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Jyotisha/scripts/western_chart_engine.py
T
2026-07-16 20:20:10 +08:00

259 lines
9.8 KiB
Python

#!/usr/bin/env python3
"""Native, auditable tropical Western natal-chart calculation.
This module deliberately uses the project's existing Swiss Ephemeris binding
instead of bundling an AGPL Western astrology library. It is a calculation
layer only: transits, progressions, solar arcs, returns, and interpretation
remain separate evidence layers.
"""
from __future__ import annotations
import argparse
import json
from datetime import datetime, timedelta, timezone as fixed_timezone
from typing import Any
from zoneinfo import ZoneInfo
import swisseph as swe
try:
from western_evidence_packet import build_western_evidence_packet
except ImportError: # pragma: no cover - package import path
from scripts.western_evidence_packet import build_western_evidence_packet
_PLANETS = {
"sun": swe.SUN,
"moon": swe.MOON,
"mercury": swe.MERCURY,
"venus": swe.VENUS,
"mars": swe.MARS,
"jupiter": swe.JUPITER,
"saturn": swe.SATURN,
"uranus": swe.URANUS,
"neptune": swe.NEPTUNE,
"pluto": swe.PLUTO,
"true_node": swe.TRUE_NODE,
}
_SIGNS = (
"Aries", "Taurus", "Gemini", "Cancer", "Leo", "Virgo",
"Libra", "Scorpio", "Sagittarius", "Capricorn", "Aquarius", "Pisces",
)
_ELEMENTS = {
"Aries": "fire", "Leo": "fire", "Sagittarius": "fire",
"Taurus": "earth", "Virgo": "earth", "Capricorn": "earth",
"Gemini": "air", "Libra": "air", "Aquarius": "air",
"Cancer": "water", "Scorpio": "water", "Pisces": "water",
}
_MODES = {
"Aries": "cardinal", "Cancer": "cardinal", "Libra": "cardinal", "Capricorn": "cardinal",
"Taurus": "fixed", "Leo": "fixed", "Scorpio": "fixed", "Aquarius": "fixed",
"Gemini": "mutable", "Virgo": "mutable", "Sagittarius": "mutable", "Pisces": "mutable",
}
_RULERS = {
"Aries": "mars", "Taurus": "venus", "Gemini": "mercury", "Cancer": "moon",
"Leo": "sun", "Virgo": "mercury", "Libra": "venus", "Scorpio": "mars",
"Sagittarius": "jupiter", "Capricorn": "saturn", "Aquarius": "saturn", "Pisces": "jupiter",
}
_ASPECTS = {"conjunction": 0.0, "sextile": 60.0, "square": 90.0, "trine": 120.0, "opposition": 180.0}
_ORB = {"sun": 8.0, "moon": 8.0, "ascendant": 5.0, "mc": 5.0}
def _longitude(value: float) -> float:
return float(value) % 360.0
def _point(longitude: float, *, house: int | None = None, speed: float | None = None) -> dict[str, Any]:
longitude = _longitude(longitude)
point = {
"longitude": round(longitude, 6),
"sign": _SIGNS[int(longitude // 30)],
"degree_in_sign": round(longitude % 30, 6),
}
if house is not None:
point["house"] = house
if speed is not None:
point["speed_longitude"] = round(float(speed), 8)
point["retrograde"] = bool(speed < 0)
return point
def _house_for_longitude(longitude: float, cusps: list[float]) -> int:
"""Return Placidus house by testing each cusp-to-next-cusp circular arc."""
longitude = _longitude(longitude)
for index, cusp in enumerate(cusps):
start = _longitude(cusp)
end = _longitude(cusps[(index + 1) % 12])
span = (end - start) % 360.0
if (longitude - start) % 360.0 < span:
return index + 1
raise RuntimeError("Unable to assign longitude to a house") # pragma: no cover
def _orb_for(left: str, right: str) -> float:
return min(_ORB.get(left, 6.0), _ORB.get(right, 6.0))
def _aspects(points: dict[str, dict[str, Any]]) -> list[dict[str, Any]]:
names = list(points)
found: list[dict[str, Any]] = []
for index, left in enumerate(names):
for right in names[index + 1:]:
separation = abs(points[left]["longitude"] - points[right]["longitude"])
separation = min(separation, 360.0 - separation)
allowed_orb = _orb_for(left, right)
for aspect, exact in _ASPECTS.items():
orb = abs(separation - exact)
if orb <= allowed_orb:
found.append({
"left": left,
"right": right,
"aspect": aspect,
"exact_degrees": exact,
"separation": round(separation, 6),
"orb": round(orb, 6),
"allowed_orb": allowed_orb,
})
return sorted(found, key=lambda row: (row["orb"], row["left"], row["right"]))
def _distribution(planets: dict[str, dict[str, Any]]) -> dict[str, dict[str, int]]:
elements = {name: 0 for name in ("fire", "earth", "air", "water")}
modes = {name: 0 for name in ("cardinal", "fixed", "mutable")}
for planet in planets.values():
elements[_ELEMENTS[planet["sign"]]] += 1
modes[_MODES[planet["sign"]]] += 1
return {"elements": elements, "modes": modes}
def _ruler_chains(cusps: list[float], planets: dict[str, dict[str, Any]]) -> dict[str, list[str]]:
chains: dict[str, list[str]] = {}
for house, cusp in enumerate(cusps, start=1):
sign = _SIGNS[int(_longitude(cusp) // 30)]
chain: list[str] = []
current = _RULERS[sign]
for _ in range(12):
if current in chain:
break
chain.append(current)
current = _RULERS[planets[current]["sign"]]
chains[str(house)] = chain
return chains
def _birth_zone(value: str | float | int):
if isinstance(value, str):
return ZoneInfo(value), value
offset = float(value)
return fixed_timezone(timedelta(hours=offset)), f"UTC{offset:+g}"
def build_tropical_natal_chart(
*,
year: int,
month: int,
day: int,
hour: int,
minute: int,
latitude: float,
longitude: float,
timezone: str | float | int,
second: int = 0,
house_system: str = "P",
) -> dict[str, Any]:
"""Calculate a tropical natal chart from local birth data using Swiss Ephemeris."""
