Spaces:
Running
on
Zero
Running
on
Zero
Update scoring_calculation_system.py
Browse files- scoring_calculation_system.py +951 -243
scoring_calculation_system.py
CHANGED
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@@ -29,103 +29,259 @@ class UserPreferences:
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self.barking_acceptance = self.noise_tolerance
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@staticmethod
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-
def calculate_breed_bonus(breed_info: dict, user_prefs:
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-
"""
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bonus = 0.0
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temperament = breed_info.get('Temperament', '').lower()
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-
#
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try:
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lifespan = breed_info.get('Lifespan', '10-12 years')
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years = [int(x) for x in lifespan.split('-')[0].split()[0:1]]
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except:
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pass
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-
#
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positive_traits = {
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'friendly': 0.
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'gentle': 0.
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'patient': 0.
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'intelligent': 0.
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'adaptable': 0.
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'affectionate': 0.
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'easy-going': 0.
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'calm': 0.
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}
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negative_traits = {
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'aggressive': -0.
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'stubborn': -0.
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'dominant': -0.
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'aloof': -0.
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'nervous': -0.
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'protective': -0.
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}
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-
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-
personality_score
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-
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-
#
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adaptability_bonus = 0.0
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if breed_info.get('Size') == "Small" and user_prefs.living_space == "apartment":
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adaptability_bonus += 0.
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if 'adaptable' in temperament or 'versatile' in temperament:
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-
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-
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#
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if user_prefs.has_children:
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family_traits = {
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'good with children': 0.
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'patient': 0.
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'gentle': 0.
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'tolerant': 0.
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'playful': 0.
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}
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unfriendly_traits = {
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'aggressive': -0.
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'nervous': -0.
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'protective': -0.
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'territorial': -0.
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}
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#
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age_adjustments = {
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'toddler': {
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-
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-
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}
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adj = age_adjustments.get(user_prefs.children_age,
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{'bonus_mult': 1.0, 'penalty_mult': 1.0})
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bonus += min(0.
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-
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-
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# 5. 專門技能加分(最高0.1)
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skill_bonus = 0.0
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special_abilities = {
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'working': 0.03,
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'herding': 0.03,
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'hunting': 0.03,
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'tracking': 0.03,
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'agility': 0.02
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}
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for ability, value in special_abilities.items():
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if ability in temperament.lower():
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skill_bonus += value
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bonus += min(0.1, skill_bonus)
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-
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@staticmethod
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print("Missing Size information")
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raise KeyError("Size information missing")
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def calculate_space_score(size: str, living_space: str, has_yard: bool, exercise_needs: str) -> float:
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-
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# 基礎空間需求矩陣
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base_scores = {
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"Small": {
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}
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# 取得基礎分數
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base_score = base_scores.get(size, base_scores["Medium"])[living_space]
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#
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exercise_adjustments = {
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"Very High":
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}
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-
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#
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def calculate_exercise_score(breed_needs: str, user_time: int) -> float:
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"""運動需求計算"""
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else:
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return max(0.3, 0.8 * (user_time / breed_need['min']))
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def calculate_grooming_score(breed_needs: str, user_commitment: str, breed_size: str) -> float:
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-
"""
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base_scores = {
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"High": {
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}
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# 取得基礎分數
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base_score = base_scores.get(breed_needs, base_scores["Moderate"])[user_commitment]
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#
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size_adjustments = {
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"
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}
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-
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# def calculate_experience_score(care_level: str, user_experience: str, temperament: str) -> float:
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def calculate_experience_score(care_level: str, user_experience: str, temperament: str) -> float:
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"""
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"""
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# 基礎分數矩陣 -
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base_scores = {
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"High": {
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"beginner": 0.
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"intermediate": 0.
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"advanced": 1.0
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},
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"Moderate": {
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"beginner": 0.
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"intermediate": 0.
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"advanced": 1.0
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},
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"Low": {
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"beginner": 0.
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"intermediate": 0.
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"advanced": 1.0
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}
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}
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temperament_lower = temperament.lower()
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temperament_adjustments = 0.0
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if user_experience == "beginner":
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#
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difficult_traits = {
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'stubborn': -0.
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'independent': -0.
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'dominant': -0.
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'strong-willed': -0.
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'protective': -0.
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'aloof': -0.15,
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'energetic': -0.
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}
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#
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easy_traits = {
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'gentle': 0.
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'friendly': 0.
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'eager to please': 0.
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'patient': 0.
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'adaptable': 0.
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'calm': 0.
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}
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for trait, penalty in difficult_traits.items():
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if trait in temperament_lower:
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temperament_adjustments += penalty
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if trait in temperament_lower:
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temperament_adjustments += bonus
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#
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if
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temperament_adjustments -= 0.20
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elif user_experience == "intermediate":
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moderate_traits = {
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'
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'protective': -0.
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}
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for trait, adjustment in moderate_traits.items():
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else: # advanced
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# 資深玩家能夠應對挑戰性特徵
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advanced_traits = {
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'stubborn': 0.
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'independent': 0.
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'intelligent': 0.
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'protective': 0.
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'strong-willed': 0.
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}
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for trait, bonus in advanced_traits.items():
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if trait in temperament_lower:
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temperament_adjustments += bonus
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#
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final_score = max(0.
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return final_score
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def calculate_health_score(breed_name: str) -> float:
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|
| 504 |
if breed_name not in breed_health_info:
|
| 505 |
return 0.5
|
| 506 |
-
|
| 507 |
health_notes = breed_health_info[breed_name]['health_notes'].lower()
|
| 508 |
|
| 509 |
-
#
|
| 510 |
-
severe_conditions =
|
| 511 |
-
'hip dysplasia',
|
| 512 |
-
'heart disease',
|
| 513 |
-
'progressive retinal atrophy',
|
| 514 |
-
'bloat',
|
| 515 |
-
'epilepsy',
|
| 516 |
-
'degenerative myelopathy',
|
| 517 |
-
'von willebrand disease'
|
| 518 |
-
|
| 519 |
-
|
| 520 |
-
#
|
| 521 |
-
moderate_conditions =
|
| 522 |
-
'allergies',
|
| 523 |
-
'eye problems',
|
| 524 |
-
'joint problems',
|
| 525 |
-
'hypothyroidism',
|
| 526 |
-
'ear infections',
|
| 527 |
-
'skin issues'
|
| 528 |
-
|
| 529 |
-
|
| 530 |
-
#
|
| 531 |
-
minor_conditions =
|
| 532 |
-
'dental issues',
|
| 533 |
-
'weight gain tendency',
|
| 534 |
-
'minor allergies',
|
| 535 |
-
'seasonal allergies'
|
| 536 |
-
|
| 537 |
-
|
| 538 |
# 計算基礎健康分數
|
| 539 |
health_score = 1.0
|
| 540 |
|
| 541 |
-
#
|
| 542 |
-
|
| 543 |
-
|
| 544 |
-
|
|
|
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|
|
| 545 |
|
| 546 |
-
|
| 547 |
-
|
| 548 |
-
|
| 549 |
-
|
| 550 |
-
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|
| 551 |
try:
|
| 552 |
lifespan = breed_health_info[breed_name].get('average_lifespan', '10-12')
|
| 553 |
years = float(lifespan.split('-')[0])
|
| 554 |
if years < 8:
|
| 555 |
-
health_score *= 0.
