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| 1 // Copyright (c) 2012 The Chromium Authors. All rights reserved. | 1 // Copyright (c) 2012 The Chromium Authors. All rights reserved. |
| 2 // Use of this source code is governed by a BSD-style license that can be | 2 // Use of this source code is governed by a BSD-style license that can be |
| 3 // found in the LICENSE file. | 3 // found in the LICENSE file. |
| 4 | 4 |
| 5 #include "base/time.h" | 5 #include "base/time.h" |
| 6 | 6 |
| 7 #include <math.h> | 7 #include <math.h> |
| 8 #if defined(OS_WIN) | 8 #if defined(OS_WIN) |
| 9 #include <float.h> | 9 #include <float.h> |
| 10 #endif | 10 #endif |
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| 67 | 67 |
| 68 // static | 68 // static |
| 69 Time Time::Max() { | 69 Time Time::Max() { |
| 70 return Time(std::numeric_limits<int64>::max()); | 70 return Time(std::numeric_limits<int64>::max()); |
| 71 } | 71 } |
| 72 | 72 |
| 73 // static | 73 // static |
| 74 Time Time::FromTimeT(time_t tt) { | 74 Time Time::FromTimeT(time_t tt) { |
| 75 if (tt == 0) | 75 if (tt == 0) |
| 76 return Time(); // Preserve 0 so we can tell it doesn't exist. | 76 return Time(); // Preserve 0 so we can tell it doesn't exist. |
| 77 if (tt == std::numeric_limits<time_t>::max()) | |
| 78 return Max(); | |
| 77 return Time((tt * kMicrosecondsPerSecond) + kTimeTToMicrosecondsOffset); | 79 return Time((tt * kMicrosecondsPerSecond) + kTimeTToMicrosecondsOffset); |
| 78 } | 80 } |
| 79 | 81 |
| 80 time_t Time::ToTimeT() const { | 82 time_t Time::ToTimeT() const { |
| 81 if (us_ == 0) | 83 if (is_null()) |
| 82 return 0; // Preserve 0 so we can tell it doesn't exist. | 84 return 0; // Preserve 0 so we can tell it doesn't exist. |
| 85 if (is_max()) { | |
| 86 // Preserve max without offset to prevent overflow. | |
| 87 return std::numeric_limits<time_t>::max(); | |
| 88 } | |
| 83 return (us_ - kTimeTToMicrosecondsOffset) / kMicrosecondsPerSecond; | 89 return (us_ - kTimeTToMicrosecondsOffset) / kMicrosecondsPerSecond; |
|
msarda
2012/09/06 15:04:34
There is still a risk of overflow here: us_ might
Mike West
2012/09/06 19:51:16
Good point. I've added the log. This one looks lik
| |
| 84 } | 90 } |
| 85 | 91 |
| 86 // static | 92 // static |
| 87 Time Time::FromDoubleT(double dt) { | 93 Time Time::FromDoubleT(double dt) { |
| 88 if (dt == 0 || isnan(dt)) | 94 if (dt == 0 || isnan(dt)) |
| 89 return Time(); // Preserve 0 so we can tell it doesn't exist. | 95 return Time(); // Preserve 0 so we can tell it doesn't exist. |
| 96 if (dt == std::numeric_limits<double>::max()) | |
| 97 return Max(); | |
| 90 return Time(static_cast<int64>((dt * | 98 return Time(static_cast<int64>((dt * |
| 91 static_cast<double>(kMicrosecondsPerSecond)) + | 99 static_cast<double>(kMicrosecondsPerSecond)) + |
| 92 kTimeTToMicrosecondsOffset)); | 100 kTimeTToMicrosecondsOffset)); |
| 93 } | 101 } |
| 94 | 102 |
| 95 double Time::ToDoubleT() const { | 103 double Time::ToDoubleT() const { |
| 96 if (us_ == 0) | 104 if (is_null()) |
| 97 return 0; // Preserve 0 so we can tell it doesn't exist. | 105 return 0; // Preserve 0 so we can tell it doesn't exist. |
| 106 if (is_max()) { | |
| 107 // Preserve max without offset to prevent overflow. | |
| 108 return std::numeric_limits<double>::max(); | |
| 109 } | |
| 98 return (static_cast<double>(us_ - kTimeTToMicrosecondsOffset) / | 110 return (static_cast<double>(us_ - kTimeTToMicrosecondsOffset) / |
| 99 static_cast<double>(kMicrosecondsPerSecond)); | 111 static_cast<double>(kMicrosecondsPerSecond)); |
| 100 } | 112 } |
| 101 | 113 |
| 102 // static | 114 // static |
| 103 Time Time::FromJsTime(double ms_since_epoch) { | 115 Time Time::FromJsTime(double ms_since_epoch) { |
| 104 // The epoch is a valid time, so this constructor doesn't interpret | 116 // The epoch is a valid time, so this constructor doesn't interpret |
| 105 // 0 as the null time. | 117 // 0 as the null time. |
| 118 if (ms_since_epoch == std::numeric_limits<double>::max()) | |
| 119 return Max(); | |
| 106 return Time(static_cast<int64>(ms_since_epoch * kMicrosecondsPerMillisecond) + | 120 return Time(static_cast<int64>(ms_since_epoch * kMicrosecondsPerMillisecond) + |
| 107 kTimeTToMicrosecondsOffset); | 121 kTimeTToMicrosecondsOffset); |
| 108 } | 122 } |
| 109 | 123 |
| 110 double Time::ToJsTime() const { | 124 double Time::ToJsTime() const { |
| 111 if (us_ == 0) { | 125 if (is_null()) { |
| 112 // Preserve 0 so the invalid result doesn't depend on the platform. | 126 // Preserve 0 so the invalid result doesn't depend on the platform. |
| 113 return 0; | 127 return 0; |
| 114 } | 128 } |
| 129 if (is_max()) { | |
| 130 // Preserve max without offset to prevent overflow. | |
| 131 return std::numeric_limits<double>::max(); | |
| 132 } | |
| 115 return (static_cast<double>(us_ - kTimeTToMicrosecondsOffset) / | 133 return (static_cast<double>(us_ - kTimeTToMicrosecondsOffset) / |
| 116 kMicrosecondsPerMillisecond); | 134 kMicrosecondsPerMillisecond); |
| 117 } | 135 } |
| 118 | 136 |
| 119 // static | 137 // static |
| 120 Time Time::UnixEpoch() { | 138 Time Time::UnixEpoch() { |
| 121 Time time; | 139 Time time; |
| 122 time.us_ = kTimeTToMicrosecondsOffset; | 140 time.us_ = kTimeTToMicrosecondsOffset; |
| 123 return time; | 141 return time; |
| 124 } | 142 } |
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| 161 return is_in_range(month, 1, 12) && | 179 return is_in_range(month, 1, 12) && |
| 162 is_in_range(day_of_week, 0, 6) && | 180 is_in_range(day_of_week, 0, 6) && |
| 163 is_in_range(day_of_month, 1, 31) && | 181 is_in_range(day_of_month, 1, 31) && |
| 164 is_in_range(hour, 0, 23) && | 182 is_in_range(hour, 0, 23) && |
| 165 is_in_range(minute, 0, 59) && | 183 is_in_range(minute, 0, 59) && |
| 166 is_in_range(second, 0, 60) && | 184 is_in_range(second, 0, 60) && |
| 167 is_in_range(millisecond, 0, 999); | 185 is_in_range(millisecond, 0, 999); |
| 168 } | 186 } |
| 169 | 187 |
| 170 } // namespace base | 188 } // namespace base |
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