Compare commits
8 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| b013831492 | |||
| d14a77360a | |||
| a8c3072e62 | |||
| 93932246f3 | |||
| 8d579de34a | |||
| db3d1e5117 | |||
| 4a86d34f5a | |||
| fb317172ff |
@@ -29,8 +29,14 @@ _PLANETS = {
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"Sun": swe.SUN, "Moon": swe.MOON, "Mercury": swe.MERCURY, "Venus": swe.VENUS,
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"Mars": swe.MARS, "Jupiter": swe.JUPITER, "Saturn": swe.SATURN,
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"Uranus": swe.URANUS, "Neptune": swe.NEPTUNE, "Pluto": swe.PLUTO,
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# punkty wirtualne — mean, jak w silniku własnym (parzystość LOG-28)
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"North Node": swe.MEAN_NODE, "Lilith": swe.MEAN_APOG,
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# "South Node" obsługiwany pochodnie w /positions: NN + 180°
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}
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DEFAULT_OBJECTS = list(_PLANETS)
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DEFAULT_OBJECTS = [
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"Sun", "Moon", "Mercury", "Venus", "Mars", "Jupiter", "Saturn",
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"Uranus", "Neptune", "Pluto", "North Node", "South Node", "Lilith",
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]
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class PositionsRequest(BaseModel):
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@@ -48,8 +54,11 @@ def positions(req: PositionsRequest) -> dict:
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rows = []
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for name in (req.objects or DEFAULT_OBJECTS):
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xx, _retflag = swe.calc_ut(jd, _PLANETS[name], _FLAGS)
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lookup = "North Node" if name == "South Node" else name
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xx, _retflag = swe.calc_ut(jd, _PLANETS[lookup], _FLAGS)
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lon, lat, _dist, lon_speed = xx[0], xx[1], xx[2], xx[3]
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if name == "South Node":
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lon, lat = lon + 180.0, -lat
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rows.append({
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"name": name,
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"longitude": lon % 360.0,
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@@ -6,8 +6,10 @@ i nie w bazie.
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## API
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- `POST /api/query` → `QueryRequest` → `QueryResponse`
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- `POST /chart/positions` → `{when_utc, lat, lon, house_system?}` → pełny horoskop: pozycje (LOG-01) + osie i domy (LOG-05) + aspekty główne (LOG-06). `house_system`: `whole_sign` (dom.) / `equal` / `porphyry`.
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- `POST /chart/positions` → `{when_utc, lat, lon, house_system?}` → pełny horoskop: pozycje (LOG-01) + osie i domy (LOG-05) + aspekty główne z applying/separating (LOG-06) + opcjonalnie stacje planet (`stations:true`, LOG-03). Obiekty: 10 planet + mean NN/SN/Lilith (LOG-02). `house_system`: `whole_sign` (dom.) / `equal` / `porphyry`.
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- `POST /chart/report` → `{when_utc, lat, lon, limit?}` → wynik obliczeń wyszukany w bazie: fasety sygnifikatorów **w znaku / w domu / w aspekcie**, z rozwinięciem skrótów, odsiewaniem duplikatów (ten sam sygnifikator i opis), rankingiem siły (LOG-21) oraz opcją group (grupowanie identycznych opisów)
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- `POST /chart/profections` → `{when_utc, lat, lon, start_age?, count?}` → profekcje roczne: wiek, profektowany Asc, Władca Roku (+MC/Su/Mo) (LOG-10)
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- `POST /chart/return` → `{when_utc, lat, lon, kind, around?}` → Solar/Lunar Return: moment powrotu + pełny horoskop na ten moment (LOG-12)
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- `POST /chart/compare` → jak wyżej → raport różnic dwóch silników (LOG-26; wymaga silnika B)
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- `GET /health` (sprawdza też warstwę bazodanową)
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@@ -34,10 +34,29 @@ def separation(a: float, b: float) -> float:
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return min(d, 360.0 - d)
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def _is_applying(la: float, lb: float, sa: float, sb: float, angle: float, dt: float = 0.01) -> bool | None:
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"""Czy aspekt aplikuje (dokładność 0° dopiero nastąpi)?
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Porównujemy odchyłkę od dokładnego kąta teraz i po małym kroku czasu
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(pozycje przesunięte o prędkość·dt). Malejąca odchyłka = applying.
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dt celowo małe (0,01 doby), by szybki Księżyc nie „przeskoczył" dokładności.
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Zwraca None, gdy brak prędkości (nie da się rozstrzygnąć).
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"""
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if sa is None or sb is None:
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return None
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dev_now = abs(separation(la, lb) - angle)
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dev_next = abs(separation(la + sa * dt, lb + sb * dt) - angle)
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return dev_next < dev_now
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def find_aspects(
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positions: list[dict], orb: float = DEFAULT_ORB, luminary_bonus: float = LUMINARY_BONUS
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) -> list[dict]:
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"""positions: dicty z 'name' i 'decimal' (długość). Zwraca listę aspektów."""
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"""positions: dicty z 'name', 'decimal' (długość) i opcjonalnie 'speed' (°/dobę).
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Zwraca listę aspektów głównych; gdy znane są prędkości, każdy aspekt ma
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applying (bool) i skrót 'as': 'A'/'S' (aplikacyjny/separacyjny).
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"""
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out: list[dict] = []
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n = len(positions)
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for i in range(n):
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@@ -51,9 +70,16 @@ def find_aspects(
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for asp, angle in MAJOR.items():
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dev = abs(sep - angle)
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if dev <= allowed:
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out.append({
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applying = _is_applying(
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float(la), float(lb), a.get("speed"), b.get("speed"), angle
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)
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row = {
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"obj1": a["name"], "obj2": b["name"],
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"aspect": asp, "orb": round(dev, 2), "allowed": round(allowed, 2),
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})
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}
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if applying is not None:
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row["applying"] = applying
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row["as"] = "A" if applying else "S"
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out.append(row)
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break # jedna para = jeden aspekt
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return out
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@@ -13,10 +13,12 @@ from typing import Any
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from app.engine import formats
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# kanoniczny zestaw i kolejność obiektów (LOG-02: światła + 7 klasycznych + 3 nowożytne)
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# kanoniczny zestaw i kolejność obiektów (LOG-02: światła + 7 klasycznych +
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# 3 nowożytne + punkty wirtualne: węzły mean i mean Lilith)
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DEFAULT_OBJECTS = [
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"Sun", "Moon", "Mercury", "Venus", "Mars",
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"Jupiter", "Saturn", "Uranus", "Neptune", "Pluto",
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"North Node", "South Node", "Lilith",
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]
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@@ -0,0 +1,43 @@
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"""Punkty wirtualne liczone analitycznie (LOG-02): mean Node i mean Lilith.
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Wzory Meeusa (Astronomical Algorithms) w stuleciach juliańskich od J2000 (TT):
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- Ω — średni węzeł wstępujący orbity Księżyca (mean ascending node). Porusza się
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zawsze wstecz (~−0,053°/dobę) — stąd węzły są wiecznie Rx.