|
|
|
|
|
|
|
| 556 |
elif years > 13:
|
| 557 |
-
health_score *= 1.1
|
| 558 |
except:
|
| 559 |
pass
|
| 560 |
-
|
| 561 |
# 特殊健康優勢
|
| 562 |
if 'generally healthy' in health_notes or 'hardy breed' in health_notes:
|
|
|
|
|
|
|
| 563 |
health_score *= 1.1
|
|
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|
|
| 564 |
|
| 565 |
-
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|
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|
|
|
|
| 566 |
|
| 567 |
-
|
| 568 |
-
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|
|
|
| 569 |
if breed_name not in breed_noise_info:
|
| 570 |
return 0.5
|
| 571 |
-
|
| 572 |
noise_info = breed_noise_info[breed_name]
|
| 573 |
noise_level = noise_info['noise_level'].lower()
|
| 574 |
noise_notes = noise_info['noise_notes'].lower()
|
| 575 |
-
|
| 576 |
-
#
|
| 577 |
base_scores = {
|
| 578 |
-
'low': {
|
| 579 |
-
|
| 580 |
-
|
| 581 |
-
|
|
|
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|
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|
|
| 582 |
}
|
| 583 |
-
|
| 584 |
-
#
|
| 585 |
-
base_score = base_scores.get(noise_level, {'low': 0.
|
| 586 |
-
|
| 587 |
-
#
|
| 588 |
-
|
| 589 |
-
|
| 590 |
-
|
| 591 |
-
|
| 592 |
-
|
| 593 |
-
|
| 594 |
-
|
| 595 |
-
|
| 596 |
-
|
| 597 |
-
|
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|
|
|
|
|
| 598 |
if trigger in noise_notes:
|
| 599 |
-
|
| 600 |
-
|
| 601 |
-
#
|
|
|
|
|
|
|
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|
|
|
|
|
|
| 602 |
trainability_bonus = 0
|
| 603 |
if 'responds well to training' in noise_notes:
|
| 604 |
-
trainability_bonus = 0.
|
| 605 |
elif 'can be trained' in noise_notes:
|
| 606 |
-
trainability_bonus = 0.
|
|
|
|
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|
|
|
|
|
|
|
| 607 |
|
| 608 |
-
|
| 609 |
-
|
| 610 |
-
|
| 611 |
-
|
| 612 |
-
|
| 613 |
-
|
|
|
|
|
|
|
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|
|
|
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|
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|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 614 |
|
| 615 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 616 |
|
| 617 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 618 |
|
| 619 |
-
# 計算所有基礎分數
|
| 620 |
scores = {
|
| 621 |
'space': calculate_space_score(
|
| 622 |
breed_info['Size'],
|
|
@@ -642,9 +1316,8 @@ def calculate_compatibility_score(breed_info: dict, user_prefs: UserPreferences)
|
|
| 642 |
'noise': calculate_noise_score(breed_info.get('Breed', ''), user_prefs.noise_tolerance)
|
| 643 |
}
|
| 644 |
|
| 645 |
-
|
| 646 |
-
|
| 647 |
-
weights = {
|
| 648 |
'space': 0.28,
|
| 649 |
'exercise': 0.18,
|
| 650 |
'grooming': 0.12,
|
|
@@ -653,40 +1326,75 @@ def calculate_compatibility_score(breed_info: dict, user_prefs: UserPreferences)
|
|
| 653 |
'noise': 0.08
|
| 654 |
}
|
| 655 |
|
| 656 |
-
#
|
| 657 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 658 |
|
|
|
|
|
|
|
|
|
|
|
|
|
| 659 |
def amplify_score(score):
|
| 660 |
"""
|
| 661 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 662 |
"""
|
| 663 |
-
#
|
| 664 |
-
adjusted = (score - 0.
|
| 665 |
|
| 666 |
-
#
|
| 667 |
-
amplified = pow(adjusted,
|
| 668 |
|
| 669 |
-
#
|
| 670 |
-
if
|
| 671 |
-
#
|
| 672 |
-
|
|
|
|
| 673 |
|
| 674 |
-
#
|
| 675 |
-
final_score = max(0.
|
| 676 |
|
| 677 |
# 四捨五入到小數點後第三位
|
| 678 |
return round(final_score, 3)
|
| 679 |
-
|
|
|
|
| 680 |
final_score = amplify_score(weighted_score)
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 681 |
|
| 682 |
-
#
|
| 683 |
scores = {k: round(v, 4) for k, v in scores.items()}
|
| 684 |
scores['overall'] = round(final_score, 4)
|
| 685 |
-
|
| 686 |
return scores
|
| 687 |
|
| 688 |
except Exception as e:
|
| 689 |
print(f"Error details: {str(e)}")
|
| 690 |
print(f"breed_info: {breed_info}")
|
| 691 |
-
# print(f"Error in calculate_compatibility_score: {str(e)}")
|
| 692 |
return {k: 0.6 for k in ['space', 'exercise', 'grooming', 'experience', 'health', 'noise', 'overall']}
|
|
|
|
| 29 |
self.barking_acceptance = self.noise_tolerance
|
| 30 |
|
| 31 |
|
| 32 |
+
# @staticmethod
|
| 33 |
+
# def calculate_breed_bonus(breed_info: dict, user_prefs: 'UserPreferences') -> float:
|
| 34 |
+
# """計算品種額外加分"""
|
| 35 |
+
# bonus = 0.0
|
| 36 |
+
# temperament = breed_info.get('Temperament', '').lower()
|
| 37 |
+
|
| 38 |
+
# # 1. 壽命加分(最高0.05)
|
| 39 |
+
# try:
|
| 40 |
+
# lifespan = breed_info.get('Lifespan', '10-12 years')
|
| 41 |
+
# years = [int(x) for x in lifespan.split('-')[0].split()[0:1]]
|
| 42 |
+
# longevity_bonus = min(0.05, (max(years) - 10) * 0.01)
|
| 43 |
+
# bonus += longevity_bonus
|
| 44 |
+
# except:
|
| 45 |
+
# pass
|
| 46 |
+
|
| 47 |
+
# # 2. 性格特徵加分(最高0.15)
|
| 48 |
+
# positive_traits = {
|
| 49 |
+
# 'friendly': 0.05,
|
| 50 |
+
# 'gentle': 0.05,
|
| 51 |
+
# 'patient': 0.05,
|
| 52 |
+
# 'intelligent': 0.04,
|
| 53 |
+
# 'adaptable': 0.04,
|
| 54 |
+
# 'affectionate': 0.04,
|
| 55 |
+
# 'easy-going': 0.03,
|
| 56 |
+
# 'calm': 0.03
|
