1#![allow(clippy::unreadable_literal)]
7#![allow(clippy::many_single_char_names)]
8
9use crate::math::{floor, polynomial};
10use crate::{Error, Result};
11#[cfg(feature = "chrono")]
12use chrono::{Datelike, TimeZone, Timelike};
13
14const SECONDS_PER_DAY: f64 = 86_400.0;
16
17const J2000_JDN: f64 = 2_451_545.0;
19
20const DAYS_PER_CENTURY: f64 = 36_525.0;
22
23#[derive(Debug, Clone, Copy, PartialEq)]
28pub struct JulianDate {
29 jd: f64,
31 delta_t: f64,
33}
34
35impl JulianDate {
36 #[cfg(feature = "chrono")]
50 #[cfg_attr(docsrs, doc(cfg(feature = "chrono")))]
51 pub fn from_datetime<Tz: TimeZone>(
52 datetime: &chrono::DateTime<Tz>,
53 delta_t: f64,
54 ) -> Result<Self> {
55 let utc_datetime = datetime.with_timezone(&chrono::Utc);
57 Self::from_utc(
58 utc_datetime.year(),
59 utc_datetime.month(),
60 utc_datetime.day(),
61 utc_datetime.hour(),
62 utc_datetime.minute(),
63 f64::from(utc_datetime.second()) + f64::from(utc_datetime.nanosecond()) / 1e9,
64 delta_t,
65 )
66 }
67
68 pub fn from_utc(
92 year: i32,
93 month: u32,
94 day: u32,
95 hour: u32,
96 minute: u32,
97 second: f64,
98 delta_t: f64,
99 ) -> Result<Self> {
100 if !(1..=12).contains(&month) {
102 return Err(Error::invalid_datetime("month must be between 1 and 12"));
103 }
104 if !(1..=31).contains(&day) {
105 return Err(Error::invalid_datetime("day must be between 1 and 31"));
106 }
107 if hour > 23 {
108 return Err(Error::invalid_datetime("hour must be between 0 and 23"));
109 }
110 if minute > 59 {
111 return Err(Error::invalid_datetime("minute must be between 0 and 59"));
112 }
113 if !(0.0..60.0).contains(&second) {
114 return Err(Error::invalid_datetime(
115 "second must be between 0 and 59.999...",
116 ));
117 }
118
119 if day > days_in_month(year, month, day)? {
120 return Err(Error::invalid_datetime("day is out of range for month"));
121 }
122
123 let jd = calculate_julian_date(year, month, day, hour, minute, second);
124 Ok(Self { jd, delta_t })
125 }
126
127 pub fn from_utc_simple(
143 year: i32,
144 month: u32,
145 day: u32,
146 hour: u32,
147 minute: u32,
148 second: f64,
149 ) -> Result<Self> {
150 Self::from_utc(year, month, day, hour, minute, second, 0.0)
151 }
152
153 #[must_use]
158 pub const fn julian_date(&self) -> f64 {
159 self.jd
160 }
161
162 #[must_use]
167 pub const fn delta_t(&self) -> f64 {
168 self.delta_t
169 }
170
171 #[must_use]
178 pub fn julian_ephemeris_day(&self) -> f64 {
179 self.jd + self.delta_t / SECONDS_PER_DAY
180 }
181
182 #[must_use]
189 pub fn julian_century(&self) -> f64 {
190 (self.jd - J2000_JDN) / DAYS_PER_CENTURY
191 }
192
193 #[must_use]
200 pub fn julian_ephemeris_century(&self) -> f64 {
201 (self.julian_ephemeris_day() - J2000_JDN) / DAYS_PER_CENTURY
202 }
203
204 #[must_use]
211 pub fn julian_ephemeris_millennium(&self) -> f64 {
212 self.julian_ephemeris_century() / 10.0
213 }
214
215 pub(crate) fn add_days(self, days: f64) -> Self {
217 Self {
218 jd: self.jd + days,
219 delta_t: self.delta_t,
220 }
221 }
222}
223
224fn calculate_julian_date(
229 year: i32,
230 month: u32,
231 day: u32,
232 hour: u32,
233 minute: u32,
234 second: f64,
235) -> f64 {
236 let mut y = year;
237 let mut m = i32::try_from(month).expect("month should be valid i32");
238
239 if m < 3 {
241 y -= 1;
242 m += 12;
