1 | /** @file
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2 | RTC Architectural Protocol GUID as defined in DxeCis 0.96.
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3 |
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4 | Copyright (c) 2006 - 2015, Intel Corporation. All rights reserved.<BR>
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5 | This program and the accompanying materials
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6 | are licensed and made available under the terms and conditions of the BSD License
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7 | which accompanies this distribution. The full text of the license may be found at
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8 | http://opensource.org/licenses/bsd-license.php
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9 |
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10 | THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,
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11 | WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.
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12 |
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13 | **/
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14 |
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15 | #include "PcRtc.h"
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16 |
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17 | /**
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18 | Compare the Hour, Minute and Second of the From time and the To time.
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19 |
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20 | Only compare H/M/S in EFI_TIME and ignore other fields here.
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21 |
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22 | @param From the first time
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23 | @param To the second time
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24 |
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25 | @return >0 The H/M/S of the From time is later than those of To time
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26 | @return ==0 The H/M/S of the From time is same as those of To time
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27 | @return <0 The H/M/S of the From time is earlier than those of To time
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28 | **/
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29 | INTN
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30 | CompareHMS (
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31 | IN EFI_TIME *From,
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32 | IN EFI_TIME *To
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33 | );
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34 |
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35 | /**
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36 | To check if second date is later than first date within 24 hours.
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37 |
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38 | @param From the first date
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39 | @param To the second date
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40 |
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41 | @retval TRUE From is previous to To within 24 hours.
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42 | @retval FALSE From is later, or it is previous to To more than 24 hours.
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43 | **/
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44 | BOOLEAN
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45 | IsWithinOneDay (
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46 | IN EFI_TIME *From,
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47 | IN EFI_TIME *To
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48 | );
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49 |
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50 | /**
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51 | Read RTC content through its registers.
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52 |
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53 | @param Address Address offset of RTC. It is recommended to use macros such as
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54 | RTC_ADDRESS_SECONDS.
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55 |
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56 | @return The data of UINT8 type read from RTC.
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57 | **/
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58 | UINT8
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59 | RtcRead (
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60 | IN UINT8 Address
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61 | )
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62 | {
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63 | IoWrite8 (PCAT_RTC_ADDRESS_REGISTER, (UINT8) (Address | (UINT8) (IoRead8 (PCAT_RTC_ADDRESS_REGISTER) & 0x80)));
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64 | return IoRead8 (PCAT_RTC_DATA_REGISTER);
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65 | }
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66 |
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67 | /**
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68 | Write RTC through its registers.
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69 |
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70 | @param Address Address offset of RTC. It is recommended to use macros such as
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71 | RTC_ADDRESS_SECONDS.
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72 | @param Data The content you want to write into RTC.
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73 |
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74 | **/
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75 | VOID
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76 | RtcWrite (
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77 | IN UINT8 Address,
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78 | IN UINT8 Data
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79 | )
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80 | {
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81 | IoWrite8 (PCAT_RTC_ADDRESS_REGISTER, (UINT8) (Address | (UINT8) (IoRead8 (PCAT_RTC_ADDRESS_REGISTER) & 0x80)));
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82 | IoWrite8 (PCAT_RTC_DATA_REGISTER, Data);
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83 | }
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84 |
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85 | /**
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86 | Initialize RTC.
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87 |
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88 | @param Global For global use inside this module.
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89 |
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90 | @retval EFI_DEVICE_ERROR Initialization failed due to device error.
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91 | @retval EFI_SUCCESS Initialization successful.
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92 |
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93 | **/
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94 | EFI_STATUS
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95 | PcRtcInit (
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96 | IN PC_RTC_MODULE_GLOBALS *Global
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97 | )
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98 | {
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99 | EFI_STATUS Status;
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100 | RTC_REGISTER_A RegisterA;
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101 | RTC_REGISTER_B RegisterB;
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102 | RTC_REGISTER_D RegisterD;
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103 | UINT8 Century;
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104 | EFI_TIME Time;
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105 | UINTN DataSize;
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106 | UINT32 TimerVar;
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107 | BOOLEAN Enabled;
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108 | BOOLEAN Pending;
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109 |
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110 | //
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111 | // Acquire RTC Lock to make access to RTC atomic
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112 | //
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113 | if (!EfiAtRuntime ()) {
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114 | EfiAcquireLock (&Global->RtcLock);
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115 | }
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116 | //
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117 | // Initialize RTC Register
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118 | //
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119 | // Make sure Division Chain is properly configured,
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120 | // or RTC clock won't "tick" -- time won't increment
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121 | //
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122 | RegisterA.Data = RTC_INIT_REGISTER_A;
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123 | RtcWrite (RTC_ADDRESS_REGISTER_A, RegisterA.Data);
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124 |
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125 | //
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126 | // Read Register B
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127 | //
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128 | RegisterB.Data = RtcRead (RTC_ADDRESS_REGISTER_B);
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129 |
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130 | //
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131 | // Clear RTC flag register
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132 | //
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133 | RtcRead (RTC_ADDRESS_REGISTER_C);
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134 |
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135 | //
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136 | // Clear RTC register D
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137 | //
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138 | RegisterD.Data = RTC_INIT_REGISTER_D;
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139 | RtcWrite (RTC_ADDRESS_REGISTER_D, RegisterD.Data);
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140 |
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141 | //
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142 | // Wait for up to 0.1 seconds for the RTC to be updated
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143 | //
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144 | Status = RtcWaitToUpdate (PcdGet32 (PcdRealTimeClockUpdateTimeout));
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145 | if (EFI_ERROR (Status)) {
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146 | //
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147 | // Set the variable with default value if the RTC is functioning incorrectly.
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148 | //
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149 | Global->SavedTimeZone = EFI_UNSPECIFIED_TIMEZONE;
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150 | Global->Daylight = 0;
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151 | if (!EfiAtRuntime ()) {
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152 | EfiReleaseLock (&Global->RtcLock);
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153 | }
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154 | return EFI_DEVICE_ERROR;
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155 | }
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156 | //
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157 | // Get the Time/Date/Daylight Savings values.
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158 | //
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159 | Time.Second = RtcRead (RTC_ADDRESS_SECONDS);
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160 | Time.Minute = RtcRead (RTC_ADDRESS_MINUTES);
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161 | Time.Hour = RtcRead (RTC_ADDRESS_HOURS);
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162 | Time.Day = RtcRead (RTC_ADDRESS_DAY_OF_THE_MONTH);
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163 | Time.Month = RtcRead (RTC_ADDRESS_MONTH);
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164 | Time.Year = RtcRead (RTC_ADDRESS_YEAR);
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165 |
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166 | Century = RtcRead (RTC_ADDRESS_CENTURY);
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167 |
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168 | //
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169 | // Set RTC configuration after get original time
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170 | // The value of bit AIE should be reserved.
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171 | //
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172 | RtcWrite (RTC_ADDRESS_REGISTER_B, (UINT8)(RTC_INIT_REGISTER_B | (RegisterB.Data & BIT5)));
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173 |
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174 | //
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175 | // Release RTC Lock.
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176 | //
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177 | if (!EfiAtRuntime ()) {
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178 | EfiReleaseLock (&Global->RtcLock);
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179 | }
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180 |
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181 | //
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182 | // Get the data of Daylight saving and time zone, if they have been
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183 | // stored in NV variable during previous boot.