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- średnie perygeum orbity Księżyca; mean Lilith (Black Moon) = średnie APOGEUM
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= perygeum + 180° (~+0,111°/dobę).
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Wersje TRUE (oskulacyjne) — osobny, późniejszy krok (notatki: mean to
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historyczny standard i domyślne ustawienie programów).
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"""
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from __future__ import annotations
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from app.engine.formats import norm360
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_DAYS_PER_CENTURY = 36525.0
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def _t(tt_jd: float) -> float:
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return (tt_jd - 2451545.0) / _DAYS_PER_CENTURY
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def mean_lunar_node(tt_jd: float) -> float:
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"""Długość ekliptyczna średniego Węzła Północnego (Ω) [°]."""
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t = _t(tt_jd)
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omega = (125.0445479 - 1934.1362891 * t + 0.0020754 * t * t
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+ t ** 3 / 467441.0 - t ** 4 / 60616000.0)
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return norm360(omega)
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def mean_lilith(tt_jd: float) -> float:
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"""Długość ekliptyczna mean Lilith (średnie apogeum Księżyca) [°]."""
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t = _t(tt_jd)
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perigee = (83.3532465 + 4069.0137287 * t - 0.0103200 * t * t
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- t ** 3 / 80053.0 + t ** 4 / 18999000.0)
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return norm360(perigee + 180.0)
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def point_speed(fn, tt_jd: float, dt_days: float = 0.1) -> float:
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"""Prędkość [°/dobę] punktu analitycznego — różnica po małym kroku."""
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a = fn(tt_jd)
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b = fn(tt_jd + dt_days)
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return (((b - a + 180.0) % 360.0) - 180.0) / dt_days
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@@ -0,0 +1,70 @@
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"""Profekcje roczne (LOG-10) — hellenistyczna technika time-lord.
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Zasada (Whole Sign): co każde urodziny profektowany Ascendent przeskakuje o jeden
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znak do przodu (wiek mod 12). Władca Roku (Lord of Year) = władca domicylowy
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znaku profektowanego Asc. Profektować można każdy punkt natalny (MC, Słońce…) —
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wszystkie przeskakują o tyle samo znaków.
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Referencja: tabela profekcji w notes3 (astro-seek) dla horoskopu 30.04.1984
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(wiek 0: Can/Moon, 1: Leo/Sun, …, 42: Cap/Saturn).
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"""
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from __future__ import annotations
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from datetime import datetime
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from app.engine.formats import SIGNS, sign_index
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# władcy domicylowi (tradycyjni) — zgodni z tabelą referencyjną notes3
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DOMICILE_RULERS = {
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"Aries": "Mars", "Taurus": "Venus", "Gemini": "Mercury", "Cancer": "Moon",
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"Leo": "Sun", "Virgo": "Mercury", "Libra": "Venus", "Scorpio": "Mars",
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"Sagittarius": "Jupiter", "Capricorn": "Saturn", "Aquarius": "Saturn",
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"Pisces": "Jupiter",
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}
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def age_at(birth_utc: datetime, when_utc: datetime) -> int:
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"""Pełne lata między urodzeniem a danym momentem (wiek profekcyjny)."""
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age = when_utc.year - birth_utc.year
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if (when_utc.month, when_utc.day) < (birth_utc.month, birth_utc.day):
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age -= 1
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return max(age, 0)
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def profected_sign(natal_lon: float, age: int) -> str:
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"""Znak, do którego profektował punkt natalny po `age` latach."""
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return SIGNS[(sign_index(natal_lon) + age) % 12]
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def profection_rows(
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natal_points: dict[str, float],
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birth_utc: datetime,
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start_age: int,
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count: int,
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) -> list[dict]:
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"""Tabela profekcji dla zakresu lat życia.
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natal_points: nazwa -> natalna długość ekliptyczna (musi zawierać 'Asc').
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Każdy wiersz: wiek, data początku roku profekcyjnego (urodziny), znak
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profektowanego Asc, Władca Roku oraz profekcje pozostałych punktów.
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"""
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def _birthday(year: int) -> datetime:
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try:
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return birth_utc.replace(year=year)
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except ValueError: # 29 lutego w roku nieprzestępnym
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return birth_utc.replace(year=year, day=28)
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rows: list[dict] = []
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for age in range(start_age, start_age + count):
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asc_sign = profected_sign(natal_points["Asc"], age)
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row = {
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"age": age,
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"from": _birthday(birth_utc.year + age).strftime("%Y-%m-%d"),
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"profected_asc": asc_sign,
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"lord_of_year": DOMICILE_RULERS[asc_sign],
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}
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for name, lon in natal_points.items():
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if name != "Asc":
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row[name] = profected_sign(lon, age)
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rows.append(row)
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return rows
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@@ -0,0 +1,64 @@
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"""Solar / Lunar Return (LOG-12) — moment powrotu do pozycji natalnej.
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Solar Return (solariusz): moment, w którym Słońce wraca dokładnie do natalnej
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długości ekliptycznej (raz na rok, w okolicy urodzin). Lunar Return: to samo
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dla Księżyca (raz na ~27,3 dnia). Dwa warianty użycia (osobny horoskop vs
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tranzyt do natalu) obsługujemy zwracając pełny horoskop na znaleziony moment —
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interpretacja pozostaje po stronie technik wyżej.
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Metoda: podpisana różnica długości Δ = lon − natal (zawinięta do ±180°) rośnie
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monotonicznie i przechodzi przez 0 dokładnie w momencie powrotu. Skan dobowy
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wykrywa przejście −→+ (skok +180→−180 to artefakt zawinięcia — pomijany,
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warunek d_hi − d_lo < 180), potem bisekcja do ~sekundy.
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"""
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from __future__ import annotations
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from datetime import datetime, timedelta, timezone
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from app.engine.models import ChartMoment
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# szerokość okna skanu wokół `around` [dni]: solar kotwiczymy przy urodzinach,
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# lunar musi objąć cały okres syderyczny Księżyca (27,3 d)
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SCAN_WINDOW = {"solar": 6.0, "lunar": 15.0}
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def _lon_delta(engine, body: str, natal_lon: float, when: datetime) -> float:
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m = ChartMoment(when_utc=when)
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lon = engine.positions(m, [body])[0].longitude
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return ((lon - natal_lon + 180.0) % 360.0) - 180.0
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def find_return(
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engine, kind: str, natal_moment: ChartMoment, around: datetime
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) -> datetime | None:
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"""Moment powrotu (kind: 'solar'/'lunar') najbliższy dacie `around`."""
