The SunSDR announces its own stream at connect —
audio_stream_sample_type:float32 and audio_stream_channels:2 — and both
were being logged as unhandled while the code worked the format out from
frame arithmetic. The declaration is better evidence and arrives before
the first frame; the arithmetic stays as the check on it. The channel
count now drives the mix-down instead of an assumed stereo.
Adds a ten-second test recording, written as a WAV beside the QSO
recordings. Counting frames proves a socket is delivering bytes; it says
nothing about whether those bytes are the receiver's audio, at the right
rate, in the right order. A stream decoded with the width wrong or the
samples misaligned counts exactly as well as a correct one and sounds
like a fan — so the test is a file the operator can play, the same way
the CW decoder was settled on the air rather than on a spectrogram.
The file is written at the rate the RADIO reported, not a constant: a
recording at the wrong rate plays at the wrong speed, which is the one
fault that would be blamed on the decoding.
A SunSDR already carries its receive audio on the same WebSocket as its
commands, so a virtual audio cable and a second sound card are two pieces
of plumbing an operator installs for no reason. This is the receive half:
what the QSO recorder and the CW decoder need.
The reader now looks at the frame type. It used to ignore it and split
every frame on ';' -- harmless only for as long as no stream was ever
opened, since audio bytes would otherwise have been handed to the command
parser a hundred times a second.
NOTHING HERE IS CONFIRMED ON A RADIO. The header layout comes from the
TCI documentation, and the stream-type numbers are exactly the sort of
detail a document gets right and a memory of it does not -- so the first
forty frames of a session are logged verbatim, and a test bench in
Preferences > Audio reports the sample rate the radio chose, the frames
arriving and the peak level of the last second. 'The stream is open' and
'audio is arriving' are different claims and only the second is worth
anything to whoever tries this first.
Transmit (the voice keyer) is the other half and is deliberately absent:
it has to answer the radio's chrono packets at the right pace, and that
is worth doing once the format is settled on real hardware.
SWT20 was written from memory of the reference rather than from Table 7,
and 20 is not an ATU switch at all — it would have pressed something else
on a real K3. An operator read the table out for us: switch 19 is the ATU
row, TAP for a tuning cycle and HOLD for tuner in line or bypassed.
Adds the HOLD as its own ATU button, because on the radio they are two
different things: tuning is a cycle you start, bypassing is a state you
leave it in.
Power takes 0-110 W on an Elecraft, per the reference — a K3 makes a
little over its rated output — while a Kenwood keeps 200.
The list is a ring buffer that held a thousand spots, and on a busy
evening a thousand arrive in a couple of minutes. So the buffer decided
how long a spot lived, and the spot LIFETIME setting never got the chance
to expire anything: fifteen minutes meant nothing when the oldest spot
was pushed out after two.
Now settable (Preferences → Cluster, beside the lifetime, since between
them they decide the same thing), 100 to 10 000. The ceiling is a real
limit rather than a round number: every spot is matched against the
worked index and the alert rules, and is a row the cluster grid and every
open band map re-render.
So the tester can exercise everything in one session instead of one
control per build: RF and mic gain, squelch, preamp, attenuator, NB, NR,
AGC, filter width, antenna, RIT/XIT with a clear, and the keyer speed.
The analogue scales differ between an Elecraft and a Kenwood — RF gain
000-250, mic 000-060, squelch 000-029 against 0-255 — so each is mapped
through its own full scale and shown as a percentage. Using one rig's
range on the other silently halves or doubles every setting.
Antenna only appears when the radio answers AN: a K3 without the internal
ATU has one socket, and a switch that goes nowhere is worse than none.
The Elecraft backend already existed; what was missing was somewhere to
operate the radio from. This adds the panel, on the Kenwood-dialect
client the K3 already speaks, in a tab of its own beside the Yaesu and
Icom consoles.
Scope is the six controls asked for and nothing else. Every extra command
added without a radio to test it against is a control that may or may not
do what its label says, and a K3 exposes dozens.
No K3 was available while writing this, so the two halves are treated
differently. The setters are the commands the reference documents
unambiguously and whose effect is visible and reversible (PC, AG,
TX/RX). The meters are the opposite: their scaling differs by model and
firmware, so the raw answers are logged next to the power setting, the
panel says the scaling is provisional, and an unmeasured SWR shows as
'—' rather than as a perfect 1.0 — a good match on an antenna nobody
measured is the reading that costs a radio.
ATU tune sends SWT20 (the K3 front-panel tap) and logs exactly what it
sent, so a wrong mapping names itself instead of leaving an operator
guessing which button OpsLog pressed.
Working a DXpedition split means guessing where it listens. The useful
information is not the callsign the DX answered but the FREQUENCY that
station was calling on, and a CW skimmer already marks it: SDC posts each
decoded report to the panadapter as a spot.
Those spots reach OpsLog through the radio's spot feed. On a marker, the
TRANSMIT slice moves there plus a signed offset; the receive slice never
moves, because losing the DX is worse than missing a call. The marker
text is a setting -- it is chosen in SDC by the operator, so any constant
here would be wrong for whoever chose otherwise -- and the switch is a
button beside SPLIT, since it is turned on when a DXpedition appears and
off when it is worked.
Moves are throttled and ignore a marker landing where the slice already
is: a busy pile-up produces several reports a second and the slice would
otherwise never be anywhere long enough to call.
The spot feed is now subscribed to unconditionally. It was tied to
OpsLog's own spot overlay, so an operator running SDC with the overlay
off received nothing -- the reason no foreign spot was ever logged. The
connect-time 'spot clear' stays behind the overlay flag: it wipes every
spot on the radio, a skimmer's included.
