Files
OpsLog/app_sat_track_test.go
T
rouggy 052fc4cb80 feat(grids): the square map filters by mode, band and satellite
The FTx button is gone. It was the wrong grain in both directions: the
Digital class already sat a contest RTTY square next to an FT8 one, and
FTx then sat FT8 next to FT4, when what this map answers is where ONE
mode has been heard. The four classes stay as buttons and a dropdown
beside them offers a single mode.

Its contents come from the log, not from a list in the code. That is
what settles FT2: it is not a registered ADIF mode yet, so a hardcoded
list meant either leaving out the operators already using it or shipping
a mode that does not officially exist. A query does neither, and needs
no change here the day it is registered. The mode offered is the SUBMODE
where there is one, because ADIF files PSK63 under PSK and "PSK" is not
the name anybody is looking for.

The band list is the station's own, unioned with anything worked outside
it so nothing in the log is unreachable, ordered by frequency through
the band plan's index — sorting the names puts 10m between 1.25m and
12m. The satellite list is drawn from SAT_NAME on the squares
themselves and the control is absent altogether on a terrestrial log: a
VHF square worked through AO-91 and one worked line-of-sight are not the
same achievement, and until now nothing separated them.

The mode dropdown shares the scope with the class buttons rather than
narrowing on top of them — mode is one question, and two controls both
answering it is how a map ends up showing PHONE ∩ FT8 and nothing else.
A stored FTX preference is read as Digital, so it cannot leave the map
filtered by something no control shows as selected.
2026-09-10 11:07:25 +02:00

