OmniRig reports the VFO pair (AA/AB/BA/BB) on the whole Yaesu range and never the single-letter form. Only the latter was honoured, so every rig in that family stayed pinned to VFO A: pressing SUB moved the radio but not OpsLog, and a QSO worked on SUB was logged on the main VFO's frequency. The first letter of the pair is the VFO being listened on — Log4OM reads it and gets the right frequency on the same rigs, which is what showed the data was there. The enum now wins over the Yaesu Freq==FreqB inference, which is only a fallback for a rig file that names no VFO at all (the stock FTDX10 one answers neither VS; nor FR; usably — verified on the air). Split: the ON flag is still latched to survive a rig file that flips it on its own, but the latch is now ARMED only after 8 flips in 30 s. A first cut at 3-in-15s was armed by the operator toggling split while testing, imposing the 6 s clearing delay on a radio that did not need it; a misreading file flips a dozen times in that window untouched, so the two cases separate cleanly. Distance (km) column added to Recent QSOs and Worked before (shared catalog). Computed from the QSO's OWN my_grid/my_lat/lon first, falling back to the current profile's locator: a log spans years and portable outings, so the station a QSO was made from is not necessarily today's. Locator: a precise QRZ/HamQTH grid is no longer overwritten by the cty.dat entity centroid. The lookup runs several times per QSO and the provider gets 2 s; a slow second answer fell back to cty.dat and downgraded JN05JG to JN16 while name and QTH survived (they are only written when non-empty). The OmniRig diagnostic line now logs what OpsLog concluded, not just what OmniRig reported. icomnet.go: gofmt alignment only.
707 lines
29 KiB
Go
707 lines
29 KiB
Go
package cat
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import (
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"fmt"
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"strings"
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"time"
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"github.com/go-ole/go-ole"
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"github.com/go-ole/go-ole/oleutil"
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)
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// OmniRig Split is an enum, not a boolean: PM_SPLITON vs PM_SPLITOFF — both
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// non-zero, so it must be compared to PM_SPLITON (testing "!= 0" reads OFF as
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// split). Values confirmed empirically from real rigs (FT-710, SmartSDR):
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// split ON = 0x8000, split OFF = 0x10000.
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const (
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pmSplitOn = 0x8000 // PM_SPLITON
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pmSplitOff = 0x10000 // PM_SPLITOFF
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)
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// OmniRig talks to the user's installed OmniRig server over COM.
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//
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// All methods MUST be called from the same OS thread (the one Manager.run
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// locks). COM is thread-affine on Windows — calling these from random
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// goroutines will return E_FAIL or crash.
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//
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// The user must install OmniRig separately and configure their rig (COM port,
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// baud rate) in OmniRig's own GUI. HamLog just reads/writes through it.
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type OmniRig struct {
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RigNum int // 1 (Rig1) or 2 (Rig2)
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omnirig *ole.IDispatch
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rig *ole.IDispatch
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lastSig string // last logged Split/VFO signature — only log on change
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rigType string // OmniRig's RigType string (the .ini title), e.g. "IC-7610"
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// connLogged holds the connect failure already written to the log, so the
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// 5-second reconnect loop reports a persistent problem once instead of
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// forever. Cleared on success.
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connLogged string
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// lastSetFreq is the frequency most recently COMMANDED via SetFrequency.
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// SetMode uses it to pick USB vs LSB for "SSB" instead of reading OmniRig's
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// async Freq property, which still reports the OLD band for a poll or two
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// after a QSY — that lag is why a clicked spot needed a second click to fix
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// the sideband (freq moved, but mode read the old band → wrong sideband).
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lastSetFreq int64
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lastSetFreqAt time.Time
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// lastSplitOnAt is when OmniRig last reported PM_SPLITON cleanly. See the
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// FTDX101D note in ReadState — some .ini files alternate between ON and OFF
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// on consecutive polls, so the flag has to be latched to be usable.
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lastSplitOnAt time.Time
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// splitFlaky records that THIS rig's .ini flips the split flag on its own,
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// which is what arms the latch. lastSplitFlag / splitFlips / splitFlipWindow
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// count the flips inside a rolling window to detect it.
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lastSplitFlag bool
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splitFlaky bool
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splitFlips int
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splitFlipWindow time.Time
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}
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// NewOmniRig creates a non-connected backend. Call Connect before use.
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func NewOmniRig(rigNum int) *OmniRig {
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if rigNum < 1 || rigNum > 2 {
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rigNum = 1
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}
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return &OmniRig{RigNum: rigNum}
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}
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func (o *OmniRig) Name() string { return "omnirig" }
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// elevationHint recognises the COM refusal that happens when OmniRig runs
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// elevated (as administrator) and OpsLog does not — or the reverse. Windows keeps
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// the two integrity levels apart, so the client cannot bind to the running
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// server's object and COM falls back to launching a fresh one, which then needs
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// elevation the client cannot grant.