| 57 |
+
# }
|
| 58 |
+
|
| 59 |
+
# negative_traits = {
|
| 60 |
+
# 'aggressive': -0.08,
|
| 61 |
+
# 'stubborn': -0.06,
|
| 62 |
+
# 'dominant': -0.06,
|
| 63 |
+
# 'aloof': -0.04,
|
| 64 |
+
# 'nervous': -0.05,
|
| 65 |
+
# 'protective': -0.04
|
| 66 |
+
# }
|
| 67 |
+
|
| 68 |
+
# personality_score = sum(value for trait, value in positive_traits.items() if trait in temperament)
|
| 69 |
+
# personality_score += sum(value for trait, value in negative_traits.items() if trait in temperament)
|
| 70 |
+
# bonus += max(-0.15, min(0.15, personality_score))
|
| 71 |
+
|
| 72 |
+
# # 3. 適應性加分(最高0.1)
|
| 73 |
+
# adaptability_bonus = 0.0
|
| 74 |
+
# if breed_info.get('Size') == "Small" and user_prefs.living_space == "apartment":
|
| 75 |
+
# adaptability_bonus += 0.05
|
| 76 |
+
# if 'adaptable' in temperament or 'versatile' in temperament:
|
| 77 |
+
# adaptability_bonus += 0.05
|
| 78 |
+
# bonus += min(0.1, adaptability_bonus)
|
| 79 |
+
|
| 80 |
+
# # 4. 家庭相容性(最高0.1)
|
| 81 |
+
# if user_prefs.has_children:
|
| 82 |
+
# family_traits = {
|
| 83 |
+
# 'good with children': 0.06,
|
| 84 |
+
# 'patient': 0.05,
|
| 85 |
+
# 'gentle': 0.05,
|
| 86 |
+
# 'tolerant': 0.04,
|
| 87 |
+
# 'playful': 0.03
|
| 88 |
+
# }
|
| 89 |
+
# unfriendly_traits = {
|
| 90 |
+
# 'aggressive': -0.08,
|
| 91 |
+
# 'nervous': -0.07,
|
| 92 |
+
# 'protective': -0.06,
|
| 93 |
+
# 'territorial': -0.05
|
| 94 |
+
# }
|
| 95 |
+
|
| 96 |
+
# # 年齡評估這樣能更細緻
|
| 97 |
+
# age_adjustments = {
|
| 98 |
+
# 'toddler': {'bonus_mult': 0.7, 'penalty_mult': 1.3},
|
| 99 |
+
# 'school_age': {'bonus_mult': 1.0, 'penalty_mult': 1.0},
|
| 100 |
+
# 'teenager': {'bonus_mult': 1.2, 'penalty_mult': 0.8}
|
| 101 |
+
# }
|
| 102 |
+
|
| 103 |
+
# adj = age_adjustments.get(user_prefs.children_age,
|
| 104 |
+
# {'bonus_mult': 1.0, 'penalty_mult': 1.0})
|
| 105 |
+
|
| 106 |
+
# family_bonus = sum(value for trait, value in family_traits.items()
|
| 107 |
+
# if trait in temperament) * adj['bonus_mult']
|
| 108 |
+
# family_penalty = sum(value for trait, value in unfriendly_traits.items()
|
| 109 |
+
# if trait in temperament) * adj['penalty_mult']
|
| 110 |
+
|
| 111 |
+
# bonus += min(0.15, max(-0.2, family_bonus + family_penalty))
|
| 112 |
+
|
| 113 |
+
|
| 114 |
+
# # 5. 專門技能加分(最高0.1)
|
| 115 |
+
# skill_bonus = 0.0
|
| 116 |
+
# special_abilities = {
|
| 117 |
+
# 'working': 0.03,
|
| 118 |
+
# 'herding': 0.03,
|
| 119 |
+
# 'hunting': 0.03,
|
| 120 |
+
# 'tracking': 0.03,
|
| 121 |
+
# 'agility': 0.02
|
| 122 |
+
# }
|
| 123 |
+
# for ability, value in special_abilities.items():
|
| 124 |
+
# if ability in temperament.lower():
|
| 125 |
+
# skill_bonus += value
|
| 126 |
+
# bonus += min(0.1, skill_bonus)
|
| 127 |
+
|
| 128 |
+
# return min(0.5, max(-0.25, bonus))
|
| 129 |
+
|
| 130 |
+
|
| 131 |
@staticmethod
|
| 132 |
+
def calculate_breed_bonus(breed_info: dict, user_prefs: UserPreferences) -> float:
|
| 133 |
+
"""
|
| 134 |
+
計算品種的額外加分,評估品種的特殊特徵對使用者需求的適配性。
|
| 135 |
+
|
| 136 |
+
這個函數考慮四個主要面向:
|
| 137 |
+
1. 壽命評估:考慮飼養的長期承諾
|
| 138 |
+
2. 性格特徵評估:評估品種性格與使用者需求的匹配度
|
| 139 |
+
3. 環境適應性:評估品種在特定生活環境中的表現
|
| 140 |
+
4. 家庭相容性:特別關注品種與家庭成員的互動
|
| 141 |
+
"""
|
| 142 |
bonus = 0.0
|
| 143 |
temperament = breed_info.get('Temperament', '').lower()
|
| 144 |
|
| 145 |
+
# 壽命評估 - 重新設計以反映更實際的考量
|
| 146 |
try:
|
| 147 |
lifespan = breed_info.get('Lifespan', '10-12 years')
|
| 148 |
years = [int(x) for x in lifespan.split('-')[0].split()[0:1]]
|
| 149 |
+
avg_years = float(years[0])
|
| 150 |
+
|
| 151 |
+
# 根據壽命長短給予不同程度的獎勵或懲罰
|
| 152 |
+
if avg_years < 8:
|
| 153 |
+
bonus -= 0.08 # 短壽命可能帶來情感負擔
|
| 154 |
+
elif avg_years < 10:
|
| 155 |
+
bonus -= 0.04 # 稍短壽命輕微降低評分
|
| 156 |
+
elif avg_years > 13:
|
| 157 |
+
bonus += 0.06 # 長壽命適度加分
|
| 158 |
+
elif avg_years > 15:
|
| 159 |
+
bonus += 0.08 # 特別長壽的品種獲得更多加分
|
| 160 |
except:
|
| 161 |
pass
|
| 162 |
|
| 163 |
+
# 性格特徵評估 - 擴充並細化評分標準
|
| 164 |
positive_traits = {
|
| 165 |
+
'friendly': 0.08, # 提高友善性的重要性
|
| 166 |
+
'gentle': 0.08, # 溫和性格更受歡迎
|
| 167 |
+
'patient': 0.07, # 耐心是重要特質
|
| 168 |
+
'intelligent': 0.06, # 聰明但不過分重要
|
| 169 |
+
'adaptable': 0.06, # 適應性佳的特質
|
| 170 |
+
'affectionate': 0.06, # 親密性很重要
|
| 171 |
+
'easy-going': 0.05, # 容易相處的性格
|
| 172 |
+
'calm': 0.05 # 冷靜的特質
|
| 173 |
}
|
| 174 |
|
| 175 |
negative_traits = {
|
| 176 |
+
'aggressive': -0.15, # 嚴重懲罰攻擊性
|
| 177 |
+
'stubborn': -0.10, # 固執性格不易處理
|
| 178 |
+
'dominant': -0.10, # 支配性可能造成問題
|
| 179 |
+
'aloof': -0.08, # 冷漠性格影響互動
|
| 180 |
+
'nervous': -0.08, # 緊張性格需要更多關注
|
| 181 |
+
'protective': -0.06 # 過度保護可能有風險
|
| 182 |
}
|
| 183 |
|
| 184 |
+
# 性格評分計算 - 加入累積效應
|
| 185 |
+
personality_score = 0
|
| 186 |
+
positive_count = 0
|
| 187 |
+
negative_count = 0
|
| 188 |
+
|
| 189 |
+
for trait, value in positive_traits.items():
|
| 190 |
+
if trait in temperament:
|
| 191 |
+
personality_score += value
|
| 192 |
+
positive_count += 1
|
| 193 |
+
|
| 194 |
+
for trait, value in negative_traits.items():
|
| 195 |
+
if trait in temperament:
|
| 196 |
+
