /* Exit Initialization mode */ |
||
979 | hrtc->Instance->ISR &= ((uint32_t)~RTC_ISR_INIT); |
||
980 | |||
981 | /* Wait for synchro */ |
||
982 | if (HAL_RTC_WaitForSynchro(hrtc) != HAL_OK) |
||
983 | { |
||
984 | /* Enable the write protection for RTC registers */ |
||
985 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
986 | |||
987 | hrtc->State = HAL_RTC_STATE_ERROR; |
||
988 | |||
989 | /* Process Unlocked */ |
||
990 | __HAL_UNLOCK(hrtc); |
||
991 | |||
992 | return HAL_ERROR; |
||
993 | } |
||
994 | |||
995 | /* Enable the write protection for RTC registers */ |
||
996 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
997 | |||
998 | hrtc->State = HAL_RTC_STATE_READY ; |
||
999 | |||
1000 | /* Process Unlocked */ |
||
1001 | __HAL_UNLOCK(hrtc); |
||
1002 | |||
1003 | return HAL_OK; |
||
1004 | } |
||
1005 | } |
||
1006 | |||
1007 | /** |
||
1008 | * @brief Get RTC current date. |
||
1009 | * @param hrtc RTC handle |
||
1010 | * @param sDate Pointer to Date structure |
||
1011 | * @param Format Specifies the format of the entered parameters. |
||
1012 | * This parameter can be one of the following values: |
||
1013 | * @arg RTC_FORMAT_BIN: Binary data format |
||
1014 | * @arg RTC_FORMAT_BCD: BCD data format |
||
1015 | * @note You must call HAL_RTC_GetDate() after HAL_RTC_GetTime() to unlock the values |
||
1016 | * in the higher-order calendar shadow registers to ensure consistency between the time and date values. |
||
1017 | * Reading RTC current time locks the values in calendar shadow registers until Current date is read. |
||
1018 | * @retval HAL status |
||
1019 | */ |
||
1020 | HAL_StatusTypeDef HAL_RTC_GetDate(RTC_HandleTypeDef *hrtc, RTC_DateTypeDef *sDate, uint32_t Format) |
||
1021 | { |
||
1022 | uint32_t datetmpreg; |
||
1023 | |||
1024 | /* Check the parameters */ |
||
1025 | assert_param(IS_RTC_FORMAT(Format)); |
||
1026 | |||
1027 | /* Get the DR register */ |
||
1028 | datetmpreg = (uint32_t)(hrtc->Instance->DR & RTC_DR_RESERVED_MASK); |
||
1029 | |||
1030 | /* Fill the structure fields with the read parameters */ |
||
1031 | sDate->Year = (uint8_t)((datetmpreg & (RTC_DR_YT | RTC_DR_YU)) >> 16U); |
||
1032 | sDate->Month = (uint8_t)((datetmpreg & (RTC_DR_MT | RTC_DR_MU)) >> 8U); |
||
1033 | sDate->Date = (uint8_t)(datetmpreg & (RTC_DR_DT | RTC_DR_DU)); |
||
1034 | sDate->WeekDay = (uint8_t)((datetmpreg & (RTC_DR_WDU)) >> 13U); |
||
1035 | |||
1036 | /* Check the input parameters format */ |
||
1037 | if (Format == RTC_FORMAT_BIN) |
||
1038 | { |
||
1039 | /* Convert the date structure parameters to Binary format */ |
||
1040 | sDate->Year = (uint8_t)RTC_Bcd2ToByte(sDate->Year); |
||
1041 | sDate->Month = (uint8_t)RTC_Bcd2ToByte(sDate->Month); |
||
1042 | sDate->Date = (uint8_t)RTC_Bcd2ToByte(sDate->Date); |
||
1043 | } |
||
1044 | return HAL_OK; |
||
1045 | } |
||
1046 | |||
1047 | /** |
||
61 | mjames | 1048 | * @brief Daylight Saving Time, adda one hour to the calendar in one |
1049 | * single operation without going through the initialization procedure. |
||
1050 | * @param hrtc pointer to a RTC_HandleTypeDef structure that contains |
||
1051 | * the configuration information for RTC. |
||
1052 | * @retval None |
||
1053 | */ |
||
1054 | void HAL_RTC_DST_Add1Hour(RTC_HandleTypeDef *hrtc) |
||
1055 | { |
||
1056 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1057 | SET_BIT(hrtc->Instance->CR, RTC_CR_ADD1H); |
||
1058 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1059 | } |
||
1060 | |||
1061 | /** |
||
1062 | * @brief Daylight Saving Time, subtracts one hour from the calendar in one |
||
1063 | * single operation without going through the initialization procedure. |
||
1064 | * @param hrtc pointer to a RTC_HandleTypeDef structure that contains |
||
1065 | * the configuration information for RTC. |
||
1066 | * @retval None |
||
1067 | */ |
||
1068 | void HAL_RTC_DST_Sub1Hour(RTC_HandleTypeDef *hrtc) |
||
1069 | { |
||
1070 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1071 | SET_BIT(hrtc->Instance->CR, RTC_CR_SUB1H); |
||
1072 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1073 | } |
||
1074 | |||
1075 | /** |
||
1076 | * @brief Daylight Saving Time, sets the store operation bit. |
||
1077 | * @note It can be used by the software in order to memorize the DST status. |
||
1078 | * @param hrtc pointer to a RTC_HandleTypeDef structure that contains |
||
1079 | * the configuration information for RTC. |
||
1080 | * @retval None |
||
1081 | */ |
||
1082 | void HAL_RTC_DST_SetStoreOperation(RTC_HandleTypeDef *hrtc) |
||
1083 | { |
||
1084 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1085 | SET_BIT(hrtc->Instance->CR, RTC_CR_BKP); |
||
1086 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1087 | } |
||
1088 | |||
1089 | /** |
||
1090 | * @brief Daylight Saving Time, clears the store operation bit. |
||
1091 | * @param hrtc pointer to a RTC_HandleTypeDef structure that contains |