The import printed four numbers and left nothing behind. 1106 matched
and 395 unmatched out of 1501 is not a report: the operator cannot see
which contacts were confirmed, nor work through the discrepancies.
Two additions. The Results view is now filled with the confirmed
contacts, flagged new entity/band/mode/slot against what LoTW and paper
QSL already confirm -- the only sense in which a HAMLOG confirmation
changes anything. And the unmatched ones can be written out as ADIF,
because a few hundred of them are a list to open and compare, not
something to read in a log window.
Their agent protocol has no download verb, so the return path is a file
exported from their site. Running that file through the ordinary ADIF
import is the wrong tool and does real damage: it matches on callsign +
UTC minute + band + mode, their export is rebuilt from their own
database and rarely agrees to the minute, and 'update duplicates' then
inserts everything that failed to match -- several hundred copies of
contacts already in the log.
This path matches only. It stamps the confirmation on QSOs it finds,
falls back to the mode-CLASS key for the modes their export renames, and
REPORTS what it could not match instead of adding it: an unmatched
confirmation is a question about the log, not a contact to create.
Also logs and reports how many rows a delete actually removed -- silence
there made a delete that did nothing indistinguishable from one that
worked.
A log imported from HAMLOG.online carries the Russian district in CNTY, and the
offline RDA database has its own answer for the same contact. Which wins is a
real question — but only if the two are independent. If HAMLOG's value is itself
a lookup in the same kind of database, there is nothing to arbitrate and a
precedence rule would be ceremony around a redundancy.
So this measures instead of deciding: Settings → RDA gains a read-only compare
that reports agreements, disagreements, and the contacts where only one side
knows, then lists the disagreements — callsign, date, both districts, whether
the database answer was a DATED record (the award administrators' own fact) or
the callsign's current district (an assumption), and whether the QSO is
confirmed on HAMLOG (their value has then been through a match of two logs).
It changes nothing in the log. What to do about a conflict is the next decision,
and it should be taken with the operator's own numbers in hand.
Also: the four HAMLOG fields become filterable, so 'never sent there' is a
filter rather than a guess. A field that can be written and not read back is
half a feature — pinned by a test against the bulk-editable list.
HAMLOG.online is now reachable: Settings → External services → HAMLOG.ONLINE
takes the API key, the auto-upload switch and the timing, exactly like the six
services beside it, and a link opens the page where the key is issued.
The button next to it checks the KEY, not the connection. HAMLOG answers
KEYSTATUS with the callsign the key belongs to — something no other service
here offers — so the result reads "Key is valid — account F4BPO" rather than a
green tick. A key pasted from a club account or a second station is visible at
once, which is precisely the mistake a tick would have hidden.
No on-close timing, for the same reason as Cloudlog: there is no per-QSO upload
column to select a backlog from at shutdown, so the option would have done
nothing. Immediate or delayed, and a stored on_close falls back to immediate
rather than silently uploading nothing.
The appearance rules gain a HAMLOG.online channel too, so a row can be coloured
"confirmed" on that alone. It reads the ADIF extras — the standard names a field
for hamlog.EU and none for hamlog.ONLINE — using the same keys the award engine
reads, so the two can never disagree about what a confirmation is. "To send"
skips it: a QSO is either uploaded or not, there is no card to be owed.
HAMLOG.online is a seventh external service: one API key, one ADIF record per
QSO, immediate / delayed / on-close like the rest. They publish no API
documentation, so the protocol is read from THEIR OWN client — the HAMLOG Agent
(github.com/hamlogonline/Agent), which is the authoritative source short of
asking them:
POST https://hamlog.online/api/agent/
{"ADIFADD": {"APIKEY": k, "ADIFDATA": record}} → {"STATUS":"OK"}
{"KEYSTATUS": {"APIKEY": k}} → {"STATUS":"OK","CALLSIGN":…}
Success is STATUS == OK, not "no ERROR field": their failure carries ERROR and
no STATUS, and reading an unknown reply — a proxy page, a maintenance notice —
as an acceptance is how a contact goes missing without anyone noticing.
KEYSTATUS buys something no other service here offers: the key can be checked
BEFORE the first QSO, and the answer names the account. A key pasted from
another callsign is caught in the settings panel rather than through a week of
silent refusals.
Their confirmations are also an award source now, ticked like LoTW rather than
expressed through "custom". It reads the ADIF extras, not a column: the standard
names a field for hamlog.EU and none for hamlog.ONLINE, and borrowing the other
site's field would write a falsehood into every exported log. Three plausible
key names from their own export are accepted too, so nobody has to rename a
column by hand after an export.
Yaesu gains antenna selection (AN), remembered per band — the antenna picked on
a band comes back with it, with no table to fill in anywhere. Rigs with one
socket never answer AN and never show the row; the log says which case it is.
And a serial port that is refused now names its likely holder. OmniRig stays
resident once activated and keeps the port of the rig configured in it, so a
native backend never gets it — "Serial port busy" alone accused nobody, and an
FTDX10 spent a morning being blamed for it.
Clicking a decode now ANSWERS it. It sends WSJT-X/MSHV a Reply message
(type 4), which is the same thing as double-clicking the line in their own
Band Activity window: the application looks the decode up, sets its
transmit frequency to the caller's and starts the exchange.