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body = "Sun" if kind == "solar" else "Moon"
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natal_lon = engine.positions(natal_moment, [body])[0].longitude
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if around.tzinfo is None:
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around = around.replace(tzinfo=timezone.utc)
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window = SCAN_WINDOW[kind]
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step = timedelta(days=1.0)
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t = around - timedelta(days=window)
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end = around + timedelta(days=window)
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candidates: list[datetime] = []
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d_prev = _lon_delta(engine, body, natal_lon, t)
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while t < end:
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t_next = t + step
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d_next = _lon_delta(engine, body, natal_lon, t_next)
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# prawdziwe przejście przez zero: − -> + bez skoku zawinięcia
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if d_prev < 0 <= d_next and (d_next - d_prev) < 180.0:
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lo, hi, d_lo = t, t_next, d_prev
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for _ in range(40): # bisekcja do ułamka sekundy
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mid = lo + (hi - lo) / 2
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if (_lon_delta(engine, body, natal_lon, mid) < 0) == (d_lo < 0):
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lo = mid
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else:
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hi = mid
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candidates.append(lo + (hi - lo) / 2)
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t, d_prev = t_next, d_next
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if not candidates:
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return None
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return min(candidates, key=lambda c: abs(c - around))
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@@ -60,6 +60,27 @@ class SkyfieldEngine(EphemerisEngine):
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lat, lon, _dist = astrometric.ecliptic_latlon(epoch="date")
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return lon.degrees, lat.degrees
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def _virtual_point(self, name: str, tt_jd: float) -> ObjectPosition:
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"""Punkty analityczne (LOG-02): mean Node (NN/SN) i mean Lilith.
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Liczone wzorami Meeusa, nie z jądra JPL. SN = NN + 180° (ta sama prędkość).
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Punkty leżą na ekliptyce (latitude = 0).
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"""
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from app.engine.points import mean_lilith, mean_lunar_node, point_speed
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if name in ("North Node", "South Node"):
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lon = mean_lunar_node(tt_jd)
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if name == "South Node":
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lon = norm360(lon + 180.0)
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speed = point_speed(mean_lunar_node, tt_jd)
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else: # Lilith
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lon = mean_lilith(tt_jd)
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speed = point_speed(mean_lilith, tt_jd)
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return ObjectPosition(
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name=name, longitude=float(lon), latitude=0.0,
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speed=float(speed), retrograde=bool(speed < 0),
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)
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||||
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def positions(
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self, moment: ChartMoment, objects: list[str] | None = None
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) -> list[ObjectPosition]:
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@@ -70,6 +91,9 @@ class SkyfieldEngine(EphemerisEngine):
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out: list[ObjectPosition] = []
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for name in names:
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if name not in _TARGETS: # punkt wirtualny (NN/SN/Lilith)
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out.append(self._virtual_point(name, t.tt))
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continue
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target = self.eph[_TARGETS[name]]
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lon, lat = self._ecliptic_lon_lat(target, t)
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lon2, _ = self._ecliptic_lon_lat(target, t2)
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@@ -0,0 +1,100 @@
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"""Wykrywanie stacji planet (LOG-03): poprzednia/następna stacja, SD/SR, flaga <7 dni.
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||||
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Stacja ścisła = moment, w którym prędkość zodiakalna przechodzi przez zero.
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Metoda: próbki prędkości co 1 dzień w oknie ± SEARCH_DAYS → zmiana znaku →
|
||||
bisekcja do dokładności ~1 minuty. Klasyfikacja: prędkość przed<0 i po>0 → SD
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||||
(stationary direct), odwrotnie → SR (stationary retrograde).
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||||
|
||||
Pomijamy Słońce/Księżyc (nigdy Rx) i punkty mean (NN/SN/Lilith — ruch jednostajny).
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||||
"""
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||||
from __future__ import annotations
|
||||
|
||||
from datetime import timedelta
|
||||
|
||||
from app.engine.formats import in_sign
|
||||
from app.engine.models import ChartMoment
|
||||
|
||||
# obiekty bez stacji
|
||||
NO_STATIONS = {"Sun", "Moon", "North Node", "South Node", "Lilith"}
|
||||
|
||||
# Okno musi pokryć najdłuższą przerwę między stacjami (Mars/Wenus: ~700 dni),
|
||||
# a krok skanu musi być krótszy niż najkrótsza retrogradacja (Merkury ~21 dni).
|
||||
SEARCH_DAYS = 800 # okno poszukiwań w każdą stronę
|
||||
SCAN_STEP_DAYS = 4.0 # krok zgrubnego skanu (potem bisekcja)
|
||||
STATION_SOON_DAYS = 7.0 # próg flagi "stacja blisko" (konfigurowalny, notes2)
|
||||
|
||||
|
||||
def _speed_fn(engine, name: str):
|
||||
"""Zwraca funkcję: dni_od_momentu_bazowego -> prędkość [°/dobę]."""
|
||||
def speed(base_moment: ChartMoment, offset_days: float) -> float:
|
||||
m = ChartMoment(
|
||||
when_utc=base_moment.when_utc + timedelta(days=offset_days),
|
||||
lat=base_moment.lat, lon=base_moment.lon,
|
||||
)
|
||||
return engine.positions(m, [name])[0].speed
|
||||
return speed
|
||||
|
||||
|
||||
def _bisect_zero(speed, moment: ChartMoment, lo: float, hi: float, iters: int = 20) -> float:
|
||||
"""Bisekcja miejsca zerowego prędkości między dniami lo i hi."""
|
||||
s_lo = speed(moment, lo)
|
||||
for _ in range(iters):
|
||||
mid = (lo + hi) / 2.0
|
||||
s_mid = speed(moment, mid)
|
||||
if (s_lo < 0) == (s_mid < 0):
|
||||
lo, s_lo = mid, s_mid
|
||||
else:
|
||||
hi = mid
|
||||
return (lo + hi) / 2.0
|
||||
|
||||
|
||||
def _station_info(engine, moment: ChartMoment, name: str, day: float, speed) -> dict:
|
||||
"""Opis stacji w danym dniu (offset od momentu bazowego)."""
|
||||
before = speed(moment, day - 0.5)
|
||||
kind = "SD" if before < 0 else "SR"
|
||||
when = moment.when_utc + timedelta(days=day)
|
||||
m = ChartMoment(when_utc=when, lat=moment.lat, lon=moment.lon)
|
||||
lon = engine.positions(m, [name])[0].longitude
|
||||
return {
|
||||
"type": kind,
|
||||
"date": when.strftime("%Y-%m-%d %H:%M"),
|
||||
"days": round(day, 1), # ujemne = w przeszłości
|
||||
"degree": in_sign(lon),
|
||||
}
|
||||
|
||||
|
||||
def find_stations(engine, moment: ChartMoment, name: str, step_days: float = SCAN_STEP_DAYS) -> dict | None:
|
||||
"""Poprzednia i następna stacja obiektu względem momentu horoskopu."""