||
1092 | * the configuration information for RTC. |
||
1093 | * @retval None |
||
1094 | */ |
||
1095 | void HAL_RTC_DST_ClearStoreOperation(RTC_HandleTypeDef *hrtc) |
||
1096 | { |
||
1097 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1098 | CLEAR_BIT(hrtc->Instance->CR, RTC_CR_BKP); |
||
1099 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1100 | } |
||
1101 | |||
1102 | /** |
||
1103 | * @brief Daylight Saving Time, reads the store operation bit. |
||
1104 | * @param hrtc RTC handle |
||
1105 | * @retval operation see RTC_StoreOperation_Definitions |
||
1106 | */ |
||
1107 | uint32_t HAL_RTC_DST_ReadStoreOperation(RTC_HandleTypeDef *hrtc) |
||
1108 | { |
||
1109 | return READ_BIT(hrtc->Instance->CR, RTC_CR_BKP); |
||
1110 | } |
||
1111 | |||
1112 | /** |
||
56 | mjames | 1113 | * @} |
1114 | */ |
||
1115 | |||
1116 | /** @addtogroup RTC_Exported_Functions_Group3 |
||
1117 | * @brief RTC Alarm functions |
||
1118 | * |
||
1119 | @verbatim |
||
1120 | =============================================================================== |
||
1121 | ##### RTC Alarm functions ##### |
||
1122 | =============================================================================== |
||
1123 | |||
1124 | [..] This section provides functions allowing to configure Alarm feature |
||
1125 | |||
1126 | @endverbatim |
||
1127 | * @{ |
||
1128 | */ |
||
1129 | /** |
||
1130 | * @brief Set the specified RTC Alarm. |
||
1131 | * @param hrtc RTC handle |
||
1132 | * @param sAlarm Pointer to Alarm structure |
||
1133 | * @param Format Specifies the format of the entered parameters. |
||
1134 | * This parameter can be one of the following values: |
||
1135 | * @arg RTC_FORMAT_BIN: Binary data format |
||
1136 | * @arg RTC_FORMAT_BCD: BCD data format |
||
1137 | * @retval HAL status |
||
1138 | */ |
||
1139 | HAL_StatusTypeDef HAL_RTC_SetAlarm(RTC_HandleTypeDef *hrtc, RTC_AlarmTypeDef *sAlarm, uint32_t Format) |
||
1140 | { |
||
1141 | uint32_t tickstart; |
||
1142 | uint32_t tmpreg; |
||
1143 | |||
1144 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1145 | uint32_t subsecondtmpreg = 0; |
||
1146 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1147 | |||
1148 | /* Check the parameters */ |
||
1149 | assert_param(IS_RTC_FORMAT(Format)); |
||
1150 | assert_param(IS_RTC_ALARM(sAlarm->Alarm)); |
||
1151 | assert_param(IS_RTC_ALARM_MASK(sAlarm->AlarmMask)); |
||
1152 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_SEL(sAlarm->AlarmDateWeekDaySel)); |
||
1153 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1154 | assert_param(IS_RTC_ALARM_SUB_SECOND_VALUE(sAlarm->AlarmTime.SubSeconds)); |
||
1155 | assert_param(IS_RTC_ALARM_SUB_SECOND_MASK(sAlarm->AlarmSubSecondMask)); |
||
1156 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1157 | |||
1158 | /* Process Locked */ |
||
1159 | __HAL_LOCK(hrtc); |
||
1160 | |||
1161 | hrtc->State = HAL_RTC_STATE_BUSY; |
||
1162 | |||
1163 | if (Format == RTC_FORMAT_BIN) |
||
1164 | { |
||
1165 | if ((hrtc->Instance->CR & RTC_CR_FMT) != 0U) |
||
1166 | { |
||
1167 | assert_param(IS_RTC_HOUR12(sAlarm->AlarmTime.Hours)); |
||
1168 | assert_param(IS_RTC_HOURFORMAT12(sAlarm->AlarmTime.TimeFormat)); |
||
1169 | } |
||
1170 | else |
||
1171 | { |
||
1172 | sAlarm->AlarmTime.TimeFormat = 0x00U; |
||
1173 | assert_param(IS_RTC_HOUR24(sAlarm->AlarmTime.Hours)); |
||
1174 | } |
||
1175 | assert_param(IS_RTC_MINUTES(sAlarm->AlarmTime.Minutes)); |
||
1176 | assert_param(IS_RTC_SECONDS(sAlarm->AlarmTime.Seconds)); |
||
1177 | |||
1178 | if (sAlarm->AlarmDateWeekDaySel == RTC_ALARMDATEWEEKDAYSEL_DATE) |
||
1179 | { |
||
1180 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_DATE(sAlarm->AlarmDateWeekDay)); |
||
1181 | } |
||
1182 | else |
||
1183 | { |
||
1184 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_WEEKDAY(sAlarm->AlarmDateWeekDay)); |
||
1185 | } |
||
1186 | |||
1187 | tmpreg = (((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmTime.Hours) << 16U) | \ |
||
1188 | ((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmTime.Minutes) << 8U) | \ |
||
1189 | ((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmTime.Seconds)) | \ |
||
1190 | ((uint32_t)(sAlarm->AlarmTime.TimeFormat) << 16U) | \ |
||
1191 | ((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmDateWeekDay) << 24U) | \ |
||
1192 | ((uint32_t)sAlarm->AlarmDateWeekDaySel) | \ |
||
1193 | ((uint32_t)sAlarm->AlarmMask)); |
||
1194 | } |
||
1195 | else |
||
1196 | { |
||
1197 | if ((hrtc->Instance->CR & RTC_CR_FMT) != 0U) |
||
1198 | { |
||
1199 | assert_param(IS_RTC_HOUR12(RTC_Bcd2ToByte(sAlarm->AlarmTime.Hours))); |
||
1200 | assert_param(IS_RTC_HOURFORMAT12(sAlarm->AlarmTime.TimeFormat)); |
||
1201 | } |
||
1202 | else |
||
1203 | { |
||
1204 | sAlarm->AlarmTime.TimeFormat = 0x00U; |
||
1205 | assert_param(IS_RTC_HOUR24(RTC_Bcd2ToByte(sAlarm->AlarmTime.Hours))); |
||
1206 | } |
||
1207 | |||