243 }
244
245 let d = f64::from(day) + (f64::from(hour) + (f64::from(minute) + second / 60.0) / 60.0) / 24.0;
247
248 let mut jd =
250 floor(365.25 * (f64::from(y) + 4716.0)) + floor(30.6001 * f64::from(m + 1)) + d - 1524.5;
251
252 if jd >= 2_299_161.0 {
255 let a = floor(f64::from(y) / 100.0);
256 let b = 2.0 - a + floor(a / 4.0);
257 jd += b;
258 }
259
260 jd
261}
262
263const fn is_gregorian_date(year: i32, month: u32, day: u32) -> bool {
264 year > 1582 || (year == 1582 && (month > 10 || (month == 10 && day >= 15)))
265}
266
267const fn is_leap_year(year: i32, is_gregorian: bool) -> bool {
268 if is_gregorian {
269 (year % 4 == 0 && year % 100 != 0) || year % 400 == 0
270 } else {
271 year % 4 == 0
272 }
273}
274
275fn days_in_month(year: i32, month: u32, day: u32) -> Result<u32> {
276 if year == 1582 && month == 10 && (5..=14).contains(&day) {
277 return Err(Error::invalid_datetime(
278 "dates 1582-10-05 through 1582-10-14 do not exist in Gregorian calendar",
279 ));
280 }
281
282 let is_gregorian = is_gregorian_date(year, month, day);
283 let days = match month {
284 1 | 3 | 5 | 7 | 8 | 10 | 12 => 31,
285 4 | 6 | 9 | 11 => 30,
286 2 => {
287 if is_leap_year(year, is_gregorian) {
288 29
289 } else {
290 28
291 }
292 }
293 _ => unreachable!("month already validated"),
294 };
295 Ok(days)
296}
297
298pub struct DeltaT;
303
304impl DeltaT {
305 #[allow(clippy::too_many_lines)] pub fn estimate(decimal_year: f64) -> Result<f64> {
327 let year = decimal_year;
328
329 if !year.is_finite() {
330 return Err(Error::invalid_datetime("year must be finite"));
331 }
332
333 let delta_t = if year < -500.0 {
334 let u = (year - 1820.0) / 100.0;
335 polynomial(&[-20.0, 0.0, 32.0], u)
336 } else if year < 500.0 {
337 let u = year / 100.0;
338 polynomial(
339 &[
340 10583.6,
341 -1014.41,
342 33.78311,
343 -5.952053,
344 -0.1798452,
345 0.022174192,
346 0.0090316521,
347 ],
348 u,
349 )
350 } else if year < 1600.0 {
351 let u = (year - 1000.0) / 100.0;
352 polynomial(
353 &[
354 1574.2,
355 -556.01,
356 71.23472,
357 0.319781,
358 -0.8503463,
359 -0.005050998,
360 0.0083572073,
361 ],
362 u,
363 )
364 } else if year < 1700.0 {
365 let t = year - 1600.0;
366 polynomial(&[120.0, -0.9808, -0.01532, 1.0 / 7129.0], t)
367 } else if year < 1800.0 {
368 let t = year - 1700.0;
369 polynomial(
370 &[8.83, 0.1603, -0.0059285, 0.00013336, -1.0 / 1_174_000.0],
371 t,
372 )
373 } else if year < 1860.0 {
374 let t = year - 1800.0;
375 polynomial(
376 &[
377 13.72,
378 -0.332447,
379 0.0068612,
380 0.0041116,
381 -0.00037436,
382 0.0000121272,
383 -0.0000001699,
384 0.000000000875,
385 ],
386 t,
387 )
388 } else if year < 1900.0 {
389 let t = year - 1860.0;
390 polynomial(
391 &[
392 7.62,
393 0.5737,
394 -0.251754,
395 0.01680668,
396 -0.0004473624,
397 1.0 / 233_174.0,
398 ],
399 t,
400 )
401 } else if year < 1920.0 {
402 let t = year - 1900.0;
403 polynomial(&[-2.79, 1.494119, -0.0598939, 0.0061966, -0.000197], t)
404 } else if year < 1941.0 {
405 let t = year - 1920.0;
406 polynomial(&[21.20, 0.84493, -0.076100, 0.0020936], t)
407 } else if year < 1961.0 {
408 let t = year - 1950.0;
409 polynomial(&[29.07, 0.407, -1.0 / 233.0, 1.0 / 2547.0], t)
410 } else if year < 1986.0 {
411 let t = year - 1975.0;
