| Index: dart/frog/leg/lib/mockimpl.dart
|
| diff --git a/dart/frog/leg/lib/mockimpl.dart b/dart/frog/leg/lib/mockimpl.dart
|
| index 8d12cba89d0acd1907439270e9a6a2941df32a1a..5840bd4eece3c7a363925357792fb4fead177e6e 100644
|
| --- a/dart/frog/leg/lib/mockimpl.dart
|
| +++ b/dart/frog/leg/lib/mockimpl.dart
|
| @@ -20,8 +20,15 @@ class StringBufferImpl {
|
| }
|
| }
|
|
|
| -class DateImplementation {}
|
| -class ReceivePortFactory {}
|
| +class ReceivePortFactory {
|
| + factory ReceivePort() {
|
| + throw 'factory ReceivePort is not implemented';
|
| + }
|
| +
|
| + factory ReceivePort.singleShot() {
|
| + throw 'factory ReceivePort.singleShot is not implemented';
|
| + }
|
| +}
|
|
|
| class StringBase {
|
| static String createFromCharCodes(List<int> charCodes) {
|
| @@ -94,3 +101,386 @@ class MathNatives {
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| throw 'MathNatives.random is not implemented';
|
| }
|
| }
|
| +
|
| +class TimeZoneImplementation implements TimeZone {
|
| + const TimeZoneImplementation.utc() : isUtc = true;
|
| + TimeZoneImplementation.local() : isUtc = false;
|
| +
|
| + bool operator ==(Object other) {
|
| + if (!(other is TimeZoneImplementation)) return false;
|
| + return isUtc == other.isUtc;
|
| + }
|
| +
|
| + final bool isUtc;
|
| +}
|
| +
|
| +class DateImplementation implements Date {
|
| + factory DateImplementation(int years,
|
| + int month,
|
| + int day,
|
| + int hours,
|
| + int minutes,
|
| + int seconds,
|
| + int milliseconds) {
|
| + return new DateImplementation.withTimeZone(
|
| + years, month, day,
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| + hours, minutes, seconds, milliseconds,
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| + new TimeZoneImplementation.local());
|
| + }
|
| +
|
| + DateImplementation.withTimeZone(int years,
|
| + int month,
|
| + int day,
|
| + int hours,
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| + int minutes,
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| + int seconds,
|
| + int milliseconds,
|
| + TimeZoneImplementation timeZone)
|
| + : timeZone = timeZone,
|
| + value = brokenDownDateToMillisecondsSinceEpoch_(
|
| + years, month, day, hours, minutes, seconds, milliseconds,
|
| + timeZone.isUtc);
|
| +
|
| + DateImplementation.now()
|
| + : timeZone = new TimeZone.local(),
|
| + value = Primitives.getCurrentMs();
|
| +
|
| + factory DateImplementation.fromString(String formattedString) {
|
| + int substringToNumber(String str, int from, int to) {
|
| + int result = 0;
|
| + for (int i = from; i < to; i++) {
|
| + result = result * 10 + str.charCodeAt(i) - "0".charCodeAt(0);
|
| + }
|
| + return result;
|
| + }
|
| +
|
| + // TODO(floitsch): improve DateImplementation parsing.
|
| + // Parse ISO 8601: "2011-05-14 00:37:18.231Z".
