Files
OpsLog/internal/rigctld/rigctld_test.go
T
rouggy 43095a1d89 feat(rigctld): split that actually reaches the radio, or an honest refusal
set_split_vfo and set_split_freq both answered RPRT 0 and did nothing. WSJT-X
and JTDX in "Split Operating: Rig" send exactly that pair, believed both, and
transmitted on the RECEIVE frequency — on a pileup, straight onto the DX, while
showing the operator precisely what they had asked for. A lie that leaves no
trace in any log is the worst kind of bug this program can have.

The two commands are honoured as a PAIR. Arming alone does nothing on the radio,
because WSJT-X sends the frequency second and split armed on whatever the
transmit VFO happened to hold is worse than no split at all: it transmits
somewhere the operator never chose. The request is remembered and set_split_freq
does the work.

Kenwood gains SetSplit — FB to place the dial, then FR0/FT1 to arm, in that
order for the same reason. It writes what State() already knows how to read.

Everything else REFUSES, and that is the feature, not a shortfall. Only Flex and
Icom could even toggle split before, neither could set the transmit frequency,
and Yaesu, TCI and OmniRig have nothing at all. A refusal WSJT-X can report —
and act on, by falling back to Fake It — is worth far more than a success it has
no way to check.

Both paths are pinned: split reaching the rig as one armed call with the right
frequency, and a backend that cannot do it producing an error rather than RPRT 0.
2026-08-11 17:53:46 +02:00

