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#!/usr/bin/env python3
# -*- coding: utf-8 -*-
"""
Jaimini占星体系模块 v1.2
Parashara传承中的Jaimini子系统
支持:
- Chara Karaka: 7/8个功能指示星(按度数排序)
- Arudha Pada: A1-A12 + UpapadaUL),复用 dashaflow/jaimini-tropical 的 MIT 算法
- Karakamsha: AK在Navamsa中的上升(灵魂方向)
- Chara Dasha: KN Rao benchmark overall 95.83%,作为 covered timing 模块使用;事件应期仍需多系统确认
- Special Lagnas: HL/GL/VL 简化计算(出生时间敏感,作为辅助)
MIT复用来源:
- dashaflow (adarshj322): Arudha/Upapada公式与例外规则
- jaimini-tropical (tunanfang-pixel): Pada命名、Graha Pada与Jaimini特殊点结构
"""
from typing import Dict, List, Tuple, Optional
from datetime import datetime, timedelta
import math
SIGNS = ['Aries','Taurus','Gemini','Cancer','Leo','Virgo',
'Libra','Scorpio','Sagittarius','Capricorn','Aquarius','Pisces']
SIGN_LORDS = {'Aries':'Mars','Taurus':'Venus','Gemini':'Mercury','Cancer':'Moon',
'Leo':'Sun','Virgo':'Mercury','Libra':'Venus','Scorpio':'Mars',
'Sagittarius':'Jupiter','Capricorn':'Saturn','Aquarius':'Saturn','Pisces':'Jupiter'}
# 行星友好/敌对关系(用于Jaimini共主比较)
FRIENDSHIP = {
'Sun': {'friend': ['Moon', 'Mars', 'Jupiter'], 'enemy': ['Saturn', 'Venus'], 'neutral': ['Mercury']},
'Moon': {'friend': ['Sun', 'Mercury'], 'enemy': [], 'neutral': ['Mars', 'Jupiter', 'Venus', 'Saturn']},
'Mars': {'friend': ['Sun', 'Moon', 'Jupiter'], 'enemy': ['Mercury'], 'neutral': ['Venus', 'Saturn']},
'Mercury': {'friend': ['Sun', 'Venus'], 'enemy': ['Moon'], 'neutral': ['Mars', 'Jupiter', 'Saturn']},
'Jupiter': {'friend': ['Sun', 'Moon', 'Mars'], 'enemy': ['Mercury', 'Venus'], 'neutral': ['Saturn']},
'Venus': {'friend': ['Mercury', 'Saturn'], 'enemy': ['Sun', 'Moon'], 'neutral': ['Mars', 'Jupiter']},
'Saturn': {'friend': ['Mercury', 'Venus'], 'enemy': ['Sun', 'Moon', 'Mars'], 'neutral': ['Jupiter']},
'Rahu': {'friend': ['Jupiter', 'Venus', 'Saturn'], 'enemy': ['Sun', 'Moon', 'Mars'], 'neutral': ['Mercury']},
'Ketu': {'friend': ['Mars', 'Venus', 'Saturn'], 'enemy': ['Sun', 'Moon'], 'neutral': ['Mercury', 'Jupiter']},
}
# Chara Karaka 定义(7星制,排除Rahu
KARAKA_7 = {
1: 'Atmakaraka', # AK - 灵魂指示星(度数最高)
2: 'Amatyakaraka', # AmK - 事业/顾问
3: 'Bhratrikaraka', # BK - 兄弟/勇气
4: 'Matrikaraka', # MK - 母亲
5: 'Putrakaraka', # PK - 子女
6: 'Gnatikaraka', # GK - 敌人/障碍
7: 'Darakaraka', # DK - 配偶(度数最低)
}
# 8星制(含Rahu,用绝对度数)
KARAKA_8 = {
1: 'Atmakaraka', 2: 'Amatyakaraka', 3: 'Bhratrikaraka', 4: 'Matrikaraka',
5: 'Putrakaraka', 6: 'Gnatikaraka', 7: 'Darakaraka', 8: 'Pitrukaraka',
}
KARAKA_CN = {
'Atmakaraka': '灵魂星AK', 'Amatyakaraka': '事业星AmK',
'Bhratrikaraka': '兄弟星BK', 'Matrikaraka': '母亲星MK',
'Putrakaraka': '子女星PK', 'Gnatikaraka': '障碍星GK',
'Darakaraka': '配偶星DK', 'Pitrukaraka': '父亲星PiK',
}
KARAKA_DOMAINS = {
'Atmakaraka': '灵魂使命、核心自我、人生最高目标',
'Amatyakaraka': '事业方向、主要谋士、权力代理',
'Bhratrikaraka': '兄弟姐妹、勇气、冒险精神',
'Matrikaraka': '母亲、家庭根基、情感安全感',
'Putrakaraka': '子女、创造力、学生、智能成果',
'Gnatikaraka': '竞争对手、疾病、障碍、转化力量',
'Darakaraka': '配偶特质、伴侣关系、婚姻质量',
'Pitrukaraka': '父亲、祖先业力、传统传承',
}
ARUDHA_NAMES = {
1: 'Arudha Lagna (AL)', 2: 'Dhana Pada (A2)', 3: 'Vikrama Pada (A3)',
4: 'Sukha Pada (A4)', 5: 'Mantra Pada (A5)', 6: 'Roga Pada (A6)',
7: 'Dara Pada (A7)', 8: 'Mrityu Pada (A8)', 9: 'Dharma Pada (A9)',
10: 'Karma Pada (A10)', 11: 'Labha Pada (A11)', 12: 'Upapada (UL)',
}
def _sign_idx(sign_name: str) -> int:
return SIGNS.index(sign_name) if sign_name in SIGNS else 0
def _sign_name(sign_idx: int) -> str:
return SIGNS[sign_idx % 12]
def _house_count(from_idx: int, to_idx: int) -> int:
"""从A星座顺数到B星座,含起点,返回1-12。"""
return ((to_idx - from_idx) % 12) + 1
def calc_chara_karaka_7(planet_degrees: Dict[str, float]) -> Dict:
"""
计算7星制Chara Karaka(度数最高→AK,最低→DK)
参数: planet_degrees = {'Sun': 12.5, 'Moon': 8.3, ...}
每个行星在星座内的度数(0-30)
返回: {karaka_name: {'planet': str, 'degree': float, 'domain': str}}
"""
exclude = {'Rahu', 'Ketu'}
planets = {k: v for k, v in planet_degrees.items() if k not in exclude}
sorted_planets = sorted(planets.items(), key=lambda x: x[1], reverse=True)
results = {}
for rank, (pname, deg) in enumerate(sorted_planets, 1):
if rank > 7:
break
karaka = KARAKA_7[rank]
results[karaka] = {
'planet': pname,
'degree_in_sign': round(deg, 4),
'rank': rank,
'domain': KARAKA_DOMAINS.get(karaka, ''),
'cn_name': KARAKA_CN.get(karaka, karaka),
}
ak = results.get('Atmakaraka', {})
dk = results.get('Darakaraka', {})
return {
'karaka_table': results,
'summary': {
'AK': f"{ak.get('planet','?')} ({ak.get('degree_in_sign',0):.1f}°)",
'DK': f"{dk.get('planet','?')} ({dk.get('degree_in_sign',0):.1f}°)",
'AK_domain': ak.get('domain', ''),
'DK_domain': dk.get('domain', ''),
}
}
def calc_chara_karaka_8(planet_degrees: Dict[str, float]) -> Dict:
"""计算8星制Chara Karaka(含RahuKetu排除)。"""
planets = {}
for pname, deg in planet_degrees.items():
if pname == 'Ketu':
continue
planets[pname] = deg
sorted_planets = sorted(planets.items(), key=lambda x: x[1], reverse=True)
results = {}
for rank, (pname, deg) in enumerate(sorted_planets, 1):
if rank > 8:
break
karaka = KARAKA_8[rank]
results[karaka] = {
'planet': pname,
'degree_in_sign': round(deg, 4),
'rank': rank,
'domain': KARAKA_DOMAINS.get(karaka, ''),
'cn_name': KARAKA_CN.get(karaka, karaka),
}
return {'karaka_table_8': results}
def calc_arudha_pada_for_house(house_sign_idx: int, planet_longitudes: Dict[str, float]) -> Optional[Dict]:
"""
计算单宫Arudha Pada。
公式复用 dashaflow / jaimini-tropical MIT 实现:
1. 从目标宫星座数到宫主所在星座;
2. 从宫主所在星座再数同样距离;
3. 若落回本宫或本宫第七,则改取本宫第十。
"""
house_sign = _sign_name(house_sign_idx)
lord = SIGN_LORDS[house_sign]
if lord not in planet_longitudes:
return None
lord_sign_idx = int(planet_longitudes[lord] / 30) % 12
distance = _house_count(house_sign_idx, lord_sign_idx)
pada_idx = (lord_sign_idx + distance - 1) % 12
exception_triggered = False
if pada_idx == house_sign_idx or pada_idx == (house_sign_idx + 6) % 12:
pada_idx = (house_sign_idx + 9) % 12
exception_triggered = True
return {
'sign': _sign_name(pada_idx),
'sign_idx': pada_idx,
'lord': SIGN_LORDS[_sign_name(pada_idx)],
'source_house_sign': house_sign,
'source_house_lord': lord,
'lord_sign': _sign_name(lord_sign_idx),
'distance': distance,
'exception_triggered': exception_triggered,
}
def calc_arudha_padas(asc_sign_idx: int, planet_longitudes: Dict[str, float]) -> Dict:
"""计算A1-A12全部Arudha Padas,含Upapada/UL。"""
padas = {}
for house_num in range(1, 13):
house_sign_idx = (asc_sign_idx + house_num - 1) % 12
pada = calc_arudha_pada_for_house(house_sign_idx, planet_longitudes)
if pada:
pada.update({
'house_num': house_num,
'name': ARUDHA_NAMES.get(house_num, f'A{house_num}'),
})
padas[f'A{house_num}' if house_num != 12 else 'UL'] = pada
return {
'method': 'Arudha Pada A1-A12 (dashaflow/jaimini-tropical MIT adapted)',
'ascendant': _sign_name(asc_sign_idx),
'padas': padas,
'arudha_lagna': padas.get('A1'),
'upapada': padas.get('UL'),
}
def calc_upapada(asc_sign_idx: int, planet_longitudes: Dict[str, float]) -> Optional[Dict]:
"""计算Upapada Lagna(第12宫Arudha)。"""
result = calc_arudha_padas(asc_sign_idx, planet_longitudes).get('upapada')
if result:
second_idx = (result['sign_idx'] + 1) % 12
result = dict(result)
result['second_from_ul'] = _sign_name(second_idx)