|
||||
if name in NO_STATIONS:
|
||||
return None
|
||||
speed = _speed_fn(engine, name)
|
||||
|
||||
prev_day = next_day = None
|
||||
# w przeszłość
|
||||
s_right = speed(moment, 0.0)
|
||||
d = 0.0
|
||||
while d > -SEARCH_DAYS:
|
||||
s_left = speed(moment, d - step_days)
|
||||
if (s_left < 0) != (s_right < 0):
|
||||
prev_day = _bisect_zero(speed, moment, d - step_days, d)
|
||||
break
|
||||
d, s_right = d - step_days, s_left
|
||||
# w przyszłość
|
||||
s_left = speed(moment, 0.0)
|
||||
d = 0.0
|
||||
while d < SEARCH_DAYS:
|
||||
s_right = speed(moment, d + step_days)
|
||||
if (s_left < 0) != (s_right < 0):
|
||||
next_day = _bisect_zero(speed, moment, d, d + step_days)
|
||||
break
|
||||
d, s_left = d + step_days, s_right
|
||||
|
||||
result: dict = {}
|
||||
if prev_day is not None:
|
||||
result["prev"] = _station_info(engine, moment, name, prev_day, speed)
|
||||
if next_day is not None:
|
||||
result["next"] = _station_info(engine, moment, name, next_day, speed)
|
||||
result["station_soon"] = any(
|
||||
abs(x["days"]) < STATION_SOON_DAYS for x in result.values() if isinstance(x, dict)
|
||||
)
|
||||
return result or None
|
||||
@@ -38,6 +38,7 @@ class PositionsRequest(BaseModel):
|
||||
lon: float = 0.0
|
||||
objects: list[str] | None = None
|
||||
house_system: str = "whole_sign" # whole_sign | equal | porphyry
|
||||
stations: bool = False # licz stacje (LOG-03; wolniejsze — root-findy)
|
||||
|
||||
|
||||
@app.post("/api/query", response_model=QueryResponse)
|
||||
@@ -50,13 +51,22 @@ def query(req: QueryRequest) -> QueryResponse:
|
||||
|
||||
@app.post("/chart/positions")
|
||||
def chart_positions(req: PositionsRequest) -> dict:
|
||||
"""Pełny horoskop: pozycje (LOG-01) + osie i domy (LOG-05), aktywnym silnikiem."""
|
||||
"""Pełny horoskop: pozycje (LOG-01) + osie i domy (LOG-05) + aspekty (LOG-06);
|
||||
opcjonalnie stacje planet (LOG-03, stations=true)."""
|
||||
from app.engine.chart import build_chart
|
||||
from app.engine.models import ChartMoment
|
||||
|
||||
engine = get_engine()
|
||||
moment = ChartMoment(when_utc=req.when_utc, lat=req.lat, lon=req.lon)
|
||||
return build_chart(engine, moment, req.house_system)
|
||||
chart = build_chart(engine, moment, req.house_system)
|
||||
if req.stations:
|
||||
from app.engine.stations import find_stations
|
||||
|
||||
for p in chart["positions"]:
|
||||
st = find_stations(engine, moment, p["name"])
|
||||
if st:
|
||||
p["stations"] = st
|
||||
return chart
|
||||
|
||||
|
||||
@app.post("/chart/compare")
|
||||
@@ -107,6 +117,62 @@ def chart_report(req: ReportRequest) -> dict:
|
||||
return {"engine": engine.name, **report}
|
||||
|
||||
|
||||
class ProfectionsRequest(BaseModel):
|
||||
when_utc: datetime # moment urodzenia (UTC)
|
||||
lat: float = 0.0
|
||||
lon: float = 0.0
|
||||
start_age: int = 0
|
||||
count: int = 13 # domyślnie pełny cykl 12 lat + rok startowy
|
||||
|
||||
|
||||
@app.post("/chart/profections")
|
||||
def chart_profections(req: ProfectionsRequest) -> dict:
|
||||
"""Profekcje roczne (LOG-10): wiek, profektowany Asc, Władca Roku (+MC/Su/Mo)."""
|
||||
from app.engine import houses as H
|
||||
from app.engine.models import ChartMoment
|
||||
from app.engine.profections import profection_rows
|
||||
|
||||
engine = get_engine()
|
||||
natal = ChartMoment(when_utc=req.when_utc, lat=req.lat, lon=req.lon)
|
||||
ramc, eps = engine.sidereal(natal)
|
||||
points = {
|
||||
"Asc": H.compute_asc(ramc, eps, natal.lat),
|
||||
"MC": H.compute_mc(ramc, eps),
|
||||
}
|
||||
for p in engine.positions(natal, ["Sun", "Moon"]):
|
||||
points[p.name] = p.longitude
|
||||
rows = profection_rows(points, req.when_utc, req.start_age, req.count)
|
||||
return {"engine": engine.name, "rows": rows}
|
||||
|
||||
|
||||
class ReturnRequest(BaseModel):
|
||||
when_utc: datetime # moment urodzenia (UTC)
|
||||
lat: float = 0.0
|
||||
lon: float = 0.0
|
||||
kind: str = "solar" # solar | lunar
|
||||
around: datetime | None = None # data, wokół której szukać powrotu
|
||||
|
||||
|
||||
@app.post("/chart/return")
|
||||
def chart_return(req: ReturnRequest) -> dict:
|
||||
"""Solar/Lunar Return (LOG-12): moment powrotu + pełny horoskop na ten moment."""