1208 | assert_param(IS_RTC_MINUTES(RTC_Bcd2ToByte(sAlarm->AlarmTime.Minutes))); |
||
1209 | assert_param(IS_RTC_SECONDS(RTC_Bcd2ToByte(sAlarm->AlarmTime.Seconds))); |
||
1210 | |||
1211 | if (sAlarm->AlarmDateWeekDaySel == RTC_ALARMDATEWEEKDAYSEL_DATE) |
||
1212 | { |
||
1213 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_DATE(RTC_Bcd2ToByte(sAlarm->AlarmDateWeekDay))); |
||
1214 | } |
||
1215 | else |
||
1216 | { |
||
1217 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_WEEKDAY(RTC_Bcd2ToByte(sAlarm->AlarmDateWeekDay))); |
||
1218 | } |
||
1219 | |||
1220 | tmpreg = (((uint32_t)(sAlarm->AlarmTime.Hours) << 16U) | \ |
||
1221 | ((uint32_t)(sAlarm->AlarmTime.Minutes) << 8U) | \ |
||
1222 | ((uint32_t) sAlarm->AlarmTime.Seconds) | \ |
||
1223 | ((uint32_t)(sAlarm->AlarmTime.TimeFormat) << 16U) | \ |
||
1224 | ((uint32_t)(sAlarm->AlarmDateWeekDay) << 24U) | \ |
||
1225 | ((uint32_t)sAlarm->AlarmDateWeekDaySel) | \ |
||
1226 | ((uint32_t)sAlarm->AlarmMask)); |
||
1227 | } |
||
1228 | |||
1229 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1230 | /* Configure the Alarm A or Alarm B Sub Second registers */ |
||
1231 | subsecondtmpreg = (uint32_t)((uint32_t)(sAlarm->AlarmTime.SubSeconds) | (uint32_t)(sAlarm->AlarmSubSecondMask)); |
||
1232 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1233 | |||
1234 | /* Disable the write protection for RTC registers */ |
||
1235 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1236 | |||
1237 | /* Configure the Alarm register */ |
||
1238 | if (sAlarm->Alarm == RTC_ALARM_A) |
||
1239 | { |
||
1240 | /* Disable the Alarm A interrupt */ |
||
1241 | __HAL_RTC_ALARMA_DISABLE(hrtc); |
||
1242 | |||
1243 | /* In case of interrupt mode is used, the interrupt source must disabled */ |
||
1244 | __HAL_RTC_ALARM_DISABLE_IT(hrtc, RTC_IT_ALRA); |
||
1245 | |||
1246 | tickstart = HAL_GetTick(); |
||
1247 | /* Wait till RTC ALRAWF flag is set and if Time out is reached exit */ |
||
1248 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRAWF) == 0U) |
||
1249 | { |
||
1250 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1251 | { |
||
1252 | /* Enable the write protection for RTC registers */ |
||
1253 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1254 | |||
1255 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1256 | |||
1257 | /* Process Unlocked */ |
||
1258 | __HAL_UNLOCK(hrtc); |
||
1259 | |||
1260 | return HAL_TIMEOUT; |
||
1261 | } |
||
1262 | } |
||
1263 | |||
1264 | hrtc->Instance->ALRMAR = (uint32_t)tmpreg; |
||
1265 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1266 | /* Configure the Alarm A Sub Second register */ |
||
1267 | hrtc->Instance->ALRMASSR = subsecondtmpreg; |
||
1268 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1269 | /* Configure the Alarm state: Enable Alarm */ |
||
1270 | __HAL_RTC_ALARMA_ENABLE(hrtc); |
||
1271 | } |
||
1272 | else |
||
1273 | { |
||
1274 | /* Disable the Alarm B interrupt */ |
||
1275 | __HAL_RTC_ALARMB_DISABLE(hrtc); |
||
1276 | |||
1277 | /* In case of interrupt mode is used, the interrupt source must disabled */ |
||
1278 | __HAL_RTC_ALARM_DISABLE_IT(hrtc, RTC_IT_ALRB); |
||
1279 | |||
1280 | tickstart = HAL_GetTick(); |
||
1281 | /* Wait till RTC ALRBWF flag is set and if Time out is reached exit */ |
||
1282 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRBWF) == 0U) |
||
1283 | { |
||
1284 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1285 | { |
||
1286 | /* Enable the write protection for RTC registers */ |
||
1287 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1288 | |||
1289 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1290 | |||
1291 | /* Process Unlocked */ |
||
1292 | __HAL_UNLOCK(hrtc); |
||
1293 | |||
1294 | return HAL_TIMEOUT; |
||
1295 | } |
||
1296 | } |
||
1297 | |||
1298 | hrtc->Instance->ALRMBR = (uint32_t)tmpreg; |
||
1299 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1300 | /* Configure the Alarm B Sub Second register */ |
||
1301 | hrtc->Instance->ALRMBSSR = subsecondtmpreg; |
||
1302 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1303 | /* Configure the Alarm state: Enable Alarm */ |
||
1304 | __HAL_RTC_ALARMB_ENABLE(hrtc); |
||
1305 | } |
||
1306 | |||
1307 | /* Enable the write protection for RTC registers */ |
||
1308 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1309 | |||
1310 | /* Change RTC state */ |
||
1311 | hrtc->State = HAL_RTC_STATE_READY; |
||
1312 | |||
1313 | /* Process Unlocked */ |
||
1314 | __HAL_UNLOCK(hrtc); |
||
1315 | |||
1316 | return HAL_OK; |
||
1317 | } |
||
1318 | |||
1319 | /** |
||
1320 | * @brief Set the specified RTC Alarm with Interrupt. |
||
1321 | * @param hrtc RTC handle |
||
1322 | * @param sAlarm Pointer to Alarm structure |
||
1323 | * @param Format Specifies the format of the entered parameters. |
||
1324 | * This parameter can be one of the following values: |
||
1325 | * @arg RTC_FORMAT_BIN: Binary data format |
