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astro/basic/occultation_instant.go
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package basic
import (
"fmt"
"math"
"time"
)
// StarOccultationInstant 包含指定时刻的点源恒星月掩可见足迹;若接触锥在该时刻未到达可见地球,Footprint 为 nil。
// StarOccultationInstant contains the visible point-source footprint at one requested instant; Footprint is nil when no part of the contact cone reaches the visible Earth.
type StarOccultationInstant struct {
Time time.Time
TargetID string
// DeltaTSeconds 本次实际使用的 ΔT / ΔT actually used.
DeltaTSeconds float64
// SublunarLongitude 与 SublunarLatitude 是该时刻月下点,用于声明地平闭合弧 / sublunar point for the horizon closure.
SublunarLongitude float64
SublunarLatitude float64
Footprint *OccultationFootprint
}
// PlanetOccultationInstant 包含指定时刻的行星外接触和内接触可见足迹;相应接触锥未到达可见地球时,Partial 或 Total 为 nil。
// PlanetOccultationInstant contains the visible outer- and inner-contact footprints at one requested instant; Partial or Total is nil when that contact cone does not reach the visible Earth.
type PlanetOccultationInstant struct {
Time time.Time
Planet OccultationPlanet
TargetID string
// DeltaTSeconds 本次实际使用的 ΔT / ΔT actually used.
DeltaTSeconds float64
// SublunarLongitude 与 SublunarLatitude 是该时刻月下点,用于声明地平闭合弧 / sublunar point for the horizon closure.
SublunarLongitude float64
SublunarLatitude float64
Partial *PlanetOccultationFootprint
Total *PlanetOccultationFootprint
}
// StarOccultationFootprintAt 返回指定时刻的精确点源恒星月掩可见足迹;它采用与路径时间线相同的分辨率,并对完整接触弧执行站心校正。
// StarOccultationFootprintAt returns the exact visible lunar-occultation footprint of a point-source star at one instant, using timeline resolution and station-centred correction of the complete contact arc.
func StarOccultationFootprintAt(at time.Time, star StarCoordinate) (StarOccultationInstant, error) {
result := StarOccultationInstant{Time: at, TargetID: star.ID}
if at.IsZero() {
return result, fmt.Errorf("%w: time is required", ErrInvalidOccultationInput)
}
if err := star.Validate(); err != nil {
return result, err
}
cache := newStarOccultationEventCache(star)
tt := occultationTimeToTT(at)
result.DeltaTSeconds = DeltaT(tt, true)
result.SublunarLongitude, result.SublunarLatitude = occultationSublunarPoint(tt, cache.frameAt)
result.Footprint = occultationInstantFootprint(
at, cache.frameAt, cache.riseSetContextAt, false,
)
return result, nil
}
// PlanetOccultationFootprintsAt 返回指定时刻有限行星盘面的精确外接触和内接触月掩可见足迹;它采用路径时间线分辨率,并对每条完整接触弧执行站心校正。
// PlanetOccultationFootprintsAt returns the exact visible outer- and inner-contact lunar-occultation footprints of a finite planetary disk at one instant, using timeline resolution and station-centred correction of each complete contact arc.
func PlanetOccultationFootprintsAt(at time.Time, planet OccultationPlanet) (PlanetOccultationInstant, error) {
result := PlanetOccultationInstant{Time: at, Planet: planet, TargetID: planet.String()}
if at.IsZero() {
return result, fmt.Errorf("%w: time is required", ErrInvalidOccultationInput)
}
if err := planet.Validate(); err != nil {
return result, err
}
config, _ := planetOccultationConfigFor(planet)
cache := newPlanetOccultationEventCache(config)
tt := occultationTimeToTT(at)
result.DeltaTSeconds = DeltaT(tt, true)
result.SublunarLongitude, result.SublunarLatitude = occultationSublunarPoint(tt, cache.outerFrameAt)
result.Partial = occultationInstantFootprint(
at, cache.outerFrameAt, cache.riseSetContextAt, false,
)
result.Total = occultationInstantFootprint(
at, cache.totalFrameAt, cache.riseSetContextAt, true,
)
return result, nil
}
func occultationSublunarPoint(tt float64, frameAt occultationPathFrameFunc) (float64, float64) {
frame, ok := frameAt(tt)
if !ok {
return math.NaN(), math.NaN()
}
distance := math.Sqrt(frame.moon.x*frame.moon.x + frame.moon.y*frame.moon.y + frame.moon.z*frame.moon.z)
if distance == 0 {
return math.NaN(), math.NaN()
}
rightAscension := math.Atan2(frame.moon.y, frame.moon.x) * 180 / math.Pi
declination := math.Asin(math.Max(-1, math.Min(1, frame.moon.z/distance))) * 180 / math.Pi
longitude := rightAscension - ApparentSiderealTime(TD2UT(tt, false))*15
for longitude > 180 {
longitude -= 360
}
for longitude < -180 {
longitude += 360
}
return longitude, declination
}
func occultationInstantFootprint(
at time.Time,
frameAt occultationPathFrameFunc,
contextAt occultationRiseSetContextFunc,
total bool,
) *OccultationFootprint {
tt := occultationTimeToTT(at)
footprint, ok := planetOccultationFootprintAtWithResolution(
tt, frameAt, at.Location(),
planetOccultationTimelineBoundaryPoints,
planetOccultationTimelineHorizonPoints,
planetOccultationTimelineTargetSpacingKM,
)
if !ok {
return nil
}
// A one-element correction deliberately treats this instant as both ends of
// the sequence, so every contact-arc sample receives the exact station solve.
corrected := occultationStationCorrectFootprintEdges(
[]PlanetOccultationFootprint{footprint}, frameAt, contextAt, total, at.Location(),
)
if len(corrected) != 1 {
return nil
}
footprint = corrected[0]
normalizeOccultationInstantTime(&footprint, at)
return &footprint
}
func normalizeOccultationInstantTime(footprint *OccultationFootprint, at time.Time) {
if footprint == nil {
return
}
footprint.Time = at
for _, polygons := range [][][]OccultationPathPoint{
footprint.Polygons,
footprint.InteriorPolygons,
footprint.Boundaries,
} {
for polygonIndex := range polygons {
for pointIndex := range polygons[polygonIndex] {
polygons[polygonIndex][pointIndex].Time = at
}
}
}
}