PlainTime.cpp 28 KB

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  1. /*
  2. * Copyright (c) 2021, Idan Horowitz <idan.horowitz@serenityos.org>
  3. * Copyright (c) 2021-2022, Linus Groh <linusg@serenityos.org>
  4. *
  5. * SPDX-License-Identifier: BSD-2-Clause
  6. */
  7. #include <LibJS/Runtime/AbstractOperations.h>
  8. #include <LibJS/Runtime/GlobalObject.h>
  9. #include <LibJS/Runtime/Object.h>
  10. #include <LibJS/Runtime/Temporal/AbstractOperations.h>
  11. #include <LibJS/Runtime/Temporal/Calendar.h>
  12. #include <LibJS/Runtime/Temporal/Duration.h>
  13. #include <LibJS/Runtime/Temporal/Instant.h>
  14. #include <LibJS/Runtime/Temporal/PlainDateTime.h>
  15. #include <LibJS/Runtime/Temporal/PlainTime.h>
  16. #include <LibJS/Runtime/Temporal/PlainTimeConstructor.h>
  17. #include <LibJS/Runtime/Temporal/TimeZone.h>
  18. #include <LibJS/Runtime/Temporal/ZonedDateTime.h>
  19. namespace JS::Temporal {
  20. // 4 Temporal.PlainTime Objects, https://tc39.es/proposal-temporal/#sec-temporal-plaintime-objects
  21. PlainTime::PlainTime(u8 iso_hour, u8 iso_minute, u8 iso_second, u16 iso_millisecond, u16 iso_microsecond, u16 iso_nanosecond, Calendar& calendar, Object& prototype)
  22. : Object(prototype)
  23. , m_iso_hour(iso_hour)
  24. , m_iso_minute(iso_minute)
  25. , m_iso_second(iso_second)
  26. , m_iso_millisecond(iso_millisecond)
  27. , m_iso_microsecond(iso_microsecond)
  28. , m_iso_nanosecond(iso_nanosecond)
  29. , m_calendar(calendar)
  30. {
  31. }
  32. void PlainTime::visit_edges(Visitor& visitor)
  33. {
  34. Base::visit_edges(visitor);
  35. visitor.visit(&m_calendar);
  36. }
  37. // 4.5.1 DifferenceTime ( h1, min1, s1, ms1, mus1, ns1, h2, min2, s2, ms2, mus2, ns2 ), https://tc39.es/proposal-temporal/#sec-temporal-differencetime
  38. TimeDurationRecord difference_time(u8 hour1, u8 minute1, u8 second1, u16 millisecond1, u16 microsecond1, u16 nanosecond1, u8 hour2, u8 minute2, u8 second2, u16 millisecond2, u16 microsecond2, u16 nanosecond2)
  39. {
  40. // 1. Let hours be h2 − h1.
  41. auto hours = hour2 - hour1;
  42. // 2. Let minutes be min2 − min1.
  43. auto minutes = minute2 - minute1;
  44. // 3. Let seconds be s2 − s1.
  45. auto seconds = second2 - second1;
  46. // 4. Let milliseconds be ms2 − ms1.
  47. auto milliseconds = millisecond2 - millisecond1;
  48. // 5. Let microseconds be mus2 − mus1.
  49. auto microseconds = microsecond2 - microsecond1;
  50. // 6. Let nanoseconds be ns2 − ns1.
  51. auto nanoseconds = nanosecond2 - nanosecond1;
  52. // 7. Let sign be ! DurationSign(0, 0, 0, 0, hours, minutes, seconds, milliseconds, microseconds, nanoseconds).
  53. auto sign = duration_sign(0, 0, 0, 0, hours, minutes, seconds, milliseconds, microseconds, nanoseconds);
  54. // 8. Let bt be ! BalanceTime(hours × sign, minutes × sign, seconds × sign, milliseconds × sign, microseconds × sign, nanoseconds × sign).
  55. auto bt = balance_time(hours * sign, minutes * sign, seconds * sign, milliseconds * sign, microseconds * sign, nanoseconds * sign);
  56. // 9. Return ! CreateTimeDurationRecord(bt.[[Days]] × sign, bt.[[Hour]] × sign, bt.[[Minute]] × sign, bt.[[Second]] × sign, bt.[[Millisecond]] × sign, bt.[[Microsecond]] × sign, bt.[[Nanosecond]] × sign).
