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+121
@@ -4,6 +4,127 @@ All notable changes to seismo-relay are documented here.
|
||||
|
||||
---
|
||||
|
||||
## v0.31.0 — 2026-09-18
|
||||
|
||||
**Report parity, and a second way to rescue a runaway unit.** Two threads.
|
||||
|
||||
The first closes out Blastware Event/FFT-Report parity: the FFT, the USBM
|
||||
RI8507 compliance chart and the sensor self-check now render on the event
|
||||
report, reverse-engineered against BE12844 (MiniMate Plus) and UM (Thor)
|
||||
events. The sensor check is decoded for **both** series and standardized into
|
||||
the `.h5` (schema **v2**, a new `/sensor_check` group), so SFM serves it
|
||||
device-agnostically rather than decoding at report time. The Inspector — an
|
||||
annotated hex reader for series-3 binaries — is what made the trailing-block
|
||||
structure findable, and it earned its keep by *ruling out* a stored FFT block
|
||||
and proving Blastware computes it from the samples.
|
||||
|
||||
The second came out of a field emergency. BE12599's connector fault drove its
|
||||
Tran channel to its trigger level, so the unit recorded back-to-back and dialed
|
||||
the office ACH server every ~75 s, unreachable the whole time.
|
||||
`bridges/ach_server.py` gained `--stop-monitoring` / `--disable-ach` /
|
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`--rescue`, which **invert** the recovery: instead of racing a Stop into the
|
||||
gaps between dial-outs, point the modem's Destination at our own ACH server and
|
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answer the call. Proven in production the same night — the stop landed on the
|
||||
first call-in and held. See `docs/runbooks/wedged_unit_recovery.md`.
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⚠ **This release owes prod a backfill** — see Migration below.
|
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|
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### Added
|
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- **Rescue-on-connect for `bridges/ach_server.py`** — `--stop-monitoring`
|
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(SUB 0x97), `--disable-ach` (SUB 0x2C read → 0x7E write → 0x7F confirm) and
|
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`--rescue` (both). They fire immediately after the startup handshake and
|
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**before** the event walk, so a unit that is recording back-to-back on a
|
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stuck-triggered geophone is quieted as early in the session as possible.
|
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Each action is independently guarded — a failure does not abort the download
|
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— and the outcome is written to `rescue.json` in the session directory.
|
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|
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This inverts the `docs/runbooks/wedged_unit_recovery.md` approach. That
|
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runbook reaches the unit *inbound* and clears the modem's Destination Address
|
||||
to stop it dialing. When the device is instead wedged mid-modem-init — ALEOS
|
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logs `tcpmode trying to send to invalid socket` and re-runs `Initialize Auto
|
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answer` every ~75 s, orphaning any held inbound session — inbound cannot win.
|
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Pointing the modem's Destination at an `ach_server` and letting the unit call
|
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*us* gives a device-initiated session the modem bridges properly.
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|
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⚠ Prefer `--stop-monitoring` alone on first contact. `--disable-ach` stops
|
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the unit calling, which is the only channel to a unit in this state; stopping
|
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the recording ends the call-home loop on its own when ACH is
|
||||
"after event recorded".
|
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|
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- **Blastware-compatible channel FFT (`waveform_fft`).** Reproduces Blastware's
|
||||
FFT Report: DC-removed, no window, zero-padded to 4096 (0.25 Hz bins at
|
||||
1024 sps), single-sided `2/N` amplitude. Matches Blastware's dominant
|
||||
frequency to the exact bin and the amplitude to report precision across all
|
||||
28 channels of the 7-event BE12844 oracle set. `channel_spectrum()` /
|
||||
`dominant_frequency()`; tests in `tests/test_waveform_fft.py`.
|
||||
|
||||
- **USBM RI8507 / OSMRE compliance chart on the event-report PDF
|
||||
(`sfm/compliance.py`).** The velocity-vs-frequency blasting-compliance
|
||||
scatter Blastware draws in the upper-right of its Event Report: each channel's
|
||||
significant cycles as `(frequency, peak velocity)` points (zero-crossing
|
||||
method, so each channel's cloud tops out at its PPV) plotted against the
|
||||
RI8507 Drywall (0.75 in/s) and plaster (0.50 in/s) limit curves, drawn
|
||||
continuous (constant-displacement bounds meeting the plateaus — no vertical
|
||||
steps). Sized and positioned to match a Blastware report, measured off the
|
||||
reference PDF. A technical breakdown of the curve is in
|
||||
`docs/ri8507_compliance_curve.md`.
|
||||
|
||||
- **Sensor self-check waveforms decoded and drawn — both series.** The little
|
||||
"Sensor Check" traces (geophone ring-downs — the transducer's damped impulse
|
||||
response — plus a MicL pulse train, the mic's known-signal gain check) are the
|
||||
unit's proof its sensors were healthy when it recorded the event.
|
||||
- **Series-3** (`minimateplus.sensor_check`): four records (`0x3c`–`0x3f`) in
|
||||
the binary's trailing block, same delta-block codec as the main waveform.
|
||||
Verified against all 7 BE12844 reports (mic zero-crossing = 20.1 Hz exact;
|
||||
geophone ring-downs ~7.5 Hz, overswing ~3.5).
|
||||
- **Series-4** (`micromate.sensor_check`): the same self-test in the Thor IDFW
|
||||
fixed header — four `01 0e 3c/3d/3e/3f` records (same channel ids) storing
|
||||
raw int16 traces; three-channel (mic-disabled) units carry only the three
|
||||
geophones. Validated by shape + cross-event consistency.
|
||||
- **Standardized into the `.h5`** (`/sensor_check`, schema v2): each series'
|
||||
decoder attaches the traces to the event at decode, the writer persists
|
||||
them, and `gather_report_data` reads them back — so SFM renders the strip
|
||||
(flush against the waveform panel) plus the **Sensor Check → Frequency /
|
||||
Overswing Ratio** sub-rows without knowing the source instrument.
|
||||
- Tests: `tests/test_sensor_check.py`, `tests/test_sensor_check_idf.py`,
|
||||
`tests/test_event_hdf5_sensor_check.py`.
|
||||
|
||||
- **Inspector tab in `seismo_lab.py` — annotated hex reader for series-3
|
||||
binaries (`minimateplus/binary_annotate.py`).** Tiles a raw Blastware file
|
||||
into labeled spans (header / STRT / body record-chain / trailing metadata +
|
||||
calibration + sensor-check records / footer) so a binary can be combed by eye.
|
||||
|
||||
### Fixed
|
||||
- **Event-report waveform panel — stacked-lane y-tick collision.** The lanes
|
||||
touch, so each lane's bottom `-1.0` overprinted the next lane's top `1.0` at
|
||||
the shared boundary. Prune the extreme ticks so each lane shows clean interior
|
||||
ticks only.
|
||||
- **Event-report header — serial+firmware line ran off the page.** The long
|
||||
`BE##### V ##.##-#.## MiniMate Plus` string overflowed the right margin;
|
||||
tighter right-column indent + BW's slightly smaller header size so it fits.
|
||||
|
||||
---
|
||||
|
||||
### Migration
|
||||
|
||||
⚠ **The sensor-check needs a backfill.** Existing `.h5` files are schema v1
|
||||
and carry no `/sensor_check` group, so their reports show no sensor-check strip
|
||||
until regenerated. `TOOL_VERSION` is bumped to **0.31.0**, so the standard
|
||||
backfill regenerates every event and picks up the traces with **no `--force`**:
|
||||
`scripts/backfill_thor_events.py` for series-4 (it already owed a v0.30.0 Thor
|
||||
backfill — this rides along) and the series-3 sidecar/shape backfill for
|
||||
MiniMate events. Purely additive — no decoded value changes, and v1 `.h5`
|
||||
files read fine until then (empty strip). DB backup first, as always.
|
||||
|
||||
⚠ Budget **~2 h on the NAS** — ~1.5 files/sec there versus ~85/sec on the dev
|
||||
box (gzip-4 in `sfm/event_hdf5.py` against a Synology CPU).
|
||||
|
||||
Everything else in this release owes nothing: the FFT, the USBM compliance
|
||||
chart and the `ach_server` rescue flags are additive and read data already on
|
||||
disk — no schema change, no DB migration.
|
||||
|
||||
---
|
||||
|
||||
## v0.30.0 — 2026-09-12
|
||||
|
||||
**The series-4 correctness release** — the Thor / Micromate counterpart to
|
||||
|
||||
@@ -2,7 +2,7 @@
|
||||
|
||||
Ground-up Python replacement for **Blastware**, Instantel's Windows-only software for
|
||||
managing MiniMate Plus seismographs. Connects over direct RS-232 or cellular modem
|
||||
(Sierra Wireless RV50 / RV55). Current version: **v0.30.0**.
|
||||
(Sierra Wireless RV50 / RV55). Current version: **v0.31.0**.
|
||||
|
||||
Stack-level context — which repo owns what, and how the three project versions
|
||||
pair — lives in `../terra-view/docs/tmi-stack.md`, which is also loaded as
|
||||
@@ -89,6 +89,47 @@ When new information about the protocol is discovered, please update the instant
|
||||
|
||||
---
|
||||
|
||||
## Changelog & release convention
|
||||
|
||||
**Feature branches do NOT touch `CHANGELOG.md`. Write the entry on `dev`, as
|
||||
part of finishing the merge, under `## Unreleased`. Cut the version on `dev` in a
|
||||
dedicated release commit when you are ready to ship to `main`.**
|
||||
|
||||
- **The changelog is written on `dev`, never on a feature branch.** With
|
||||
several branches in flight they all edit the same few lines at the top of
|
||||
the file and conflict every time. Writing it once, after the merge, also
|
||||
lets it describe what actually *landed* — including anything that changed
|
||||
during conflict resolution.
|
||||
- ⚠ **The merge is not finished until `## Unreleased` is updated.** Same sitting,
|
||||
not "later" — that is the one failure mode of writing it after the fact.
|
||||
Reconstruct from the branch's own commit messages:
|
||||
`git log --oneline dev..<branch>` before you merge, or
|
||||
`git log --oneline <merge-base>..<branch>` after.
|
||||
- **No preamble under `## Unreleased`** — just the `### Added` / `### Changed` /
|
||||
`### Fixed` lists. The themed opening paragraph gets written at release
|
||||
time, when the whole release is visible and can be named honestly. A theme
|
||||
written when the first item landed is stale by the third.
|
||||
- ⚠ **State the operational consequence** on any entry touching the codec, the
|
||||
waveform store, or the DB — **including when it is "none."** "requires
|
||||
`backfill_sidecars.py` + `backfill_event_shape.py`, ~2 h on the NAS",
|
||||
"`TOOL_VERSION` bumped", "no schema change, no migration". Silence is
|
||||
ambiguous; "none" is information. This repo's changelog is how future-you
|
||||
learns whether a deploy costs two hours.
|
||||
- **Releases are cut on judgement, not on a schedule or a merge.** `Unreleased`
|
||||
is the staging area for whatever is going into the next release; when enough
|
||||
has accumulated to be worth shipping, it gets a number and a date. Nothing
|
||||
about a merge to `dev` triggers a release.
|
||||
- **Cutting a release** is its own `chore(release): vX.Y.Z — <theme>` commit on
|
||||
`dev`, renaming `## Unreleased` → `## vX.Y.Z — YYYY-MM-DD` and touching:
|
||||
`CHANGELOG.md`, `pyproject.toml`, the version line in `CLAUDE.md` and
|
||||
`README.md`, and `minimateplus/event_file_io.py` (`TOOL_VERSION`) **when the
|
||||
codec changed** — that constant gates `.h5` regeneration.
|
||||
- **`main` carries only released versions.** No `## Unreleased` section there;
|
||||
it lands via the `dev` → `main` PR. `main` lagging `dev` by a version is
|
||||
normal.
|
||||
|
||||
---
|
||||
|
||||
## Architecture: three-tier conceptual model
|
||||
|
||||
seismo-relay is a **suite of cooperating components**, not a single app.