||
1326 | * @arg RTC_FORMAT_BCD: BCD data format |
||
1327 | * @note The Alarm register can only be written when the corresponding Alarm |
||
1328 | * is disabled (Use the HAL_RTC_DeactivateAlarm()). |
||
1329 | * @note The HAL_RTC_SetTime() must be called before enabling the Alarm feature. |
||
1330 | * @retval HAL status |
||
1331 | */ |
||
1332 | HAL_StatusTypeDef HAL_RTC_SetAlarm_IT(RTC_HandleTypeDef *hrtc, RTC_AlarmTypeDef *sAlarm, uint32_t Format) |
||
1333 | { |
||
1334 | uint32_t tickstart = 0; |
||
1335 | uint32_t tmpreg = 0; |
||
1336 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1337 | uint32_t subsecondtmpreg = 0; |
||
1338 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1339 | |||
1340 | /* Check the parameters */ |
||
1341 | assert_param(IS_RTC_FORMAT(Format)); |
||
1342 | assert_param(IS_RTC_ALARM(sAlarm->Alarm)); |
||
1343 | assert_param(IS_RTC_ALARM_MASK(sAlarm->AlarmMask)); |
||
1344 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_SEL(sAlarm->AlarmDateWeekDaySel)); |
||
1345 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1346 | assert_param(IS_RTC_ALARM_SUB_SECOND_VALUE(sAlarm->AlarmTime.SubSeconds)); |
||
1347 | assert_param(IS_RTC_ALARM_SUB_SECOND_MASK(sAlarm->AlarmSubSecondMask)); |
||
1348 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1349 | |||
1350 | /* Process Locked */ |
||
1351 | __HAL_LOCK(hrtc); |
||
1352 | |||
1353 | hrtc->State = HAL_RTC_STATE_BUSY; |
||
1354 | |||
1355 | if (Format == RTC_FORMAT_BIN) |
||
1356 | { |
||
1357 | if ((hrtc->Instance->CR & RTC_CR_FMT) != 0U) |
||
1358 | { |
||
1359 | assert_param(IS_RTC_HOUR12(sAlarm->AlarmTime.Hours)); |
||
1360 | assert_param(IS_RTC_HOURFORMAT12(sAlarm->AlarmTime.TimeFormat)); |
||
1361 | } |
||
1362 | else |
||
1363 | { |
||
1364 | sAlarm->AlarmTime.TimeFormat = 0x00U; |
||
1365 | assert_param(IS_RTC_HOUR24(sAlarm->AlarmTime.Hours)); |
||
1366 | } |
||
1367 | assert_param(IS_RTC_MINUTES(sAlarm->AlarmTime.Minutes)); |
||
1368 | assert_param(IS_RTC_SECONDS(sAlarm->AlarmTime.Seconds)); |
||
1369 | |||
1370 | if (sAlarm->AlarmDateWeekDaySel == RTC_ALARMDATEWEEKDAYSEL_DATE) |
||
1371 | { |
||
1372 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_DATE(sAlarm->AlarmDateWeekDay)); |
||
1373 | } |
||
1374 | else |
||
1375 | { |
||
1376 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_WEEKDAY(sAlarm->AlarmDateWeekDay)); |
||
1377 | } |
||
1378 | tmpreg = (((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmTime.Hours) << 16U) | \ |
||
1379 | ((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmTime.Minutes) << 8U) | \ |
||
1380 | ((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmTime.Seconds)) | \ |
||
1381 | ((uint32_t)(sAlarm->AlarmTime.TimeFormat) << 16U) | \ |
||
1382 | ((uint32_t)RTC_ByteToBcd2(sAlarm->AlarmDateWeekDay) << 24U) | \ |
||
1383 | ((uint32_t)sAlarm->AlarmDateWeekDaySel) | \ |
||
1384 | ((uint32_t)sAlarm->AlarmMask)); |
||
1385 | } |
||
1386 | else |
||
1387 | { |
||
1388 | if ((hrtc->Instance->CR & RTC_CR_FMT) != 0U) |
||
1389 | { |
||
1390 | assert_param(IS_RTC_HOUR12(RTC_Bcd2ToByte(sAlarm->AlarmTime.Hours))); |
||
1391 | assert_param(IS_RTC_HOURFORMAT12(sAlarm->AlarmTime.TimeFormat)); |
||
1392 | } |
||
1393 | else |
||
1394 | { |
||
1395 | sAlarm->AlarmTime.TimeFormat = 0x00U; |
||
1396 | assert_param(IS_RTC_HOUR24(RTC_Bcd2ToByte(sAlarm->AlarmTime.Hours))); |
||
1397 | } |
||
1398 | |||
1399 | assert_param(IS_RTC_MINUTES(RTC_Bcd2ToByte(sAlarm->AlarmTime.Minutes))); |
||
1400 | assert_param(IS_RTC_SECONDS(RTC_Bcd2ToByte(sAlarm->AlarmTime.Seconds))); |
||
1401 | |||
1402 | if (sAlarm->AlarmDateWeekDaySel == RTC_ALARMDATEWEEKDAYSEL_DATE) |
||
1403 | { |
||
1404 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_DATE(RTC_Bcd2ToByte(sAlarm->AlarmDateWeekDay))); |
||
1405 | } |
||
1406 | else |
||
1407 | { |
||
1408 | assert_param(IS_RTC_ALARM_DATE_WEEKDAY_WEEKDAY(RTC_Bcd2ToByte(sAlarm->AlarmDateWeekDay))); |
||
1409 | } |
||
1410 | tmpreg = (((uint32_t)(sAlarm->AlarmTime.Hours) << 16U) | \ |
||
1411 | ((uint32_t)(sAlarm->AlarmTime.Minutes) << 8U) | \ |
||
1412 | ((uint32_t) sAlarm->AlarmTime.Seconds) | \ |
||
1413 | ((uint32_t)(sAlarm->AlarmTime.TimeFormat) << 16U) | \ |
||
1414 | ((uint32_t)(sAlarm->AlarmDateWeekDay) << 24U) | \ |
||
1415 | ((uint32_t)sAlarm->AlarmDateWeekDaySel) | \ |
||
1416 | ((uint32_t)sAlarm->AlarmMask)); |
||
1417 | } |
||
1418 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1419 | /* Configure the Alarm A or Alarm B Sub Second registers */ |
||
1420 | subsecondtmpreg = (uint32_t)((uint32_t)(sAlarm->AlarmTime.SubSeconds) | (uint32_t)(sAlarm->AlarmSubSecondMask)); |
||
1421 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1422 | |||
1423 | /* Disable the write protection for RTC registers */ |
||
1424 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1425 | |||
1426 | /* Configure the Alarm register */ |
||
1427 | if (sAlarm->Alarm == RTC_ALARM_A) |