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//
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// It is worth naming explicitly: the operator SEES OmniRig running, with its
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// settings window open, so "OmniRig not found" reads as nonsense and sends them
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// hunting for a driver or COM-port problem that does not exist. The fix is thirty
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// seconds of work once you know what to look for.
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func elevationHint(err error) string {
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if err == nil {
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return ""
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}
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msg := strings.ToLower(err.Error())
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// Matched on the HRESULT text in whatever language Windows is running in, so
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// the code is checked too: 0x800702E4 = ERROR_ELEVATION_REQUIRED.
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if strings.Contains(msg, "elevation") || strings.Contains(msg, "élévation") ||
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strings.Contains(msg, "0x800702e4") || strings.Contains(msg, "access denied") ||
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strings.Contains(msg, "accès refusé") {
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return "OmniRig and OpsLog are running at different privilege levels — Windows keeps them apart, " +
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"so OpsLog cannot reach OmniRig even though it is running. Start BOTH the same way: either " +
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"un-tick \"Run as administrator\" on the OmniRig shortcut (and its Compatibility tab), or run " +
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"OpsLog as administrator too"
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}
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return ""
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}
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// logConnFailure writes a connect failure once per distinct cause. The reconnect
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// loop retries every 5 seconds forever, and a station whose OmniRig was simply
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// elevated had this filling its log at roughly 1500 lines an hour — which buries
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// the very diagnostics someone would go looking for.
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func (o *OmniRig) logConnFailure(msg string) {
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if o.connLogged == msg {
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return
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}
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o.connLogged = msg
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debugLog.Printf("OmniRig Rig%d: %s", o.RigNum, msg)
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}
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func (o *OmniRig) Connect() error {
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// This used to announce DebugLogPath() on every attempt — the path of the
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// FALLBACK cat.log, which nothing writes to once the app has wired LogSink and
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// everything goes to data\opslog.log. It pointed operators at an empty file in
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// %APPDATA% while the lines they wanted were somewhere else entirely. Dropped;
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// and logged once per failure run rather than every 5-second retry.
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if o.connLogged == "" {
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debugLog.Printf("OmniRig.Connect Rig%d", o.RigNum)
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}
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if err := ole.CoInitializeEx(0, ole.COINIT_APARTMENTTHREADED); err != nil {
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// 0x1 = S_FALSE → COM already initialised on this thread, fine.
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if oerr, ok := err.(*ole.OleError); !ok || oerr.Code() != 0x00000001 {
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return fmt.Errorf("CoInitializeEx: %w", err)
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}
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}
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const progID = "Omnirig.OmnirigX"
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var omnirig *ole.IDispatch
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unk, err := oleutil.CreateObject(progID)
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if err == nil {
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omnirig, err = unk.QueryInterface(ole.IID_IDispatch)
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unk.Release()
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if err != nil {
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return fmt.Errorf("query interface: %w", err)
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}
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} else {
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// A privilege mismatch is final — retrying, or trying the 32-bit server,
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// cannot cross an integrity boundary. Say what to do instead of dressing it
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// up as "not installed", which is what sends operators looking in the wrong
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// place entirely.
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if hint := elevationHint(err); hint != "" {
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o.logConnFailure(hint)
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return fmt.Errorf("%s (Windows said: %v)", hint, err)
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}
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// Otherwise it may be a partial registration; try activating the 32-bit
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// server explicitly before giving up (see omnirig_activate32.go).
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disp, err32 := createOmniRig32(progID)
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if err32 != nil {
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o.logConnFailure(fmt.Sprintf("CreateObject(%s) failed: %v; 32-bit activation also failed: %v", progID, err, err32))
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// Name the version requirement. HB9RYZ's OmniRig v2.1 is a different
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// product that its own author states is not compatible with v1, and it
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// does not provide v1's IOmniRigX interface — so an operator who has
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// only v2 installed sees OmniRig running and OpsLog failing, with
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// nothing to connect the two facts.
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return fmt.Errorf("OmniRig (v1) not reachable: %w — OpsLog needs OmniRig v1.19/v1.20 "+
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"(VE3NEA/Alex), the interface every logger uses. HB9RYZ's OmniRig v2.1 is a separate, "+
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"incompatible product and cannot serve OpsLog; the two may be installed side by side, "+
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"but v1 must be present and running", err)
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}
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debugLog.Printf("OmniRig: reached via explicit 32-bit activation after CreateObject failed (%v)", err)
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omnirig = disp
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}
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o.connLogged = "" // connected: re-arm the one-shot failure logging
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rigVar, err := oleutil.GetProperty(omnirig, fmt.Sprintf("Rig%d", o.RigNum))
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if err != nil {
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omnirig.Release()
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return fmt.Errorf("get Rig%d: %w", o.RigNum, err)
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}
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o.omnirig = omnirig
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o.rig = rigVar.ToIDispatch()
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// Log WHICH OmniRig answered. There are two incompatible products called
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// OmniRig: v1.19/1.20 (Alex, VE3NEA), whose IOmniRigX interface every logger
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// including OpsLog uses, and HB9RYZ's v2.1, which its own author states is "not
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// compatible" with v1 and works only with programs written for it. They can
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// coexist, and OmniRig's own window looks much the same either way — so an
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// operator running only v2 sees OmniRig on screen, sees OpsLog fail, and has no
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// way to know the two were never going to talk. These two version numbers
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// settle it in one line of a bug report.