335 lines
10 KiB
Go

package rigctld
import (
"bufio"
"errors"
"fmt"
"net"
"strings"
"sync"
"testing"
"time"
)
// fakeRig stands in for the CAT manager.
type fakeRig struct {
mu sync.Mutex
freq int64
mode string
split bool
txFreq int64
ptt bool
setFreqs []int64
setModes []string
failSet bool
// noSplit models a backend that cannot set split — the case that must reach
// the client as a refusal instead of a silent success.
noSplit bool
splitCalls []string
}
func (f *fakeRig) Freq() int64 { f.mu.Lock(); defer f.mu.Unlock(); return f.freq }
func (f *fakeRig) Mode() string { f.mu.Lock(); defer f.mu.Unlock(); return f.mode }
func (f *fakeRig) Split() (bool, int64) { f.mu.Lock(); defer f.mu.Unlock(); return f.split, f.txFreq }
func (f *fakeRig) SetSplit(on bool, txHz int64) error {
f.mu.Lock()
defer f.mu.Unlock()
if f.noSplit {
return errors.New("this radio cannot set split from software")
}
f.splitCalls = append(f.splitCalls, fmt.Sprintf("%v:%d", on, txHz))
f.split, f.txFreq = on, txHz
return nil
}
func (f *fakeRig) SetFreq(hz int64) error {
f.mu.Lock()
defer f.mu.Unlock()
if f.failSet {
return fmt.Errorf("rig refused")
}
f.freq = hz
f.setFreqs = append(f.setFreqs, hz)
return nil
}
func (f *fakeRig) SetMode(m string) error {
f.mu.Lock()
defer f.mu.Unlock()
if f.failSet {
return fmt.Errorf("rig refused")
}
f.mode = m
f.setModes = append(f.setModes, m)
return nil
}
func (f *fakeRig) SetPTT(on bool) error {
f.mu.Lock()
defer f.mu.Unlock()
if f.failSet {
return fmt.Errorf("rig refused")
}
f.ptt = on
return nil
}
// The command table. These exact strings are what WSJT-X and MSHV put on the
// wire, so they are the contract — a reply in the wrong shape does not degrade
// gracefully, the client simply refuses to work with the rig.
func TestHandleCommands(t *testing.T) {
rig := &fakeRig{freq: 14074000, mode: "FT8", split: true, txFreq: 14100000}
s := New(0, rig, nil)
cases := []struct{ in, want string }{
{"f", "14074000\n"},
{"\\get_freq", "14074000\n"},
{"m", "PKTUSB\n3000\n"}, // a digital mode reads as PKTUSB
{"t", "0\n"}, // PTT always reads RX — see the comment
{"v", "VFOA\n"},
{"s", "1\nVFOB\n"}, // split on, TX on B
{"i", "14100000\n"}, // split TX frequency
{"F 14200000", "RPRT 0\n"},
{"F 14200000.000000", "RPRT 0\n"}, // the float form clients also send
{"M USB 2400", "RPRT 0\n"},
{"T 1", "RPRT 0\n"},
{"V VFOB", "RPRT 0\n"}, // accepted and ignored, never an error
{"S 1 VFOB", "RPRT 0\n"},
{"\\chk_vfo", "CHKVFO 0\n"},
{"F", "RPRT -1\n"}, // missing argument
{"F not_a_number", "RPRT -1\n"},
{"Z", "RPRT -11\n"}, // unknown → answered, never silence
{"", ""},
}
for _, c := range cases {
got, _ := s.handle(c.in)
if got != c.want {
t.Errorf("handle(%q) = %q, want %q", c.in, got, c.want)
}
}
if q := func() bool { _, q := s.handle("q"); return q }(); !q {
t.Error("q must end the session")
}
}
// Hamlib's VFO dialect. JTDX names the target VFO before the value — "F VFOA
// 14074000" — where MSHV sends "F 14074000". Reading the VFO name as the
// frequency is what produced "Hamlib error: Invalid parameter while setting
// frequency" on JTDX while MSHV worked perfectly.
func TestHandleAcceptsVFOPrefixedCommands(t *testing.T) {
rig := &fakeRig{freq: 7074000, mode: "SSB"}
s := New(0, rig, nil)
if got, _ := s.handle("F VFOA 14074000"); got != "RPRT 0\n" {
t.Fatalf("handle(\"F VFOA 14074000\") = %q, want RPRT 0", got)
}
if got := rig.Freq(); got != 14074000 {
t.Errorf("frequency = %d, want 14074000 — the VFO name swallowed the value", got)
}
if got, _ := s.handle("M VFOA USB 2400"); got != "RPRT 0\n" {
t.Errorf("handle(\"M VFOA USB 2400\") = %q, want RPRT 0", got)
}
if got, _ := s.handle("T VFOA 1"); got != "RPRT 0\n" {
t.Errorf("handle(\"T VFOA 1\") = %q, want RPRT 0", got)
}
// A read with the VFO named must still answer the value, not an error.
if got, _ := s.handle("f VFOA"); got != "14074000\n" {
t.Errorf("handle(\"f VFOA\") = %q, want the frequency", got)
}
// And the plain dialect must keep working — this is an ADDITION, not a swap.
if got, _ := s.handle("F 21074000"); got != "RPRT 0\n" {
t.Errorf("plain set_freq broke: %q", got)
}
// "S 1 VFOB" starts with the split flag, not a VFO: nothing must be eaten.
if got, _ := s.handle("S 1 VFOB"); got != "RPRT 0\n" {
t.Errorf("handle(\"S 1 VFOB\") = %q, want RPRT 0", got)
}
}
// A rig that refuses must produce an error report, not a success — a client told
// "RPRT 0" believes the radio moved and will log the wrong frequency.
func TestHandleReportsBackendFailure(t *testing.T) {
s := New(0, &fakeRig{failSet: true}, nil)
for _, in := range []string{"F 14200000", "M USB 2400", "T 1"} {
if got, _ := s.handle(in); got != "RPRT -9\n" {
t.Errorf("handle(%q) with a failing rig = %q, want RPRT -9", in, got)
}
}
}
// get_ptt must echo the last commanded PTT state. WSJT-X/JTDX poll get_ptt while
// transmitting to confirm the rig is keyed; a blanket "0" made them decide PTT
// had failed and abort the over after a second or two.
func TestGetPTTEchoesSetPTT(t *testing.T) {
s := New(0, &fakeRig{}, nil)