personality_score += value
|
| 197 |
+
negative_count += 1
|
| 198 |
+
|
| 199 |
+
# 多重特徵的累積效應
|
| 200 |
+
if positive_count > 2:
|
| 201 |
+
personality_score *= (1 + (positive_count - 2) * 0.1)
|
| 202 |
+
if negative_count > 1:
|
| 203 |
+
personality_score *= (1 - (negative_count - 1) * 0.15)
|
| 204 |
+
|
| 205 |
+
bonus += max(-0.25, min(0.25, personality_score))
|
| 206 |
|
| 207 |
+
# 適應性評估 - 根據具體環境給予更細緻的評分
|
| 208 |
adaptability_bonus = 0.0
|
| 209 |
if breed_info.get('Size') == "Small" and user_prefs.living_space == "apartment":
|
| 210 |
+
adaptability_bonus += 0.08 # 小型犬更適合公寓
|
| 211 |
+
|
| 212 |
+
# 環境適應性評估
|
| 213 |
if 'adaptable' in temperament or 'versatile' in temperament:
|
| 214 |
+
if user_prefs.living_space == "apartment":
|
| 215 |
+
adaptability_bonus += 0.10 # 適應性在公寓環境更重要
|
| 216 |
+
else:
|
| 217 |
+
adaptability_bonus += 0.05 # 其他環境仍有加分
|
| 218 |
+
|
| 219 |
+
# 氣候適應性
|
| 220 |
+
description = breed_info.get('Description', '').lower()
|
| 221 |
+
climate = user_prefs.climate
|
| 222 |
+
if climate == 'hot':
|
| 223 |
+
if 'heat tolerant' in description or 'warm climate' in description:
|
| 224 |
+
adaptability_bonus += 0.08
|
| 225 |
+
elif 'thick coat' in description or 'cold climate' in description:
|
| 226 |
+
adaptability_bonus -= 0.10
|
| 227 |
+
elif climate == 'cold':
|
| 228 |
+
if 'thick coat' in description or 'cold climate' in description:
|
| 229 |
+
adaptability_bonus += 0.08
|
| 230 |
+
elif 'heat tolerant' in description or 'short coat' in description:
|
| 231 |
+
adaptability_bonus -= 0.10
|
| 232 |
+
|
| 233 |
+
bonus += min(0.15, adaptability_bonus)
|
| 234 |
|
| 235 |
+
# 家庭相容性評估 - 特別關注有孩童的家庭
|
| 236 |
if user_prefs.has_children:
|
| 237 |
family_traits = {
|
| 238 |
+
'good with children': 0.12, # 提高與孩童相處的重要性
|
| 239 |
+
'patient': 0.10,
|
| 240 |
+
'gentle': 0.10,
|
| 241 |
+
'tolerant': 0.08,
|
| 242 |
+
'playful': 0.06
|
| 243 |
}
|
| 244 |
+
|
| 245 |
unfriendly_traits = {
|
| 246 |
+
'aggressive': -0.15, # 加重攻擊性的懲罰
|
| 247 |
+
'nervous': -0.12, # 緊張特質可能有風險
|
| 248 |
+
'protective': -0.10, # 過度保護性需要注意
|
| 249 |
+
'territorial': -0.08 # 地域性可能造成問題
|
| 250 |
}
|
| 251 |
|
| 252 |
+
# 根據孩童年齡調整評分權重
|
| 253 |
age_adjustments = {
|
| 254 |
+
'toddler': {
|
| 255 |
+
'bonus_mult': 0.6, # 降低正面特質的獎勵
|
| 256 |
+
'penalty_mult': 1.5 # 加重負面特質的懲罰
|
| 257 |
+
},
|
| 258 |
+
'school_age': {
|
| 259 |
+
'bonus_mult': 1.0,
|
| 260 |
+
'penalty_mult': 1.0
|
| 261 |
+
},
|
| 262 |
+
'teenager': {
|
| 263 |
+
'bonus_mult': 1.2, # 提高正面特質的獎勵
|
| 264 |
+
'penalty_mult': 0.8 # 降低負面特質的懲罰
|
| 265 |
+
}
|
| 266 |
}
|
| 267 |
|
| 268 |
adj = age_adjustments.get(user_prefs.children_age,
|
| 269 |
{'bonus_mult': 1.0, 'penalty_mult': 1.0})
|
| 270 |
|
| 271 |
+
# 計算家庭相容性分數
|
| 272 |
+
family_score = 0
|
| 273 |
+
for trait, value in family_traits.items():
|
| 274 |
+
if trait in temperament:
|
| 275 |
+
family_score += value * adj['bonus_mult']
|
| 276 |
+
|
| 277 |
+
for trait, value in unfriendly_traits.items():
|
| 278 |
+
if trait in temperament:
|
| 279 |
+
family_score += value * adj['penalty_mult']
|
| 280 |
|
| 281 |
+
bonus += min(0.20, max(-0.30, family_score))
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 282 |
|
| 283 |
+
# 確保總體加分在合理範圍內,但允許更大的變化
|
| 284 |
+
return min(0.5, max(-0.35, bonus))
|
| 285 |
|
| 286 |
|
| 287 |
@staticmethod
|
|
|
|
| 372 |
print("Missing Size information")
|
| 373 |
raise KeyError("Size information missing")
|
| 374 |
|
| 375 |
+
# def calculate_space_score(size: str, living_space: str, has_yard: bool, exercise_needs: str) -> float:
|
| 376 |
+
# """空間分數計算"""
|
| 377 |
+
# # 基礎空間需求矩陣
|
| 378 |
+
# base_scores = {
|
| 379 |
+
# "Small": {"apartment": 0.95, "house_small": 1.0, "house_large": 0.90},
|
| 380 |
+
# "Medium": {"apartment": 0.60, "house_small": 0.90, "house_large": 1.0},
|
| 381 |
+
# "Large": {"apartment": 0.30, "house_small": 0.75, "house_large": 1.0},
|
| 382 |
+
# "Giant": {"apartment": 0.15, "house_small": 0.55, "house_large": 1.0}
|
| 383 |
+
# }
|
| 384 |
+
|
| 385 |
+
# # 取得基礎分數
|
| 386 |
+
# base_score = base_scores.get(size, base_scores["Medium"])[living_space]
|
| 387 |
+
|
| 388 |
+
# # 運動需求調整
|
| 389 |
+
# exercise_adjustments = {
|
| 390 |
+
# "Very High": -0.15 if living_space == "apartment" else 0,
|
| 391 |
+
# "High": -0.10 if living_space == "apartment" else 0,
|
| 392 |
+
# "Moderate": 0,
|
| 393 |
+
# "Low": 0.05 if living_space == "apartment" else 0
|
| 394 |
+
# }
|
| 395 |
+
|
| 396 |
+
# adjustments = exercise_adjustments.get(exercise_needs.strip(), 0)
|
| 397 |
+
|
| 398 |
+
# # 院子獎勵
|
| 399 |
+
# if has_yard and size in ["Large", "Giant"]:
|
| 400 |
+
# adjustments += 0.10
|
| 401 |
+
# elif has_yard:
|
| 402 |
+
# adjustments += 0.05
|
| 403 |
+
|
| 404 |
+
# return min(1.0, max(0.1, base_score + adjustments))
|
| 405 |
+
|
| 406 |
def calculate_space_score(size: str, living_space: str, has_yard: bool, exercise_needs: str) -> float:
|
| 407 |
+
# 重新設計基礎分數矩陣
|
|
|
|
| 408 |
base_scores = {
|
| 409 |
+
"Small": {
|
| 410 |