  57. return create_time_duration_record(static_cast<double>(bt.days * sign), static_cast<double>(bt.hour * sign), static_cast<double>(bt.minute * sign), static_cast<double>(bt.second * sign), static_cast<double>(bt.millisecond * sign), static_cast<double>(bt.microsecond * sign), static_cast<double>(bt.nanosecond * sign));
  58. }
  59. // 4.5.2 ToTemporalTime ( item [ , overflow ] ), https://tc39.es/proposal-temporal/#sec-temporal-totemporaltime
  60. ThrowCompletionOr<PlainTime*> to_temporal_time(GlobalObject& global_object, Value item, Optional<StringView> overflow)
  61. {
  62. auto& vm = global_object.vm();
  63. // 1. If overflow is not present, set overflow to "constrain".
  64. if (!overflow.has_value())
  65. overflow = "constrain"sv;
  66. // 2. Assert: overflow is either "constrain" or "reject".
  67. VERIFY(overflow == "constrain"sv || overflow == "reject"sv);
  68. Optional<TemporalTime> result;
  69. // 3. If Type(item) is Object, then
  70. if (item.is_object()) {
  71. auto& item_object = item.as_object();
  72. // a. If item has an [[InitializedTemporalTime]] internal slot, then
  73. if (is<PlainTime>(item_object)) {
  74. // i. Return item.
  75. return &static_cast<PlainTime&>(item_object);
  76. }
  77. // b. If item has an [[InitializedTemporalZonedDateTime]] internal slot, then
  78. if (is<ZonedDateTime>(item_object)) {
  79. auto& zoned_date_time = static_cast<ZonedDateTime&>(item_object);
  80. // i. Let instant be ! CreateTemporalInstant(item.[[Nanoseconds]]).
  81. auto* instant = create_temporal_instant(global_object, zoned_date_time.nanoseconds()).release_value();
  82. // ii. Set plainDateTime to ? BuiltinTimeZoneGetPlainDateTimeFor(item.[[TimeZone]], instant, item.[[Calendar]]).
  83. auto* plain_date_time = TRY(builtin_time_zone_get_plain_date_time_for(global_object, &zoned_date_time.time_zone(), *instant, zoned_date_time.calendar()));
  84. // iii. Return ! CreateTemporalTime(plainDateTime.[[ISOHour]], plainDateTime.[[ISOMinute]], plainDateTime.[[ISOSecond]], plainDateTime.[[ISOMillisecond]], plainDateTime.[[ISOMicrosecond]], plainDateTime.[[ISONanosecond]]).
  85. return TRY(create_temporal_time(global_object, plain_date_time->iso_hour(), plain_date_time->iso_minute(), plain_date_time->iso_second(), plain_date_time->iso_millisecond(), plain_date_time->iso_microsecond(), plain_date_time->iso_nanosecond()));
  86. }
  87. // c. If item has an [[InitializedTemporalDateTime]] internal slot, then
  88. if (is<PlainDateTime>(item_object)) {
  89. auto& plain_date_time = static_cast<PlainDateTime&>(item_object);
  90. // i. Return ! CreateTemporalTime(item.[[ISOHour]], item.[[ISOMinute]], item.[[ISOSecond]], item.[[ISOMillisecond]], item.[[ISOMicrosecond]], item.[[ISONanosecond]]).
  91. return TRY(create_temporal_time(global_object, plain_date_time.iso_hour(), plain_date_time.iso_minute(), plain_date_time.iso_second(), plain_date_time.iso_millisecond(), plain_date_time.iso_microsecond(), plain_date_time.iso_nanosecond()));
  92. }
  93. // d. Let calendar be ? GetTemporalCalendarWithISODefault(item).
  94. auto* calendar = TRY(get_temporal_calendar_with_iso_default(global_object, item_object));
  95. // e. If ? ToString(calendar) is not "iso8601", then
  96. auto calendar_identifier = TRY(Value(calendar).to_string(global_object));
  97. if (calendar_identifier != "iso8601"sv) {
  98. // i. Throw a RangeError exception.
  99. return vm.throw_completion<RangeError>(global_object, ErrorType::TemporalInvalidCalendarIdentifier, calendar_identifier);
  100. }
  101. // f. Let result be ? ToTemporalTimeRecord(item).
  102. auto unregulated_result = TRY(to_temporal_time_record(global_object, item_object));
  103. // g. Set result to ? RegulateTime(result.[[Hour]], result.[[Minute]], result.[[Second]], result.[[Millisecond]], result.[[Microsecond]], result.[[Nanosecond]], overflow).