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184 | //
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185 | DataSize = sizeof (UINT32);
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186 | Status = EfiGetVariable (
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187 | L"RTC",
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188 | &gEfiCallerIdGuid,
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189 | NULL,
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190 | &DataSize,
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191 | (VOID *) &TimerVar
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192 | );
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193 | if (!EFI_ERROR (Status)) {
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194 | Time.TimeZone = (INT16) TimerVar;
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195 | Time.Daylight = (UINT8) (TimerVar >> 16);
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196 | } else {
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197 | Time.TimeZone = EFI_UNSPECIFIED_TIMEZONE;
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198 | Time.Daylight = 0;
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199 | }
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200 |
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201 | //
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202 | // Validate time fields
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203 | //
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204 | Status = ConvertRtcTimeToEfiTime (&Time, Century, RegisterB);
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205 | if (!EFI_ERROR (Status)) {
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206 | Status = RtcTimeFieldsValid (&Time);
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207 | }
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208 | if (EFI_ERROR (Status)) {
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209 | //
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210 | // Report Status Code to indicate that the RTC has bad date and time
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211 | //
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212 | REPORT_STATUS_CODE (
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213 | EFI_ERROR_CODE | EFI_ERROR_MINOR,
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214 | (EFI_SOFTWARE_DXE_RT_DRIVER | EFI_SW_EC_BAD_DATE_TIME)
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215 | );
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216 | Time.Second = RTC_INIT_SECOND;
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217 | Time.Minute = RTC_INIT_MINUTE;
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218 | Time.Hour = RTC_INIT_HOUR;
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219 | Time.Day = RTC_INIT_DAY;
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220 | Time.Month = RTC_INIT_MONTH;
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221 | Time.Year = RTC_INIT_YEAR;
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222 | Time.Nanosecond = 0;
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223 | Time.TimeZone = EFI_UNSPECIFIED_TIMEZONE;
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224 | Time.Daylight = 0;
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225 | }
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226 |
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227 | //
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228 | // Reset time value according to new RTC configuration
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229 | //
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230 | Status = PcRtcSetTime (&Time, Global);
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231 | if (EFI_ERROR (Status)) {
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232 | return EFI_DEVICE_ERROR;
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233 | }
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234 |
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235 | //
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236 | // Reset wakeup time value to valid state when wakeup alarm is disabled and wakeup time is invalid.
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237 | // Global variable has already had valid SavedTimeZone and Daylight,
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238 | // so we can use them to get and set wakeup time.
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239 | //
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240 | Status = PcRtcGetWakeupTime (&Enabled, &Pending, &Time, Global);
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241 | if ((Enabled) || (!EFI_ERROR (Status))) {
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242 | return EFI_SUCCESS;
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243 | }
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244 |
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245 | //
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246 | // When wakeup time is disabled and invalid, reset wakeup time register to valid state
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247 | // but keep wakeup alarm disabled.
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248 | //
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249 | Time.Second = RTC_INIT_SECOND;
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250 | Time.Minute = RTC_INIT_MINUTE;
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251 | Time.Hour = RTC_INIT_HOUR;
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252 | Time.Day = RTC_INIT_DAY;
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253 | Time.Month = RTC_INIT_MONTH;
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254 | Time.Year = RTC_INIT_YEAR;
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255 | Time.Nanosecond = 0;
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256 | Time.TimeZone = Global->SavedTimeZone;
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257 | Time.Daylight = Global->Daylight;;
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258 |
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259 | //
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260 | // Acquire RTC Lock to make access to RTC atomic
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261 | //
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262 | if (!EfiAtRuntime ()) {
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263 | EfiAcquireLock (&Global->RtcLock);
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264 | }
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265 | //
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266 | // Wait for up to 0.1 seconds for the RTC to be updated
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267 | //
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268 | Status = RtcWaitToUpdate (PcdGet32 (PcdRealTimeClockUpdateTimeout));
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269 | if (EFI_ERROR (Status)) {
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270 | if (!EfiAtRuntime ()) {
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271 | EfiReleaseLock (&Global->RtcLock);
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272 | }
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273 | return EFI_DEVICE_ERROR;
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274 | }
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275 |
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276 | ConvertEfiTimeToRtcTime (&Time, RegisterB, &Century);
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277 |
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278 | //
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279 | // Set the Y/M/D info to variable as it has no corresponding hw registers.
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280 | //
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281 | Status = EfiSetVariable (
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282 | L"RTCALARM",
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283 | &gEfiCallerIdGuid,
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284 | EFI_VARIABLE_BOOTSERVICE_ACCESS | EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_NON_VOLATILE,
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285 | sizeof (Time),
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286 | &Time
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287 | );
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288 | if (EFI_ERROR (Status)) {
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289 | if (!EfiAtRuntime ()) {
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290 | EfiReleaseLock (&Global->RtcLock);
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291 | }
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292 | return EFI_DEVICE_ERROR;
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293 | }
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294 |
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295 | //
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296 | // Inhibit updates of the RTC
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297 | //
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298 | RegisterB.Bits.Set = 1;
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299 | RtcWrite (RTC_ADDRESS_REGISTER_B, RegisterB.Data);
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300 |
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301 | //
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302 | // Set RTC alarm time registers
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303 | //
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304 | RtcWrite (RTC_ADDRESS_SECONDS_ALARM, Time.Second);
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305 | RtcWrite (RTC_ADDRESS_MINUTES_ALARM, Time.Minute);
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306 | RtcWrite (RTC_ADDRESS_HOURS_ALARM, Time.Hour);
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307 |
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308 | //
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309 | // Allow updates of the RTC registers
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310 | //
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311 | RegisterB.Bits.Set = 0;
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312 | RtcWrite (RTC_ADDRESS_REGISTER_B, RegisterB.Data);
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313 |
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314 | //
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315 | // Release RTC Lock.
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316 | //
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317 | if (!EfiAtRuntime ()) {
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318 | EfiReleaseLock (&Global->RtcLock);
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319 | }
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320 | return EFI_SUCCESS;
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321 | }
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322 |
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323 | /**
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324 | Returns the current time and date information, and the time-keeping capabilities
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325 | of the hardware platform.
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326 |
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327 | @param Time A pointer to storage to receive a snapshot of the current time.
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328 | @param Capabilities An optional pointer to a buffer to receive the real time clock
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329 | device's capabilities.
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330 | @param Global For global use inside this module.
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331 |
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332 | @retval EFI_SUCCESS The operation completed successfully.
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333 | @retval EFI_INVALID_PARAMETER Time is NULL.
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334 | @retval EFI_DEVICE_ERROR The time could not be retrieved due to hardware error.