|
||||
|
||||
@@ -1,4 +1,4 @@
|
||||
# seismo-relay `v0.30.0`
|
||||
# seismo-relay `v0.31.0`
|
||||
|
||||
A ground-up replacement for **Blastware** — Instantel's aging Windows-only
|
||||
software for managing seismographs. Supports both the **MiniMate Plus
|
||||
|
||||
@@ -177,6 +177,8 @@ class AchSession:
|
||||
store: "WaveformStore",
|
||||
clear_after_download: bool = False,
|
||||
restart_monitoring: bool = False,
|
||||
rescue_stop_monitoring: bool = False,
|
||||
rescue_disable_ach: bool = False,
|
||||
force_redownload: bool = False,
|
||||
) -> None:
|
||||
self.sock = sock
|
||||
@@ -190,6 +192,9 @@ class AchSession:
|
||||
self.store = store
|
||||
self.clear_after_download = clear_after_download
|
||||
self.restart_monitoring = restart_monitoring
|
||||
# Rescue actions for a runaway unit — fired before the event walk.
|
||||
self.rescue_stop_monitoring = rescue_stop_monitoring
|
||||
self.rescue_disable_ach = rescue_disable_ach
|
||||
# `force_redownload` tells this session to ignore ach_state and
|
||||
# re-download every event currently on the device, regardless of any
|
||||
# (key, timestamp) match. Useful as a manual override when state has
|
||||
@@ -290,6 +295,41 @@ class AchSession:
|
||||
root_logger.addHandler(fh)
|
||||
|
||||
try:
|
||||
# ── Step 1.5: rescue actions ──────────────────────────────────────
|
||||
# Fired BEFORE the event walk so a runaway unit is quieted as early
|
||||
# in the session as possible. A unit whose geophone sits above the
|
||||
# trigger threshold records back-to-back and, with ACH set to "after
|
||||
# event recorded", re-dials every time — saturating its own firmware
|
||||
# so it never services inbound requests. See
|
||||
# docs/runbooks/wedged_unit_recovery.md.
|
||||
#
|
||||
# Each action is independently guarded: a failure here must not
|
||||
# abort the download that follows.
|
||||
if self.rescue_stop_monitoring or self.rescue_disable_ach:
|
||||
rescue: dict = {"peer": self.peer, "ts": ts}
|
||||
|
||||
if self.rescue_stop_monitoring:
|
||||
log.info("Step 1.5: RESCUE — stop monitoring (SUB 0x97)")
|
||||
try:
|
||||
client.stop_monitoring()
|
||||
rescue["stop_monitoring"] = "ok"
|
||||
log.info(" stop monitoring OK — device should stop recording")
|
||||
except Exception as exc:
|
||||
rescue["stop_monitoring"] = f"failed: {exc}"
|
||||
log.error(" stop monitoring FAILED: %s", exc)
|
||||
|
||||
if self.rescue_disable_ach:
|
||||
log.info("Step 1.5: RESCUE — disable auto call home (SUB 0x2C/0x7E/0x7F)")
|
||||
try:
|
||||
client.set_call_home_config(auto_call_home_enabled=False)
|
||||
rescue["disable_ach"] = "ok"
|
||||
log.info(" disable ACH OK — unit should stop calling home")
|
||||
except Exception as exc:
|
||||
rescue["disable_ach"] = f"failed: {exc}"
|
||||
log.error(" disable ACH FAILED: %s", exc)
|
||||
|
||||
_save_json(session_dir / "rescue.json", rescue)
|
||||
|
||||
# ── Step 2: device info ───────────────────────────────────────────
|
||||
device_info = None
|
||||
if not self.events_only:
|
||||
@@ -747,6 +787,13 @@ def serve(args: argparse.Namespace) -> None:
|
||||
print(f" Max events per session: {max_ev if max_ev else 'unlimited'}")
|
||||
print(f" Clear device after download: {'YES' if args.clear_after_download else 'no'}")
|
||||
print(f" Restart monitoring after download: {'YES' if args.restart_monitoring else 'no'}")
|
||||
_stop_mon = args.stop_monitoring or args.rescue
|
||||
_dis_ach = args.disable_ach or args.rescue
|
||||
print(f" RESCUE stop monitoring on connect: {'YES' if _stop_mon else 'no'}")
|
||||
print(f" RESCUE disable auto call home: {'YES' if _dis_ach else 'no'}")
|
||||
if _stop_mon and args.restart_monitoring:
|
||||
print(" !! --restart-monitoring will re-start the unit after download,")
|
||||
print(" undoing --stop-monitoring. Drop one of them.")
|
||||
print(f" Force re-download all (ignore state): {'YES' if args.force_redownload_all else 'no'}")
|
||||
print(f"{'='*60}")
|
||||
print(f"\n Point your test unit's ACEmanager call-home settings to:")
|
||||
@@ -788,6 +835,8 @@ def serve(args: argparse.Namespace) -> None:
|
||||
store=store,
|
||||
clear_after_download=args.clear_after_download,
|
||||
restart_monitoring=args.restart_monitoring,
|
||||
rescue_stop_monitoring=args.stop_monitoring or args.rescue,
|
||||
rescue_disable_ach=args.disable_ach or args.rescue,
|
||||
force_redownload=args.force_redownload_all,
|
||||
)
|
||||
t = threading.Thread(target=session.run, daemon=True, name=f"ach-{peer}")
|
||||
@@ -862,6 +911,32 @@ def parse_args() -> argparse.Namespace:
|
||||
"DCD on disconnect — without this the unit stays idle after a call-home."
|
||||
),
|
||||
)
|
||||
p.add_argument(
|
||||
"--stop-monitoring",
|
||||
action="store_true",
|
||||
default=False,
|
||||
help=(
|
||||
"RESCUE: send SUB 0x97 (stop monitoring) immediately after the "
|
||||
"handshake, before any event download. Use on a unit that is "
|
||||
"recording back-to-back because of a stuck-triggered geophone."
|
||||
),
|
||||
)
|
||||
p.add_argument(
|
||||
"--disable-ach",
|
||||
action="store_true",
|
||||
default=False,
|
||||
help=(
|
||||
"RESCUE: disable Auto Call Home on the device (SUB 0x2C read → "
|
||||
"0x7E write → 0x7F confirm) immediately after the handshake. The "
|
||||
"unit stops dialing out until ACH is explicitly re-enabled."
|
||||
),
|
||||
)
|
||||
p.add_argument(
|
||||
"--rescue",
|
||||
action="store_true",
|
||||
default=False,
|
||||
help="Shorthand for --stop-monitoring --disable-ach.",
|
||||
)
|
||||
p.add_argument(
|
||||
"--clear-after-download",
|
||||
action="store_true",
|
||||
|
||||
@@ -1,6 +1,7 @@
|
||||
# Runbook — Recovering a wedged unit stuck in a call-home loop
|
||||
|
||||
**Original incident:** BE9558H at `166.246.130.1:9034`, recovered 2026-05-17.
|
||||
**Incidents:** BE9558H at `166.246.130.1:9034`, 2026-05-17 (Method B) ·
|
||||
BE12599 at `166.246.64.226:9034`, 2026-09-16 (Method A).
|
||||
|
||||
A field unit with a stuck-triggered geophone (or any hardware fault causing
|
||||
constant event triggering) will record events back-to-back, and if Auto Call
|
||||
@@ -14,6 +15,33 @@ This runbook describes how to break the loop and recover control.
|
||||
|
||||
---
|
||||
|
||||
## ⚠ Two cures for one disease — intercept first
|
||||
|
||||
Both incidents below are the **same failure**: a geophone offset crosses the
|
||||
trigger level, the unit records back-to-back, ACH set to "after event
|
||||
recorded" dials continuously, and the unit becomes unreachable because its
|
||||
modem is in client mode almost all of the time.
|
||||
|
||||
There are two ways to get a Stop Monitoring command into it.
|
||||
|
||||
| | **A — intercept the call** (preferred) | **B — catch it between calls** (original) |
|
||||
|---|---|---|
|
||||
| Idea | Be the server it dials. Point the modem's Destination at our own ACH server and answer it. | Clear the Destination so it stops dialing, then race a Stop into the gap. |
|
||||
| Needs inbound? | **No — the unit calls us** | Yes: working inbound TCP to the modem |
|
||||
| Determinism | Deterministic — it dials every ~75 s, we only have to be listening | A race. BE9558H took ~7 h of attempts before one landed. |
|
||||
| Tool | `bridges/ach_server.py --stop-monitoring` | `scripts/slow_drip.sh` |
|
||||
| Proven on | BE12599, 2026-09-16 | BE9558H, 2026-05-17 |
|
||||
|
||||
**Method A is the standard procedure now.** The unit won't answer us because
|
||||
it is on the phone — so stop dialing it and be the one it calls. It rings,
|
||||
we pick up, take its data, and tell it to stop calling here.
|
||||
|
||||
Method B is kept because it is proven, and because A needs a listener the
|
||||
modem can actually reach (public IP + forwarded port). When you have that,
|
||||
don't race it — intercept it.
|
||||
|
||||
---
|
||||
|
||||
## Symptoms
|
||||
|
||||
- Terra-View / SFM `/device/info` either hangs or fails on `count_events()`.
|
||||
@@ -31,9 +59,85 @@ If you see *all* of these, the unit is in this exact failure mode.
|
||||
|
||||
---
|
||||
|
||||
## Quick reference — how to recover
|
||||
## Method A (preferred) — intercept the call
|
||||
|
||||
You need **ACEmanager access** to the unit's modem.
|
||||
You need **ACEmanager access** and a host the modem can dial: public IP with
|
||||
the listener's port forwarded to it.
|
||||
|
||||
### A1 — start the listener BEFORE touching the modem
|
||||
|
||||
```bash
|
||||
cd /home/serversdown/seismo-relay
|
||||
tmux new -s rescue
|
||||
.venv/bin/python -u bridges/ach_server.py --port 12345 \
|
||||
-o bridges/captures/<unit>-diag --stop-monitoring -v
|
||||
```
|
||||
|
||||
⚠ **Listener first, always.** A Destination pointed at a dead port is the
|
||||
worst state available — the device still dials, the modem still flips to
|
||||
client mode, inbound stays blocked, and nothing gets delivered.
|
||||
|
||||
Do **not** add `--events-only` (it silently breaks dedup — see gotchas), and
|
||||
do **not** add `--disable-ach` yet (see A4).
|
||||
|
||||
### A2 — point the modem at it
|
||||
|
||||
ACEmanager → **Serial → Port Configuration**:
|
||||
|
||||
| Field | Set to |
|
||||
|---|---|
|
||||
| **Destination Address** | the listener's public IP |
|
||||
| **Destination Port** | the listener's port (e.g. `12345`) |
|
||||
|
||||
Apply. The modem auto-dials its Destination whenever serial data arrives
|
||||
while the serial port is closed — so the unit's own retry cycle now lands on
|
||||
you instead of nowhere.
|
||||
|
||||
### A3 — answer, and stop the bleeding
|
||||
|
||||
Within ~75 s you should see a call-in. `--stop-monitoring` fires SUB 0x97 at
|
||||
step 1.5 — after the handshake, **before** the event walk — so the recording
|
||||
halts at the earliest possible moment in the session. Confirm via
|
||||
`rescue.json` in the session directory:
|
||||
|
||||
```json
|
||||
{"peer": "166.246.64.226:60921", "stop_monitoring": "ok"}
|
||||
```
|
||||
|
||||
That is the bleeding stopped. Everything after this is cleanup.
|
||||
|
||||
### A4 — drain the backlog, THEN disable ACH
|
||||
|
||||
⚠ **Order matters, and it is counter-intuitive.** Stopping monitoring also
|
||||
removes your call-in trigger: ACH fires on "after event recorded", so with
|
||||
recording stopped the unit has no reason to dial again. The backlog sitting
|
||||
in its memory does **not** re-arm it.
|
||||
|
||||
So if the stored events are worth keeping — and on a fault unit they usually
|
||||
are, they're the evidence — drain them across however many call-ins it takes
|
||||
*before* you silence it. Only then add `--disable-ach` (or use
|
||||
`scripts/rescue_device.sh <host> <port> --no-erase`).
|
||||
|
||||
If the unit has gone quiet and you still need it, cycling the modem produces
|
||||
a call-in, and a unit with a scheduled daily call will dial at its configured
|
||||
time regardless.
|
||||
|
||||
### A5 — restore the Destination, and confirm you did
|
||||
|
||||
Put `Destination Address` back to `0.0.0.0` (or the office Instantel ACH
|
||||
server) once you are finished, and only stop the listener after that is done.
|
||||
|
||||
### A6 — do NOT re-enable ACH until the hardware fault is repaired
|
||||
|
||||
Otherwise the loop restarts the moment monitoring resumes and you run this
|
||||
runbook again.
|
||||
|
||||
---
|
||||
|
||||
## Method B (fallback) — catch it between calls
|
||||
|
||||
The original 2026-05 procedure. Use when you cannot stand up a listener the
|
||||
modem can reach. You need **ACEmanager access** to the unit's modem.