|
||||
from app.engine.chart import build_chart
|
||||
from app.engine.models import ChartMoment
|
||||
from app.engine.returns import find_return
|
||||
|
||||
if req.kind not in ("solar", "lunar"):
|
||||
raise HTTPException(status_code=422, detail="kind: solar albo lunar")
|
||||
engine = get_engine()
|
||||
natal = ChartMoment(when_utc=req.when_utc, lat=req.lat, lon=req.lon)
|
||||
around = req.around or req.when_utc
|
||||
hit = find_return(engine, req.kind, natal, around)
|
||||
if hit is None:
|
||||
raise HTTPException(status_code=404, detail="nie znaleziono powrotu w oknie skanu")
|
||||
chart = build_chart(engine, ChartMoment(when_utc=hit, lat=req.lat, lon=req.lon))
|
||||
return {"engine": engine.name, "kind": req.kind,
|
||||
"return_utc": hit.isoformat(), **chart}
|
||||
|
||||
|
||||
@app.get("/health")
|
||||
def health() -> dict:
|
||||
info = {"status": "ok", "layer": "logic"}
|
||||
|
||||
@@ -18,6 +18,8 @@ ASPECT_WEIGHT = {
|
||||
"conjunction": 1.0, "opposition": 0.95, "square": 0.85,
|
||||
"trine": 0.85, "sextile": 0.65,
|
||||
}
|
||||
# aspekt aplikacyjny (A) jest silniejszy niż separacyjny (S) — notes3
|
||||
APPLYING_BONUS = 1.15
|
||||
|
||||
|
||||
def score_facet(facet: dict) -> float:
|
||||
@@ -28,5 +30,8 @@ def score_facet(facet: dict) -> float:
|
||||
orb = facet.get("orb")
|
||||
allowed = facet.get("allowed") or 10.0
|
||||
tight = max(0.0, 1.0 - orb / allowed) if orb is not None and allowed else 0.0
|
||||
return round(base * weight * (1.0 + tight), 2)
|
||||
score = base * weight * (1.0 + tight)
|
||||
if facet.get("applying"):
|
||||
score *= APPLYING_BONUS
|
||||
return round(score, 2)
|
||||
return round(base, 2)
|
||||
|
||||
@@ -20,6 +20,8 @@ from app.scoring import score_facet
|
||||
PLANET_ABBR = {
|
||||
"Sun": "Su", "Moon": "Mo", "Mercury": "Me", "Venus": "Ve", "Mars": "Ma",
|
||||
"Jupiter": "Ju", "Saturn": "Sa", "Uranus": "Ur", "Neptune": "Ne", "Pluto": "Pl",
|
||||
# punkty wirtualne — tokeny wg SIGNIFICATORS KEY ([NN, [SN, [Lilith)
|
||||
"North Node": "NN", "South Node": "SN", "Lilith": "Lilith",
|
||||
}
|
||||
SIGN_TO_ABBR = dict(zip(SIGNS, SIGN_ABBR))
|
||||
|
||||
@@ -167,10 +169,12 @@ def build_report(
|
||||
asp_samples = _facet_samples(rows, [asp_tok, other_tok])
|
||||
if not asp_samples: # pokazujemy tylko aspekty z trafieniami
|
||||
continue
|
||||
as_suffix = f" ({asp['as']})" if asp.get("as") else ""
|
||||
facets.append({
|
||||
"type": "aspect", "label": f"{ASP_NAME[asp['aspect']]} z {other}",
|
||||
"type": "aspect", "label": f"{ASP_NAME[asp['aspect']]} z {other}{as_suffix}",
|
||||
"token": f"{asp_tok} + {other_tok}",
|
||||
"aspect": asp["aspect"], "orb": asp.get("orb"), "allowed": asp.get("allowed"),
|
||||
"applying": asp.get("applying"),
|
||||
"count": len(asp_samples), "samples": asp_samples,
|
||||
})
|
||||
|
||||
|
||||
@@ -33,3 +33,58 @@ def test_luminary_bonus_widens_orb():
|
||||
def test_one_aspect_per_pair():
|
||||
pos = [{"name": "Sun", "decimal": 0.0}, {"name": "Moon", "decimal": 2.0}]
|
||||
assert len(find_aspects(pos)) == 1
|
||||
|
||||
|
||||
def test_applying_when_faster_body_catches_up():
|
||||
# Księżyc 5° za Słońcem, szybszy -> koniunkcja aplikacyjna
|
||||
pos = [
|
||||
{"name": "Sun", "decimal": 40.0, "speed": 0.96},
|
||||
{"name": "Moon", "decimal": 35.0, "speed": 13.0},
|
||||
]
|
||||
a = find_aspects(pos)[0]
|
||||
assert a["applying"] is True and a["as"] == "A"
|
||||
|
||||
|
||||
def test_separating_when_moving_apart():
|
||||
# Księżyc 5° przed Słońcem i szybszy -> koniunkcja separacyjna
|
||||
pos = [
|
||||
{"name": "Sun", "decimal": 40.0, "speed": 0.96},
|
||||
{"name": "Moon", "decimal": 45.0, "speed": 13.0},
|
||||
]
|
||||
a = find_aspects(pos)[0]
|
||||
assert a["applying"] is False and a["as"] == "S"
|
||||
|
||||
|
||||
def test_no_as_flag_without_speeds():
|
||||
pos = [{"name": "Sun", "decimal": 0.0}, {"name": "Moon", "decimal": 2.0}]
|
||||
assert "as" not in find_aspects(pos)[0]
|
||||
|
||||
|
||||
# Referencja A/S z notes3 (astro-seek) dla horoskopu 30.04.1984 07:35 UT, Warszawa.
|
||||
REFERENCE_AS = {
|
||||
("Sun", "Moon", "conjunction"): "A",
|
||||
("Sun", "Jupiter", "trine"): "A",
|
||||
("Sun", "Saturn", "opposition"): "A",
|
||||
("Sun", "Neptune", "trine"): "S",
|
||||
("Sun", "Pluto", "opposition"): "S",
|
||||
("Moon", "Mercury", "conjunction"): "S",
|
||||
("Moon", "Venus", "conjunction"): "S",
|
||||
("Moon", "Neptune", "trine"): "A",
|
||||
("Moon", "Pluto", "opposition"): "S",
|
||||
("Mercury", "Venus", "conjunction"): "S",
|
||||
("Mercury", "Neptune", "trine"): "S",
|
||||
("Mercury", "Pluto", "opposition"): "S",
|
||||
("Venus", "Neptune", "trine"): "A",
|
||||
("Venus", "Pluto", "opposition"): "A",
|
||||
("Jupiter", "Saturn", "sextile"): "A",
|
||||
("Neptune", "Pluto", "sextile"): "S",
|
||||
}
|
||||
|
||||
|
||||
def test_applying_separating_matches_astroseek_reference(own_engine, reference_moment):
|
||||
from app.engine.chart import build_chart
|
||||
|
||||
chart = build_chart(own_engine, reference_moment)
|
||||
got = {(a["obj1"], a["obj2"], a["aspect"]): a.get("as") for a in chart["aspects"]}
|
||||
mismatches = {k: (got.get(k), v) for k, v in REFERENCE_AS.items() if got.get(k) != v}
|
||||
assert not mismatches, f"rozbieżności A/S vs astro-seek: {mismatches}"
|
||||
|
||||
@@ -0,0 +1,50 @@
|
||||
"""Testy punktów wirtualnych (LOG-02): mean Node, mean Lilith.
|
||||
|
||||
Referencje dla 30.04.1984 07:35 UT:
|
||||
- astro-seek (notes3): North Node (M) = Gem 8°09'24" = 68.1567°
|
||||
- wyrocznia swisseph (MEAN_NODE / MEAN_APOG, tryb Moshiera):
|
||||
NN = 68.1569°, Lilith = 345.6840°
|
||||
"""
|
||||
import pytest
|
||||
|
||||
from app.engine.formats import norm360
|
||||
|
||||
|
||||
def _delta_arcmin(a: float, b: float) -> float:
|
||||
return abs(((a - b + 180.0) % 360.0) - 180.0) * 60.0
|
||||
|
||||
|
||||
@pytest.fixture(scope="module")
|
||||
def by_name(own_engine, reference_moment):
|
||||
return {p.name: p for p in own_engine.positions(reference_moment)}
|
||||
|
||||
|
||||
def test_mean_node_matches_references(by_name):
|
||||
nn = by_name["North Node"]
|
||||
assert _delta_arcmin(nn.longitude, 68.1567) < 2.0 # astro-seek
|
||||
assert _delta_arcmin(nn.longitude, 68.1569) < 2.0 # swisseph
|
||||
assert nn.sign == "Gemini"
|
||||
|
||||
|
||||
def test_nodes_always_retrograde_and_opposed(by_name):
|
||||
nn, sn = by_name["North Node"], by_name["South Node"]
|
||||
assert nn.retrograde and sn.retrograde # mean node zawsze Rx
|
||||
assert _delta_arcmin(sn.longitude, norm360(nn.longitude + 180.0)) < 0.01
|
||||
assert abs(nn.speed - sn.speed) < 1e-9 # ta sama prędkość
|
||||
|
||||
|
||||
def test_mean_lilith_matches_swisseph(by_name):
|
||||
li = by_name["Lilith"]
|
||||
assert _delta_arcmin(li.longitude, 345.6840) < 3.0 # wyrocznia swisseph
|
||||
assert li.sign == "Pisces"
|
||||
assert li.speed > 0 and not li.retrograde # mean Lilith zawsze direct
|
||||
|
||||
|
||||
def test_points_join_houses_and_chart(own_engine, reference_moment):
|
||||
from app.engine.chart import build_chart
|
||||
|
||||
chart = build_chart(own_engine, reference_moment)
|
||||
by = {p["name"]: p for p in chart["positions"]}
|
||||
# NN w Gem -> 12. dom Whole Sign (Asc w Raku); zgodnie z tabelą astro-seek w notes3
|
||||
assert by["North Node"]["house"] == 12
|
||||
assert by["Lilith"]["house"] == 9 # Pis -> 9. dom
|
||||
@@ -0,0 +1,46 @@
|
||||
"""Profekcje (LOG-10) — walidacja względem tabeli astro-seek z notes3."""
