Files
OpsLog/internal/cat/tci_panel.go
T
rouggy 1201b44908 feat(tci): the transmit meters, and no temperature invented
TX_POWER and TX_SWR are read-only commands the radio answers when asked,
so they are asked for on each poll of a KEYED radio and not at all
otherwise: a receiving station pays nothing for meters nobody is watching.
Both appear next to the S-meter only while transmitting, because showing
them the rest of the time would show the last thing that happened as if it
were now.

An SWR of 0 draws as '—' rather than as 1.0. A perfect match on an antenna
nobody has measured is the one reading an operator should never be handed.

There is no temperature. The protocol's command list has TX_POWER and
TX_SWR and nothing thermal at all — so rather than leave the question
hanging, it is written down where the next person will look for it. A
temperature invented from something else, on a transmitter, is exactly the
kind of number somebody would trust.
2026-08-26 21:14:58 +02:00

355 lines
12 KiB
Go

//go:build windows
package cat
// The TCI control panel: what the radio already tells us, gathered up.
//
// This is the cheapest panel in OpsLog, and the reason is worth saying. A K3 is
// asked — every value on its console costs a command and a reply on a serial
// line, which is why that panel reads its settings in a rotation and its meters
// only while it is on screen. TCI PUSHES: the radio announces its drive, its
// volume, its filters, its noise blanker and everything else when a client
// connects, and again whenever any of them changes, whoever changed it. There
// is nothing to poll.
//
// So this file is mostly a place to PUT what was already arriving and being
// logged as "(unhandled once)". The setters are the same names sent back the
// other way, which is how TCI works throughout: one vocabulary, both directions.
import (
"fmt"
"strconv"
"strings"
)
// TCIPanelState is the whole console in one snapshot, polled by the frontend.
//
// Values the radio has not mentioned keep their zero, which is why the
// "Known" flags exist for the ones where zero is a real setting: a squelch at 0
// and a squelch never reported are different, and a panel that cannot tell them
// apart draws a control that lies until the operator touches it.
type TCIPanelState struct {
Connected bool `json:"connected"`
Device string `json:"device,omitempty"` // what the radio calls itself
Protocol string `json:"protocol,omitempty"` // "ExpertSDR3,1.5"
// Transmit.
Drive int `json:"drive"` // 0-100
TuneDrive int `json:"tune_drive"` // 0-100, used by TUNE
MicLevel int `json:"mic_level"` // 0-100
TXEnabled bool `json:"tx_enabled"` // the radio's own permission (tx_enable)
TX bool `json:"tx"`
Tuning bool `json:"tuning"`
// Receive.
Volume int `json:"volume"` // dB, negative — TCI's own scale
Mute bool `json:"mute"`
AGC string `json:"agc,omitempty"` // off/long/slow/med/fast
SquelchOn bool `json:"squelch_on"`
Squelch int `json:"squelch"` // dBm threshold
NB bool `json:"nb"`
NR bool `json:"nr"`
ANF bool `json:"anf"`
APF bool `json:"apf"`
// Filter edges in Hz, relative to the carrier (TCI's own convention).
FilterLo int `json:"filter_lo"`
FilterHi int `json:"filter_hi"`
// Tuning aids.
RIT bool `json:"rit"`
RITOffset int `json:"rit_offset"`
XIT bool `json:"xit"`
XITOffset int `json:"xit_offset"`
Lock bool `json:"lock"`
Split bool `json:"split"`
// SMeter is the last reported signal level in dBm — the radio pushes it
// several times a second while receiving.
SMeter int `json:"smeter"`
// TXPowerW and TXSWR are the transmit meters. READ-ONLY in TCI, and only
// answered while transmitting — asked for on every poll of a keyed radio,
// see ReadState.
//
// There is no temperature in this protocol. The command list has TX_POWER
// and TX_SWR and nothing thermal at all, so a temperature reading here would
// have to be invented, and an invented temperature on a transmitter is the
// kind of number somebody trusts.
TXPowerW float64 `json:"tx_power_w"`
TXSWR float64 `json:"tx_swr"`
// Modulations is what this radio will accept, straight from its own
// announcement, so the mode buttons are the radio's and not a guess.
Modulations []string `json:"modulations,omitempty"`
}
// tciPanel is the backing state. Guarded by TCI.mu with everything else it
// arrives alongside.
type tciPanel struct {
st TCIPanelState
}
// handlePanel takes the messages the console cares about.