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335 |
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336 | **/
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337 | EFI_STATUS
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338 | PcRtcGetTime (
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339 | OUT EFI_TIME *Time,
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340 | OUT EFI_TIME_CAPABILITIES *Capabilities, OPTIONAL
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341 | IN PC_RTC_MODULE_GLOBALS *Global
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342 | )
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343 | {
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344 | EFI_STATUS Status;
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345 | RTC_REGISTER_B RegisterB;
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346 | UINT8 Century;
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347 |
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348 | //
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349 | // Check parameters for null pointer
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350 | //
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351 | if (Time == NULL) {
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352 | return EFI_INVALID_PARAMETER;
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353 |
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354 | }
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355 | //
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356 | // Acquire RTC Lock to make access to RTC atomic
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357 | //
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358 | if (!EfiAtRuntime ()) {
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359 | EfiAcquireLock (&Global->RtcLock);
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360 | }
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361 | //
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362 | // Wait for up to 0.1 seconds for the RTC to be updated
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363 | //
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364 | Status = RtcWaitToUpdate (PcdGet32 (PcdRealTimeClockUpdateTimeout));
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365 | if (EFI_ERROR (Status)) {
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366 | if (!EfiAtRuntime ()) {
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367 | EfiReleaseLock (&Global->RtcLock);
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368 | }
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369 | return Status;
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370 | }
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371 | //
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372 | // Read Register B
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373 | //
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374 | RegisterB.Data = RtcRead (RTC_ADDRESS_REGISTER_B);
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375 |
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376 | //
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377 | // Get the Time/Date/Daylight Savings values.
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378 | //
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379 | Time->Second = RtcRead (RTC_ADDRESS_SECONDS);
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380 | Time->Minute = RtcRead (RTC_ADDRESS_MINUTES);
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381 | Time->Hour = RtcRead (RTC_ADDRESS_HOURS);
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382 | Time->Day = RtcRead (RTC_ADDRESS_DAY_OF_THE_MONTH);
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383 | Time->Month = RtcRead (RTC_ADDRESS_MONTH);
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384 | Time->Year = RtcRead (RTC_ADDRESS_YEAR);
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385 |
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386 | Century = RtcRead (RTC_ADDRESS_CENTURY);
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387 |
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388 | //
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389 | // Release RTC Lock.
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390 | //
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391 | if (!EfiAtRuntime ()) {
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392 | EfiReleaseLock (&Global->RtcLock);
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393 | }
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394 |
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395 | //
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396 | // Get the variable that contains the TimeZone and Daylight fields
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397 | //
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398 | Time->TimeZone = Global->SavedTimeZone;
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399 | Time->Daylight = Global->Daylight;
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400 |
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401 | //
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402 | // Make sure all field values are in correct range
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403 | //
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404 | Status = ConvertRtcTimeToEfiTime (Time, Century, RegisterB);
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405 | if (!EFI_ERROR (Status)) {
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406 | Status = RtcTimeFieldsValid (Time);
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407 | }
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408 | if (EFI_ERROR (Status)) {
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409 | return EFI_DEVICE_ERROR;
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410 | }
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411 |
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412 | //
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413 | // Fill in Capabilities if it was passed in
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414 | //
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415 | if (Capabilities != NULL) {
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416 | Capabilities->Resolution = 1;
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417 | //
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418 | // 1 hertz
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419 | //
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420 | Capabilities->Accuracy = 50000000;
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421 | //
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422 | // 50 ppm
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423 | //
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424 | Capabilities->SetsToZero = FALSE;
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425 | }
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426 |
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427 | return EFI_SUCCESS;
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428 | }
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429 |
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430 | /**
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431 | Sets the current local time and date information.
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432 |
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433 | @param Time A pointer to the current time.
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434 | @param Global For global use inside this module.
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435 |
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436 | @retval EFI_SUCCESS The operation completed successfully.
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437 | @retval EFI_INVALID_PARAMETER A time field is out of range.
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438 | @retval EFI_DEVICE_ERROR The time could not be set due due to hardware error.
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439 |
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440 | **/
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441 | EFI_STATUS
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442 | PcRtcSetTime (
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443 | IN EFI_TIME *Time,
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444 | IN PC_RTC_MODULE_GLOBALS *Global
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445 | )
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446 | {
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447 | EFI_STATUS Status;
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448 | EFI_TIME RtcTime;
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449 | RTC_REGISTER_B RegisterB;
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450 | UINT8 Century;
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451 | UINT32 TimerVar;
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452 |
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453 | if (Time == NULL) {
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454 | return EFI_INVALID_PARAMETER;
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455 | }
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456 | //
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457 | // Make sure that the time fields are valid
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458 | //
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459 | Status = RtcTimeFieldsValid (Time);
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460 | if (EFI_ERROR (Status)) {
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461 | return Status;
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462 | }
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463 |
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464 | CopyMem (&RtcTime, Time, sizeof (EFI_TIME));
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465 |
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466 | //
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467 | // Acquire RTC Lock to make access to RTC atomic
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468 | //
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469 | if (!EfiAtRuntime ()) {
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470 | EfiAcquireLock (&Global->RtcLock);
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471 | }
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472 | //
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473 | // Wait for up to 0.1 seconds for the RTC to be updated
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474 | //
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475 | Status = RtcWaitToUpdate (PcdGet32 (PcdRealTimeClockUpdateTimeout));
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476 | if (EFI_ERROR (Status)) {
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477 | if (!EfiAtRuntime ()) {
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478 | EfiReleaseLock (&Global->RtcLock);
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479 | }
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480 | return Status;
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481 | }
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482 |
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483 | //
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484 | // Write timezone and daylight to RTC variable
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485 | //
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486 | TimerVar = Time->Daylight;
|
---|
487 | TimerVar = (UINT32) ((TimerVar << 16) | (UINT16)(Time->TimeZone));
|
---|
488 | Status = EfiSetVariable (
|
---|
489 | L"RTC",
|
---|
490 | &gEfiCallerIdGuid,
|
---|
491 | EFI_VARIABLE_BOOTSERVICE_ACCESS | EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_NON_VOLATILE,
|
---|
492 | sizeof (TimerVar),
|
---|
493 | &TimerVar
|
---|
494 | );
|
---|
495 | if (EFI_ERROR (Status)) {
|
---|
496 | if (!EfiAtRuntime ()) {
|
---|
497 | EfiReleaseLock (&Global->RtcLock);
|
---|
498 | }
|
---|
499 | return EFI_DEVICE_ERROR;
|
---|
500 | }
|
---|
501 |
|
---|
502 | //
|
---|
503 | // Read Register B, and inhibit updates of the RTC
|
---|
504 | //
|
---|
505 | RegisterB.Data = RtcRead (RTC_ADDRESS_REGISTER_B);
|
---|
506 | RegisterB.Bits.Set = 1;
|
---|
507 | RtcWrite (RTC_ADDRESS_REGISTER_B, RegisterB.Data);
|
---|
508 |
|
---|
509 | ConvertEfiTimeToRtcTime (&RtcTime, RegisterB, &Century);
|
---|
510 |
|
---|
511 | RtcWrite (RTC_ADDRESS_SECONDS, RtcTime.Second);
|
---|
512 | RtcWrite (RTC_ADDRESS_MINUTES, RtcTime.Minute);
|
---|
513 | RtcWrite (RTC_ADDRESS_HOURS, RtcTime.Hour);
|
---|
514 | RtcWrite (RTC_ADDRESS_DAY_OF_THE_MONTH, RtcTime.Day);
|
---|
515 | RtcWrite (RTC_ADDRESS_MONTH, RtcTime.Month);
|
---|
516 | RtcWrite (RTC_ADDRESS_YEAR, (UINT8) RtcTime.Year);
|
---|
517 | RtcWrite (RTC_ADDRESS_CENTURY, Century);
|
---|
518 |
|
---|
519 | //
|
---|
520 | // Allow updates of the RTC registers
|
---|
521 | //
|
---|
522 | RegisterB.Bits.Set = 0;
|
---|
523 | RtcWrite (RTC_ADDRESS_REGISTER_B, RegisterB.Data);
|
---|
524 |
|
---|
525 | //
|
---|
526 | // Release RTC Lock.
