ADS-B was a live table and nothing else: an aircraft was overhead for four
minutes and then gone, with nothing kept. Now everything heard goes into
adsb_<time>.jsonl as it arrives -- one object per frame, the raw hex beside
what was read out of it, flushed per line because a listening session ends
with control-C -- with a readable report beside it.
flights.py asks who the aircraft are: adsbdb for the airframe and the
route, hexdb behind it, cached for a month. What needs no website is
answered without one, because the ICAO address block says which country
registered the aircraft and the first three letters of an airline callsign
are its designator. Nothing but the address and the callsign heard on the
air is ever sent.
bandsaunter flights [LOG...] --out sky.gif
reads a log back and draws the evening as a map with the clock running.
Every frame is a moment: each aircraft is where it actually was then,
interpolated between the position reports either side of it and
dead-reckoned from its last speed and heading between them, and dropped
rather than guessed at once it has not been heard for --stale seconds.
The GIF is written here -- palette, LZW, frame differencing against a
transparent index -- so nothing but numpy is needed; ffmpeg writes an MP4
where it happens to be installed, and .png draws the whole evening at once.
The decoder needed 6.3 s to read a second of sky, so a live capture was
losing six frames in seven. Reading the bits off a running total instead
of summing each window takes that to 0.6 s, with identical output.
--simulate flies six aircraft that are not there past a receiver that is
not there, through the real encoder, the real checksum and the real
decoder, so all of this can be tried without an aerial.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_016PsWPTweCT6pwxKngvVxcg
Hexadecimal is a true answer to "what did that say" and not a useful one.
This is the work of turning the rest of what a receiver hears into
something a person can read, and most of it is pictures.
PICTURES
Three of the things on the air are images rather than sounds, and all three
arrive as the audio a scan already records:
SSTV 14.230 and 144.5 MHz Martin M1/M2, Scottie S1/S2/DX, Robot 36/72
APT 137-138 MHz the NOAA weather satellites
HF fax 2-20 MHz, sideband the marine weather charts
Each is written from its published specification, and the generators used to
test them are written from the same specification without reference to the
decoders -- so a picture that comes back matching the one that went in is
evidence about the format. Every SSTV mode reproduces its published line
time exactly, which is worth failing a test over: a line a few milliseconds
long walks the picture off the screen inside ten lines. Against synthetic
transmissions at 30 dB SNR, SSTV is 96-98% of pixels exact, APT correlates
at 0.97 and fax at 0.998; all three still read at 6-12 dB.
None of the three is guessed at, and that is what makes it safe to try them
on every recording. SSTV needs its VIS header, APT needs both line syncs at
the right distance from each other, fax needs the phasing signal. No false
pictures in 295 attempts over noise, tones, speech and swept whistles.
Two things had to be got right beyond the arithmetic. A band-pass does not
switch between two tones, it slides between them, so every edge is measured
at the midpoint of the slide rather than at the first sample past a
threshold -- the earlier version was reading the coarse search stride back
as the edge and shifting Martin M1 sideways by a whole colour bar. And a
picture now keeps its capture whatever the content check made of it: a
satellite is a steady tone with a wobble on it and SSTV is a whistle, so
both were being discarded as "no signal content" having already been
recognised.
PNG is written here rather than pulled in from Pillow. A scanner that
cannot start because an imaging library is missing is worse than one that
cannot draw.
saunterbrowse marks a picture in the list, gives its path in full -- wrapped
rather than cut off, because half a path opens nothing -- and moves or
deletes the PNGs with the recording. o prints the picture's path, not the
audio's.
GRIB is not a modulation and is not pretended to be one. It is the format
weather models are published in and it travels by satellite link and by
e-mail; where a decoded byte stream begins with its magic number it is
named, and that is all.
AIRCRAFT
`bandsaunter adsb` parks the receiver on 1090 MHz and reads Mode S extended
squitter: address, callsign, altitude, position, speed. A command of its
own because a megabit a second will not go through a channel twelve and a
half kilohertz wide. Every frame carries a 24-bit checksum so there is no
threshold anywhere in it -- with one trap, which is that a frame of all
zeros satisfies that checksum and silence is exactly that. Positions round
trip exactly through compact position reporting, and a pair straddling a
longitude-zone boundary is refused rather than resolved against two grids.
METERS AND SENSORS
Itron ERT utility meters on 900 MHz and AcuRite weather sensors on 433 MHz
are named rather than reported as hex, and neither is believed without its
own checksum -- BCH(255,239) for the meter, a checksum and four parity bits
for the sensor. Both are implemented from published descriptions and
checked against frames built from the same descriptions, which proves the
framing and the arithmetic and is not the same as having held a meter.
HEX INTO WORDS
Everything else that decodes to bits now gets its fields named where the
shape is standard, its text read out where there is text, and its bytes laid
out in groups with the printable characters beside them.
The text search is where the care went, because printability is not
evidence. Forty framings of each packet, and seven-bit values printable
three in four, meant a bar set on printability called 64% of random payloads
text. Real text is nearly all one case where random letters are half and
half, two fifths vowels where random is a fifth, and mostly alphanumeric
where random draws punctuation one time in four. Together: under 0.5%,
measured in the suite.
CALLSIGNS
The licensed address is recorded in full -- the street, not merely the town
-- and goes into the KML with everything else. US amateur records are
public by law and carry it; holding it and not saying so is worse than
either showing it or not asking, and --no-lookup asks for none of it.
Also here: Morse is decoded again from the whole recording where the capture
was made in cw mode. The first pass works from the classifier's buffer,
which holds a few seconds -- enough to say "this is Morse", not enough to
catch a callsign whole between two word gaps, so a beacon repeating every
eight seconds through an eight-second window was never identified.
And classify._psk_order took the logarithm of zero on a silent block.
1318 tests, up from 1161.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_016PsWPTweCT6pwxKngvVxcg