||
1428 | { |
||
1429 | /* Disable the Alarm A interrupt */ |
||
1430 | __HAL_RTC_ALARMA_DISABLE(hrtc); |
||
1431 | |||
1432 | /* Clear flag alarm A */ |
||
1433 | __HAL_RTC_ALARM_CLEAR_FLAG(hrtc, RTC_FLAG_ALRAF); |
||
1434 | |||
1435 | tickstart = HAL_GetTick(); |
||
1436 | /* Wait till RTC ALRAWF flag is set and if Time out is reached exit */ |
||
1437 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRAWF) == 0U) |
||
1438 | { |
||
1439 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1440 | { |
||
1441 | /* Enable the write protection for RTC registers */ |
||
1442 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1443 | |||
1444 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1445 | |||
1446 | /* Process Unlocked */ |
||
1447 | __HAL_UNLOCK(hrtc); |
||
1448 | |||
1449 | return HAL_TIMEOUT; |
||
1450 | } |
||
1451 | } |
||
1452 | |||
1453 | hrtc->Instance->ALRMAR = (uint32_t)tmpreg; |
||
1454 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1455 | /* Configure the Alarm A Sub Second register */ |
||
1456 | hrtc->Instance->ALRMASSR = subsecondtmpreg; |
||
1457 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1458 | /* Configure the Alarm state: Enable Alarm */ |
||
1459 | __HAL_RTC_ALARMA_ENABLE(hrtc); |
||
1460 | /* Configure the Alarm interrupt */ |
||
1461 | __HAL_RTC_ALARM_ENABLE_IT(hrtc, RTC_IT_ALRA); |
||
1462 | } |
||
1463 | else |
||
1464 | { |
||
1465 | /* Disable the Alarm B interrupt */ |
||
1466 | __HAL_RTC_ALARMB_DISABLE(hrtc); |
||
1467 | |||
1468 | /* Clear flag alarm B */ |
||
1469 | __HAL_RTC_ALARM_CLEAR_FLAG(hrtc, RTC_FLAG_ALRBF); |
||
1470 | |||
1471 | tickstart = HAL_GetTick(); |
||
1472 | /* Wait till RTC ALRBWF flag is set and if Time out is reached exit */ |
||
1473 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRBWF) == 0U) |
||
1474 | { |
||
1475 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1476 | { |
||
1477 | /* Enable the write protection for RTC registers */ |
||
1478 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1479 | |||
1480 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1481 | |||
1482 | /* Process Unlocked */ |
||
1483 | __HAL_UNLOCK(hrtc); |
||
1484 | |||
1485 | return HAL_TIMEOUT; |
||
1486 | } |
||
1487 | } |
||
1488 | |||
1489 | hrtc->Instance->ALRMBR = (uint32_t)tmpreg; |
||
1490 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1491 | /* Configure the Alarm B Sub Second register */ |
||
1492 | hrtc->Instance->ALRMBSSR = subsecondtmpreg; |
||
1493 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1494 | /* Configure the Alarm state: Enable Alarm */ |
||
1495 | __HAL_RTC_ALARMB_ENABLE(hrtc); |
||
1496 | /* Configure the Alarm interrupt */ |
||
1497 | __HAL_RTC_ALARM_ENABLE_IT(hrtc, RTC_IT_ALRB); |
||
1498 | } |
||
1499 | |||
1500 | /* RTC Alarm Interrupt Configuration: EXTI configuration */ |
||
1501 | __HAL_RTC_ALARM_EXTI_ENABLE_IT(); |
||
1502 | |||
1503 | __HAL_RTC_ALARM_EXTI_ENABLE_RISING_EDGE(); |
||
1504 | |||
1505 | /* Enable the write protection for RTC registers */ |
||
1506 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1507 | |||
1508 | hrtc->State = HAL_RTC_STATE_READY; |
||
1509 | |||
1510 | /* Process Unlocked */ |
||
1511 | __HAL_UNLOCK(hrtc); |
||
1512 | |||
1513 | return HAL_OK; |
||
1514 | } |
||
1515 | |||
1516 | /** |
||
1517 | * @brief Deactivate the specified RTC Alarm. |
||
1518 | * @param hrtc RTC handle |
||
1519 | * @param Alarm Specifies the Alarm. |
||
1520 | * This parameter can be one of the following values: |
||
1521 | * @arg RTC_ALARM_A: AlarmA |
||
1522 | * @arg RTC_ALARM_B: AlarmB |
||
1523 | * @retval HAL status |
||
1524 | */ |
||
1525 | HAL_StatusTypeDef HAL_RTC_DeactivateAlarm(RTC_HandleTypeDef *hrtc, uint32_t Alarm) |
||
1526 | { |
||
1527 | uint32_t tickstart; |
||
1528 | |||
1529 | /* Check the parameters */ |
||
1530 | assert_param(IS_RTC_ALARM(Alarm)); |
||
1531 | |||
1532 | /* Process Locked */ |
||
1533 | __HAL_LOCK(hrtc); |
||
1534 | |||
1535 | hrtc->State = HAL_RTC_STATE_BUSY; |
||
1536 | |||
1537 | /* Disable the write protection for RTC registers */ |
||
1538 | __HAL_RTC_WRITEPROTECTION_DISABLE(hrtc); |
||
1539 | |||
1540 | if (Alarm == RTC_ALARM_A) |
||
1541 | { |
||
1542 | /* AlarmA */ |
||
1543 | __HAL_RTC_ALARMA_DISABLE(hrtc); |
||
1544 | |||
1545 | /* In case of interrupt mode is used, the interrupt source must disabled */ |
||
1546 | __HAL_RTC_ALARM_DISABLE_IT(hrtc, RTC_IT_ALRA); |
||
1547 | |||
1548 | tickstart = HAL_GetTick(); |
||
1549 | |||
1550 | /* Wait till RTC ALRxWF flag is set and if Time out is reached exit */ |
||
1551 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRAWF) == 0U) |
||
1552 | { |
||
1553 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1554 | { |
||
1555 | /* Enable the write protection for RTC registers */ |
||
1556 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1557 | |||
1558 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1559 | |||
