Audit prompted by "are we sure the commands are implemented — split, Fake It, Split rig?". The rigctl server is complete and hardened; the TCI one, three days old, had reintroduced a bug rigctld had already paid for. A client working split says two things — where to transmit, and that split is on — and nothing obliges it to say them in that order. A write to channel B while the rig was still simplex was DISCARDED, on the sound principle that preparing a transmit frequency is not a request to QSY. But then the split was armed on whatever the transmit VFO held, which is the receive frequency: the operator transmits straight onto the DX while their software shows exactly what they asked for. The frequency is now remembered and used when the split arrives, which is what rigctld does with set_split_vfo / set_split_freq. Two more from the same source: Asking for a split state the rig is already in touches nothing. A client in Fake It uses no split but still says so to be sure, and answering an error to a request that was already true is what made JTDX abandon a transmission a second into the frame through the rigctl server. A repeated PTT command is not re-sent. One client restated it sixteen times a second, and the Flex's own "xmit 1" was overwritten between two of them inside a millisecond. The same radio sits behind this server — the operator reporting this is on the Flex API backend. Fake It itself needs nothing but channel A, and now has a test saying so.
331 lines
13 KiB
Go
331 lines
13 KiB
Go
package tciserver
|
|
|
|
import (
|
|
"fmt"
|
|
"strings"
|
|
"testing"
|
|
)
|
|
|
|
// fakeRig is a radio that remembers what it was told. Everything here is about
|
|
// what OpsLog does with a client's command, so the rig only has to answer and
|
|
// record.
|
|
type fakeRig struct {
|
|
freq, rxFreq int64
|
|
mode string
|
|
split bool
|
|
txHz int64
|
|
ptt bool
|
|
splitErr error
|
|
calls []string
|
|
}
|
|
|
|
func (r *fakeRig) Freq() int64 { return r.freq }
|
|
func (r *fakeRig) RxFreq() int64 { return r.rxFreq }
|
|
func (r *fakeRig) Mode() string { return r.mode }
|
|
func (r *fakeRig) Split() (bool, int64) { return r.split, r.txHz }
|
|
func (r *fakeRig) SetFreq(hz int64) error {
|
|
r.calls = append(r.calls, fmt.Sprintf("freq=%d", hz))
|
|
r.freq, r.rxFreq = hz, hz
|
|
return nil
|
|
}
|
|
func (r *fakeRig) SetMode(m string) error {
|
|
r.calls = append(r.calls, "mode="+m)
|
|
r.mode = m
|
|
return nil
|
|
}
|
|
func (r *fakeRig) SetPTT(on bool) error {
|
|
r.calls = append(r.calls, fmt.Sprintf("ptt=%v", on))
|
|
r.ptt = on
|
|
return nil
|
|
}
|
|
func (r *fakeRig) SetSplit(on bool, txHz int64) error {
|
|
if r.splitErr != nil {
|
|
return r.splitErr
|
|
}
|
|
r.calls = append(r.calls, fmt.Sprintf("split=%v,%d", on, txHz))
|
|
r.split, r.txHz = on, txHz
|
|
return nil
|
|
}
|
|
|
|
// srv builds a server with no listener — handle() and publish() are the whole
|
|
// protocol, and neither needs a socket.
|
|
func srv(r *fakeRig) *Server { return New(0, r, nil) }
|
|
|
|
// A client with no connection: send() would need one, so reads are checked
|
|
// through the returned line instead. This is why handle returns what it sent.
|
|
func ask(t *testing.T, s *Server, cmd string) string {
|
|
t.Helper()
|
|
return s.handle(&client{}, cmd)
|
|
}
|
|
|
|
// The initialisation block is what a client needs before it will believe there
|
|
// is a radio at all. Its contents come from §4.1 of the protocol document, and
|
|
// a client that does not see ready; simply waits for ever.
|
|
func TestInitBlockCarriesTheDocumentedInitialisationSet(t *testing.T) {
|
|
s := srv(&fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"})
|
|
block := strings.Join(s.initBlock(), "")
|
|
for _, want := range []string{
|
|
"protocol:ExpertSDR3,", "device:", "receive_only:false;", "trx_count:1;",
|
|
"channel_count:2;", "vfo_limits:", "if_limits:", "modulations_list:",
|
|
"ready;", "start;",
|
|
// Transmit permission. A client that models it starts out assuming it
|
|
// may NOT transmit, and without this never even tries — PTT does
|
|
// nothing and the server never sees a trx command at all.
