
This is a continuation of the previous three commits. Now that create() receives the allocating realm, we can simply forward that to allocate(), which accounts for the majority of these changes. Additionally, we can get rid of the realm_from_global_object() in one place, with one more remaining in VM::throw_completion().
403 lines
15 KiB
C++
403 lines
15 KiB
C++
/*
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* Copyright (c) 2020-2022, Linus Groh <linusg@serenityos.org>
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* Copyright (c) 2022, Tim Flynn <trflynn89@serenityos.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#include <AK/NumericLimits.h>
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#include <AK/StringBuilder.h>
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#include <AK/Time.h>
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#include <LibJS/Runtime/AbstractOperations.h>
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#include <LibJS/Runtime/Date.h>
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#include <LibJS/Runtime/GlobalObject.h>
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#include <LibTimeZone/TimeZone.h>
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#include <time.h>
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namespace JS {
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Date* Date::create(Realm& realm, double date_value)
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{
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return realm.heap().allocate<Date>(realm, date_value, *realm.global_object().date_prototype());
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}
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Date::Date(double date_value, Object& prototype)
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: Object(prototype)
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, m_date_value(date_value)
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{
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}
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String Date::iso_date_string() const
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{
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int year = year_from_time(m_date_value);
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StringBuilder builder;
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if (year < 0)
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builder.appendff("-{:06}", -year);
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else if (year > 9999)
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builder.appendff("+{:06}", year);
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else
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builder.appendff("{:04}", year);
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builder.append('-');
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builder.appendff("{:02}", month_from_time(m_date_value) + 1);
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builder.append('-');
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builder.appendff("{:02}", date_from_time(m_date_value));
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builder.append('T');
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builder.appendff("{:02}", hour_from_time(m_date_value));
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builder.append(':');
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builder.appendff("{:02}", min_from_time(m_date_value));
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builder.append(':');
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builder.appendff("{:02}", sec_from_time(m_date_value));
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builder.append('.');
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builder.appendff("{:03}", ms_from_time(m_date_value));
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builder.append('Z');
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return builder.build();
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}
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// DayWithinYear(t), https://tc39.es/ecma262/#eqn-DayWithinYear
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u16 day_within_year(double t)
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{
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if (!Value(t).is_finite_number())
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return 0;
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// Day(t) - DayFromYear(YearFromTime(t))
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return static_cast<u16>(day(t) - day_from_year(year_from_time(t)));
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}
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// DateFromTime(t), https://tc39.es/ecma262/#sec-date-number
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u8 date_from_time(double t)
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{
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switch (month_from_time(t)) {
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// DayWithinYear(t) + 1𝔽 if MonthFromTime(t) = +0𝔽
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case 0:
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return day_within_year(t) + 1;
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// DayWithinYear(t) - 30𝔽 if MonthFromTime(t) = 1𝔽
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case 1:
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return day_within_year(t) - 30;
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// DayWithinYear(t) - 58𝔽 - InLeapYear(t) if MonthFromTime(t) = 2𝔽
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case 2:
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return day_within_year(t) - 58 - in_leap_year(t);
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// DayWithinYear(t) - 89𝔽 - InLeapYear(t) if MonthFromTime(t) = 3𝔽
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case 3:
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return day_within_year(t) - 89 - in_leap_year(t);
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// DayWithinYear(t) - 119𝔽 - InLeapYear(t) if MonthFromTime(t) = 4𝔽
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case 4:
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return day_within_year(t) - 119 - in_leap_year(t);
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// DayWithinYear(t) - 150𝔽 - InLeapYear(t) if MonthFromTime(t) = 5𝔽
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case 5:
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return day_within_year(t) - 150 - in_leap_year(t);
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// DayWithinYear(t) - 180𝔽 - InLeapYear(t) if MonthFromTime(t) = 6𝔽
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case 6:
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return day_within_year(t) - 180 - in_leap_year(t);
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// DayWithinYear(t) - 211𝔽 - InLeapYear(t) if MonthFromTime(t) = 7𝔽
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case 7:
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return day_within_year(t) - 211 - in_leap_year(t);
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// DayWithinYear(t) - 242𝔽 - InLeapYear(t) if MonthFromTime(t) = 8𝔽
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case 8:
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return day_within_year(t) - 242 - in_leap_year(t);
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// DayWithinYear(t) - 272𝔽 - InLeapYear(t) if MonthFromTime(t) = 9𝔽
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case 9:
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return day_within_year(t) - 272 - in_leap_year(t);
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// DayWithinYear(t) - 303𝔽 - InLeapYear(t) if MonthFromTime(t) = 10𝔽
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case 10:
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return day_within_year(t) - 303 - in_leap_year(t);
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// DayWithinYear(t) - 333𝔽 - InLeapYear(t) if MonthFromTime(t) = 11𝔽
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case 11:
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return day_within_year(t) - 333 - in_leap_year(t);
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default:
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VERIFY_NOT_REACHED();
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}
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}
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// DaysInYear(y), https://tc39.es/ecma262/#eqn-DaysInYear
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u16 days_in_year(i32 y)
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{
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// 365𝔽 if (ℝ(y) modulo 4) ≠ 0
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if (y % 4 != 0)
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return 365;
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// 366𝔽 if (ℝ(y) modulo 4) = 0 and (ℝ(y) modulo 100) ≠ 0
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if (y % 4 == 0 && y % 100 != 0)
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return 366;
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// 365𝔽 if (ℝ(y) modulo 100) = 0 and (ℝ(y) modulo 400) ≠ 0
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if (y % 100 == 0 && y % 400 != 0)
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return 365;
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// 366𝔽 if (ℝ(y) modulo 400) = 0
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if (y % 400 == 0)
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return 366;
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VERIFY_NOT_REACHED();
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}
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// DayFromYear(y), https://tc39.es/ecma262/#eqn-DaysFromYear
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double day_from_year(i32 y)
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{
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// 𝔽(365 × (ℝ(y) - 1970) + floor((ℝ(y) - 1969) / 4) - floor((ℝ(y) - 1901) / 100) + floor((ℝ(y) - 1601) / 400))
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return 365.0 * (y - 1970) + floor((y - 1969) / 4.0) - floor((y - 1901) / 100.0) + floor((y - 1601) / 400.0);
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}
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// TimeFromYear(y), https://tc39.es/ecma262/#eqn-TimeFromYear
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double time_from_year(i32 y)
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{
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// msPerDay × DayFromYear(y)
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return ms_per_day * day_from_year(y);
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}
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// YearFromTime(t), https://tc39.es/ecma262/#eqn-YearFromTime
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i32 year_from_time(double t)
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{
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// the largest integral Number y (closest to +∞) such that TimeFromYear(y) ≤ t
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if (!Value(t).is_finite_number())
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return NumericLimits<i32>::max();
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// Approximation using average number of milliseconds per year. We might have to adjust this guess afterwards.
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auto year = static_cast<i32>(t / (365.2425 * ms_per_day) + 1970);
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auto year_t = time_from_year(year);
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if (year_t > t)
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year--;
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else if (year_t + days_in_year(year) * ms_per_day <= t)
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year++;
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return year;
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}
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// InLeapYear(t), https://tc39.es/ecma262/#eqn-InLeapYear
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bool in_leap_year(double t)
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{
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// +0𝔽 if DaysInYear(YearFromTime(t)) = 365𝔽
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// 1𝔽 if DaysInYear(YearFromTime(t)) = 366𝔽
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return days_in_year(year_from_time(t)) == 366;
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}
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// MonthFromTime(t), https://tc39.es/ecma262/#eqn-MonthFromTime
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u8 month_from_time(double t)
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{
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auto in_leap_year = JS::in_leap_year(t);
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auto day_within_year = JS::day_within_year(t);
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// +0𝔽 if +0𝔽 ≤ DayWithinYear(t) < 31𝔽
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if (day_within_year < 31)
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return 0;
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// 1𝔽 if 31𝔽 ≤ DayWithinYear(t) < 59𝔽 + InLeapYear(t)
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if (31 <= day_within_year && day_within_year < 59 + in_leap_year)
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return 1;
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// 2𝔽 if 59𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 90𝔽 + InLeapYear(t)
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if (59 + in_leap_year <= day_within_year && day_within_year < 90 + in_leap_year)
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return 2;
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// 3𝔽 if 90𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 120𝔽 + InLeapYear(t)
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if (90 + in_leap_year <= day_within_year && day_within_year < 120 + in_leap_year)
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return 3;
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// 4𝔽 if 120𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 151𝔽 + InLeapYear(t)
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if (120 + in_leap_year <= day_within_year && day_within_year < 151 + in_leap_year)
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return 4;
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// 5𝔽 if 151𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 181𝔽 + InLeapYear(t)
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if (151 + in_leap_year <= day_within_year && day_within_year < 181 + in_leap_year)
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return 5;
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// 6𝔽 if 181𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 212𝔽 + InLeapYear(t)
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if (181 + in_leap_year <= day_within_year && day_within_year < 212 + in_leap_year)
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return 6;
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// 7𝔽 if 212𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 243𝔽 + InLeapYear(t)
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if (212 + in_leap_year <= day_within_year && day_within_year < 243 + in_leap_year)
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return 7;
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// 8𝔽 if 243𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 273𝔽 + InLeapYear(t)