|
---|
527 | //
|
---|
528 | if (!EfiAtRuntime ()) {
|
---|
529 | EfiReleaseLock (&Global->RtcLock);
|
---|
530 | }
|
---|
531 | //
|
---|
532 | // Set the variable that contains the TimeZone and Daylight fields
|
---|
533 | //
|
---|
534 | Global->SavedTimeZone = Time->TimeZone;
|
---|
535 | Global->Daylight = Time->Daylight;
|
---|
536 |
|
---|
537 | return EFI_SUCCESS;
|
---|
538 | }
|
---|
539 |
|
---|
540 | /**
|
---|
541 | Returns the current wakeup alarm clock setting.
|
---|
542 |
|
---|
543 | @param Enabled Indicates if the alarm is currently enabled or disabled.
|
---|
544 | @param Pending Indicates if the alarm signal is pending and requires acknowledgment.
|
---|
545 | @param Time The current alarm setting.
|
---|
546 | @param Global For global use inside this module.
|
---|
547 |
|
---|
548 | @retval EFI_SUCCESS The alarm settings were returned.
|
---|
549 | @retval EFI_INVALID_PARAMETER Enabled is NULL.
|
---|
550 | @retval EFI_INVALID_PARAMETER Pending is NULL.
|
---|
551 | @retval EFI_INVALID_PARAMETER Time is NULL.
|
---|
552 | @retval EFI_DEVICE_ERROR The wakeup time could not be retrieved due to a hardware error.
|
---|
553 | @retval EFI_UNSUPPORTED A wakeup timer is not supported on this platform.
|
---|
554 |
|
---|
555 | **/
|
---|
556 | EFI_STATUS
|
---|
557 | PcRtcGetWakeupTime (
|
---|
558 | OUT BOOLEAN *Enabled,
|
---|
559 | OUT BOOLEAN *Pending,
|
---|
560 | OUT EFI_TIME *Time,
|
---|
561 | IN PC_RTC_MODULE_GLOBALS *Global
|
---|
562 | )
|
---|
563 | {
|
---|
564 | EFI_STATUS Status;
|
---|
565 | RTC_REGISTER_B RegisterB;
|
---|
566 | RTC_REGISTER_C RegisterC;
|
---|
567 | UINT8 Century;
|
---|
568 | EFI_TIME RtcTime;
|
---|
569 | UINTN DataSize;
|
---|
570 |
|
---|
571 | //
|
---|
572 | // Check parameters for null pointers
|
---|
573 | //
|
---|
574 | if ((Enabled == NULL) || (Pending == NULL) || (Time == NULL)) {
|
---|
575 | return EFI_INVALID_PARAMETER;
|
---|
576 |
|
---|
577 | }
|
---|
578 | //
|
---|
579 | // Acquire RTC Lock to make access to RTC atomic
|
---|
580 | //
|
---|
581 | if (!EfiAtRuntime ()) {
|
---|
582 | EfiAcquireLock (&Global->RtcLock);
|
---|
583 | }
|
---|
584 | //
|
---|
585 | // Wait for up to 0.1 seconds for the RTC to be updated
|
---|
586 | //
|
---|
587 | Status = RtcWaitToUpdate (PcdGet32 (PcdRealTimeClockUpdateTimeout));
|
---|
588 | if (EFI_ERROR (Status)) {
|
---|
589 | if (!EfiAtRuntime ()) {
|
---|
590 | EfiReleaseLock (&Global->RtcLock);
|
---|
591 | }
|
---|
592 | return EFI_DEVICE_ERROR;
|
---|
593 | }
|
---|
594 | //
|
---|
595 | // Read Register B and Register C
|
---|
596 | //
|
---|
597 | RegisterB.Data = RtcRead (RTC_ADDRESS_REGISTER_B);
|
---|
598 | RegisterC.Data = RtcRead (RTC_ADDRESS_REGISTER_C);
|
---|
599 |
|
---|
600 | //
|
---|
601 | // Get the Time/Date/Daylight Savings values.
|
---|
602 | //
|
---|
603 | *Enabled = RegisterB.Bits.Aie;
|
---|
604 | *Pending = RegisterC.Bits.Af;
|
---|
605 |
|
---|
606 | Time->Second = RtcRead (RTC_ADDRESS_SECONDS_ALARM);
|
---|
607 | Time->Minute = RtcRead (RTC_ADDRESS_MINUTES_ALARM);
|
---|
608 | Time->Hour = RtcRead (RTC_ADDRESS_HOURS_ALARM);
|
---|
609 | Time->Day = RtcRead (RTC_ADDRESS_DAY_OF_THE_MONTH);
|
---|
610 | Time->Month = RtcRead (RTC_ADDRESS_MONTH);
|
---|
611 | Time->Year = RtcRead (RTC_ADDRESS_YEAR);
|
---|
612 | Time->TimeZone = Global->SavedTimeZone;
|
---|
613 | Time->Daylight = Global->Daylight;
|
---|
614 |
|
---|
615 | Century = RtcRead (RTC_ADDRESS_CENTURY);
|
---|
616 |
|
---|
617 | //
|
---|
618 | // Get the alarm info from variable
|
---|
619 | //
|
---|
620 | DataSize = sizeof (EFI_TIME);
|
---|
621 | Status = EfiGetVariable (
|
---|
622 | L"RTCALARM",
|
---|
623 | &gEfiCallerIdGuid,
|
---|
624 | NULL,
|
---|
625 | &DataSize,
|
---|
626 | &RtcTime
|
---|
627 | );
|
---|
628 | if (!EFI_ERROR (Status)) {
|
---|
629 | //
|
---|
630 | // The alarm variable exists. In this case, we read variable to get info.
|
---|
631 | //
|
---|
632 | Time->Day = RtcTime.Day;
|
---|
633 | Time->Month = RtcTime.Month;
|
---|
634 | Time->Year = RtcTime.Year;
|
---|
635 | }
|
---|
636 |
|
---|
637 | //
|
---|
638 | // Release RTC Lock.
|
---|
639 | //
|
---|
640 | if (!EfiAtRuntime ()) {
|
---|
641 | EfiReleaseLock (&Global->RtcLock);
|
---|
642 | }
|
---|
643 |
|
---|
644 | //
|
---|
645 | // Make sure all field values are in correct range
|
---|
646 | //
|
---|
647 | Status = ConvertRtcTimeToEfiTime (Time, Century, RegisterB);
|
---|
648 | if (!EFI_ERROR (Status)) {
|
---|
649 | Status = RtcTimeFieldsValid (Time);
|
---|
650 | }
|
---|
651 | if (EFI_ERROR (Status)) {
|
---|
652 | return EFI_DEVICE_ERROR;
|
---|
653 | }
|
---|
654 |
|
---|
655 | return EFI_SUCCESS;
|
---|
656 | }
|
---|
657 |
|
---|
658 | /**
|
---|
659 | Sets the system wakeup alarm clock time.