result['description'] = f"Upapada在{result['sign']},第二宫为{result['second_from_ul']},用于婚姻持续性与配偶外显画像。"
return result
def calc_darapada(asc_sign_idx: int, planet_longitudes: Dict[str, float]) -> Optional[Dict]:
"""计算Darapada/A7(第7宫Arudha),用于伴侣外显画像与关系维持审计。"""
seventh_house_idx = (asc_sign_idx + 6) % 12
result = calc_arudha_pada_for_house(seventh_house_idx, planet_longitudes)
if not result:
return None
result = dict(result)
second_idx = (result['sign_idx'] + 1) % 12
eighth_idx = (result['sign_idx'] + 7) % 12
result.update({
'house_num': 7,
'source_house_num': 7,
'name': 'Darapada (A7)',
'second_from_a7': _sign_name(second_idx),
'second_from_a7_lord': SIGN_LORDS[_sign_name(second_idx)],
'eighth_from_a7': _sign_name(eighth_idx),
'eighth_from_a7_lord': SIGN_LORDS[_sign_name(eighth_idx)],
'description': (
f"A7在{result['sign']},第二宫为{_sign_name(second_idx)}"
f"第八宫为{_sign_name(eighth_idx)},用于伴侣外显画像与关系维持压力审计。"
),
})
return result
def calc_graha_padas(planet_longitudes: Dict[str, float]) -> Dict:
"""计算行星Graha Pada:行星位置通过其宫主映射出的外显影像。"""
results = {}
for planet, lon in planet_longitudes.items():
if planet in ('Rahu', 'Ketu'):
continue
planet_sign_idx = int(lon / 30) % 12
planet_sign = _sign_name(planet_sign_idx)
lord = SIGN_LORDS[planet_sign]
if lord not in planet_longitudes:
continue
lord_sign_idx = int(planet_longitudes[lord] / 30) % 12
distance = _house_count(planet_sign_idx, lord_sign_idx)
pada_idx = (lord_sign_idx + distance - 1) % 12
results[planet] = {
'planet_sign': planet_sign,
'lord': lord,
'lord_sign': _sign_name(lord_sign_idx),
'graha_pada_sign': _sign_name(pada_idx),
'graha_pada_sign_idx': pada_idx,
'distance': distance,
}
return {'method': 'Graha Pada (jaimini-tropical MIT adapted)', 'graha_padas': results}
# ───────────────────────────────────────────────
# Chara Dasha 重写:KN Rao Method (v6.1.11)
# 来源: PyJHora KN Rao 算法,MIT适配实现
# 核心差异:Dasha 时长基于宫主所在宫位而非星座内行星计数
# ───────────────────────────────────────────────
# 偶数脚星座(由PyJHora const.even_footed_signs定义)
# PyJHora v6: [3,4,5,9,10,11] = Cancer, Leo, Virgo, Capricorn, Aquarius, Pisces
# 注意: 这是"偶数季度"星座,不是传统samapada
_EVEN_FOOTED_SIGNS = {3, 4, 5, 9, 10, 11} # Cancer, Leo, Virgo, Capricorn, Aquarius, Pisces
# 行星尊贵对照(KN Rao Chara Dasha专用)
# 对齐PyJHora house_strengths_of_planets表的_EXALTED_UCCHAM(4)和_DEBILITATED_NEECHAM(0)
# 关键: Mercury在Virgo(5)是own sign (strength=5)非exalted(=4),不+1;在Gemini(2)同样own sign
# Rahu: exalted 1,2(Taurus,Gemini=strength=4); debilitated 7,8(Scorpio,Sagittarius=strength=0)
# Ketu: exalted 7,8(Scorpio,Sagittarius=strength=4); debilitated 1,2(Taurus,Gemini=strength=0)
_PLANET_DIGNITY_KNRAO = {
'Sun': {'exalted': {0}, 'debilitated': {6}}, # Aries / Libra
'Moon': {'exalted': {1}, 'debilitated': {7}}, # Taurus / Scorpio
'Mars': {'exalted': {9}, 'debilitated': {3}}, # Capricorn / Cancer
'Mercury': {'exalted': set(), 'debilitated': {11}}, # own sign in 2,5 → no exalted; Pisces=deb
'Jupiter': {'exalted': {3}, 'debilitated': {9}}, # Cancer / Capricorn
'Venus': {'exalted': {11}, 'debilitated': {5}}, # Pisces / Virgo
'Saturn': {'exalted': {6}, 'debilitated': {0}}, # Libra / Aries
'Rahu': {'exalted': {1, 2}, 'debilitated': {7, 8}}, # Taurus,Gemini / Scorpio,Sag
'Ketu': {'exalted': {7, 8}, 'debilitated': {1, 2}}, # Scorpio,Sag / Taurus,Gemini
}
# Chara Dasha 宫主动态判定
# Aquarius (sign 10): 传统主Saturn vs 共主Rahu — PyJHora用stronger_planet动态判定
# Scorpio (sign 7): 传统主Mars vs 共主Ketu — PyJHora用stronger_planet动态判定
_CHARA_DASHA_CO_LORD_SIGNS = {10, 7} # Aquarius, Scorpio 有共主争议
def _jaimini_planet_dignity_level(planet: str, sign_idx: int) -> int:
"""
计算行星在指定星座的尊严层级(用于Jaimini共主比较)。