|
| + int yearMonthSeparator = formattedString.indexOf("-", 0);
|
| + if (yearMonthSeparator < 0) throw "UNIMPLEMENTED";
|
| + int monthDaySeparator =
|
| + formattedString.indexOf("-", yearMonthSeparator + 1);
|
| + if (monthDaySeparator < 0) throw "UNIMPLEMENTED";
|
| + int dateTimeSeparator = formattedString.indexOf(" ", monthDaySeparator + 1);
|
| + if (dateTimeSeparator < 0) throw "UNIMPLEMENTED";
|
| + int hoursMinutesSeparator =
|
| + formattedString.indexOf(":", dateTimeSeparator + 1);
|
| + if (hoursMinutesSeparator < 0) throw "UNIMPLEMENTED";
|
| + int minutesSecondsSeparator =
|
| + formattedString.indexOf(":", hoursMinutesSeparator + 1);
|
| + if (minutesSecondsSeparator < 0) throw "UNIMPLEMENTED";
|
| + int secondsMillisecondsSeparator =
|
| + formattedString.indexOf(".", minutesSecondsSeparator + 1);
|
| + bool isUtc = formattedString.endsWith("Z");
|
| + int end = formattedString.length - (isUtc ? 1 : 0);
|
| + if (secondsMillisecondsSeparator < 0) secondsMillisecondsSeparator = end;
|
| +
|
| + int year = substringToNumber(formattedString, 0, yearMonthSeparator);
|
| + int month = substringToNumber(formattedString,
|
| + yearMonthSeparator + 1,
|
| + monthDaySeparator);
|
| + int day = substringToNumber(formattedString,
|
| + monthDaySeparator + 1,
|
| + dateTimeSeparator);
|
| + int hours = substringToNumber(formattedString,
|
| + dateTimeSeparator + 1,
|
| + hoursMinutesSeparator);
|
| + int minutes = substringToNumber(formattedString,
|
| + hoursMinutesSeparator + 1,
|
| + minutesSecondsSeparator);
|
| + int seconds = substringToNumber(formattedString,
|
| + minutesSecondsSeparator + 1,
|
| + secondsMillisecondsSeparator);
|
| + int milliseconds = substringToNumber(formattedString,
|
| + secondsMillisecondsSeparator + 1,
|
| + end);
|
| + TimeZone timeZone = (isUtc ? const TimeZone.utc() : new TimeZone.local());
|
| + return new DateImplementation.withTimeZone(
|
| + year, month, day, hours, minutes, seconds, milliseconds, timeZone);
|
| + }
|
| +
|
| + const DateImplementation.fromEpoch(int this.value,
|
| + TimeZone this.timeZone);
|
| +
|
| + bool operator ==(Object other) {
|
| + if (!(other is DateImplementation)) return false;
|
| + return value == other.value && timeZone == other.timeZone;
|
| + }
|
| +
|
| + int compareTo(Date other) {
|
| + return value.compareTo(other.value);
|
| + }
|
| +
|
| + Date changeTimeZone(TimeZone targetTimeZone) {
|
| + if (targetTimeZone === null) {
|
| + targetTimeZone = new TimeZoneImplementation.local();
|
| + }
|
| + return new Date.fromEpoch(value, targetTimeZone);
|
| + }
|
| +
|
| + int get year() {
|
| + int secondsSinceEpoch = secondsSinceEpoch_;
|
| + // According to V8 some library calls have troubles with negative values.
|
| + // Therefore clamp to 0 - year 2035 (which is less than the size of 32bit).
|
| + if (secondsSinceEpoch >= 0 && secondsSinceEpoch < SECONDS_YEAR_2035_) {
|
| + return Primitives.getYear(secondsSinceEpoch, timeZone.isUtc);
|
| + }
|
| +
|
| + // Approximate the result. We don't take timeZone into account.