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var iv, sv int64 = -1, -1
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if v, err := oleutil.GetProperty(o.omnirig, "InterfaceVersion"); err == nil {
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iv = v.Val
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}
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if v, err := oleutil.GetProperty(o.omnirig, "SoftwareVersion"); err == nil {
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sv = v.Val
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}
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if rt, err := oleutil.GetProperty(o.rig, "RigType"); err == nil {
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o.rigType = rt.ToString()
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}
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debugLog.Printf("OmniRig connected: Rig%d type=%q (OmniRig interface=%d software=%d)",
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o.RigNum, o.rigType, iv, sv)
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return nil
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}
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func (o *OmniRig) Disconnect() {
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if o.rig != nil {
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o.rig.Release()
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o.rig = nil
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}
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if o.omnirig != nil {
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o.omnirig.Release()
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o.omnirig = nil
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}
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ole.CoUninitialize()
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}
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func (o *OmniRig) ReadState() (RigState, error) {
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if o.rig == nil {
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return RigState{}, fmt.Errorf("not connected")
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}
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var s RigState
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s.Backend = o.Name()
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s.RigNum = o.RigNum
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// Status: 0 = NOTCONFIGURED, 1 = DISABLED, 2 = PORTBUSY,
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// 3 = NOTRESPONDING, 4 = ONLINE.
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if statusVar, err := oleutil.GetProperty(o.rig, "Status"); err == nil {
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s.Connected = statusVar.Val == 4
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}
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if rigTypeVar, err := oleutil.GetProperty(o.rig, "RigType"); err == nil {
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s.Rig = rigTypeVar.ToString()
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}
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if !s.Connected {
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// Status string from OmniRig is informative for the user.
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if statusStrVar, err := oleutil.GetProperty(o.rig, "StatusStr"); err == nil {
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s.Error = statusStrVar.ToString()
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}
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return s, nil
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}
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if modeVar, err := oleutil.GetProperty(o.rig, "Mode"); err == nil {
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s.Mode = omniRigMode(modeVar.Val)
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}
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rawVfo := int64(0)
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if vfoVar, err := oleutil.GetProperty(o.rig, "Vfo"); err == nil {
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rawVfo = vfoVar.Val
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s.Vfo = omniRigVfo(vfoVar.Val)
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}
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// Read the active/displayed frequency (generic Freq) AND both VFOs. The
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// generic Freq is what the rig is operating on — the reliable source for the
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// main/TX frequency. FreqA/FreqB are only needed to expose a genuine split.
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freqMain, freqA, freqB := int64(0), int64(0), int64(0)
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if v, err := oleutil.GetProperty(o.rig, "Freq"); err == nil {
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freqMain = v.Val
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}
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if v, err := oleutil.GetProperty(o.rig, "FreqA"); err == nil {
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freqA = v.Val
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}
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if v, err := oleutil.GetProperty(o.rig, "FreqB"); err == nil {
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freqB = v.Val
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}
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// Split is an enum (PM_SPLITON / PM_SPLITOFF) — both non-zero, so it must be
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// compared to PM_SPLITON, not "!= 0".
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splitRaw := int64(0)
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if v, err := oleutil.GetProperty(o.rig, "Split"); err == nil {
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splitRaw = v.Val
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}
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// FTDX101D field capture: OmniRig alternates between two contradictory
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// readings on consecutive polls — "Vfo=AB Split=0x10000(OFF)" then
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// "Vfo=BA Split=0x8000(ON)", ~1.5 s apart, with the rig untouched. The stock
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// .ini evidently has two status commands that each write these params. A
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// sample-by-sample test therefore reports split for half the polls and no
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// split for the other half, which the UI shows as no split at all. Latch the
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// ON flag briefly so one truthful sample survives the contradicting one; the
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// latch expires on its own once the rig stops reporting ON, so cancelling
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// split on the radio still clears within a few seconds.
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//
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// The latch is ARMED ONLY for a rig that actually oscillates, because it costs
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// ~6 s before split clears on screen. A correct .ini (FTDX10 with VS; and FT;
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// read as separate frames, confirmed on the air 2026-07-26) never flips
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// unprompted, and there the latch would be a pure delay on a reading that was
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// already right.
