Much of what a scanner finds is not speech. Doorbells, tyre-pressure sensors, weather stations, remote controls, paging and packet radio all carry something a receiver can read, and until now the answer was "OOK / ASK data burst" and a WAV file. Now the bits come out. The observation the whole thing is built on is that whatever the modulation, a data signal is the same shape once it has been sliced: a train of alternating runs whose lengths carry the information. On-off keying gives that directly -- the carrier is up or it is down -- and two-level FSK gives exactly the same thing from the discriminator, one tone or the other. So both reduce to a run-length train and everything after that is shared. What the runs mean is the line code, and it is worked out from the runs alone rather than configured, because each code makes a different prediction about which of the two histograms is the bimodal one: PWM (EV1527, PT2262, and nearly every 433 MHz remote), PPM, Manchester, and plain NRZ. Four-level FSK is recognised as such and read as symbols rather than sliced down the middle, which produces bits that mean nothing; where a frame sync word appears the system is named outright. Two protocols carry their own framing and checksums and so are read in full. POCSAG paging: all three rates tried because nothing in the signal says which it is, every codeword checked and single-bit errors corrected against the BCH code, and the address, function letter and message text reported. AX.25 as APRS uses it: the frame check has to come out right before a frame is reported at all, and the sender's callsign goes onto the map with everyone else's. The hard half is refusing what is not data. Noise sliced at a threshold produces runs and runs produce bits, so three things guard against it: the runs have to quantise to the line code's own grid; most of the bursts in a capture have to decode the same way, because one lucky window in eight is a coincidence and that is exactly what SSB voice produced; and, much the strongest, the packet has to repeat, because bits that come back identical six times did not come from noise. A reading with none of that behind it is reported as nothing at all rather than as a bit string with a low number beside it that somebody will read anyway. Across 27 recordings of speech, music, static, a bare carrier, Morse and PSK it returns nothing 27 times. A firm decode also outranks the content check, which is statistical: a burst of keying demodulated as FM audio is a buzz and the speech detector likes a buzz, but a frame whose own checksum came out right is not a statistic. Such a capture is kept and filed as data, not as voice. What comes out is written to a _data.txt beside the recording, shown on the live display and in the line-per-hit output, and takes the place of the transcript at the top of saunterbrowse -- where it is searchable, so "which page mentioned engine 4" is a question that can be asked. `bandsaunter analyze` decodes a file you already have. The simulator gained two honest transmitters to test against: a pulse-width remote that repeats a real payload, and a pager that sends real POCSAG batches with real BCH check bits. Random keying exercises the classifier but leaves a decoder nothing to get right. The POCSAG encoder lives next to the decoder rather than in the test helpers, so a bug shared by both cannot hide. Fixed along the way: - Rich reads a square bracket as markup, and a decoded page is arbitrary text off the air. "[/x]" in a message ended the live display with a MarkupError; so did typing "[/" at saunterbrowse's search prompt. Everything that did not come from this program is escaped now. - Otsu returned the first bin of a plateau. Two populations with nothing between them -- silence and full carrier, which is what on-off keying is -- make every threshold in the gap equally good, and taking the first put it hard against the lower population with the hysteresis band outside the data entirely, so nothing sliced at all. - Estimating the symbol clock by counting along a cumulative grid is a fixed point: a unit two per cent small produces two per cent more symbols and reproduces itself exactly. Rounding each run on its own converges instead, because every run votes independently. The grid is then the right way to extract the bits, where rounding runs one at a time drifts. - A clipped first repeat used to truncate every other repeat to its length. The consensus is taken over the commonest length now. 761 -> 869 tests.