412 polynomial(&[45.45, 1.067, -1.0 / 260.0, -1.0 / 718.0], t)
413 } else if year < 2005.0 {
414 let t = year - 2000.0;
415 polynomial(
416 &[
417 63.86,
418 0.3345,
419 -0.060374,
420 0.0017275,
421 0.000651814,
422 0.00002373599,
423 ],
424 t,
425 )
426 } else if year < 2015.0 {
427 let t = year - 2005.0;
428 polynomial(&[64.69, 0.2930], t)
429 } else if year <= 3000.0 {
430 let t = year - 2015.0;
431 polynomial(&[67.62, 0.3645, 0.0039755], t)
432 } else {
433 return Err(Error::invalid_datetime(
434 "ΔT estimates not available beyond year 3000",
435 ));
436 };
437
438 Ok(delta_t)
439 }
440
441 pub fn estimate_from_date(year: i32, month: u32) -> Result<f64> {
458 if !(1..=12).contains(&month) {
459 return Err(Error::invalid_datetime("month must be between 1 and 12"));
460 }
461
462 let decimal_year = f64::from(year) + (f64::from(month) - 0.5) / 12.0;
463 Self::estimate(decimal_year)
464 }
465
466 #[cfg(feature = "chrono")]
495 #[cfg_attr(docsrs, doc(cfg(feature = "chrono")))]
496 #[allow(clippy::needless_pass_by_value)]
497 pub fn estimate_from_date_like<D: Datelike>(date: D) -> Result<f64> {
498 Self::estimate_from_date(date.year(), date.month())
499 }
500}
501
502#[cfg(test)]
503mod tests {
504 use super::*;
505
506 const EPSILON: f64 = 1e-10;
507
508 #[test]
509 fn test_julian_date_creation() {
510 let jd = JulianDate::from_utc(2000, 1, 1, 12, 0, 0.0, 0.0).unwrap();
511
512 assert!((jd.julian_date() - J2000_JDN).abs() < EPSILON);
514 assert_eq!(jd.delta_t(), 0.0);
515 }
516
517 #[test]
518 fn test_julian_date_invalid_day_validation() {
519 assert!(JulianDate::from_utc(2024, 2, 30, 0, 0, 0.0, 0.0).is_err());
520 assert!(JulianDate::from_utc(2024, 2, 29, 0, 0, 0.0, 0.0).is_ok());
521 assert!(JulianDate::from_utc(1900, 2, 29, 0, 0, 0.0, 0.0).is_err());
522 assert!(JulianDate::from_utc(1500, 2, 29, 0, 0, 0.0, 0.0).is_ok());
523 assert!(JulianDate::from_utc(1582, 10, 10, 0, 0, 0.0, 0.0).is_err());
524 assert!(JulianDate::from_utc(1582, 10, 4, 0, 0, 0.0, 0.0).is_ok());
525 assert!(JulianDate::from_utc(1582, 10, 15, 0, 0, 0.0, 0.0).is_ok());
526 }
527
528 #[test]
529 fn test_julian_date_validation() {
530 assert!(JulianDate::from_utc(2024, 13, 1, 0, 0, 0.0, 0.0).is_err()); assert!(JulianDate::from_utc(2024, 1, 32, 0, 0, 0.0, 0.0).is_err()); assert!(JulianDate::from_utc(2024, 1, 1, 24, 0, 0.0, 0.0).is_err()); assert!(JulianDate::from_utc(2024, 1, 1, 0, 60, 0.0, 0.0).is_err()); assert!(JulianDate::from_utc(2024, 1, 1, 0, 0, 60.0, 0.0).is_err()); }
536
537 #[test]
538 fn test_julian_centuries() {
539 let jd = JulianDate::from_utc(2000, 1, 1, 12, 0, 0.0, 0.0).unwrap();
540
541 assert!(jd.julian_century().abs() < EPSILON);
543 assert!(jd.julian_ephemeris_century().abs() < EPSILON);
544 assert!(jd.julian_ephemeris_millennium().abs() < EPSILON);
545 }
546
547 #[test]
548 fn test_julian_ephemeris_day() {
549 let delta_t = 69.0; let jd = JulianDate::from_utc(2023, 6, 21, 12, 0, 0.0, delta_t).unwrap();
551
552 let jde = jd.julian_ephemeris_day();
553 let expected = jd.julian_date() + delta_t / SECONDS_PER_DAY;
554
555 assert!((jde - expected).abs() < EPSILON);
556 }
557
558 #[test]
559 fn test_gregorian_calendar_correction() {
560 let julian_date = JulianDate::from_utc(1582, 10, 4, 12, 0, 0.0, 0.0).unwrap();
