| Index: runtime/lib/date_patch.dart
|
| diff --git a/runtime/lib/date_patch.dart b/runtime/lib/date_patch.dart
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| deleted file mode 100644
|
| index 17d5a43af2840c2f437f6525a0f1e9ac1d95c6a0..0000000000000000000000000000000000000000
|
| --- a/runtime/lib/date_patch.dart
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| +++ /dev/null
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| @@ -1,327 +0,0 @@
|
| -// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
|
| -// for details. All rights reserved. Use of this source code is governed by a
|
| -// BSD-style license that can be found in the LICENSE file.
|
| -// Dart core library.
|
| -
|
| -// VM implementation of DateImplementation.
|
| -patch class DateImplementation {
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| - /* patch */ DateImplementation(int years,
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| - [int month = 1,
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| - int day = 1,
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| - int hour = 0,
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| - int minute = 0,
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| - int second = 0,
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| - int millisecond = 0,
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| - bool isUtc = false])
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| - : this.isUtc = isUtc,
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| - this.millisecondsSinceEpoch = _brokenDownDateToMillisecondsSinceEpoch(
|
| - years, month, day, hour, minute, second, millisecond, isUtc) {
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| - if (millisecondsSinceEpoch === null) throw new IllegalArgumentException();
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| - if (isUtc === null) throw new IllegalArgumentException();
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| - }
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| -
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| - /* patch */ DateImplementation.now()
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| - : isUtc = false,
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| - millisecondsSinceEpoch = _getCurrentMs() {
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| - }
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| -
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| - /* patch */ String get timeZoneName() {
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| - if (isUtc) return "UTC";
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| - return _timeZoneName(millisecondsSinceEpoch);
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| - }
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| -
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| - /* patch */ Duration get timeZoneOffset() {
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| - if (isUtc) return new Duration(0);
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| - int offsetInSeconds = _timeZoneOffsetInSeconds(millisecondsSinceEpoch);
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| - return new Duration(seconds: offsetInSeconds);
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| - }
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| -
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| - /* patch */ int get year() => _decomposeIntoYearMonthDay(_localDateInUtcMs)[0];
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| -
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| - /* patch */ int get month() => _decomposeIntoYearMonthDay(_localDateInUtcMs)[1];
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| -
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| - /* patch */ int get day() => _decomposeIntoYearMonthDay(_localDateInUtcMs)[2];
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| -
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| - /* patch */ int get hour() {
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| - int valueInHours = _flooredDivision(_localDateInUtcMs,
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| - Duration.MILLISECONDS_PER_HOUR);
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| - return valueInHours % Duration.HOURS_PER_DAY;
|
| - }
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| -
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| - /* patch */ int get minute() {
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| - int valueInMinutes = _flooredDivision(_localDateInUtcMs,
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| - Duration.MILLISECONDS_PER_MINUTE);
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| - return valueInMinutes % Duration.MINUTES_PER_HOUR;
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| - }
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| -
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| - /* patch */ int get second() {
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| - // Seconds are unaffected by the timezone the user is in. So we can
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| - // directly use the millisecondsSinceEpoch and not [_localDateInUtcMs].
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| - int valueInSeconds =
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| - _flooredDivision(millisecondsSinceEpoch,
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| - Duration.MILLISECONDS_PER_SECOND);
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| - return valueInSeconds % Duration.SECONDS_PER_MINUTE;
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| - }
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| -
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| - /* patch */ int get millisecond() {
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| - // Milliseconds are unaffected by the timezone the user is in. So we can
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| - // directly use the value and not the [_localDateInUtcValue].
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| - return millisecondsSinceEpoch % Duration.MILLISECONDS_PER_SECOND;
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| - }
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| -
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| - /** Returns the weekday of [this]. In accordance with ISO 8601 a week
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| - * starts with Monday. Monday has the value 1 up to Sunday with 7. */
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| - /* patch */ int get weekday() {
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| - int daysSince1970 =
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| - _flooredDivision(_localDateInUtcMs, Duration.MILLISECONDS_PER_DAY);
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| - // 1970-1-1 was a Thursday.