+
"apartment": 1.0, # 小型犬最適合公寓
|
| 411 |
+
"house_small": 0.95, # 在大房子反而稍微降分
|
| 412 |
+
"house_large": 0.85 # 可能浪費空間
|
| 413 |
+
},
|
| 414 |
+
"Medium": {
|
| 415 |
+
"apartment": 0.45, # 中���犬在公寓明顯受限
|
| 416 |
+
"house_small": 0.85,
|
| 417 |
+
"house_large": 1.0
|
| 418 |
+
},
|
| 419 |
+
"Large": {
|
| 420 |
+
"apartment": 0.15, # 大型犬在公寓極不適合
|
| 421 |
+
"house_small": 0.60, # 在小房子仍然受限
|
| 422 |
+
"house_large": 1.0
|
| 423 |
+
},
|
| 424 |
+
"Giant": {
|
| 425 |
+
"apartment": 0.1, # 更嚴格的限制
|
| 426 |
+
"house_small": 0.45,
|
| 427 |
+
"house_large": 1.0
|
| 428 |
+
}
|
| 429 |
}
|
| 430 |
|
| 431 |
# 取得基礎分數
|
| 432 |
base_score = base_scores.get(size, base_scores["Medium"])[living_space]
|
| 433 |
|
| 434 |
+
# 運動需求調整更明顯
|
| 435 |
exercise_adjustments = {
|
| 436 |
+
"Very High": {
|
| 437 |
+
"apartment": -0.25, # 在公寓更嚴重的懲罰
|
| 438 |
+
"house_small": -0.15,
|
| 439 |
+
"house_large": -0.05
|
| 440 |
+
},
|
| 441 |
+
"High": {
|
| 442 |
+
"apartment": -0.20,
|
| 443 |
+
"house_small": -0.10,
|
| 444 |
+
"house_large": 0
|
| 445 |
+
},
|
| 446 |
+
"Moderate": {
|
| 447 |
+
"apartment": -0.10,
|
| 448 |
+
"house_small": -0.05,
|
| 449 |
+
"house_large": 0
|
| 450 |
+
},
|
| 451 |
+
"Low": {
|
| 452 |
+
"apartment": 0.05,
|
| 453 |
+
"house_small": 0,
|
| 454 |
+
"house_large": 0
|
| 455 |
+
}
|
| 456 |
}
|
| 457 |
|
| 458 |
+
# 根據空間類型獲取對應的運動調整
|
| 459 |
+
adjustment = exercise_adjustments.get(exercise_needs,
|
| 460 |
+
exercise_adjustments["Moderate"])[living_space]
|
| 461 |
|
| 462 |
+
# 院子獎勵也要根據犬種大小調整
|
| 463 |
+
yard_bonus = 0
|
| 464 |
+
if has_yard:
|
| 465 |
+
if size in ["Large", "Giant"]:
|
| 466 |
+
yard_bonus = 0.20 if living_space != "apartment" else 0.10
|
| 467 |
+
elif size == "Medium":
|
| 468 |
+
yard_bonus = 0.15 if living_space != "apartment" else 0.08
|
| 469 |
+
else:
|
| 470 |
+
yard_bonus = 0.10 if living_space != "apartment" else 0.05
|
| 471 |
+
|
| 472 |
+
final_score = base_score + adjustment + yard_bonus
|
| 473 |
+
return min(1.0, max(0.1, final_score))
|
| 474 |
|
| 475 |
def calculate_exercise_score(breed_needs: str, user_time: int) -> float:
|
| 476 |
"""運動需求計算"""
|
|
|
|
| 494 |
else:
|
| 495 |
return max(0.3, 0.8 * (user_time / breed_need['min']))
|
| 496 |
|
| 497 |
+
# def calculate_grooming_score(breed_needs: str, user_commitment: str, breed_size: str) -> float:
|
| 498 |
+
# """美容需求計算"""
|
| 499 |
+
# # 基礎分數矩陣
|
| 500 |
+
# base_scores = {
|
| 501 |
+
# "High": {"low": 0.3, "medium": 0.7, "high": 1.0},
|
| 502 |
+
# "Moderate": {"low": 0.5, "medium": 0.9, "high": 1.0},
|
| 503 |
+
# "Low": {"low": 1.0, "medium": 0.95, "high": 0.8}
|
| 504 |
+
# }
|
| 505 |
+
|
| 506 |
+
# # 取得基礎分數
|
| 507 |
+
# base_score = base_scores.get(breed_needs, base_scores["Moderate"])[user_commitment]
|
| 508 |
+
|
| 509 |
+
# # 體型影響調整
|
| 510 |
+
# size_adjustments = {
|
| 511 |
+
# "Large": {"low": -0.2, "medium": -0.1, "high": 0},
|
| 512 |
+
# "Giant": {"low": -0.3, "medium": -0.15, "high": 0},
|
| 513 |
+
# }
|
| 514 |
+
|
| 515 |
+
# if breed_size in size_adjustments:
|
| 516 |
+
# adjustment = size_adjustments[breed_size].get(user_commitment, 0)
|
| 517 |
+
# base_score = max(0.2, base_score + adjustment)
|
| 518 |
+
|
| 519 |
+
# return base_score
|
| 520 |
+
|
| 521 |
+
|
| 522 |
def calculate_grooming_score(breed_needs: str, user_commitment: str, breed_size: str) -> float:
|
| 523 |
+
"""
|
| 524 |
+
計算美容需求分數,強化美容維護需求與使用者承諾度的匹配評估。
|
| 525 |
+
這個函數特別注意品種大小對美容工作的影響,以及不同程度的美容需求對時間投入的要求。
|
| 526 |
+
"""
|
| 527 |
+
# 重新設計基礎分數矩陣,讓美容需求的差異更加明顯
|
| 528 |
base_scores = {
|
| 529 |
+
"High": {
|
| 530 |
+
"low": 0.20, # 高需求對低承諾極不合適,顯著降低初始分數
|
| 531 |
+
"medium": 0.65, # 中等承諾仍有挑戰
|
| 532 |
+
"high": 1.0 # 高承諾最適合
|
| 533 |
+
},
|
| 534 |
+
"Moderate": {
|
| 535 |
+
"low": 0.45, # 中等需求對低承諾有困難
|
| 536 |
+
"medium": 0.85, # 較好的匹配
|
| 537 |
+
"high": 0.95 # 高承諾會有餘力
|
| 538 |
+
},
|
| 539 |
+
"Low": {
|
| 540 |
+
"low": 0.90, # 低需求對低承諾很合適
|
| 541 |
+
"medium": 0.85, # 略微降低以反映可能過度投入
|
| 542 |
+
"high": 0.80 # 可能造成資源浪費
|
| 543 |
+
}
|
| 544 |
}
|
| 545 |
+
|
| 546 |
# 取得基礎分數
|
| 547 |
base_score = base_scores.get(breed_needs, base_scores["Moderate"])[user_commitment]
|
| 548 |
+
|
| 549 |
+
# 根據品種大小調整美容工作量
|
| 550 |
size_adjustments = {
|
| 551 |
+
"Giant": {
|
| 552 |
+
"low": -0.35, # 大型犬的美容工作量顯著增加
|
| 553 |
+
"medium": -0.20,
|
| 554 |
+
"high": -0.10
|
| 555 |
+
},
|
| 556 |
+
"Large": {
|
| 557 |
+
"low": -0.25,
|
| 558 |
+
"medium": -0.15,
|
| 559 |
+
"high": -0.05
|
| 560 |
+
},
|
| 561 |
+
"Medium": {
|
| 562 |
+
"low": -0.15,
|
| 563 |
+
"medium": -0.10,
|
| 564 |
+
"high": 0
|
| 565 |
+
},
|
| 566 |
+
"Small": {
|
| 567 |
+
"low": -0.10,
|
| 568 |
+
"medium": -0.05,
|
| 569 |
+
"high": 0
|
| 570 |
+
}
|
| 571 |
}
|
| 572 |
+
|
| 573 |
+
# 應用體型調整
|
| 574 |
+
size_adjustment = size_adjustments.get(breed_size, size_adjustments["Medium"])[user_commitment]
|
| 575 |
+
current_score = base_score + size_adjustment
|
| 576 |
+
|
| 577 |
+
# 特殊毛髮類型的額外調整
|
| 578 |
+
def get_coat_adjustment(breed_description: str, commitment: str) -> float:
|
| 579 |
+
"""
|
| 580 |
+
評估特殊毛髮類型所需的額外維護工作
|
| 581 |
+
"""
|
| 582 |
+
adjustments = 0
|
| 583 |
|
| 584 |
+
# 長毛品種需要更多維護
|
| 585 |
+
if 'long coat' in breed_description.lower():
|
| 586 |
+
coat_penalties = {
|
| 587 |
+
'low': -0.20,
|
| 588 |
+
'medium': -0.15,
|
| 589 |
+
'high': -0.05
|
| 590 |
+
}
|
| 591 |
+
adjustments += coat_penalties[commitment]
|
| 592 |
+
|
| 593 |
+
# 雙層毛的品種掉毛量更大
|
| 594 |
+
if 'double coat' in breed_description.lower():
|
| 595 |
+
double_coat_penalties = {
|
| 596 |
+
'low': -0.15,
|
| 597 |
+
'medium': -0.10,
|
| 598 |
+
'high': -0.05
|
| 599 |
+
}
|
| 600 |
+
adjustments += double_coat_penalties[commitment]
|
| 601 |
+
|
| 602 |
+
# 捲毛品種需要定期專業修剪
|
| 603 |
+
if 'curly' in breed_description.lower():
|
| 604 |
+
curly_penalties = {
|
| 605 |
+
'low': -0.15,
|
| 606 |
+
'medium': -0.10,
|
| 607 |
+
'high': -0.05
|
| 608 |
+
}
|
| 609 |
+
adjustments += curly_penalties[commitment]
|
| 610 |
+
|
| 611 |
+
return adjustments
|
| 612 |
+
|
| 613 |
+
# 季節性考量
|
| 614 |
+
def get_seasonal_adjustment(breed_description: str, commitment: str) -> float:
|
| 615 |
+
"""
|
| 616 |
+
評估季節性掉毛對美容需求的影響
|
| 617 |
+
"""
|
| 618 |
+
if 'seasonal shedding' in breed_description.lower():
|
| 619 |
+
seasonal_penalties = {
|
| 620 |
+
'low': -0.15,
|
| 621 |
+
'medium': -0.10,
|
| 622 |
+
'high': -0.05
|
| 623 |
+
}
|
| 624 |
+
return seasonal_penalties[commitment]
|
| 625 |
+
return 0
|
| 626 |
+
|
| 627 |
+
# 專業美容需求評估
|
| 628 |
+
def get_professional_grooming_adjustment(breed_description: str, commitment: str) -> float:
|
| 629 |
+
"""
|
| 630 |
+
評估需要專業美容服務的影響
|
| 631 |
+
"""
|
| 632 |
+
if 'professional grooming' in breed_description.lower():
|
| 633 |
+
grooming_penalties = {
|
| 634 |
+
'low': -0.20,
|
| 635 |
+
'medium': -0.15,
|
| 636 |
+
'high': -0.05
|
| 637 |
+
}
|
| 638 |
+
return grooming_penalties[commitment]
|
| 639 |
+
return 0
|
| 640 |
+
|
| 641 |
+
# 應用所有額外調整
|
| 642 |
+
# 由於這些是示例調整,實際使用時需要根據品種描述信息進行調整
|
| 643 |
+
coat_adjustment = get_coat_adjustment("", user_commitment)
|
| 644 |
+
seasonal_adjustment = get_seasonal_adjustment("", user_commitment)
|
| 645 |
+
professional_adjustment = get_professional_grooming_adjustment("", user_commitment)
|
| 646 |
+
|
| 647 |
+
final_score = current_score + coat_adjustment + seasonal_adjustment + professional_adjustment
|
| 648 |
+
|
| 649 |
+
# 確保分數在有意義的範圍內,但允許更大的差異
|
| 650 |
+
return max(0.1, min(1.0, final_score))
|
| 651 |
|
| 652 |
|
| 653 |
# def calculate_experience_score(care_level: str, user_experience: str, temperament: str) -> float:
|
|
|
|
| 759 |
|
| 760 |
def calculate_experience_score(care_level: str, user_experience: str, temperament: str) -> float:
|
| 761 |
"""
|
| 762 |
+
計算使用者經驗與品種需求的匹配分數,加強經驗等級的影響力
|
| 763 |
+
|
| 764 |
+
重要改進:
|
| 765 |
+
1. 擴大基礎分數差異
|
| 766 |
+
2. 加重困難特徵的懲罰
|
| 767 |
+
3. 更細緻的品種特性評估
|
| 768 |
"""
|
| 769 |
+
# 基礎分數矩陣 - 大幅擴大不同經驗等級的分數差異
|
| 770 |
base_scores = {
|
| 771 |
"High": {
|
| 772 |
+
"beginner": 0.10, # 降低起始分,高難度品種對新手幾乎不推薦
|
| 773 |
+
"intermediate": 0.60, # 中級玩家仍需謹慎
|
| 774 |
+
"advanced": 1.0 # 資深者能完全勝任
|
| 775 |
},
|
| 776 |
"Moderate": {
|
| 777 |
+
"beginner": 0.35, # 適中難度對新手仍具挑戰
|
| 778 |
+
"intermediate": 0.80, # 中級玩家較適合
|
| 779 |
+
"advanced": 1.0 # 資深者完全勝任
|
| 780 |
},
|
| 781 |
"Low": {
|
| 782 |
+
"beginner": 0.90, # 新手友善品種
|
| 783 |
+
"intermediate": 0.95, # 中級玩家幾乎完全勝任
|
| 784 |
+
"advanced": 1.0 # 資深者完全勝任
|
| 785 |
}
|
| 786 |
}
|
| 787 |
|
|
|
|
| 791 |
temperament_lower = temperament.lower()
|
| 792 |
temperament_adjustments = 0.0
|
| 793 |
|
| 794 |
+
# 根據經驗等級設定不同的特徵評估標準
|
| 795 |
if user_experience == "beginner":
|
| 796 |
+
# 新手不適合的特徵 - 更嚴格的懲罰
|
| 797 |
difficult_traits = {
|
| 798 |
+
'stubborn': -0.30, # 固執性格嚴重影響新手
|
| 799 |
+
'independent': -0.25, # 獨立性高的品種不適合新手
|
| 800 |
+
'dominant': -0.25, # 支配性強的品種需要經驗處理
|
| 801 |
+
'strong-willed': -0.20, # 強勢性格需要技巧管理
|
| 802 |
+
'protective': -0.20, # 保護性強需要適當訓練
|
| 803 |
+
'aloof': -0.15, # 冷漠性格需要耐心培養
|
| 804 |
+
'energetic': -0.15, # 活潑好動需要經驗引導
|
| 805 |
+
'aggressive': -0.35 # 攻擊傾向極不適合新手
|
| 806 |
}
|
| 807 |
|
| 808 |
+
# 新手友善的特徵 - 適度的獎勵
|
| 809 |
easy_traits = {
|
| 810 |
+
'gentle': 0.05, # 溫和性格適合新手
|
| 811 |
+
'friendly': 0.05, # 友善性格��易相處
|
| 812 |
+
'eager to please': 0.08, # 願意服從較容易訓練
|
| 813 |
+
'patient': 0.05, # 耐心的特質有助於建立關係
|
| 814 |
+
'adaptable': 0.05, # 適應性強較容易照顧
|
| 815 |
+
'calm': 0.06 # 冷靜的性格較好掌握
|
| 816 |
}
|
| 817 |
|
| 818 |
+
# 計算特徵調整
|
| 819 |
for trait, penalty in difficult_traits.items():
|
| 820 |
if trait in temperament_lower:
|
| 821 |
temperament_adjustments += penalty
|
|
|
|
| 824 |
if trait in temperament_lower:
|
| 825 |
temperament_adjustments += bonus
|
| 826 |
|
| 827 |
+
# 品種類型特殊評估
|
| 828 |
+
if 'terrier' in temperament_lower:
|
| 829 |
+
temperament_adjustments -= 0.20 # 梗類犬種通常不適合新手
|
| 830 |
+
elif 'working' in temperament_lower:
|
| 831 |
+
temperament_adjustments -= 0.25 # 工作犬需要經驗豐富的主人
|
| 832 |
+
elif 'guard' in temperament_lower:
|
| 833 |
+
temperament_adjustments -= 0.25 # 護衛犬需要專業訓練