It deliberately does not tune the radio, which is what it did before and
why nothing happened. On FT8 the whole band sits inside one passband, so
moving the dial changes nothing about who gets answered - the decision
belongs to the decoding application, and the Reply is the only way to hand
it over. Tuning would also just fight it for the VFO. The entry is still
filled so the QSO can be logged here.
The reply is routed by PROGRAM ID, not by listener: two receivers can share
one multicast group, and answering a station heard on the 6 m instance by
talking to the 20 m one would start a call on the wrong band. It goes to
the address that instance's packets actually arrive from - a multicast
listener must answer the sender, never the group. WSJT-X matches the reply
against its own decode list, so the payload replays the decode field for
field: time, snr, delta time, audio offset, mode and message text.
Two columns added, DT and Freq - the audio offset inside the passband, not
the RF frequency, which is the same for every station in the list and says
nothing. Past about two seconds DT takes a warning tint: that station is
drifting out of the window.
The transmit strip. "You cannot see what you are sending, or who you are
calling" - two separate faults. The message was only ever threaded into its
period, and in FT8 you transmit in the slots you are NOT receiving in, so
its period had no decodes and the whole line was dropped; a transmit slot
now creates its period. And the state is a strip of its own at the top,
because it is the one thing on the screen that is about the operator rather
than the band. It is fed by every Status rather than only by one carrying
transmit text, so it can still name the station being called on MSHV and
older JTDX builds, which stop before tx_message in the Status payload.
"New only" became per-category badges, in the colours and the vocabulary of
the Chase New panel. None lit shows the whole band - this is a decode log
first, and a panel that opened by hiding most of the traffic would be lying
about what is on the air.
The PH/CW/DIG grid in the Stats panel is the fastest read in the app and its
palette was fixed per theme. Settings -> Appearance now offers the six: the
four status fills, the never-worked fill, and the ring on the cell being
entered.
Stored as OVERRIDES, not as a palette. Each of the twelve themes ships an
--mx-* ramp tuned to its own background, so an operator who only wants a
different green must not thereby freeze the other four to the theme they
happened to be using that day. An empty value means "whatever the theme
says"; the chosen ones are stamped inline on <html>, where they win over
every theme; switching the feature off hands the colours straight back.
The pickers are seeded from what the matrix is painting at that moment
rather than from a fixed palette, so the choice starts from the colours in
front of the operator. A new --mx-cur token carries the current-entry ring:
it follows --warning by default, so it stays theme-correct on all twelve,
but can be recoloured without dragging every other warning in the app along.
The legend under the matrix and its cell tooltips were hardcoded English.
They now go through t() with the same keys as the pickers, so the grid and
the settings cannot disagree about which green is which.
The one field the editor would not let you touch, and the one that was wrong on
WAJA. Every other property of a reference — its name, pattern, entity list,
validity window — was editable; the code was rendered readOnly, so correcting a
number meant deleting all 47 references and importing a new list, throwing away
anything the operator had adjusted in it.
A rename in the store, not a delete plus an insert: everything the reference
carries travels with it, which is the whole point of correcting a number rather
than replacing an entry. A number already in use is refused — REPLACE INTO would
have let one reference silently swallow another, discovered much later as a
prefecture quietly missing from the list.
The typed code is held apart from the selection. The list and every field patch
key off the selected code, so editing it in place made the editor lose the
reference mid-edit.
SaveAwardReference now recomputes the log like Delete and Replace already did. A
reference's name is what the award column SHOWS for awards displaying by name,
and its pattern is part of what matches at all — so editing one changes rows,
and the grid was left showing the old label until something else happened to
trigger a pass.
Changelog: the three TCI-sharing lines are merged into one. The server and the
two fixes made to it while building are one unreleased feature, and an operator
only ever meets the finished thing. The TCI-client PTT line stays separate — it
is OpsLog driving a SunSDR, the other direction entirely.
The three layers underneath were already there and unreachable: the change-log
format (7d664bd), the identity column (724e68b) and the no-backfill decision
(c48294b). This is the wiring that gives the operator a switch.
Settings, all profile-scoped, because each profile can point at its own logbook:
the folder, this PC's name, the machine id minted once from it, the per-peer read
offsets and the tie-break counter. Scoping the machine id is what keeps two
profiles sharing one folder from writing two logbooks into one file.
Three hooks. Add and update publish asynchronously, down with the rest of the
after-the-fact work — a folder on a network share can block for seconds and a
contact belongs on screen long before another machine hears about it. Deletion
publishes SYNCHRONOUSLY and BEFORE the row goes, for the same reason
deleteRemoteCopies does: once it is gone its identity is gone with it and the
tombstone names nothing.
The apply path uses the repository directly and never AddQSO/UpdateQSO/DeleteQSO
— those publish, and a change applied here would be written straight back out,
two machines echoing each other for ever.
Saving writes a probe file to the chosen folder rather than asking whether it
exists. A read-only cloud folder, or a share whose credentials expired, exists
perfectly well and would swallow every contact in silence; if the probe fails the
switch goes back off instead of sitting on while nothing is written.
The panel is mostly status, and deliberately: every part of this runs on another
machine and on a sync client OpsLog cannot see, so "it is not working" has to be
answerable from the settings page — which PCs are in the folder, when each last
logged, what is waiting unread.
Four tests on the apply path, the middle two being the ones that matter: an edit
made on the other PC lands on the copy already here, matched on the contact
itself, instead of becoming a second row — that is what makes the no-backfill
decision safe — and a contact with the same station on another band stays a
separate contact.
Two faults behind one screenshot: 3Y0K, recorded in the log as Bouvet Island,
showing the Antarctica matrix.