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//
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// 8 flips in 30 s: a first cut at 3-in-15s was armed by the OPERATOR toggling
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// split three times while testing, which then imposed the 6 s delay on a rig
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// that did not need it. A misreading .ini flips every 1.5–3 s without being
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// touched — a dozen in the same window — so the gap is wide. The arming also
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// expires after 30 s without a flip, so a rig that behaves is never stuck with
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// the delay because of one burst.
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const flipWindow, flipsToArm = 30 * time.Second, 8
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now := time.Now()
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flagOn := splitRaw&pmSplitOn != 0 && splitRaw&pmSplitOff == 0
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if flagOn {
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o.lastSplitOnAt = now
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}
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if flagOn != o.lastSplitFlag {
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o.lastSplitFlag = flagOn
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if now.Sub(o.splitFlipWindow) > flipWindow {
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o.splitFlipWindow, o.splitFlips, o.splitFlaky = now, 0, false
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}
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o.splitFlips++
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if o.splitFlips >= flipsToArm {
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o.splitFlaky = true
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}
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} else if o.splitFlaky && now.Sub(o.splitFlipWindow) > flipWindow {
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o.splitFlaky, o.splitFlips = false, 0 // stopped oscillating — drop the delay
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}
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splitRecentOn := o.splitFlaky && !o.lastSplitOnAt.IsZero() && now.Sub(o.lastSplitOnAt) < 6*time.Second
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s.FreqHz, s.RxFreqHz, s.Split = resolveOmniRigVFOs(o.rigType, freqMain, freqA, freqB, s.Vfo, splitRaw, splitRecentOn)
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// Diagnostic logged ONLY when Split or VFO changes (not on a timer), so normal
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// operation stays quiet but toggling split or SUB VFO on the radio is
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// captured. It logs the RESOLVED tx/rx/split too: with the raw values alone a
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// user's log showed what OmniRig said but not what OpsLog concluded, which is
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// the half that was wrong.
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if sig := fmt.Sprintf("%x:%x", splitRaw, rawVfo); sig != o.lastSig {
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o.lastSig = sig
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debugLog.Printf("OmniRig Rig%d raw: rig=%q Freq=%d FreqA=%d FreqB=%d Vfo=%q(raw=0x%X) Split=0x%X sticky=%v → tx=%d rx=%d split=%v",
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o.RigNum, o.rigType, freqMain, freqA, freqB, s.Vfo, rawVfo, splitRaw, splitRecentOn,
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s.FreqHz, s.RxFreqHz, s.Split)
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}
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return s, nil
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}
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// resolveOmniRigVFOs turns OmniRig's four readings into the ADIF pair
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// (FreqHz = TX, RxFreqHz = RX) plus a split flag.
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//
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// Pure and separate from ReadState because it encodes rig-specific rules that
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// contradict each other — what fixes a Yaesu can break an Icom — and the only way
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// to change it safely is with every known rig's behaviour pinned in a test. COM
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// cannot be exercised from a test; this can.
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func resolveOmniRigVFOs(rigType string, freqMain, freqA, freqB int64, vfo string, splitRaw int64, splitRecentOn bool) (txHz, rxHz int64, split bool) {
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// PM_SPLITON is tested as a BIT, not by equality. OmniRig's Split is a flag
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// word: an exact `== 0x8000` holds only for a rig whose ini sets that bit and
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// nothing else, and silently reports "no split" for any rig reporting the bit
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// alongside another. Requiring ON set and OFF clear keeps the two states apart
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// (both flags are non-zero, so a bare `!= 0` would read OFF as split) while
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// tolerating extra bits.
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splitFlagged := (splitRaw&pmSplitOn != 0 && splitRaw&pmSplitOff == 0) || splitRecentOn
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// A genuine split also needs two distinct, non-zero VFOs in the SAME band. The
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// band test kills the common false positive where VFO B merely holds a
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// leftover from another band (a "28 MHz / 7 MHz split" is nonsensical), which
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// on the FT-710 / TS-570 otherwise froze the TX freq on the wrong VFO.
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if splitFlagged && freqA != 0 && freqB != 0 && freqA != freqB &&
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BandFromHz(freqA) == BandFromHz(freqB) {
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// RX is the VFO being listened on — identified from the generic Freq rather
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// than from the Vfo AB/BA enum, which several rigs (Yaesu FTDX10) report
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// inverted, showing TX and RX swapped.
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switch {
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case freqMain != 0 && freqMain == freqA:
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return freqB, freqA, true // listening on A → TX on B
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case freqMain != 0 && freqMain == freqB:
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return freqA, freqB, true // listening on B → TX on A
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case vfo == "BA":
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return freqA, freqB, true // fall back to the Vfo enum
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default:
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return freqB, freqA, true
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}
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}
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// Simplex. The VFO the rig says is ACTIVE comes first: preferring freqA
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// unconditionally (as this did) meant the displayed frequency never left VFO
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// A — press SUB VFO on an FTDX101D and the radio receives on B while OpsLog
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// went on showing A, taking the band and the logged frequency with it.
