199 lines
6.2 KiB
Go
199 lines
6.2 KiB
Go
|
|
package svg
|
||
|
|
|
||
|
|
import (
|
||
|
|
"math"
|
||
|
|
"testing"
|
||
|
|
"time"
|
||
|
|
|
||
|
|
"b612.me/astro/eclipse"
|
||
|
|
"b612.me/astro/internal/geodata"
|
||
|
|
"b612.me/astro/internal/svgmap"
|
||
|
|
)
|
||
|
|
|
||
|
|
type projectedFillCase struct {
|
||
|
|
name string
|
||
|
|
date time.Time
|
||
|
|
pole float64
|
||
|
|
projection geodata.Projection
|
||
|
|
}
|
||
|
|
|
||
|
|
// 偏食可见域的填充必须与球面并集同域:极冠环在等经纬图上沿地图上、下边缘闭合、
|
||
|
|
// 接缝两侧各贴自己那一侧的边缘,在正射球面图上沿视界圆盘闭合;
|
||
|
|
// 把窗口两端折到同侧会让闭合边横穿整幅图并丢掉极冠。
|
||
|
|
func TestSolarEclipseProjectedPartialFillMatchesUnion(t *testing.T) {
|
||
|
|
cst := time.FixedZone("CST", 8*3600)
|
||
|
|
cases := make([]projectedFillCase, 0, 6)
|
||
|
|
for _, item := range []projectedFillCase{
|
||
|
|
{"2012-05-21 北极冠", time.Date(2012, 5, 21, 12, 0, 0, 0, cst), 90, ""},
|
||
|
|
{"2021-12-04 南极冠", time.Date(2021, 12, 4, 12, 0, 0, 0, cst), -90, ""},
|
||
|
|
{"2035-09-02 无冠", time.Date(2035, 9, 2, 12, 0, 0, 0, cst), 0, ""},
|
||
|
|
} {
|
||
|
|
for _, projection := range []geodata.Projection{
|
||
|
|
geodata.ProjectionEquirectangular, geodata.ProjectionOrthographic,
|
||
|
|
} {
|
||
|
|
item := item
|
||
|
|
item.projection = projection
|
||
|
|
cases = append(cases, item)
|
||
|
|
}
|
||
|
|
}
|
||
|
|
for _, item := range cases {
|
||
|
|
item := item
|
||
|
|
t.Run(item.name+"/"+string(item.projection), func(t *testing.T) {
|
||
|
|
info, ok := eclipse.SolarEclipsePartialFootprints(item.date, eclipse.SolarEclipsePartialFootprintOptions{
|
||
|
|
Step: 5 * time.Minute, BoundaryPoints: 180,
|
||
|
|
})
|
||
|
|
if !ok {
|
||
|
|
t.Fatal("missing partial footprints")
|
||
|
|
}
|
||
|
|
polygons, ok := solarEclipsePartialBandPolygons(info)
|
||
|
|
if !ok || len(polygons) == 0 {
|
||
|
|
t.Fatal("missing partial-band union")
|
||
|
|
}
|
||
|
|
options := SolarEclipseMapSVGOptions{Width: 1200, Height: 800, Location: cst}
|
||
|
|
layout := solarEclipseMapLayoutFor(options, item.projection,
|
||
|
|
geodata.GeoPoint{Longitude: info.Eclipse.GreatestLongitude, Latitude: info.Eclipse.GreatestLatitude})
|
||
|
|
frame := layout.frame
|
||
|
|
rings := projectedPartialRings(t, polygons, frame)
|
||
|
|
|
||
|
|
if item.projection == geodata.ProjectionEquirectangular {
|
||
|
|
for _, ring := range rings {
|
||
|
|
for index := range ring {
|
||
|
|
point, next := ring[index], ring[(index+1)%len(ring)]
|
||
|
|
if math.Abs(next[0]-point[0]) <= frame.Width/2 || math.Abs(next[1]-point[1]) >= 1 {
|
||
|
|
continue
|
||
|
|
}
|
||
|
|
if frame.Y-point[1] > 1 && point[1]-(frame.Y+frame.Height) > 1 {
|
||
|
|
t.Fatalf("填充边横穿整幅图:y=%.3f x=%.3f→%.3f", point[1], point[0], next[0])
|
||
|
|
}
|
||
|
|
}
|
||
|
|
}
|
||
|
|
}
|
||
|
|
|
||
|
|
projected := func(longitude, latitude float64) (float64, float64, bool) {
|
||
|
|
x, y, ok := frame.Project(longitude, latitude)
|
||
|
|
if !ok {
|
||
|
|
return 0, 0, false
|
||
|
|
}
|
||
|
|
if item.projection != geodata.ProjectionOrthographic {
|
||
|
|
return x, y, true
|
||
|
|
}
|
||
|
|
radius := math.Min(frame.Width, frame.Height) / 2
|
||
|
|
if math.Hypot(x-(frame.X+frame.Width/2), y-(frame.Y+frame.Height/2)) > radius+1 {
|
||
|
|
return 0, 0, false
|
||
|
|
}
|
||
|
|
return x, y, true
|
||
|
|
}
|
||
|
|
|
||
|
|
polarSamples := 0
|
||
|
|
if item.pole != 0 {
|
||
|
|
latitude := math.Copysign(89.5, item.pole)
|
||
|
|
for longitude := -180.0; longitude < 180; longitude += 5 {
|
||
|
|
point := geodata.GeoPoint{Longitude: longitude, Latitude: latitude}
|
||
|
|
if !geodata.SphericalPolygonsContainPoints(polygons, []geodata.GeoPoint{point})[0] {
|
||
|
|
continue