SELECTING A QSO now shows what that QSO records. The panel asked WorkedBefore
with no DXCC hint, and a hint of zero makes the backend resolve the entity from
cty.dat and the ClubLog exceptions AS THEY ARE TODAY — right for a live contact,
wrong for one being looked at in the log. The repo's own "infer from past QSOs"
path never ran, because the hint was no longer zero by the time it got there.
Hence Antarctica, and "5 QSOs with this entity" against "11 with this call":
two different entities, one of them nobody had asked about. The selected row's
dxcc now travels with it and is passed as the hint.
Browsing the log shows what the log says, even where the log is wrong.
Correcting an entity stays a deliberate act — right-click, Update from ClubLog.
BACK-ENTERING A QSO now resolves the exception at the CONTACT'S date. An
exception carries a validity window and a DXpedition's window closes: 3Y0K typed
months later, with the activation's own date in the form, was resolved against
today, matched nothing, and fell back to cty.dat. Both callers pass the date
they already hold — the entry strip's, and in the editor the record's own.
The date is trusted to move the resolution BACKWARDS only. A half-typed
"2026-0" must not send the lookup to the year 20, and a mistyped future date
must not resolve against a window that has not opened; both fall back to now.
Midday rather than midnight, because a window given in whole days is inclusive
of its end date and 00:00 sits exactly on the boundary.
The manufacturer's document arrived, so this is no longer guesswork: 9600 8N1,
function codes 03 and 06 only, and a register map with the output on/off at
0x0001, the measurements at 0x0010…0x0013 and the set points at 0x0030/0x0031.
ONE REGISTER IS WRITTEN — 0x0001, the output. The map also exposes the voltage
and current set points and the three protection trip levels as writable, and
none of them belong to a logbook: a wrong value there is 30 V where a radio
expected 13.8, or a trip level lifted on a supply feeding an amplifier. They are
read and displayed instead, next to the measured values, which is also how an
operator sees at a glance that the supply is on and the radio is drawing nothing.
The wire layer is tested where it can be. CRC-16/MODBUS is pinned against its
published check value — the CRC of "123456789" is 0x4B37 — which fixes the
polynomial, the initial value, the reflection and the absence of a final xor all
at once; the rest of the protocol is checked frame by frame against the manual,
including the byte order of the CRC, an exception reply told apart from a broken
line, and a reply from another slave on the bus refused. The write echo must
match the value sent: it is the only confirmation the output really switched,
and accepting the frame without it is how a radio ends up dark behind a green
light.
Framing follows the manual's own rules: 3.5 character times of silence between
frames (4 ms at 9600), and a frame is over when the line falls quiet — Modbus
RTU has no terminator, and a serial read that times out returns (0, nil) here,
so the reader is built on a deadline and a quiet-time rather than on an error
that never comes.
Untested against hardware — nobody here has the supply.
Relay automatic control and the band-change outbound rows both hang off the rig
state, which is right when there IS a rig: changing Band in the entry strip
pushes a QSY, the new state comes back through the CAT callback, and the relays
follow from there — which is why this works for anyone with rig control.
Without a CAT connection nothing is pushed and nothing comes back, so a station
whose rig OpsLog does not control changed band and the antenna switch sat
exactly where it was. Reported as automatic control not working; it was never
told the band had changed.
The entry selector now says so itself, but only when the CAT push did not
happen, and never when the band or frequency lock is on: a lock means the entry
is deliberately decoupled from the rig, and moving an antenna to match a contact
logged from last year is worse than doing nothing.
The frequency is passed as unknown on that path — a band selector gives a band
and nothing else, and rules written on a frequency RANGE are left alone rather
than evaluated against a made-up dial reading.
The de-duplication of "is this a new band" is now shared by both sources, so a
station that has both does not command its switch twice for one QSY.
Also: the same credit line as the QSL e-mail now closes the default recording
e-mail body, on the same terms — a default in the template, so a stored one is
untouched.
The automatic pass fills a blank county only, and deliberately: a value the
operator or QRZ supplied usually beats one derived from a ZIP code. That leaves
no way at all to correct a county already stored — and the Connecticut planning
regions are exactly that case. Every CT contact logged before that correction
holds a county the state abolished in 2022, and filling blanks never reaches
one of them.
So the new entry OVERWRITES, because it is asked for by hand on a chosen set of
rows precisely because the stored value is believed wrong. Only US entities are
touched, only callsigns the database holds, and only when the answer actually
differs — so re-running it on a mixed selection is safe and the count reported
is the number of counties that really changed. Award refs are re-materialised:
the county IS the reference for CQ USA-CA and the state for WAS.
The entry appears only once the database has been downloaded, and appears
without a restart when one finishes — an action that can only ever answer "no
database" is not worth a line in a menu this long.
The hard-coded emitters each speak one published format at one fixed moment.
This is the escape hatch, and it exists mainly for antenna switches: they are
driven by a URL, and the band change is the trigger they want.
Four triggers, each carrying its own field set: band change (the RADIO's band,
not the entry form — a switch follows the rig, not what is being typed), QSO
logged, rotator command and callsign lookup. The panel prints the fields the
selected trigger can fill, which is the point of the whole thing: a placeholder
the trigger does not carry renders as nothing, and without the list an operator
writes {freq} on a band change and has no way to learn why the switch never
moved.
Three things the panel cannot show, handled here:
- Escaping. A URL needs every value percent-encoded; a UDP payload must not
be touched. The first portable callsign, F4BPO/P, puts a path separator in
the middle of a query string otherwise — it works on the bench and fails on
the air.