|
| + int approximateYear = yearsFromSecondsSinceEpoch_(secondsSinceEpoch);
|
| + int equivalentYear = equivalentYear_(approximateYear);
|
| + int y = Primitives.getYear(equivalentSeconds_(secondsSinceEpoch_),
|
| + timeZone.isUtc);
|
| + return approximateYear + (y - equivalentYear);
|
| + }
|
| +
|
| + int get month() => Primitives.getMonth(equivalentSeconds_(secondsSinceEpoch_),
|
| + timeZone.isUtc);
|
| +
|
| + int get day() => Primitives.getDay(equivalentSeconds_(secondsSinceEpoch_),
|
| + timeZone.isUtc);
|
| +
|
| + int get hours() => Primitives.getHours(equivalentSeconds_(secondsSinceEpoch_),
|
| + timeZone.isUtc);
|
| +
|
| + int get minutes() =>
|
| + Primitives.getMinutes(equivalentSeconds_(secondsSinceEpoch_),
|
| + timeZone.isUtc);
|
| +
|
| + int get seconds() =>
|
| + Primitives.getSeconds(equivalentSeconds_(secondsSinceEpoch_),
|
| + timeZone.isUtc);
|
| +
|
| + int get milliseconds() {
|
| + return value % Duration.MILLISECONDS_PER_SECOND;
|
| + }
|
| +
|
| + int get secondsSinceEpoch_() {
|
| + // Always round down.
|
| + if (value < 0) {
|
| + return (value + 1) ~/ Duration.MILLISECONDS_PER_SECOND - 1;
|
| + } else {
|
| + return value ~/ Duration.MILLISECONDS_PER_SECOND;
|
| + }
|
| + }
|
| +
|
| + int get weekday() {
|
| + final Date unixTimeStart =
|
| + new Date.withTimeZone(1970, 1, 1, 0, 0, 0, 0, timeZone);
|
| + int msSince1970 = this.difference(unixTimeStart).inMilliseconds;
|
| + // Adjust the milliseconds to avoid problems with summer-time.
|
| + if (hours < 2) {
|
| + msSince1970 += 2 * Duration.MILLISECONDS_PER_HOUR;
|
| + }
|
| + // Compute the floor of msSince1970 / Duration.MS_PER_DAY.
|
| + int daysSince1970;
|
| + if (msSince1970 >= 0) {
|
| + daysSince1970 = msSince1970 ~/ Duration.MILLISECONDS_PER_DAY;
|
| + } else {
|
| + daysSince1970 = (msSince1970 - Duration.MILLISECONDS_PER_DAY + 1) ~/
|
| + Duration.MILLISECONDS_PER_DAY;
|
| + }
|
| + // 1970-1-1 was a Thursday.
|
| + return ((daysSince1970 + Date.THU) % Date.DAYS_IN_WEEK);
|
| + }
|
| +
|
| + bool isLocalTime() {
|
| + return !timeZone.isUtc;
|
| + }
|
| +
|
| + bool isUtc() {
|
| + return timeZone.isUtc;
|
| + }
|
| +
|
| + String toString() {
|
| + String threeDigits(int n) {
|
| + if (n >= 100) return "${n}";
|
| + if (n > 10) return "0${n}";
|
| + return "00${n}";
|
| + }
|
| + String twoDigits(int n) {
|
| + if (n >= 10) return "${n}";
|
| + return "0${n}";
|
| + }
|
| +
|
| + String m = twoDigits(month);
|
| + String d = twoDigits(day);
|
| + String h = twoDigits(hours);
|
| + String min = twoDigits(minutes);
|
| + String sec = twoDigits(seconds);
|
| + String ms = threeDigits(milliseconds);
|
| + if (timeZone.isUtc) {
|
| + return "$year-$m-$d $h:$min:$sec.${ms}Z";
|
| + } else {
|
| + return "$year-$m-$d $h:$min:$sec.$ms";
|
| + }
|
| + }
|
| +
|
| + // Adds the [duration] to this Date instance.
|
| + Date add(Duration duration) {
|
| + return new DateImplementation.fromEpoch(value + duration.inMilliseconds,
|
| + timeZone);
|
| + }
|
| +
|
| + // Subtracts the [duration] from this Date instance.
|
| + Date subtract(Duration duration) {
|
| + return new DateImplementation.fromEpoch(value - duration.inMilliseconds,
|
| + timeZone);
|
| + }
|
| +
|
| + // Returns a [Duration] with the difference of [this] and [other].