|
| 834 |
|
| 835 |
elif user_experience == "intermediate":
|
| 836 |
+
# 中級玩家的特徵評估
|
| 837 |
moderate_traits = {
|
| 838 |
+
'stubborn': -0.15, # 仍然需要注意,但懲罰較輕
|
| 839 |
+
'independent': -0.10,
|
| 840 |
+
'intelligent': 0.08, # 聰明的特質可以好好發揮
|
| 841 |
+
'athletic': 0.06, # 運動能力可以適當訓練
|
| 842 |
+
'versatile': 0.07, # 多功能性可以開發
|
| 843 |
+
'protective': -0.08 # 保護性仍需注意
|
| 844 |
}
|
| 845 |
|
| 846 |
for trait, adjustment in moderate_traits.items():
|
|
|
|
| 850 |
else: # advanced
|
| 851 |
# 資深玩家能夠應對挑戰性特徵
|
| 852 |
advanced_traits = {
|
| 853 |
+
'stubborn': 0.05, # 困難特徵反而成為優勢
|
| 854 |
+
'independent': 0.05,
|
| 855 |
+
'intelligent': 0.10,
|
| 856 |
+
'protective': 0.05,
|
| 857 |
+
'strong-willed': 0.05
|
| 858 |
}
|
| 859 |
|
| 860 |
for trait, bonus in advanced_traits.items():
|
| 861 |
if trait in temperament_lower:
|
| 862 |
temperament_adjustments += bonus
|
| 863 |
|
| 864 |
+
# 確保最終分數範圍更大,讓差異更明顯
|
| 865 |
+
final_score = max(0.05, min(1.0, score + temperament_adjustments))
|
| 866 |
+
|
| 867 |
return final_score
|
| 868 |
|
| 869 |
|
| 870 |
+
# def calculate_health_score(breed_name: str) -> float:
|
| 871 |
+
# """計算品種健康分數"""
|
| 872 |
+
# if breed_name not in breed_health_info:
|
| 873 |
+
# return 0.5
|
| 874 |
+
|
| 875 |
+
# health_notes = breed_health_info[breed_name]['health_notes'].lower()
|
| 876 |
+
|
| 877 |
+
# # 嚴重健康問題(降低0.15分)
|
| 878 |
+
# severe_conditions = [
|
| 879 |
+
# 'hip dysplasia',
|
| 880 |
+
# 'heart disease',
|
| 881 |
+
# 'progressive retinal atrophy',
|
| 882 |
+
# 'bloat',
|
| 883 |
+
# 'epilepsy',
|
| 884 |
+
# 'degenerative myelopathy',
|
| 885 |
+
# 'von willebrand disease'
|
| 886 |
+
# ]
|
| 887 |
+
|
| 888 |
+
# # 中度健康問題(降低0.1分)
|
| 889 |
+
# moderate_conditions = [
|
| 890 |
+
# 'allergies',
|
| 891 |
+
# 'eye problems',
|
| 892 |
+
# 'joint problems',
|
| 893 |
+
# 'hypothyroidism',
|
| 894 |
+
# 'ear infections',
|
| 895 |
+
# 'skin issues'
|
| 896 |
+
# ]
|
| 897 |
+
|
| 898 |
+
# # 輕微健康問題(降低0.05分)
|
| 899 |
+
# minor_conditions = [
|
| 900 |
+
# 'dental issues',
|
| 901 |
+
# 'weight gain tendency',
|
| 902 |
+
# 'minor allergies',
|
| 903 |
+
# 'seasonal allergies'
|
| 904 |
+
# ]
|
| 905 |
+
|
| 906 |
+
# # 計算基礎健康分數
|
| 907 |
+
# health_score = 1.0
|
| 908 |
+
|
| 909 |
+
# # 根據問題嚴重程度扣分
|
| 910 |
+
# severe_count = sum(1 for condition in severe_conditions if condition in health_notes)
|
| 911 |
+
# moderate_count = sum(1 for condition in moderate_conditions if condition in health_notes)
|
| 912 |
+
# minor_count = sum(1 for condition in minor_conditions if condition in health_notes)
|
| 913 |
+
|
| 914 |
+
# health_score -= (severe_count * 0.15)
|
| 915 |
+
# health_score -= (moderate_count * 0.1)
|
| 916 |
+
# health_score -= (minor_count * 0.05)
|
| 917 |
+
|
| 918 |
+
# # 壽命影響
|
| 919 |
+
# try:
|
| 920 |
+
# lifespan = breed_health_info[breed_name].get('average_lifespan', '10-12')
|
| 921 |
+
# years = float(lifespan.split('-')[0])
|
| 922 |
+
# if years < 8:
|
| 923 |
+
# health_score *= 0.9
|
| 924 |
+
# elif years > 13:
|
| 925 |
+
# health_score *= 1.1
|
| 926 |
+
# except:
|
| 927 |
+
# pass
|
| 928 |
+
|
| 929 |
+
# # 特殊健康優勢
|
| 930 |
+
# if 'generally healthy' in health_notes or 'hardy breed' in health_notes:
|
| 931 |
+
# health_score *= 1.1
|
| 932 |
+
|
| 933 |
+
# return max(0.2, min(1.0, health_score))
|
| 934 |
+
|
| 935 |
+
def calculate_health_score(breed_name: str, user_prefs: UserPreferences) -> float:
|
| 936 |
+
"""
|
| 937 |
+
計算品種健康分數,加強健康問題的影響力和與使用者敏感度的連結
|
| 938 |
+
|
| 939 |
+
重要改進:
|
| 940 |
+
1. 根據使用者的健康敏感度調整分數
|
| 941 |
+
2. 更嚴格的健康問題評估
|
| 942 |
+
3. 考慮多重健康問題的累積效應
|
| 943 |
+
4. 加入遺傳疾病的特別考量
|
| 944 |
+
"""
|
| 945 |
if breed_name not in breed_health_info:
|
| 946 |
return 0.5
|
| 947 |
+
|
| 948 |
health_notes = breed_health_info[breed_name]['health_notes'].lower()
|
| 949 |
|
| 950 |
+
# 嚴重健康問題 - 加重扣分
|
| 951 |
+
severe_conditions = {
|
| 952 |
+
'hip dysplasia': -0.25, # 髖關節發育不良,影響生活品質
|
| 953 |
+
'heart disease': -0.25, # 心臟疾病,需要長期治療
|
| 954 |
+
'progressive retinal atrophy': -0.20, # 進行性視網膜萎縮,導致失明
|
| 955 |
+
'bloat': -0.22, # 胃扭轉,致命風險
|
| 956 |
+
'epilepsy': -0.20, # 癲癇,需要長期藥物控制
|
| 957 |
+
'degenerative myelopathy': -0.20, # 脊髓退化,影響行動能力
|
| 958 |
+
'von willebrand disease': -0.18 # 血液凝固障礙
|
| 959 |
+
}
|
| 960 |
+
|
| 961 |
+
# 中度健康問題 - 適度扣分
|
| 962 |
+
moderate_conditions = {
|
| 963 |
+
'allergies': -0.12, # 過敏問題,需要持續關注
|
| 964 |
+
'eye problems': -0.15, # 眼睛問題,可能需要手術
|
| 965 |
+
'joint problems': -0.15, # 關節問題,影響運動能力
|
| 966 |
+
'hypothyroidism': -0.12, # 甲狀腺功能低下,需要藥物治療
|
| 967 |
+
'ear infections': -0.10, # 耳道感染,需要定期清理
|
| 968 |
+
'skin issues': -0.12 # 皮膚問題,需要特殊護理
|
| 969 |
+
}
|
| 970 |
+
|
| 971 |
+
# 輕微健康問題 - 輕微扣分
|
| 972 |
+
minor_conditions = {
|
| 973 |
+
'dental issues': -0.08, # 牙齒問題,需要定期護理
|
| 974 |
+
'weight gain tendency': -0.08, # 易胖體質,需要控制飲食
|
| 975 |
+
'minor allergies': -0.06, # 輕微過敏,可控制
|
| 976 |
+
'seasonal allergies': -0.06 # 季節性過敏
|
| 977 |
+
}
|
| 978 |
+
|
| 979 |
# 計算基礎健康分數
|
| 980 |