1560 | /* Process Unlocked */ |
||
1561 | __HAL_UNLOCK(hrtc); |
||
1562 | |||
1563 | return HAL_TIMEOUT; |
||
1564 | } |
||
1565 | } |
||
1566 | } |
||
1567 | else |
||
1568 | { |
||
1569 | /* AlarmB */ |
||
1570 | __HAL_RTC_ALARMB_DISABLE(hrtc); |
||
1571 | |||
1572 | /* In case of interrupt mode is used, the interrupt source must disabled */ |
||
1573 | __HAL_RTC_ALARM_DISABLE_IT(hrtc, RTC_IT_ALRB); |
||
1574 | |||
1575 | tickstart = HAL_GetTick(); |
||
1576 | |||
1577 | /* Wait till RTC ALRxWF flag is set and if Time out is reached exit */ |
||
1578 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRBWF) == 0U) |
||
1579 | { |
||
1580 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1581 | { |
||
1582 | /* Enable the write protection for RTC registers */ |
||
1583 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1584 | |||
1585 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1586 | |||
1587 | /* Process Unlocked */ |
||
1588 | __HAL_UNLOCK(hrtc); |
||
1589 | |||
1590 | return HAL_TIMEOUT; |
||
1591 | } |
||
1592 | } |
||
1593 | } |
||
1594 | /* Enable the write protection for RTC registers */ |
||
1595 | __HAL_RTC_WRITEPROTECTION_ENABLE(hrtc); |
||
1596 | |||
1597 | hrtc->State = HAL_RTC_STATE_READY; |
||
1598 | |||
1599 | /* Process Unlocked */ |
||
1600 | __HAL_UNLOCK(hrtc); |
||
1601 | |||
1602 | return HAL_OK; |
||
1603 | } |
||
1604 | |||
1605 | /** |
||
1606 | * @brief Get the RTC Alarm value and masks. |
||
1607 | * @param hrtc RTC handle |
||
1608 | * @param sAlarm Pointer to Date structure |
||
1609 | * @param Alarm Specifies the Alarm. |
||
1610 | * This parameter can be one of the following values: |
||
1611 | * @arg RTC_ALARM_A: AlarmA |
||
1612 | * @arg RTC_ALARM_B: AlarmB |
||
1613 | * @param Format Specifies the format of the entered parameters. |
||
1614 | * This parameter can be one of the following values: |
||
1615 | * @arg RTC_FORMAT_BIN: Binary data format |
||
1616 | * @arg RTC_FORMAT_BCD: BCD data format |
||
1617 | * @retval HAL status |
||
1618 | */ |
||
1619 | HAL_StatusTypeDef HAL_RTC_GetAlarm(RTC_HandleTypeDef *hrtc, RTC_AlarmTypeDef *sAlarm, uint32_t Alarm, uint32_t Format) |
||
1620 | { |
||
1621 | uint32_t tmpreg; |
||
1622 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1623 | uint32_t subsecondtmpreg; |
||
1624 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1625 | |||
1626 | /* Check the parameters */ |
||
1627 | assert_param(IS_RTC_FORMAT(Format)); |
||
1628 | assert_param(IS_RTC_ALARM(Alarm)); |
||
1629 | |||
1630 | if (Alarm == RTC_ALARM_A) |
||
1631 | { |
||
1632 | /* AlarmA */ |
||
1633 | sAlarm->Alarm = RTC_ALARM_A; |
||
1634 | |||
1635 | tmpreg = (uint32_t)(hrtc->Instance->ALRMAR); |
||
1636 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1637 | subsecondtmpreg = (uint32_t)((hrtc->Instance->ALRMASSR) & RTC_ALRMASSR_SS); |
||
1638 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1639 | } |
||
1640 | else |
||
1641 | { |
||
1642 | sAlarm->Alarm = RTC_ALARM_B; |
||
1643 | |||
1644 | tmpreg = (uint32_t)(hrtc->Instance->ALRMBR); |
||
1645 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1646 | subsecondtmpreg = (uint32_t)((hrtc->Instance->ALRMBSSR) & RTC_ALRMBSSR_SS); |
||
1647 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1648 | } |
||
1649 | |||
1650 | /* Fill the structure with the read parameters */ |
||
1651 | sAlarm->AlarmTime.Hours = (uint32_t)((tmpreg & (RTC_ALRMAR_HT | RTC_ALRMAR_HU)) >> 16U); |
||
1652 | sAlarm->AlarmTime.Minutes = (uint32_t)((tmpreg & (RTC_ALRMAR_MNT | RTC_ALRMAR_MNU)) >> 8U); |
||
1653 | sAlarm->AlarmTime.Seconds = (uint32_t)(tmpreg & (RTC_ALRMAR_ST | RTC_ALRMAR_SU)); |
||
1654 | sAlarm->AlarmTime.TimeFormat = (uint32_t)((tmpreg & RTC_ALRMAR_PM) >> 16U); |
||
1655 | #if defined(STM32L100xBA) || defined (STM32L151xBA) || defined (STM32L152xBA) || defined(STM32L100xC) || defined (STM32L151xC) || defined (STM32L152xC) || defined (STM32L162xC) || defined(STM32L151xCA) || defined (STM32L151xD) || defined (STM32L152xCA) || defined (STM32L152xD) || defined (STM32L162xCA) || defined (STM32L162xD) || defined(STM32L151xE) || defined(STM32L151xDX) || defined (STM32L152xE) || defined (STM32L152xDX) || defined (STM32L162xE) || defined (STM32L162xDX) |
||
1656 | sAlarm->AlarmTime.SubSeconds = (uint32_t) subsecondtmpreg; |
||
1657 | #endif /* STM32L100xBA || STM32L151xBA || STM32L152xBA || STM32L100xC || STM32L151xC || STM32L152xC || STM32L162xC || STM32L151xCA || STM32L151xD || STM32L152xCA || STM32L152xD || STM32L162xCA || STM32L162xD || STM32L151xE || STM32L151xDX || STM32L152xE || STM32L152xDX || STM32L162xE || STM32L162xDX */ |
||
1658 | sAlarm->AlarmDateWeekDay = (uint32_t)((tmpreg & (RTC_ALRMAR_DT | RTC_ALRMAR_DU)) >> 24); |
||
1659 | sAlarm->AlarmDateWeekDaySel = (uint32_t)(tmpreg & RTC_ALRMAR_WDSEL); |
||
1660 | sAlarm->AlarmMask = (uint32_t)(tmpreg & RTC_ALARMMASK_ALL); |
||
1661 | |||
