16c62a97d5
- 新增时标、ΔT 模型、质心时间与 UT1 支持 - 改进日月食、月掩、行星事件及路径边界计算 - 完善恒星三维自行与动态距离传播 - 扩展 SVG、GeoJSON、KML 输出与底层距离换算工具 - 整理中英文手册、示例资源及回归测试
83 lines
3.0 KiB
Go
83 lines
3.0 KiB
Go
package basic
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import (
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"math"
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"testing"
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"time"
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. "b612.me/astro/tools"
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)
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func TestTopocentricRaDecUsesUTJulianDateForSiderealTime(t *testing.T) {
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ut := Date2JD(time.Date(2025, 6, 5, 12, 2, 7, 700000000, time.UTC))
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ra := 189.527817246
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dec := -5.973400893
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lat := 6.79657
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lon := 121.55381
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distanceAU := HMoonAwayN(UTC2TT(ut), -1) / 149597870.7
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gotRA, gotDec := TopocentricRaDec(ra, dec, lat, lon, ut, distanceAU, 0)
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wantRA, wantDec := independentTopocentricRaDec(ra, dec, lat, lon, ut, distanceAU, 0)
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// 逐分量比较:零距离处 acos 度规的病态下限会把 1 ulp 放大成毫角秒。
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if deltaRA, deltaDec := math.Abs(gotRA-wantRA), math.Abs(gotDec-wantDec); deltaRA > 1e-12 || deltaDec > 1e-12 {
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t.Fatalf("TopocentricRaDec differs from independent formula: dRA=%.3g dDec=%.3g deg", deltaRA, deltaDec)
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}
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}
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func TestTopocentricRaAndDecMatchCombinedResult(t *testing.T) {
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ut := Date2JD(time.Date(2025, 6, 5, 12, 2, 7, 700000000, time.UTC))
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ra := 189.527817246
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dec := -5.973400893
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lat := 6.79657
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lon := 121.55381
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distanceAU := HMoonAwayN(UTC2TT(ut), -1) / 149597870.7
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wantRA, wantDec := TopocentricRaDec(ra, dec, lat, lon, ut, distanceAU, 0)
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if got := TopocentricRa(ra, dec, lat, lon, ut, distanceAU, 0); got != wantRA {
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t.Fatalf("TopocentricRa = %.12f, want %.12f", got, wantRA)
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}
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if got := TopocentricDec(ra, dec, lat, lon, ut, distanceAU, 0); got != wantDec {
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t.Fatalf("TopocentricDec = %.12f, want %.12f", got, wantDec)
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}
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}
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func TestHMoonHeightUsesUTForTopocentricCorrection(t *testing.T) {
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ut := Date2JD(time.Date(2026, 4, 28, 16, 1, 30, 0, time.UTC))
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longitude := 0.0
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latitude := 51.4779
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ra, dec := HMoonApparentRaDecN(ut, longitude, latitude, 0, -1)
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hourAngle := Limit360(ApparentSiderealTime(UTC2UT1(ut))*15 + longitude - ra)
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want := ArcSin(Sin(latitude)*Sin(dec) + Cos(dec)*Cos(latitude)*Cos(hourAngle))
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got := HMoonHeightN(ut, longitude, latitude, 0, -1)
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if difference := math.Abs(got - want); difference > 1e-10 {
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t.Fatalf("HMoonHeightN differs from the UT topocentric position by %.12f degrees", difference)
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}
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}
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func independentTopocentricRaDec(ra, dec, lat, lon, ut, distanceAU, height float64) (float64, float64) {
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const (
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equatorialRadiusKM = 6378.14
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polarRadiusKM = 6356.755
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)
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u := math.Atan(polarRadiusKM / equatorialRadiusKM * Tan(lat))
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rhoCos := math.Cos(u) + height/6378140.0*Cos(lat)
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rhoSin := polarRadiusKM/equatorialRadiusKM*math.Sin(u) + height/6378140.0*Sin(lat)
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sinParallax := Sin(0.0024427777777) / distanceAU
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hourAngle := Limit360(ApparentSiderealTime(UTC2UT1(ut))*15 + lon - ra)
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deltaRA := math.Atan2(
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-rhoCos*sinParallax*Sin(hourAngle),
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Cos(dec)-rhoCos*sinParallax*Cos(hourAngle),
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)
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topRA := ra + deltaRA*180/math.Pi
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topDec := math.Atan2(
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(Sin(dec)-rhoSin*sinParallax)*math.Cos(deltaRA),
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Cos(dec)-rhoCos*sinParallax*Cos(hourAngle),
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) * 180 / math.Pi
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return topRA, topDec
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}
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func angularDistanceArcsec(ra1, dec1, ra2, dec2 float64) float64 {
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cosDistance := Sin(dec1)*Sin(dec2) + Cos(dec1)*Cos(dec2)*Cos(ra1-ra2)
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return math.Acos(math.Max(-1, math.Min(1, cosDistance))) * 180 / math.Pi * 3600
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}
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