|
|
"tx_enable:0,true;",
|
|
} {
|
|
if !strings.Contains(block, want) {
|
|
t.Errorf("the initialisation block is missing %q — a client would not proceed past connect", want)
|
|
}
|
|
}
|
|
// And the current state, so a client that connects mid-session shows the
|
|
// right frequency instead of waiting for the operator to touch something.
|
|
if !strings.Contains(block, "vfo:0,0,14074000;") {
|
|
t.Errorf("no current frequency in the block:\n%s", block)
|
|
}
|
|
if !strings.Contains(block, "modulation:0,usb;") {
|
|
t.Errorf("no current mode in the block:\n%s", block)
|
|
}
|
|
}
|
|
|
|
// Channel A is where we LISTEN, channel B where we transmit. Handing these to a
|
|
// client the wrong way round is the one mistake here that puts a station on the
|
|
// DX's own frequency, so it is pinned in both directions.
|
|
func TestSplitPutsTheListeningFrequencyOnChannelA(t *testing.T) {
|
|
// OpsLog's RigState is ADIF: Freq is the TRANSMIT frequency, RxFreq where we
|
|
// listen. A DX transmitting on 14025 and listening up 2.
|
|
r := &fakeRig{freq: 14027000, rxFreq: 14025000, mode: "CW", split: true, txHz: 14027000}
|
|
s := srv(r)
|
|
block := strings.Join(s.initBlock(), "")
|
|
if !strings.Contains(block, "vfo:0,0,14025000;") {
|
|
t.Errorf("channel A is not the receive frequency:\n%s", block)
|
|
}
|
|
if !strings.Contains(block, "vfo:0,1,14027000;") {
|
|
t.Errorf("channel B is not the transmit frequency:\n%s", block)
|
|
}
|
|
if !strings.Contains(block, "split_enable:0,true;") {
|
|
t.Errorf("split was not announced:\n%s", block)
|
|
}
|
|
}
|
|
|
|
// Simplex: both channels report the one frequency, so a client reading either
|
|
// gets the right answer.
|
|
func TestSimplexReportsTheSameFrequencyOnBothChannels(t *testing.T) {
|
|
s := srv(&fakeRig{freq: 7100000, rxFreq: 7100000, mode: "SSB"})
|
|
if got := ask(t, s, "vfo:0,0"); got != "vfo:0,0,7100000;" {
|
|
t.Errorf("read of channel A = %q", got)
|
|
}
|
|
if got := ask(t, s, "vfo:0,1"); got != "vfo:0,1,7100000;" {
|
|
t.Errorf("read of channel B = %q", got)
|
|
}
|
|
// 7 MHz is below 10, so SSB is lower sideband — a client told "ssb" would
|
|
// not recognise it at all, the modulation list is the vocabulary.
|
|
if got := ask(t, s, "modulation:0"); got != "modulation:0,lsb;" {
|
|
t.Errorf("read of the mode = %q, want lsb below 10 MHz", got)
|
|
}
|
|
}
|
|
|
|
// The client tunes the radio.
|
|
func TestAClientCanTuneAndSetModeAndKey(t *testing.T) {
|
|
r := &fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"}
|
|
s := srv(r)
|
|
ask(t, s, "vfo:0,0,14200000")
|
|
ask(t, s, "modulation:0,cw")
|
|
ask(t, s, "trx:0,true")
|
|
ask(t, s, "trx:0,false")
|
|
want := []string{"freq=14200000", "mode=CW", "ptt=true", "ptt=false"}
|
|
if strings.Join(r.calls, " ") != strings.Join(want, " ") {
|
|
t.Errorf("the radio was told %v, want %v", r.calls, want)
|
|
}
|
|
}
|
|
|
|
// Channel B is the SPLIT transmit frequency. Writing it while the rig is
|
|
// simplex must not move the only VFO there is: the client asked to prepare a
|
|
// transmit frequency, not to QSY — and a logger that did this on every spot
|
|
// click would drag the operator off the station they were listening to.
|
|
func TestWritingChannelBWhileSimplexLeavesTheRigAlone(t *testing.T) {
|
|
r := &fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"}
|
|
s := srv(r)
|
|
ask(t, s, "vfo:0,1,14080000")
|
|
if len(r.calls) != 0 {
|
|
t.Errorf("the radio was told %v — a split TX frequency moved a simplex rig", r.calls)
|
|
}
|
|
// With split armed it means what it says.