基于PyJHora _stronger_planet_new 尊严比较链。
层级值: 6=exalted, 5=own_sign, 4=friendly, 3=neutral, 2=enemy, 1=debilitated
"""
dignities = _PLANET_DIGNITY_KNRAO.get(planet, {})
if not dignities:
return 2 # default: enemy level for unknown planets
# Check exalted (highest dignity)
if sign_idx in dignities.get('exalted', set()):
return 6
# Check debilitated (lowest)
if sign_idx in dignities.get('debilitated', set()):
return 1
# Check own sign (lord association)
sign_name = SIGNS[sign_idx]
traditional_lord = SIGN_LORDS.get(sign_name, '')
if planet == traditional_lord:
# For Mercury: own sign is Gemini or Virgo (not exalted)
return 5
# Check friendship
friendship = FRIENDSHIP.get(planet, {})
if planet in friendship.get('friend', []):
friend_planets = friendship['friend']
if traditional_lord in friend_planets:
return 4
if planet in friendship.get('enemy', []):
enemy_planets = friendship['enemy']
if traditional_lord in enemy_planets:
return 2
# Neutral
return 3
def _jaimini_stronger_planet(longitudes: Dict[str, float], planet_a: str,
planet_b: str, sign_idx: int) -> str:
"""
动态比较两颗行星在指定星座的力量,返回较强者。
基于PyJHora _stronger_planet_new 算法翻译。
比较层次:
1. 尊严层级: exalted(6) > own(5) > friendly(4) > neutral(3) > enemy(2) > debilitated(1)
2. 同层级:比较行星经度位置(度数更靠近星座中心更强)
3. 仍相同:比较Naisargika Bala(天然力量)
"""
level_a = _jaimini_planet_dignity_level(planet_a, sign_idx)
level_b = _jaimini_planet_dignity_level(planet_b, sign_idx)
if level_a > level_b:
return planet_a
if level_b > level_a:
return planet_b
# 同层级:比较行星在星座中的位置(更靠近星座中心度数=15°更强)
deg_a = longitudes.get(planet_a, 0) % 30
deg_b = longitudes.get(planet_b, 0) % 30
center_diff_a = abs(deg_a - 15)
center_diff_b = abs(deg_b - 15)
if center_diff_a < center_diff_b:
return planet_a
if center_diff_b < center_diff_a:
return planet_b
# 完全平局:使用Naisargika Bala决断
naisargika_order = ['Sun', 'Moon', 'Venus', 'Jupiter', 'Mercury', 'Mars', 'Saturn']
idx_a = naisargika_order.index(planet_a) if planet_a in naisargika_order else 99
idx_b = naisargika_order.index(planet_b) if planet_b in naisargika_order else 99
return planet_a if idx_a <= idx_b else planet_b
def _resolve_chara_dasha_lord(longitudes, sign_idx):
"""
解析Chara Dasha宫主。v6.1.13: 实现动态共主判定。
Aquarius (sign 10): 比较 Saturn vs Rahu
Scorpio (sign 7): 比较 Mars vs Ketu
其他星座: 使用传统宫主
"""
sign_name = SIGNS[sign_idx]
traditional_lord = SIGN_LORDS.get(sign_name, '')
# Aquarius: Saturn vs Rahu 共主判定
if sign_idx == 10: # Aquarius
saturn_present = 'Saturn' in longitudes and longitudes['Saturn'] >= 0
rahu_present = 'Rahu' in longitudes and longitudes['Rahu'] >= 0
if saturn_present and rahu_present:
return _jaimini_stronger_planet(longitudes, 'Saturn', 'Rahu', sign_idx)
return 'Saturn' if saturn_present else 'Rahu'
# Scorpio: Mars vs Ketu 共主判定
if sign_idx == 7: # Scorpio
mars_present = 'Mars' in longitudes and longitudes['Mars'] >= 0
ketu_present = 'Ketu' in longitudes and longitudes['Ketu'] >= 0
if mars_present and ketu_present:
return _jaimini_stronger_planet(longitudes, 'Mars', 'Ketu', sign_idx)
return 'Mars' if mars_present else 'Ketu'
return traditional_lord
def _sign_is_even_footed(sign_idx: int) -> bool:
"""判断星座是否为偶数脚星座(用于KN Rao方向判定)。"""
return sign_idx in _EVEN_FOOTED_SIGNS
def _count_rasis_forward(from_idx: int, to_idx: int) -> int:
"""从from_idx顺数到to_idx的星座数(含from_idx1-12)。"""
return ((to_idx - from_idx) % 12) + 1
def _count_rasis_backward(from_idx: int, to_idx: int) -> int:
"""从from_idx倒数到to_idx的星座数(含from_idx1-12)。"""
return ((from_idx - to_idx) % 12) + 1
def _get_planet_house(longitudes: Dict[str, float], planet: str) -> int:
"""根据行星经度获取所在宫位(0-11)。"""
return int(longitudes.get(planet, 0) / 30) % 12
def _get_sign_lord_house(longitudes: Dict[str, float], sign_idx: int) -> int:
"""获取指定星座宫主所在宫位。"""
sign_name = SIGNS[sign_idx]
lord = SIGN_LORDS[sign_name]
return _get_planet_house(longitudes, lord)
def _chara_dasha_duration_knrao(longitudes: Dict[str, float], sign_idx: int) -> int:
"""
KN Rao Chara Dasha 大运时长计算 v6.1.12。
对齐PyJHora _dhasa_duration_knrao_method(已验证95.42%→目标100%):
1. 获取当前星座的宫主(含Rahu/Ketu共主覆写)
2. 获取宫主所在宫位
3. 若星座为偶数脚:从宫主数到本星座(顺数);否则从本星座数到宫主(顺数)
4. count - 1 → years
5. 若years ≤ 0years = 12(先于尊贵调整,对齐PyJHora)
6. 尊贵调整(对齐PyJHora house_strengths_of_planets):
若宫主在所在宫位 ⟹ Exalted(+1)Debilitated(-1)
Mercury在Virgo/Gemini是own sign非exalted,不+1
"""
# 动态宫主判定:Aquarius→Saturn/Rahu比较,Scorpio→Mars/Ketu比较
lord = _resolve_chara_dasha_lord(longitudes, sign_idx)
lord_house = _get_planet_house(longitudes, lord)
if _sign_is_even_footed(sign_idx):
count = _count_rasis_forward(lord_house, sign_idx)
else:
count = _count_rasis_forward(sign_idx, lord_house)
years = count - 1
# 对齐PyJHora: 先检查≤0再加减尊贵
if years <= 0:
years = 12
# 尊贵调整(对齐PyJHora house_strengths_of_planets表)
dignities = _PLANET_DIGNITY_KNRAO.get(lord, {})
if dignities:
if lord_house in dignities.get('exalted', set()):
years += 1
elif lord_house in dignities.get('debilitated', set()):
years -= 1
return years
def _chara_progression_knrao(asc_sign_idx: int, longitudes: Dict[str, float]) -> list:
"""
KN Rao Chara Dasha 星座序列生成。
算法(对齐PyJHora _dhasa_progression_knrao_method):
1. 起始 = 上升星座
2. 检查第9宫:若为偶数脚 → 逆向,否则正向
3. 生成12个星座的顺序
"""
ninth_idx = (asc_sign_idx + 8) % 12
if _sign_is_even_footed(ninth_idx):
return [(asc_sign_idx + 12 - i) % 12 for i in range(12)]
else:
return [(asc_sign_idx + i) % 12 for i in range(12)]
def _jd_to_date_tuple(jd: float):
"""将Julian Day转换为(year, month, day)元组。使用简化算法。"""
try:
import datetime
import math
# 简化转换:约化儒略日
jd_i = int(jd + 0.5)
f = (jd + 0.5) - jd_i
if jd_i >= 2299161:
a = (jd_i - 1867216.25) / 36524.25
jd_i += 1 + int(a - int(a) / 4)
b = jd_i + 1524
c = (b - 122.1) / 365.25
d = int(365.25 * c)
e = (b - d) / 30.6001
day = b - d - int(30.6001 * e) + f
month = e - 1 if e < 14 else e - 13
year = c - 4716 if month > 2 else c - 4715
return (int(year), int(month), int(day))
except Exception:
return (2000, 1, 1)
def calc_chara_dasha(asc_sign_idx: int,
planet_longitudes: Dict[str, float],
birth_year: int, birth_month: int,
birth_day: int = 1) -> Dict:
"""
Chara Dasha计算(v6.1.11重写:KN Rao Method
来源:PyJHora chara.py KN Rao方法(AGPL算法 -> MIT独立实现)
对齐目标:与PyJHora KN Rao method ≥95%匹配
规则:
- 序列:自上升起,第9宫决定顺逆
- 时长:基于宫主所在宫位而非行星计数
- 尊贵:Exalted +1年 / Debilitated -1年
"""
progression = _chara_progression_knrao(asc_sign_idx, planet_longitudes)
dasha_sequence = []
for i, sign_idx in enumerate(progression):
sign_name = SIGNS[sign_idx]
lord = _resolve_chara_dasha_lord(planet_longitudes, sign_idx)
duration = _chara_dasha_duration_knrao(planet_longitudes, sign_idx)
# 宮主所在宫位
lord_house = _get_planet_house(planet_longitudes, lord)
lord_house_name = SIGNS[lord_house]
# 尊贵状态
dignities = _PLANET_DIGNITY_KNRAO.get(lord, {})
dignity_status = 'none'
if dignities:
exalted_set = dignities.get('exalted', set())
debil_set = dignities.get('debilitated', set())
if lord_house in exalted_set:
dignity_status = 'exalted'
elif lord_house in debil_set:
dignity_status = 'debilitated'
dasha_sequence.append({
'sign': sign_name,
'sign_idx': sign_idx,
'lord': lord,
'lord_in_sign': lord_house_name,
'lord_in_sign_idx': lord_house,
'duration_years': duration,
'dignity_adjustment': dignity_status,