600 lines
21 KiB
Python
Executable file
600 lines
21 KiB
Python
Executable file
#!/usr/bin/env python3
|
|
"""Generate the bandsaunter manual page from the settings table.
|
|
|
|
The settings are described in exactly one place -- bandsaunter/settings.py --
|
|
so the manual cannot drift from the program. Every setting appears here with
|
|
its command-line flag, its default, and the plain-language guidance that says
|
|
what it is and when someone would change it.
|
|
"""
|
|
import sys
|
|
from datetime import date
|
|
from pathlib import Path
|
|
|
|
sys.path.insert(0, str(Path(__file__).resolve().parent.parent))
|
|
|
|
import bandsaunter # noqa: E402
|
|
from bandsaunter import settings as st # noqa: E402
|
|
from bandsaunter.config import ScanConfig # noqa: E402
|
|
|
|
|
|
def esc(text: str) -> str:
|
|
"""Escape for troff: a leading dot or apostrophe is a request."""
|
|
out = text.replace("\\", "\\e")
|
|
return "\n".join(("\\&" + ln if ln[:1] in (".", "'") else ln)
|
|
for ln in out.split("\n"))
|
|
|
|
|
|
def settings_section() -> list[str]:
|
|
out = []
|
|
defaults = ScanConfig()
|
|
for group in st.GROUPS:
|
|
out.append(f'.SS {esc(group)}')
|
|
for s in st.in_group(group):
|
|
flags = " ".join(s.flags)
|
|
if s.off_flags:
|
|
flags += " / " + " ".join(s.off_flags)
|
|
shown = st.format_value(s, getattr(defaults, s.key))
|
|
unit = f" ({s.unit})" if s.unit and s.kind not in ("bool",) else ""
|
|
out.append('.TP')
|
|
out.append(f'.B {esc(flags)}')
|
|
out.append(f'{esc(s.label)} \\[em] {esc(s.help)}{esc(unit)}.')
|
|
out.append('.br')
|
|
out.append(f'Setting name \\fB{esc(s.key)}\\fR, '
|
|
f'default \\fB{esc(shown)}\\fR.')
|
|
accepts = s.describe_range()
|
|
if accepts:
|
|
out.append('.br')
|
|
out.append(f'Accepts: {esc(accepts)}.')
|
|
if s.guidance:
|
|
# Indented to the entry it belongs to, not back out to the
|
|
# left margin, so an entry reads as one block.
|
|
out.append('.RS')
|
|
out.append('.PP')
|
|
out.append(esc(s.guidance))
|
|
out.append('.RE')
|
|
out.append('.PP')
|
|
return out
|
|
|
|
|
|
HEAD = r'''.\" Generated by packaging/make-man.py -- do not edit by hand.
|
|
.TH BANDSAUNTER 1 "{date}" "bandsaunter {version}" "User Commands"
|
|
.SH NAME
|
|
bandsaunter \- scan, record and identify radio signals with an RTL-SDR
|
|
.SH SYNOPSIS
|
|
.B bandsaunter
|
|
.RI [ command ]
|
|
.RI [ options ]
|
|
.br
|
|
.B bandsaunter scan
|
|
.BI \-r " RANGE"
|
|
.RI [ options ]
|
|
.br
|
|
.B bandsaunter
|
|
.RI "(no arguments: interactive menus)"
|
|
.SH DESCRIPTION
|
|
.B bandsaunter
|
|
sweeps any set of frequency ranges with an RTL-SDR receiver, stops on
|
|
signals that rise above the background noise, records them, and works out
|
|
what kind of signal each one was. Morse is decoded to text and speech can be
|
|
transcribed.
|
|
.PP
|
|
Ranges are given by hand or chosen from a built-in US band plan. There is no
|
|
limit on how many may be scanned at once.
|
|
.PP
|
|
Captures that turn out to be noise, static or interference are discarded
|
|
rather than saved, so what ends up on disk is transmissions rather than hiss.
|
|
This is the behaviour of
|
|
.B \-\-require\-signal
|
|
and it is on by default.
|
|
.PP
|
|
Every setting can be given as a command-line option, set in the menus, or
|
|
saved to a settings file; the three are the same list, described under
|
|
.B SETTINGS
|
|
below.