|
|
r.split, r.txHz = true, 14074000
|
|
ask(t, s, "vfo:0,1,14080000")
|
|
if len(r.calls) != 1 || r.calls[0] != "split=true,14080000" {
|
|
t.Errorf("with split on the radio was told %v, want the new transmit frequency", r.calls)
|
|
}
|
|
}
|
|
|
|
// A backend that cannot split says so, and the refusal must not be dressed up
|
|
// as success: the client can then tell the operator to use Fake It, where
|
|
// before it would transmit on the receive frequency believing all was well.
|
|
func TestARefusedSplitIsNotAnnouncedAsDone(t *testing.T) {
|
|
r := &fakeRig{freq: 14025000, rxFreq: 14025000, mode: "CW", splitErr: fmt.Errorf("this backend cannot split")}
|
|
s := srv(r)
|
|
if got := ask(t, s, "split_enable:0,true"); got != "" {
|
|
t.Errorf("a refused split answered %q", got)
|
|
}
|
|
if r.split {
|
|
t.Error("the rig was recorded as split after the backend refused")
|
|
}
|
|
}
|
|
|
|
// Only what moved is sent. TCI clients redraw on every command they receive, so
|
|
// re-sending an unchanged frequency four times a second makes a VFO readout
|
|
// flicker and, in some clients, fights the operator's own tuning.
|
|
func TestOnlyChangesAreSent(t *testing.T) {
|
|
r := &fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"}
|
|
s := srv(r)
|
|
|
|
first := s.publish()
|
|
if len(first) == 0 {
|
|
t.Fatal("the first pass sent nothing — a client would never learn the state")
|
|
}
|
|
if got := s.publish(); len(got) != 0 {
|
|
t.Errorf("an unchanged radio produced %v", got)
|
|
}
|
|
|
|
r.freq, r.rxFreq = 14200000, 14200000
|
|
got := strings.Join(s.publish(), "")
|
|
// Both channels move together on a simplex rig, and the transmit frequency
|
|
// has its own command besides — a client showing "TX 14.200" reads that one,
|
|
// and channel B alone leaves it stale.
|
|
for _, want := range []string{"vfo:0,0,14200000;", "vfo:0,1,14200000;", "tx_frequency:14200000;"} {
|
|
if !strings.Contains(got, want) {
|
|
t.Errorf("after a QSY the clients were not told %q — got %q", want, got)
|
|
}
|
|
}
|
|
if got := s.publish(); len(got) != 0 {
|
|
t.Errorf("the QSY was re-sent: %v", got)
|
|
}
|
|
}
|
|
|
|
// Modes travel both ways, and the data family is the interesting half: a client
|
|
// switching to "digital" must not overwrite the mode the operator chose in
|
|
// OpsLog with a guess at which data mode it was.
|
|
func TestModeMapping(t *testing.T) {
|
|
up := []struct {
|
|
adif string
|
|
hz int64
|
|
want string
|
|
}{
|
|
{"CW", 14025000, "cw"},
|
|
{"SSB", 14200000, "usb"},
|
|
{"SSB", 7100000, "lsb"},
|
|
{"USB", 7100000, "usb"}, // an explicit sideband is never second-guessed
|
|
{"FT8", 14074000, "digu"},
|
|
{"RTTY", 14080000, "digl"},
|
|
{"AM", 3700000, "am"},
|
|
{"FM", 145500000, "nfm"},
|
|
{"", 14074000, ""},
|
|
}
|
|
for _, c := range up {
|
|
if got := adifToTCIMode(c.adif, c.hz); got != c.want {
|
|
t.Errorf("adifToTCIMode(%q, %d) = %q, want %q", c.adif, c.hz, got, c.want)
|
|
}
|
|
}
|
|
down := map[string]string{
|
|
"cw": "CW", "usb": "USB", "lsb": "LSB", "am": "AM", "sam": "AM",
|
|
"nfm": "FM", "digu": "DATA", "digl": "DATA", "": "",
|
|
}
|
|
for in, want := range down {
|
|
if got := tciModeToADIF(in); got != want {
|
|
t.Errorf("tciModeToADIF(%q) = %q, want %q", in, got, want)
|
|
}
|
|
}
|
|
}
|
|
|
|
// A command for something OpsLog is not — audio streams, CW macros, the
|
|
// panorama's settings — is met with silence rather than an error. A client
|
|
// sends these hopefully at connect, and a refusal it did not ask for reads as a
|
|
// fault with the rig.
|
|
func TestUnknownCommandsAreQuiet(t *testing.T) {
|
|
s := srv(&fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"})
|
|
for _, cmd := range []string{"audio_start:0", "cw_macros_speed:25", "rx_filter_band:0,-2700,-100", "iq_start:0"} {
|
|
if got := ask(t, s, cmd); got != "" {
|
|
t.Errorf("%q answered %q", cmd, got)
|
|
}
|
|
}
|
|
}
|
|
|
|
// Split, with the client sending the two commands in the order it prefers.