|
---|
660 |
|
---|
661 | @param Enabled Enable or disable the wakeup alarm.
|
---|
662 | @param Time If Enable is TRUE, the time to set the wakeup alarm for.
|
---|
663 | If Enable is FALSE, then this parameter is optional, and may be NULL.
|
---|
664 | @param Global For global use inside this module.
|
---|
665 |
|
---|
666 | @retval EFI_SUCCESS If Enable is TRUE, then the wakeup alarm was enabled.
|
---|
667 | If Enable is FALSE, then the wakeup alarm was disabled.
|
---|
668 | @retval EFI_INVALID_PARAMETER A time field is out of range.
|
---|
669 | @retval EFI_DEVICE_ERROR The wakeup time could not be set due to a hardware error.
|
---|
670 | @retval EFI_UNSUPPORTED A wakeup timer is not supported on this platform.
|
---|
671 |
|
---|
672 | **/
|
---|
673 | EFI_STATUS
|
---|
674 | PcRtcSetWakeupTime (
|
---|
675 | IN BOOLEAN Enable,
|
---|
676 | IN EFI_TIME *Time, OPTIONAL
|
---|
677 | IN PC_RTC_MODULE_GLOBALS *Global
|
---|
678 | )
|
---|
679 | {
|
---|
680 | EFI_STATUS Status;
|
---|
681 | EFI_TIME RtcTime;
|
---|
682 | RTC_REGISTER_B RegisterB;
|
---|
683 | UINT8 Century;
|
---|
684 | EFI_TIME_CAPABILITIES Capabilities;
|
---|
685 |
|
---|
686 | ZeroMem (&RtcTime, sizeof (RtcTime));
|
---|
687 |
|
---|
688 | if (Enable) {
|
---|
689 |
|
---|
690 | if (Time == NULL) {
|
---|
691 | return EFI_INVALID_PARAMETER;
|
---|
692 | }
|
---|
693 | //
|
---|
694 | // Make sure that the time fields are valid
|
---|
695 | //
|
---|
696 | Status = RtcTimeFieldsValid (Time);
|
---|
697 | if (EFI_ERROR (Status)) {
|
---|
698 | return EFI_INVALID_PARAMETER;
|
---|
699 | }
|
---|
700 | //
|
---|
701 | // Just support set alarm time within 24 hours
|
---|
702 | //
|
---|
703 | PcRtcGetTime (&RtcTime, &Capabilities, Global);
|
---|
704 | Status = RtcTimeFieldsValid (&RtcTime);
|
---|
705 | if (EFI_ERROR (Status)) {
|
---|
706 | return EFI_DEVICE_ERROR;
|
---|
707 | }
|
---|
708 | if (!IsWithinOneDay (&RtcTime, Time)) {
|
---|
709 | return EFI_UNSUPPORTED;
|
---|
710 | }
|
---|
711 | //
|
---|
712 | // Make a local copy of the time and date
|
---|
713 | //
|
---|
714 | CopyMem (&RtcTime, Time, sizeof (EFI_TIME));
|
---|
715 |
|
---|
716 | }
|
---|
717 | //
|
---|
718 | // Acquire RTC Lock to make access to RTC atomic
|
---|
719 | //
|
---|
720 | if (!EfiAtRuntime ()) {
|
---|
721 | EfiAcquireLock (&Global->RtcLock);
|
---|
722 | }
|
---|
723 | //
|
---|
724 | // Wait for up to 0.1 seconds for the RTC to be updated
|
---|
725 | //
|
---|
726 | Status = RtcWaitToUpdate (PcdGet32 (PcdRealTimeClockUpdateTimeout));
|
---|
727 | if (EFI_ERROR (Status)) {
|
---|
728 | if (!EfiAtRuntime ()) {
|
---|
729 | EfiReleaseLock (&Global->RtcLock);
|
---|
730 | }
|
---|
731 | return EFI_DEVICE_ERROR;
|
---|
732 | }
|
---|
733 | //
|
---|
734 | // Read Register B
|
---|
735 | //
|
---|
736 | RegisterB.Data = RtcRead (RTC_ADDRESS_REGISTER_B);
|
---|
737 |
|
---|
738 | if (Enable) {
|
---|
739 | ConvertEfiTimeToRtcTime (&RtcTime, RegisterB, &Century);
|
---|
740 | } else {
|
---|
741 | //
|
---|
742 | // if the alarm is disable, record the current setting.
|
---|
743 | //
|
---|
744 | RtcTime.Second = RtcRead (RTC_ADDRESS_SECONDS_ALARM);
|
---|
745 | RtcTime.Minute = RtcRead (RTC_ADDRESS_MINUTES_ALARM);
|
---|
746 | RtcTime.Hour = RtcRead (RTC_ADDRESS_HOURS_ALARM);
|
---|
747 | RtcTime.Day = RtcRead (RTC_ADDRESS_DAY_OF_THE_MONTH);
|
---|
748 | RtcTime.Month = RtcRead (RTC_ADDRESS_MONTH);
|
---|
749 | RtcTime.Year = RtcRead (RTC_ADDRESS_YEAR);
|
---|
750 | RtcTime.TimeZone = Global->SavedTimeZone;
|
---|
751 | RtcTime.Daylight = Global->Daylight;
|
---|
752 | }
|
---|
753 |
|
---|
754 | //
|
---|
755 | // Set the Y/M/D info to variable as it has no corresponding hw registers.
|
---|
756 | //
|
---|
757 | Status = EfiSetVariable (
|
---|
758 | L"RTCALARM",
|
---|
759 | &gEfiCallerIdGuid,
|
---|
760 | EFI_VARIABLE_BOOTSERVICE_ACCESS | EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_NON_VOLATILE,
|
---|
761 | sizeof (RtcTime),
|
---|
762 | &RtcTime
|
---|
763 | );
|
---|
764 | if (EFI_ERROR (Status)) {
|
---|
765 | if (!EfiAtRuntime ()) {
|
---|
766 | EfiReleaseLock (&Global->RtcLock);
|
---|
767 | }
|
---|
768 | return EFI_DEVICE_ERROR;
|
---|
769 | }
|
---|
770 |
|
---|
771 | //
|
---|
772 | // Inhibit updates of the RTC
|
---|
773 | //
|
---|
774 | RegisterB.Bits.Set = 1;
|
---|
775 | RtcWrite (RTC_ADDRESS_REGISTER_B, RegisterB.Data);
|
---|
776 |
|
---|
777 | if (Enable) {
|
---|
778 | //
|
---|
779 | // Set RTC alarm time
|
---|
780 | //
|
---|
781 | RtcWrite (RTC_ADDRESS_SECONDS_ALARM, RtcTime.Second);
|
---|
782 | RtcWrite (RTC_ADDRESS_MINUTES_ALARM, RtcTime.Minute);
|
---|
783 | RtcWrite (RTC_ADDRESS_HOURS_ALARM, RtcTime.Hour);
|
---|
784 |
|
---|
785 | RegisterB.Bits.Aie = 1;
|
---|
786 |
|
---|
787 | } else {
|
---|
788 | RegisterB.Bits.Aie = 0;
|
---|
789 | }
|
---|
790 | //
|
---|
791 | // Allow updates of the RTC registers
|
---|
792 | //
|
---|
793 | RegisterB.Bits.Set = 0;
|
---|
794 | RtcWrite (RTC_ADDRESS_REGISTER_B, RegisterB.Data);
|
---|
795 |
|
---|
796 | //
|
---|
797 | // Release RTC Lock.