1662 | if (Format == RTC_FORMAT_BIN) |
||
1663 | { |
||
1664 | sAlarm->AlarmTime.Hours = RTC_Bcd2ToByte(sAlarm->AlarmTime.Hours); |
||
1665 | sAlarm->AlarmTime.Minutes = RTC_Bcd2ToByte(sAlarm->AlarmTime.Minutes); |
||
1666 | sAlarm->AlarmTime.Seconds = RTC_Bcd2ToByte(sAlarm->AlarmTime.Seconds); |
||
1667 | sAlarm->AlarmDateWeekDay = RTC_Bcd2ToByte(sAlarm->AlarmDateWeekDay); |
||
1668 | } |
||
1669 | |||
1670 | return HAL_OK; |
||
1671 | } |
||
1672 | |||
1673 | /** |
||
1674 | * @brief Handle Alarm interrupt request. |
||
1675 | * @param hrtc RTC handle |
||
1676 | * @retval None |
||
1677 | */ |
||
1678 | void HAL_RTC_AlarmIRQHandler(RTC_HandleTypeDef *hrtc) |
||
1679 | { |
||
1680 | /* Get the AlarmA interrupt source enable status */ |
||
1681 | if (__HAL_RTC_ALARM_GET_IT_SOURCE(hrtc, RTC_IT_ALRA) != 0U) |
||
1682 | { |
||
1683 | /* Get the pending status of the AlarmA Interrupt */ |
||
1684 | if (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRAF) != 0U) |
||
1685 | { |
||
1686 | /* AlarmA callback */ |
||
1687 | #if (USE_HAL_RTC_REGISTER_CALLBACKS == 1) |
||
1688 | hrtc->AlarmAEventCallback(hrtc); |
||
1689 | #else |
||
1690 | HAL_RTC_AlarmAEventCallback(hrtc); |
||
1691 | #endif /* USE_HAL_RTC_REGISTER_CALLBACKS */ |
||
1692 | |||
1693 | /* Clear the AlarmA interrupt pending bit */ |
||
1694 | __HAL_RTC_ALARM_CLEAR_FLAG(hrtc, RTC_FLAG_ALRAF); |
||
1695 | } |
||
1696 | } |
||
1697 | |||
1698 | /* Get the AlarmB interrupt source enable status */ |
||
1699 | if (__HAL_RTC_ALARM_GET_IT_SOURCE(hrtc, RTC_IT_ALRB) != 0U) |
||
1700 | { |
||
1701 | /* Get the pending status of the AlarmB Interrupt */ |
||
1702 | if (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRBF) != 0U) |
||
1703 | { |
||
1704 | /* AlarmB callback */ |
||
1705 | #if (USE_HAL_RTC_REGISTER_CALLBACKS == 1) |
||
1706 | hrtc->AlarmBEventCallback(hrtc); |
||
1707 | #else |
||
1708 | HAL_RTCEx_AlarmBEventCallback(hrtc); |
||
1709 | #endif /* USE_HAL_RTC_REGISTER_CALLBACKS */ |
||
1710 | |||
1711 | /* Clear the AlarmB interrupt pending bit */ |
||
1712 | __HAL_RTC_ALARM_CLEAR_FLAG(hrtc, RTC_FLAG_ALRBF); |
||
1713 | } |
||
1714 | } |
||
1715 | /* Clear the EXTI's line Flag for RTC Alarm */ |
||
1716 | __HAL_RTC_ALARM_EXTI_CLEAR_FLAG(); |
||
1717 | |||
1718 | /* Change RTC state */ |
||
1719 | hrtc->State = HAL_RTC_STATE_READY; |
||
1720 | } |
||
1721 | |||
1722 | /** |
||
1723 | * @brief Alarm A callback. |
||
1724 | * @param hrtc RTC handle |
||
1725 | * @retval None |
||
1726 | */ |
||
1727 | __weak void HAL_RTC_AlarmAEventCallback(RTC_HandleTypeDef *hrtc) |
||
1728 | { |
||
1729 | /* Prevent unused argument(s) compilation warning */ |
||
1730 | UNUSED(hrtc); |
||
1731 | |||
1732 | /* NOTE : This function Should not be modified, when the callback is needed, |
||
1733 | the HAL_RTC_AlarmAEventCallback could be implemented in the user file |
||
1734 | */ |
||
1735 | } |
||
1736 | |||
1737 | /** |
||
1738 | * @brief Handle AlarmA Polling request. |
||
1739 | * @param hrtc RTC handle |
||
1740 | * @param Timeout Timeout duration |
||
1741 | * @retval HAL status |
||
1742 | */ |
||
1743 | HAL_StatusTypeDef HAL_RTC_PollForAlarmAEvent(RTC_HandleTypeDef *hrtc, uint32_t Timeout) |
||
1744 | { |
||
1745 | |||
1746 | uint32_t tickstart = HAL_GetTick(); |
||
1747 | |||
1748 | while (__HAL_RTC_ALARM_GET_FLAG(hrtc, RTC_FLAG_ALRAF) == 0U) |
||
1749 | { |
||
1750 | if (Timeout != HAL_MAX_DELAY) |
||
1751 | { |
||
1752 | if (((HAL_GetTick() - tickstart) > Timeout) || (Timeout == 0U)) |
||
1753 | { |
||
1754 | hrtc->State = HAL_RTC_STATE_TIMEOUT; |
||
1755 | return HAL_TIMEOUT; |
||
1756 | } |
||
1757 | } |
||
1758 | } |
||
1759 | |||
1760 | /* Clear the Alarm interrupt pending bit */ |
||
1761 | __HAL_RTC_ALARM_CLEAR_FLAG(hrtc, RTC_FLAG_ALRAF); |
||
1762 | |||
1763 | /* Change RTC state */ |
||
1764 | hrtc->State = HAL_RTC_STATE_READY; |
||
1765 | |||
1766 | return HAL_OK; |
||
1767 | } |
||
1768 | |||
1769 | /** |
||
1770 | * @} |
||
1771 | */ |
||
1772 | |||
1773 | /** @addtogroup RTC_Exported_Functions_Group4 |
||
1774 | * @brief Peripheral Control functions |
||
1775 | * |
||
1776 | @verbatim |
||
1777 | =============================================================================== |
||
1778 | ##### Peripheral Control functions ##### |
||
1779 | =============================================================================== |
||
1780 | [..] |
||
1781 | This subsection provides functions allowing to |
||
1782 | (+) Wait for RTC Time and Date Synchronization |
||
1783 | |||
1784 | @endverbatim |
||
1785 | * @{ |
||
1786 | */ |
||
1787 | |||
1788 | /** |
||
1789 | * @brief Wait until the RTC Time and Date registers (RTC_TR and RTC_DR) are |
||
1790 | * synchronized with RTC APB clock. |
||
1791 | * @note The RTC Resynchronization mode is write protected, use the |
||
1792 | * __HAL_RTC_WRITEPROTECTION_DISABLE() before calling this function. |
||