|
|
.SH COMMANDS
|
|
.TP
|
|
.B scan
|
|
Run a scan. Without
|
|
.B \-r
|
|
or
|
|
.B \-b
|
|
the interactive menus open instead.
|
|
.TP
|
|
.B bands
|
|
Browse the built-in US band plan: amateur, marine, aviation, public service,
|
|
business, railroad, GMRS/FRS, CB, ISM, weather, and more.
|
|
.TP
|
|
.B config
|
|
Show or change the saved settings.
|
|
.B "config KEY=VALUE"
|
|
sets one and saves it,
|
|
.B "config \-\-show"
|
|
prints them all,
|
|
.B "config \-\-describe KEY"
|
|
explains one in full, and
|
|
.B "config \-\-edit"
|
|
opens the menus.
|
|
.TP
|
|
.B transcribe
|
|
Transcribe existing recordings, or list which speech recognisers are
|
|
installed with
|
|
.BR \-\-engines .
|
|
.TP
|
|
.B devices
|
|
List attached receivers.
|
|
.TP
|
|
.B profiles
|
|
List saved profiles.
|
|
.TP
|
|
.B analyze
|
|
Identify a signal in an already-recorded file, or decode Morse from it.
|
|
.SH OPTIONS
|
|
.TP
|
|
.BI \-r " RANGE\fR, \fP" \-\-range " RANGE"
|
|
A frequency range to sweep, such as
|
|
.IR 144M\-148M .
|
|
Repeatable, and a comma-separated list is accepted. See
|
|
.B ENTERING FREQUENCIES
|
|
below.
|
|
.TP
|
|
.BI \-b " KEY\fR, \fP" \-\-band " KEY"
|
|
A band-plan preset, such as
|
|
.IR gmrs " or " marine\-vhf .
|
|
Repeatable.
|
|
.B bandsaunter bands
|
|
lists them.
|
|
.TP
|
|
.BI \-\-mode " MODE"
|
|
Force one demodulator for every range: nfm, wfm, am, usb, lsb, cw or raw.
|
|
Without this each range is demodulated according to what the signal turns out
|
|
to be, which is normally what you want.
|
|
.TP
|
|
.BI \-p " NAME\fR, \fP" \-\-profile " NAME"
|
|
Start from a saved profile instead of the saved default settings.
|
|
.TP
|
|
.BI \-\-save\-profile " NAME"
|
|
Save the settings this run would have used, under that name, and exit.
|
|
.TP
|
|
.B \-\-save
|
|
Save the settings this run would have used as the new defaults, and exit.
|
|
.TP
|
|
.B \-\-no\-config
|
|
Ignore the saved settings file and start from the built-in defaults.
|
|
.TP
|
|
.B \-\-simulate
|
|
Use a synthetic receiver instead of real hardware. Everything else behaves
|
|
normally, so the program can be tried out with no dongle attached.
|
|
.TP
|
|
.B \-\-dry\-run
|
|
Print the sweep plan \[em] every tuner step and how long a pass will take \[em]
|
|
and exit without receiving anything.
|
|
.TP
|
|
.B \-\-keep\-carriers
|
|
Also record steady unmodulated carriers, which are otherwise discarded as
|
|
having no content. Useful for beacon hunting or for tracking down a source of
|
|
interference.
|
|
.SH SETTINGS
|
|
Each of these can be given as a command-line option, changed in the menus
|
|
under
|
|
.BR "bandsaunter config" ,
|
|
or written into the settings file. The command line wins for one run; the
|
|
settings file is what every run starts from.
|
|
'''
|
|
|
|
TAIL = r'''.SH ENTERING FREQUENCIES
|
|
Frequencies may be written with a unit or without:
|
|
.IR 146.52M ", " "146.52 MHz" ", " 146520k ", " 146520000 .
|
|
A bare number under 10000 is read as megahertz, since that is how people
|
|
write frequencies.