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//
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// Only a VFO OmniRig explicitly names is honoured, so a rig that does not
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// report the enum keeps exactly the previous fallback order. That matters for
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// the IC-7610, whose stock ini reports the generic Freq as VFO B; and for the
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// PM_FREQA rigs (Yaesu, Kenwood) versus the Icoms (IC-9100) that populate only
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// the generic Freq.
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// The PAIR enums name BOTH VFOs at once — first letter = the one being
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// listened on, second = the one that transmits. Only the single-letter forms
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// were honoured here, so a rig that reports nothing but pairs (the whole Yaesu
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// family) always fell through to freqA and never followed the operator to SUB.
|
||
// Log4OM reads that first letter and logs the right frequency on the same
|
||
// rigs, which is what showed this was readable data and not a dead end.
|
||
//
|
||
// Checked BEFORE the Yaesu fallback below: an enum that names a VFO is the
|
||
// rig speaking, the fallback is only an inference.
|
||
switch {
|
||
case (vfo == "BA" || vfo == "BB") && freqB != 0:
|
||
return freqB, 0, false
|
||
case (vfo == "AA" || vfo == "AB") && freqA != 0:
|
||
return freqA, 0, false
|
||
}
|
||
|
||
// Yaesu fallback, for a rig file that names no VFO at all (the stock FTDX10
|
||
// one: it answers neither VS; nor FR; usably, verified on the air 2026-07-26).
|
||
// There the generic Freq is the last clue — matching FreqB and not FreqA means
|
||
// the operator is on SUB. Limited to Yaesu: the IC-7610's stock ini reports
|
||
// the generic Freq as VFO B permanently, where this would name the wrong VFO —
|
||
// that case is pinned in the test table.
|
||
if isYaesuRig(rigType) && freqMain != 0 && freqMain == freqB && freqB != freqA {
|
||
return freqB, 0, false
|
||
}
|
||
|
||
switch {
|
||
case (vfo == "B" || vfo == "BB") && freqB != 0:
|
||
return freqB, 0, false
|
||
case (vfo == "A" || vfo == "AA") && freqA != 0:
|
||
return freqA, 0, false
|
||
case freqA != 0:
|
||
return freqA, 0, false
|
||
case freqMain != 0:
|
||
return freqMain, 0, false
|
||
default:
|
||
return freqB, 0, false
|
||
}
|
||
}
|
||
|
||
func (o *OmniRig) SetFrequency(hz int64) error {
|
||
if o.rig == nil {
|
||
debugLog.Printf("OmniRig.SetFrequency(%d): NOT CONNECTED", hz)
|
||
return fmt.Errorf("not connected")
|
||
}
|
||
// OmniRig Freq is a Long (int32). Validate to avoid silent truncation.
|
||
if hz < 0 || hz > 0x7fffffff {
|
||
debugLog.Printf("OmniRig.SetFrequency(%d): out of int32 range", hz)
|
||
return fmt.Errorf("frequency out of OmniRig int32 range")
|
||
}
|
||
hz32 := int32(hz)
|
||
// Remember the commanded frequency so a mode change moments later (a clicked
|
||
// spot sets freq then mode) picks the sideband from the TARGET band, not the
|
||
// not-yet-updated OmniRig Freq property.
|
||
o.lastSetFreq, o.lastSetFreqAt = hz, time.Now()
|
||
|
||
// Log the rig's writable-params, status and VFO state up front so a
|
||
// friend's session shows exactly what OmniRig reports for their rig.
|
||
status, statusStr, rigType := int64(-1), "", ""
|
||
if v, err := oleutil.GetProperty(o.rig, "Status"); err == nil {
|
||
status = v.Val
|
||
}
|
||
if v, err := oleutil.GetProperty(o.rig, "StatusStr"); err == nil {
|
||
statusStr = v.ToString()
|
||
}
|
||
if v, err := oleutil.GetProperty(o.rig, "RigType"); err == nil {
|
||
rigType = v.ToString()
|
||
}
|
||
rawVfo, vfo := int64(-1), ""
|
||
if vfoVar, err := oleutil.GetProperty(o.rig, "Vfo"); err == nil {
|
||
rawVfo = vfoVar.Val
|
||
vfo = omniRigVfo(vfoVar.Val)
|
||
} else {
|
||
debugLog.Printf("OmniRig.SetFrequency: Vfo read error: %v", err)
|
||
}
|
||
split := int64(0)
|
||
if v, err := oleutil.GetProperty(o.rig, "Split"); err == nil {
|
||
split = v.Val
|
||
}
|
||
// What can this rig's .ini actually write? OmniRig exposes a WriteableParams
|
||
// bitmask — if FreqA/FreqB/Freq bits are missing, the write is a silent no-op.