1793 | * @note To read the calendar through the shadow registers after Calendar |
||
1794 | * initialization, calendar update or after wakeup from low power modes |
||
1795 | * the software must first clear the RSF flag. |
||
1796 | * The software must then wait until it is set again before reading |
||
1797 | * the calendar, which means that the calendar registers have been |
||
1798 | * correctly copied into the RTC_TR and RTC_DR shadow registers. |
||
1799 | * @param hrtc RTC handle |
||
1800 | * @retval HAL status |
||
1801 | */ |
||
1802 | HAL_StatusTypeDef HAL_RTC_WaitForSynchro(RTC_HandleTypeDef *hrtc) |
||
1803 | { |
||
1804 | uint32_t tickstart; |
||
1805 | |||
61 | mjames | 1806 | #if defined (RTC_CR_BYPSHAD) |
56 | mjames | 1807 | /* If RTC_CR_BYPSHAD bit = 0, wait for synchro else this check is not needed */ |
1808 | if ((hrtc->Instance->CR & RTC_CR_BYPSHAD) == RESET) |
||
61 | mjames | 1809 | #endif /* RTC_CR_BYPSHAD */ |
56 | mjames | 1810 | { |
1811 | /* Clear RSF flag */ |
||
1812 | hrtc->Instance->ISR &= (uint32_t)RTC_RSF_MASK; |
||
1813 | |||
1814 | tickstart = HAL_GetTick(); |
||
1815 | |||
1816 | /* Wait the registers to be synchronised */ |
||
1817 | while ((hrtc->Instance->ISR & RTC_ISR_RSF) == 0U) |
||
1818 | { |
||
1819 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1820 | { |
||
1821 | return HAL_TIMEOUT; |
||
1822 | } |
||
1823 | } |
||
1824 | } |
||
1825 | |||
1826 | return HAL_OK; |
||
1827 | } |
||
1828 | |||
1829 | /** |
||
1830 | * @} |
||
1831 | */ |
||
1832 | |||
1833 | /** @addtogroup RTC_Exported_Functions_Group5 |
||
1834 | * @brief Peripheral State functions |
||
1835 | * |
||
1836 | @verbatim |
||
1837 | =============================================================================== |
||
1838 | ##### Peripheral State functions ##### |
||
1839 | =============================================================================== |
||
1840 | [..] |
||
1841 | This subsection provides functions allowing to |
||
1842 | (+) Get RTC state |
||
1843 | |||
1844 | @endverbatim |
||
1845 | * @{ |
||
1846 | */ |
||
1847 | /** |
||
1848 | * @brief Return the RTC handle state. |
||
1849 | * @param hrtc RTC handle |
||
1850 | * @retval HAL state |
||
1851 | */ |
||
1852 | HAL_RTCStateTypeDef HAL_RTC_GetState(RTC_HandleTypeDef *hrtc) |
||
1853 | { |
||
1854 | /* Return RTC handle state */ |
||
1855 | return hrtc->State; |
||
1856 | } |
||
1857 | |||
1858 | /** |
||
1859 | * @} |
||
1860 | */ |
||
1861 | /** |
||
1862 | * @} |
||
1863 | */ |
||
1864 | |||
1865 | /** @addtogroup RTC_Private_Functions |
||
1866 | * @{ |
||
1867 | */ |
||
1868 | /** |
||
1869 | * @brief Enter the RTC Initialization mode. |
||
1870 | * @note The RTC Initialization mode is write protected, use the |
||
1871 | * __HAL_RTC_WRITEPROTECTION_DISABLE() before calling this function. |
||
1872 | * @param hrtc RTC handle |
||
1873 | * @retval HAL status |
||
1874 | */ |
||
1875 | HAL_StatusTypeDef RTC_EnterInitMode(RTC_HandleTypeDef *hrtc) |
||
1876 | { |
||
1877 | uint32_t tickstart; |
||
1878 | |||
1879 | /* Check if the Initialization mode is set */ |
||
1880 | if ((hrtc->Instance->ISR & RTC_ISR_INITF) == 0U) |
||
1881 | { |
||
1882 | /* Set the Initialization mode */ |
||
1883 | hrtc->Instance->ISR = (uint32_t)RTC_INIT_MASK; |
||
1884 | |||
1885 | tickstart = HAL_GetTick(); |
||
1886 | /* Wait till RTC is in INIT state and if Time out is reached exit */ |
||
1887 | while ((hrtc->Instance->ISR & RTC_ISR_INITF) == 0U) |
||
1888 | { |
||
1889 | if ((HAL_GetTick() - tickstart) > RTC_TIMEOUT_VALUE) |
||
1890 | { |
||
1891 | return HAL_TIMEOUT; |
||
1892 | } |
||
1893 | } |
||
1894 | } |
||
1895 | |||
1896 | return HAL_OK; |
||
1897 | } |
||
1898 | |||
1899 | |||
1900 | /** |
||
1901 | * @brief Convert a 2 digit decimal to BCD format. |
||
1902 | * @param Value Byte to be converted |
||
1903 | * @retval Converted byte |
||
1904 | */ |
||
1905 | uint8_t RTC_ByteToBcd2(uint8_t Value) |
||
1906 | { |
||
1907 | uint32_t bcdhigh = 0U; |
||
1908 | uint8_t Param = Value; |
||
1909 | |||
1910 | while (Param >= 10U) |
||
1911 | { |
||
1912 | bcdhigh++; |
||
1913 | Param -= 10U; |
||
1914 | } |
||
1915 | |||
1916 | return ((uint8_t)(bcdhigh << 4U) | Param); |
||
1917 | } |
||
1918 | |||
1919 | /** |
||
1920 | * @brief Convert from 2 digit BCD to Binary. |
||
1921 | * @param Value BCD value to be converted |
||
1922 | * @retval Converted word |
||
1923 | */ |
||
1924 | uint8_t RTC_Bcd2ToByte(uint8_t Value) |
||
1925 | { |
||
1926 | uint32_t tmp; |
||
1927 | tmp = (((uint32_t)Value & 0xF0U) >> 4U) * 10U; |
||
1928 | return (uint8_t)(tmp + ((uint32_t)Value & 0x0FU)); |
||
1929 | } |
||
1930 | |||
1931 | /** |
||
1932 | * @} |
||
1933 | */ |
||
1934 | |||
1935 | #endif /* HAL_RTC_MODULE_ENABLED */ |
||
1936 | /** |
||
1937 | * @} |
||
1938 | */ |
||
1939 | |||
1940 | /** |
||
1941 | * @} |
||
1942 | */ |
||
1943 | |||
1944 | /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/ |