  104. result = TRY(regulate_time(global_object, unregulated_result.hour, unregulated_result.minute, unregulated_result.second, unregulated_result.millisecond, unregulated_result.microsecond, unregulated_result.nanosecond, *overflow));
  105. }
  106. // 4. Else,
  107. else {
  108. // a. Let string be ? ToString(item).
  109. auto string = TRY(item.to_string(global_object));
  110. // b. Let result be ? ParseTemporalTimeString(string).
  111. result = TRY(parse_temporal_time_string(global_object, string));
  112. // c. Assert: IsValidTime(result.[[Hour]], result.[[Minute]], result.[[Second]], result.[[Millisecond]], result.[[Microsecond]], result.[[Nanosecond]]) is true.
  113. VERIFY(is_valid_time(result->hour, result->minute, result->second, result->millisecond, result->microsecond, result->nanosecond));
  114. // d. If result.[[Calendar]] is not one of undefined or "iso8601", then
  115. if (result->calendar.has_value() && *result->calendar != "iso8601"sv) {
  116. // i. Throw a RangeError exception.
  117. return vm.throw_completion<RangeError>(global_object, ErrorType::TemporalInvalidCalendarIdentifier, *result->calendar);
  118. }
  119. }
  120. // 5. Return ? CreateTemporalTime(result.[[Hour]], result.[[Minute]], result.[[Second]], result.[[Millisecond]], result.[[Microsecond]], result.[[Nanosecond]]).
  121. return TRY(create_temporal_time(global_object, result->hour, result->minute, result->second, result->millisecond, result->microsecond, result->nanosecond));
  122. }
  123. // 4.5.3 ToPartialTime ( temporalTimeLike ), https://tc39.es/proposal-temporal/#sec-temporal-topartialtime
  124. ThrowCompletionOr<PartialUnregulatedTemporalTime> to_partial_time(GlobalObject& global_object, Object& temporal_time_like)
  125. {
  126. auto& vm = global_object.vm();
  127. // 1. Assert: Type(temporalTimeLike) is Object.
  128. // 2. Let result be the Record { [[Hour]]: undefined, [[Minute]]: undefined, [[Second]]: undefined, [[Millisecond]]: undefined, [[Microsecond]]: undefined, [[Nanosecond]]: undefined }.
  129. auto result = PartialUnregulatedTemporalTime {};
  130. // 3. Let any be false.
  131. bool any = false;
  132. // 4. For each row of Table 3, except the header row, in table order, do
  133. for (auto& [internal_slot, property] : temporal_time_like_properties<PartialUnregulatedTemporalTime, Optional<double>>(vm)) {
  134. // a. Let property be the Property value of the current row.
  135. // b. Let value be ? Get(temporalTimeLike, property).
  136. auto value = TRY(temporal_time_like.get(property));
  137. // c. If value is not undefined, then
  138. if (!value.is_undefined()) {
  139. // i. Set any to true.
  140. any = true;
  141. // ii. Set value to ? ToIntegerThrowOnInfinity(value).
  142. auto value_number = TRY(to_integer_throw_on_infinity(global_object, value, ErrorType::TemporalPropertyMustBeFinite));
  143. // iii. Set result's internal slot whose name is the Internal Slot value of the current row to value.
  144. result.*internal_slot = value_number;
  145. }
  146. }
  147. // 5. If any is false, then
  148. if (!any) {
  149. // a. Throw a TypeError exception.
  150. return vm.throw_completion<TypeError>(global_object, ErrorType::TemporalInvalidPlainTimeLikeObject);
  151. }
  152. // 6. Return result.
  153. return result;
  154. }
  155. // 4.5.4 RegulateTime ( hour, minute, second, millisecond, microsecond, nanosecond, overflow ), https://tc39.es/proposal-temporal/#sec-temporal-regulatetime
  156. ThrowCompletionOr<TemporalTime> regulate_time(GlobalObject& global_object, double hour, double minute, double second, double millisecond, double microsecond, double nanosecond, StringView overflow)
  157. {
  158. auto& vm = global_object.vm();
  159. // 1. Assert: hour, minute, second, millisecond, microsecond and nanosecond are integers.
  160. // NOTE: As the spec is currently written this assertion can fail, these are either integers _or_ infinity.