|
||
|
|
}
|
||
|
|
x, y, ok := projected(point.Longitude, point.Latitude)
|
||
|
|
if !ok {
|
||
|
|
continue
|
||
|
|
}
|
||
|
|
if !planeFillContains(rings, x, y) {
|
||
|
|
t.Fatalf("纬度 %.1f 经度 %.1f 在球面并集内但未被填充", latitude, longitude)
|
||
|
|
}
|
||
|
|
polarSamples++
|
||
|
|
}
|
||
|
|
if polarSamples < 48 {
|
||
|
|
t.Fatalf("极冠样本只有 %d 个", polarSamples)
|
||
|
|
}
|
||
|
|
}
|
||
|
|
|
||
|
|
checked, skipped := 0, 0
|
||
|
|
for latitude := -85.0; latitude <= 85; latitude += 5 {
|
||
|
|
for longitude := -180.0; longitude < 180; longitude += 10 {
|
||
|
|
point := geodata.GeoPoint{Longitude: longitude, Latitude: latitude}
|
||
|
|
x, y, ok := projected(point.Longitude, point.Latitude)
|
||
|
|
if !ok {
|
||
|
|
continue
|
||
|
|
}
|
||
|
|
if planeFillBoundaryDistance(rings, x, y) < 3 {
|
||
|
|
skipped++
|
||
|
|
continue
|
||
|
|
}
|
||
|
|
spherical := geodata.SphericalPolygonsContainPoints(polygons, []geodata.GeoPoint{point})[0]
|
||
|
|
if plane := planeFillContains(rings, x, y); plane != spherical {
|
||
|
|
t.Fatalf("%.1f %.1f 填充=%v 球面并集=%v", longitude, latitude, plane, spherical)
|
||
|
|
}
|
||
|
|
checked++
|
||
|
|
}
|
||
|
|
}
|
||
|
|
if checked < 400 || skipped > checked/4 {
|
||
|
|
t.Fatalf("一致性样本 checked=%d skipped=%d", checked, skipped)
|
||
|
|
}
|
||
|
|
})
|
||
|
|
}
|
||
|
|
}
|
||
|
|
|
||
|
|
func projectedPartialRings(t *testing.T, polygons [][]geodata.GeoPoint, frame svgmap.Frame) [][][2]float64 {
|
||
|
|
t.Helper()
|
||
|
|
var rings [][][2]float64
|
||
|
|
for _, polygon := range polygons {
|
||
|
|
points := make([]geodata.GeoPoint, len(polygon))
|
||
|
|
copy(points, polygon)
|
||
|
|
for _, fragment := range svgmap.PolygonFragments(points, frame.Clip()) {
|
||
|
|
ring := make([][2]float64, 0, len(fragment))
|
||
|
|
for _, point := range fragment {
|
||
|
|
x, y, ok := frame.Project(point.Longitude, point.Latitude)
|
||
|
|
if !ok {
|
||
|
|
ring = nil
|
||
|
|
break
|
||
|
|
}
|
||
|
|
ring = append(ring, [2]float64{x, y})
|
||
|
|
}
|
||
|
|
if len(ring) >= 3 {
|
||
|
|
rings = append(rings, ring)
|
||
|
|
}
|
||
|
|
}
|
||
|
|
}
|
||
|
|
if len(rings) == 0 {
|
||
|
|
t.Fatal("no projected fragment")
|
||
|
|
}
|
||
|
|
return rings
|
||
|
|
}
|
||
|
|
|
||
|
|
func planeFillContains(rings [][][2]float64, x, y float64) bool {
|
||
|
|
winding := 0
|
||
|
|
for _, ring := range rings {
|
||
|
|
for index := range ring {
|
||
|
|
first, second := ring[index], ring[(index+1)%len(ring)]
|
||
|
|
if first[1] <= y {
|
||
|
|
if second[1] > y && (second[0]-first[0])*(y-first[1])-(x-first[0])*(second[1]-first[1]) > 0 {
|
||
|
|
winding++
|
||
|
|
}
|
||
|
|
} else if second[1] <= y && (second[0]-first[0])*(y-first[1])-(x-first[0])*(second[1]-first[1]) < 0 {
|
||
|
|
winding--
|
||
|
|
}
|
||
|
|
}
|
||
|
|
}
|
||
|
|
return winding != 0
|
||
|
|
}
|
||
|
|
|
||
|
|
func planeFillBoundaryDistance(rings [][][2]float64, x, y float64) float64 {
|
||
|
|
distance := math.Inf(1)
|
||
|
|
for _, ring := range rings {
|
||
|
|
for index := range ring {
|
||
|
|
first, second := ring[index], ring[(index+1)%len(ring)]
|
||
|
|
distance = math.Min(distance, planeSegmentDistance(x, y, first, second))
|
||
|
|
}
|
||
|
|
}
|
||
|
|
return distance
|
||
|
|
}
|
||
|
|
|
||
|
|
func planeSegmentDistance(x, y float64, first, second [2]float64) float64 {
|
||
|
|
dx, dy := second[0]-first[0], second[1]-first[1]
|
||
|
|
length := dx*dx + dy*dy
|
||
|
|
fraction := 0.0
|
||
|
|
if length > 0 {
|
||
|
|
fraction = math.Max(0, math.Min(1, ((x-first[0])*dx+(y-first[1])*dy)/length))
|
||
|
|
}
|
||
|
|
return math.Hypot(x-(first[0]+fraction*dx), y-(first[1]+fraction*dy))
|
||
|
|
}
|