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| - return ((daysSince1970 + Date.THU - Date.MON) % Date.DAYS_IN_WEEK) +
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| - Date.MON;
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| - }
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| -
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| -
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| - /** The first list contains the days until each month in non-leap years. The
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| - * second list contains the days in leap years. */
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| - static final List<List<int>> _DAYS_UNTIL_MONTH =
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| - const [const [0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334],
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| - const [0, 31, 60, 91, 121, 152, 182, 213, 244, 274, 305, 335]];
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| -
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| - // Returns the UTC year, month and day for the corresponding
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| - // [millisecondsSinceEpoch].
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| - // Code is adapted from V8.
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| - static List<int> _decomposeIntoYearMonthDay(int millisecondsSinceEpoch) {
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| - // TODO(floitsch): cache result.
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| - final int DAYS_IN_4_YEARS = 4 * 365 + 1;
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| - final int DAYS_IN_100_YEARS = 25 * DAYS_IN_4_YEARS - 1;
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| - final int DAYS_IN_400_YEARS = 4 * DAYS_IN_100_YEARS + 1;
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| - final int DAYS_1970_TO_2000 = 30 * 365 + 7;
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| - final int DAYS_OFFSET = 1000 * DAYS_IN_400_YEARS + 5 * DAYS_IN_400_YEARS -
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| - DAYS_1970_TO_2000;
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| - final int YEARS_OFFSET = 400000;
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| -
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| - int resultYear = 0;
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| - int resultMonth = 0;
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| - int resultDay = 0;
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| -
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| - // Always round down.
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| - int days = _flooredDivision(millisecondsSinceEpoch,
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| - Duration.MILLISECONDS_PER_DAY);
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| - days += DAYS_OFFSET;
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| - resultYear = 400 * (days ~/ DAYS_IN_400_YEARS) - YEARS_OFFSET;
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| - days = days.remainder(DAYS_IN_400_YEARS);
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| - days--;
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| - int yd1 = days ~/ DAYS_IN_100_YEARS;
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| - days = days.remainder(DAYS_IN_100_YEARS);
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| - resultYear += 100 * yd1;
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| - days++;
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| - int yd2 = days ~/ DAYS_IN_4_YEARS;
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| - days = days.remainder(DAYS_IN_4_YEARS);
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| - resultYear += 4 * yd2;
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| - days--;
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| - int yd3 = days ~/ 365;
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| - days = days.remainder(365);
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| - resultYear += yd3;
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| -
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| - bool isLeap = (yd1 == 0 || yd2 != 0) && yd3 == 0;
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| - if (isLeap) days++;
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| -
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| - List<int> daysUntilMonth = _DAYS_UNTIL_MONTH[isLeap ? 1 : 0];
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| - for (resultMonth = 12;
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| - daysUntilMonth[resultMonth - 1] > days;
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| - resultMonth--) {
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| - // Do nothing.
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| - }
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| - resultDay = days - daysUntilMonth[resultMonth - 1] + 1;
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| - return <int>[resultYear, resultMonth, resultDay];
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| - }
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| -
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| - /**
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| - * Returns the amount of milliseconds in UTC that represent the same values
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| - * as [this].
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| - *
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| - * Say [:t:] is the result of this function, then
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| - * * [:this.year == new Date.fromMillisecondsSinceEpoch(t, true).year:],
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| - * * [:this.month == new Date.fromMillisecondsSinceEpoch(t, true).month:],
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| - * * [:this.day == new Date.fromMillisecondsSinceEpoch(t, true).day:],
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| - * * [:this.hour == new Date.fromMillisecondsSinceEpoch(t, true).hour:],
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| - * * ...
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| - *
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| - * Daylight savings is computed as if the date was computed in [1970..2037].
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| - * If [this] lies outside this range then it is a year with similar
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| - * properties (leap year, weekdays) is used instead.
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| - */
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| - int get _localDateInUtcMs() {
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| - int ms = millisecondsSinceEpoch;
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| - if (isUtc) return ms;
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| - int offset =
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| - _timeZoneOffsetInSeconds(ms) * Duration.MILLISECONDS_PER_SECOND;
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| - return ms + offset;
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| - }
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| -
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| - static int _flooredDivision(int a, int b) {
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| - return (a - (a < 0 ? b - 1 : 0)) ~/ b;
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| - }
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| -
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| - // Returns the days since 1970 for the start of the given [year].
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| - // [year] may be before epoch.