|
| + Duration difference(Date other) {
|
| + return new DurationImplementation(milliseconds: value - other.value);
|
| + }
|
| +
|
| + final int value;
|
| + final TimeZoneImplementation timeZone;
|
| +
|
| + static final int SECONDS_YEAR_2035_ = 2051222400;
|
| +
|
| + // Returns the UTC year for the corresponding [secondsSinceEpoch].
|
| + // It is relatively fast for values in the range 0 to year 2098.
|
| + // Code is adapted from V8.
|
| + static int yearsFromSecondsSinceEpoch_(int secondsSinceEpoch) {
|
| + final int DAYS_IN_4_YEARS = 4 * 365 + 1;
|
| + final int DAYS_IN_100_YEARS = 25 * DAYS_IN_4_YEARS - 1;
|
| + final int DAYS_IN_400_YEARS = 4 * DAYS_IN_100_YEARS + 1;
|
| + final int DAYS_1970_TO_2000 = 30 * 365 + 7;
|
| + final int DAYS_OFFSET = 1000 * DAYS_IN_400_YEARS + 5 * DAYS_IN_400_YEARS -
|
| + DAYS_1970_TO_2000;
|
| + final int YEARS_OFFSET = 400000;
|
| + final int DAYS_YEAR_2098 = DAYS_IN_100_YEARS + 6 * DAYS_IN_4_YEARS;
|
| +
|
| + int days = secondsSinceEpoch ~/ Duration.SECONDS_PER_DAY;
|
| + if (days > 0 && days < DAYS_YEAR_2098) {
|
| + // According to V8 this fast case works for dates from 1970 to 2099.
|
| + return 1970 + (4 * days + 2) ~/ DAYS_IN_4_YEARS;
|
| + } else {
|
| + days += DAYS_OFFSET;
|
| + int result = 400 * (days ~/ DAYS_IN_400_YEARS) - YEARS_OFFSET;
|
| + days = days.remainder(DAYS_IN_400_YEARS);
|
| + days--;
|
| + int yd1 = days ~/ DAYS_IN_100_YEARS;
|
| + days = days.remainder(DAYS_IN_100_YEARS);
|
| + result += 100 * yd1;
|
| + days++;
|
| + int yd2 = days ~/ DAYS_IN_4_YEARS;
|
| + days = days.remainder(DAYS_IN_4_YEARS);
|
| + result += 4 * yd2;
|
| + days--;
|
| + int yd3 = days ~/ 365;
|
| + days = days.remainder(365);
|
| + result += yd3;
|
| + return result;
|
| + }
|
| + }
|
| +
|
| + // Given [secondsSinceEpoch] returns seconds such that they are at the same
|
| + // time in an equivalent year (see [equivalentYear_]).
|
| + // Leap seconds are ignored.
|
| + static int equivalentSeconds_(int secondsSinceEpoch) {
|
| + if (secondsSinceEpoch >= 0 && secondsSinceEpoch < SECONDS_YEAR_2035_) {
|
| + return secondsSinceEpoch;
|
| + }
|
| + int year = yearsFromSecondsSinceEpoch_(secondsSinceEpoch);
|
| + int days = dayFromYear_(year);
|
| + int equivalentYear = equivalentYear_(year);
|
| + int equivalentDays = dayFromYear_(equivalentYear);
|
| + int diffDays = equivalentDays - days;
|
| + return secondsSinceEpoch + diffDays * Duration.SECONDS_PER_DAY;
|
| + }
|
| +
|
| + // Returns the days since 1970 for the start of the given [year].
|
| + // [year] may be before epoch.
|
| + static int dayFromYear_(int year) {
|
| + int flooredDivision(int a, int b) {
|
| + return (a - (a < 0 ? b - 1 : 0)) ~/ b;
|
| + }
|
| +
|
| + return 365 * (year - 1970)
|
| + + flooredDivision(year - 1969, 4)
|
| + - flooredDivision(year - 1901, 100)
|
| + + flooredDivision(year - 1601, 400);
|
| + }
|
| +
|
| + // Returns a year in the range 2008-2035 matching
|
| + // - leap year, and
|
| + // - week day of first day.