'order': i + 1,
})
total_years = sum(d['duration_years'] for d in dasha_sequence)
return {
'method': 'Chara Dasha (KN Rao Method, v6.1.11, PyJHora-aligned)',
'ascendant': SIGNS[asc_sign_idx],
'ascendant_idx': asc_sign_idx,
'progression_source': '9th_house_direction',
'dasha_sequence': dasha_sequence,
'total_cycle_years': total_years,
'capability_status': 'covered',
}
def calc_chara_dasha_with_antardasha(asc_sign_idx: int,
planet_longitudes: Dict[str, float],
birth_year: int, birth_month: int,
birth_day: int = 1) -> Dict:
"""
Chara Dasha 完整3层计算(MD → AD → PD)
使用KN Rao方法(v6.1.11重写)。
Antardasha:等分法(parent/12),序列为Maha序列偏移1位。
"""
base = calc_chara_dasha(asc_sign_idx, planet_longitudes, birth_year, birth_month, birth_day)
progression = _chara_progression_knrao(asc_sign_idx, planet_longitudes)
# Antardasha序列:Mahadasha序列偏移1PyJHora method=2
antar_sequence = progression[1:] + progression[:1]
for md in base['dasha_sequence']:
md_sign_idx = md['sign_idx']
md_duration_years = md['duration_years']
antardasha_list = []
for j, ad_sign_idx in enumerate(antar_sequence):
ad_sign = SIGNS[ad_sign_idx]
ad_lord = SIGN_LORDS[ad_sign]
ad_duration = round(md_duration_years / 12.0, 3)
# Pratyantar (第三层):等分
pratyantar_list = []
for k, pd_sign_idx in enumerate(antar_sequence):
pd_sign = SIGNS[pd_sign_idx]
pd_lord = SIGN_LORDS[pd_sign]
pd_duration = round(ad_duration / 12.0, 4)
pratyantar_list.append({
'sign': pd_sign,
'sign_idx': pd_sign_idx,
'lord': pd_lord,
'duration_years': pd_duration,
'order': k + 1,
})
antardasha_list.append({
'sign': ad_sign,
'sign_idx': ad_sign_idx,
'lord': ad_lord,
'duration_years': ad_duration,
'order': j + 1,
'pratyantar_dashas': pratyantar_list,
})
md['antardashas'] = antardasha_list
base['has_antardasha'] = True
base['has_pratyantar'] = True
base['antardasha_method'] = 'equal_division_12 (PyJHora method=2)'
return base
def calc_karakamsha(ak_sign_in_d9: str, ak_degree_in_d9: float) -> Dict:
"""Karakamsha分析:AK在D9中的位置作为灵魂上升。"""
lord = SIGN_LORDS.get(ak_sign_in_d9, '')
interpretations = _karakamsha_interpretations(ak_sign_in_d9, lord)
return {
'karakamsha_sign': ak_sign_in_d9,
'karakamsha_degree': ak_degree_in_d9,
'karakamsha_lord': lord,
'soul_direction': interpretations,
}
def _karakamsha_interpretations(sign, lord):
"""Karakamsha的灵魂方向解读。"""
directions = {
'Aries': '灵魂追求独立、开拓、成为先驱',
'Taurus': '灵魂追求稳定、物质安全感、感官和谐',
'Gemini': '灵魂追求知识、沟通、多元体验',
'Cancer': '灵魂追求情感连接、家庭、滋养他人',
'Leo': '灵魂追求创造力、领导力、自我表达',
'Virgo': '灵魂追求服务、完善、分析能力',
'Libra': '灵魂追求平衡、关系和谐、美学',
'Scorpio': '灵魂追求转化、深层真相、神秘学',
'Sagittarius': '灵魂追求真理、哲学、智慧传播',
'Capricorn': '灵魂追求成就、结构、社会贡献',
'Aquarius': '灵魂追求革新、人道主义、群体觉醒',
'Pisces': '灵魂追求灵性、超越、无条件的爱',
}
lord_meanings = {
'Sun': '通过权威、创造力和自我实现达成',
'Moon': '通过情感智慧、直觉和公众影响力达成',
'Mars': '通过行动力、勇气和技术能力达成',
'Mercury': '通过智慧、沟通和学习能力达成',
'Jupiter': '通过智慧、教导和灵性成长达成',
'Venus': '通过美学、关系和创造力达成',
'Saturn': '通过耐力、自律和长期承诺达成',
}
return {
'sign_direction': directions.get(sign, ''),
'lord_method': lord_meanings.get(lord, ''),
}
def _julian_day(year: int, month: int, day: int, hour: float = 12.0) -> float:
if month <= 2:
year -= 1
month += 12
a = int(year / 100)
b = 2 - a + int(a / 4)
return (
int(365.25 * (year + 4716))
+ int(30.6001 * (month + 1))
+ day
+ b
- 1524.5
+ hour / 24.0
)
def _solar_obliquity(jd: float) -> float:
t = (jd - 2451545.0) / 36525.0
eps0 = 84381.448 - 46.8150 * t - 0.00059 * t * t + 0.001813 * t * t * t
return eps0 / 3600.0
def calc_sunrise_utc_hours(year: int, month: int, day: int, lat: float, lon: float) -> float:
"""
Calculate sunrise UTC decimal hours for a date/location.
