pleiades-eclipse
Global geocentric and per-observer local solar and lunar eclipse computation
for the pleiades astrology workspace, derived from validated Sun and Moon
positions.
What it provides
For any time in the 1900-01-01 … 2100-01-01 window (the packaged ephemeris
boundary), pleiades-eclipse returns the solar and lunar eclipses that occur,
each carrying:
- Eclipse type — solar (total / annular / hybrid / partial) or lunar (penumbral / partial / total)
- Instant of greatest eclipse — the moment to cast a chart on
- Magnitude — fraction of the disk covered (geocentric)
- Gamma — least distance of the shadow axis from Earth's centre, in Earth radii
- Saros series number
- Eclipsed longitude — apparent tropical ecliptic longitude of date at greatest eclipse (no ayanamsa; sidereal conversion is the façade layer's job)
- Greatest-eclipse location (solar only) — geographic sub-shadow point; lunar eclipses have no location
Local (per-observer) circumstances — via EclipseEngine::local_circumstances
and next_local_eclipse/previous_local_eclipse (Swiss-Ephemeris
swe_sol_eclipse_when_loc/swe_lun_eclipse_when_loc analogues), for both
solar and lunar eclipses, given a geographic observer and atmosphere:
- Contact times — per-observer first/second/third/fourth contact (solar)
or penumbral/umbral ingress-egress (lunar), as
LocalContactvalues - Magnitude / obscuration — observer-local eclipse magnitude, and (solar) obscured area fraction
- Azimuth / altitude — on-sky position of the eclipsed body at greatest local eclipse
- Local visibility — whether the eclipse is visible above the observer's horizon (with refraction) at all
next_local_eclipse/previous_local_eclipse reuse the existing global
next_eclipse/previous_eclipse walk, filtering to the first eclipse whose
local circumstances are computable for the given observer — no new external
dependency was introduced.
Window and data-bound
Coverage is strictly 1900-01-01 through 2100-01-01 (JD 2 415 020.5 … JD 2 488 069.5, TDB), bounded by the packaged Sun/Moon ephemeris. Four NASA-canon eclipses falling in mid/late 2100 are excluded as uncomputable with the packaged data.
Validation
The fail-closed validate-eclipses gate (in pleiades-validate) recomputes
every in-window eclipse from NASA's Five Millennium Canon of Solar/Lunar
Eclipses (Espenak/Meeus) and enforces:
| Metric | Tolerance |
|---|---|
| Greatest-eclipse time | ≤ 60 s |
| Magnitude | ≤ 0.01 |
| Eclipse type | exact match |
| Saros series | exact match |
| Eclipsed longitude | ≤ 1.0″ |
Approximately 908 eclipses pass all tolerances. One documented knife-edge eclipse (1948-05-09, Saros 137, annular vs hybrid at magnitude ≈ 1.0) is allowlisted for the exact-type check only; its time, magnitude, Saros, and longitude are still enforced. The eclipsed-longitude reference is computed independently (NASA canon + Skyfield/DE440), so the gate genuinely validates accuracy.
The fail-closed validate-eclipses-local gate (CLI aliases eclipses-local-gate,
eclipse-local) recomputes local circumstances against a committed
Swiss-Ephemeris reference corpus (29 solar rows + 20 lunar rows) and enforces
measured, data-driven ceilings (~1.4x the observed maxima):
| Metric | Ceiling | Measured max |
|---|---|---|
| Solar contact/greatest-eclipse instant (well-conditioned) | ≤ 23.0 s | 16.1 s |
| Solar contact/greatest-eclipse instant (grazing/central-limit) | ≤ 95.0 s | 65.0 s |
| Lunar contact instant | ≤ 7.0 s | 5.0 s |
| Solar magnitude/obscuration | ≤ 0.002 | ~1.1e-3 |
| Lunar magnitude | ≤ 0.001 | ~7.1e-4 |
| On-sky azimuth | ≤ 130.0″ | 91.0″ |
| Apparent altitude | ≤ 120.0″ | 81.0″ |
This is arcsecond-class parity on azimuth/altitude, not a claim of sub-arcsecond parity, and second-class parity on contact times, widening at grazing/central-limit geometry where the contact-time derivative is ill-conditioned.
Quick start
use packaged_backend;
use ;
use ;
let engine = new;
let after = new;
let next = engine.next_eclipse.unwrap;
assert!;