- Blocking. An HTTP call to a switch that is unplugged would otherwise sit
for the operating system's timeout, on the path of a band change. It runs
in the background with a 3 s limit.
- Silence. A switch answering 404 after a firmware update fails exactly like
success looks from here, so the status code is logged, throttled per row.
The rotator trigger hooks the COMMAND rather than the SP/LP buttons, so the
compass and a spot click fire it too, and the path ("SP"/"LP") is passed
through because an azimuth alone cannot say which was taken — 137° is short
path to one station and long to another.
Credentials in a URL are stored as typed. That is the operator's call, on the
grounds that this is LAN gear, and the hint in the panel says so.
PSK Reporter tells you what is actually being decoded in your region, which
is a larger set than what somebody chose to spot: nobody spots the FT8 caller
running ten watts from a rare square.
Almost all of it existed. The MQTT payload already carries frequency, mode,
transmitter and both grids; the watcher already drops any report collected
further than NearKm from the operator, which is exactly the question worth
asking — the station is being heard HERE, not in Japan; and with grid chasing
on the subscription is already every band, filtered at the broker by receiver
square, measured at 0.2 to 1.2 messages a second. This reads messages that
were arriving and being discarded.
"New" is not decided here. Every spot goes through ClusterSpotStatuses, the
same function the DX cluster grid uses and the same cached index, so the two
panels cannot drift apart the way the county columns did. Cost per message is
map lookups behind an option cached in an atomic, because the MQTT goroutine
must never wait on the settings store.
The option is its own, not nested under grid chasing: chasing squares and
chasing entities are different wants, and the feed now has three consumers,
any one of which brings it up and none of which cuts the others loose when it
goes down.
The panel says "digital modes only" in its footer. An empty list has to mean
"nothing new on FT8/FT4/JS8 near you", not "the band is dead" — it will never
show a new entity on CW.
QSL_VIA is the manager. QSL_SENT_VIA and QSL_RCVD_VIA are the ADIF "QSL Via"
enumeration — B bureau, D direct, E electronic, M manager (import-only) —
and say how a card travelled. OpsLog had one column for all three:
- the import folded QSL_SENT_VIA into QSL_VIA whenever QSL_VIA was empty,
which is exactly a Log4OM export (it defaults QSL_SENT_VIA to E), so
OE6CLD saw "E" everywhere OpsLog shows the manager;
- QSL_RCVD_VIA was listed in adifPromoted with no column behind it, so it
was not stored, not kept among the extras, and not exported — dropped
outright on import;
- neither was ever written on export, so an import followed by an export
destroyed both;
- and OpsLog polluted the field itself: the QSL Manager panel wrote
"Bureau" / "Direct" / "Electronic", in full words, into QSL_VIA.
Two columns added (migration 0027), carried through the five places a
promoted ADIF field has to touch, with round-trip tests pinning the reported
case. The QSL panel now offers Bureau / Direct / Electronic for each
direction and stores the enumeration; the manager field is labelled as the
manager and holds only that. M is kept when a file gives it and never
written back out.
Existing logs hold a mixture of the two in one column. The repair is offered,
not performed: the count is shown once per log with a plain question, and a
"no" is remembered. It moves only where QSL_SENT_VIA is still empty, and only
values that normalise to the enumeration — a manager is a callsign and can
never be one of those six words, which a test pins against real manager calls.
A second profile is usually the same operator with a different rig or a
different locator — same callsign, same cards. Having to redraw a design
because the antenna changed is work nobody should do.
The designer now lists the designs the active profile cannot see and copies a
chosen one into it. Designs it already sees — its own, and the shared ones —
are left out: they are not something to copy.
A COPY, not a move or a share. The original profile keeps its design untouched
and the duplicate is free to diverge, which it usually will: a second profile
exists because something differs, and that something often ends up on the card.
The PICTURES are copied too, and that is the part worth getting right. Stored
documents reference photos by name relative to the template's own asset folder,
so duplicating the JSON alone would point the new design at files that are not
in its folder. It is validated against its own folder afterwards, and a failure
rolls the row back rather than leaving a design whose pictures are missing.
Sharing the source's folder was the other option and a worse one: deleting
either design would then have emptied the other.
The first version was a single switch meaning "command them all", and that is
wrong the moment a station has three: two SPE on a combiner and a PowerGenius
on another antenna would all go into OPERATE together, keying an amplifier that
has nothing to do with the pair.
It is now a set. Each amplifier is ticked into the group or not, the group is
stored as a list of ids, and an amplifier outside it keeps its own buttons —
which is the entire point of it being a set.
A group of fewer than two members is stored as none: one amplifier coupled to
itself would make every command fan out to a single member for ever.
A remembered member that is no longer running is skipped rather than failing
the command — deleting one amplifier must not break the button on the other.
An amplifier saved without an id cannot join, and the panel says so instead of
quietly omitting it from the list.
The SPE CO1-2 combiner is an RF device: it sums two amplifiers and commands
nothing. So "combined" operation is really two amplifiers that must be held in
the same state, and one left in STANDBY while the other keys means the combiner
sees power on a single input.
A switch in Settings → Amplifier makes ON, OFF and OPERATE act on every
configured amplifier. Offered only with two or more: coupling one amplifier to
itself is a switch that cannot do anything.
The METERS stay per amplifier, deliberately. Two amps combined are still two
amps, and an operator watching for one of them to run away needs to see them
apart — a summed bar would hide exactly the fault worth catching.