if got, _ := s.handle("t"); got != "0\n" {
t.Fatalf("initial get_ptt = %q, want 0", got)
}
if got, _ := s.handle("T 1"); got != "RPRT 0\n" {
t.Fatalf("set_ptt 1 = %q, want RPRT 0", got)
}
if got, _ := s.handle("t"); got != "1\n" {
t.Fatalf("get_ptt after T 1 = %q, want 1 — client would abort TX", got)
}
if got, _ := s.handle("T 0"); got != "RPRT 0\n" {
t.Fatalf("set_ptt 0 = %q, want RPRT 0", got)
}
if got, _ := s.handle("t"); got != "0\n" {
t.Fatalf("get_ptt after T 0 = %q, want 0", got)
}
}
// dump_state is parsed POSITIONALLY by Hamlib clients: WSJT-X reads the first
// line as the protocol version and refuses to continue if the block is short or
// misshapen. Pinning its shape is what stops a well-meaning edit from silently
// breaking every client.
func TestDumpStateShape(t *testing.T) {
lines := strings.Split(strings.TrimRight(dumpState, "\n"), "\n")
if len(lines) < 20 {
t.Fatalf("dump_state has %d lines — clients expect the full capability block", len(lines))
}
if lines[0] != "0" {
t.Errorf("dump_state protocol version = %q, want \"0\"", lines[0])
}
// The frequency-range lines must carry seven fields, or the client's parse
// slides and every later capability is read from the wrong place.
for _, i := range []int{3, 5} {
if n := len(strings.Fields(lines[i])); n != 7 {
t.Errorf("dump_state line %d has %d fields, want 7: %q", i, n, lines[i])
}
}
}
// End to end over a real socket, because the framing (one reply per line,
// flushed immediately) is as much a part of the contract as the text.
func TestServerOverTCP(t *testing.T) {
rig := &fakeRig{freq: 7074000, mode: "SSB"}
s := New(0, rig, nil)
ln, err := net.Listen("tcp", "127.0.0.1:0")
if err != nil {
t.Fatalf("listen: %v", err)
}
s.mu.Lock()
s.ln = ln
s.mu.Unlock()
go func() {
for {
c, err := ln.Accept()
if err != nil {
return
}
go s.serve(c)
}
}()
defer s.Stop()
c, err := net.DialTimeout("tcp", ln.Addr().String(), dialTimeout)
if err != nil {
t.Fatalf("dial: %v", err)
}
defer c.Close()
r := bufio.NewReader(c)
if _, err := c.Write([]byte("f\n")); err != nil {
t.Fatalf("write: %v", err)
}
line, err := r.ReadString('\n')
if err != nil {
t.Fatalf("read: %v", err)
}
if strings.TrimSpace(line) != "7074000" {
t.Errorf("get_freq over TCP = %q, want 7074000", strings.TrimSpace(line))
}
if _, err := c.Write([]byte("F 14074000\n")); err != nil {
t.Fatalf("write: %v", err)
}
line, _ = r.ReadString('\n')
if strings.TrimSpace(line) != "RPRT 0" {
t.Errorf("set_freq over TCP = %q, want RPRT 0", strings.TrimSpace(line))
}
if got := rig.Freq(); got != 14074000 {
t.Errorf("rig frequency = %d, want 14074000 — the command never reached it", got)
}
}
// A client that vanishes mid-over must not leave the transmitter keyed. Nothing
// else would notice: the Kenwood/Elecraft backend stops polling while PTT is
// held, so a K3 was seen sitting in transmit for 29 s after WSJT-X's socket was
// closed under it by a settings save.
func TestPTTIsDroppedWhenTheClientDisappears(t *testing.T) {
rig := &fakeRig{freq: 14074000, mode: "FT8"}
s := New(0, rig, nil)
ln, err := net.Listen("tcp", "127.0.0.1:0")
if err != nil {
t.Fatalf("listen: %v", err)
}
s.mu.Lock()
s.ln = ln
s.mu.Unlock()
go func() {
for {
c, err := ln.Accept()
if err != nil {
return
}
go s.serve(c)
}
}()
defer s.Stop()
c, err := net.DialTimeout("tcp", ln.Addr().String(), dialTimeout)
if err != nil {
t.Fatalf("dial: %v", err)
}
r := bufio.NewReader(c)
// "T 3" is what WSJT-X sends for PTT_ON_DATA — the form seen in the field.
if _, err := c.Write([]byte("T 3\n")); err != nil {
t.Fatalf("write: %v", err)
}
line, _ := r.ReadString('\n')
if strings.TrimSpace(line) != "RPRT 0" {
t.Fatalf("set_ptt = %q, want RPRT 0", strings.TrimSpace(line))
}
rig.mu.Lock()
keyed := rig.ptt
rig.mu.Unlock()
if !keyed {
t.Fatalf("rig is not keyed after T 3 — the test proves nothing")
}
_ = c.Close()
// The unkey happens on the serve goroutine's defer, so poll briefly.
deadline := time.Now().Add(2 * time.Second)
for time.Now().Before(deadline) {
rig.mu.Lock()
keyed = rig.ptt
rig.mu.Unlock()
if !keyed {
return
}
time.Sleep(10 * time.Millisecond)
}
t.Error("rig still keyed after the client disconnected — the transmitter was left on air")
}
func TestModeMapping(t *testing.T) {
for _, c := range []struct{ adif, hamlib string }{
{"SSB", "USB"}, {"LSB", "LSB"}, {"CW", "CW"}, {"RTTY", "RTTY"},
{"FT8", "PKTUSB"}, {"JS8", "PKTUSB"}, {"", "USB"},
} {
if got := adifToHamlib(c.adif); got != c.hamlib {
t.Errorf("adifToHamlib(%q) = %q, want %q", c.adif, got, c.hamlib)
}
}
// Digital comes back as DATA, never as a specific sub-mode: the CAT backend
// applies the operator's own digital default, so a client that switches the
// rig to data does not relabel a JS8 operator's QSOs as FT8.
for _, c := range []struct{ hamlib, adif string }{
{"PKTUSB", "DATA"}, {"PKTLSB", "DATA"}, {"DIGU", "DATA"},
{"USB", "USB"}, {"CWR", "CW"}, {"FMN", "FM"},
} {
if got := hamlibToADIF(c.hamlib); got != c.adif {
t.Errorf("hamlibToADIF(%q) = %q, want %q", c.hamlib, got, c.adif)
}
}
}