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if (243 + in_leap_year <= day_within_year && day_within_year < 273 + in_leap_year)
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return 8;
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// 9𝔽 if 273𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 304𝔽 + InLeapYear(t)
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if (273 + in_leap_year <= day_within_year && day_within_year < 304 + in_leap_year)
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return 9;
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// 10𝔽 if 304𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 334𝔽 + InLeapYear(t)
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if (304 + in_leap_year <= day_within_year && day_within_year < 334 + in_leap_year)
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return 10;
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// 11𝔽 if 334𝔽 + InLeapYear(t) ≤ DayWithinYear(t) < 365𝔽 + InLeapYear(t)
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if (334 + in_leap_year <= day_within_year && day_within_year < 365 + in_leap_year)
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return 11;
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VERIFY_NOT_REACHED();
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}
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// HourFromTime(t), https://tc39.es/ecma262/#eqn-HourFromTime
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u8 hour_from_time(double t)
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{
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if (!Value(t).is_finite_number())
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return 0;
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// 𝔽(floor(ℝ(t / msPerHour)) modulo HoursPerDay)
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return static_cast<u8>(modulo(floor(t / ms_per_hour), hours_per_day));
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}
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// MinFromTime(t), https://tc39.es/ecma262/#eqn-MinFromTime
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u8 min_from_time(double t)
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{
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if (!Value(t).is_finite_number())
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return 0;
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// 𝔽(floor(ℝ(t / msPerMinute)) modulo MinutesPerHour)
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return static_cast<u8>(modulo(floor(t / ms_per_minute), minutes_per_hour));
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}
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// SecFromTime(t), https://tc39.es/ecma262/#eqn-SecFromTime
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u8 sec_from_time(double t)
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{
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if (!Value(t).is_finite_number())
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return 0;
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// 𝔽(floor(ℝ(t / msPerSecond)) modulo SecondsPerMinute)
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return static_cast<u8>(modulo(floor(t / ms_per_second), seconds_per_minute));
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}
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// msFromTime(t), https://tc39.es/ecma262/#eqn-msFromTime
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u16 ms_from_time(double t)
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{
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if (!Value(t).is_finite_number())
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return 0;
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// 𝔽(ℝ(t) modulo ℝ(msPerSecond))
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return static_cast<u16>(modulo(t, ms_per_second));
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}
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// 21.4.1.6 Week Day, https://tc39.es/ecma262/#sec-week-day
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u8 week_day(double t)
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{
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if (!Value(t).is_finite_number())
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return 0;
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// 𝔽(ℝ(Day(t) + 4𝔽) modulo 7)
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return static_cast<u8>(modulo(day(t) + 4, 7));
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}
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// 21.4.1.7 LocalTZA ( t, isUTC ), https://tc39.es/ecma262/#sec-local-time-zone-adjustment
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double local_tza(double time, [[maybe_unused]] bool is_utc, Optional<StringView> time_zone_override)
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{
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// The time_zone_override parameter is non-standard, but allows callers to override the system
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// time zone with a specific value without setting environment variables.
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auto time_zone = time_zone_override.value_or(TimeZone::current_time_zone());
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// When isUTC is true, LocalTZA( tUTC, true ) should return the offset of the local time zone from
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// UTC measured in milliseconds at time represented by time value tUTC. When the result is added to
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// tUTC, it should yield the corresponding Number tlocal.
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// When isUTC is false, LocalTZA( tlocal, false ) should return the offset of the local time zone from
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// UTC measured in milliseconds at local time represented by Number tlocal. When the result is subtracted
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// from tlocal, it should yield the corresponding time value tUTC.
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auto time_since_epoch = Value(time).is_finite_number() ? AK::Time::from_milliseconds(time) : AK::Time::max();
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auto maybe_offset = TimeZone::get_time_zone_offset(time_zone, time_since_epoch);
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return maybe_offset.has_value() ? static_cast<double>(maybe_offset->seconds) * 1000 : 0;
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}
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// 21.4.1.8 LocalTime ( t ), https://tc39.es/ecma262/#sec-localtime
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double local_time(double time)
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{
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// 1. Return t + LocalTZA(t, true).
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return time + local_tza(time, true);
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}
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// 21.4.1.9 UTC ( t ), https://tc39.es/ecma262/#sec-utc-t
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double utc_time(double time)
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{
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// 1. Return t - LocalTZA(t, false).
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return time - local_tza(time, false);
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}
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// 21.4.1.11 MakeTime ( hour, min, sec, ms ), https://tc39.es/ecma262/#sec-maketime
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double make_time(double hour, double min, double sec, double ms)
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{
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// 1. If hour is not finite or min is not finite or sec is not finite or ms is not finite, return NaN.