|
|
.PP
|
|
A range is a pair:
|
|
.IR 144M\-148M ", " 144\-148M " (the unit carries over), " "144M to 148M" ", "
|
|
.IR 144M..148M .
|
|
A single frequency on its own is treated as a narrow range around it.
|
|
.PP
|
|
A step and a demodulator may be attached:
|
|
.I 144M\-148M/25k@nfm
|
|
sweeps in 25 kHz steps and demodulates narrowband FM.
|
|
.PP
|
|
Several may be given at once, separated by commas, and
|
|
.B \-r
|
|
may be repeated. There is no limit on how many ranges a scan may cover.
|
|
.SH BAND PLAN
|
|
.B bandsaunter bands
|
|
lists over a hundred presets from the US band plan, each carrying the right
|
|
step size and demodulator for that service, so
|
|
.B "\-b gmrs"
|
|
is enough to scan GMRS properly.
|
|
.PP
|
|
Presets that stand for several others expand automatically:
|
|
.I all\-cw
|
|
sweeps every Morse segment of every amateur band, and
|
|
.IR 2m\-complete ", " 70cm\-complete
|
|
and their like sweep a whole amateur band end to end rather than one segment
|
|
of it.
|
|
.PP
|
|
The same plan names what is heard. Beside every frequency on the display,
|
|
and in the line\-per\-hit output, is the band it falls in: a signal at
|
|
421 MHz is labelled
|
|
.IR "70 cm Amateur" ,
|
|
one at 462.5625 MHz is
|
|
.IR "GMRS / FRS" ,
|
|
and 162.55 MHz is
|
|
.IR "NOAA Weather Radio" .
|
|
Where several allocations overlap, the narrowest wins, because it says the
|
|
most \[em] 146.52 MHz is named as the 2 m simplex calling channel rather than
|
|
as the whole 2 m band. The name is written into each recording's sidecar as
|
|
well, so it stays with the capture.
|
|
.SH LOCK-OUTS
|
|
Every receiving setup has a few frequencies not worth stopping on: a pager
|
|
transmitter down the road, a nearby data link, or a spurious signal the
|
|
receiver manufactures itself. Locking one out makes the scan skip it.
|
|
.PP
|
|
Pressing
|
|
.B l
|
|
during a scan locks out whatever is being received. Unless
|
|
.B \-\-no\-save\-lockouts
|
|
is given, it is written back to the settings file the run started from, so it
|
|
stays locked out on later runs. Only the lock-out list is written back \[em]
|
|
options given on the command line for a single run stay one-off.
|
|
.PP
|
|
Lock-outs can also be given directly, several at a time, as single
|
|
frequencies or as spans:
|
|
.PP
|
|
.RS
|
|
.EX
|
|
bandsaunter scan \-r 144M\-148M \-\-lockout "162.55M, 450M\-455M"
|
|
.EE
|
|
.RE
|
|
.PP
|
|
A single frequency is widened by
|
|
.BR \-\-lockout\-width ;
|
|
a span is used exactly as written.
|
|
.PP
|
|
Two runs never write anything back.
|
|
.B \-\-no\-config
|
|
has no settings file to write to, since the point of it is to leave the saved
|
|
settings alone; and
|
|
.B \-\-simulate
|
|
is looking at an invented band, whose frequencies would be nonsense in a real
|
|
settings file. Both still lock out for the run in hand, and say so.
|
|
.SH KEYS DURING A SCAN
|
|
.TP
|
|
.B q
|
|
Stop.
|
|
.TP
|
|
.B p
|
|
Pause and resume.
|
|
.TP
|
|
.B s
|
|
Abandon this recording and resume sweeping.
|
|
.TP
|
|
.B l
|
|
Lock out this frequency, now and in future runs.
|
|
.TP
|
|
.B "+ \fRand\fB \-"
|
|
Raise or lower the squelch threshold by 1 dB.