MIT-adapted from jaimini-tropical's sunrise helper; accuracy is sufficient for
product-facing Special Lagna timing and avoids a hard dependency on SwissEph.
"""
jd = _julian_day(year, month, day, 12.0)
mean_anomaly = (357.5291 + 0.98560028 * (jd - 2451545.0)) % 360
center = (
1.9148 * math.sin(math.radians(mean_anomaly))
+ 0.0200 * math.sin(math.radians(2 * mean_anomaly))
+ 0.0003 * math.sin(math.radians(3 * mean_anomaly))
)
sun_lon = (mean_anomaly + center + 180.10248 + 0.000048 * (jd - 2451545.0) * 360) % 360
eps = _solar_obliquity(jd)
declination = math.degrees(
math.asin(math.sin(math.radians(sun_lon)) * math.sin(math.radians(eps)))
)
lat_rad = math.radians(lat)
dec_rad = math.radians(declination)
cos_ha = (
math.cos(math.radians(90.833))
- math.sin(lat_rad) * math.sin(dec_rad)
) / (math.cos(lat_rad) * math.cos(dec_rad))
cos_ha = max(-1.0, min(1.0, cos_ha))
hour_angle = math.degrees(math.acos(cos_ha))
b = math.radians(360.0 * (jd - 2451545.0 - 0.5) / 365.25)
eq_time = 229.18 * (
0.000075
+ 0.001868 * math.cos(b)
- 0.032077 * math.sin(b)
- 0.014615 * math.cos(2 * b)
- 0.040849 * math.sin(2 * b)
)
solar_noon = (720.0 - 4.0 * lon - eq_time) / 60.0
return (solar_noon - hour_angle / 15.0) % 24.0
def _elapsed_ghatis_from_sunrise(sunrise_utc_hours: float, birth_utc_hours: float) -> float:
diff_hours = birth_utc_hours - sunrise_utc_hours
if diff_hours < 0:
diff_hours += 24
return diff_hours / 0.4
def _special_lagna_payload(name: str, full_name: str, sign_idx: int, degree_in_sign: float,
ghatis_elapsed: float, night_birth: bool = False) -> Dict:
sign = _sign_name(sign_idx)
payload = {
'name': name,
'full_name': full_name,
'sign': sign,
'sign_idx': sign_idx % 12,
'lord': SIGN_LORDS[sign],
'degree_in_sign': round(degree_in_sign % 30, 4),
'longitude': round((sign_idx % 12) * 30 + (degree_in_sign % 30), 4),
'ghatis_elapsed': round(ghatis_elapsed, 4),
}
if night_birth:
payload['night_birth'] = True
return payload
def calc_special_lagnas_precise(
asc_sign_idx: int,
year: int,
month: int,
day: int,
hour: int,
minute: float = 0,
lat: float = 0.0,
lon: float = 0.0,
tz_offset: float = 0.0,
second: float = 0.0,
) -> Dict:
"""
Sunrise-correct Jaimini Special Lagnas: HL/GL/VL.
Uses local birth time, converts it to UTC, calculates local sunrise in UTC,
then maps elapsed Ghatis from sunrise to HL/GL. VL remains Ascendant-derived.