|
||||
import datetime as dt
|
||||
|
||||
from app.engine.profections import DOMICILE_RULERS, age_at, profected_sign, profection_rows
|
||||
|
||||
BIRTH = dt.datetime(1984, 4, 30, 7, 35, tzinfo=dt.timezone.utc)
|
||||
NATAL = {"Asc": 112.18, "MC": 352.59, "Sun": 40.14, "Moon": 30.55}
|
||||
|
||||
# wiek -> (profektowany Asc, Władca Roku) — tabela referencyjna notes3
|
||||
REFERENCE = {
|
||||
0: ("Cancer", "Moon"), 1: ("Leo", "Sun"), 2: ("Virgo", "Mercury"),
|
||||
3: ("Libra", "Venus"), 4: ("Scorpio", "Mars"), 5: ("Sagittarius", "Jupiter"),
|
||||
6: ("Capricorn", "Saturn"), 7: ("Aquarius", "Saturn"), 8: ("Pisces", "Jupiter"),
|
||||
9: ("Aries", "Mars"), 10: ("Taurus", "Venus"), 11: ("Gemini", "Mercury"),
|
||||
12: ("Cancer", "Moon"), 40: ("Scorpio", "Mars"), 41: ("Sagittarius", "Jupiter"),
|
||||
42: ("Capricorn", "Saturn"),
|
||||
}
|
||||
|
||||
|
||||
def test_profections_match_astroseek_table():
|
||||
rows = {r["age"]: r for r in profection_rows(NATAL, BIRTH, 0, 43)}
|
||||
for age, (asc, lord) in REFERENCE.items():
|
||||
assert rows[age]["profected_asc"] == asc, f"wiek {age}"
|
||||
assert rows[age]["lord_of_year"] == lord, f"wiek {age}"
|
||||
|
||||
|
||||
def test_profected_secondary_points_match_reference():
|
||||
rows = {r["age"]: r for r in profection_rows(NATAL, BIRTH, 0, 3)}
|
||||
# notes3: wiek 0 -> MC Pis, Sun Tau, Moon Tau; wiek 1 -> MC Ari, Sun Gem
|
||||
assert rows[0]["MC"] == "Pisces" and rows[0]["Sun"] == "Taurus"
|
||||
assert rows[1]["MC"] == "Aries" and rows[1]["Sun"] == "Gemini"
|
||||
|
||||
|
||||
def test_from_dates_are_birthdays():
|
||||
rows = profection_rows(NATAL, BIRTH, 40, 3)
|
||||
assert [r["from"] for r in rows] == ["2024-04-30", "2025-04-30", "2026-04-30"]
|
||||
|
||||
|
||||
def test_age_at_boundaries():
|
||||
assert age_at(BIRTH, dt.datetime(2026, 4, 29, tzinfo=dt.timezone.utc)) == 41
|
||||
assert age_at(BIRTH, dt.datetime(2026, 4, 30, tzinfo=dt.timezone.utc)) == 42
|
||||
|
||||
|
||||
def test_rulers_cover_all_signs():
|
||||
assert len(DOMICILE_RULERS) == 12
|
||||
assert profected_sign(112.18, 12) == "Cancer" # pełny cykl wraca
|
||||
@@ -0,0 +1,40 @@
|
||||
"""Solar / Lunar Return (LOG-12) — samospójność i sensowność dat."""
|
||||
import datetime as dt
|
||||
|
||||
import pytest
|
||||
|
||||
from app.engine.models import ChartMoment
|
||||
from app.engine.returns import find_return
|
||||
|
||||
|
||||
def _lon(engine, body, when):
|
||||
return engine.positions(ChartMoment(when_utc=when), [body])[0].longitude
|
||||
|
||||
|
||||
def _delta_arcmin(a, b):
|
||||
return abs(((a - b + 180.0) % 360.0) - 180.0) * 60.0
|
||||
|
||||
|
||||
def test_solar_return_hits_natal_sun(own_engine, reference_moment):
|
||||
natal_sun = _lon(own_engine, "Sun", reference_moment.when_utc)
|
||||
# solariusz na 42. urodziny (2026)
|
||||
hit = find_return(own_engine, "solar", reference_moment,
|
||||
dt.datetime(2026, 4, 30, tzinfo=dt.timezone.utc))
|
||||
assert hit is not None
|
||||
assert _delta_arcmin(_lon(own_engine, "Sun", hit), natal_sun) < 0.5
|
||||
assert hit.month == 4 and hit.year == 2026 # w okolicy urodzin
|
||||
|
||||
|
||||
def test_lunar_return_hits_natal_moon(own_engine, reference_moment):
|
||||
natal_moon = _lon(own_engine, "Moon", reference_moment.when_utc)
|
||||
hit = find_return(own_engine, "lunar", reference_moment,
|
||||
dt.datetime(1984, 5, 27, tzinfo=dt.timezone.utc))
|
||||
assert hit is not None
|
||||
assert _delta_arcmin(_lon(own_engine, "Moon", hit), natal_moon) < 2.0
|
||||
|
||||
|
||||
def test_solar_return_near_birth_is_close_to_birth(own_engine, reference_moment):
|
||||
# powrót szukany wokół samych urodzin = ~moment urodzenia
|
||||
hit = find_return(own_engine, "solar", reference_moment, reference_moment.when_utc)
|
||||
assert hit is not None
|
||||
assert abs(hit - reference_moment.when_utc) < dt.timedelta(days=1)
|
||||
@@ -0,0 +1,55 @@
|
||||
"""Testy wykrywania stacji (LOG-03).