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| - static int _dayFromYear(int year) {
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| - return 365 * (year - 1970)
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| - + _flooredDivision(year - 1969, 4)
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| - - _flooredDivision(year - 1901, 100)
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| - + _flooredDivision(year - 1601, 400);
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| - }
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| -
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| - static bool _isLeapYear(y) {
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| - return (y.remainder(4) == 0) &&
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| - ((y.remainder(100) != 0) || (y.remainder(400) == 0));
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| - }
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| -
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| - static _brokenDownDateToMillisecondsSinceEpoch(
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| - int years, int month, int day,
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| - int hour, int minute, int second, int millisecond,
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| - bool isUtc) {
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| - if ((month < 1) || (month > 12)) return null;
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| - if ((day < 1) || (day > 31)) return null;
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| - // Leap seconds can lead to hour == 24.
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| - if ((hour < 0) || (hour > 24)) return null;
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| - if ((hour == 24) && ((minute != 0) || (second != 0))) return null;
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| - if ((minute < 0) || (minute > 59)) return null;
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| - if ((second < 0) || (second > 59)) return null;
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| - if ((millisecond < 0) || (millisecond > 999)) return null;
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| -
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| - // First compute the seconds in UTC, independent of the [isUtc] flag. If
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| - // necessary we will add the time-zone offset later on.
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| - int days = day - 1;
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| - days += _DAYS_UNTIL_MONTH[_isLeapYear(years) ? 1 : 0][month - 1];
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| - days += _dayFromYear(years);
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| - int millisecondsSinceEpoch = days * Duration.MILLISECONDS_PER_DAY +
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| - hour * Duration.MILLISECONDS_PER_HOUR +
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| - minute * Duration.MILLISECONDS_PER_MINUTE+
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| - second * Duration.MILLISECONDS_PER_SECOND +
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| - millisecond;
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| -
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| - // Since [_timeZoneOffsetInSeconds] will crash if the input is far out of
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| - // the valid range we do a preliminary test that weeds out values that can
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| - // not become valid even with timezone adjustments.
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| - // The timezone adjustment is always less than a day, so adding a security
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| - // margin of one day should be enough.
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| - if (millisecondsSinceEpoch.abs() >
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| - (_MAX_MILLISECONDS_SINCE_EPOCH + Duration.MILLISECONDS_PER_DAY)) {
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| - return null;
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| - }
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| -
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| - if (!isUtc) {
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| - // Note that we need to remove the local timezone adjustement before
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| - // asking for the correct zone offset.
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| - int adjustment = _localTimeZoneAdjustmentInSeconds() *
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| - Duration.MILLISECONDS_PER_SECOND;
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| - int zoneOffset =
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| - _timeZoneOffsetInSeconds(millisecondsSinceEpoch - adjustment);
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| - millisecondsSinceEpoch -= zoneOffset * Duration.MILLISECONDS_PER_SECOND;
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| - }
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| - if (millisecondsSinceEpoch.abs() > _MAX_MILLISECONDS_SINCE_EPOCH) {
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| - return null;
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| - }
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| - return millisecondsSinceEpoch;
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| - }
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| -
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| - static int _weekDay(y) {
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| - // 1/1/1970 was a Thursday.
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| - return (_dayFromYear(y) + 4) % 7;
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| - }
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| -
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| - /**
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| - * Returns a year in the range 2008-2035 matching
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| - * * leap year, and
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| - * * week day of first day.
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| - *
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| - * Leap seconds are ignored.
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| - * Adapted from V8's date implementation. See ECMA 262 - 15.9.1.9.
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| - */
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| - static _equivalentYear(int year) {
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| - // Returns the week day (in range 0 - 6).
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| - // 1/1/1956 was a Sunday (i.e. weekday 0). 1956 was a leap-year.
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| - // 1/1/1967 was a Sunday (i.e. weekday 0).
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| - // Without leap years a subsequent year has a week day + 1 (for example
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| - // 1/1/1968 was a Monday). With leap-years it jumps over one week day
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| - // (e.g. 1/1/1957 was a Tuesday).
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| - // After 12 years the weekdays have advanced by 12 days + 3 leap days =
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| - // 15 days. 15 % 7 = 1. So after 12 years the week day has always
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| - // (now independently of leap-years) advanced by one.