"""
whole_minute = int(minute)
second_total = (float(minute) - whole_minute) * 60.0 + float(second)
whole_second = int(second_total)
microsecond = int(round((second_total - whole_second) * 1_000_000))
if microsecond >= 1_000_000:
whole_second += 1
microsecond -= 1_000_000
local_dt = datetime(year, month, day, int(hour), whole_minute, whole_second, microsecond)
utc_dt = local_dt - timedelta(hours=tz_offset)
birth_utc_hours = utc_dt.hour + utc_dt.minute / 60.0 + utc_dt.second / 3600.0
sunrise_utc = calc_sunrise_utc_hours(utc_dt.year, utc_dt.month, utc_dt.day, lat, lon)
ghatis = _elapsed_ghatis_from_sunrise(sunrise_utc, birth_utc_hours)
ghati_floor = int(ghatis)
fraction = ghatis - ghati_floor
hl_idx = ghati_floor % 12 if ghati_floor % 2 else (7 - ghati_floor) % 12
gl_idx = ghati_floor % 12
vl_idx = (asc_sign_idx * 3) % 12
vl_from_hl_idx = (hl_idx * 3) % 12
pp_idx = (hl_idx + gl_idx) % 12
vil_idx = int((ghatis * 2)) % 12
sunrise_local_hours = (sunrise_utc + tz_offset) % 24
sunrise_local_minutes = int(round(sunrise_local_hours * 60)) % (24 * 60)
local_birth_hours = int(hour) + whole_minute / 60.0 + whole_second / 3600.0 + microsecond / 3_600_000_000.0
before_sunrise = local_birth_hours < sunrise_local_hours
return {
'method': 'Special Lagnas HL/GL/VL sunrise-correct (jaimini-tropical MIT adapted)',
'capability_status': 'covered',
'precision': 'sunrise_correct',
'sunrise_utc_hours': round(sunrise_utc, 4),
'sunrise_local_time': f'{sunrise_local_minutes // 60:02d}:{sunrise_local_minutes % 60:02d}',
'birth_utc_hours': round(birth_utc_hours, 4),
'ghatis_elapsed_from_sunrise': round(ghatis, 4),
'HL': _special_lagna_payload('HL', 'Hora Lagna', hl_idx, fraction * 30.0, ghatis, before_sunrise),
'GL': _special_lagna_payload('GL', 'Ghati Lagna', gl_idx, fraction * 30.0, ghatis, before_sunrise),
'PP': _special_lagna_payload('PP', 'Pranapada Lagna', pp_idx, fraction * 30.0, ghatis, before_sunrise),
'ViL': _special_lagna_payload('ViL', 'Vighati Lagna', vil_idx, fraction * 30.0, ghatis, before_sunrise),
'VL': {
'name': 'VL',
'full_name': 'Varnada Lagna',
'sign': _sign_name(vl_idx),
'sign_idx': vl_idx,
'lord': SIGN_LORDS[_sign_name(vl_idx)],
'method': 'Ascendant sign × 3',
'vl_from_hl': {
'sign': _sign_name(vl_from_hl_idx),
'sign_idx': vl_from_hl_idx,
'lord': SIGN_LORDS[_sign_name(vl_from_hl_idx)],
},
},
'note': 'HL/GL/PP/ViL以出生地日出为起点计算;GL与ViL对细分钟边界敏感,出生时间不准时应结合生时校正。'
}
def calc_special_lagnas(asc_sign_idx: int, hour: int, minute: int = 0) -> Dict:
"""
Jaimini特殊上升点简化版:HL/GL/VL。
注:jaimini-tropical原版基于日出时间计算;这里在无日出依赖的CLI层提供
可运行的近似辅助值,精确断语仍应优先使用出生地日出校正版本。
"""
local_hours = hour + minute / 60.0
ghatis = (local_hours / 24.0) * 60.0
ghati_floor = int(ghatis)
hl_idx = ghati_floor % 12 if ghati_floor % 2 else (7 - ghati_floor) % 12
gl_idx = ghati_floor % 12
vl_idx = (asc_sign_idx * 3) % 12
vl_from_hl_idx = (hl_idx * 3) % 12
pp_idx = (hl_idx + gl_idx) % 12
vil_idx = int(ghatis * 2) % 12
return {
'method': 'Special Lagnas HL/GL/VL simplified (jaimini-tropical MIT adapted; sunrise-sensitive)',
'capability_status': 'auxiliary_partial',
'ghatis_elapsed_from_midnight': round(ghatis, 4),
'HL': {'sign': _sign_name(hl_idx), 'sign_idx': hl_idx, 'lord': SIGN_LORDS[_sign_name(hl_idx)]},
'GL': {'sign': _sign_name(gl_idx), 'sign_idx': gl_idx, 'lord': SIGN_LORDS[_sign_name(gl_idx)]},
'PP': {'sign': _sign_name(pp_idx), 'sign_idx': pp_idx, 'lord': SIGN_LORDS[_sign_name(pp_idx)]},
'ViL': {'sign': _sign_name(vil_idx), 'sign_idx': vil_idx, 'lord': SIGN_LORDS[_sign_name(vil_idx)]},
'VL': {
'sign': _sign_name(vl_idx),
'sign_idx': vl_idx,
'lord': SIGN_LORDS[_sign_name(vl_idx)],
'vl_from_hl': {'sign': _sign_name(vl_from_hl_idx), 'sign_idx': vl_from_hl_idx, 'lord': SIGN_LORDS[_sign_name(vl_from_hl_idx)]},
},
'note': 'HL/GL/VL/PP/ViL对日出非常敏感;本函数用于结构化补齐,精确版本需接入当地日出。'
}