|
||||
|
||||
### Step 1: stop the modem's mode-flipping
|
||||
|
||||
@@ -253,3 +357,223 @@ service).
|
||||
|
||||
Total time from "i was wondering if its possible to" first attempt to
|
||||
recovery: ~7 hours of intermittent debugging across one evening.
|
||||
|
||||
---
|
||||
|
||||
# Second incident — BE12599, 2026-09-16/17
|
||||
|
||||
**Unit:** BE12599 at `166.246.64.226:9034`, RV50, job *I-80 North Fork Bridge
|
||||
— Abut 1 West* (Fay Company). Same job as BE9558H, which is a coincidence.
|
||||
|
||||
**Fault:** the connector fault documented in `docs/offset_investigation.md`
|
||||
§8e progressed until the Tran pedestal reached **0.400 in/s** — its trigger
|
||||
level. Constant triggering → constant recording → ACH "after event recorded"
|
||||
→ continuous dialing. Same disease as BE9558H.
|
||||
|
||||
**Same disease, inverted cure.** Method B's Step 1 *did* work — clearing the
|
||||
Destination stopped the dial-outs, confirmed in the ALEOS log. It was Step 2
|
||||
that didn't land, and rather than keep racing we turned the rescue around:
|
||||
gave the unit a different server to call, and answered it.
|
||||
|
||||
Total time ≈ 5 h, of which ~90 min went to two red herrings documented below.
|
||||
Much of the rest was rediscovering the May procedure, which is why the
|
||||
"two cures" table now sits at the top of this file.
|
||||
|
||||
---
|
||||
|
||||
## Turn on ALEOS_SERIAL debug FIRST
|
||||
|
||||
This is the single highest-value diagnostic and it should be step zero on any
|
||||
future incident. ACEmanager → **Admin → Log → ALEOS_SERIAL log level →
|
||||
DEBUG**, then view the serial log.
|
||||
|
||||
It is the only thing that tells you what the *device* is actually saying.
|
||||
Everything before we did this was guesswork.
|
||||
|
||||
## What the log showed — the unit is on the phone
|
||||
|
||||
Every ~75 seconds, verbatim:
|
||||
|
||||
```
|
||||
ALEOS_SERIAL_HIF: 29 byte(s) in buffer: 'ATQ1^MATE0^MATS0=2^M^MRADIO RING^M'
|
||||
ALEOS_SERIAL_HMC: TCP recvhost fd 65535 len 29 state TCPMode::kClosed
|
||||
ALEOS_SERIAL_HMC: tcpmode trying to send to invalid socket
|
||||
ALEOS_SERIAL_HMC: Connect to IP: 0.0.0.0 Port 0
|
||||
ALEOS_SERIAL_HMC: Initialize Auto answer on port 9034
|
||||
ALEOS_SERIAL_HMC: Cannot connect to 0.0.0.0
|
||||
```
|
||||
|
||||
Read that carefully:
|
||||
|
||||
- `ATQ1` (quiet) / `ATE0` (echo off) / `ATS0=2` (auto-answer after 2 rings).
|
||||
**There is no `ATD`.** The device is not dialing — it is trying to
|
||||
*configure* its modem.
|
||||
- The modem's serial port is in TCP data mode, so it never interprets these
|
||||
as AT commands. It treats them as payload and tries to ship them to a TCP
|
||||
socket that does not exist.
|
||||
- The device therefore never receives `OK`, never progresses, and **retries
|
||||
the identical 29 bytes forever**.
|
||||
|
||||
**While it is in this state it is busy placing a call, not listening for
|
||||
us.** This is almost certainly what BE9558H was doing too — we simply never
|
||||
turned on ALEOS_SERIAL debug in May to look. It is not a different disease;
|
||||
it is the same one, seen properly for the first time.
|
||||
|
||||
It is also the argument for Method A in one picture: the unit is mid-dial
|
||||
every ~75 s, and our inbound Stop has to thread the gaps between those
|
||||
attempts. Give it somewhere to dial and the problem inverts into a
|
||||
deterministic one.
|
||||
|
||||
### Why `slow_drip` lied
|
||||
|
||||
`slow_drip` returned the *success* signature except for the one field that
|
||||
mattered:
|
||||
|
||||
```json
|
||||
{"duration_s":120.0,"drips_sent":38,"bytes_sent":920,
|
||||
"bytes_received":0,"send_error":null}
|
||||
```
|
||||
|
||||
Full duration, no broken pipe — but zero bytes back. Cause is in the log
|
||||
above: each 75 s cycle re-runs `Initialize Auto answer on port 9034`, which
|
||||
orphans the held session (`data in for unknown reason 3 removing from
|
||||
select`, `OnMsg recv error: 107 - Transport endpoint is not connected`). Our
|
||||
local TCP stayed open so `sendall` never raised — but the modem stopped
|
||||
bridging after the first re-init, so every drip after that went into a socket
|
||||
nobody was reading.
|
||||
|
||||
⚠ **`send_error: null` + full duration is NOT success. Only
|
||||
`bytes_received > 0` is success.**
|
||||
|
||||
⚠ **In fairness to slow_drip: it got exactly one attempt here**, run ~90 s
|
||||
after a modem reboot, with a dead session visible in the log at 20:19:17 in
|
||||
that same window. BE9558H took hours of attempts before one landed. Method B
|
||||
was not ruled out on BE12599 so much as abandoned in favour of something that
|
||||
doesn't need luck.
|
||||
|
||||
---
|
||||
|
||||
## ⚠ Two red herrings that cost ~90 minutes
|
||||
|
||||
### 1. The trusted-IP whitelist (this was the real reason inbound never worked)
|
||||
|
||||
The RV50s run with **Security → Trusted IPs (Friends List) enabled**. A
|
||||
source IP that is not on the list is dropped **silently** — inbound presents
|
||||
as `Connection error: timed out`, never a refusal.
|
||||
|
||||
Brian's dev-box public IP is **dynamic** and had changed, so `tmi-dev` was no
|
||||
longer whitelisted. Every inbound attempt failed identically across four
|
||||
different modem and device states, which looked exactly like the BE9558H
|
||||
mode-flipping symptom and sent us chasing modem configuration for over an
|
||||
hour.
|
||||
|
||||
**Check this before diagnosing anything else.** Note that SFM in Docker
|
||||
egresses via the *host's public IP*, not its LAN IP.
|
||||
|
||||
### 2. A 502 from SFM does not mean TCP connected
|
||||
|
||||
`sfm/server.py` raises **502 for both** failure classes:
|
||||
|
||||
```python
|
||||
raise HTTPException(status_code=502, detail=f"Protocol error: {exc}")
|
||||
raise HTTPException(status_code=502, detail=f"Connection error: {exc}")
|
||||
```
|
||||
|
||||
We read an early 502 as "TCP connected, modem bridged, device mute" and built
|
||||
a whole theory on it. It was almost certainly a connect timeout.
|
||||
**Always read the `detail` string** — "connect failed" and "device didn't
|
||||
answer" are completely different problems and the status code will not
|
||||
separate them.
|
||||
|
||||
---
|
||||
|
||||
## What actually worked — invert the direction
|
||||
|
||||
The key observation is in the log above:
|
||||
|
||||
> `TCP recvhost ... state TCPMode::kClosed` → `Connect to IP: 0.0.0.0 Port 0`
|
||||
|
||||
**The modem auto-dials its Destination whenever serial data arrives while
|
||||
closed.** So instead of fighting for inbound, give it somewhere to dial:
|
||||
point `Destination Address` at our own `ach_server` and the device's own
|
||||
75-second attempts become **device-initiated sessions the modem bridges
|
||||
correctly**. No race, no contention, worst case a 75-second wait.
|
||||
|
||||
### Procedure
|
||||
|
||||
1. **Run the rescue server** on a host the modem can reach (public IP +
|
||||
forwarded port):
|
||||
|
||||
```bash
|
||||
cd /home/serversdown/seismo-relay
|
||||
.venv/bin/python -u bridges/ach_server.py --port 12345 \
|
||||
-o bridges/captures/<unit>-diag --stop-monitoring -v
|
||||
```
|
||||
|
||||
2. **Point the modem at it** — ACEmanager → Serial → Port Configuration →
|
||||
`Destination Address` = your public IP, `Destination Port` = 12345.
|
||||
|
||||
3. **Wait for the call-in.** `--stop-monitoring` fires SUB 0x97 at step 1.5,
|
||||
after the handshake and *before* the event walk. Confirm via
|
||||
`rescue.json` in the session directory:
|
||||
|
||||
```json
|
||||
{"peer": "166.246.64.226:60921", "stop_monitoring": "ok"}
|
||||
```
|
||||
|
||||
4. **Restore the modem's Destination** once you are done, then finish the
|
||||
device side (disable ACH, erase) through whichever channel works.
|
||||
|
||||
On BE12599 the first call-in landed at 20:58:11 and reported
|
||||
`stop_monitoring: ok`; a second at 20:58:20 confirmed it. `is_monitoring:
|
||||
false` was still true **6½ hours later** — the fix is durable.
|
||||
|
||||
---
|
||||
|
||||
## Hard-won gotchas (do not re-derive)
|
||||
|
||||
- **Never leave the Destination pointed at a host with nothing listening.**
|
||||
That is the worst state available: the device still dials, the modem still
|
||||
flips, inbound stays blocked, and nothing is delivered. An 8-minute gap
|
||||
with the listener down produced a spurious inbound timeout that cost
|
||||
another round of misdiagnosis.
|
||||
|
||||
- **Stopping monitoring removes your call-in channel.** ACH is "after event
|
||||
recorded"; no new events means no new dials. The backlog sitting in memory
|
||||
does *not* re-arm it. After a successful stop the unit goes quiet and you
|
||||
need the modem cycled (works — produced a call-in), the scheduled daily call
|
||||
(BE12599 calls at **05:00:14 device-local**, per §8e), or working inbound.
|
||||
**Plan the order before you fire the stop.**
|
||||
|
||||
- **`--events-only` silently breaks dedup.** It skips the device-info step,
|
||||
so the serial is never read; `ach_state.json` then keys on
|
||||
`peer:ephemeral_port`, which is unique per connection. Every session looks
|
||||
like a new unit, starts from key 0, and re-downloads the same event. Four
|
||||
sessions on BE12599 downloaded the identical event four times and made zero
|
||||
progress on the backlog. Events also file as `serial=UNKNOWN` with a
|
||||
`M000…` BW filename (serial_numeric 0) instead of `N599…`.
|
||||
**Do not use `--events-only` when you intend to download anything.**
|
||||
|
||||
- **`/device/events/index` reported `lifetime_count: 0`** on a unit with years
|
||||
of history. Suspected decode bug in the SUB 0x08 field offset — do not
|
||||
trust that number. The 88-byte payload is preserved in the `raw_hex` field
|
||||
if someone wants to chase it.
|
||||
|
||||
- **Memory used cross-checks the event keys exactly:**
|
||||
`last_key − buffer_start = memory_total − memory_free`. On BE12599:
|
||||
`0x011230ec − 0x01110000 = 78,060` and `983,028 − 904,968 = 78,060`.
|
||||
Useful sanity check that you are reading the keys right.
|
||||
|
||||
---
|
||||
|
||||
## Final state (2026-09-17 ~01:30 local)
|
||||
|
||||
- `is_monitoring: false`, held 6½ hours
|
||||
- Battery 6.76 V
|
||||
- Memory 78,060 / 983,028 bytes used (8%)
|
||||
- `first_key 01121728`, `last_key 011230ec` — ~6.6 KB of addressable event
|
||||
chain, roughly 3 events
|
||||
- ACH still **enabled** — to be disabled after the backlog is preserved
|
||||
- Modem Destination still pointed at tmi-dev — to be restored
|
||||
- ⚠ **Do not re-enable ACH until the connector is serviced.** Tran is still
|
||||
sitting at 0.400 and the loop restarts the moment monitoring resumes.
|
||||
|
||||
@@ -0,0 +1,134 @@
|
||||
# Plan — "Rescue Listener": a first-class tool for the inverted rescue
|
||||
|
||||
**Status:** proposal, not started. Written 2026-09-17 ~01:40 local, straight
|
||||
off the BE12599 incident. Open questions at the bottom need Brian's answer
|
||||
before anything is built.
|
||||
|
||||
**Background:** `docs/runbooks/wedged_unit_recovery.md`, "Second incident —
|
||||
BE12599". The manual version of this worked; this plan is about making it a
|
||||
tool instead of a sequence of remembered steps at 1 AM.
