package svgmap import ( "math" "strings" "testing" ) func TestPolarProjectionPlacesPoleAtCenterAndEquatorOnFrame(t *testing.T) { frame := Frame{X: 10, Y: 20, Width: 300, Height: 300, Projection: ProjectionNorthPolar} x, y, ok := frame.Project(123, 90) if !ok || math.Abs(x-160) > 1e-9 || math.Abs(y-170) > 1e-9 { t.Fatalf("north pole = %.3f %.3f %v, want map center", x, y, ok) } x, y, ok = frame.Project(0, 0) if !ok || math.Abs(x-160) > 1e-9 || math.Abs(y-20) > 1e-9 { t.Fatalf("prime-meridian equator = %.3f %.3f %v, want top edge", x, y, ok) } if _, _, ok := frame.Project(0, -1); ok { t.Fatal("north-polar projection accepted a southern-hemisphere point") } } func TestProjectionClippingDoesNotSplitPolarAntimeridian(t *testing.T) { points := []GeoPoint{{Longitude: 170, Latitude: 70}, {Longitude: -170, Latitude: 70}} segments := PolylineSegments(points, ProjectionNorthPolar) if len(segments) != 1 || len(segments[0]) != 2 { t.Fatalf("polar antimeridian segments = %#v, want one continuous segment", segments) } segments = PolylineSegments(points, ProjectionEquirectangular) if len(segments) != 2 { t.Fatalf("equirectangular antimeridian segment count = %d, want 2", len(segments)) } } func TestNaturalEarthAssetsAndPolarClip(t *testing.T) { if len(equirectangularLandPath) < 150000 || len(northPolarLandPath) < 100000 || len(southPolarLandPath) < 40000 { t.Fatalf("unexpected embedded map sizes: world=%d north=%d south=%d", len(equirectangularLandPath), len(northPolarLandPath), len(southPolarLandPath)) } frame := Frame{Width: 300, Height: 300, Projection: ProjectionSouthPolar} var builder strings.Builder frame.WriteOcean(&builder) frame.WriteLand(&builder, "clip") frame.WriteFrame(&builder) for _, want := range []string{`class="map-ocean"`, `class="land"`, `class="map-frame"`, `