if len(house_system) != 1:
raise ValueError("house_system must be a single Swiss Ephemeris house-system letter")
zone, timezone_label = _birth_zone(timezone)
local = datetime(year, month, day, hour, minute, second, tzinfo=zone)
utc = local.astimezone(ZoneInfo("UTC"))
jd_ut = swe.julday(utc.year, utc.month, utc.day, utc.hour + utc.minute / 60 + utc.second / 3600)
flags = swe.FLG_SWIEPH | swe.FLG_SPEED
cusps_raw, ascmc = swe.houses_ex(jd_ut, float(latitude), float(longitude), house_system.encode("ascii"), 0)
cusps = [_longitude(cusp) for cusp in cusps_raw]
planets: dict[str, dict[str, Any]] = {}
for name, planet_id in _PLANETS.items():
values, _ = swe.calc_ut(jd_ut, planet_id, flags)
position = _point(values[0], house=_house_for_longitude(values[0], cusps), speed=values[3])
planets[name] = position
angles = {
"ascendant": _point(ascmc[0]),
"mc": _point(ascmc[1]),
"descendant": _point(ascmc[0] + 180.0),
"ic": _point(ascmc[1] + 180.0),
}
aspect_points = {**planets, "ascendant": angles["ascendant"], "mc": angles["mc"]}
natal = {
"ascendant": angles["ascendant"],
"mc": angles["mc"],
"angles": angles,
"planets": planets,
"houses": [{"house": index + 1, "cusp": _point(cusp)} for index, cusp in enumerate(cusps)],
"aspects": _aspects(aspect_points),
"distribution": _distribution(planets),
"house_ruler_chains": _ruler_chains(cusps, planets),
}
return {
"source_engine": "pyswisseph_tropical",
"engine_version": getattr(swe, "version", "unknown"),
"zodiac": "tropical",
"house_system": house_system.upper(),
"calculation_contract": {
"birth_timezone": timezone_label,
"local_birth_time": local.isoformat(),
"utc_birth_time": utc.isoformat(),
"julian_day_ut": round(jd_ut, 8),
"latitude": float(latitude),
"longitude": float(longitude),
"ephemeris": "Swiss Ephemeris via pyswisseph",
},
"natal": natal,
"boundary": "Natal tropical calculation only; it does not calculate transits, progressions, solar arcs, returns, or interpretation.",
}
def build_tropical_western_evidence_packet(*, route_packet: dict[str, Any], **birth: Any) -> dict[str, Any]:
"""Wrap direct natal calculation in the existing cross-system packet contract."""
chart = build_tropical_natal_chart(**birth)
packet = build_western_evidence_packet(
route_packet=route_packet,
natal=chart["natal"],
timing_techniques={},
signals=[],
)
packet.update({
"source_engine": chart["source_engine"],
"calculation": {
"status": "used",
"source_engine": chart["source_engine"],
"zodiac": chart["zodiac"],
"house_system": chart["house_system"],
"contract": chart["calculation_contract"],
},
"native_chart": chart,
"boundary": chart["boundary"],
})
return packet
def main() -> int:
parser = argparse.ArgumentParser(description="Calculate an auditable tropical Western natal chart.")
for name, kind in (("year", int), ("month", int), ("day", int), ("hour", int), ("minute", int)):
parser.add_argument(f"--{name}", required=True, type=kind)
parser.add_argument("--lat", required=True, type=float)
parser.add_argument("--lon", required=True, type=float)
parser.add_argument("--timezone", required=True)
parser.add_argument("--second", type=int, default=0)
parser.add_argument("--house-system", default="P")
args = parser.parse_args()
print(json.dumps(build_tropical_natal_chart(
year=args.year, month=args.month, day=args.day, hour=args.hour, minute=args.minute, second=args.second,
latitude=args.lat, longitude=args.lon, timezone=args.timezone, house_system=args.house_system,
), ensure_ascii=False, indent=2))
return 0
if __name__ == "__main__": # pragma: no cover
raise SystemExit(main())