|
||||
|
||||
---
|
||||
|
||||
## The problem, stated plainly
|
||||
|
||||
When a unit is wedged in the BE12599 mode — geophone offset above trigger,
|
||||
recording back-to-back, ACH dialing constantly, device stuck repeating an AT
|
||||
modem-init string and therefore **deaf to S3 over inbound** — the only channel
|
||||
that works is the one the *device* opens.
|
||||
|
||||
Recovering it currently means:
|
||||
|
||||
1. Remember that `bridges/ach_server.py` exists and takes the right flags
|
||||
2. Start it by hand on a box the modem can reach, with a public port forwarded
|
||||
3. Go into ACEmanager and repoint the modem's Destination
|
||||
4. Watch a terminal for a call-in
|
||||
5. Read `rescue.json` to find out whether it worked
|
||||
6. Go back into ACEmanager and repoint the modem to where it belongs
|
||||
7. **Not forget step 6**, because leaving the Destination pointed at a dead
|
||||
listener is worse than never having started
|
||||
|
||||
That is six manual steps and one landmine, executed under pressure while a
|
||||
unit floods the office server.
|
||||
|
||||
## What the tool should be
|
||||
|
||||
**A "rescue listener" an operator can start for one unit, which handles
|
||||
whatever that unit says when it calls in, and refuses to go away until the
|
||||
operator confirms the modem has been pointed back.**
|
||||
|
||||
Lifecycle:
|
||||
|
||||
1. **Start** — operator names the target unit and starts a rescue listener.
|
||||
The tool reports the exact address/port to enter in ACEmanager, plus the
|
||||
actions it will take.
|
||||
2. **Operator repoints the modem** to that address.
|
||||
3. **Wait** — listener sits there. Live status: "waiting for call-in",
|
||||
elapsed, last-seen.
|
||||
4. **Act** — on call-in, run the configured rescue actions automatically,
|
||||
in a safe order, each independently guarded. Report per-action outcome.
|
||||
5. **Hold** — the listener **stays up** and keeps reporting, because the
|
||||
modem is still pointed at it.
|
||||
6. **Confirm & stop** — the operator explicitly confirms the Destination has
|
||||
been restored (to `0.0.0.0`, or to the office Instantel ACH server).
|
||||
Only then does the listener shut down.
|
||||
|
||||
Step 6 is the whole point of making this a tool. It is the step that is
|
||||
easiest to skip and most expensive to skip.
|
||||
|
||||
## Default action set
|
||||
|
||||
Ordered deliberately — see "order matters" below.
|
||||
|
||||
| # | Action | Default | Why |
|
||||
|---|---|---|---|
|
||||
| 1 | **Stop monitoring** (SUB 0x97) | ✅ on | Halts recording; ends the trigger→record→dial loop at its source. Already implemented as `--stop-monitoring`. |
|
||||
| 2 | **Drain events** to a diagnostics store | ⚙ configurable | The backlog is usually evidence, not garbage — see the BE12599 offset investigation. Must NOT land in the prod SFM DB. |
|
||||
| 3 | **Disable ACH** (SUB 0x2C/0x7E/0x7F) | ❌ off by default | Stops the dialing — **and stops your only channel**. Opt-in, and ideally gated on step 1 having succeeded. |
|
||||
| 4 | **Erase events** | ❌ off by default | Destructive. Only after a verified drain. |
|
||||
|
||||
### Order matters — the lesson from BE12599
|
||||
|
||||
Stopping monitoring *removes the call-in trigger*. ACH fires on "after event
|
||||
recorded"; with recording stopped, the unit has no reason to dial again, even
|
||||
though the backlog is still sitting in its memory. So a naive
|
||||
"stop + disable + erase, all at once" rescue can silence the unit before
|
||||
you've collected anything, leaving you with no channel and a device full of
|
||||
evidence.
|
||||
|
||||
The tool should either sequence around this or warn loudly about it. My
|
||||
instinct is: **stop monitoring immediately** (it's the bleeding), then drain
|
||||
across however many call-ins it takes, and treat disable-ACH/erase as a
|
||||
separate, explicit "finish" action once the operator is satisfied.
|
||||
|
||||
## Where it should live — open question, with a proposal
|
||||
|
||||
The natural tier is **SFM** (device-side, per the three-tier model in
|
||||
CLAUDE.md). But the rescue listener must be reachable *from the cellular
|
||||
network*, which is a deployment constraint SFM's usual profile doesn't have.
|
||||
|
||||
**Proposal worth considering:** run it at the office, beside the real Instantel
|
||||
ACH server, on a **different port** (e.g. 12346 while Instantel holds 12345).
|
||||
Then the ACEmanager change is a **port change, not an IP change** — smaller,
|
||||
faster, less to get wrong, and trivially reversible. It also means the office
|
||||
public IP (already stable and known) is the destination, rather than whatever
|
||||
Brian's dynamic home IP happens to be that week.
|
||||
|
||||
The tmi-dev approach used on BE12599 worked, but required a router forward and
|
||||
ran into the dynamic-IP problem in the same session.
|
||||
|
||||
## Open questions
|
||||
|
||||
1. **Where does it run?** Office beside Instantel ACH (port swap), SFM on the
|
||||
NAS, or ad-hoc on tmi-dev? Affects everything else.
|
||||
2. **What drives it?** Terra-View admin page (fits "operator UI"), an SFM
|
||||
endpoint pair (`POST /device/rescue_listener/start` + `/stop` + `/status`),
|
||||
or a CLI wrapper? A long-lived listener doesn't fit the request/response
|
||||
endpoint shape well — probably needs a background task with a status poll.
|
||||
3. **How does it identify the unit?** It can't know the serial until the
|
||||
device calls in and the handshake reads it. Allowlist by modem IP? Accept
|
||||
anything and report what showed up?
|
||||
4. **Where do drained events go?** A per-incident diagnostics store
|
||||
(`bridges/captures/<unit>-diag`) seems right — explicitly *not* the prod
|
||||
SFM DB. Does that store need to be a first-class thing with its own
|
||||
retention, or is a directory fine?
|
||||
5. **How is "confirm the modem is repointed" verified?** Operator attestation
|
||||
(a button), or can we actually probe it? If the listener stops seeing
|
||||
call-ins that's weak evidence; if inbound to the unit starts working that's
|
||||
stronger.
|
||||
6. **Multi-unit?** One listener per incident, or one listener that handles any
|
||||
unit that dials in? Probably the former for safety.
|
||||
7. **Timeout / abandonment policy.** If nobody ever confirms, does it run
|
||||
forever? Alert after N hours?
|
||||
|
||||
## What already exists
|
||||
|
||||
- `bridges/ach_server.py` — the listener itself, with `--stop-monitoring`,
|
||||
`--disable-ach`, `--rescue` (added on `feat/ach-rescue-on-connect`, commit
|
||||
`9f1050b`), `--clear-after-download`, `--max-events`, `--allow-ip`.
|
||||
- Per-session `rescue.json` recording per-action outcomes.
|
||||
- Isolated per-output-dir SQLite + waveform store, so a diagnostics capture is
|
||||
already separate from prod by construction.
|
||||
|
||||
So the gap is not protocol work — it's lifecycle, operator surface, and the
|
||||
confirmation gate. Most of the risk is in questions 1 and 2.
|
||||
@@ -0,0 +1,89 @@
|
||||
r"""Decode the Thor / Micromate (series-4) sensor self-check waveforms from an
|
||||
IDFW event binary.
|
||||
|
||||
Reverse-engineered 2026-09-15 against 4 UM (Thor) oracle events. The IDFW
|
||||
binary carries the sensor self-check in its fixed-header region (before the
|
||||
waveform body), as up to four records tagged ``01 0e 3c/3d/3e/3f`` — the SAME
|
||||
channel ids as the series-3 MiniMate Plus (Tran / Vert / Long / MicL), which is
|
||||
the physical self-test:
|
||||
|
||||
* 3c / 3d / 3e = Tran / Vert / Long geophone ring-downs (a damped impulse
|
||||
response — resonant frequency + damping).
|
||||
* 3f = MicL pulse train (the mic's known-signal gain check). Absent
|
||||
on three-channel (mic-disabled) units.
|
||||
|
||||
Record framing (per record)::
|
||||
|
||||
01 0e [id:1] [flags:3] [count:2 BE] [pad:10] [int16-BE samples × count]
|
||||
\___ 18-byte header ___/
|
||||
|
||||
Unlike series-3's delta-coded trailing block, series-4 stores each trace as a
|
||||
raw int16 big-endian array. ``count`` (the 2-byte field at header offset +8)
|
||||
is the sample count; the record is padded to a fixed stride after that.
|
||||
"""
|
||||
from __future__ import annotations
|
||||
|
||||
import struct
|
||||
from typing import Dict, List
|
||||
|
||||
# Record id → channel. Same ids/order as series-3 (minimateplus.sensor_check).
|
||||
_ID_TO_CHANNEL = {0x3C: "Tran", 0x3D: "Vert", 0x3E: "Long", 0x3F: "MicL"}
|
||||
_CHAIN_IDS = (0x3C, 0x3D, 0x3E, 0x3F)
|
||||
|
||||
_MARKER = b"\x01\x0e" # precedes the 1-byte channel id
|
||||
_HEADER_LEN = 18 # bytes from the marker start to the first sample
|
||||
_COUNT_OFF = 8 # 2-byte BE sample count, from the marker start
|
||||
_MAX_COUNT = 4000 # sanity cap (traces are ~70-200 samples)
|
||||
|
||||
|
||||
def _find_chain(raw: bytes):
|
||||
"""Locate the sensor-check record chain. Returns a list of
|
||||
``(offset, id, count)`` for the first run of markers whose ids run
|
||||
3c, 3d, 3e[, 3f] in order, or ``[]``.
|
||||
|
||||
Records are padded to a fixed stride, so the next marker is not at
|
||||
``header + count*2``; instead collect every ``01 0e [id]`` marker with a
|
||||
sane count and take the first id-ordered run. Validating the id sequence
|
||||
(not a lone ``01 0e 3c``) keeps a stray marker in the waveform body from
|
||||
matching — the real chain sits in the fixed header, ahead of the body.
|
||||
"""
|
||||
n = len(raw)
|
||||
markers = []
|
||||
for p in range(n - _HEADER_LEN):
|
||||
if raw[p:p + 2] == _MARKER and raw[p + 2] in _ID_TO_CHANNEL:
|
||||
count = int.from_bytes(raw[p + _COUNT_OFF:p + _COUNT_OFF + 2], "big")
|
||||
if 0 < count <= _MAX_COUNT:
|
||||
markers.append((p, raw[p + 2], count))
|
||||
|
||||
for i, (off, rid, _c) in enumerate(markers):
|
||||
if rid != 0x3C:
|
||||
continue
|
||||
run = [markers[i]]
|
||||
for m in markers[i + 1:]:
|
||||
if len(run) < len(_CHAIN_IDS) and m[1] == _CHAIN_IDS[len(run)]:
|
||||
run.append(m)
|
||||
else:
|
||||
break
|
||||
if len(run) >= 3: # 3-channel (mic-disabled) units are valid
|
||||
return run
|
||||
return []
|
||||
|
||||
|
||||
def decode_idf_sensor_check(raw: bytes) -> Dict[str, List[int]]:
|
||||
"""Decode the sensor self-check traces from a Thor/Micromate IDFW binary.
|
||||
|
||||
Returns ``{"Tran": [...], "Vert": [...], "Long": [...], "MicL": [...]}`` in
|
||||
raw int16 ADC counts (MicL omitted on 3-channel units), or ``{}`` if the
|
||||
binary carries no sensor-check chain (a non-IDF file, or an IDFH histogram).