|
---|
798 | //
|
---|
799 | if (!EfiAtRuntime ()) {
|
---|
800 | EfiReleaseLock (&Global->RtcLock);
|
---|
801 | }
|
---|
802 | return EFI_SUCCESS;
|
---|
803 | }
|
---|
804 |
|
---|
805 |
|
---|
806 | /**
|
---|
807 | Checks an 8-bit BCD value, and converts to an 8-bit value if valid.
|
---|
808 |
|
---|
809 | This function checks the 8-bit BCD value specified by Value.
|
---|
810 | If valid, the function converts it to an 8-bit value and returns it.
|
---|
811 | Otherwise, return 0xff.
|
---|
812 |
|
---|
813 | @param Value The 8-bit BCD value to check and convert
|
---|
814 |
|
---|
815 | @return The 8-bit value converted. Or 0xff if Value is invalid.
|
---|
816 |
|
---|
817 | **/
|
---|
818 | UINT8
|
---|
819 | CheckAndConvertBcd8ToDecimal8 (
|
---|
820 | IN UINT8 Value
|
---|
821 | )
|
---|
822 | {
|
---|
823 | if ((Value < 0xa0) && ((Value & 0xf) < 0xa)) {
|
---|
824 | return BcdToDecimal8 (Value);
|
---|
825 | }
|
---|
826 |
|
---|
827 | return 0xff;
|
---|
828 | }
|
---|
829 |
|
---|
830 | /**
|
---|
831 | Converts time read from RTC to EFI_TIME format defined by UEFI spec.
|
---|
832 |
|
---|
833 | This function converts raw time data read from RTC to the EFI_TIME format
|
---|
834 | defined by UEFI spec.
|
---|
835 | If data mode of RTC is BCD, then converts it to decimal,
|
---|
836 | If RTC is in 12-hour format, then converts it to 24-hour format.
|
---|
837 |
|
---|
838 | @param Time On input, the time data read from RTC to convert
|
---|
839 | On output, the time converted to UEFI format
|
---|
840 | @param Century Value of century read from RTC.
|
---|
841 | @param RegisterB Value of Register B of RTC, indicating data mode
|
---|
842 | and hour format.
|
---|
843 |
|
---|
844 | @retval EFI_INVALID_PARAMETER Parameters passed in are invalid.
|
---|
845 | @retval EFI_SUCCESS Convert RTC time to EFI time successfully.
|
---|
846 |
|
---|
847 | **/
|
---|
848 | EFI_STATUS
|
---|
849 | ConvertRtcTimeToEfiTime (
|
---|
850 | IN OUT EFI_TIME *Time,
|
---|
851 | IN UINT8 Century,
|
---|
852 | IN RTC_REGISTER_B RegisterB
|
---|
853 | )
|
---|
854 | {
|
---|
855 | BOOLEAN IsPM;
|
---|
856 |
|
---|
857 | if ((Time->Hour & 0x80) != 0) {
|
---|
858 | IsPM = TRUE;
|
---|
859 | } else {
|
---|
860 | IsPM = FALSE;
|
---|
861 | }
|
---|
862 |
|
---|
863 | Time->Hour = (UINT8) (Time->Hour & 0x7f);
|
---|
864 |
|
---|
865 | if (RegisterB.Bits.Dm == 0) {
|
---|
866 | Time->Year = CheckAndConvertBcd8ToDecimal8 ((UINT8) Time->Year);
|
---|
867 | Time->Month = CheckAndConvertBcd8ToDecimal8 (Time->Month);
|
---|
868 | Time->Day = CheckAndConvertBcd8ToDecimal8 (Time->Day);
|
---|
869 | Time->Hour = CheckAndConvertBcd8ToDecimal8 (Time->Hour);
|
---|
870 | Time->Minute = CheckAndConvertBcd8ToDecimal8 (Time->Minute);
|
---|
871 | Time->Second = CheckAndConvertBcd8ToDecimal8 (Time->Second);
|
---|
872 | }
|
---|
873 | Century = CheckAndConvertBcd8ToDecimal8 (Century);
|
---|
874 |
|
---|
875 | if (Time->Year == 0xff || Time->Month == 0xff || Time->Day == 0xff ||
|
---|
876 | Time->Hour == 0xff || Time->Minute == 0xff || Time->Second == 0xff ||
|
---|
877 | Century == 0xff) {
|
---|
878 | return EFI_INVALID_PARAMETER;
|
---|
879 | }
|
---|
880 |
|
---|
881 | Time->Year = (UINT16) (Century * 100 + Time->Year);
|
---|
882 |
|
---|
883 | //
|
---|
884 | // If time is in 12 hour format, convert it to 24 hour format
|
---|
885 | //
|
---|
886 | if (RegisterB.Bits.Mil == 0) {
|
---|
887 | if (IsPM && Time->Hour < 12) {
|
---|
888 | Time->Hour = (UINT8) (Time->Hour + 12);
|
---|
889 | }
|
---|
890 |
|
---|
891 | if (!IsPM && Time->Hour == 12) {
|
---|
892 | Time->Hour = 0;
|
---|
893 | }
|
---|
894 | }
|
---|
895 |
|
---|
896 | Time->Nanosecond = 0;
|
---|
897 |
|
---|
898 | return EFI_SUCCESS;
|
---|
899 | }
|
---|
900 |
|
---|
901 | /**
|
---|
902 | Wait for a period for the RTC to be ready.
|
---|
903 |
|
---|
904 | @param Timeout Tell how long it should take to wait.
|
---|
905 |
|
---|
906 | @retval EFI_DEVICE_ERROR RTC device error.
|
---|
907 | @retval EFI_SUCCESS RTC is updated and ready.
|
---|
908 | **/
|
---|
909 | EFI_STATUS
|
---|
910 | RtcWaitToUpdate (
|
---|
911 | UINTN Timeout
|
---|
912 | )
|
---|
913 | {
|
---|
914 | RTC_REGISTER_A RegisterA;
|
---|
915 | RTC_REGISTER_D RegisterD;
|
---|
916 |
|
---|
917 | //
|
---|
918 | // See if the RTC is functioning correctly
|
---|
919 | //
|
---|
920 | RegisterD.Data = RtcRead (RTC_ADDRESS_REGISTER_D);
|
---|
921 |
|
---|
922 | if (RegisterD.Bits.Vrt == 0) {
|
---|
923 | return EFI_DEVICE_ERROR;
|
---|
924 | }
|
---|
925 | //
|
---|
926 | // Wait for up to 0.1 seconds for the RTC to be ready.
