Files
astro/moon/occultation_planet_test.go
T
b612 2bf8478639 feat: 完善日月食与月掩几何链路并扩展历法接口
- 新增日月食中心带、偏食带、阴影足迹、等时线、食分线及升落边界计算,支持极区与混合食拓扑
- 新增日食单时刻阴影求解器、站心状态查询、批量采样和 ΔT 覆盖接口
- 重构恒星与行星月掩路径,补充有限盘面接触、站心修正、掩带宽度、极区投影及升落边界
- 扩展 SVG 与 GeoJSON 输出,支持详细面板、全球/极区/地球投影、边界闭合、时间标记和拓扑签名
- 扩展日月食候选搜索、局地搜索、沙罗序列预计算与范围外推,补充系列锚点和成员一致性校验
- 补齐古历纪年、儒略历独有闰日、多公历候选、历法改革跨日及精确日期运算接口
- 优化 ΔT、章动、恒星时、月球地平线、事件根搜索和本地星历缓存,降低重复计算开销并提升边界稳定
2026-09-17 12:27:40 +08:00

172 lines
8.0 KiB
Go

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)
}
})
}
}
func TestFindBestPlanetOccultationsKeepsNonCentralEvents(t *testing.T) {
// 2025-01-05 月掩海王星与 2025-07-28 月掩火星都是月影轴不与地球椭球相交的非中心
// 事件:最佳站心曾取外接触切点,该点位于掩带边缘、落在掩食之外,整场被事件搜索
// 丢弃。事件搜索与路径搜索必须报告同一场事件,掩甚站心必须落在掩食之内。
// The 2025-01-05 Neptune and 2025-07-28 Mars occultations are non-central events
// whose shadow axis misses the ellipsoid. The best station used to be taken at the
// outer contact tangent, which sits on the band edge and outside the occultation, so
// the whole event was dropped from the search. The event and path searches must
// report the same event with a greatest station inside the occultation.
tests := []struct {
name string
planet OccultationPlanet
day time.Time
}{
{name: "2025-01-05 Neptune", planet: OccultationNeptune, day: time.Date(2025, time.January, 5, 0, 0, 0, 0, time.UTC)},
{name: "2025-07-28 Mars", planet: OccultationMars, day: time.Date(2025, time.July, 28, 0, 0, 0, 0, time.UTC)},
}
for _, test := range tests {
t.Run(test.name, func(t *testing.T) {
start := test.day.Add(-24 * time.Hour)
end := test.day.Add(24 * time.Hour)
events, err := FindBestPlanetOccultations(start, end, test.planet, OccultationSearchOptions{})
if err != nil {
t.Fatalf("FindBestPlanetOccultations() error = %v", err)
}
paths, err := FindPlanetOccultationPaths(start, end, test.planet, OccultationPathOptions{})
if err != nil {
t.Fatalf("FindPlanetOccultationPaths() error = %v", err)
}
if len(events) != 1 || len(paths) != 1 {
t.Fatalf("event search returned %d events, path search %d, want one each", len(events), len(paths))
}
event := events[0]
limit := event.MoonSemidiameterArcsec + event.PlanetSemidiameterArcsec
if event.MinimumSeparationArcsec > limit {
t.Fatalf("greatest station lies outside the occultation: separation=%.3f limit=%.3f",
event.MinimumSeparationArcsec, limit)
}
if delta := math.Abs(event.Greatest.Sub(paths[0].Greatest.Time).Seconds()); delta > 60 {
t.Fatalf("greatest differs from the path search by %.1fs", delta)
}
})
}
}