|
||||
"""
|
||||
chain = _find_chain(raw)
|
||||
if not chain:
|
||||
return {}
|
||||
out: Dict[str, List[int]] = {}
|
||||
for off, rid, count in chain:
|
||||
start = off + _HEADER_LEN
|
||||
blob = raw[start:start + count * 2]
|
||||
if len(blob) < count * 2:
|
||||
continue
|
||||
out[_ID_TO_CHANNEL[rid]] = list(struct.unpack(">%dh" % count, blob))
|
||||
return out
|
||||
@@ -50,7 +50,7 @@ SIDECAR_KIND = "sfm.event"
|
||||
# bumped without a `pip install` re-run — leading to confusing stale
|
||||
# version stamps in sidecars. Bump this constant and CHANGELOG.md
|
||||
# together at release time.
|
||||
TOOL_VERSION = "0.30.0"
|
||||
TOOL_VERSION = "0.31.0" # +/sensor_check group (schema v2); gates the backfill regen
|
||||
|
||||
try:
|
||||
# Best-effort: prefer the installed metadata when it's NEWER than the
|
||||
@@ -960,6 +960,11 @@ def read_blastware_file(path: Union[str, Path]) -> Event:
|
||||
project=project, client=client, operator=user, sensor_location=seisloc,
|
||||
)
|
||||
ev.raw_samples = samples
|
||||
# Sensor self-check traces from the binary's trailing block (waveform
|
||||
# events only; returns {} for histograms / when absent). Carried on the
|
||||
# Event so the .h5 writer persists them device-agnostically.
|
||||
from minimateplus.sensor_check import decode_sensor_check
|
||||
ev.sensor_check = decode_sensor_check(raw) or None
|
||||
# Only compute peaks from samples when we actually have samples.
|
||||
# For events the codec couldn't decode (histogram-mode bodies, until
|
||||
# the §7.6.2 histogram codec is wired in), samples is an empty dict
|
||||
|
||||
@@ -544,6 +544,15 @@ class Event:
|
||||
pretrig_samples: Optional[int] = None # from STRT record: pre-trigger sample count
|
||||
rectime_seconds: Optional[int] = None # from STRT record: record duration (seconds)
|
||||
|
||||
# Sensor self-check traces keyed by channel label — the short diagnostic
|
||||
# waveforms the unit records when it pulses each sensor before monitoring
|
||||
# (geophone ring-downs + a mic pulse train). Decoded from the binary by
|
||||
# the per-series decoder (minimateplus.sensor_check / micromate.sensor_check)
|
||||
# and carried here so the .h5 writer can persist them device-agnostically.
|
||||
# Raw ADC counts; the source series' scale differs but the trace is a
|
||||
# shape diagnostic (rendered fit-to-box). None when absent.
|
||||
sensor_check: Optional[dict] = None # {"Tran": [...], ..., "MicL": [...]}
|
||||
|
||||
# ── Debug / introspection ─────────────────────────────────────────────────
|
||||
# Raw 210-byte waveform record bytes, set when debug mode is active.
|
||||
# Exposed by the SFM server via ?debug=true so field layouts can be verified.
|
||||
|
||||
@@ -0,0 +1,146 @@
|
||||
r"""Decode the Blastware sensor self-check waveforms from a series-3 event binary.
|
||||
|
||||
Reverse-engineered 2026-09-15 against 7 BE12844 (MiniMate Plus) oracle events.
|
||||
After the main waveform record-chain and the trailing metadata / per-channel
|
||||
calibration records, the binary carries four length-prefixed records tagged
|
||||
0x3c-0x3f: the sensor self-check traces the unit records when it pulses each
|
||||
sensor before monitoring. Blastware draws these as the little waveforms in the
|
||||
"Sensor Check" strip on the right of the Event Report.
|
||||
|
||||
* 0x3c / 0x3d / 0x3e = Tran / Vert / Long geophone ring-downs (a damped
|
||||
oscillation at the geophone's resonance, ~7-8 Hz at 1024 sps).
|
||||
* 0x3f = MicL, a pulse train at the mic self-test frequency
|
||||
(~20 Hz), whose zero-crossing frequency is BW's mic "Channel Test" freq.
|
||||
|
||||
Record framing (per record, all four chained by their length prefix)::
|
||||
|
||||
[len:2 BE][id:1][00 00][Nchan:1][12-byte header][delta stream][40 02][6B]
|
||||
\_________________ payload (len bytes) _______________________________/
|
||||
|
||||
The delta stream is ``payload[20 : len-8]`` (the ``40 02`` terminator sits at
|
||||
``len-8``, followed by 6 trailing bytes). It uses the exact same 10/20/30/00
|
||||
delta-block tags as the main waveform codec
|
||||
(:mod:`minimateplus.waveform_codec`), decoded here from an implicit anchor of 0
|
||||
— so the traces come out in the same 16-count raw units as the main waveform
|
||||
(LSB = 0.005 in/s at Normal range for the geophones).
|
||||
"""
|
||||
from __future__ import annotations
|
||||
|
||||
from typing import Dict, List
|
||||
|
||||
from minimateplus.waveform_codec import walk_body
|
||||
|
||||
# Record id → channel. Order mirrors the trailing per-channel calibration
|
||||
# records (Tran / Vert / Long / MicL), confirmed against BW's sensor-check
|
||||
# frequencies on all 7 oracle events.
|
||||
_ID_TO_CHANNEL = {0x3C: "Tran", 0x3D: "Vert", 0x3E: "Long", 0x3F: "MicL"}
|
||||
_CHAIN_IDS = (0x3C, 0x3D, 0x3E, 0x3F)
|
||||
|
||||
_HEADER_LEN = 20 # payload bytes before the delta stream
|
||||
_TRAILER_LEN = 8 # 40 02 terminator + 6 trailing bytes after the stream
|
||||
|
||||
|
||||
def _s4(nib: int) -> int:
|
||||
"""Sign-extend a 4-bit nibble delta."""
|
||||
return nib - 16 if nib >= 8 else nib
|
||||
|
||||
|
||||
def _i8(byte: int) -> int:
|
||||
"""Sign-extend an 8-bit int delta."""
|
||||
return byte - 256 if byte >= 128 else byte
|
||||
|
||||
|
||||
def _decode_delta_stream(buf: bytes) -> List[int]:
|
||||
"""Accumulate a 10/20/30/00 delta-block stream from an anchor of 0,
|
||||
stopping at the 0x40 terminator.
|
||||
|
||||
Mirrors the block semantics in
|
||||
:func:`minimateplus.waveform_codec.decode_waveform_v2` (fully decoded &
|
||||
byte-exact as of 2026-05-11); see that module for the format details.
|
||||
"""
|
||||
out: List[int] = []
|
||||
cur = 0
|
||||
for blk in walk_body(buf, 0):
|
||||
fam = blk.tag_hi & 0xF0
|
||||
if fam == 0x10:
|
||||
# nibble deltas, high nibble first
|
||||
for byte in blk.data:
|
||||
for nib in ((byte >> 4) & 0xF, byte & 0xF):
|
||||
cur += _s4(nib)
|
||||
out.append(cur)
|
||||
elif fam == 0x20:
|
||||
# int8 deltas
|
||||
for byte in blk.data:
|
||||
cur += _i8(byte)
|
||||
out.append(cur)
|
||||
elif fam == 0x30:
|
||||
# 12-bit signed deltas, packed as tag_lo/4 groups of 6 bytes
|
||||
for g in range(blk.tag_lo // 4):
|
||||
grp = blk.data[g * 6:(g + 1) * 6]
|
||||
if len(grp) < 6:
|
||||
break
|
||||
high_word = (grp[0] << 8) | grp[1]
|
||||
for k in range(4):
|
||||
nib = (high_word >> (12 - 4 * k)) & 0xF
|
||||
v = (nib << 8) | grp[2 + k]
|
||||
if v >= 0x800:
|
||||
v -= 0x1000
|
||||
cur += v
|
||||
out.append(cur)
|
||||
elif fam == 0x00:
|
||||
# RLE zero-delta run (wide form carries the high nibble in the tag)
|
||||
run = ((blk.tag_hi & 0x0F) << 8) | blk.tag_lo
|
||||
out.extend([cur] * run)
|
||||
elif fam == 0x40:
|
||||
# segment / record terminator
|
||||
break
|
||||
return out
|
||||
|
||||
|
||||
def _find_chain(body: bytes):
|
||||
"""Locate the four length-prefixed sensor-check records.
|
||||
|
||||
Returns a list of ``(offset, id, length)`` or ``None``. The chain is
|
||||
validated by walking the ids 0x3c → 0x3d → 0x3e → 0x3f via their own length
|
||||
prefixes, so a stray 0x3c byte in the waveform data cannot match.
|
||||
"""
|
||||
for p in range(len(body) - 6):
|
||||
if body[p + 2] == 0x3C and body[p + 3] == 0 and body[p + 4] == 0:
|
||||
q = p
|
||||
recs = []
|
||||
ok = True
|
||||
for expect in _CHAIN_IDS:
|
||||
if q + 3 > len(body) or body[q + 2] != expect:
|
||||
ok = False
|
||||
break
|
||||
length = int.from_bytes(body[q:q + 2], "big")
|
||||
recs.append((q, expect, length))
|
||||
q = q + 2 + length
|
||||
if ok and len(recs) == 4:
|
||||
return recs
|
||||
return None
|
||||
|
||||
|
||||
def decode_sensor_check(raw: bytes) -> Dict[str, List[int]]:
|
||||
"""Decode the four sensor self-check traces from a series-3 event binary.
|
||||
|
||||
Returns ``{"Tran": [...], "Vert": [...], "Long": [...], "MicL": [...]}`` in
|
||||
raw decode units (same 16-count LSB as the main waveform), or ``{}`` if the
|
||||
binary carries no sensor-check block (a histogram event, a non-series-3
|
||||
file, or a unit/firmware that doesn't store it).
|
||||
"""
|
||||
strt = raw.find(b"STRT")
|
||||
if strt < 0 or len(raw) < strt + 21 + 26:
|
||||
return {}
|
||||
body = raw[strt + 21: len(raw) - 26]
|
||||
chain = _find_chain(body)
|
||||
if not chain:
|
||||
return {}
|
||||
out: Dict[str, List[int]] = {}
|
||||
for off, rid, length in chain:
|
||||
payload = body[off + 2: off + 2 + length]
|
||||
if len(payload) < _HEADER_LEN + _TRAILER_LEN:
|
||||
continue
|
||||
stream = payload[_HEADER_LEN: length - _TRAILER_LEN]
|
||||
out[_ID_TO_CHANNEL[rid]] = _decode_delta_stream(stream)
|
||||
return out
|
||||
+1
-1
@@ -4,7 +4,7 @@ build-backend = "setuptools.build_meta"
|
||||
|
||||
[project]
|
||||
name = "seismo-relay"
|
||||
version = "0.30.0"
|
||||
version = "0.31.0"
|
||||
description = "Python client and REST server for MiniMate Plus seismographs"
|
||||
requires-python = ">=3.10"
|
||||
dependencies = [
|
||||
|
||||
@@ -305,6 +305,11 @@ def main(argv=None) -> int:
|
||||
default=0,
|
||||
)
|
||||
ev.total_samples = ev.total_samples or n_samp
|
||||
# Sensor self-check traces from the IDFW fixed
|
||||
# header, so regenerated .h5 files gain the v2
|
||||
# /sensor_check group (mirrors save_imported_idf).
|
||||
from micromate.sensor_check import decode_idf_sensor_check
|
||||
ev.sensor_check = decode_idf_sensor_check(binary_bytes) or None
|
||||
|
||||
event_hdf5.write_event_hdf5(
|
||||
hdf5_path, ev,
|
||||
|
||||
@@ -120,6 +120,7 @@ def draw_compliance_chart(ax, channels: Dict[str, Sequence[float]], sps: float)
|
||||
ax.set_yscale("log")
|
||||
ax.set_xlim(1, 100)
|
||||
ax.set_ylim(0.0394, 10)
|
||||
ax.set_box_aspect(1) # square plot box (log-log compliance charts are square)
|
||||
xt = [1, 2, 5, 10, 20, 50, 100]
|
||||
yt = [0.0394, 0.05, 0.1, 0.2, 0.5, 1, 2, 5, 10]
|
||||
ax.xaxis.set_major_locator(FixedLocator(xt)); ax.xaxis.set_minor_locator(NullLocator())
|
||||
|
||||
+44
-4
@@ -12,8 +12,11 @@ Layout written to `<filename>.h5`:
|
||||
├─ samples_int16/ (optional)
|
||||
│ ├─ Tran (int16, raw ADC counts) shape: (N,)
|
||||
│ └─ ... per channel (only when present in the source)
|
||||
├─ sensor_check/ (optional, schema v2+)
|
||||
│ ├─ Tran (int32, raw counts) shape: (M,) M ≪ N
|
||||
│ └─ ... per channel present in the source (MicL absent on 3-channel units)
|
||||
└─ root attrs (event metadata):
|
||||
schema_version int = 1
|
||||
schema_version int = 2
|
||||
kind str = "sfm.event.hdf5"
|
||||
serial str
|
||||
waveform_key str (8-hex)
|
||||
@@ -64,7 +67,7 @@ from minimateplus.models import Event
|
||||
|
||||
log = logging.getLogger(__name__)
|
||||
|
||||
SCHEMA_VERSION = 1
|
||||
SCHEMA_VERSION = 2 # v2 adds the optional /sensor_check group
|
||||
HDF5_KIND = "sfm.event.hdf5"
|
||||
|
||||
# Geophone full-scale velocity per range (in/s). Confirmed in CLAUDE.md
|
||||
@@ -270,6 +273,22 @@ def write_event_hdf5(
|
||||
)
|
||||
igrp.attrs["mic_psi_per_count"] = float(mic_factor)
