The store shipped without its main source. Locators came only from this station's own WSJT-X decodes, which is what the whole MQTT discussion was about. PSK Reporter now feeds it through a new OnGrid callback, fired before any geographic filtering: what the store wants is "which square is this callsign in", and that is true whoever happened to hear the report. The subscription filters on the RECEIVER's square, a level the v2 topic exposes. Measured on the live feed: the four opening bands unfiltered are 83 messages a second, of which roughly one in a hundred survived the NearKm test that already existed here — the rest was received, TLS-decrypted, JSON-parsed and discarded. One ring of squares is 0.2 to 1.2 a second. By square rather than by DXCC, which was the obvious alternative: one country measured 1.2 messages a second (OH) against 72.5 (K) on a single band, because a DXCC can be a continent. By square the same measurement is 0.2 to 1.2, so the load follows distance — what the feed is actually about — and is the same for every operator. Grid chasing subscribes with the "+" band wildcard, so one subscription per square covers every band instead of one per band per square. The store gains a source column (decode | mqtt), migrated in place on an existing file.
121 lines
3.5 KiB
Go
121 lines
3.5 KiB
Go
// Package geo is the one place that turns Maidenhead locators into positions,
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// and positions into distances and bearings.
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//
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// It exists because there were about to be three copies. These functions lived
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// in package main, which the internal packages cannot import, so the PSK
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// Reporter watcher had its geometry injected from main and the web publisher
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// was about to grow its own. A bearing that disagrees with itself between two
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// panels is the kind of fault nobody reports, because each screen looks
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// plausible on its own.
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package geo
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import (
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"math"
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"strings"
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)
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// GridToLatLon parses a Maidenhead locator (4 or 6 characters) and returns the
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// centre of that square in degrees. ok=false on malformed input.
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func GridToLatLon(grid string) (lat, lon float64, ok bool) {
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g := strings.ToUpper(strings.TrimSpace(grid))
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if len(g) < 4 {
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return 0, 0, false
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}
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A := g[0] - 'A'
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B := g[1] - 'A'
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C := g[2] - '0'
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D := g[3] - '0'
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if A > 17 || B > 17 || C > 9 || D > 9 {
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return 0, 0, false
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}
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lon = -180 + float64(A)*20 + float64(C)*2
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lat = -90 + float64(B)*10 + float64(D)*1
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if len(g) >= 6 {
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E := g[4] - 'A'
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F := g[5] - 'A'
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if E <= 23 && F <= 23 {
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lon += float64(E)*(5.0/60.0) + 2.5/60.0
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lat += float64(F)*(2.5/60.0) + 1.25/60.0
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return lat, lon, true
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}
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}
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// 4-character locator: aim at the centre of the square.
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lon += 1
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lat += 0.5
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return lat, lon, true
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}
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// HaversineKm returns the great-circle distance between two positions in
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// kilometres. Mean Earth radius 6371 km.
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func HaversineKm(lat1, lon1, lat2, lon2 float64) float64 {
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const R = 6371.0
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rad := math.Pi / 180.0
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dLat := (lat2 - lat1) * rad
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dLon := (lon2 - lon1) * rad
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a := math.Sin(dLat/2)*math.Sin(dLat/2) +
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math.Cos(lat1*rad)*math.Cos(lat2*rad)*math.Sin(dLon/2)*math.Sin(dLon/2)
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return R * 2 * math.Atan2(math.Sqrt(a), math.Sqrt(1-a))
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}
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// DistanceBetweenGrids is the distance in kilometres between two locators,
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// ok=false when either cannot be parsed.
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func DistanceBetweenGrids(a, b string) (km float64, ok bool) {
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lat1, lon1, ok1 := GridToLatLon(a)
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lat2, lon2, ok2 := GridToLatLon(b)
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if !ok1 || !ok2 {
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return 0, false
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}
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return HaversineKm(lat1, lon1, lat2, lon2), true
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}
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// LatLonToGrid returns the 4-character Maidenhead square for a position.
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func LatLonToGrid(lat, lon float64) string {
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lon = math.Mod(lon+180, 360)
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if lon < 0 {
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lon += 360
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}
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lat = lat + 90
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if lat < 0 {
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lat = 0
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} else if lat > 180 {
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lat = 180
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}
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return string([]byte{
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byte('A' + int(lon/20)),
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byte('A' + int(lat/10)),
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byte('0' + int(math.Mod(lon, 20)/2)),
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byte('0' + int(math.Mod(lat, 10)/1)),
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})
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}
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// NeighbourGrids returns the square holding (lat, lon) and the ring of squares
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// around it — 9 squares for ring 1, 25 for ring 2.
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//
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// Used to filter the PSK Reporter feed at the BROKER rather than in OpsLog. A
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// square is about 111 km tall and 150 km wide at mid latitudes, so one ring is
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// roughly the 300 km "around here" the feed already meant, and the traffic that
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// used to be received and discarded is never sent.
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func NeighbourGrids(lat, lon float64, ring int) []string {
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if ring < 0 {
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ring = 0
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}
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seen := map[string]bool{}
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out := []string{}
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for dLat := -ring; dLat <= ring; dLat++ {
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for dLon := -ring; dLon <= ring; dLon++ {
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// One square step: 1° of latitude, 2° of longitude.
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la := lat + float64(dLat)
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lo := lon + float64(dLon)*2
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if la > 90 || la < -90 {
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continue // past a pole there is no square, not a wrapped one
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}
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g := LatLonToGrid(la, lo)
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if !seen[g] {
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seen[g] = true
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out = append(out, g)
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}
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}
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}
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return out
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}
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