175 lines
6.1 KiB
Go

package main
import (
"sort"
"testing"
"hamlog/internal/sat"
)
// The dial arithmetic has to be the exact inverse of the correction, or every
// touch of the knob would nudge the nominal frequency a little further off and
// the uplink would walk across the passband over a pass.
func TestSatNominalFromDialRoundTrip(t *testing.T) {
// A range of range rates: hard approach, drifting, hard recession. ±8 km/s
// covers a low orbit overhead.
for _, rate := range []float64{-8, -3.2, -0.4, 0, 0.4, 3.2, 8} {
p := sat.Position{RangeRate: rate}
for _, nominal := range []int64{29_450_000, 145_900_000, 435_850_000, 10_489_675_000} {
sh := sat.Doppler(p, nominal, 0)
factor := -rate / satLightKmS
got := satNominalFromDial(sh.DownHz, factor)
if diff := got - nominal; diff > 1 || diff < -1 {
t.Errorf("rate %.1f km/s, %d Hz: heard %d, came back as %d (%+d)",
rate, nominal, sh.DownHz, got, diff)
}
}
}
}
// SAT_MODE is what goes on a QSL card, and the letters are the uplink's then
// the downlink's — the order operators write and the order ADIF wants.
func TestSatModeLetters(t *testing.T) {
for _, tc := range []struct {
name string
up, down int64
want string
}{
{"FO-29: 2 m up, 70 cm down", 145_950_000, 435_850_000, "V/U"},
{"AO-91: 70 cm up, 2 m down", 435_250_000, 145_960_000, "U/V"},
{"AO-7 mode A: 2 m up, 10 m down", 145_900_000, 29_450_000, "V/A"},
{"QO-100: 13 cm up, 3 cm down", 2_400_175_000, 10_489_675_000, "S/X"},
{"receive only", 0, 145_800_000, ""},
} {
if got := satModeLetters(tc.up, tc.down); got != tc.want {
t.Errorf("%s: got %q, wanted %q", tc.name, got, tc.want)
}
}
}
// Azimuth-only tracking must not command the rotor once a second.
//
// The step check used to compare BOTH axes, so with the elevation never
// commanded its difference stayed above the step for the whole pass and every
// tick sent the antenna to the bearing it was already on. A rotator is a
// mechanical thing with a finite number of turns in it.
func TestPointRotatorAzOnlyIgnoresElevation(t *testing.T) {
rec := &countingRotator{}
tr := &satTracker{rot: rec, rotStep: 5, rotAzOnly: true}
// The satellite climbs while the bearing barely moves — a pass going
// overhead from the side, which is the shape that provoked this.
for _, p := range []sat.Position{
{Az: 100, El: 5},
{Az: 101, El: 20},
{Az: 102, El: 45},
{Az: 103, El: 70},
} {
tr.pointRotator(p, false)
}
if rec.n != 1 {
t.Errorf("azimuth-only sent %d commands for 3° of bearing, want 1", rec.n)
}
if rec.lastAz != 100 {
t.Errorf("commanded azimuth %v, want the first one", rec.lastAz)
}
// And it still follows the azimuth when the azimuth actually moves.
tr.pointRotator(sat.Position{Az: 130, El: 70}, false)
if rec.n != 2 {
t.Errorf("a 30° swing was not followed: %d commands", rec.n)
}
}
// With an elevation axis, a climb is still followed.
func TestPointRotatorFollowsElevationWhenItCan(t *testing.T) {
rec := &countingRotator{}
tr := &satTracker{rot: rec, rotStep: 5}
tr.pointRotator(sat.Position{Az: 100, El: 5}, false)
tr.pointRotator(sat.Position{Az: 101, El: 40}, false)
if rec.n != 2 {
t.Errorf("a 35° climb was not followed: %d commands", rec.n)
}
if rec.lastEl != 40 {
t.Errorf("commanded elevation %v, want 40", rec.lastEl)
}
}
type countingRotator struct {
n int
lastAz, lastEl float64
}
func (c *countingRotator) Point(az, el float64) error {
c.n++
c.lastAz, c.lastEl = az, el
return nil
}
func (c *countingRotator) Heading() (float64, float64, bool, error) { return 0, 0, false, nil }
func (c *countingRotator) Close() {}
// Which sideband goes on each slice.
//
// An inverting transponder turns the passband over, so a signal transmitted on
// lower sideband comes back on upper. Setting USB at both ends put the
// operator's own audio through upside down — unreadable at the far end, and on
// FO-29, RS-44 and AO-73 that is every contact attempted.
func TestSatSidebands(t *testing.T) {
cases := []struct {
name string
tp sat.Transponder
wantDown, want string
}{
{"inverting linear: LSB up, USB down",
sat.Transponder{Mode: "SSB", Inverting: true}, "USB", "LSB"},
{"non-inverting linear: USB both ways",
sat.Transponder{Mode: "SSB"}, "USB", "USB"},
// A tone is transmitted and received in FM whichever way the passband
// runs, and CW is CW.
{"FM is FM both ways", sat.Transponder{Mode: "FM"}, "FM", "FM"},
{"CW ignores inversion", sat.Transponder{Mode: "CW", Inverting: true}, "CW", "CW"},
}
for _, c := range cases {
down, up := satSidebands(c.tp)
if down != c.wantDown || up != c.want {
t.Errorf("%s: got %s/%s, want %s/%s", c.name, down, up, c.wantDown, c.want)
}
}
}
// The per-band antenna map is keyed by the UPPERCASED band name, because that
// is what the settings panel writes. The satellite tracker looked its two bands
// up with the band plan's own spelling, matched nothing, and ran the pass on
// whichever antenna the radio was last left on — a 70 cm downlink through a 2 m
// transverter, with no error anywhere. This pins the contract in the direction
// that broke.
func TestFlexBandAntKeyIsUppercased(t *testing.T) {
for _, c := range []struct {
hz int64
want string
}{
{435_400_000, "70CM"}, // an FM bird's downlink
{145_950_000, "2M"}, // its uplink
{1_269_000_000, "23CM"}, // AO-92's L band
{29_450_000, "10M"}, // AO-7 mode A
{9_000_000_000, ""}, // nothing in the plan: no key, and no antenna
} {
if got := flexBandAntKey(c.hz); got != c.want {
t.Errorf("flexBandAntKey(%d) = %q, want %q", c.hz, got, c.want)
}
}
}
// A band list sorted as strings puts 10m between 1.25m and 12m, which is why
// the plan's own index is the order.
func TestBandOrderIsByFrequency(t *testing.T) {
got := []string{"70cm", "10m", "160m", "2m", "20m", "banana"}
sort.Slice(got, func(i, j int) bool { return bandOrder(got[i]) < bandOrder(got[j]) })
want := []string{"160m", "20m", "10m", "2m", "70cm", "banana"}
for i := range want {
if got[i] != want[i] {
t.Fatalf("sorted %v, want %v", got, want)
}
}
}