package moon import ( "errors" "math" "testing" "time" ) func TestFindPlanetOccultationsReturnsFiniteDiskContacts(t *testing.T) { location := time.FixedZone("CST", 8*3600) observer := Observer{Longitude: -30.072, Latitude: 16.21} start := time.Date(2024, time.August, 21, 9, 30, 0, 0, location) end := time.Date(2024, time.August, 21, 12, 0, 0, 0, location) results, err := FindPlanetOccultations( start, end, OccultationSaturn, observer.Longitude, observer.Latitude, observer.Height, OccultationSearchOptions{}, ) if err != nil { t.Fatalf("FindPlanetOccultations() error = %v", err) } if len(results) != 1 { t.Fatalf("FindPlanetOccultations() returned %d events, want 1", len(results)) } result := results[0] if result.Planet != OccultationSaturn || result.TargetID != "Saturn" { t.Fatalf("target = %v/%q, want Saturn", result.Planet, result.TargetID) } if result.Observer != observer { t.Fatalf("observer = %+v, want %+v", result.Observer, observer) } if result.Type != OccultationTotal || !result.HasInternalContacts || !result.ContactsComplete { t.Fatalf("unexpected event geometry: type=%q internal=%v complete=%v", result.Type, result.HasInternalContacts, result.ContactsComplete) } if result.Greatest.Location() != location || result.ExternalImmersion.Location() != location || result.ExternalEmersion.Location() != location { t.Fatalf("result times did not preserve the start location: %+v", result) } wantGreatest := time.Date(2024, time.August, 21, 10, 49, 10, 0, location) if delta := math.Abs(result.Greatest.Sub(wantGreatest).Seconds()); delta > 2 { t.Fatalf("greatest differs from regression baseline by %.3fs: got %v want %v", delta, result.Greatest, wantGreatest) } if result.MinimumSeparationArcsec > result.MoonSemidiameterArcsec-result.PlanetSemidiameterArcsec { t.Fatalf("total event does not fully cover the planet: separation=%.6f Moon=%.6f planet=%.6f", result.MinimumSeparationArcsec, result.MoonSemidiameterArcsec, result.PlanetSemidiameterArcsec) } } func TestFindBestPlanetOccultationsReturnsVisibleGroundPoint(t *testing.T) { start := time.Date(2024, time.August, 20, 0, 0, 0, 0, time.UTC) end := time.Date(2024, time.August, 22, 0, 0, 0, 0, time.UTC) results, err := FindBestPlanetOccultations(start, end, OccultationSaturn, OccultationSearchOptions{MaxEvents: 1}) if err != nil { t.Fatalf("FindBestPlanetOccultations() error = %v", err) } if len(results) != 1 { t.Fatalf("FindBestPlanetOccultations() returned %d events, want 1", len(results)) } result := results[0] if result.Observer.Longitude < -180 || result.Observer.Longitude > 180 || result.Observer.Latitude < -90 || result.Observer.Latitude > 90 { t.Fatalf("best observer out of bounds: %+v", result.Observer) } if result.Observer.Height != 0 { t.Fatalf("best observer height = %.1f, want sea level", result.Observer.Height) } if !result.VisibleAtGreatest || result.MoonAltitudeAtGreatest < 0 { t.Fatalf("best event is not visible: altitude=%.6f visible=%v", result.MoonAltitudeAtGreatest, result.VisibleAtGreatest) } if !result.HasInternalContacts || !result.ContactsComplete { t.Fatalf("best event contacts are incomplete: %+v", result) } } func TestFindPlanetOccultationsReturnsPartialDiskEventWithoutInternalContacts(t *testing.T) { start := time.Date(2024, time.August, 21, 1, 30, 0, 0, time.UTC) end := time.Date(2024, time.August, 21, 4, 0, 0, 0, time.UTC) // 使用站点到月球的距离计算月球视半径后,-6.5 度仍在内接触外侧 / -6.5 degrees remains just outside internal contact after using the // 使用站点到月球的距离计算月球视半径 / station-to-Moon distance for the lunar semidiameter. results, err := FindPlanetOccultations(start, end, OccultationSaturn, -30.072, -6.5, 0, OccultationSearchOptions{}) if err != nil { t.Fatalf("FindPlanetOccultations() error = %v", err) } if len(results) != 1 { t.Fatalf("FindPlanetOccultations() returned %d events, want 1", len(results)) } result := results[0] if result.Type != OccultationPartial || result.HasInternalContacts { t.Fatalf("event geometry = %q internal=%v, want partial without internal contacts", result.Type, result.HasInternalContacts) } if result.InternalImmersion != (time.Time{}) || result.InternalEmersion != (time.Time{}) { t.Fatalf("partial event returned internal contacts: C2=%v C3=%v", result.InternalImmersion, result.InternalEmersion) } if !result.ContactsComplete || result.ExternalImmersion.IsZero() || result.ExternalEmersion.IsZero() { t.Fatalf("partial event external contacts are incomplete: %+v", result) } if !(result.ExternalImmersion.Before(result.Greatest) && result.Greatest.Before(result.ExternalEmersion)) { t.Fatalf("partial event contact order is invalid: %+v", result) } } func TestFindPlanetOccultationsValidatesInputs(t *testing.T) { start := time.Date(2024, time.August, 21, 0, 0, 0, 0, time.UTC) end := start.Add(24 * time.Hour) tests := []struct { name string start time.Time end time.Time planet OccultationPlanet longitude float64 options OccultationSearchOptions }{ {name: "zero time", planet: OccultationSaturn}, {name: "unordered time", start: start, end: start, planet: OccultationSaturn}, {name: "unsupported planet", start: start, end: end, planet: OccultationPlanet("pluto")}, {name: "invalid observer", start: start, end: end, planet: OccultationSaturn, longitude: math.NaN()}, {name: "invalid options", start: start, end: end, planet: OccultationSaturn, options: OccultationSearchOptions{MaxEvents: -1}}, } for _, test := range tests { t.Run(test.name, func(t *testing.T) { _, err := FindPlanetOccultations(test.start, test.end, test.planet, test.longitude, 0, 0, test.options) if !errors.Is(err, ErrInvalidOccultationInput) { t.Fatalf("FindPlanetOccultations() error = %v, want ErrInvalidOccultationInput", err) } }) } }