|
|
//
|
|
// A client working split has to say two things: where to transmit, and that
|
|
// split is on. Nothing obliges it to say them in that order, and the frequency
|
|
// arriving first is the dangerous case: discarding it and then arming split
|
|
// leaves the transmit VFO on whatever it held — the RECEIVE frequency — so the
|
|
// operator transmits straight onto the DX while their software shows exactly
|
|
// what they asked for.
|
|
func TestSplitIsArmedOnTheFrequencyTheClientGaveWhicheverOrderItCame(t *testing.T) {
|
|
// Frequency first, then split — the order that used to lose the frequency.
|
|
r := &fakeRig{freq: 14025000, rxFreq: 14025000, mode: "CW"}
|
|
s := srv(r)
|
|
ask(t, s, "vfo:0,1,14027000")
|
|
ask(t, s, "split_enable:0,true")
|
|
if len(r.calls) != 1 || r.calls[0] != "split=true,14027000" {
|
|
t.Errorf("frequency first: the radio was told %v, want split armed on 14027000", r.calls)
|
|
}
|
|
|
|
// Split first, then the frequency — the order that always worked.
|
|
r2 := &fakeRig{freq: 14025000, rxFreq: 14025000, mode: "CW"}
|
|
s2 := srv(r2)
|
|
ask(t, s2, "split_enable:0,true")
|
|
ask(t, s2, "vfo:0,1,14027000")
|
|
if len(r2.calls) == 0 || r2.calls[len(r2.calls)-1] != "split=true,14027000" {
|
|
t.Errorf("split first: the radio was told %v, want it to end on 14027000", r2.calls)
|
|
}
|
|
}
|
|
|
|
// "Fake It" uses no split at all: the client shifts the DIAL at the start of
|
|
// transmit and shifts it back at the end. All it needs is channel A, and it
|
|
// must reach the radio both ways.
|
|
func TestFakeItIsJustTheDialMoving(t *testing.T) {
|
|
r := &fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"}
|
|
s := srv(r)
|
|
ask(t, s, "vfo:0,0,14075300") // up for the over
|
|
ask(t, s, "vfo:0,0,14074000") // and back
|
|
want := []string{"freq=14075300", "freq=14074000"}
|
|
if strings.Join(r.calls, " ") != strings.Join(want, " ") {
|
|
t.Errorf("the radio was told %v, want %v", r.calls, want)
|
|
}
|
|
}
|
|
|
|
// A client in Fake It still says "split off" to be sure. The rig is already
|
|
// simplex, so there is nothing to do — and saying so beats asking a backend
|
|
// that may not be able to set split at all.
|
|
//
|
|
// This is what broke JTDX through the rigctl server: an error answered to a
|
|
// request that was already true, read as rig control failing, and the
|
|
// transmission abandoned a second into the frame.
|
|
func TestSayingSplitOffWhenAlreadySimplexTouchesNothing(t *testing.T) {
|
|
r := &fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB",
|
|
splitErr: fmt.Errorf("this backend cannot split")}
|
|
s := srv(r)
|
|
ask(t, s, "split_enable:0,false")
|
|
if len(r.calls) != 0 {
|
|
t.Errorf("the radio was told %v for a state it was already in", r.calls)
|
|
}
|
|
}
|
|
|
|
// A client restating PTT must not re-command the radio. Through the rigctl
|
|
// server, one sent set_ptt 0 sixteen times a second and the Flex's own transmit
|
|
// request was overwritten between two of them inside a millisecond.
|
|
func TestRepeatedPTTIsNotResentToTheRadio(t *testing.T) {
|
|
r := &fakeRig{freq: 14074000, rxFreq: 14074000, mode: "USB"}
|
|
s := srv(r)
|
|
for i := 0; i < 5; i++ {
|
|
ask(t, s, "trx:0,false")
|
|
}
|
|
if len(r.calls) != 1 || r.calls[0] != "ptt=false" {
|
|
// The FIRST one always goes through: there is no knowing how the radio
|
|
// was left.
|
|
t.Errorf("the radio was told %v, want one unkey and no repeats", r.calls)
|
|
}
|
|
ask(t, s, "trx:0,true")
|
|
ask(t, s, "trx:0,true")
|
|
if len(r.calls) != 2 || r.calls[1] != "ptt=true" {
|
|
t.Errorf("the radio was told %v, want the change through and the repeat dropped", r.calls)
|
|
}
|
|
}
|