  161. // See https://github.com/tc39/proposal-temporal/issues/1672.
  162. // 2. Assert: overflow is either "constrain" or "reject".
  163. // NOTE: Asserted by the VERIFY_NOT_REACHED at the end
  164. // 3. If overflow is "constrain", then
  165. if (overflow == "constrain"sv) {
  166. // a. Return ! ConstrainTime(hour, minute, second, millisecond, microsecond, nanosecond).
  167. return constrain_time(hour, minute, second, millisecond, microsecond, nanosecond);
  168. }
  169. // 4. If overflow is "reject", then
  170. if (overflow == "reject"sv) {
  171. // a. If IsValidTime(hour, minute, second, millisecond, microsecond, nanosecond) is false, throw a RangeError exception.
  172. if (!is_valid_time(hour, minute, second, millisecond, microsecond, nanosecond))
  173. return vm.throw_completion<RangeError>(global_object, ErrorType::TemporalInvalidPlainTime);
  174. // b. Return the Record { [[Hour]]: hour, [[Minute]]: minute, [[Second]]: second, [[Millisecond]]: millisecond, [[Microsecond]]: microsecond, [[Nanosecond]]: nanosecond }.
  175. return TemporalTime { .hour = static_cast<u8>(hour), .minute = static_cast<u8>(minute), .second = static_cast<u8>(second), .millisecond = static_cast<u16>(millisecond), .microsecond = static_cast<u16>(microsecond), .nanosecond = static_cast<u16>(nanosecond) };
  176. }
  177. VERIFY_NOT_REACHED();
  178. }
  179. // 4.5.5 IsValidTime ( hour, minute, second, millisecond, microsecond, nanosecond ), https://tc39.es/proposal-temporal/#sec-temporal-isvalidtime
  180. bool is_valid_time(double hour, double minute, double second, double millisecond, double microsecond, double nanosecond)
  181. {
  182. // 1. If hour < 0 or hour > 23, then
  183. if (hour > 23) {
  184. // a. Return false.
  185. return false;
  186. }
  187. // 2. If minute < 0 or minute > 59, then
  188. if (minute > 59) {
  189. // a. Return false.
  190. return false;
  191. }
  192. // 3. If second < 0 or second > 59, then
  193. if (second > 59) {
  194. // a. Return false.
  195. return false;
  196. }
  197. // 4. If millisecond < 0 or millisecond > 999, then
  198. if (millisecond > 999) {
  199. // a. Return false.
  200. return false;
  201. }
  202. // 5. If microsecond < 0 or microsecond > 999, then
  203. if (microsecond > 999) {
  204. // a. Return false.
  205. return false;
  206. }
  207. // 6. If nanosecond < 0 or nanosecond > 999, then
  208. if (nanosecond > 999) {
  209. // a. Return false.
  210. return false;
  211. }
  212. // 7. Return true.
  213. return true;
  214. }
  215. // 4.5.6 BalanceTime ( hour, minute, second, millisecond, microsecond, nanosecond ), https://tc39.es/proposal-temporal/#sec-temporal-balancetime
  216. DaysAndTime balance_time(double hour, double minute, double second, double millisecond, double microsecond, double nanosecond)
  217. {
  218. // 1. Assert: hour, minute, second, millisecond, microsecond, and nanosecond are integers.
  219. VERIFY(hour == trunc(hour) && minute == trunc(minute) && second == trunc(second) && millisecond == trunc(millisecond) && microsecond == trunc(microsecond) && nanosecond == trunc(nanosecond));
  220. // 2. Set microsecond to microsecond + floor(nanosecond / 1000).
  221. microsecond += floor(nanosecond / 1000);
  222. // 3. Set nanosecond to nanosecond modulo 1000.
  223. nanosecond = modulo(nanosecond, 1000);
  224. // 4. Set millisecond to millisecond + floor(microsecond / 1000).
  225. millisecond += floor(microsecond / 1000);
  226. // 5. Set microsecond to microsecond modulo 1000.
  227. microsecond = modulo(microsecond, 1000);
  228. // 6. Set second to second + floor(millisecond / 1000).
  229. second += floor(millisecond / 1000);
  230. // 7. Set millisecond to millisecond modulo 1000.
  231. millisecond = modulo(millisecond, 1000);
  232. // 8. Set minute to minute + floor(second / 60).
  233. minute += floor(second / 60);
  234. // 9. Set second to second modulo 60.