563 let gregorian_date = JulianDate::from_utc(1582, 10, 15, 12, 0, 0.0, 0.0).unwrap();
564
565 let diff = gregorian_date.julian_date() - julian_date.julian_date();
568 assert!(
569 (diff - 1.0).abs() < 1e-6,
570 "Expected 1 day difference in JD, got {diff}"
571 );
572
573 let pre_gregorian = JulianDate::from_utc(1582, 10, 1, 12, 0, 0.0, 0.0).unwrap();
576 let post_gregorian = JulianDate::from_utc(1583, 1, 1, 12, 0, 0.0, 0.0).unwrap();
577
578 assert!(pre_gregorian.julian_date() > 2_000_000.0);
580 assert!(post_gregorian.julian_date() > pre_gregorian.julian_date());
581 }
582
583 #[test]
584 fn test_delta_t_modern_estimates() {
585 let delta_t_2000 = DeltaT::estimate(2000.0).unwrap();
587 let delta_t_2020 = DeltaT::estimate(2020.0).unwrap();
588
589 assert!(delta_t_2000 > 60.0 && delta_t_2000 < 70.0);
590 assert!(delta_t_2020 > 65.0 && delta_t_2020 < 75.0);
591 assert!(delta_t_2020 > delta_t_2000); }
593
594 #[test]
595 fn test_delta_t_historical_estimates() {
596 let delta_t_1900 = DeltaT::estimate(1900.0).unwrap();
597 let delta_t_1950 = DeltaT::estimate(1950.0).unwrap();
598
599 assert!(delta_t_1900 < 0.0); assert!(delta_t_1950 > 25.0 && delta_t_1950 < 35.0);
601 }
602
603 #[test]
604 fn test_delta_t_boundary_conditions() {
605 assert!(DeltaT::estimate(-500.0).is_ok());
607 assert!(DeltaT::estimate(3000.0).is_ok());
608 assert!(DeltaT::estimate(-501.0).is_ok()); assert!(DeltaT::estimate(3001.0).is_err()); }
611
612 #[test]
613 fn test_delta_t_from_date() {
614 let delta_t = DeltaT::estimate_from_date(2024, 6).unwrap();
615 let delta_t_decimal = DeltaT::estimate(2024.5 - 1.0 / 24.0).unwrap(); assert!((delta_t - delta_t_decimal).abs() < 0.01);
619
620 assert!(DeltaT::estimate_from_date(2024, 13).is_err());
622 assert!(DeltaT::estimate_from_date(2024, 0).is_err());
623 }
624
625 #[test]
626 fn test_delta_t_from_date_like() {
627 use chrono::{DateTime, FixedOffset, NaiveDate, Utc};
628
629 let datetime_fixed = "2024-06-15T12:00:00-07:00"
631 .parse::<DateTime<FixedOffset>>()
632 .unwrap();
633 let delta_t_fixed = DeltaT::estimate_from_date_like(datetime_fixed).unwrap();
634
635 let datetime_utc = "2024-06-15T19:00:00Z".parse::<DateTime<Utc>>().unwrap();
637 let delta_t_utc = DeltaT::estimate_from_date_like(datetime_utc).unwrap();
638
639 let naive_date = NaiveDate::from_ymd_opt(2024, 6, 15).unwrap();
641 let delta_t_naive_date = DeltaT::estimate_from_date_like(naive_date).unwrap();
642
643 let naive_datetime = naive_date.and_hms_opt(12, 0, 0).unwrap();
645 let delta_t_naive_datetime = DeltaT::estimate_from_date_like(naive_datetime).unwrap();
646
647 assert_eq!(delta_t_fixed, delta_t_utc);
649 assert_eq!(delta_t_fixed, delta_t_naive_date);
650 assert_eq!(delta_t_fixed, delta_t_naive_datetime);
651
652 let delta_t_date = DeltaT::estimate_from_date(2024, 6).unwrap();
654 assert_eq!(delta_t_fixed, delta_t_date);
655
656 assert!(delta_t_fixed > 60.0 && delta_t_fixed < 80.0);
658 }
659
660 #[test]
661 fn test_specific_julian_dates() {
662 let unix_epoch = JulianDate::from_utc(1970, 1, 1, 0, 0, 0.0, 0.0).unwrap();
666 assert!((unix_epoch.julian_date() - 2_440_587.5).abs() < 1e-6);
667
668 let y2k = JulianDate::from_utc(2000, 1, 1, 0, 0, 0.0, 0.0).unwrap();
670 assert!((y2k.julian_date() - 2_451_544.5).abs() < 1e-6);
671 }
672}