Fanned out in AmpOperate/AmpPower rather than in the UI: the card and the docked
widget both call these, and a coupling built into one would be missing from the
other, which on a combiner means one amplifier keyed and one not. The clicked
amplifier goes first, so a partial failure still did what the operator asked
before it stopped.
While linked, an amplifier with no power command — a PGXL on its direct link —
is skipped silently rather than reported: it would make a successful pair look
broken.
compactH was 158px, "tuned so the compact entry strip fits in a single row".
A constant tuned against a layout stops being true the moment the layout
changes, and this one outlived a strip that had since shrunk — leaving about
70px of empty window under the fields.
The frontend now measures what it rendered and asks for that height, watched by
a ResizeObserver so a strip that wraps at a narrow width is followed too. The
topbar is added as its declared h-8 rather than measured, since it is fixed.
Bounded in the backend: a measurement of zero — a layout not yet painted —
must not collapse the window, and the call is ignored unless compact is on so
nothing can shrink the normal window. Rounded to whole pixels so a sub-pixel
reflow cannot start a resize loop.
Spots were bounded by COUNT alone, so on a quiet band a two-hour-old spot sat
on the band map looking like something to chase. Settings → DX Cluster now
takes a lifetime: presets at 5/10/15/30/60 minutes, or any value up to twelve
hours, and 0 keeps the old behaviour.
Spots are REMOVED from the shared list rather than hidden at render. The
cluster list, every band map and the counts all read that one array, so pruning
it once is what makes the setting mean the same thing in every view — the
lesson already paid for when the band map ignored the cluster's filters. It
also gives the memory back.
A spot whose timestamp will not parse is never dropped: an unreadable stamp is
a reason to distrust the clock, not to throw away the spot.
Swept every 30 seconds — close enough that a 5-minute setting is honoured, and
invisible next to the spot stream. Clamped in the backend as well as the UI.
New Settings → Appearance section: whole-row colouring in the log grid driven
by QSL / LoTW state, each rule with its own colour from a palette or a free
picker. What Logger32 does, with one difference that matters — the colour is
applied as a 24% tint, not a fill. Logger32's grid is white; this one is dark,
and a saturated user-picked colour behind white text is unreadable at exactly
the moment the operator is scanning for what still needs sending.
Rules are ORDERED and the first match wins, because a contact is usually
several of these at once: one confirmed on LoTW and by card is confirmed, not
"sent, awaiting reply". The order lives in the data so the panel can show the
rules in the order they actually apply, numbered.
The colour is interpolated into a CSS color-mix(), so anything that is not
plainly #rrggbb is refused on the way in and falls back to the default.
Also fixes the QSO number column, which was empty for contacts logged from
WSJT-X: that path inserts through the repo directly and never reached AddQSO.
Rather than chase each of the remaining bulk-insert paths — the POTA hunter
import and the LoTW/QRZ "add what I was missing" passes, which insert OLD
dates and so shift every number after them — the index now checks its length
against a COUNT and rebuilds when they disagree. One indexed count beats
remembering to invalidate in a place that does not exist yet.
The store shipped without its main source. Locators came only from this
station's own WSJT-X decodes, which is what the whole MQTT discussion was
about.
PSK Reporter now feeds it through a new OnGrid callback, fired before any
geographic filtering: what the store wants is "which square is this callsign
in", and that is true whoever happened to hear the report.
The subscription filters on the RECEIVER's square, a level the v2 topic
exposes. Measured on the live feed: the four opening bands unfiltered are 83
messages a second, of which roughly one in a hundred survived the NearKm test
that already existed here — the rest was received, TLS-decrypted, JSON-parsed
and discarded. One ring of squares is 0.2 to 1.2 a second.
By square rather than by DXCC, which was the obvious alternative: one country
measured 1.2 messages a second (OH) against 72.5 (K) on a single band, because
a DXCC can be a continent. By square the same measurement is 0.2 to 1.2, so the
load follows distance — what the feed is actually about — and is the same for
every operator.
Grid chasing subscribes with the "+" band wildcard, so one subscription per
square covers every band instead of one per band per square.
The store gains a source column (decode | mqtt), migrated in place on an
existing file.
The callsign->grid map died with the process. Every restart began with an empty
Locator column that took an hour of listening to refill, and everything learnt
the day before was thrown away.
internal/gridcache is its own SQLite file in the data directory, not a table in
the settings database: that one sits wherever the operator chose to put it,
often a synchronised folder, and a store that rewrites itself every minute has
no business there. Deleting the file costs a few days of listening and nothing
else.
Callsign is the primary key and the newest report wins — operators move, go
portable, go on expedition, and a stale locator is worse than none for grid
chasing because it reads as a square already worked. Entries not seen in two
years are pruned at open: that is the one way this cache can be actively wrong
rather than merely empty, and it is what bounds a store that would otherwise
only grow.
Only CHANGES are queued. The feeds repeat themselves, so writing every report
would put the whole stream in the batch instead of the news in it. Batches
flush on a timer and on shutdown — a restart is exactly when the cache is worth
the most.
Rotation is switched off while the store is attached: the cap would discard
callsigns the database still holds and the lookup would then miss what we know.
Age in the store is the bound instead.
The follow loop only ever had one behaviour — re-tune once the rig moved
further than a fixed step. The SteppIR's own controller software offers three,
and operators arrive with that mental model: every frequency change, past a
threshold, or only on a band change. They are real operating trade-offs, not
preferences: "always" keeps resonance perfect at the cost of motors running
constantly (and on a SteppIR every move inhibits transmit while the elements
travel), "band" moves them a handful of times a day.
