Gaia DR3 gives positions for J2016.0, HYG for 2000.0, and the merge matched
them on the sky to one arcsecond without propagating any proper motion.
Sixteen years of motion is 62" for Proxima and 166" for Barnard's Star, so
every star faster than ~62 mas/yr — most of the nearest ones — was kept twice,
some 23 000 in all. The slow ones were matched, and lost: the merge kept
Gaia's row whole, so 102 proper names, 1 336 Bayer/Flamsteed names and
32 000 spectral types became "Gaia DR3 <id>" and "Unknown", and 92 named
exoplanet hosts handed their planets to their anonymous twin.
Gaia is now asked for its proper motions and carried back to J2000 before it
leaves the fetcher. HYG is placed from its own x/y/z columns, which are right
where its `ra` is not: that column was carried from the Hipparcos epoch
without the cos δ its motion needs, 17.9" off for Proxima. A match combines
the two entries — Gaia's position, HYG's name, type, magnitude, colour and id
— instead of choosing one. The tolerance is 15" with a five-magnitude guard,
both set by measurement: 55 457 pairs sit under 1" once the epochs agree, the
Gliese-only entries up to 12" (Ross 248), shifting every entry a quarter of
a degree finds 16 chance neighbours at 15", and the guard keeps Sirius out
of Sirius B's entry. Entries of one source are never merged with each other:
the 1 411 Gaia doubles resolved under 1" are two stars, not one.
Regenerated: 425 071 stars (was 447 410), 56 082 of them Gaia positions
carrying HYG identities; no HYG id or name lost; the sixteen stars nearest
the Sun carry no survey designation; 196 residual doubles, all components
17" or more from their counterpart. Five planets of four bright giants
(7 CMa, HD 81688, omi UMa, xi Aql) lose their host link: their Gaia distance
sits 0.7–1.1 pc from the archive's Hipparcos-based one, past the 0.5 pc the
host match allows. Matching hosts on the sky rather than in space, as the
merge does, is the follow-up.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01QL6F9Bgfh8SgAiAAcPB9Hw
The app's two sources disagree about which frame they are in, and nothing
reconciled them. HYG star positions are equatorial J2000 — that is what
raDecDistanceToXyz produces and what the galaxy view renders directly. Orbital
elements come from JPL Horizons, whose default reference plane for element
output is the ecliptic, and the ETL never overrides it. The two are tilted 23.4
degrees apart, so the orbits sat that far off the sky they are drawn against.
Confirmed rather than assumed, from both ends: the Horizons request in
lib/horizons.ts sets no REF_PLANE, and the resulting solar-system inclinations
are 0 to 17 degrees with Earth exactly 0.00 — which is only true of the ecliptic,
since Earth's orbit defines it.
eclipticToEquatorial now rotates orbit positions into the scene frame, so a
direction means the same thing in the galaxy view and the system view. The
rotation is about the vernal-equinox axis, which both frames share.
That exposed a presentation problem the old code had been hiding. The renderer
mapped the propagator's z straight onto the scene's vertical, which silently
redefined the frame but did make systems render flat. In a properly equatorial
scene, orbital planes lie 23.4 degrees off the scene's own axes, so a system
would be presented edge-on. Rather than rotate the world back into a comfortable
pose — which would only put the orbits at odds with the sky again — the camera
now settles relative to the orbital plane: a three-quarter view about 37 degrees
off the ecliptic normal. The arrival still begins along the approach direction
and swings round as it settles, so the transition stays continuous, and the
framing is now the same every time rather than inherited from wherever the
camera happened to be.
Tests: 247 passing, up from 237. The frame tests are the discriminating kind —
Earth's orbit must lie perpendicular to the ecliptic pole rather than to the
scene's vertical, and must reach 23.4 degrees of declination a quarter orbit on,
where it used to read zero. Verified in a browser against Sol and Gl 357.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01WaySiNst4HhDXBHnMy8p5G
The design doc scopes deep-sky objects as a galaxy-view backdrop and lists
fetchDeepSky.ts, deepsky.json and deepsky.model.ts, but none of it existed —
it was the only part of the plan with no implementation behind it.
ETL: fetchDeepSky.ts pulls the OpenNGC catalog, classifies each object as a
galaxy/nebula/cluster, and keeps the ~460 worth drawing (everything Messier,
everything with a common name, and anything brighter than magnitude 9) out of
~12,000 mostly-anonymous rows. build.ts runs it and validates the output.
Distances are the hard part: OpenNGC has no distance column, and both fallbacks
fail for the best-known objects. M31, M33 and M42 are Local Group members whose
redshift is negative or absent, and a galaxy's catalog parallax comes from a
cross-matched foreground star — 6 mas for M31 would put a 780 kpc galaxy at
167 pc. So records store a unit direction on the celestial sphere rather than a
position (the line of sight is always known precisely, and the objects are drawn
on a fixed backdrop shell where true distance is unusable anyway), and distance
is optional metadata carrying its own provenance. Parallax is trusted only for
galactic objects, redshift only above z=0.003 where expansion outweighs peculiar
velocity. 330 of 463 get a distance; the rest honestly report none.
Rendering: DeepSkyRenderer paints the objects as soft additive billboards on a
2500 pc shell — clear of the 50 pc star field, beyond the camera's 2000 pc orbit
limit, and inside its 5000 pc far plane. Size comes from real angular extent, so
Andromeda is six times wider than the full Moon, clamped at both ends. Sprites
rather than points because the WebGPU backend caps point primitives at one pixel;
materials are shared per kind and brightness band, so 460 objects cost nine of
them. The brightest dozen get permanent labels, which needed the label overlay to
accept string ids alongside numeric star ids. The backdrop is decorative, so a
failure to load its dataset is logged and the star field comes up regardless.
Also documents the app in the README, which until now covered only the plugin
marketplace.
Tests: 112 passing, up from 54. Build, both typechecks and the Playwright suite
are green.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01WaySiNst4HhDXBHnMy8p5G
Add star-map Angular app, ETL pipeline, and caveman plugin
Angular 3D star map (galaxy/system/body views, Three.js rendering,
navigation store) plus the NASA ETL tooling that builds the star,
exoplanet and solar-system datasets, Playwright e2e suite, and the
cs:caveman Claude Code plugin (command, agent, skill).
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
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