  235. second = modulo(second, 60);
  236. // 10. Set hour to hour + floor(minute / 60).
  237. hour += floor(minute / 60);
  238. // 11. Set minute to minute modulo 60.
  239. minute = modulo(minute, 60);
  240. // 12. Let days be floor(hour / 24).
  241. auto days = floor(hour / 24);
  242. // 13. Set hour to hour modulo 24.
  243. hour = modulo(hour, 24);
  244. // 14. Return the Record { [[Days]]: days, [[Hour]]: hour, [[Minute]]: minute, [[Second]]: second, [[Millisecond]]: millisecond, [[Microsecond]]: microsecond, [[Nanosecond]]: nanosecond }.
  245. return DaysAndTime {
  246. .days = static_cast<i32>(days),
  247. .hour = static_cast<u8>(hour),
  248. .minute = static_cast<u8>(minute),
  249. .second = static_cast<u8>(second),
  250. .millisecond = static_cast<u16>(millisecond),
  251. .microsecond = static_cast<u16>(microsecond),
  252. .nanosecond = static_cast<u16>(nanosecond),
  253. };
  254. }
  255. // 4.5.7 ConstrainTime ( hour, minute, second, millisecond, microsecond, nanosecond ), https://tc39.es/proposal-temporal/#sec-temporal-constraintime
  256. TemporalTime constrain_time(double hour, double minute, double second, double millisecond, double microsecond, double nanosecond)
  257. {
  258. // 1. Assert: hour, minute, second, millisecond, microsecond, and nanosecond are integers.
  259. // 2. Set hour to the result of clamping hour between 0 and 23.
  260. hour = clamp(hour, 0, 23);
  261. // 3. Set minute to the result of clamping minute between 0 and 59.
  262. minute = clamp(minute, 0, 59);
  263. // 4. Set second to the result of clamping second between 0 and 59.
  264. second = clamp(second, 0, 59);
  265. // 5. Set millisecond to the result of clamping millisecond between 0 and 999.
  266. millisecond = clamp(millisecond, 0, 999);
  267. // 6. Set microsecond to the result of clamping microsecond between 0 and 999.
  268. microsecond = clamp(microsecond, 0, 999);
  269. // 7. Set nanosecond to the result of clamping nanosecond between 0 and 999.
  270. nanosecond = clamp(nanosecond, 0, 999);
  271. // 8. Return the Record { [[Hour]]: hour, [[Minute]]: minute, [[Second]]: second, [[Millisecond]]: millisecond, [[Microsecond]]: microsecond, [[Nanosecond]]: nanosecond }.
  272. return TemporalTime { .hour = static_cast<u8>(hour), .minute = static_cast<u8>(minute), .second = static_cast<u8>(second), .millisecond = static_cast<u16>(millisecond), .microsecond = static_cast<u16>(microsecond), .nanosecond = static_cast<u16>(nanosecond) };
  273. }
  274. // 4.5.8 CreateTemporalTime ( hour, minute, second, millisecond, microsecond, nanosecond [ , newTarget ] ), https://tc39.es/proposal-temporal/#sec-temporal-createtemporaltime
  275. ThrowCompletionOr<PlainTime*> create_temporal_time(GlobalObject& global_object, u8 hour, u8 minute, u8 second, u16 millisecond, u16 microsecond, u16 nanosecond, FunctionObject const* new_target)
  276. {
  277. auto& vm = global_object.vm();
  278. // 1. Assert: hour, minute, second, millisecond, microsecond and nanosecond are integers.
  279. // 2. If IsValidTime(hour, minute, second, millisecond, microsecond, nanosecond) is false, throw a RangeError exception.
  280. if (!is_valid_time(hour, minute, second, millisecond, microsecond, nanosecond))
  281. return vm.throw_completion<RangeError>(global_object, ErrorType::TemporalInvalidPlainTime);
  282. // 3. If newTarget is not present, set newTarget to %Temporal.PlainTime%.
  283. if (!new_target)
  284. new_target = global_object.temporal_plain_time_constructor();
  285. // 4. Let object be ? OrdinaryCreateFromConstructor(newTarget, "%Temporal.PlainTime.prototype%", « [[InitializedTemporalTime]], [[ISOHour]], [[ISOMinute]], [[ISOSecond]], [[ISOMillisecond]], [[ISOMicrosecond]], [[ISONanosecond]], [[Calendar]] »).