|
||
writeable := int64(-1)
|
||
if v, err := oleutil.GetProperty(o.rig, "WriteableParams"); err == nil {
|
||
writeable = v.Val
|
||
}
|
||
debugLog.Printf("OmniRig.SetFrequency(%d Hz / %.6f MHz): rig=%q status=%d(%s) vfo=%q(raw=%d) split=%d writeableParams=0x%X",
|
||
hz, float64(hz)/1e6, rigType, status, statusStr, vfo, rawVfo, split, writeable)
|
||
|
||
// Primary path: OmniRig's SetSimplexMode is the rig-agnostic "QSY here"
|
||
// method (RX=TX=freq, simplex). It works on rigs — notably Icom (IC-9100) —
|
||
// where direct FreqA/FreqB writes are accepted but never move the radio.
|
||
// Clearing split is the right thing when tuning to a spot anyway.
|
||
simplexOK := false
|
||
if _, err := oleutil.CallMethod(o.rig, "SetSimplexMode", int32(hz32)); err == nil {
|
||
simplexOK = true
|
||
debugLog.Printf("OmniRig.SetFrequency: SetSimplexMode(%d) OK", hz32)
|
||
} else {
|
||
debugLog.Printf("OmniRig.SetFrequency: SetSimplexMode unavailable (%v)", err)
|
||
}
|
||
|
||
// On Yaesu / Kenwood (and anything non-Icom), SetSimplexMode frequently returns
|
||
// OK but is a SILENT NO-OP — the rig never moves. Confirmed on an FT-891 over
|
||
// OmniRig: every spot click logged "SetSimplexMode OK" yet FreqA stayed put,
|
||
// while SetMode on the same .ini worked fine (so the CAT link is healthy).
|
||
// Writing the VFO frequency PROPERTY directly DOES move them, so also do that
|
||
// here. It is skipped on Icom, where the direct write is the unreliable one and
|
||
// could nudge the wrong Main/Sub VFO — there SetSimplexMode is authoritative.
|
||
isIcom := strings.HasPrefix(strings.ToUpper(strings.TrimSpace(rigType)), "IC")
|
||
if !isIcom || !simplexOK {
|
||
prop := "FreqA"
|
||
switch vfo {
|
||
case "B", "BB", "BA":
|
||
prop = "FreqB"
|
||
}
|
||
okAny := false
|
||
for _, p := range []string{prop, "Freq"} {
|
||
if _, e := oleutil.PutProperty(o.rig, p, hz32); e != nil {
|
||
debugLog.Printf("OmniRig.SetFrequency: PutProperty(%s) error: %v", p, e)
|
||
} else {
|
||
debugLog.Printf("OmniRig.SetFrequency: PutProperty(%s, %d) OK", p, hz32)
|
||
okAny = true
|
||
}
|
||
}
|
||
if !simplexOK && !okAny {
|
||
return fmt.Errorf("OmniRig: no writable frequency property for this rig")
|
||
}
|
||
}
|
||
|
||
// Read back all three immediately. OmniRig is async (the CAT command is
|
||
// queued + sent over serial), so these may still show the OLD value for
|
||
// one poll cycle — but if they NEVER change in the next poll, the rig
|
||
// isn't honouring the write (wrong .ini WRITE command for this model).
|
||
fa, fb, fg := int64(-1), int64(-1), int64(-1)
|
||
if v, err := oleutil.GetProperty(o.rig, "FreqA"); err == nil {
|
||
fa = v.Val
|
||
}
|
||
if v, err := oleutil.GetProperty(o.rig, "FreqB"); err == nil {
|
||
fb = v.Val
|
||
}
|
||
if v, err := oleutil.GetProperty(o.rig, "Freq"); err == nil {
|
||
fg = v.Val
|
||
}
|
||
debugLog.Printf("OmniRig.SetFrequency: readback FreqA=%d FreqB=%d Freq=%d (target %d)", fa, fb, fg, hz)
|
||
return nil
|
||
}
|
||
|
||
// SetMode maps an ADIF mode to the OmniRig PM_* bit and pushes it to the rig.
|
||
// For SSB, the USB/LSB side is chosen from the rig's current frequency
|
||
// following worldwide convention (LSB below 14 MHz, USB above).
|
||
//
|
||
// IMPORTANT: OmniRig's Mode property is typed as Long (VT_I4). go-ole would
|
||
// otherwise wrap a Go int64 into a VT_I8 variant which COM marshalling can
|
||
// reject silently or misinterpret — passing the wrong bit. Always cast to
|
||
// int32 explicitly.
|
||
//
|
||
// Logs each call to stdout so the user can cross-check what HamLog sent
|
||
// against OmniRig's Monitor window (right-click systray → Monitor) to find
|
||
// rig-specific mismatches (e.g. a Kenwood without FM on HF, an .ini with the
|
||
// wrong CAT command for a mode, etc.).