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if (!isfinite(hour) || !isfinite(min) || !isfinite(sec) || !isfinite(ms))
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return NAN;
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// 2. Let h be 𝔽(! ToIntegerOrInfinity(hour)).
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auto h = to_integer_or_infinity(hour);
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// 3. Let m be 𝔽(! ToIntegerOrInfinity(min)).
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auto m = to_integer_or_infinity(min);
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// 4. Let s be 𝔽(! ToIntegerOrInfinity(sec)).
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auto s = to_integer_or_infinity(sec);
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// 5. Let milli be 𝔽(! ToIntegerOrInfinity(ms)).
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auto milli = to_integer_or_infinity(ms);
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// 6. Let t be ((h * msPerHour + m * msPerMinute) + s * msPerSecond) + milli, performing the arithmetic according to IEEE 754-2019 rules (that is, as if using the ECMAScript operators * and +).
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// NOTE: C++ arithmetic abides by IEEE 754 rules
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auto t = ((h * ms_per_hour + m * ms_per_minute) + s * ms_per_second) + milli;
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// 7. Return t.
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return t;
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}
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// Day(t), https://tc39.es/ecma262/#eqn-Day
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double day(double time_value)
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{
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return floor(time_value / ms_per_day);
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}
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// TimeWithinDay(t), https://tc39.es/ecma262/#eqn-TimeWithinDay
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double time_within_day(double time)
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{
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// 𝔽(ℝ(t) modulo ℝ(msPerDay))
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return modulo(time, ms_per_day);
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}
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// 21.4.1.12 MakeDay ( year, month, date ), https://tc39.es/ecma262/#sec-makeday
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double make_day(double year, double month, double date)
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{
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// 1. If year is not finite or month is not finite or date is not finite, return NaN.
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if (!isfinite(year) || !isfinite(month) || !isfinite(date))
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return NAN;
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// 2. Let y be 𝔽(! ToIntegerOrInfinity(year)).
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auto y = to_integer_or_infinity(year);
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// 3. Let m be 𝔽(! ToIntegerOrInfinity(month)).
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auto m = to_integer_or_infinity(month);
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// 4. Let dt be 𝔽(! ToIntegerOrInfinity(date)).
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auto dt = to_integer_or_infinity(date);
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// 5. Let ym be y + 𝔽(floor(ℝ(m) / 12)).
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auto ym = y + floor(m / 12);
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// 6. If ym is not finite, return NaN.
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if (!isfinite(ym))
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return NAN;
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// 7. Let mn be 𝔽(ℝ(m) modulo 12).
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auto mn = modulo(m, 12);
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// 8. Find a finite time value t such that YearFromTime(t) is ym and MonthFromTime(t) is mn and DateFromTime(t) is 1𝔽; but if this is not possible (because some argument is out of range), return NaN.
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if (!AK::is_within_range<int>(ym) || !AK::is_within_range<int>(mn + 1))
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return NAN;
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// FIXME: We are avoiding AK::years_to_days_since_epoch here because it is implemented by looping over
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// the range [1970, ym), which will spin for any time value with an extremely large year.
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auto t = time_from_year(ym) + (day_of_year(static_cast<int>(ym), static_cast<int>(mn) + 1, 1) * ms_per_day);
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// 9. Return Day(t) + dt - 1𝔽.
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return day(static_cast<double>(t)) + dt - 1;
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}
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// 21.4.1.13 MakeDate ( day, time ), https://tc39.es/ecma262/#sec-makedate
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double make_date(double day, double time)
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{
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// 1. If day is not finite or time is not finite, return NaN.
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if (!isfinite(day) || !isfinite(time))
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return NAN;
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// 2. Let tv be day × msPerDay + time.
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auto tv = day * ms_per_day + time;
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// 3. If tv is not finite, return NaN.
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if (!isfinite(tv))
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return NAN;
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// 4. Return tv.
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return tv;
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}
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// 21.4.1.14 TimeClip ( time ), https://tc39.es/ecma262/#sec-timeclip
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double time_clip(double time)
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{
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// 1. If time is not finite, return NaN.
|
||
if (!isfinite(time))
|
||
return NAN;
|
||
|
||
// 2. If abs(ℝ(time)) > 8.64 × 10^15, return NaN.
|
||
if (fabs(time) > 8.64E15)
|
||
return NAN;
|
||
|
||
// 3. Return 𝔽(! ToIntegerOrInfinity(time)).
|
||
return to_integer_or_infinity(time);
|
||
}
|
||
|
||
}
|