|
||||
|
||||
Fakt historyczny: Mars w horoskopie referencyjnym (30.04.1984) jest w środku
|
||||
retrogradacji — stacja SR ~5.04.1984 (ok. 25 dni wstecz), stacja SD ~19.06.1984
|
||||
(ok. 50 dni w przód). Testy sprawdzają strukturę, klasyfikację SD/SR, przedziały
|
||||
dat i samospójność (prędkość w znalezionym momencie ~0).
|
||||
"""
|
||||
import datetime as dt
|
||||
|
||||
import pytest
|
||||
|
||||
from app.engine.models import ChartMoment
|
||||
from app.engine.stations import STATION_SOON_DAYS, find_stations
|
||||
|
||||
|
||||
@pytest.fixture(scope="module")
|
||||
def mars_stations(own_engine, reference_moment):
|
||||
return find_stations(own_engine, reference_moment, "Mars")
|
||||
|
||||
|
||||
def test_no_stations_for_sun_moon_and_points(own_engine, reference_moment):
|
||||
for name in ("Sun", "Moon", "North Node", "South Node", "Lilith"):
|
||||
assert find_stations(own_engine, reference_moment, name) is None
|
||||
|
||||
|
||||
def test_mars_prev_is_sr_next_is_sd(mars_stations):
|
||||
assert mars_stations["prev"]["type"] == "SR" # wszedł w retrogradację
|
||||
assert mars_stations["next"]["type"] == "SD" # wróci do ruchu prostego
|
||||
|
||||
|
||||
def test_mars_station_windows_match_history(mars_stations):
|
||||
# SR ~5.04.1984 -> ok. -25 dni; SD ~19/20.06.1984 -> ok. +50 dni
|
||||
assert -35 < mars_stations["prev"]["days"] < -15
|
||||
assert 40 < mars_stations["next"]["days"] < 60
|
||||
assert mars_stations["prev"]["date"].startswith("1984-04")
|
||||
assert mars_stations["next"]["date"].startswith("1984-06")
|
||||
|
||||
|
||||
def test_station_speed_is_near_zero(own_engine, reference_moment, mars_stations):
|
||||
"""Samospójność: w znalezionym momencie stacji prędkość Marsa ~0."""
|
||||
for key in ("prev", "next"):
|
||||
when = dt.datetime.strptime(mars_stations[key]["date"], "%Y-%m-%d %H:%M").replace(
|
||||
tzinfo=dt.timezone.utc
|
||||
)
|
||||
m = ChartMoment(when_utc=when, lat=reference_moment.lat, lon=reference_moment.lon)
|
||||
speed = own_engine.positions(m, ["Mars"])[0].speed
|
||||
assert abs(speed) < 0.01, f"{key}: speed={speed}"
|
||||
|
||||
|
||||
def test_station_soon_flag_consistent(mars_stations):
|
||||
expected = any(
|
||||
abs(mars_stations[k]["days"]) < STATION_SOON_DAYS
|
||||
for k in ("prev", "next") if k in mars_stations
|
||||
)
|
||||
assert mars_stations["station_soon"] == expected
|
||||
@@ -30,6 +30,7 @@ class LogicClient:
|
||||
lon: float,
|
||||
objects: list[str] | None = None,
|
||||
house_system: str = "whole_sign",
|
||||
stations: bool = False,
|
||||
) -> dict[str, Any]:
|
||||
"""Pełny horoskop dla danego momentu — woła logic /chart/positions."""
|
||||
payload = {
|
||||
@@ -38,8 +39,10 @@ class LogicClient:
|
||||
"lon": lon,
|
||||
"objects": objects,
|
||||
"house_system": house_system,
|
||||
"stations": stations,
|
||||
}
|
||||
with httpx.Client(timeout=settings.http_timeout) as client:
|
||||
# stacje wymagają root-findów — dłuższy timeout
|
||||
with httpx.Client(timeout=max(settings.http_timeout, 60.0) if stations else settings.http_timeout) as client:
|
||||
r = client.post(f"{self.base_url}/chart/positions", json=payload)
|
||||
r.raise_for_status()
|
||||
return r.json()
|
||||
|
||||
@@ -60,15 +60,17 @@ def chart_compute(
|
||||
lat: float = Form(0.0),
|
||||
lon: float = Form(0.0),
|
||||
house_system: str = Form("whole_sign"),
|
||||
stations: bool = Form(False),
|
||||
):
|
||||
form = {"date": date, "time": time, "tz_offset": tz_offset,
|
||||
"lat": lat, "lon": lon, "house_system": house_system}
|
||||
"lat": lat, "lon": lon, "house_system": house_system, "stations": stations}
|
||||
ctx: dict = {"form": form, "result": None, "error": None, "moment": None}
|
||||
try:
|
||||
iso_utc, label = _build_utc(date, time, tz_offset)
|
||||
ctx["moment"] = label
|
||||
ctx["result"] = logic.positions(
|
||||
when_utc_iso=iso_utc, lat=lat, lon=lon, house_system=house_system
|
||||
when_utc_iso=iso_utc, lat=lat, lon=lon,
|
||||
house_system=house_system, stations=stations,
|
||||
)
|
||||
except (httpx.HTTPError,) as e:
|
||||
ctx["error"] = _logic_error(e)
|
||||
|
||||
@@ -0,0 +1,43 @@
|
||||
// „Tu i teraz": uzupełnia datę/godzinę/strefę z przeglądarki oraz — jeśli to
|
||||
// możliwe — lokalizację (lat/lon).
|
||||
//
|
||||
// UWAGA: geolokalizacja przeglądarki działa tylko w "secure context"
|
||||
// (https:// lub localhost). Na http://<ip> przeglądarka NIE pyta o zgodę,
|
||||
// tylko po cichu odmawia — dlatego pokazujemy jawny komunikat w #geoNote.
