astrophotography/pipeline
laurence 2f268c7ca9 Add blind plate solving as the fallback when the seeded solver cannot match
The seeded solver starts from the header's pointing, scale and roll
angle and matches against Gaia. That works whenever the image and the
catalogue hold recognisably the same stars, and fails when they do not: a
single 60 second narrowband frame over a four degree field records a
sparse, shallow population that overlaps poorly with any magnitude slice
of Gaia, and no amount of window sliding fixes a population mismatch.

A blind solver does not care about any of that. It builds geometric
hashes from the image's own stars and looks them up in pre-built indexes,
so it needs no pointing, no scale and no orientation - only pixels.
blind.py drives nova.astrometry.net through astroquery, passing the plate
scale as a hint where one is known, which turns a search over every
possible scale into a search over one.

Two properties worth stating plainly. It needs a free API key, and
without one it says so clearly and the pipeline continues unsolved rather
than failing. And it uploads the image to a third-party service, which is
fine for these targets but is a fact worth knowing before pointing it at
something unpublished.

The result is verified rather than trusted. Whatever the service returns
is matched back against Gaia locally and put through the same gate as the
seeded solver - 40 stars and 1.5 px - so a solution has to be good, not
merely returned. A wrong WCS remains worse than no WCS whoever produced
it.
2026-07-21 22:47:29 +01:00
..
analyse.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
annotate.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
astrometry.py Solve by pointing where the header allows it, and refuse doubtful solutions 2026-07-21 22:41:36 +01:00
blind.py Add blind plate solving as the fallback when the seeded solver cannot match 2026-07-21 22:47:29 +01:00
closeup.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
colour.py Produce the four deliverable images and the science outputs for every session 2026-07-21 22:18:35 +01:00
compose.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
depth.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
enhance.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
final.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
finals.py Produce the four deliverable images and the science outputs for every session 2026-07-21 22:18:35 +01:00
gaia_colours.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-bwtrial.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-classify.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-complete-inner.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-complete.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-detect.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-fetch-vizier.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-gaia-astrom2.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-plots.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
gc-validate.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
hdr.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
layout.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
measure.py Solve by pointing where the header allows it, and refuse doubtful solutions 2026-07-21 22:41:36 +01:00
mo_cavs.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_check.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_common.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_detect.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_fig_moving.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_fig_transient.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_finalise.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_gccheck.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_link.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_mpc.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_sensitivity.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_shiftstack.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_transient.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
mo_vet.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
original.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
README.md Make the merged repository coherent: README, state, and internal links 2026-07-21 17:16:20 +01:00
register.py Add the measure and register stages, generic across sessions 2026-07-21 19:39:30 +01:00
rename.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
report.py Add the report generator and the push-button entry point 2026-07-21 21:40:50 +01:00
restructure.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
run.py Add blind plate solving as the fallback when the seeded solver cannot match 2026-07-21 22:47:29 +01:00
sb_common.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_dust.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_iso.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_limits.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_model.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_prep.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_profile.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_render_tail.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
sb_residual.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
science.py Produce the four deliverable images and the science outputs for every session 2026-07-21 22:18:35 +01:00
session.py Add session discovery and ingest, driven by headers not filenames 2026-07-21 17:28:26 +01:00
solve.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
stack.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
starless.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
subdir_readmes.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
triptych.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
unzip.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00
verify_core.py Move the processing code under pipeline/ 2026-07-21 17:13:54 +01:00

pipeline

Processing and analysis code for remote-telescope imaging sessions, starting with iTelescope data from the itelescope drain campaign.

The code lives here. The data does not - image sessions stay on disk (or wherever they are archived) and are addressed by an environment variable, so a session directory contains only pixels, results and a description of what was done to them.

What is here now

pipeline/ - the 50 scripts that processed the NGC 5128 session of 2026-07-21, exactly as they were run, plus the shared layout.py that tells them where files live. This is a working record rather than a finished product: the scripts were written in sequence as the work went along, several of them by parallel agents, and they show it. They are kept because they are the honest provenance of a set of published results, and because the productionised pipeline should be able to reproduce those results exactly.

pipeline/restructure.py - reorganises a flat session directory into the named layout below. Idempotent, dry run by default.

Pointing the scripts at a session

set ASTRO_SESSION=D:\astro\NGC5128\20260721      # Windows
export ASTRO_SESSION=/data/astro/NGC5128/20260721 # POSIX
python pipeline/layout.py                  # prints the resolved layout

layout.py maps a filename to its subdirectory, so a script asks for master-Red.fit or _stars.npz and gets the right path without knowing the directory structure:

Directory Holds
raw/ exactly what the telescope delivered: archives and their preview jpegs
calibrated/ uncompressed calibrated subs
stacks/masters/ per-filter registered, plate-solved masters
stacks/original/ alignment-only baseline stacks, no other processing
final/ the deliverable renderings
renderings/ other finished images
science/figures/ analysis plots
science/catalogues/ measured tables (CSV)
science/data/ models, masks, derived quantities
science/notes/ analysis write-ups
intermediates/ caches a re-run can regenerate

Every session directory also carries its own METHODS.md describing what was done to that data and what was found - written for a reader who was not there.

Running order

The scripts are named for their stage and run in this order:

unzip.py -> analyse.py -> stack.py -> solve.py -> depth.py
         -> compose.py -> hdr.py / enhance.py / starless.py / annotate.py
         -> final.py -> closeup.py -> triptych.py

The analysis families are independent of each other and of the renderings: gc-* (globular clusters), sb_* (surface photometry), mo_* (moving objects and transients).

Requirements

Python 3.12 with numpy, scipy, astropy, scikit-image, sep, astroalign, photutils, astroquery, matplotlib, tifffile, Pillow.

Where this is going

The next piece of work is a scheduler-driven pipeline: a staged CLI (ingest -> calibrate -> measure -> register -> stack -> solve -> compose -> analyse) with each stage resumable, packaged as an Apptainer image and driven by Slurm array jobs. Targets beyond mono LRGB: narrowband palettes, one-shot colour with debayering, other observatories' header conventions, and full calibration from bias/dark/flat for sources that do not pre-calibrate.

Three findings from the first session are requirements for that build, not optional extras:

  1. Vet moving-object candidates in detector coordinates. Registration holds the sky still, so it drags detector-fixed defects across the frame on perfectly straight, constant-rate tracks. Hot pixels are better-behaved asteroids than real asteroids. This one cut took 141 confident spurious detections to zero.
  2. Carry r50/psf through to any catalogue cross-match. Comparing an aperture magnitude of a resolved source against a point-source catalogue like Gaia is meaningless, and looks exactly like a 2.8 magnitude outburst.
  3. Never fit a sky background to a field the target fills. A plane fitted around a large galaxy absorbs its halo - measured at -17.9 ADU/px here. Fit the background and a source model together.