|
||
func (o *OmniRig) SetMode(mode string) error {
|
||
if o.rig == nil {
|
||
return fmt.Errorf("not connected")
|
||
}
|
||
var (
|
||
bit int64
|
||
bitName string
|
||
)
|
||
switch strings.ToUpper(strings.TrimSpace(mode)) {
|
||
case "CW":
|
||
bit, bitName = pmCWU, "PM_CW_U"
|
||
case "SSB":
|
||
// Decide USB vs LSB from the frequency. Prefer the freq we just COMMANDED
|
||
// (a clicked spot sets freq then mode ~150ms later): OmniRig's Freq
|
||
// property still reports the OLD band for a poll or two after a QSY, so
|
||
// reading it here picked the wrong sideband and the user had to click a
|
||
// second time. Fall back to the live read for a standalone mode change.
|
||
var freq int64
|
||
if o.lastSetFreq > 0 && time.Since(o.lastSetFreqAt) < 5*time.Second {
|
||
freq = o.lastSetFreq
|
||
} else if freqVar, err := oleutil.GetProperty(o.rig, "Freq"); err == nil {
|
||
freq = freqVar.Val
|
||
}
|
||
if freq > 0 && freq < 10_000_000 {
|
||
bit, bitName = pmSSBL, "PM_SSB_L"
|
||
} else {
|
||
bit, bitName = pmSSBU, "PM_SSB_U"
|
||
}
|
||
case "AM":
|
||
bit, bitName = pmAM, "PM_AM"
|
||
case "FM":
|
||
bit, bitName = pmFM, "PM_FM"
|
||
case "RTTY", "FSK":
|
||
// OmniRig has no specific RTTY/FSK mode — falls back to generic
|
||
// digital USB. Many rigs need RTTY selected manually on the panel.
|
||
bit, bitName = pmDIGU, "PM_DIG_U"
|
||
case "FT8", "FT4", "PSK31", "MFSK", "JS8", "JT65", "JT9", "OLIVIA", "DIGITALVOICE", "DATA":
|
||
bit, bitName = pmDIGU, "PM_DIG_U"
|
||
default:
|
||
return fmt.Errorf("OmniRig: unsupported mode %q", mode)
|
||
}
|
||
debugLog.Printf("OmniRig.SetMode(%q) → %s = 0x%08X (%d)", mode, bitName, bit, bit)
|
||
_, err := oleutil.PutProperty(o.rig, "Mode", int32(bit))
|
||
if err != nil {
|
||
debugLog.Printf("OmniRig.SetMode error: %v", err)
|
||
return fmt.Errorf("SetMode(%s) → %s: %w", mode, bitName, err)
|
||
}
|
||
|
||
// Read back what OmniRig now thinks the rig is on (best-effort —
|
||
// OmniRig is async so this may still be the old value for one poll).
|
||
if mv, err := oleutil.GetProperty(o.rig, "Mode"); err == nil {
|
||
debugLog.Printf("OmniRig.Mode immediately after Put = 0x%08X (%d) → %s",
|
||
mv.Val, mv.Val, omniRigMode(mv.Val))
|
||
}
|
||
return nil
|
||
}
|
||
|
||
// SetPTT keys or unkeys the rig via OmniRig's SetTx(PM_RX|PM_TX). Used by the
|
||
// Digital Voice Keyer to put the rig into TX while a voice message plays.
|
||
func (o *OmniRig) SetPTT(on bool) error {
|
||
if o.rig == nil {
|
||
debugLog.Printf("OmniRig.SetPTT(%v): NOT CONNECTED", on)
|
||
return fmt.Errorf("not connected")
|
||
}
|
||
status, statusStr, writeable := int64(-1), "", int64(-1)
|
||
if v, err := oleutil.GetProperty(o.rig, "Status"); err == nil {
|
||
status = v.Val
|
||
}
|
||
if v, err := oleutil.GetProperty(o.rig, "StatusStr"); err == nil {
|
||
statusStr = v.ToString()
|
||
}
|
||
if v, err := oleutil.GetProperty(o.rig, "WriteableParams"); err == nil {
|
||
writeable = v.Val
|
||
}
|
||
txWriteable := writeable != -1 && writeable&pmTX != 0
|
||
param, name := pmRX, "PM_RX"
|
||
if on {
|
||
param, name = pmTX, "PM_TX"
|
||
}
|
||
debugLog.Printf("OmniRig.SetPTT(%v): status=%d(%s) writeableParams=0x%X PM_TX-writeable=%v → Tx=%s",
|
||
on, status, statusStr, writeable, txWriteable, name)
|
||
// When OmniRig DID report its writeable params (writeable != -1) and PM_TX
|
||
// is NOT among them, writing Tx is a silent no-op: the rig never keys and
|
||
// SetPTT would otherwise return success, leaving the user puzzled ("Test PTT
|
||
// does nothing"). Surface a clear, actionable error instead. If we couldn't
|
||
// read the writeable params (-1), fall through and try anyway (best effort).