|
|
.SH OUTPUT
|
|
Recordings are named
|
|
.IR frequency \-\- date _ time \- modulation .wav ,
|
|
with the frequency padded to four digits so that an ordinary directory
|
|
listing sorts by frequency. Beside them are the run log, as JSON lines and as
|
|
CSV, and optionally a transcript per recording and the raw samples.
|
|
.PP
|
|
With
|
|
.B \-\-combine
|
|
every transmission on one frequency is appended to a single growing file for
|
|
that frequency, with a spoken date and time before each one, so a scan can be
|
|
played back as a recording of that channel rather than clicked through as
|
|
hundreds of fragments.
|
|
.SH TRUNKED SYSTEMS
|
|
Police, fire and large business radio in the US mostly runs on
|
|
.IR trunked
|
|
systems. Instead of giving each department its own frequency, the system owns
|
|
a pool of channels and hands one out for each conversation as it happens. To
|
|
make that work, one frequency in the pool is given over entirely to a data
|
|
stream that runs day and night, telling every radio in the fleet where to go
|
|
next. That frequency is the
|
|
.IR "control channel" .
|
|
.PP
|
|
A control channel is the worst thing a scanner can find. It is loud, it is
|
|
perfectly steady, it never stops, and there is nothing on it to listen to \[em]
|
|
just a harsh buzz. A scanner without special handling parks on it for the
|
|
whole record limit, saves the file, and then finds it again on the next sweep,
|
|
for as long as it is left running.
|
|
.PP
|
|
bandsaunter recognises one from the shape of the signal, names the system on
|
|
screen, deletes what it captured and moves on, usually within a second or
|
|
two. What it looks for is a constant\-envelope data stream that never pauses,
|
|
at a symbol rate belonging to a known trunking standard:
|
|
.RS
|
|
.PP
|
|
3600 baud two\-level \[em] Motorola SMARTNET / SmartZone (Type I and II).
|
|
.br
|
|
9600 baud two\-level \[em] EDACS and ProVoice.
|
|
.br
|
|
1200 baud two\-level \[em] MPT\-1327.
|
|
.br
|
|
4800 baud four\-level \[em] P25 or DMR Tier III.
|
|
.br
|
|
2400 baud four\-level \[em] NXDN and NEXEDGE.
|
|
.RE
|
|
.PP
|
|
The first two are recognised at once: nothing else transmits at those rates
|
|
without pausing. The others share their shape with an ordinary digital voice
|
|
call on the same system, so they are only called a control channel once the
|
|
carrier has run unbroken for
|
|
.B \-\-control\-seconds
|
|
(20 s by default) \[em] long enough that a real conversation would have taken
|
|
a breath. Raise that figure if digital voice calls are being skipped by
|
|
mistake.
|
|
.PP
|
|
Being inside a band where trunking is common raises confidence but is never
|
|
required: trunking is licensed on business pairs all over the spectrum.
|
|
.PP
|
|
Use
|
|
.B \-\-keep\-control
|
|
to record control channels anyway, which is what you want if you are feeding
|
|
them to a decoder. Use
|
|
.B \-\-lockout\-control
|
|
to have each one written into the lock\-out list as it is found, so the
|
|
scanner stops looking at it at all; with
|
|
.B \-\-save\-lockouts
|
|
on, that list survives a restart.
|
|
.SH TRANSCRIPTS
|
|
Anything the content check identifies as voice is passed to a speech
|
|
recogniser, and the words are written to a
|
|
.I _transcription.txt
|
|
beside the recording. Only voice: running a recogniser over Morse or a data
|
|
burst costs seconds and produces nothing.
|
|
.PP
|
|
One transcript per transmission, and none is ever overwritten \[em] the
|
|
timestamp is part of the name, so two overs on one frequency cannot land on
|
|
the same file.
|
|
.PP
|
|
With
|
|
.B \-\-combine
|
|
there is one recording per frequency, so there is one transcript per
|
|
frequency, and each over is appended to it with the time it was heard. An
|
|
unattended receiver keeps adding to that file night after night rather than
|
|
starting it over.