  286. // 5. Set object.[[ISOHour]] to hour.
  287. // 6. Set object.[[ISOMinute]] to minute.
  288. // 7. Set object.[[ISOSecond]] to second.
  289. // 8. Set object.[[ISOMillisecond]] to millisecond.
  290. // 9. Set object.[[ISOMicrosecond]] to microsecond.
  291. // 10. Set object.[[ISONanosecond]] to nanosecond.
  292. // 11. Set object.[[Calendar]] to ! GetISO8601Calendar().
  293. auto* object = TRY(ordinary_create_from_constructor<PlainTime>(global_object, *new_target, &GlobalObject::temporal_plain_time_prototype, hour, minute, second, millisecond, microsecond, nanosecond, *get_iso8601_calendar(global_object)));
  294. // 12. Return object.
  295. return object;
  296. }
  297. // 4.5.9 ToTemporalTimeRecord ( temporalTimeLike ), https://tc39.es/proposal-temporal/#sec-temporal-totemporaltimerecord
  298. ThrowCompletionOr<UnregulatedTemporalTime> to_temporal_time_record(GlobalObject& global_object, Object const& temporal_time_like)
  299. {
  300. auto& vm = global_object.vm();
  301. // 1. Assert: Type(temporalTimeLike) is Object.
  302. // 2. Let result be the Record { [[Hour]]: undefined, [[Minute]]: undefined, [[Second]]: undefined, [[Millisecond]]: undefined, [[Microsecond]]: undefined, [[Nanosecond]]: undefined }.
  303. auto result = UnregulatedTemporalTime {};
  304. // 3. Let any be false.
  305. auto any = false;
  306. // 4. For each row of Table 3, except the header row, in table order, do
  307. for (auto& [internal_slot, property] : temporal_time_like_properties<UnregulatedTemporalTime, double>(vm)) {
  308. // a. Let property be the Property value of the current row.
  309. // b. Let value be ? Get(temporalTimeLike, property).
  310. auto value = TRY(temporal_time_like.get(property));
  311. // c. If value is not undefined, then
  312. if (!value.is_undefined()) {
  313. // i. Set any to true.
  314. any = true;
  315. }
  316. // d. Set value to ? ToIntegerThrowOnInfinity(value).
  317. auto value_number = TRY(to_integer_throw_on_infinity(global_object, value, ErrorType::TemporalPropertyMustBeFinite));
  318. // e. Set result's internal slot whose name is the Internal Slot value of the current row to value.
  319. result.*internal_slot = value_number;
  320. }
  321. // 5. If any is false, then
  322. if (!any) {
  323. // a. Throw a TypeError exception.
  324. return vm.throw_completion<TypeError>(global_object, ErrorType::TemporalInvalidPlainTimeLikeObject);
  325. }
  326. // 6. Return result.
  327. return result;
  328. }
  329. // 4.5.10 TemporalTimeToString ( hour, minute, second, millisecond, microsecond, nanosecond, precision ), https://tc39.es/proposal-temporal/#sec-temporal-temporaltimetostring
  330. String temporal_time_to_string(u8 hour, u8 minute, u8 second, u16 millisecond, u16 microsecond, u16 nanosecond, Variant<StringView, u8> const& precision)
  331. {
  332. // 1. Assert: hour, minute, second, millisecond, microsecond and nanosecond are integers.
  333. // 2. Let hour be ToZeroPaddedDecimalString(hour, 2).
  334. // 3. Let minute be ToZeroPaddedDecimalString(minute, 2).
  335. // 4. Let seconds be ! FormatSecondsStringPart(second, millisecond, microsecond, nanosecond, precision).
  336. auto seconds = format_seconds_string_part(second, millisecond, microsecond, nanosecond, precision);
  337. // 5. Return the string-concatenation of hour, the code unit 0x003A (COLON), minute, and seconds.
  338. return String::formatted("{:02}:{:02}{}", hour, minute, seconds);
  339. }
  340. // 4.5.11 CompareTemporalTime ( h1, min1, s1, ms1, mus1, ns1, h2, min2, s2, ms2, mus2, ns2 ), https://tc39.es/proposal-temporal/#sec-temporal-comparetemporaltime
  341. i8 compare_temporal_time(u8 hour1, u8 minute1, u8 second1, u16 millisecond1, u16 microsecond1, u16 nanosecond1, u8 hour2, u8 minute2, u8 second2, u16 millisecond2, u16 microsecond2, u16 nanosecond2)
  342. {
  343. // 1. Assert: h1, min1, s1, ms1, mus1, ns1, h2, min2, s2, ms2, mus2, and ns2 are integers.
