The operator's description separates the two cases precisely, and that is what identifies the fault. RX alone on SUB displayed VFO B correctly; RX AND TX on SUB — entirely on the sub receiver — displayed VFO A. VS was being read as "which VFO is in use". On an FTDX101 it does not answer that question: with both RX and TX on sub it still reported the main VFO. FR is the command that selects the RECEIVE VFO, and it is now asked first, VS remaining the fallback for models that lack it. Split falls out of the same correction: split means the TRANSMIT VFO differs from the RECEIVE one, so a wrong receive VFO made the comparison wrong too — which is the second half of what was reported. A test covers all four RX/TX combinations, including the one that is NOT split (both on sub) and reads as split if you take the transmit VFO alone.
225 lines
7.5 KiB
Go
225 lines
7.5 KiB
Go
package cat
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import "testing"
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func TestParseYaesuFreq(t *testing.T) {
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cases := []struct {
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reply, prefix string
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want int64
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ok bool
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}{
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{"FA014074000;", "FA", 14074000, true},
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{"FB007100000;", "FB", 7100000, true},
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{"FA000474000;", "FA", 474000, true}, // 630 m — leading zeros must not truncate
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{"FA010368000000;", "FA", 10368000000, true},
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{"FB;", "FB", 0, false}, // query echoed back with no value
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{"FA014074000;", "FB", 0, false}, // wrong VFO — never silently accepted
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{"", "FA", 0, false},
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{"FAxxxxxxxxx;", "FA", 0, false},
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}
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for _, c := range cases {
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got, ok := parseYaesuFreq(c.reply, c.prefix)
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if got != c.want || ok != c.ok {
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t.Errorf("parseYaesuFreq(%q,%q) = %d,%v — want %d,%v", c.reply, c.prefix, got, ok, c.want, c.ok)
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}
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}
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}
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// The split rules. Getting these wrong writes a WRONG TX frequency into the log,
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// which is why an ambiguous state resolves to "not split" rather than to a
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// guess — the same principle the OmniRig backend arrived at the hard way.
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func TestResolveYaesuVFOs(t *testing.T) {
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const a, b = 14074000, 14100000
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cases := []struct {
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name string
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fa, fb int64
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vfo string
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split bool
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wantTX, wantRX int64
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wantSplit bool
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}{
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{"simplex on A", a, b, "A", false, a, 0, false},
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{"simplex on B", a, b, "B", false, b, 0, false},
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{"split, listening on A → TX on B", a, b, "A", true, b, a, true},
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{"split, listening on B → TX on A", a, b, "B", true, a, b, true},
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{"split flag but the other VFO is unread", a, 0, "A", true, a, 0, false},
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{"split flag but both VFOs identical", a, a, "A", true, a, 0, false},
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}
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for _, c := range cases {
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tx, rx, sp := resolveYaesuVFOs(c.fa, c.fb, c.vfo, c.split)
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if tx != c.wantTX || rx != c.wantRX || sp != c.wantSplit {
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t.Errorf("%s: got tx=%d rx=%d split=%v — want tx=%d rx=%d split=%v",
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c.name, tx, rx, sp, c.wantTX, c.wantRX, c.wantSplit)
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}
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}
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}
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// ST and FT say different things, and reading them alike inverted the split
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// display on an FTDX101 (F4NBZ, 2026-07-29): the panel showed split ON with the
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// radio OFF and the reverse.
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//
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// ST is a split FLAG — ST1 means split, whatever VFO is in use.
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// FT names the TX VFO — FT0 = transmit on A, FT1 = transmit on B.
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//
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// Split is on when the rig transmits on a DIFFERENT VFO from the one it listens
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// to, so FT has to be compared with the current VFO. That is why the same model
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// behaved correctly for one operator and backwards for another: one was on MAIN,
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// the other on SUB.
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func TestYaesuSplitReply(t *testing.T) {
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cases := []struct {
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reply, cmd, vfo string
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want bool
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}{
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// The flag is absolute.
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{"ST1;", "ST", "A", true},
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{"ST0;", "ST", "A", false},
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{"ST1;", "ST", "B", true},
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{"ST0;", "ST", "B", false},
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// Listening on A: transmit on B is split, transmit on A is not.
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{"FT1;", "FT", "A", true},
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{"FT0;", "FT", "A", false},
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// Listening on B: exactly the opposite — the reported inversion.
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{"FT0;", "FT", "B", true},
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{"FT1;", "FT", "B", false},
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// The pair enums the Yaesus also report start with the listening VFO.
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{"FT0;", "FT", "BA", true},
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{"FT1;", "FT", "AB", true},
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{"ST1;", "FT", "A", false}, // reply for the other command — not accepted
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{"ST", "ST", "A", false}, // truncated
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{"", "ST", "A", false},
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}
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for _, c := range cases {
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if got := yaesuSplitFromReply(c.reply, c.cmd, c.vfo); got != c.want {
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t.Errorf("yaesuSplitFromReply(%q, %q, vfo=%q) = %v, want %v",
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c.reply, c.cmd, c.vfo, got, c.want)
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}
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}
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}
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// The sideband follows the frequency, worldwide convention — a CAT backend that
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// puts USB on 40 m makes every SSB QSO wrong.