"Always" is implemented as the threshold mode with a 1 kHz threshold rather
than as a separate branch, so all modes keep the one deadband reference that
matters: the rig frequency last commanded for, NOT the antenna's own reported
frequency — a SteppIR flips its reported frequency between the commanded value
and its home value, which would re-issue a SET on nearly every poll and leave
the operator permanently unable to transmit.
Band mode compares against the band last COMMANDED for, not the rig's previous
band, so the first move after startup and any move made by hand still get
reconciled. It applies to the immediate spot-click path too: a click inside the
band the antenna is already resonant in moves nothing.
An unset or unrecognised mode resolves to the step mode, so every config
written before this option behaves exactly as it did.
Also routes the antenna settings block through t() — it was hardcoded English.
The published page derives a distance as it renders, which fixed the empty
column there but not the cause: the field is empty in the database, so it goes
out empty in every ADIF export and leaves the same gap in whoever imports it.
BackfillDistances computes it from the two locators for QSOs that have both.
Only where it is EMPTY: a stored distance came from the log that recorded the
contact, which knew the real positions, and two four-character squares are a
worse answer that must not overwrite a better one. Whole kilometres, for the
same reason the published column is.
In the Database panel rather than beside the county backfill, which lives under
US Counties: this one touches the whole logbook, whatever country the QSOs are in.
It showed pattern, elements and Retract — everything except where the antenna
is pointed, which is the thing an operator changes most. Tuning it meant opening
Settings or moving the rig.
A button per band, taken from the bands configured in Settings rather than a
list invented here: a band dropped there cannot be clicked here. They point at
where people actually work, not the arithmetic centre — 20 m centres on 14175
and nobody lives there, 10 m spans 1.7 MHz of which the top half is empty.
Up and down move 25 kHz, which is also the finest tracking threshold: a smaller
nudge would be undone by the next poll while tracking is on. They work from the
ANTENNA's frequency, not the rig's, or walking the antenna across a band while
the rig stays put would be undone on the first press.
Tracking moved within reach because it is an operating decision — off to park
the antenna, on to resume — not something set up once. Its step only appears
when it is on: a threshold for something switched off is a question the operator
cannot act on.
MotorTuneKHz carries the CURRENT direction rather than resetting it. Both
controllers set frequency and pattern in one command, so a bare frequency would
silently drop a 180° or bidirectional pattern — a beam turning round is not an
acceptable side effect of clicking a band.
The only sign of a detection was a toast. It is gone in seconds, and an operator
who was tuning at that moment had no way back to it — for an event that lasts
hours and happens a handful of times a season, that is the wrong shape entirely.
The badge sits at the right-hand end of the status bar, before the clock: an
opening is a state of the WORLD, not of this station, so it belongs with the
time and the logbook rather than among the rig and amplifier chips.
Knowing when to go out was the real work. Nothing announces that an opening
ended, and the detector deliberately says nothing more about a band for 45
minutes after announcing it — right for a message, useless for a badge. So it is
inferred: every qualifying spot on that band pushes a deadline out, and when
they stop arriving the badge fades by itself. Fifteen minutes, comfortably more
than the detector's own twelve-minute window, so a quiet couple of minutes
mid-opening does not blink it off and on again.
Gated on the same distance floor the detector uses. Without that, a band busy
with short-range tropo would hold an Es badge lit indefinitely on spots the
detector itself had refused.
The detection shipped reading whatever the operator's cluster nodes happened to
carry. On VHF that is a few hundred skimmers, nearly all of them on HF: a 6 m
opening carrying 869 stations reached OpsLog as a handful of spots or none, and
Nexus flagged it on the same PC while OpsLog stayed silent.
internal/pskr subscribes to pskr/filter/v2/<band>/# on PSK Reporter's MQTT
broker. Every ordinary station running WSJT-X reports what it decodes, so the
difference is two orders of magnitude rather than a threshold. The feed's shape
suits us exactly: BOTH grids are in each message, so distance and bearing are
arithmetic — no lookup, and no DXCC-centre approximation, which is what made the
cluster path's bearings coarse. The geometry is injected from app.go so it stays
the same arithmetic the cluster path uses; two answers to one question is how a
bearing quietly becomes wrong.
Volume was the design constraint, not the protocol. Six metres open is thousands
of messages a minute and this runs on some very old PCs, so nothing is kept or
persisted in the watcher: each message is parsed, measured and handed on or
dropped, and the detector's existing window does the deciding.
And the part that was the real bug: enabling the watch now ARRANGES ITS OWN
SOURCES. It adds the two RBN nodes when missing and brings the feed up. A
feature that silently depends on sources nobody can know are needed does not
look unconfigured, it looks broken. Matched on host and port, not name, so an
operator who renamed theirs does not get a duplicate — which the detector would
read as twice as many stations, and announce an opening that is not there.
Turning it off leaves the nodes alone: they may have been wanted for their own
sake, and removing a node someone is using is worse than leaving one they are not.
Observation, not prediction, and it needs no new data source: the cluster event
worker already enriches every spot with the great-circle distance and bearing
from the operator's grid, which is exactly what a single-hop Es detection rests
on.
The signature is four or more DISTINCT stations at 500-2400 km inside a 90
degree bearing sector within twelve minutes. Each constraint earns its place:
distinct callsigns because one station spotted by six skimmers is six spots and
one station; the lower bound because a 6 m contact under 500 km is ordinary
tropo and says nothing about the ionosphere; the upper bound because past one
hop the bearing test stops meaning anything; and the sector because a real Es
cloud illuminates a direction, which is what separates an opening from a merely
busy evening.