  344. // 2. If h1 > h2, return 1.
  345. if (hour1 > hour2)
  346. return 1;
  347. // 3. If h1 < h2, return -1.
  348. if (hour1 < hour2)
  349. return -1;
  350. // 4. If min1 > min2, return 1.
  351. if (minute1 > minute2)
  352. return 1;
  353. // 5. If min1 < min2, return -1.
  354. if (minute1 < minute2)
  355. return -1;
  356. // 6. If s1 > s2, return 1.
  357. if (second1 > second2)
  358. return 1;
  359. // 7. If s1 < s2, return -1.
  360. if (second1 < second2)
  361. return -1;
  362. // 8. If ms1 > ms2, return 1.
  363. if (millisecond1 > millisecond2)
  364. return 1;
  365. // 9. If ms1 < ms2, return -1.
  366. if (millisecond1 < millisecond2)
  367. return -1;
  368. // 10. If mus1 > mus2, return 1.
  369. if (microsecond1 > microsecond2)
  370. return 1;
  371. // 11. If mus1 < mus2, return -1.
  372. if (microsecond1 < microsecond2)
  373. return -1;
  374. // 12. If ns1 > ns2, return 1.
  375. if (nanosecond1 > nanosecond2)
  376. return 1;
  377. // 13. If ns1 < ns2, return -1.
  378. if (nanosecond1 < nanosecond2)
  379. return -1;
  380. // 14. Return 0.
  381. return 0;
  382. }
  383. // 4.5.12 AddTime ( hour, minute, second, millisecond, microsecond, nanosecond, hours, minutes, seconds, milliseconds, microseconds, nanoseconds ), https://tc39.es/proposal-temporal/#sec-temporal-addtime
  384. DaysAndTime add_time(u8 hour, u8 minute, u8 second, u16 millisecond, u16 microsecond, u16 nanosecond, double hours, double minutes, double seconds, double milliseconds, double microseconds, double nanoseconds)
  385. {
  386. // 1. Assert: hour, minute, second, millisecond, microsecond, nanosecond, hours, minutes, seconds, milliseconds, microseconds, and nanoseconds are integers.
  387. VERIFY(hours == trunc(hours) && minutes == trunc(minutes) && seconds == trunc(seconds) && milliseconds == trunc(milliseconds) && microseconds == trunc(microseconds) && nanoseconds == trunc(nanoseconds));
  388. // 2. Let hour be hour + hours.
  389. auto hour_ = hour + hours;
  390. // 3. Let minute be minute + minutes.
  391. auto minute_ = minute + minutes;
  392. // 4. Let second be second + seconds.
  393. auto second_ = second + seconds;
  394. // 5. Let millisecond be millisecond + milliseconds.
  395. auto millisecond_ = millisecond + milliseconds;
  396. // 6. Let microsecond be microsecond + microseconds.
  397. auto microsecond_ = microsecond + microseconds;
  398. // 7. Let nanosecond be nanosecond + nanoseconds.
  399. auto nanosecond_ = nanosecond + nanoseconds;
  400. // 8. Return ! BalanceTime(hour, minute, second, millisecond, microsecond, nanosecond).
  401. return balance_time(hour_, minute_, second_, millisecond_, microsecond_, nanosecond_);
  402. }
  403. // 4.5.13 RoundTime ( hour, minute, second, millisecond, microsecond, nanosecond, increment, unit, roundingMode [ , dayLengthNs ] ), https://tc39.es/proposal-temporal/#sec-temporal-roundtime
  404. DaysAndTime round_time(u8 hour, u8 minute, u8 second, u16 millisecond, u16 microsecond, u16 nanosecond, u64 increment, StringView unit, StringView rounding_mode, Optional<double> day_length_ns)
  405. {
  406. // 1. Assert: hour, minute, second, millisecond, microsecond, nanosecond, and increment are integers.
  407. // 2. Let fractionalSecond be nanosecond × 10−9 + microsecond × 10−6 + millisecond × 10−3 + second.
  408. double fractional_second = nanosecond * 0.000000001 + microsecond * 0.000001 + millisecond * 0.001 + second;
  409. double quantity;
  410. // 3. If unit is "day", then
  411. if (unit == "day"sv) {
  412. // a. If dayLengthNs is not present, set dayLengthNs to 8.64 × 10^13.