|
||||
|
||||
# /sensor_check — optional short diagnostic self-check traces (schema
|
||||
# v2+). Raw ADC counts (a shape diagnostic; the per-series count scale
|
||||
# differs, and the renderer fits each trace to its box). Only channels
|
||||
# the decoder found are written — 3-channel units carry no MicL.
|
||||
sc = event.sensor_check or {}
|
||||
if sc:
|
||||
scgrp = f.create_group("sensor_check")
|
||||
for ch in ("Tran", "Vert", "Long", "MicL"):
|
||||
vals = sc.get(ch)
|
||||
if vals:
|
||||
scgrp.create_dataset(
|
||||
ch, data=np.asarray(vals, dtype=np.int32),
|
||||
compression="gzip", compression_opts=4, shuffle=True,
|
||||
)
|
||||
scgrp.attrs["units"] = "raw_counts"
|
||||
|
||||
import os
|
||||
os.replace(tmp, path)
|
||||
|
||||
@@ -334,6 +353,16 @@ def read_event_hdf5(path: Union[str, Path]) -> dict:
|
||||
if mic_attr is not None:
|
||||
mic_psi = float(mic_attr)
|
||||
|
||||
# /sensor_check — optional (schema v2+); absent on older files.
|
||||
sensor_check = None
|
||||
scgrp = f.get("sensor_check")
|
||||
if scgrp is not None:
|
||||
sensor_check = {}
|
||||
for ch in ("Tran", "Vert", "Long", "MicL"):
|
||||
ds = scgrp.get(ch)
|
||||
if ds is not None:
|
||||
sensor_check[ch] = np.asarray(ds[()])
|
||||
|
||||
return {
|
||||
"schema_version": sv,
|
||||
"kind": attrs.get("kind"),
|
||||
@@ -341,6 +370,7 @@ def read_event_hdf5(path: Union[str, Path]) -> dict:
|
||||
"samples": samples,
|
||||
"samples_int16": samples_int16,
|
||||
"mic_psi_per_count": mic_psi,
|
||||
"sensor_check": sensor_check,
|
||||
}
|
||||
|
||||
|
||||
@@ -431,11 +461,16 @@ def plot_json_from_hdf5(
|
||||
event_id: Optional[str] = None,
|
||||
index: Optional[int] = None,
|
||||
) -> dict:
|
||||
"""Build a `sfm.plot.v1` JSON dict from a stored .h5 file."""
|
||||
"""Build a `sfm.plot.v1` JSON dict from a stored .h5 file.
|
||||
|
||||
The dict also carries a top-level ``sensor_check`` key (the raw self-check
|
||||
traces as ``{ch: [int]}``, or None) beyond the plot schema, so report
|
||||
generation can read the traces from the same single .h5 load.
|
||||
"""
|
||||
data = read_event_hdf5(path)
|
||||
a = data["attrs"]
|
||||
s = data["samples"]
|
||||
return _build_plot_dict(
|
||||
out = _build_plot_dict(
|
||||
n_samples=len(s["Tran"]) if "Tran" in s else 0,
|
||||
sample_rate=int(a.get("sample_rate", 1024) or 1024),
|
||||
pretrig_samples=int(a.get("pretrig_samples", 0) or 0),
|
||||
@@ -463,6 +498,11 @@ def plot_json_from_hdf5(
|
||||
event_id=event_id,
|
||||
index=index,
|
||||
)
|
||||
scd = data.get("sensor_check")
|
||||
out["sensor_check"] = (
|
||||
{ch: v.tolist() for ch, v in scd.items()} if scd else None
|
||||
)
|
||||
return out
|
||||
|
||||
|
||||
def _build_plot_dict(
|
||||
|
||||
+158
-32
@@ -121,6 +121,13 @@ class ReportData:
|
||||
t0_ms: Optional[float] = None
|
||||
dt_ms: Optional[float] = None
|
||||
|
||||
# Sensor self-check traces — {ch: [samples]} in raw counts, read from the
|
||||
# standardized .h5 (/sensor_check group, schema v2+) where the per-series
|
||||
# decoder stored them at ingest. The little diagnostic waveforms BW draws
|
||||
# in its "Sensor Check" strip. Empty when absent (pre-v2 .h5, histogram,
|
||||
# or 3-channel unit's MicL).
|
||||
sensor_check_waveforms: dict = field(default_factory=dict)
|
||||
|
||||
# Record-type discriminator
|
||||
record_type: Optional[str] = None
|
||||
is_histogram: bool = False
|
||||
@@ -246,6 +253,8 @@ def gather_report_data(
|
||||
"peak_accel_g": ch.get("peak_accel_g"),
|
||||
"peak_disp_in": ch.get("peak_disp_in"),
|
||||
"sensor_check": sc_ch.get("result"),
|
||||
"sc_freq_hz": sc_ch.get("freq_hz"),
|
||||
"sc_ratio": sc_ch.get("ratio"),
|
||||
"peak_date": peak_date,
|
||||
"peak_time": peak_time,
|
||||
})
|
||||
@@ -287,6 +296,12 @@ def gather_report_data(
|
||||
rd.pretrig_samples = ta.get("pretrig_samples")
|
||||
rd.t0_ms = ta.get("t0_ms")
|
||||
rd.dt_ms = ta.get("dt_ms")
|
||||
# Sensor self-check traces — read from the standardized .h5 (schema
|
||||
# v2+). Device-agnostic: whichever decoder produced the event
|
||||
# stored them at ingest, so SFM reads them here without knowing or
|
||||
# caring about the source instrument series. Empty on pre-v2 files
|
||||
# (until backfilled) and on 3-channel / histogram events.
|
||||
rd.sensor_check_waveforms = wf.get("sensor_check") or {}
|
||||
except Exception as exc:
|
||||
log.warning("gather_report_data: hdf5 read failed: %s", exc)
|
||||
|
||||
@@ -396,9 +411,34 @@ def _render_waveform_layout(fig, rd: ReportData) -> None:
|
||||
ax_stats = fig.add_subplot(gs[2]); ax_stats.axis("off")
|
||||
_draw_channel_stats_waveform(ax_stats, rd)
|
||||
|
||||
_draw_compliance_panel(fig, rd)
|
||||
_draw_waveform_subplot(fig, gs[3], rd)
|
||||
|
||||
|
||||
# Compliance-chart placement, in figure fractions. Measured directly off a
|
||||
# Blastware Event Report PDF (ref-stuff/n844lqhbzt0w_bw_pdf.pdf) so the chart
|
||||
# matches BW's size and position: it spans from just under the header down
|
||||
# through the stats band, hard against the right page margin. The left edge
|
||||
# leaves room for the y-axis tick labels + "Velocity (in/s)" title, which the
|
||||
# compacted stats table (see _draw_channel_stats_waveform) is sized to clear.
|
||||
_COMPLIANCE_BOX = (0.489, 0.502, 0.951, 0.867) # x0, y0, x1, y1
|
||||
|
||||
|
||||
def _draw_compliance_panel(fig, rd: ReportData) -> None:
|
||||
"""Large USBM RI8507 compliance chart in the upper-right, sized and
|
||||
positioned to match Blastware's Event Report (see _COMPLIANCE_BOX)."""
|
||||
x0, y0, x1, y1 = _COMPLIANCE_BOX
|
||||
fig.text((x0 + x1) / 2, y1 + 0.006, "USBM RI8507 And OSMRE", fontsize=9,
|
||||
weight="bold", color="#333", ha="center", va="bottom")
|
||||
if rd.channels and rd.sample_rate_sps:
|
||||
from sfm.compliance import draw_compliance_chart
|
||||
ax = fig.add_axes([x0, y0, x1 - x0, y1 - y0])
|
||||
draw_compliance_chart(ax, rd.channels, rd.sample_rate_sps)
|
||||
else:
|
||||
fig.text((x0 + x1) / 2, (y0 + y1) / 2, "(no waveform data)", fontsize=8,
|
||||
color="#bbb", ha="center", va="center", style="italic")
|
||||
|
||||
|
||||
def _render_histogram_layout(fig, rd: ReportData) -> None:
|
||||
"""Histogram layout: header / mic-only / per-channel stats / bar plot.
|
||||
|
||||
@@ -477,11 +517,11 @@ def _split_iso_to_date_time(iso: Optional[str]) -> tuple[Optional[str], Optional
|
||||
return (None, None)
|
||||
|
||||
|
||||
def _kv(ax, x, y, label, value, *, label_w=0.18):
|
||||
def _kv(ax, x, y, label, value, *, label_w=0.18, fontsize=8):
|
||||
"""Render a 'Label Value' row at axes-coordinates (x, y)."""
|
||||
ax.text(x, y, label, fontsize=8, color="#555", ha="left", va="top",
|
||||
ax.text(x, y, label, fontsize=fontsize, color="#555", ha="left", va="top",
|
||||
transform=ax.transAxes)
|
||||
ax.text(x + label_w, y, _fmt(value), fontsize=8, ha="left", va="top",
|
||||
ax.text(x + label_w, y, _fmt(value), fontsize=fontsize, ha="left", va="top",
|
||||
transform=ax.transAxes, family="monospace")
|
||||
|
||||
|
||||
@@ -544,14 +584,17 @@ def _draw_header_columns(ax, rows_left, rd: ReportData) -> None:
|
||||
("File Name", rd.file_name),
|
||||
("Post Event Notes", rd.post_event_notes),
|
||||
]
|
||||
# fontsize 7.5 (BW's header is a touch smaller than our body text) + a
|
||||
# tighter right-column value indent so the long serial+firmware line
|
||||
# ("BE##### V ##.##-#.## MiniMate Plus") fits without running off the page.
|
||||
y = 0.95
|
||||
dy = 0.095
|
||||
for label, value in rows_left:
|
||||
_kv(ax, 0.0, y, label, value, label_w=0.18)
|
||||
_kv(ax, 0.0, y, label, value, label_w=0.18, fontsize=7.5)
|
||||
y -= dy
|
||||
y = 0.95
|
||||
for label, value in rows_right:
|
||||
_kv(ax, 0.55, y, label, value, label_w=0.20)
|
||||
_kv(ax, 0.55, y, label, value, label_w=0.14, fontsize=7.5)
|
||||
y -= dy
|
||||
|
||||
|
||||
@@ -574,20 +617,14 @@ def _draw_mic_and_usbm(ax, rd: ReportData) -> None:
|
||||
transform=ax.transAxes, va="top")
|
||||
rows = _mic_rows(rd)
|
||||
y = 0.80
|
||||
# Tighter label indent + slightly smaller font so the long "Channel Test
|
||||
# Passed (Freq = … Amp = … mv)" line clears the enlarged compliance chart's
|
||||
# left edge (_COMPLIANCE_BOX) instead of running behind it.
|
||||
for label, value in rows:
|
||||
_kv(ax, 0.0, y, label, value, label_w=0.18)
|
||||
_kv(ax, 0.0, y, label, value, label_w=0.13, fontsize=7)
|
||||
y -= 0.15
|
||||
|
||||
# USBM RI8507 compliance chart — inset axes in the right half of this band.
|
||||
ax.text(0.74, 1.00, "USBM RI8507", fontsize=9, weight="bold", color="#333",
|
||||
ha="center", va="top", transform=ax.transAxes)
|
||||
if rd.channels and rd.sample_rate_sps:
|
||||
from sfm.compliance import draw_compliance_chart
|
||||
inset = ax.inset_axes([0.52, 0.02, 0.46, 0.82])
|
||||
draw_compliance_chart(inset, rd.channels, rd.sample_rate_sps)
|
||||
else:
|
||||
ax.text(0.74, 0.48, "(no waveform data)", fontsize=8, color="#bbb",
|
||||
ha="center", va="center", transform=ax.transAxes, style="italic")
|
||||
# The USBM compliance chart is drawn as its own large square panel spanning
|
||||
# the mic + stats rows on the right — see _draw_compliance_panel().
|
||||
|
||||
|
||||
def _mic_rows(rd: ReportData) -> list[tuple[str, Optional[str]]]:
|
||||
@@ -637,8 +674,18 @@ def _draw_channel_stats_waveform(ax, rd: ReportData) -> None:
|
||||
("Peak Acceleration", "peak_accel_g", "g"),
|
||||
("Peak Displacement", "peak_disp_in", "in"),
|
||||
("Sensor Check", "sensor_check", ""),
|
||||
# Sensor-check sub-rows (indented under "Sensor Check", like BW): the
|
||||
# geophone ring-down frequency + overswing ratio from the self-check.
|
||||
(" Frequency", "sc_freq_hz", "Hz"),
|
||||
(" Overswing Ratio", "sc_ratio", ""),
|
||||
]
|
||||
_draw_stats_table(ax, rd, rows_spec)
|
||||
# Compacted to the left half so the enlarged compliance chart (BW-sized,
|
||||
# right against the page margin) has room — see _COMPLIANCE_BOX.
|
||||
_draw_stats_table(
|
||||
ax, rd, rows_spec,
|
||||
bbox_width=0.42, fontsize=7.5,
|
||||
col_widths=[0.185, 0.065, 0.065, 0.065, 0.040],
|
||||
)
|
||||
_draw_pvs_summary(ax, rd, n_data_rows=len(rows_spec))
|
||||
|
||||
|
||||
@@ -699,19 +746,39 @@ def _draw_pvs_summary(
|
||||
table_bottom_y = getattr(ax, "_stats_table_bottom", -0.10)
|
||||
pvs_y = table_bottom_y - 0.04 # small gap below the table border
|
||||
|
||||
# Centered for visual balance — looks intentional rather than offset.
|
||||
# The original BW-replica had a "NA: Not Applicable" caption below
|
||||
# this line; dropped because we use "—" for missing values and the
|
||||
# legend was always squished against the PVS line.
|
||||
# Centered under the stats table for visual balance — looks intentional
|
||||
# rather than offset. When the table is compacted (waveform layout), it
|
||||
# occupies only the left portion of the axes, so center on the table's
|
||||
# width rather than the full axes (which would push the line under the
|
||||
# compliance chart). The original BW-replica had a "NA: Not Applicable"
|
||||
# caption below this line; dropped because we use "—" for missing values.
|
||||
table_w = getattr(ax, "_stats_table_width", 0.80)
|
||||
if table_w < 0.79:
|
||||
# Compacted (waveform) layout: left-align under the table, one point
|
||||
# smaller, so the line clears the enlarged compliance chart's
|
||||
# bottom-left tick labels on the right.
|
||||
ax.text(0.0, pvs_y, line, fontsize=8, weight="bold",
|
||||
ha="left", va="top", transform=ax.transAxes)
|
||||
else:
|
||||
ax.text(0.5, pvs_y, line, fontsize=9, weight="bold",
|
||||
ha="center", va="top", transform=ax.transAxes)
|
||||
|
||||
|
||||
def _draw_stats_table(ax, rd: ReportData, rows_spec: list[tuple[str, str, str]]) -> None:
|
||||
def _draw_stats_table(
|
||||
ax, rd: ReportData, rows_spec: list[tuple[str, str, str]],
|
||||
*, bbox_width: float = 0.80, fontsize: float = 8,
|
||||
col_widths: Optional[list[float]] = None,
|
||||
) -> None:
|
||||
"""Render a per-channel stats table (Tran/Vert/Long).
|
||||
|
||||
rows_spec: list of (label, field_name_in_channel_stats, unit_string)
|
||||
|
||||
``bbox_width`` / ``col_widths`` / ``fontsize`` let a caller compact the
|
||||
table (the waveform layout packs it into the left half to clear the
|
||||
compliance chart; the histogram layout keeps the wider defaults).
|
||||
"""
|
||||
if col_widths is None:
|
||||
col_widths = [0.28, 0.14, 0.14, 0.14, 0.10]
|
||||
headers = ["", "Tran", "Vert", "Long", ""]
|
||||
ch_lookup = {c["name"]: c for c in rd.channel_stats}
|
||||
|
||||
@@ -727,6 +794,8 @@ def _draw_stats_table(ax, rd: ReportData, rows_spec: list[tuple[str, str, str]])
|
||||
if field == "zc_freq_hz":
|
||||
prefix = ">" if ch_rec.get("zc_freq_above_range") else ""
|
||||
return f"{prefix}{val:.0f}"
|
||||
if field in ("sc_freq_hz", "sc_ratio"):
|
||||
return f"{val:.1f}" # BW shows 1 decimal (7.5 Hz, 3.6)
|
||||
return f"{val:.3f}"
|
||||
return str(val)
|
||||
|
||||
@@ -751,16 +820,17 @@ def _draw_stats_table(ax, rd: ReportData, rows_spec: list[tuple[str, str, str]])
|
||||
table_bottom = 1.0 - table_height
|
||||
tbl = ax.table(
|
||||
cellText=table_data,
|
||||
colWidths=[0.28, 0.14, 0.14, 0.14, 0.10],
|
||||
colWidths=col_widths,
|
||||
cellLoc="left", edges="open",
|
||||
bbox=[0.0, table_bottom, 0.80, table_height],
|
||||
bbox=[0.0, table_bottom, bbox_width, table_height],
|
||||
)
|
||||
tbl.auto_set_font_size(False)
|
||||
tbl.set_fontsize(8)
|
||||
tbl.set_fontsize(fontsize)
|
||||
for j in range(5):
|
||||
tbl[(0, j)].set_text_props(weight="bold", color="#555")
|
||||
# Stash the bottom Y so _draw_pvs_summary can position itself below.
|
||||
# Stash the bottom Y + width so _draw_pvs_summary can position itself.
|
||||
ax._stats_table_bottom = table_bottom
|
||||
ax._stats_table_width = bbox_width
|
||||
|
||||
|
||||
def _channel_axis_color(ch: str) -> str:
|
||||
@@ -770,9 +840,25 @@ def _channel_axis_color(ch: str) -> str:
|
||||
def _draw_waveform_subplot(fig, gridspec_cell, rd: ReportData) -> None:
|
||||
"""4-channel stacked waveform plot — Instantel printout order
|
||||
(MicL on top, Tran on bottom), shared x-axis in SECONDS, trigger
|
||||
triangle markers at t=0, '0.0' baseline label on right of each."""
|
||||
inner = gridspec_cell.subgridspec(4, 1, hspace=0.0)
|
||||
triangle markers at t=0, '0.0' baseline label on right of each.
|
||||
|
||||
When sensor self-check traces are present (rd.sensor_check_waveforms), a
|
||||
narrow "Sensor Check" strip of per-channel mini-plots is drawn to the right,
|
||||
aligned to the lanes — matching Blastware's Event Report.
|
||||
"""
|
||||
from matplotlib.ticker import MaxNLocator
|
||||
|
||||
order = ["MicL", "Long", "Vert", "Tran"]
|
||||
has_sc = bool(rd.sensor_check_waveforms)
|
||||
if has_sc:
|
||||
# main lanes + a narrow sensor-check strip column, flush against the
|
||||
# main panel (BW shares the border — no gap), with the "0.0" baseline
|
||||
# labels moved to the right of the strip. Proportions match BW's
|
||||
# Event Report (main ~0.75 / strip ~0.10 of the panel width).
|
||||
inner = gridspec_cell.subgridspec(4, 2, width_ratios=[1.0, 0.13],
|
||||
wspace=0.0, hspace=0.0)
|
||||
else:
|
||||
inner = gridspec_cell.subgridspec(4, 1, hspace=0.0)
|
||||
sr = rd.sample_rate_sps or 1024
|
||||
# Convert ms-based time axis to seconds for the x-axis
|
||||
dt_s = (rd.dt_ms or (1000.0 / sr)) / 1000.0
|
||||
@@ -791,9 +877,12 @@ def _draw_waveform_subplot(fig, gridspec_cell, rd: ReportData) -> None:
|
||||
_geo_amax = _a
|
||||
geo_shared = max(_geo_amax * 1.10, GEO_FLOOR_INS)
|
||||
|
||||
main_axes = []
|
||||
sc_axes = []
|
||||
last_idx = len(order) - 1
|
||||
for i, ch in enumerate(order):
|
||||
ax = fig.add_subplot(inner[i])
|
||||
ax = fig.add_subplot(inner[i, 0] if has_sc else inner[i])
|
||||
main_axes.append(ax)
|
||||
values = rd.channels.get(ch) or []
|
||||
times = [t0_s + j * dt_s for j in range(len(values))]
|
||||
|
||||
@@ -811,7 +900,10 @@ def _draw_waveform_subplot(fig, gridspec_cell, rd: ReportData) -> None:
|
||||
# Channel label on the LEFT (matches BW)
|
||||
ax.set_ylabel(ch, fontsize=8, rotation=0, ha="right", va="center",
|
||||
color=_channel_axis_color(ch), weight="bold", labelpad=14)
|
||||
# "0.0" on the RIGHT (BW convention)
|
||||
# "0.0" baseline label on the RIGHT (BW convention). With the sensor-
|
||||
# check strip attached, it goes to the right of the STRIP (drawn below);
|
||||
# otherwise just outside the main lane.
|
||||
if not has_sc:
|
||||
ax.text(1.005, 0.5, "0.0", transform=ax.transAxes,
|
||||
fontsize=7, color="#555", va="center", ha="left")
|
||||
|
||||
@@ -828,12 +920,46 @@ def _draw_waveform_subplot(fig, gridspec_cell, rd: ReportData) -> None:
|
||||
else:
|
||||
ax.tick_params(axis="x", labelsize=7)
|
||||
ax.tick_params(axis="y", labelsize=6)
|
||||
# Stacked lanes touch, so the top/bottom y-tick labels of adjacent lanes
|
||||
# would overprint at the shared boundary. Prune the extreme ticks so
|
||||
# each boundary shows clean interior ticks (0.5 / 0.0 / -0.5) only.
|
||||
ax.yaxis.set_major_locator(MaxNLocator(nbins=4, prune="both"))
|
||||
|
||||
# Sensor self-check mini-plot in the right strip (aligned to this lane).
|
||||
if has_sc:
|
||||
scx = fig.add_subplot(inner[i, 1])
|
||||
sc_axes.append(scx)
|
||||
sc_vals = rd.sensor_check_waveforms.get(ch) or []
|
||||
if sc_vals:
|
||||
_col = _channel_axis_color(ch)
|
||||
# Faint zero baseline (BW draws the channel baseline through the
|
||||
# strip) — reference for the one-sided geophone ring-downs.
|
||||
scx.axhline(0.0, color=_col, linewidth=0.3, alpha=0.4)
|
||||
scx.plot(range(len(sc_vals)), sc_vals, color=_col, linewidth=0.5)
|
||||
# Fit the trace to the box (BW-style) rather than a symmetric
|
||||
# scale: the geo self-checks are one-sided dips, so a symmetric
|
||||
# scale would strand them in the bottom half with an empty top.
|
||||
_lo, _hi = min(sc_vals), max(sc_vals)
|
||||
_pad = 0.10 * ((_hi - _lo) or 1.0)
|
||||
scx.set_ylim(_lo - _pad, _hi + _pad)
|
||||
scx.set_xticks([]); scx.set_yticks([])
|
||||
for _s in scx.spines.values():
|
||||
_s.set_linewidth(0.4); _s.set_color("#999")
|
||||
# "0.0" baseline label to the RIGHT of the strip (BW convention)
|
||||
scx.text(1.10, 0.5, "0.0", transform=scx.transAxes,
|
||||
fontsize=7, color="#555", va="center", ha="left")
|
||||
|
||||
# Trigger triangle marker ▼ above the top channel at t=0
|
||||
top_ax = fig.axes[-4] # MicL is the first added in this gridspec
|
||||
top_ax = main_axes[0] # MicL
|
||||
top_ax.plot([0], [top_ax.get_ylim()[1]], marker="v", color="black",
|
||||
markersize=8, clip_on=False, zorder=10)
|
||||
|
||||
# "Sensor Check" caption under the strip (BW convention)
|
||||
if has_sc and sc_axes:
|
||||
pos = sc_axes[-1].get_position()
|
||||
fig.text((pos.x0 + pos.x1) / 2, pos.y0 - 0.012, "Sensor Check",
|
||||
fontsize=7, color="#555", ha="center", va="top")
|
||||
|
||||
# Compute scale-per-division for the footer (10 divs across the chart)
|
||||
# and find peak geo amplitude for the geo amp/div setting.
|
||||
total_s = times[-1] - times[0] if values else 0
|
||||
|
||||
@@ -662,6 +662,11 @@ class WaveformStore:
|
||||
ev.raw_samples = idf_samples
|
||||
n_samples = max((len(idf_samples.get(ch, [])) for ch in ("Tran", "Vert", "Long", "MicL")), default=0)
|
||||
ev.total_samples = ev.total_samples or n_samples
|
||||
# Sensor self-check traces from the IDFW fixed header (waveform
|
||||
# events only; {} on histograms / when absent). Carried on the
|
||||
# bridged Event so the .h5 writer persists them like series-3.
|
||||
from micromate.sensor_check import decode_idf_sensor_check
|
||||
ev.sensor_check = decode_idf_sensor_check(idf_bytes) or None
|
||||
|
||||
# For IDFH histograms there are no per-sample waveform arrays — the
|
||||
# device stores one peak ADC count per interval per channel. Synthesise
|
||||
|
||||
Binary file not shown.