//
// Returns false when the message is none of its business, so the caller can go
// on to its own cases and to the unknown-message log. Called with t.mu held.
func (t *TCI) handlePanel(name string, get func(int) string, args string) bool {
// Most of these are per-receiver ("sql_level:0,20"), and OpsLog follows
// receiver 0 throughout. A message for another receiver is accepted as
// handled and dropped: it is understood, it is simply not ours.
forRX0 := func() bool { return get(0) == "0" || get(0) == "" }
num := func(s string) (int, bool) {
n, err := strconv.Atoi(strings.TrimSpace(s))
return n, err == nil
}
yes := func(s string) bool { return strings.EqualFold(strings.TrimSpace(s), "true") }
p := &t.panel.st
// Mute and squelch are LOGGED as they change, because a report from a real
// radio says pressing MUTE lights the squelch and nothing here can explain
// it. What the radio actually announces after the command settles whether
// this is our reading or its doing, and no amount of reasoning will.
switch name {
case "mute", "sql_enable", "sql_level":
debugLog.Printf("TCI: %s:%s", name, args)
}
switch name {
case "protocol":
p.Protocol = strings.TrimSpace(args)
case "drive":
if n, ok := num(get(1)); ok && forRX0() {
p.Drive = n
} else if n, ok := num(get(0)); ok && get(1) == "" {
// Some firmware sends "drive:85" with no receiver index.
p.Drive = n
}
case "tune_drive":
if n, ok := num(get(1)); ok && forRX0() {
p.TuneDrive = n
} else if n, ok := num(get(0)); ok && get(1) == "" {
p.TuneDrive = n
}
case "mic_level":
if n, ok := num(get(0)); ok {
p.MicLevel = n
}
case "volume":
if n, ok := num(get(0)); ok {
p.Volume = n
}
case "mute":
// Both shapes. This radio reports "mute:0,false" and the reference shows
// "mute:true" elsewhere — reading only one of them left the button
// showing the opposite of the truth, which is worse than showing
// nothing.
if get(1) != "" {
p.Mute = yes(get(1))
} else {
p.Mute = yes(get(0))
}
case "agc_mode":
if forRX0() {
p.AGC = strings.ToLower(strings.TrimSpace(get(1)))
}
case "sql_enable":
if forRX0() {
p.SquelchOn = yes(get(1))
}
case "sql_level":
if n, ok := num(get(1)); ok && forRX0() {
p.Squelch = n
}
case "rx_nb_enable":
if forRX0() {
p.NB = yes(get(1))
}
case "rx_nr_enable":
if forRX0() {
p.NR = yes(get(1))
}
case "rx_anf_enable":
if forRX0() {
p.ANF = yes(get(1))
}
case "rx_apf_enable":
if forRX0() {
p.APF = yes(get(1))
}
case "rx_filter_band":
if forRX0() {
if lo, ok := num(get(1)); ok {
p.FilterLo = lo
}
if hi, ok := num(get(2)); ok {
p.FilterHi = hi
}
}
case "rit_enable":
if forRX0() {
p.RIT = yes(get(1))
}
case "xit_enable":
if forRX0() {
p.XIT = yes(get(1))
}
case "rit_offset":
if n, ok := num(get(1)); ok && forRX0() {
p.RITOffset = n
}
case "xit_offset":
if n, ok := num(get(1)); ok && forRX0() {
p.XITOffset = n
}
case "lock":
if forRX0() {
p.Lock = yes(get(1))
}
case "tx_power":
if v, err := strconv.ParseFloat(strings.TrimSpace(get(0)), 64); err == nil {
p.TXPowerW = v
}
case "tx_swr":
if v, err := strconv.ParseFloat(strings.TrimSpace(get(0)), 64); err == nil {
p.TXSWR = v
}
case "rx_smeter":
if n, ok := num(get(1)); ok && forRX0() {
p.SMeter = n
}
case "tune":
if forRX0() {
p.Tuning = yes(get(1))
}
case "modulations_list":
p.Modulations = splitAndTrim(args)
default:
return false
}
return true
}
// splitAndTrim turns "usb,lsb,cw" into a slice, upper-cased for display.
func splitAndTrim(s string) []string {
parts := strings.Split(s, ",")
out := make([]string, 0, len(parts))
for _, p := range parts {
if v := strings.ToUpper(strings.TrimSpace(p)); v != "" {
out = append(out, v)
}
}
return out
}
// TCIPanel returns the console snapshot.
func (t *TCI) TCIPanel() TCIPanelState {
t.mu.Lock()
defer t.mu.Unlock()
st := t.panel.st
st.Connected = t.conn != nil
st.Device = t.device
st.TX = t.tx
st.Split = t.split
st.TXEnabled = t.txAllowed || !t.txAllowedKnown
return st
}
// ── Setters ───────────────────────────────────────────────────────────────
//
// Every one of them is a SET in the same vocabulary the radio reports in, and
// none of them updates the cached state: the radio answers with the new value,
// and taking its word rather than our own is what keeps the panel honest when a
// setting is refused, clamped, or changed from the radio's own window a second
// later.
