Files
OpsLog/internal/cat/yaesu_test.go
rouggy ee148732dd feat: HAMLOG.online upload and confirmations, Yaesu antenna, a named port holder
HAMLOG.online is a seventh external service: one API key, one ADIF record per
QSO, immediate / delayed / on-close like the rest. They publish no API
documentation, so the protocol is read from THEIR OWN client — the HAMLOG Agent
(github.com/hamlogonline/Agent), which is the authoritative source short of
asking them:

	POST https://hamlog.online/api/agent/
	{"ADIFADD": {"APIKEY": k, "ADIFDATA": record}}   → {"STATUS":"OK"}
	{"KEYSTATUS": {"APIKEY": k}}                     → {"STATUS":"OK","CALLSIGN":…}

Success is STATUS == OK, not "no ERROR field": their failure carries ERROR and
no STATUS, and reading an unknown reply — a proxy page, a maintenance notice —
as an acceptance is how a contact goes missing without anyone noticing.

KEYSTATUS buys something no other service here offers: the key can be checked
BEFORE the first QSO, and the answer names the account. A key pasted from
another callsign is caught in the settings panel rather than through a week of
silent refusals.

Their confirmations are also an award source now, ticked like LoTW rather than
expressed through "custom". It reads the ADIF extras, not a column: the standard
names a field for hamlog.EU and none for hamlog.ONLINE, and borrowing the other
site's field would write a falsehood into every exported log. Three plausible
key names from their own export are accepted too, so nobody has to rename a
column by hand after an export.

Yaesu gains antenna selection (AN), remembered per band — the antenna picked on
a band comes back with it, with no table to fill in anywhere. Rigs with one
socket never answer AN and never show the row; the log says which case it is.

And a serial port that is refused now names its likely holder. OmniRig stays
resident once activated and keeps the port of the rig configured in it, so a
native backend never gets it — "Serial port busy" alone accused nobody, and an
FTDX10 spent a morning being blamed for it.
2026-08-23 12:18:27 +02:00