|
|
.PP
|
|
A capture with nothing recognisable in it produces no file at all, rather
|
|
than a directory of placeholders.
|
|
.PP
|
|
.BR saunterbrowse (1)
|
|
reads these back, and lists any callsigns it finds in them with the licence
|
|
they belong to.
|
|
.SH DECODING DATA
|
|
A great deal of what a scanner finds is not speech. Doorbells, tyre\-pressure
|
|
sensors, weather stations, remote controls, paging and packet radio all carry
|
|
words or numbers that a receiver can read, and
|
|
.B bandsaunter
|
|
reads them.
|
|
.PP
|
|
Whatever the modulation, a data signal comes down to the same shape once it
|
|
has been sliced: a train of alternating runs whose lengths carry the
|
|
information. On\-off keying gives that directly \[em] the carrier is up or it is
|
|
down \[em] and two\-level FSK gives the same thing from the discriminator, one
|
|
tone or the other. So both are reduced to runs and everything after that is
|
|
shared.
|
|
.PP
|
|
What the runs mean is the line code, and it is worked out from the runs alone
|
|
rather than being configured:
|
|
.TP
|
|
.B PWM
|
|
The pulse carries the bit and the gap or the period holds still. Nearly every
|
|
cheap 433 MHz remote, and everything built on an EV1527 or PT2262.
|
|
.TP
|
|
.B PPM
|
|
The pulse holds still and the gap carries the bit. The other half of the same
|
|
market.
|
|
.TP
|
|
.B Manchester
|
|
Every bit is a transition in the middle of its own period, so runs come in
|
|
only two lengths.
|
|
.TP
|
|
.B NRZ
|
|
The level is held for as many symbol periods as there are bits. What a framed
|
|
protocol sits on top of.
|
|
.PP
|
|
Four\-level FSK \[em] C4FM, as P25, DMR and NXDN use it \[em] is recognised as
|
|
such and read as symbols rather than being sliced down the middle, which would
|
|
give bits that mean nothing. Where a frame sync word appears the system is
|
|
named outright.
|
|
.SH PROTOCOLS THAT CAN BE READ IN FULL
|
|
Two carry their own framing and checksums, so a frame either passes or it does
|
|
not, and one that passes is not a guess.
|
|
.TP
|
|
.B POCSAG
|
|
Paging, at 512, 1200 or 2400 baud. The rate is not announced anywhere in the
|
|
signal, so all three are tried and the one whose sync word appears is the
|
|
right one. Each codeword is checked, and a single bit error is corrected,
|
|
against the BCH code the standard puts there for the purpose. The address, the
|
|
function letter and the message text are all reported.
|
|
.TP
|
|
.B "AX.25 / APRS"
|
|
Amateur packet on 1200 baud AFSK. The frame check has to come out right before
|
|
a frame is reported at all. The sender's callsign, the digipeater path and the
|
|
payload are shown \[em] and the callsign goes onto the map with the rest.
|
|
.SH BELIEVING A DECODE
|
|
A decoder that always returns something is worse than useless: noise sliced at
|
|
a threshold produces runs, and runs produce bits. Three things guard against
|
|
that.
|
|
.PP
|
|
The runs have to quantise to the line code's own grid, and a decode whose runs
|
|
are scattered is thrown away. Most of the bursts in a capture have to decode
|
|
the same way, because a data signal is data all the way through and one lucky
|
|
window among eight is a coincidence. And, much the strongest, the packet has
|
|
to repeat \[em] these transmitters send the same thing three to ten times over,
|
|
and bits that come back identical every time did not come from noise.
|
|
.PP
|
|
A bare reading with none of that behind it, where the runs merely happened to
|
|
land on a grid, is reported as nothing at all rather than as a bit string with
|
|
a low number beside it that somebody will read anyway.
