Files
astro/basic/solar_eclipse_total_envelope_test.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

63 lines
2.5 KiB
Go

package basic
import (
"fmt"
"math"
"testing"
)
func TestSolarEclipseTotalEnvelopeHorizonEndpoints(t *testing.T) {
for _, date := range [][3]int{
{2003, 11, 23}, {2021, 12, 4}, {2039, 12, 15},
{2008, 8, 1}, {2024, 4, 8}, {2026, 8, 12},
} {
t.Run(fmt.Sprintf("%04d-%02d-%02d", date[0], date[1], date[2]), func(t *testing.T) {
seed := JDCalc(date[0], date[1], float64(date[2]))
result := SolarEclipsePartialFootprints(seed, SolarEclipsePartialFootprintOptions{
StepDays: 2.0 / 1440, BoundaryPoints: 96, MagnitudeValues: []float64{1},
})
if result.Eclipse.Type != SolarEclipseTotal || len(result.CentralBandSegments) != 1 ||
len(result.CentralBandHorizonClosures) != 2 {
t.Fatalf("type=%s rings=%d closures=%d, want total with a continuous closed envelope",
result.Eclipse.Type, len(result.CentralBandSegments), len(result.CentralBandHorizonClosures))
}
if len(result.MagnitudeContours) != 1 || len(result.MagnitudeContours[0].Segments) != 2 {
t.Fatal("missing totality branches")
}
ring := result.CentralBandSegments[0]
if len(ring) < 4 || ring[0] != ring[len(ring)-1] {
t.Fatal("totality envelope is not closed")
}
solver := newSolarEclipseSolver(CalcMoonSHByJDE(seed, 0), SolarEclipseModelNASABulletinSplitK)
for i, point := range ring {
if i > 0 && solarEclipsePathDistanceKM(ring[i-1], point) > solarEclipseTotalEnvelopeTargetSpacingKM+1e-6 {
t.Fatalf("edge %d exceeds spacing limit", i)
}
if solarEclipseCentralEnvelopePointOnHorizonClosure(point, result.CentralBandHorizonClosures) {
continue
}
residual, ok := solver.magnitudeHorizonResidual(point.JDE, point.Longitude, point.Latitude, 1)
if !ok || math.Abs(residual[0]) > 1e-7 || math.Abs(residual[1]) > 1e-8 || point.SunAltitude < -1e-5 {
t.Fatalf("point %d is not on visible totality envelope: %v altitude=%g", i, residual, point.SunAltitude)
}
}
for _, branch := range result.MagnitudeContours[0].Segments {
for _, endpoint := range []SolarEclipsePathPoint{branch[0], branch[len(branch)-1]} {
if !solarEclipseCentralEnvelopePointOnHorizonClosure(endpoint, result.CentralBandHorizonClosures) {
t.Fatal("totality endpoint is not shared with a horizon closure")
}
}
}
})
}
}
func BenchmarkSolarEclipsePolarTotalBand(b *testing.B) {
seed := JDCalc(2003, 11, 23)
for i := 0; i < b.N; i++ {
SolarEclipsePartialFootprints(seed, SolarEclipsePartialFootprintOptions{
StepDays: 2.0 / 1440, BoundaryPoints: 96, DisableRiseSetCurves: true,
})
}
}