409 lines
14 KiB
Go

package cat
import (
"fmt"
"testing"
)
func TestParseYaesuFreq(t *testing.T) {
cases := []struct {
reply, prefix string
want int64
ok bool
}{
{"FA014074000;", "FA", 14074000, true},
{"FB007100000;", "FB", 7100000, true},
{"FA000474000;", "FA", 474000, true}, // 630 m — leading zeros must not truncate
{"FA010368000000;", "FA", 10368000000, true},
{"FB;", "FB", 0, false}, // query echoed back with no value
{"FA014074000;", "FB", 0, false}, // wrong VFO — never silently accepted
{"", "FA", 0, false},
{"FAxxxxxxxxx;", "FA", 0, false},
}
for _, c := range cases {
got, ok := parseYaesuFreq(c.reply, c.prefix)
if got != c.want || ok != c.ok {
t.Errorf("parseYaesuFreq(%q,%q) = %d,%v — want %d,%v", c.reply, c.prefix, got, ok, c.want, c.ok)
}
}
}
// The split rules. Getting these wrong writes a WRONG TX frequency into the log,
// which is why an ambiguous state resolves to "not split" rather than to a
// guess — the same principle the OmniRig backend arrived at the hard way.
func TestResolveYaesuVFOs(t *testing.T) {
const a, b = 14074000, 14100000
cases := []struct {
name string
fa, fb int64
vfo string
split bool
wantTX, wantRX int64
wantSplit bool
}{
{"simplex on A", a, b, "A", false, a, 0, false},
{"simplex on B", a, b, "B", false, b, 0, false},
{"split, listening on A → TX on B", a, b, "A", true, b, a, true},
{"split, listening on B → TX on A", a, b, "B", true, a, b, true},
{"split flag but the other VFO is unread", a, 0, "A", true, a, 0, false},
{"split flag but both VFOs identical", a, a, "A", true, a, 0, false},
}
for _, c := range cases {
tx, rx, sp := resolveYaesuVFOs(c.fa, c.fb, c.vfo, c.split)
if tx != c.wantTX || rx != c.wantRX || sp != c.wantSplit {
t.Errorf("%s: got tx=%d rx=%d split=%v — want tx=%d rx=%d split=%v",
c.name, tx, rx, sp, c.wantTX, c.wantRX, c.wantSplit)
}
}
}
// ST and FT say different things, and reading them alike inverted the split
// display on an FTDX101 (F4NBZ, 2026-07-29): the panel showed split ON with the
// radio OFF and the reverse.
//
// ST is a split FLAG — ST1 means split, whatever VFO is in use.
// FT names the TX VFO — FT0 = transmit on A, FT1 = transmit on B.
//
// Split is on when the rig transmits on a DIFFERENT VFO from the one it listens
// to, so FT has to be compared with the current VFO. That is why the same model
// behaved correctly for one operator and backwards for another: one was on MAIN,
// the other on SUB.
func TestYaesuSplitReply(t *testing.T) {
cases := []struct {
reply, cmd, vfo string
want bool
}{
// The flag is absolute.
{"ST1;", "ST", "A", true},
{"ST0;", "ST", "A", false},
{"ST1;", "ST", "B", true},
{"ST0;", "ST", "B", false},
// Listening on A: transmit on B is split, transmit on A is not.
{"FT1;", "FT", "A", true},
{"FT0;", "FT", "A", false},
// Listening on B: exactly the opposite — the reported inversion.
{"FT0;", "FT", "B", true},
{"FT1;", "FT", "B", false},
// The pair enums the Yaesus also report start with the listening VFO.
{"FT0;", "FT", "BA", true},
{"FT1;", "FT", "AB", true},
{"ST1;", "FT", "A", false}, // reply for the other command — not accepted
{"ST", "ST", "A", false}, // truncated
{"", "ST", "A", false},
}
for _, c := range cases {
if got := yaesuSplitFromReply(c.reply, c.cmd, c.vfo); got != c.want {
t.Errorf("yaesuSplitFromReply(%q, %q, vfo=%q) = %v, want %v",
c.reply, c.cmd, c.vfo, got, c.want)
}
}
}
// The sideband follows the frequency, worldwide convention — a CAT backend that
// puts USB on 40 m makes every SSB QSO wrong.
func TestYaesuModeDigit(t *testing.T) {
cases := []struct {
mode string
hz int64
want byte
}{
{"SSB", 7150000, '1'}, // LSB below 10 MHz
{"SSB", 14250000, '2'}, // USB above
{"LSB", 14250000, '1'}, // explicit wins over the convention
{"USB", 7150000, '2'},
{"CW", 7030000, '3'},
{"RTTY", 14080000, '6'},
{"AM", 7150000, '5'},
{"FM", 145000000, '4'},
{"FT8", 7074000, '8'}, // DATA-LSB
{"FT8", 14074000, 'C'}, // DATA-USB
{"JS8", 14078000, 'C'}, // any unknown digital rides on DATA
{"", 14074000, 0}, // nothing to set
}
for _, c := range cases {
if got := yaesuModeDigit(c.mode, c.hz); got != c.want {
t.Errorf("yaesuModeDigit(%q, %d) = %q, want %q", c.mode, c.hz, got, c.want)
}
}
}
// A reply belongs to the command that asked for it.
//
// Without this, a CW macro knocked the CAT link over: KY produces no reply, so
// the poll loop's next FA; collected a leftover frame, failed to parse it as a
// frequency, and the Manager treated that as "lost the rig" and reconnected —
