Files
astro/basic/coordinate.go
T
b612 16c62a97d5 feat: 完善时标与天象几何计算并扩展输出接口
- 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
2026-09-23 18:55:12 +08:00

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package basic
import (
"math"
. "b612.me/astro/tools"
)
/*
* 坐标变换,黄道转赤道
*/
func LoToRa(jde, lo, bo float64) float64 {
eps := TrueObliquity(jde)
ra := math.Atan2(Sin(lo)*Cos(eps)-Tan(bo)*Sin(eps), Cos(lo))
ra = ra * 180 / math.Pi
if ra < 0 {
ra += 360
}
return ra
}
func BoToDec(jde, lo, bo float64) float64 {
eps := TrueObliquity(jde)
dec := ArcSin(Sin(bo)*Cos(eps) + Cos(bo)*Sin(eps)*Sin(lo))
return dec
}
func LoBoToRaDec(jde, lo, bo float64) (float64, float64) {
eps := TrueObliquity(jde)
sinEps := Sin(eps)
cosEps := Cos(eps)
dec := ArcSin(Sin(bo)*cosEps + Cos(bo)*sinEps*Sin(lo))
ra := math.Atan2(Sin(lo)*cosEps-Tan(bo)*sinEps, Cos(lo))
ra = ra * 180 / math.Pi
if ra < 0 {
ra += 360
}
return ra, dec
}
func RaDecToLoBo(jde, ra, dec float64) (float64, float64) {
//tan(λ) = (sin(α)*cos(ε) + tan(δ)*sin(ε)) / cos(α)
//sin(β)=sin(δ)*cos(ε)-cos(δ)*sin(ε)*sin(α)
eps := TrueObliquity(jde)
sinBo := Sin(dec)*Cos(eps) - Cos(dec)*Sin(eps)*Sin(ra)
lo := math.Atan2((Sin(ra)*Cos(eps) + Tan(dec)*Sin(eps)), Cos(ra))
lo = Limit360(lo * 180 / math.Pi)
return lo, ArcSin(sinBo)
}
func RaToLo(jde, ra, dec float64) float64 {
//tan(λ) = (sin(α)*cos(ε) + tan(δ)*sin(ε)) / cos(α)
//sin(β)=sin(δ)*cos(ε)-cos(δ)*sin(ε)*sin(α)
eps := TrueObliquity(jde)
lo := math.Atan2((Sin(ra)*Cos(eps) + Tan(dec)*Sin(eps)), Cos(ra))
lo = Limit360(lo * 180 / math.Pi)
return lo
}
func DecToBo(jde, ra, dec float64) float64 {
//tan(λ) = (sin(α)*cos(ε) + tan(δ)*sin(ε)) / cos(α)
//sin(β)=sin(δ)*cos(ε)-cos(δ)*sin(ε)*sin(α)
eps := TrueObliquity(jde)
sinBo := Sin(dec)*Cos(eps) - Cos(dec)*Sin(eps)*Sin(ra)
return ArcSin(sinBo)
}
/*
* 地心坐标转站心坐标,参数分别为,地心赤经赤纬 纬度经度,jde,离地心位置au
*/
func pcosi(lat, h float64) float64 {
b := 6356.755
a := 6378.14
u := ArcTan(b / a * Tan(lat))
//psin=b/a*Sin(u)+h/6378140*Sin(lat);
pcos := Cos(u) + h/6378140.0*Cos(lat)
return pcos
}
func psini(lat, h float64) float64 {
b := 6356.755
a := 6378.14
u := ArcTan(b / a * Tan(lat))
psin := b/a*Sin(u) + h/6378140*Sin(lat)
//pcos=Cos(u)+h/6378140*Cos(lat);
return psin
}
func TopocentricRaDec(ra, dec, lat, lon, jd, au, h float64) (float64, float64) {
return topocentricRaDecWithSidereal(ra, dec, lat, lon, ApparentSiderealTime(UTC2UT1(jd))*15, au, h)
}
func topocentricRaDecWithSidereal(ra, dec, lat, lon, siderealDegrees, au, h float64) (float64, float64) {
sinpi := Sin(0.0024427777777) / au
pcosi := pcosi(lat, h)
psini := psini(lat, h)
tH := Limit360(siderealDegrees + lon - ra)
nra := math.Atan2(-pcosi*sinpi*Sin(tH), (Cos(dec)-pcosi*sinpi*Cos(tH))) * 180 / math.Pi
ndec := math.Atan2((Sin(dec)-psini*sinpi)*Cos(nra), (Cos(dec)-pcosi*sinpi*Cos(tH))) * 180 / math.Pi
return ra + nra, ndec
}
func TopocentricRa(ra, dec, lat, lon, jd, au, h float64) float64 { //jd为格林尼治标准时
topocentricRA, _ := TopocentricRaDec(ra, dec, lat, lon, jd, au, h)
return topocentricRA
}
func TopocentricDec(ra, dec, lat, lon, jd, au, h float64) float64 { //jd为格林尼治标准时
_, topocentricDec := TopocentricRaDec(ra, dec, lat, lon, jd, au, h)
return topocentricDec
}
// TopocentricLoBo 一次求值给出站心黄经与黄纬 / topocentric ecliptic longitude and latitude in one solve.
//
// 先解站心赤道坐标再转黄道:黄道版公式的分母在黄经 90°–270° 时变号,直接 atan2 会切到对顶象限。
func TopocentricLoBo(lo, bo, lat, lon, jde, au, h float64) (float64, float64) {
ra, dec := LoBoToRaDec(jde, lo, bo)
topRA, topDec := TopocentricRaDec(ra, dec, lat, lon, jde, au, h)
return RaDecToLoBo(jde, topRA, topDec)
}
// TopocentricLo 站心黄经 / topocentric ecliptic longitude.
func TopocentricLo(lo, bo, lat, lon, jde, au, h float64) float64 {
nlo, _ := TopocentricLoBo(lo, bo, lat, lon, jde, au, h)
return nlo
}
// TopocentricBo 站心黄纬 / topocentric ecliptic latitude.
func TopocentricBo(lo, bo, lat, lon, jde, au, h float64) float64 {
_, nbo := TopocentricLoBo(lo, bo, lat, lon, jde, au, h)
return nbo
}
func GXCLo(lo, bo, jde float64) float64 { //光行差修正
k := 20.49552
sunlo := SunTrueLo(jde)
e := Earthe(jde)
epi := EarthPI(jde)
tmp := (-k*Cos(sunlo-lo) + e*k*Cos(epi-lo)) / Cos(bo)
return tmp
}
func GXCBo(lo, bo, jde float64) float64 {
k := 20.49552
sunlo := SunTrueLo(jde)
e := Earthe(jde)
epi := EarthPI(jde)
tmp := -k * Sin(bo) * (Sin(sunlo-lo) - e*Sin(epi-lo))
return tmp
}