|
||||
document.addEventListener('DOMContentLoaded', function () {
|
||||
const btn = document.getElementById('nowBtn');
|
||||
if (!btn) return;
|
||||
|
||||
const note = document.getElementById('geoNote');
|
||||
const say = msg => { if (note) note.textContent = msg; };
|
||||
|
||||
btn.addEventListener('click', function () {
|
||||
const d = new Date();
|
||||
const pad = n => String(n).padStart(2, '0');
|
||||
document.querySelector('input[name=date]').value =
|
||||
d.getFullYear() + '-' + pad(d.getMonth() + 1) + '-' + pad(d.getDate());
|
||||
document.querySelector('input[name=time]').value = pad(d.getHours()) + ':' + pad(d.getMinutes());
|
||||
document.querySelector('input[name=tz_offset]').value = (-d.getTimezoneOffset() / 60);
|
||||
|
||||
if (!('geolocation' in navigator)) {
|
||||
say('Ta przeglądarka nie udostępnia geolokalizacji — wpisz lat/lon ręcznie.');
|
||||
return;
|
||||
}
|
||||
if (!window.isSecureContext) {
|
||||
say('Lokalizacja z przeglądarki wymaga HTTPS lub localhost (otwarto przez http://) — wpisz lat/lon ręcznie.');
|
||||
return;
|
||||
}
|
||||
say('Pobieram lokalizację…');
|
||||
navigator.geolocation.getCurrentPosition(
|
||||
function (pos) {
|
||||
document.querySelector('input[name=lat]').value = pos.coords.latitude.toFixed(4);
|
||||
document.querySelector('input[name=lon]').value = pos.coords.longitude.toFixed(4);
|
||||
say('Lokalizacja pobrana ✓');
|
||||
},
|
||||
function (err) {
|
||||
say('Nie udało się pobrać lokalizacji: ' + (err && err.message ? err.message : 'odmowa dostępu'));
|
||||
},
|
||||
{ timeout: 8000 }
|
||||
);
|
||||
});
|
||||
});
|
||||
@@ -33,9 +33,14 @@
|
||||
</select>
|
||||
</label>
|
||||
</div>
|
||||
<div class="opts">
|
||||
<label><input type="checkbox" name="stations" value="true" {{ 'checked' if form.stations else '' }}>
|
||||
licz stacje planet (wolniejsze)</label>
|
||||
</div>
|
||||
<div class="actions">
|
||||
<button type="button" id="nowBtn" class="ghost">Tu i teraz</button>
|
||||
<button type="submit">Policz horoskop</button>
|
||||
<span id="geoNote" class="muted small"></span>
|
||||
</div>
|
||||
</form>
|
||||
|
||||
@@ -83,13 +88,30 @@
|
||||
</tbody>
|
||||
</table>
|
||||
|
||||
{% set with_stations = result.positions | selectattr('stations', 'defined') | list %}
|
||||
{% if with_stations %}
|
||||
<div class="meta">Stacje planet (poprzednia / następna; <span class="badge">blisko</span> = mniej niż 7 dni)</div>
|
||||
<table class="angles">
|
||||
<thead><tr><th>Planeta</th><th>Poprzednia</th><th>Następna</th></tr></thead>
|
||||
<tbody>
|
||||
{% for p in with_stations %}
|
||||
<tr>
|
||||
<td>{{ p.name }}{% if p.stations.station_soon %} <span class="badge">blisko</span>{% endif %}</td>
|
||||
<td class="mono">{% if p.stations.prev %}{{ p.stations.prev.type }} · {{ p.stations.prev.date }} · {{ p.stations.prev.degree }} ({{ p.stations.prev.days }} d){% else %}—{% endif %}</td>
|
||||
<td class="mono">{% if p.stations.next %}{{ p.stations.next.type }} · {{ p.stations.next.date }} · {{ p.stations.next.degree }} (+{{ p.stations.next.days }} d){% else %}—{% endif %}</td>
|
||||
</tr>
|
||||
{% endfor %}
|
||||
</tbody>
|
||||
</table>
|
||||
{% endif %}
|
||||
|
||||
{% if result.aspects %}
|
||||
<div class="meta">Aspekty główne ({{ result.aspects | length }})</div>
|
||||
<table class="angles">
|
||||
<thead><tr><th>Obiekt 1</th><th>Aspekt</th><th>Obiekt 2</th><th>Orb</th></tr></thead>
|
||||
<thead><tr><th>Obiekt 1</th><th>Aspekt</th><th>Obiekt 2</th><th>Orb</th><th title="A = aplikacyjny (dokładność nastąpi), S = separacyjny (już minęła)">A/S</th></tr></thead>
|
||||
<tbody>
|
||||
{% for a in result.aspects %}
|
||||
<tr><td>{{ a.obj1 }}</td><td>{{ a.aspect }}</td><td>{{ a.obj2 }}</td><td class="mono">{{ '%.2f'|format(a.orb) }}°</td></tr>
|
||||
<tr><td>{{ a.obj1 }}</td><td>{{ a.aspect }}</td><td>{{ a.obj2 }}</td><td class="mono">{{ '%.2f'|format(a.orb) }}°</td><td>{{ a['as'] if a['as'] is defined else '—' }}</td></tr>
|
||||
{% endfor %}
|
||||
</tbody>
|
||||
</table>
|
||||
@@ -110,22 +132,5 @@
|
||||
{% endif %}
|
||||
{% endif %}
|
||||
|
||||
<script>
|
||||
// „Tu i teraz": uzupełnia datę/godzinę bieżącą i offset lokalny przeglądarki.
|
||||
document.getElementById('nowBtn').addEventListener('click', function () {
|
||||
const d = new Date();
|
||||
const pad = n => String(n).padStart(2, '0');
|
||||
document.querySelector('input[name=date]').value =
|
||||
d.getFullYear() + '-' + pad(d.getMonth() + 1) + '-' + pad(d.getDate());
|
||||
document.querySelector('input[name=time]').value = pad(d.getHours()) + ':' + pad(d.getMinutes());
|
||||
document.querySelector('input[name=tz_offset]').value = (-d.getTimezoneOffset() / 60);
|
||||
// bajer: lokalizacja z przeglądarki (wymaga zgody; działa na https/localhost)
|
||||
if (navigator.geolocation) {
|
||||
navigator.geolocation.getCurrentPosition(function (pos) {
|
||||
document.querySelector('input[name=lat]').value = pos.coords.latitude.toFixed(4);
|
||||
document.querySelector('input[name=lon]').value = pos.coords.longitude.toFixed(4);
|
||||
});
|
||||
}
|
||||
});
|
||||
</script>
|
||||
<script src="/static/now.js"></script>
|
||||
{% endblock %}
|
||||
|
||||
@@ -29,6 +29,7 @@
|
||||
<div class="actions">
|
||||
<button type="button" id="nowBtn" class="ghost">Tu i teraz</button>
|
||||
<button type="submit">Szukaj interpretacji</button>
|
||||
<span id="geoNote" class="muted small"></span>
|
||||
</div>
|
||||
</form>
|
||||
|
||||
@@ -82,21 +83,5 @@
|
||||
{% endfor %}
|
||||
{% endif %}
|
||||
|
||||
<script>
|
||||
document.getElementById('nowBtn').addEventListener('click', function () {
|
||||
const d = new Date();
|
||||
const pad = n => String(n).padStart(2, '0');
|
||||
document.querySelector('input[name=date]').value =
|
||||
d.getFullYear() + '-' + pad(d.getMonth() + 1) + '-' + pad(d.getDate());
|
||||
document.querySelector('input[name=time]').value = pad(d.getHours()) + ':' + pad(d.getMinutes());
|
||||
document.querySelector('input[name=tz_offset]').value = (-d.getTimezoneOffset() / 60);
|
||||
// bajer: lokalizacja z przeglądarki (wymaga zgody; działa na https/localhost)
|
||||
if (navigator.geolocation) {
|
||||
navigator.geolocation.getCurrentPosition(function (pos) {
|
||||
document.querySelector('input[name=lat]').value = pos.coords.latitude.toFixed(4);
|
||||
document.querySelector('input[name=lon]').value = pos.coords.longitude.toFixed(4);
|
||||
});
|
||||
}
|
||||
});
|
||||
</script>
|
||||
<script src="/static/now.js"></script>
|
||||
{% endblock %}
|
||||
|
||||
Reference in New Issue
Block a user