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func TestYaesuModeDigit(t *testing.T) {
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cases := []struct {
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mode string
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hz int64
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want byte
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}{
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{"SSB", 7150000, '1'}, // LSB below 10 MHz
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{"SSB", 14250000, '2'}, // USB above
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{"LSB", 14250000, '1'}, // explicit wins over the convention
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{"USB", 7150000, '2'},
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{"CW", 7030000, '3'},
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{"RTTY", 14080000, '6'},
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{"AM", 7150000, '5'},
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{"FM", 145000000, '4'},
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{"FT8", 7074000, '8'}, // DATA-LSB
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{"FT8", 14074000, 'C'}, // DATA-USB
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{"JS8", 14078000, 'C'}, // any unknown digital rides on DATA
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{"", 14074000, 0}, // nothing to set
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}
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for _, c := range cases {
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if got := yaesuModeDigit(c.mode, c.hz); got != c.want {
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t.Errorf("yaesuModeDigit(%q, %d) = %q, want %q", c.mode, c.hz, got, c.want)
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}
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}
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}
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// A reply belongs to the command that asked for it.
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//
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// Without this, a CW macro knocked the CAT link over: KY produces no reply, so
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// the poll loop's next FA; collected a leftover frame, failed to parse it as a
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// frequency, and the Manager treated that as "lost the rig" and reconnected —
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// the CAT dropping for a few seconds on every macro click.
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func TestYaesuCmdPrefix(t *testing.T) {
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cases := []struct{ cmd, want string }{
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{"FA;", "FA"},
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{"FB;", "FB"},
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{"MD0;", "MD"},
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{"KY;", "KY"},
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{"KY CQ TEST;", "KY"},
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{"SM0;", "SM"},
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{"RM4;", "RM"},
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{"AG0;", "AG"},
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{"TX;", "TX"},
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{"", ""},
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{";", ""},
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}
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for _, c := range cases {
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if got := cmdPrefix(c.cmd); got != c.want {
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t.Errorf("cmdPrefix(%q) = %q, want %q", c.cmd, got, c.want)
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}
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}
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}
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// Writing split is as asymmetric as reading it.
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//
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// ST takes the state directly. FT sets which VFO TRANSMITS, so "split on" means
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// transmit on the OTHER VFO from the one being listened to. Sending FT1 for "on"
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// regardless is right only on VFO A — on SUB it would CLEAR the split it was
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// asked to set, which is the same inversion that showed on the FTDX101 panel.
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func TestYaesuSplitCommand(t *testing.T) {
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cases := []struct {
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cmd, vfo string
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on bool
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want string
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}{
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{"ST", "A", true, "ST1;"},
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{"ST", "B", true, "ST1;"}, // the flag does not care which VFO
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{"ST", "B", false, "ST0;"},
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// Listening on A: split means transmit on B.
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{"FT", "A", true, "FT1;"},
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{"FT", "A", false, "FT0;"},
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// Listening on B: split means transmit on A — the reverse.
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{"FT", "B", true, "FT0;"},
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{"FT", "B", false, "FT1;"},
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// Pair enums start with the listening VFO.
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{"FT", "BA", true, "FT0;"},
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{"FT", "AB", true, "FT1;"},
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}
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for _, c := range cases {
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if got := yaesuSplitCommand(c.cmd, c.vfo, c.on); got != c.want {
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t.Errorf("yaesuSplitCommand(%q, vfo=%q, on=%v) = %q, want %q",
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c.cmd, c.vfo, c.on, got, c.want)
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}
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}
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}
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// Which VFO the operator is listening on, on a rig with separate RX and TX
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// selection.
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//
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// Reported on an FTDX101 (2026-07-29): moving RX alone to SUB displayed VFO B
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// correctly, but moving BOTH RX and TX to SUB displayed VFO A — the operator was
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// entirely on B and OpsLog showed the other one. FR reports the receive VFO; VS
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// does not answer that question on this rig.
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//
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// With FR read correctly the split follows too, since split is "transmit VFO
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// differs from receive VFO".
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func TestYaesuReceiveVFOAndSplit(t *testing.T) {
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cases := []struct {
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name string
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fr, ft string // replies
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wantVFO string
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wantSplit bool
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}{
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{"everything on main", "FR0;", "FT0;", "A", false},
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{"RX on sub, TX still on main — split", "FR1;", "FT0;", "B", true},
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{"RX and TX both on sub — NOT split", "FR1;", "FT1;", "B", false},
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{"RX on main, TX on sub — split", "FR0;", "FT1;", "A", true},
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}
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for _, c := range cases {
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vfo := "A"
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if len(c.fr) >= 3 && c.fr[2] == '1' {
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vfo = "B"
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}
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if vfo != c.wantVFO {
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t.Errorf("%s: receive VFO = %s, want %s", c.name, vfo, c.wantVFO)
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}
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if got := yaesuSplitFromReply(c.ft, "FT", vfo); got != c.wantSplit {
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t.Errorf("%s: split = %v, want %v", c.name, got, c.wantSplit)
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}
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}
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}
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