|
---|
927 | //
|
---|
928 | Timeout = (Timeout / 10) + 1;
|
---|
929 | RegisterA.Data = RtcRead (RTC_ADDRESS_REGISTER_A);
|
---|
930 | while (RegisterA.Bits.Uip == 1 && Timeout > 0) {
|
---|
931 | MicroSecondDelay (10);
|
---|
932 | RegisterA.Data = RtcRead (RTC_ADDRESS_REGISTER_A);
|
---|
933 | Timeout--;
|
---|
934 | }
|
---|
935 |
|
---|
936 | RegisterD.Data = RtcRead (RTC_ADDRESS_REGISTER_D);
|
---|
937 | if (Timeout == 0 || RegisterD.Bits.Vrt == 0) {
|
---|
938 | return EFI_DEVICE_ERROR;
|
---|
939 | }
|
---|
940 |
|
---|
941 | return EFI_SUCCESS;
|
---|
942 | }
|
---|
943 |
|
---|
944 | /**
|
---|
945 | See if all fields of a variable of EFI_TIME type is correct.
|
---|
946 |
|
---|
947 | @param Time The time to be checked.
|
---|
948 |
|
---|
949 | @retval EFI_INVALID_PARAMETER Some fields of Time are not correct.
|
---|
950 | @retval EFI_SUCCESS Time is a valid EFI_TIME variable.
|
---|
951 |
|
---|
952 | **/
|
---|
953 | EFI_STATUS
|
---|
954 | RtcTimeFieldsValid (
|
---|
955 | IN EFI_TIME *Time
|
---|
956 | )
|
---|
957 | {
|
---|
958 | if (Time->Year < PcdGet16 (PcdMinimalValidYear) ||
|
---|
959 | Time->Year > PcdGet16 (PcdMaximalValidYear) ||
|
---|
960 | Time->Month < 1 ||
|
---|
961 | Time->Month > 12 ||
|
---|
962 | (!DayValid (Time)) ||
|
---|
963 | Time->Hour > 23 ||
|
---|
964 | Time->Minute > 59 ||
|
---|
965 | Time->Second > 59 ||
|
---|
966 | Time->Nanosecond > 999999999 ||
|
---|
967 | (!(Time->TimeZone == EFI_UNSPECIFIED_TIMEZONE || (Time->TimeZone >= -1440 && Time->TimeZone <= 1440))) ||
|
---|
968 | ((Time->Daylight & (~(EFI_TIME_ADJUST_DAYLIGHT | EFI_TIME_IN_DAYLIGHT))) != 0)) {
|
---|
969 | return EFI_INVALID_PARAMETER;
|
---|
970 | }
|
---|
971 |
|
---|
972 | return EFI_SUCCESS;
|
---|
973 | }
|
---|
974 |
|
---|
975 | /**
|
---|
976 | See if field Day of an EFI_TIME is correct.
|
---|
977 |
|
---|
978 | @param Time Its Day field is to be checked.
|
---|
979 |
|
---|
980 | @retval TRUE Day field of Time is correct.
|
---|
981 | @retval FALSE Day field of Time is NOT correct.
|
---|
982 | **/
|
---|
983 | BOOLEAN
|
---|
984 | DayValid (
|
---|
985 | IN EFI_TIME *Time
|
---|
986 | )
|
---|
987 | {
|
---|
988 | INTN DayOfMonth[12];
|
---|
989 |
|
---|
990 | DayOfMonth[0] = 31;
|
---|
991 | DayOfMonth[1] = 29;
|
---|
992 | DayOfMonth[2] = 31;
|
---|
993 | DayOfMonth[3] = 30;
|
---|
994 | DayOfMonth[4] = 31;
|
---|
995 | DayOfMonth[5] = 30;
|
---|
996 | DayOfMonth[6] = 31;
|
---|
997 | DayOfMonth[7] = 31;
|
---|
998 | DayOfMonth[8] = 30;
|
---|
999 | DayOfMonth[9] = 31;
|
---|
1000 | DayOfMonth[10] = 30;
|
---|
1001 | DayOfMonth[11] = 31;
|
---|
1002 |
|
---|
1003 | //
|
---|
1004 | // The validity of Time->Month field should be checked before
|
---|
1005 | //
|
---|
1006 | ASSERT (Time->Month >=1);
|
---|
1007 | ASSERT (Time->Month <=12);
|
---|
1008 | if (Time->Day < 1 ||
|
---|
1009 | Time->Day > DayOfMonth[Time->Month - 1] ||
|
---|
1010 | (Time->Month == 2 && (!IsLeapYear (Time) && Time->Day > 28))
|
---|
1011 | ) {
|
---|
1012 | return FALSE;
|
---|
1013 | }
|
---|
1014 |
|
---|
1015 | return TRUE;
|
---|
1016 | }
|
---|
1017 |
|
---|
1018 | /**
|
---|
1019 | Check if it is a leap year.
|
---|
1020 |
|
---|
1021 | @param Time The time to be checked.
|
---|
1022 |
|
---|
1023 | @retval TRUE It is a leap year.
|
---|
1024 | @retval FALSE It is NOT a leap year.
|
---|
1025 | **/
|
---|
1026 | BOOLEAN
|
---|
1027 | IsLeapYear (
|
---|
1028 | IN EFI_TIME *Time
|
---|
1029 | )
|
---|
1030 | {
|
---|
1031 | if (Time->Year % 4 == 0) {
|
---|
1032 | if (Time->Year % 100 == 0) {
|
---|
1033 | if (Time->Year % 400 == 0) {
|
---|
1034 | return TRUE;
|
---|
1035 | } else {
|
---|
1036 | return FALSE;
|
---|
1037 | }
|
---|
1038 | } else {
|
---|
1039 | return TRUE;
|
---|
1040 | }
|
---|
1041 | } else {
|
---|
1042 | return FALSE;
|
---|
1043 | }
|
---|
1044 | }
|
---|
1045 |
|
---|
1046 | /**
|
---|
1047 | Converts time from EFI_TIME format defined by UEFI spec to RTC's.
|
---|
1048 |
|
---|
1049 | This function converts time from EFI_TIME format defined by UEFI spec to RTC's.
|
---|
1050 | If data mode of RTC is BCD, then converts EFI_TIME to it.
|
---|
1051 | If RTC is in 12-hour format, then converts EFI_TIME to it.
|
---|
1052 |
|
---|
1053 | @param Time On input, the time data read from UEFI to convert
|
---|
1054 | On output, the time converted to RTC format
|
---|
1055 | @param RegisterB Value of Register B of RTC, indicating data mode
|
---|
1056 | @param Century It is set according to EFI_TIME Time.
|
---|
1057 |
|
---|
1058 | **/
|
---|
1059 | VOID
|
---|
1060 | ConvertEfiTimeToRtcTime (
|
---|
1061 | IN OUT EFI_TIME *Time,
|
---|
1062 | IN RTC_REGISTER_B RegisterB,
|
---|
1063 | OUT UINT8 *Century
|
---|
1064 | )
|
---|
1065 | {
|
---|
1066 | BOOLEAN IsPM;
|
---|
1067 |
|
---|
1068 | IsPM = TRUE;
|
---|
1069 | //
|
---|
1070 | // Adjust hour field if RTC is in 12 hour mode
|
---|
1071 | //
|
---|
1072 | if (RegisterB.Bits.Mil == 0) {
|
---|
1073 | if (Time->Hour < 12) {
|
---|
1074 | IsPM = FALSE;
|
---|
1075 | }
|
---|
1076 |
|
---|
1077 | if (Time->Hour >= 13) {
|
---|
1078 | Time->Hour = (UINT8) (Time->Hour - 12);
|
---|
1079 | } else if (Time->Hour == 0) {
|
---|
1080 | Time->Hour = 12;
|
---|
1081 | }
|
---|
1082 | }
|
---|
1083 | //
|
---|
1084 | // Set the Time/Date/Daylight Savings values.