// the CAT dropping for a few seconds on every macro click.
func TestYaesuCmdPrefix(t *testing.T) {
cases := []struct{ cmd, want string }{
{"FA;", "FA"},
{"FB;", "FB"},
{"MD0;", "MD"},
{"KY;", "KY"},
{"KY CQ TEST;", "KY"},
{"SM0;", "SM"},
{"RM4;", "RM"},
{"AG0;", "AG"},
{"TX;", "TX"},
{"", ""},
{";", ""},
}
for _, c := range cases {
if got := cmdPrefix(c.cmd); got != c.want {
t.Errorf("cmdPrefix(%q) = %q, want %q", c.cmd, got, c.want)
}
}
}
// Writing split is as asymmetric as reading it.
//
// ST takes the state directly. FT sets which VFO TRANSMITS, so "split on" means
// transmit on the OTHER VFO from the one being listened to. Sending FT1 for "on"
// regardless is right only on VFO A — on SUB it would CLEAR the split it was
// asked to set, which is the same inversion that showed on the FTDX101 panel.
func TestYaesuSplitCommand(t *testing.T) {
cases := []struct {
cmd, vfo string
on bool
want string
}{
{"ST", "A", true, "ST1;"},
{"ST", "B", true, "ST1;"}, // the flag does not care which VFO
{"ST", "B", false, "ST0;"},
// Listening on A: split means transmit on B.
{"FT", "A", true, "FT1;"},
{"FT", "A", false, "FT0;"},
// Listening on B: split means transmit on A — the reverse.
{"FT", "B", true, "FT0;"},
{"FT", "B", false, "FT1;"},
// Pair enums start with the listening VFO.
{"FT", "BA", true, "FT0;"},
{"FT", "AB", true, "FT1;"},
}
for _, c := range cases {
if got := yaesuSplitCommand(c.cmd, c.vfo, c.on); got != c.want {
t.Errorf("yaesuSplitCommand(%q, vfo=%q, on=%v) = %q, want %q",
c.cmd, c.vfo, c.on, got, c.want)
}
}
}
// Which VFO the operator is listening on, on a rig with separate RX and TX
// selection.
//
// Reported on an FTDX101 (2026-07-29): moving RX alone to SUB displayed VFO B
// correctly, but moving BOTH RX and TX to SUB displayed VFO A — the operator was
// entirely on B and OpsLog showed the other one. FR reports the receive VFO; VS
// does not answer that question on this rig.
//
// With FR read correctly the split follows too, since split is "transmit VFO
// differs from receive VFO".
func TestYaesuReceiveVFOAndSplit(t *testing.T) {
cases := []struct {
name string
fr, ft string // replies
wantVFO string
wantSplit bool
}{
{"everything on main", "FR0;", "FT0;", "A", false},
{"RX on sub, TX still on main — split", "FR1;", "FT0;", "B", true},
{"RX and TX both on sub — NOT split", "FR1;", "FT1;", "B", false},
{"RX on main, TX on sub — split", "FR0;", "FT1;", "A", true},
}
for _, c := range cases {
vfo := "A"
if len(c.fr) >= 3 && c.fr[2] == '1' {
vfo = "B"
}
if vfo != c.wantVFO {
t.Errorf("%s: receive VFO = %s, want %s", c.name, vfo, c.wantVFO)
}
if got := yaesuSplitFromReply(c.ft, "FT", vfo); got != c.wantSplit {
t.Errorf("%s: split = %v, want %v", c.name, got, c.wantSplit)
}
}
}
// The state digit of a reply, when the parameter is not one character.
//
// An FTDX101 answers "FR01;" where an FTDX10 answers "FR0;". The state is the
// FIRST digit on both — the second is a separate parameter.
//
// This test asserted the opposite for one evening. Reading the LAST digit turned
// "FR01" into SUB, so an operator with RX and TX on MAIN saw the main frequency
// freeze and a spot click tune VFO B (F4NBZ, 2026-07-29). The fault it was meant
// to fix — "SUB shows MAIN" — came from reading VS, not from this digit, and the
// FR probe alone had already fixed it.
func TestYaesuStateDigit(t *testing.T) {
cases := []struct {
reply, cmd string
want byte
}{
{"FR0;", "FR", '0'}, // FTDX10 form
{"FR1;", "FR", '1'},
{"FR01;", "FR", '0'}, // FTDX101 form: MAIN — the reported bug read this as SUB
{"FR11;", "FR", '1'}, // …and this is SUB
{"ST1;", "ST", '1'},
{"FT0;", "FT", '0'},
{"VS1;", "VS", '1'},
{"FR1", "FR", '1'}, // terminator already stripped
{"ST1;", "FR", 0}, // another command's reply is never accepted
{"FR;", "FR", 0}, // query echoed with no value
{"FRx;", "FR", 0}, // not a digit
{"", "FR", 0},
}
for _, c := range cases {
if got := yaesuStateDigit(c.reply, c.cmd); got != c.want {
t.Errorf("yaesuStateDigit(%q, %q) = %q, want %q", c.reply, c.cmd, got, c.want)
}
}
// End to end, both directions of the reported fault:
if d := yaesuStateDigit("FR01;", "FR"); d != '0' {
t.Fatalf("FR01 read as %q — the operator is on MAIN and must be seen there", d)
}
if d := yaesuStateDigit("FR11;", "FR"); d != '1' {
t.Fatalf("FR11 read as %q — the operator is on SUB", d)
}
}
// A spot click tunes the VFO the operator is ON, and the display reads that same
// VFO. Both follow from the receive-VFO digit, which is why it is pinned here in