// SetDrive sets the transmit drive, 0-100.
//
// THE TRX INDEX IS PART OF THE COMMAND — "drive:0,15;", not "drive:15;". Sent
// without it the radio simply ignores it: no error, no answer, the power
// unchanged. The rule is the one the radio's own reports follow, and it was
// there to read all along: this radio announces "drive:0,85" at connect.
func (t *TCI) SetDrive(v int) error { return t.send(fmt.Sprintf("drive:0,%d;", clampTCIPct(v))) }
// SetTuneDrive sets the drive used by TUNE, 0-100. Indexed, like drive.
func (t *TCI) SetTuneDrive(v int) error {
return t.send(fmt.Sprintf("tune_drive:0,%d;", clampTCIPct(v)))
}
// SetMicLevel sets the microphone gain, 0-100.
// Mic gain and volume are the two that are NOT indexed — the radio reports
// them as "mic_level:100" and "volume:-12", with no receiver in front. Sending
// the shape the radio speaks in is the whole rule here.
func (t *TCI) SetMicLevel(v int) error { return t.send(fmt.Sprintf("mic_level:%d;", clampTCIPct(v))) }
// SetVolume sets the receive volume in dB. TCI's scale is negative — 0 is full
// and -60 is inaudible — so this is NOT clamped to a percentage.
func (t *TCI) SetVolume(db int) error {
if db > 0 {
db = 0
}
if db < -60 {
db = -60
}
return t.send(fmt.Sprintf("volume:%d;", db))
}
// SetMute mutes or unmutes the receiver. Indexed — the radio reports
// "mute:0,false", and a mute sent without the index goes nowhere.
func (t *TCI) SetMute(on bool) error { return t.send(fmt.Sprintf("mute:0,%t;", on)) }
// SetAGC picks the AGC speed: off, long, slow, med, fast.
func (t *TCI) SetAGC(mode string) error {
m := strings.ToLower(strings.TrimSpace(mode))
switch m {
case "off", "long", "slow", "med", "fast":
default:
return fmt.Errorf("unknown AGC mode %q", mode)
}
return t.send(fmt.Sprintf("agc_mode:0,%s;", m))
}
// SetSquelch turns the squelch on or off.
func (t *TCI) SetSquelch(on bool) error { return t.send(fmt.Sprintf("sql_enable:0,%t;", on)) }
// SetSquelchLevel sets the threshold in dBm.
func (t *TCI) SetSquelchLevel(v int) error { return t.send(fmt.Sprintf("sql_level:0,%d;", v)) }
// SetNB, SetNR, SetANF, SetAPF switch the receive processing.
func (t *TCI) SetNB(on bool) error { return t.send(fmt.Sprintf("rx_nb_enable:0,%t;", on)) }
func (t *TCI) SetNR(on bool) error { return t.send(fmt.Sprintf("rx_nr_enable:0,%t;", on)) }
func (t *TCI) SetANF(on bool) error { return t.send(fmt.Sprintf("rx_anf_enable:0,%t;", on)) }
func (t *TCI) SetAPF(on bool) error { return t.send(fmt.Sprintf("rx_apf_enable:0,%t;", on)) }
// SetFilter sets the passband edges in Hz.
func (t *TCI) SetFilter(lo, hi int) error {
if lo > hi {
lo, hi = hi, lo
}
return t.send(fmt.Sprintf("rx_filter_band:0,%d,%d;", lo, hi))
}
// SetRIT / SetXIT switch the offsets on, SetRITOffset / SetXITOffset move them.
func (t *TCI) SetRIT(on bool) error { return t.send(fmt.Sprintf("rit_enable:0,%t;", on)) }
func (t *TCI) SetXIT(on bool) error { return t.send(fmt.Sprintf("xit_enable:0,%t;", on)) }
func (t *TCI) SetRITOffset(hz int) error { return t.send(fmt.Sprintf("rit_offset:0,%d;", hz)) }
func (t *TCI) SetXITOffset(hz int) error { return t.send(fmt.Sprintf("xit_offset:0,%d;", hz)) }
// SetLock locks the VFO knob on the radio.
func (t *TCI) SetLock(on bool) error { return t.send(fmt.Sprintf("lock:0,%t;", on)) }
// SetTune starts or stops the tune carrier.
//
// It TRANSMITS, at tune_drive rather than at drive — which is the setting to
// check before pressing it, and why the panel shows the two side by side.
func (t *TCI) SetTune(on bool) error { return t.send(fmt.Sprintf("tune:0,%t;", on)) }
func clampTCIPct(v int) int {
if v < 0 {
return 0
}
if v > 100 {
return 100
}
return v
}