Fed AFTER the Historical guard in the worker. A SH/DX reply replays a hundred
past spots in a second - precisely the shape of a burst - and would announce an
opening that ended hours ago.
Season LABELS, it never gates. Both hemispheres get a summer peak and a lesser
winter one, and an opening outside those is announced with "unusual for the
season" attached: the rare one is the one an operator must not hear about last.
One announcement per band per opening (45 minute quiet period). An opening runs
for hours and produces hundreds of spots; one alert is information, forty is
noise.
The band row was hardwired to 160-6 m, so an IC-9700 - the one radio in the range with no HF at all - showed ten dead buttons and none of 2 m, 70 cm or 23 cm. bandsFor(model) follows the model, exactly as attOptions already did for the attenuator steps. bandOfHz's labels had to move with it: it returned '70' where the button says '70cm', so the current-band highlight could never have matched, and it knew nothing of 23 cm.
Typing RK3DWA found nothing while RK3DWA/3 found 21 QSOs, so a station's
history was only visible if you happened to type the exact form it had been
logged under — and an operator who worked it as /0, /P or /MM saw none of it.
The other RDA tools and Log4OM fold these together; this does too.
The predicate strips the suffix from what was typed and matches "call = base OR
call LIKE base/%", so it works from either end: the base call finds the portable
QSOs and a portable call finds the plain ones. Deliberately not a bare prefix
LIKE 'RK3DWA%', which would also match RK3DWAB — a different station. The '/' is
what makes it the same operator.
Settings -> General to turn it off. Default ON, hence the inverted storage: an
existing install has no key, and reading that as OFF would leave everyone with
the behaviour we were asked to change.
Contest dupe checking is untouched — it runs through ContestDupe, a separate
binding, and stays an exact match as a contest requires.
Settings -> DX Cluster: a toggle and an interval. When it is on, logging a QSO
announces the station on the master cluster — the QSO's own station callsign as
the DX, on the frequency the contact was made on — so callers find the run
without waiting for someone else to spot it. The node fills the DE field from
the login, so the spotter is us too: a self-spot.
It fires on the FIRST QSO of a frequency and then at most once per interval.
Both halves matter: announcing every QSO would flood the node and get the
station filtered out, while a pure timer would stay silent for minutes after a
band change. A drift of up to 500 Hz still counts as the same run, so nudging
the VFO mid-pileup does not re-announce.
Five minutes is the floor, clamped in SaveSelfSpotSettings as well as in the
input: the limit protects the node from us, so it must not depend on the
frontend. The interval input keeps raw text and clamps on blur — clamping per
keystroke rewrote "10" to "5" as soon as the "1" landed.
Wired into both log paths (manual entry and UDP auto-log) on the async side, so
a cluster that is slow or down never holds up logging. A send failure restores
the previous throttle state, so the next QSO retries instead of sitting out an
interval that produced no spot.
Stale since the 0.23.9 work: SetOpsLogQSLReceived, the backup keep_all
flag, the award PRIMARY search prefix and the default QSL message were
all missing from the generated bindings.
New per-profile "tracked awards" selection: Settings → Awards (under User
configuration) is a two-column transfer list — every defined award on the left,
the ones you follow on the right, click to move either way. The Awards tab's
list is narrowed to the followed set; an empty set means "show them all" so the
tab is never blank.
Backend: app_awards_tracked.go adds keyAwardsTracked (per-profile JSON array of
award codes) with GetTrackedAwards/SaveTrackedAwards; saving emits
awards:tracked-changed so the Awards tab re-filters live. Award definitions stay
global — only the follow selection is per profile.
Five operator-requested items:
- Alt+W clears the QSO entry. Handled before the `typing` guard and above
the keyer's key routing, so there is always one key that clears whatever
else is running — Esc is not that key when the CW keyer reserves it.
- The Grid box no longer pops outside the entry panel on a narrow window.
Row 2 needed 300+130+76+gaps = 538 px inside a panel whose min-width is
520, so Grid was pushed out and clipped at every narrow width, not just
extreme ones. QTH's min-width drops to 80 and the row wraps rather than
overflowing if it ever still can't fit.
- Selecting a QSO in the log now drives the Stats (F1) matrix. Uses its own
WorkedBefore call into separate state, NOT runWorkedBefore: that one owns
the entry form's wbRef and can trigger a field backfill, which browsing
the log must never do. The entry form wins whenever it holds a call.
- Clicking a coloured band/mode square lists the contacts behind it. Returns
the exact callsign AND the rest of the entity, because that pair is what
the cell's colour encodes; the call's own QSOs are bolded. The DXCC arm
matches the stored dxcc column only — reconstructing it from the callsign
here would disagree with the matrix above, which is built from that column.
- The Awards DXCC list shows each entity's primary prefix in its own sortable
column. Derived live from cty.dat into Ref.Group rather than stored on the
reference row, so an existing installation needs no re-seed.
The LoTW/QRZ confirmation download ran on the app-lifetime context, so it
kept going after the QSL Manager was closed and a new download didn't stop the
previous one. A slow QRZ sync therefore bled its "flag cleared" log into a
freshly started LoTW download — the operator saw QRZ activity during a LoTW
run. Now each download gets a cancellable context: starting one cancels the
previous, closing the window cancels it (CancelConfirmations), and the parse
loops bail promptly on cancel. (A LoTW http 503 is separate — ARRL's server.)