|
| + // Leap seconds are ignored.
|
| + // Adapted from V8's date implementation. See ECMA 262 - 15.9.1.9.
|
| + static equivalentYear_(int year) {
|
| + // Returns 1 if in leap year. 0 otherwise.
|
| + bool inLeapYear(year) {
|
| + return (year.remainder(4) == 0) &&
|
| + ((year.remainder(100) != 0) || (year.remainder(400) == 0));
|
| + }
|
| +
|
| + // Returns the week day (in range 0 - 6).
|
| + int weekDay(year) {
|
| + // 1/1/1970 was a Thursday.
|
| + return (dayFromYear_(year) + 4) % 7;
|
| + }
|
| + // 1/1/1956 was a Sunday (i.e. weekday 0). 1956 was a leap-year.
|
| + // 1/1/1967 was a Sunday (i.e. weekday 0).
|
| + // Without leap years a subsequent year has a week day + 1 (for example
|
| + // 1/1/1968 was a Monday). With leap-years it jumps over one week day
|
| + // (e.g. 1/1/1957 was a Tuesday).
|
| + // After 12 years the weekdays have advanced by 12 days + 3 leap days =
|
| + // 15 days. 15 % 7 = 1. So after 12 years the week day has always
|
| + // (now independently of leap-years) advanced by one.
|
| + // weekDay * 12 gives thus a year starting with the wanted weekDay.
|
| + int recentYear = (inLeapYear(year) ? 1956 : 1967) + (weekDay(year) * 12);
|
| + // Close to the year 2008 the calendar cycles every 4 * 7 years (4 for the
|
| + // leap years, 7 for the weekdays).
|
| + // Find the year in the range 2008..2037 that is equivalent mod 28.
|
| + return 2008 + (recentYear - 2008) % 28;
|
| + }
|
| +
|
| + static brokenDownDateToMillisecondsSinceEpoch_(
|
| + int years, int month, int day,
|
| + int hours, int minutes, int seconds, int milliseconds,
|
| + bool isUtc) {
|
| + if ((month < 1) || (month > 12)) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + if ((day < 1) || (day > 31)) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + // Leap seconds can lead to hours == 24.
|
| + if ((hours < 0) || (hours > 24)) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + if ((hours == 24) && ((minutes != 0) || (seconds != 0))) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + if ((minutes < 0) || (minutes > 59)) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + if ((seconds < 0) || (seconds > 59)) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + if ((milliseconds < 0) || (milliseconds > 999)) {
|
| + throw new IllegalArgumentException();
|
| + }
|
| + int equivalentYear;
|
| + int offsetInSeconds;
|
| + // According to V8 some library calls have troubles with negative values.
|
| + // Therefore clamp to 1970 - year 2035 (which is less than the size of
|
| + // 32bit).
|
| + // We exclude the year 1970 when the time is not UTC, since the epoch
|
| + // value could then be negative.
|
| + if (years < (isUtc ? 1970 : 1971) || years > 2035) {
|
| + equivalentYear = equivalentYear_(years);
|
| + int offsetInDays = (dayFromYear_(years) - dayFromYear_(equivalentYear));
|
| + // Leap seconds are ignored.
|
| + offsetInSeconds = offsetInDays * Duration.SECONDS_PER_DAY;
|
| + } else {
|
| + equivalentYear = years;
|
| + offsetInSeconds = 0;
|
| + }
|
| + int secondsSinceEpoch = Primitives.brokenDownDateToSecondsSinceEpoch(
|
| + equivalentYear, month, day, hours, minutes, seconds, isUtc);
|
| + int adjustedSeconds = secondsSinceEpoch + offsetInSeconds;
|
| + return adjustedSeconds * Duration.MILLISECONDS_PER_SECOND + milliseconds;
|
| + }
|
| +}
|
|
|