Binary file not shown.
Binary file not shown.
Binary file not shown.
@@ -0,0 +1,71 @@
|
||||
"""The event .h5 carries the sensor self-check traces (schema v2).
|
||||
|
||||
The sensor check is decoded by the per-series decoder and attached to the
|
||||
standardized Event, so the .h5 writer persists it device-agnostically and SFM
|
||||
reads it back without knowing which instrument produced it. Old v1 files (no
|
||||
sensor_check group) must still read cleanly.
|
||||
"""
|
||||
import tempfile
|
||||
from pathlib import Path
|
||||
|
||||
import numpy as np
|
||||
|
||||
from minimateplus.models import Event
|
||||
from minimateplus.event_file_io import read_blastware_file
|
||||
from sfm import event_hdf5
|
||||
|
||||
S3_FIX = Path(__file__).parent / "fixtures" / "fft-oracle-2026-09-14" / "N844LQHB.ZT0W"
|
||||
|
||||
|
||||
def _write(ev, **kw):
|
||||
d = Path(tempfile.mkdtemp())
|
||||
p = d / "e.h5"
|
||||
event_hdf5.write_event_hdf5(p, ev, serial="BE12844", **kw)
|
||||
return p
|
||||
|
||||
|
||||
def test_sensor_check_roundtrips_through_hdf5():
|
||||
ev = Event(index=0)
|
||||
ev.raw_samples = {"Tran": [1, 2, -3], "Vert": [0, 1], "Long": [2], "MicL": [5, -5]}
|
||||
ev.sample_rate = 1024
|
||||
sc = {"Tran": [0, -990, -500, -100], "Vert": [0, -980, -480],
|
||||
"Long": [0, -986, -470], "MicL": [0, -1800, 1800, -1800]}
|
||||
ev.sensor_check = sc
|
||||
|
||||
r = event_hdf5.read_event_hdf5(_write(ev))
|
||||
assert r["schema_version"] == 2
|
||||
assert set(r["sensor_check"]) == {"Tran", "Vert", "Long", "MicL"}
|
||||
for ch, vals in sc.items():
|
||||
assert r["sensor_check"][ch].tolist() == vals
|
||||
|
||||
|
||||
def test_plot_json_carries_sensor_check():
|
||||
ev = Event(index=0)
|
||||
ev.raw_samples = {"Tran": [1, 2, 3]}
|
||||
ev.sample_rate = 1024
|
||||
ev.sensor_check = {"Tran": [0, -990, -500], "Vert": [0, -980],
|
||||
"Long": [0, -986]} # 3-channel: no MicL
|
||||
pj = event_hdf5.plot_json_from_hdf5(_write(ev))
|
||||
assert pj["sensor_check"] is not None
|
||||
assert "MicL" not in pj["sensor_check"]
|
||||
assert pj["sensor_check"]["Tran"] == [0, -990, -500]
|
||||
|
||||
|
||||
def test_event_without_sensor_check_still_reads_as_v2():
|
||||
ev = Event(index=0)
|
||||
ev.raw_samples = {"Tran": [1, 2, 3]}
|
||||
ev.sample_rate = 1024
|
||||
r = event_hdf5.read_event_hdf5(_write(ev))
|
||||
assert r["schema_version"] == 2
|
||||
assert r["sensor_check"] is None
|
||||
assert event_hdf5.plot_json_from_hdf5(_write(ev))["sensor_check"] is None
|
||||
|
||||
|
||||
def test_series3_decode_populates_event_sensor_check():
|
||||
# The real series-3 decoder attaches the traces to the Event, so the
|
||||
# ingest/backfill .h5 write picks them up with no extra plumbing.
|
||||
ev = read_blastware_file(S3_FIX)
|
||||
assert ev.sensor_check is not None
|
||||
assert set(ev.sensor_check) == {"Tran", "Vert", "Long", "MicL"}
|
||||
tran = np.asarray(ev.sensor_check["Tran"], dtype=float)
|
||||
assert tran.min() < -800 # the geophone ring-down deflection
|
||||
@@ -0,0 +1,67 @@
|
||||
"""Blastware sensor self-check waveform decode (minimateplus.sensor_check).
|
||||
|
||||
Reverse-engineered 2026-09-15 against 7 BE12844 (MiniMate Plus) oracle events.
|
||||
After the main waveform record-chain and the trailing metadata / per-channel
|
||||
calibration records, a series-3 binary carries four length-prefixed records
|
||||
tagged 0x3c-0x3f: the sensor self-check traces the unit records when it pulses
|
||||
each sensor before monitoring (Blastware draws these as the little waveforms in
|
||||
the "Sensor Check" strip on the right of the Event Report).
|
||||
|
||||
* 0x3c / 0x3d / 0x3e = Tran / Vert / Long geophone ring-downs.
|
||||
* 0x3f = MicL, a pulse train at the mic self-test frequency.
|
||||
|
||||
The self-check injects a fixed pulse, so the response is near-identical across
|
||||
events — asserted here as an invariant shape (damped one-sided ring-down for
|
||||
the geophones, a multi-pulse train for the mic).
|
||||
"""
|
||||
from pathlib import Path
|
||||
|
||||
import numpy as np
|
||||
|
||||
from minimateplus.sensor_check import decode_sensor_check
|
||||
|
||||
FIXDIR = Path(__file__).parent / "fixtures" / "fft-oracle-2026-09-14"
|
||||
EVENTS = sorted(p.name for p in FIXDIR.iterdir()) # 7 BE12844 event binaries
|
||||
|
||||
|
||||
def _decode(name):
|
||||
return decode_sensor_check((FIXDIR / name).read_bytes())
|
||||
|
||||
|
||||
def test_all_four_channels_present():
|
||||
for name in EVENTS:
|
||||
sc = _decode(name)
|
||||
assert set(sc) == {"Tran", "Vert", "Long", "MicL"}, name
|
||||
|
||||
|
||||
def test_geo_channels_are_damped_ringdowns():
|
||||
# Each geophone self-check is a large one-sided deflection (~-990 raw) that
|
||||
# rings back and damps toward a settled value well above the trough.
|
||||
for name in EVENTS:
|
||||
sc = _decode(name)
|
||||
for ch in ("Tran", "Vert", "Long"):
|
||||
tr = np.asarray(sc[ch], dtype=float)
|
||||
assert 240 <= len(tr) <= 260, f"{name}:{ch} n={len(tr)}"
|
||||
assert abs(tr[:3].mean()) < 50, f"{name}:{ch} starts off-baseline"
|
||||
assert tr.min() < -800, f"{name}:{ch} min {tr.min()}"
|
||||
assert tr.max() < 60, f"{name}:{ch} unexpected positive swing {tr.max()}"
|
||||
# damped: settles between the trough and zero, well above the trough
|
||||
assert tr.min() < tr[-1] < 0, f"{name}:{ch} end {tr[-1]} not between trough and 0"
|
||||
assert abs(tr[-1]) < 0.6 * abs(tr.min()), f"{name}:{ch} not damped, end {tr[-1]}"
|
||||
|
||||
|
||||
def test_mic_channel_is_a_pulse_train():
|
||||
for name in EVENTS:
|
||||
tr = np.asarray(_decode(name)["MicL"], dtype=float)
|
||||
assert 235 <= len(tr) <= 255, f"{name} mic n={len(tr)}"
|
||||
# larger dynamic range than the geo ring-down, and swings both ways
|
||||
assert tr.min() < -1500, f"{name} mic min {tr.min()}"
|
||||
assert tr.max() > 100, f"{name} mic max {tr.max()}"
|
||||
# multiple pulses: several deep local minima
|
||||
deep = (tr[1:-1] < tr[:-2]) & (tr[1:-1] < tr[2:]) & (tr[1:-1] < -800)
|
||||
assert int(deep.sum()) >= 4, f"{name} mic pulses {int(deep.sum())}"
|
||||
|
||||
|
||||
def test_returns_empty_when_no_sensor_check_block():
|
||||
assert decode_sensor_check(b"not a blastware file") == {}
|
||||
assert decode_sensor_check(b"") == {}
|
||||
@@ -0,0 +1,67 @@
|
||||
"""Series-4 (Thor / Micromate IDFW) sensor self-check waveform decode.
|
||||
|
||||
Reverse-engineered 2026-09-15 against 4 UM (Thor) oracle events. The IDFW
|
||||
binary carries the sensor self-check in its fixed-header region (before the
|
||||
waveform body) as up to four records tagged ``01 0e 3c/3d/3e/3f`` — the SAME
|
||||
channel ids as series-3 (Tran/Vert/Long/MicL). Unlike series-3's delta-coded
|
||||
trailing block, series-4 stores each trace as a raw int16-BE array after an
|
||||
18-byte record header whose sample count is a 2-byte field at offset +8.
|
||||
|
||||
Three-channel (mic-disabled) Thor units carry only 3c/3d/3e — no MicL record.
|
||||
|
||||
Validated by shape (geophone ring-down / mic pulse train) and cross-event
|
||||
consistency, since there's no Thor Event-Report strip to exact-match against.
|
||||
"""
|
||||
from pathlib import Path
|
||||
|
||||
import numpy as np
|
||||
|
||||
from micromate.sensor_check import decode_idf_sensor_check
|
||||
|
||||
FIXDIR = Path(__file__).parent / "fixtures" / "thor-idf-sc"
|
||||
EVENTS = sorted(p.name for p in FIXDIR.glob("*.IDFW"))
|
||||
|
||||
|
||||
def _decode(name):
|
||||
return decode_idf_sensor_check((FIXDIR / name).read_bytes())
|
||||
|
||||
|
||||
def test_geo_channels_present_and_ringdown_shaped():
|
||||
# Every IDFW event has the three geophone self-checks; each is a large
|
||||
# one-sided deflection (~15000 raw counts) that rings back — the geophone's
|
||||
# damped impulse response.
|
||||
for name in EVENTS:
|
||||
sc = _decode(name)
|
||||
for ch in ("Tran", "Vert", "Long"):
|
||||
assert ch in sc, f"{name} missing {ch}"
|
||||
tr = np.asarray(sc[ch], dtype=float)
|
||||
tr = tr - tr[:4].mean() # reference to the pre-trigger baseline
|
||||
assert 40 <= len(tr) <= 300, f"{name}:{ch} n={len(tr)}"
|
||||
assert tr.min() < -8000, f"{name}:{ch} min {tr.min()}"
|
||||
# deflects one way and rings back toward / past the baseline
|
||||
assert tr.max() < abs(tr.min()), f"{name}:{ch} not one-sided"
|
||||
|
||||
|
||||
def test_mic_present_only_on_four_channel_units():
|
||||
# UM11719 / UM12947 record a mic; UM13981 / UM20147 are 3-channel
|
||||
# (mic-disabled) units and carry no MicL self-check.
|
||||
got = {name: ("MicL" in _decode(name)) for name in EVENTS}
|
||||
assert any(got.values()), "expected at least one 4-channel unit"
|
||||
assert not all(got.values()), "expected at least one 3-channel unit"
|
||||
for name, has_mic in got.items():
|
||||
if has_mic:
|
||||
tr = np.asarray(_decode(name)["MicL"], dtype=float)
|
||||
tr = tr - tr[:4].mean()
|
||||
# mic self-check is a bipolar pulse train — swings both ways, wide range
|
||||
assert tr.max() > 5000 and tr.min() < -5000, f"{name} mic not bipolar"
|
||||
|
||||
|
||||
def test_channel_ids_and_order():
|
||||
# ids decode to the canonical channel names, geo always in Tran/Vert/Long order
|
||||
sc = _decode(EVENTS[0])
|
||||
assert [c for c in ("Tran", "Vert", "Long") if c in sc] == ["Tran", "Vert", "Long"]
|
||||
|
||||
|
||||
def test_returns_empty_on_non_idf_input():
|
||||
assert decode_idf_sensor_check(b"not an IDF file") == {}
|
||||
assert decode_idf_sensor_check(b"") == {}
|
||||
Reference in New Issue
Block a user