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| - // weekDay * 12 gives thus a year starting with the wanted weekDay.
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| - int recentYear = (_isLeapYear(year) ? 1956 : 1967) + (_weekDay(year) * 12);
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| - // Close to the year 2008 the calendar cycles every 4 * 7 years (4 for the
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| - // leap years, 7 for the weekdays).
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| - // Find the year in the range 2008..2037 that is equivalent mod 28.
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| - return 2008 + (recentYear - 2008) % 28;
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| - }
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| -
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| - /**
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| - * Returns the UTC year for the corresponding [secondsSinceEpoch].
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| - * It is relatively fast for values in the range 0 to year 2098.
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| - *
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| - * Code is adapted from V8.
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| - */
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| - static int _yearsFromSecondsSinceEpoch(int secondsSinceEpoch) {
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| - final int DAYS_IN_4_YEARS = 4 * 365 + 1;
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| - final int DAYS_IN_100_YEARS = 25 * DAYS_IN_4_YEARS - 1;
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| - final int DAYS_YEAR_2098 = DAYS_IN_100_YEARS + 6 * DAYS_IN_4_YEARS;
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| -
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| - int days = secondsSinceEpoch ~/ Duration.SECONDS_PER_DAY;
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| - if (days > 0 && days < DAYS_YEAR_2098) {
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| - // According to V8 this fast case works for dates from 1970 to 2099.
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| - return 1970 + (4 * days + 2) ~/ DAYS_IN_4_YEARS;
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| - }
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| - int ms = secondsSinceEpoch * Duration.MILLISECONDS_PER_SECOND;
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| - return _decomposeIntoYearMonthDay(ms)[0];
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| - }
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| -
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| - /**
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| - * Returns a date in seconds that is equivalent to the current date. An
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| - * equivalent date has the same fields ([:month:], [:day:], etc.) as the
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| - * [this], but the [:year:] is in the range [1970..2037].
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| - *
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| - * * The time since the beginning of the year is the same.
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| - * * If [this] is in a leap year then the returned seconds are in a leap
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| - * year, too.
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| - * * The week day of [this] is the same as the one for the returned date.
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| - */
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| - static int _equivalentSeconds(int millisecondsSinceEpoch) {
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| - final int CUT_OFF_SECONDS = 2100000000;
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| -
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| - int secondsSinceEpoch = _flooredDivision(millisecondsSinceEpoch,
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| - Duration.MILLISECONDS_PER_SECOND);
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| -
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| - if (secondsSinceEpoch < 0 || secondsSinceEpoch >= CUT_OFF_SECONDS) {
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| - int year = _yearsFromSecondsSinceEpoch(secondsSinceEpoch);
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| - int days = _dayFromYear(year);
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| - int equivalentYear = _equivalentYear(year);
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| - int equivalentDays = _dayFromYear(equivalentYear);
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| - int diffDays = equivalentDays - days;
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| - secondsSinceEpoch += diffDays * Duration.SECONDS_PER_DAY;
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| - }
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| - return secondsSinceEpoch;
|
| - }
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| -
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| - static int _timeZoneOffsetInSeconds(int millisecondsSinceEpoch) {
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| - int equivalentSeconds = _equivalentSeconds(millisecondsSinceEpoch);
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| - return _timeZoneOffsetInSecondsForClampedSeconds(equivalentSeconds);
|
| - }
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| -
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| - static String _timeZoneName(int millisecondsSinceEpoch) {
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| - int equivalentSeconds = _equivalentSeconds(millisecondsSinceEpoch);
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| - return _timeZoneNameForClampedSeconds(equivalentSeconds);
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| - }
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| -
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| - // Natives
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| - static int _getCurrentMs() native "DateNatives_currentTimeMillis";
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| -
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| - static String _timeZoneNameForClampedSeconds(int secondsSinceEpoch)
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| - native "DateNatives_timeZoneName";
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| -
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| - static int _timeZoneOffsetInSecondsForClampedSeconds(int secondsSinceEpoch)
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| - native "DateNatives_timeZoneOffsetInSeconds";
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| -
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| - static int _localTimeZoneAdjustmentInSeconds()
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| - native "DateNatives_localTimeZoneAdjustmentInSeconds";
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| -}
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|
|