|
|
.PP
|
|
A decode that does have repeats or a checksum behind it outranks the content
|
|
check: a burst of keying demodulated as FM audio is a buzz, and the speech
|
|
detector likes a buzz, but a frame whose own checksum came out right is not a
|
|
statistic.
|
|
.SH THE MAP
|
|
A callsign heard in a transcript is looked up in the FCC's published licence
|
|
data, which gives the licensee, the town, and coordinates. Those go into a
|
|
KML file in the output directory \[em]
|
|
.I callsigns.kml
|
|
unless
|
|
.B \-\-kml
|
|
names another \[em] which opens in Google Earth,
|
|
.BR qgis (1),
|
|
.BR marble (1)
|
|
and OsmAnd.
|
|
.PP
|
|
One placemark per station, not one per transmission: the same repeater heard
|
|
twenty times in an evening is one operator, and twenty pins on the same
|
|
rooftop would say less than one. Each pin carries the callsign, the licensee,
|
|
where they are licensed, and every frequency and time you heard them.
|
|
.PP
|
|
The file is added to, by this scan and by later ones, so it builds up into a
|
|
picture of what the aerial can actually reach rather than a snapshot of one
|
|
evening.
|
|
.PP
|
|
Only the callsign is sent, and each is asked about once and then remembered
|
|
under
|
|
.IR ~/.cache/bandsaunter/ ,
|
|
so a net recorded night after night is looked up once.
|
|
.B \-\-no\-callsign\-lookup
|
|
stops it contacting anything at all; callsigns are still found, and the
|
|
prefix still says which country and which US district they belong to. Setting
|
|
.B \-\-kml
|
|
to nothing turns the map off.
|
|
.PP
|
|
US amateur licence records are public by law and include the licensee's
|
|
address. That is what is written.
|
|
.SH HF RECEPTION
|
|
These receivers cannot normally tune below about 24 MHz. Below that they can
|
|
sample the antenna directly instead, which opens up shortwave: broadcast,
|
|
amateur HF, marine, aviation. It is switched on automatically when a scan
|
|
goes below 24 MHz. A direct connection to a suitable antenna is needed; the
|
|
whip supplied with most dongles will hear very little.
|
|
.SH SINGLE SIDEBAND
|
|
Single sideband is the one mode where tuning must be exact: its demodulator
|
|
is a filter that opens at the suppressed carrier, so tuning to the middle of
|
|
the voice discards its lower half and shifts the rest. bandsaunter measures
|
|
where the carrier is rather than assuming, and identifies upper from lower
|
|
sideband by which way the signal's energy leans, so
|
|
.B \-\-mode usb
|
|
is not needed. The frequency in the filename is the carrier \[em] the
|
|
frequency to dial into a radio.
|
|
.SH FILES
|
|
.TP
|
|
.I ~/.config/bandsaunter/config.yaml
|
|
The settings every run starts from.
|
|
.TP
|
|
.I ~/.config/bandsaunter/*.yaml
|
|
Named profiles.
|
|
.TP
|
|
.I ~/bandsaunter/
|
|
Where recordings, transcripts and logs are written, unless
|
|
.B \-\-output
|
|
says otherwise. Chosen on first run.
|
|
.TP
|
|
.IR ... _data.txt
|
|
What a data capture said, where anything was decoded.
|
|
.TP
|
|
.I ~/bandsaunter/callsigns.kml
|
|
The map of stations heard, added to as scans run.
|
|
.TP
|
|
.I ~/.cache/bandsaunter/callsigns.json
|
|
Licence lookups already made, so they are not repeated.
|
|
.TP
|
|
.I /etc/modprobe.d/blacklist-rtlsdr.conf
|
|
Written by the package to keep the DVB-T television driver from claiming the
|
|
receiver.
|
|
.SH ENVIRONMENT
|
|
.TP
|
|
.B BANDSAUNTER_CONFIG_DIR
|
|
Where settings and profiles live, instead of
|
|
.IR ~/.config/bandsaunter .