  413. if (!day_length_ns.has_value())
  414. day_length_ns = 86400000000000;
  415. // b. Let quantity be (((((hour × 60 + minute) × 60 + second) × 1000 + millisecond) × 1000 + microsecond) × 1000 + nanosecond) / dayLengthNs.
  416. quantity = (((((hour * 60 + minute) * 60 + second) * 1000 + millisecond) * 1000 + microsecond) * 1000 + nanosecond) / *day_length_ns;
  417. }
  418. // 4. Else if unit is "hour", then
  419. else if (unit == "hour"sv) {
  420. // a. Let quantity be (fractionalSecond / 60 + minute) / 60 + hour.
  421. quantity = (fractional_second / 60 + minute) / 60 + hour;
  422. }
  423. // 5. Else if unit is "minute", then
  424. else if (unit == "minute"sv) {
  425. // a. Let quantity be fractionalSecond / 60 + minute.
  426. quantity = fractional_second / 60 + minute;
  427. }
  428. // 6. Else if unit is "second", then
  429. else if (unit == "second"sv) {
  430. // a. Let quantity be fractionalSecond.
  431. quantity = fractional_second;
  432. }
  433. // 7. Else if unit is "millisecond", then
  434. else if (unit == "millisecond"sv) {
  435. // a. Let quantity be nanosecond × 10−6 + microsecond × 10−3 + millisecond.
  436. quantity = nanosecond * 0.000001 + 0.001 * microsecond + millisecond;
  437. }
  438. // 8. Else if unit is "microsecond", then
  439. else if (unit == "microsecond"sv) {
  440. // a. Let quantity be nanosecond × 10−3 + microsecond.
  441. quantity = nanosecond * 0.001 + microsecond;
  442. }
  443. // 9. Else,
  444. else {
  445. // a. Assert: unit is "nanosecond".
  446. VERIFY(unit == "nanosecond"sv);
  447. // b. Let quantity be nanosecond.
  448. quantity = nanosecond;
  449. }
  450. // 10. Let result be ! RoundNumberToIncrement(quantity, increment, roundingMode).
  451. auto result = round_number_to_increment(quantity, increment, rounding_mode);
  452. // If unit is "day", then
  453. if (unit == "day"sv) {
  454. // a. Return the Record { [[Days]]: result, [[Hour]]: 0, [[Minute]]: 0, [[Second]]: 0, [[Millisecond]]: 0, [[Microsecond]]: 0, [[Nanosecond]]: 0 }.
  455. return DaysAndTime { .days = (i32)result, .hour = 0, .minute = 0, .second = 0, .millisecond = 0, .microsecond = 0, .nanosecond = 0 };
  456. }
  457. // 12. If unit is "hour", then
  458. if (unit == "hour"sv) {
  459. // a. Return ! BalanceTime(result, 0, 0, 0, 0, 0).
  460. return balance_time(result, 0, 0, 0, 0, 0);
  461. }
  462. // 13. If unit is "minute", then
  463. if (unit == "minute"sv) {
  464. // a. Return ! BalanceTime(hour, result, 0, 0, 0, 0).
  465. return balance_time(hour, result, 0, 0, 0, 0);
  466. }
  467. // 14. If unit is "second", then
  468. if (unit == "second"sv) {
  469. // a. Return ! BalanceTime(hour, minute, result, 0, 0, 0).
  470. return balance_time(hour, minute, result, 0, 0, 0);
  471. }
  472. // 15. If unit is "millisecond", then
  473. if (unit == "millisecond"sv) {
  474. // a. Return ! BalanceTime(hour, minute, second, result, 0, 0).
  475. return balance_time(hour, minute, second, result, 0, 0);
  476. }
  477. // 16. If unit is "microsecond", then
  478. if (unit == "microsecond"sv) {
  479. // a. Return ! BalanceTime(hour, minute, second, millisecond, result, 0).
  480. return balance_time(hour, minute, second, millisecond, result, 0);
  481. }
  482. // 17. Assert: unit is "nanosecond".
  483. VERIFY(unit == "nanosecond"sv);
  484. // 18. Return ! BalanceTime(hour, minute, second, millisecond, microsecond, result).
  485. return balance_time(hour, minute, second, millisecond, microsecond, result);
  486. }
  487. }