|
||
if on && writeable != -1 && writeable&pmTX == 0 {
|
||
debugLog.Printf("OmniRig.SetPTT: ⚠ PM_TX not writeable for this rig profile (writeableParams=0x%X)", writeable)
|
||
return fmt.Errorf("this rig's OmniRig profile doesn't expose CAT TX keying (PM_TX not writeable) — use RTS/DTR or VOX for PTT")
|
||
}
|
||
// OmniRig has NO SetTx method (that returns "unknown name"); the Tx
|
||
// parameter is set via the writeable Tx PROPERTY (PM_TX / PM_RX).
|
||
if _, err := oleutil.PutProperty(o.rig, "Tx", int32(param)); err != nil {
|
||
debugLog.Printf("OmniRig.SetPTT error: %v", err)
|
||
return fmt.Errorf("set Tx=%s: %w", name, err)
|
||
}
|
||
// Read the Tx param straight back. OmniRig is async — this may still show the
|
||
// previous value for a poll cycle — but if a key/unkey NEVER changes it, the
|
||
// write was coalesced or the rig isn't honouring PM_TX/PM_RX (wrong .ini).
|
||
if v, err := oleutil.GetProperty(o.rig, "Tx"); err == nil {
|
||
txState := "PM_RX"
|
||
if v.Val&pmTX != 0 {
|
||
txState = "PM_TX"
|
||
}
|
||
debugLog.Printf("OmniRig.SetPTT: Tx readback = 0x%X (%s)", v.Val, txState)
|
||
}
|
||
return nil
|
||
}
|
||
|
||
// ===== OmniRig enum decoders =====
|
||
|
||
// Bit flags from OmniRig type library (RigParamX enum in OmniRig_TLB.pas).
|
||
//
|
||
// Cross-checked against https://github.com/VE3NEA/OmniRig — be careful when
|
||
// referencing other people's writeups online, several have these one bit
|
||
// too low which causes every mode to map to the slot below it (AM → DIG_L,
|
||
// FT8 → SSB_L, etc.).
|
||
const (
|
||
pmRX int64 = 1 << 20 // 0x00100000 — PM_RX (receive)
|
||
pmTX int64 = 1 << 21 // 0x00200000 — PM_TX (transmit / PTT on)
|
||
pmCWU int64 = 1 << 23 // 0x00800000
|
||
pmCWL int64 = 1 << 24 // 0x01000000
|
||
pmSSBU int64 = 1 << 25 // 0x02000000
|
||
pmSSBL int64 = 1 << 26 // 0x04000000
|
||
pmDIGU int64 = 1 << 27 // 0x08000000
|
||
pmDIGL int64 = 1 << 28 // 0x10000000
|
||
pmAM int64 = 1 << 29 // 0x20000000
|
||
pmFM int64 = 1 << 30 // 0x40000000 — still fits in int32 (max 2^31-1)
|
||
)
|
||
|
||
// omniRigMode maps the OmniRig Mode bit-flag to an ADIF mode string.
|
||
// OmniRig only reports rough categories; specific digital modes
|
||
// (FT8, RTTY, PSK31…) can't be inferred — DATA is returned and the user
|
||
// can keep / override the mode they already had in the entry form.
|
||
func omniRigMode(m int64) string {
|
||
switch {
|
||
case m&(pmCWU|pmCWL) != 0:
|
||
return "CW"
|
||
case m&(pmSSBU|pmSSBL) != 0:
|
||
return "SSB"
|
||
case m&(pmDIGU|pmDIGL) != 0:
|
||
return "DATA"
|
||
case m&pmAM != 0:
|
||
return "AM"
|
||
case m&pmFM != 0:
|
||
return "FM"
|
||
}
|
||
return ""
|
||
}
|
||
|
||
// omniRigVfo maps the OmniRig Vfo RigParamX enum to a short label, using the
|
||
// documented PM_VFO* constants.
|
||
// isYaesuRig recognises a Yaesu from OmniRig's RigType (the .ini title, e.g.
|
||
// "FTDX101D", "FT-891"). Only used to gate rules that are true for Yaesu and
|
||
// false for Icom, so a mis-titled ini simply keeps the generic behaviour.
|
||
func isYaesuRig(rigType string) bool {
|
||
return strings.HasPrefix(strings.ToUpper(strings.TrimSpace(rigType)), "FT")
|
||
}
|
||
|
||
func omniRigVfo(v int64) string {
|
||
switch {
|
||
case v&0x40 != 0: // PM_VFOAA
|
||
return "AA"
|
||
case v&0x80 != 0: // PM_VFOAB
|
||
return "AB"
|
||
case v&0x100 != 0: // PM_VFOBA
|
||
return "BA"
|
||
case v&0x200 != 0: // PM_VFOBB
|
||
return "BB"
|
||
case v&0x400 != 0: // PM_VFOA
|
||
return "A"
|
||
case v&0x800 != 0: // PM_VFOB
|
||
return "B"
|
||
}
|
||
return ""
|
||
}
|