|
---|
1085 | //
|
---|
1086 | *Century = DecimalToBcd8 ((UINT8) (Time->Year / 100));
|
---|
1087 |
|
---|
1088 | Time->Year = (UINT16) (Time->Year % 100);
|
---|
1089 |
|
---|
1090 | if (RegisterB.Bits.Dm == 0) {
|
---|
1091 | Time->Year = DecimalToBcd8 ((UINT8) Time->Year);
|
---|
1092 | Time->Month = DecimalToBcd8 (Time->Month);
|
---|
1093 | Time->Day = DecimalToBcd8 (Time->Day);
|
---|
1094 | Time->Hour = DecimalToBcd8 (Time->Hour);
|
---|
1095 | Time->Minute = DecimalToBcd8 (Time->Minute);
|
---|
1096 | Time->Second = DecimalToBcd8 (Time->Second);
|
---|
1097 | }
|
---|
1098 | //
|
---|
1099 | // If we are in 12 hour mode and PM is set, then set bit 7 of the Hour field.
|
---|
1100 | //
|
---|
1101 | if (RegisterB.Bits.Mil == 0 && IsPM) {
|
---|
1102 | Time->Hour = (UINT8) (Time->Hour | 0x80);
|
---|
1103 | }
|
---|
1104 | }
|
---|
1105 |
|
---|
1106 | /**
|
---|
1107 | Compare the Hour, Minute and Second of the From time and the To time.
|
---|
1108 |
|
---|
1109 | Only compare H/M/S in EFI_TIME and ignore other fields here.
|
---|
1110 |
|
---|
1111 | @param From the first time
|
---|
1112 | @param To the second time
|
---|
1113 |
|
---|
1114 | @return >0 The H/M/S of the From time is later than those of To time
|
---|
1115 | @return ==0 The H/M/S of the From time is same as those of To time
|
---|
1116 | @return <0 The H/M/S of the From time is earlier than those of To time
|
---|
1117 | **/
|
---|
1118 | INTN
|
---|
1119 | CompareHMS (
|
---|
1120 | IN EFI_TIME *From,
|
---|
1121 | IN EFI_TIME *To
|
---|
1122 | )
|
---|
1123 | {
|
---|
1124 | if ((From->Hour > To->Hour) ||
|
---|
1125 | ((From->Hour == To->Hour) && (From->Minute > To->Minute)) ||
|
---|
1126 | ((From->Hour == To->Hour) && (From->Minute == To->Minute) && (From->Second > To->Second))) {
|
---|
1127 | return 1;
|
---|
1128 | } else if ((From->Hour == To->Hour) && (From->Minute == To->Minute) && (From->Second == To->Second)) {
|
---|
1129 | return 0;
|
---|
1130 | } else {
|
---|
1131 | return -1;
|
---|
1132 | }
|
---|
1133 | }
|
---|
1134 |
|
---|
1135 | /**
|
---|
1136 | To check if second date is later than first date within 24 hours.
|
---|
1137 |
|
---|
1138 | @param From the first date
|
---|
1139 | @param To the second date
|
---|
1140 |
|
---|
1141 | @retval TRUE From is previous to To within 24 hours.
|
---|
1142 | @retval FALSE From is later, or it is previous to To more than 24 hours.
|
---|
1143 | **/
|
---|
1144 | BOOLEAN
|
---|
1145 | IsWithinOneDay (
|
---|
1146 | IN EFI_TIME *From,
|
---|
1147 | IN EFI_TIME *To
|
---|
1148 | )
|
---|
1149 | {
|
---|
1150 | UINT8 DayOfMonth[12];
|
---|
1151 | BOOLEAN Adjacent;
|
---|
1152 |
|
---|
1153 | DayOfMonth[0] = 31;
|
---|
1154 | DayOfMonth[1] = 29;
|
---|
1155 | DayOfMonth[2] = 31;
|
---|
1156 | DayOfMonth[3] = 30;
|
---|
1157 | DayOfMonth[4] = 31;
|
---|
1158 | DayOfMonth[5] = 30;
|
---|
1159 | DayOfMonth[6] = 31;
|
---|
1160 | DayOfMonth[7] = 31;
|
---|
1161 | DayOfMonth[8] = 30;
|
---|
1162 | DayOfMonth[9] = 31;
|
---|
1163 | DayOfMonth[10] = 30;
|
---|
1164 | DayOfMonth[11] = 31;
|
---|
1165 |
|
---|
1166 | Adjacent = FALSE;
|
---|
1167 |
|
---|
1168 | //
|
---|
1169 | // The validity of From->Month field should be checked before
|
---|
1170 | //
|
---|
1171 | ASSERT (From->Month >=1);
|
---|
1172 | ASSERT (From->Month <=12);
|
---|
1173 |
|
---|
1174 | if (From->Year == To->Year) {
|
---|
1175 | if (From->Month == To->Month) {
|
---|
1176 | if ((From->Day + 1) == To->Day) {
|
---|
1177 | if ((CompareHMS(From, To) >= 0)) {
|
---|
1178 | Adjacent = TRUE;
|
---|
1179 | }
|
---|
1180 | } else if (From->Day == To->Day) {
|
---|
1181 | if ((CompareHMS(From, To) <= 0)) {
|
---|
1182 | Adjacent = TRUE;
|
---|
1183 | }
|
---|
1184 | }
|
---|
1185 | } else if (((From->Month + 1) == To->Month) && (To->Day == 1)) {
|
---|
1186 | if ((From->Month == 2) && !IsLeapYear(From)) {
|
---|
1187 | if (From->Day == 28) {
|
---|
1188 | if ((CompareHMS(From, To) >= 0)) {
|
---|
1189 | Adjacent = TRUE;
|
---|
1190 | }
|
---|
1191 | }
|
---|
1192 | } else if (From->Day == DayOfMonth[From->Month - 1]) {
|
---|
1193 | if ((CompareHMS(From, To) >= 0)) {
|
---|
1194 | Adjacent = TRUE;
|
---|
1195 | }
|
---|
1196 | }
|
---|
1197 | }
|
---|
1198 | } else if (((From->Year + 1) == To->Year) &&
|
---|
1199 | (From->Month == 12) &&
|
---|
1200 | (From->Day == 31) &&
|
---|
1201 | (To->Month == 1) &&
|
---|
1202 | (To->Day == 1)) {
|
---|
1203 | if ((CompareHMS(From, To) >= 0)) {
|
---|
1204 | Adjacent = TRUE;
|
---|
1205 | }
|
---|
1206 | }
|
---|
1207 |
|
---|
1208 | return Adjacent;
|
---|
1209 | }
|
---|
1210 |
|
---|