// the operator's terms rather than only as a byte.
//
// Reported both ways round on an FTDX101 (F4NBZ, 2026-07-29): with RX and TX on
// SUB everything worked, and with them on MAIN the frequency froze and a spot
// clicked tuned the sub VFO.
func TestYaesuActiveVFOFollowsReceiveVFO(t *testing.T) {
// Mirrors ReadState's choice of VFO and SetFrequency's choice of command.
activeVFO := func(frReply string) string {
if yaesuStateDigit(frReply, "FR") == '1' {
return "B"
}
return "A"
}
tuneCmd := func(vfo string) string {
if vfo == "B" {
return "FB" // sub
}
return "FA" // main
}
cases := []struct {
name, fr, wantVFO, wantCmd string
}{
{"RX and TX on MAIN (FTDX101 two-digit reply)", "FR01;", "A", "FA"},
{"RX and TX on SUB (FTDX101)", "FR11;", "B", "FB"},
{"MAIN on a one-digit rig", "FR0;", "A", "FA"},
{"SUB on a one-digit rig", "FR1;", "B", "FB"},
}
for _, c := range cases {
vfo := activeVFO(c.fr)
if vfo != c.wantVFO {
t.Errorf("%s: active VFO = %s, want %s", c.name, vfo, c.wantVFO)
}
if cmd := tuneCmd(vfo); cmd != c.wantCmd {
t.Errorf("%s: a spot click would write %s, want %s", c.name, cmd, c.wantCmd)
}
}
}
// Which split command to ASK, given what else the rig answers.
//
// ST is a bare flag and its meaning varies: an FTDX101 with RX and TX both on
// SUB reports ST1, which is plain simplex on the sub VFO, and OpsLog showed
// split with the main frequency as the transmit one (F4NBZ, 2026-07-29).
//
// FT names the transmit VFO. Where the receive VFO is known too (FR), split is
// derived from the pair — they differ or they do not — which is a fact about the
// rig rather than a flag to be interpreted. So FT is preferred when FR answered.
func TestYaesuSplitProbeOrder(t *testing.T) {
order := func(rxVFOCmd string) []string {
if rxVFOCmd != "" {
return []string{"FT", "ST"}
}
return []string{"ST", "FT"}
}
if got := order("FR")[0]; got != "FT" {
t.Errorf("with FR available the first split probe is %q, want FT", got)
}
if got := order("")[0]; got != "ST" {
t.Errorf("without FR the first split probe is %q, want ST", got)
}
// Both remain available: a rig answering only one must still be handled.
for _, rx := range []string{"FR", ""} {
if len(order(rx)) != 2 {
t.Errorf("rxVFOCmd=%q: both probes must remain, got %v", rx, order(rx))
}
}
// The case that was reported, end to end: RX and TX both on sub is NOT split.
if yaesuSplitFromReply("FT1;", "FT", "B") {
t.Error("RX and TX both on SUB reported as split")
}
// And the flag alone would have got it wrong, which is why the order changed.
if !yaesuSplitFromReply("ST1;", "ST", "B") {
t.Error("ST1 is a flag and reads as split whatever the VFO — that is the trap")
}
}
// The mode commands address the receiver the operator is ON.
//
// Reported on an FTDX101 (F4NBZ, 2026-07-29): once a spot click tuned the right
// VFO, it still changed the mode of MAIN while the operator worked from SUB — so
// the VFO in use kept its old mode and the idle one was altered. The read had the
// same fault, so the panel showed main's mode as well.
func TestYaesuModeVFOSuffix(t *testing.T) {
cases := []struct{ vfo, want string }{
{"A", "0"}, // main
{"", "0"}, // not yet read — main is the safe assumption
{"B", "1"}, // sub
{"AB", "0"}, // pair enums start with the receive VFO
}
for _, c := range cases {
y := &Yaesu{}
y.curVFO = c.vfo
if got := y.modeVFOSuffix(); got != c.want {
t.Errorf("curVFO=%q → MD%s, want MD%s", c.vfo, got, c.want)
}
}
// Spelled out as the commands actually sent, which is what the rig sees.
y := &Yaesu{}
y.curVFO = "B"
if cmd := "MD" + y.modeVFOSuffix() + "3;"; cmd != "MD13;" {
t.Errorf("setting CW on the sub receiver sends %q, want MD13;", cmd)
}
y.curVFO = "A"
if cmd := "MD" + y.modeVFOSuffix() + "3;"; cmd != "MD03;" {
t.Errorf("setting CW on main sends %q, want MD03;", cmd)
}
}
// The antenna command, as the FTDX10 reference gives it: AN + receiver + jack.
// The jack is clamped rather than trusted — a panel bug that sent AN09 would be
// answered by the rig with silence, and the operator would be left wondering
// which antenna they were on.
func TestYaesuAntennaCommand(t *testing.T) {
for _, tc := range []struct {
in int
want string
}{
{1, "AN01;"},
{2, "AN02;"},
{3, "AN03;"},
{0, "AN01;"}, // below range → the first jack
{9, "AN03;"}, // above range → the last
{-1, "AN01;"},
} {
got := fmt.Sprintf("AN0%d;", clampInt(tc.in, 1, 3))
if got != tc.want {
t.Errorf("antenna %d → %q, want %q", tc.in, got, tc.want)
}
}
}