|
|
.TP
|
|
.B BANDSAUNTER_LIBRTLSDR
|
|
Path to a particular librtlsdr shared library, when the system one is not the
|
|
one wanted.
|
|
.TP
|
|
.B BANDSAUNTER_DRIVER_MESSAGES
|
|
Set to 1 to let the receiver driver print its own chatter, which is
|
|
suppressed by default because it draws over the live display.
|
|
.TP
|
|
.B BANDSAUNTER_VENDOR_DIR
|
|
Where a packaged speech recogniser is installed. Default
|
|
.IR /usr/lib/bandsaunter/vendor .
|
|
.TP
|
|
.B BANDSAUNTER_MODEL_DIR
|
|
Where packaged recognition models are installed. Default
|
|
.IR /usr/share/bandsaunter/models .
|
|
.TP
|
|
.B BANDSAUNTER_ENGINE_OUTPUT
|
|
Set to 1 to let the speech recogniser print its own progress.
|
|
.SH EXAMPLES
|
|
.TP
|
|
.B bandsaunter
|
|
Interactive menus: pick bands, change settings, start scanning.
|
|
.TP
|
|
.B bandsaunter scan \-b 2m \-b 70cm \-\-record 0 \-\-hang 6
|
|
Scan two amateur bands, following each conversation to its end and allowing
|
|
six seconds of silence between overs.
|
|
.TP
|
|
.B bandsaunter scan \-b marine\-vhf \-\-combine \-\-transcribe
|
|
Scan marine VHF, keeping one growing file per channel with spoken timestamps,
|
|
and write out what was said.
|
|
.TP
|
|
.B bandsaunter scan \-r 14.0M\-14.35M
|
|
Scan the 20 metre amateur band. Direct sampling switches on by itself.
|
|
.TP
|
|
.B bandsaunter scan \-b all\-cw \-\-decode\-morse
|
|
Sweep every Morse segment of every amateur band and decode what is heard.
|
|
.TP
|
|
.B bandsaunter scan \-b gmrs \-\-plain \-\-duration 3600
|
|
Scan GMRS for an hour with line-per-hit output, suitable for a log file or a
|
|
remote session.
|
|
.TP
|
|
.B bandsaunter config threshold_db=12
|
|
Raise the squelch threshold and save it as the new default.
|
|
.SH EXIT STATUS
|
|
0 on success, 1 for a bad option or an unusable configuration, 2 when the
|
|
receiver could not be opened.
|
|
.SH SEE ALSO
|
|
.BR saunterbrowse (1)
|
|
\[em] browse and play back what a scan collected: the recordings list, their
|
|
transcripts and their identifications, on one screen.
|
|
.PP
|
|
.BR rtl_test (1),
|
|
.BR rtl_sdr (1),
|
|
.BR espeak-ng (1)
|
|
.PP
|
|
The README shipped with the package covers the same ground at greater length,
|
|
including why the detection thresholds are what they are.
|
|
.SH BUGS
|
|
The DVB-T television driver claims these dongles on sight. If the receiver
|
|
cannot be opened, that is almost always why: the package blacklists the
|
|
driver on install, but the module must be unloaded once with
|
|
.B "rmmod dvb_usb_rtl28xxu"
|
|
or the dongle replugged.
|
|
'''
|
|
|
|
|
|
def main() -> int:
|
|
out = [HEAD.format(date=date.today().isoformat(),
|
|
version=bandsaunter.__version__)]
|
|
out += settings_section()
|
|
out.append(TAIL)
|
|
text = "\n".join(out)
|
|
text = text.replace("\n\n", "\n") # troff dislikes blank lines
|
|
target = Path(sys.argv[1] if len(sys.argv) > 1
|
|
else Path(__file__).parent / "bandsaunter.1")
|
|
target.write_text(text)
|
|
print(target)
|
|
return 0
|
|
|
|
|
|
if __name__ == "__main__":
|
|
raise SystemExit(main())
|