health_score = 1.0
|
| 981 |
|
| 982 |
+
# 健康問題累積效應計算
|
| 983 |
+
condition_counts = {
|
| 984 |
+
'severe': 0,
|
| 985 |
+
'moderate': 0,
|
| 986 |
+
'minor': 0
|
| 987 |
+
}
|
| 988 |
|
| 989 |
+
# 計算各等級健康問題的數量和影響
|
| 990 |
+
for condition, penalty in severe_conditions.items():
|
| 991 |
+
if condition in health_notes:
|
| 992 |
+
health_score += penalty
|
| 993 |
+
condition_counts['severe'] += 1
|
| 994 |
+
|
| 995 |
+
for condition, penalty in moderate_conditions.items():
|
| 996 |
+
if condition in health_notes:
|
| 997 |
+
health_score += penalty
|
| 998 |
+
condition_counts['moderate'] += 1
|
| 999 |
+
|
| 1000 |
+
for condition, penalty in minor_conditions.items():
|
| 1001 |
+
if condition in health_notes:
|
| 1002 |
+
health_score += penalty
|
| 1003 |
+
condition_counts['minor'] += 1
|
| 1004 |
+
|
| 1005 |
+
# 多重問題的額外懲罰(累積效應)
|
| 1006 |
+
if condition_counts['severe'] > 1:
|
| 1007 |
+
health_score *= (0.85 ** (condition_counts['severe'] - 1))
|
| 1008 |
+
if condition_counts['moderate'] > 2:
|
| 1009 |
+
health_score *= (0.90 ** (condition_counts['moderate'] - 2))
|
| 1010 |
+
|
| 1011 |
+
# 根據使用者健康敏感度調整分數
|
| 1012 |
+
sensitivity_multipliers = {
|
| 1013 |
+
'low': 1.1, # 較不在意健康問題
|
| 1014 |
+
'medium': 1.0, # 標準評估
|
| 1015 |
+
'high': 0.85 # 非常注重健康問題
|
| 1016 |
+
}
|
| 1017 |
+
|
| 1018 |
+
health_score *= sensitivity_multipliers.get(user_prefs.health_sensitivity, 1.0)
|
| 1019 |
+
|
| 1020 |
+
# 壽命影響評估
|
| 1021 |
try:
|
| 1022 |
lifespan = breed_health_info[breed_name].get('average_lifespan', '10-12')
|
| 1023 |
years = float(lifespan.split('-')[0])
|
| 1024 |
if years < 8:
|
| 1025 |
+
health_score *= 0.85 # 短壽命顯著降低分數
|
| 1026 |
+
elif years < 10:
|
| 1027 |
+
health_score *= 0.92 # 較短壽命輕微降低分數
|
| 1028 |
elif years > 13:
|
| 1029 |
+
health_score *= 1.1 # 長壽命適度加分
|
| 1030 |
except:
|
| 1031 |
pass
|
| 1032 |
+
|
| 1033 |
# 特殊健康優勢
|
| 1034 |
if 'generally healthy' in health_notes or 'hardy breed' in health_notes:
|
| 1035 |
+
health_score *= 1.15
|
| 1036 |
+
elif 'robust health' in health_notes or 'few health issues' in health_notes:
|
| 1037 |
health_score *= 1.1
|
| 1038 |
+
|
| 1039 |
+
# 確保分數在合理範圍內,但允許更大的分數差異
|
| 1040 |
+
return max(0.1, min(1.0, health_score))
|
| 1041 |
+
|
| 1042 |
+
|
| 1043 |
+
# def calculate_noise_score(breed_name: str, user_noise_tolerance: str) -> float:
|
| 1044 |
+
# """計算品種噪音分數"""
|
| 1045 |
+
# if breed_name not in breed_noise_info:
|
| 1046 |
+
# return 0.5
|
| 1047 |
+
|
| 1048 |
+
# noise_info = breed_noise_info[breed_name]
|
| 1049 |
+
# noise_level = noise_info['noise_level'].lower()
|
| 1050 |
+
# noise_notes = noise_info['noise_notes'].lower()
|
| 1051 |
+
|
| 1052 |
+
# # 基礎噪音分數矩陣
|
| 1053 |
+
# base_scores = {
|
| 1054 |
+
# 'low': {'low': 1.0, 'medium': 0.9, 'high': 0.8},
|
| 1055 |
+
# 'medium': {'low': 0.7, 'medium': 1.0, 'high': 0.9},
|
| 1056 |
+
# 'high': {'low': 0.4, 'medium': 0.7, 'high': 1.0},
|
| 1057 |
+
# 'varies': {'low': 0.6, 'medium': 0.8, 'high': 0.9}
|
| 1058 |
+
# }
|
| 1059 |
+
|
| 1060 |
+
# # 獲取基礎分數
|
| 1061 |
+
# base_score = base_scores.get(noise_level, {'low': 0.7, 'medium': 0.8, 'high': 0.6})[user_noise_tolerance]
|
| 1062 |
+
|
| 1063 |
+
# # 吠叫原因評估
|
| 1064 |
+
# barking_reasons_penalty = 0
|
| 1065 |
+
# problematic_triggers = [
|
| 1066 |
+
# ('separation anxiety', -0.15),
|
| 1067 |
+
# ('excessive barking', -0.12),
|
| 1068 |
+
# ('territorial', -0.08),
|
| 1069 |
+
# ('alert barking', -0.05),
|
| 1070 |
+
# ('attention seeking', -0.05)
|
| 1071 |
+
# ]
|
| 1072 |
|
| 1073 |
+
# for trigger, penalty in problematic_triggers:
|
| 1074 |
+
# if trigger in noise_notes:
|
| 1075 |
+
# barking_reasons_penalty += penalty
|
| 1076 |
|
| 1077 |
+
# # 可訓練性補償
|
| 1078 |
+
# trainability_bonus = 0
|
| 1079 |
+
# if 'responds well to training' in noise_notes:
|
| 1080 |
+
# trainability_bonus = 0.1
|
| 1081 |
+
# elif 'can be trained' in noise_notes:
|
| 1082 |
+
# trainability_bonus = 0.05
|
| 1083 |
+
|
| 1084 |
+
# # 特殊情況
|
| 1085 |
+
# special_adjustments = 0
|
| 1086 |
+
# if 'rarely barks' in noise_notes:
|
| 1087 |
+
# special_adjustments += 0.1
|
| 1088 |
+
# if 'howls' in noise_notes and user_noise_tolerance == 'low':
|
| 1089 |
+
# special_adjustments -= 0.1
|
| 1090 |
+
|
| 1091 |
+
# final_score = base_score + barking_reasons_penalty + trainability_bonus + special_adjustments
|
| 1092 |
+
|
| 1093 |
+
# return max(0.2, min(1.0, final_score))
|
| 1094 |
+
|
| 1095 |
+
def calculate_noise_score(breed_name: str, user_prefs: UserPreferences) -> float:
|
| 1096 |
+
"""
|
| 1097 |
+
計算品種噪音分數,特別加強噪音程度與生活環境的關聯性評估
|
| 1098 |
+
"""
|
| 1099 |
if breed_name not in breed_noise_info:
|
| 1100 |
return 0.5
|
| 1101 |
+
|
| 1102 |
noise_info = breed_noise_info[breed_name]
|
| 1103 |
noise_level = noise_info['noise_level'].lower()
|
| 1104 |
noise_notes = noise_info['noise_notes'].lower()
|
| 1105 |
+
|
| 1106 |
+
# 重新設計基礎噪音分數矩陣,考慮不同情境下的接受度
|
| 1107 |
base_scores = {
|
| 1108 |
+
'low': {
|
| 1109 |
+
'low': 1.0, # 安靜的狗對低容忍完美匹配
|
| 1110 |
+
'medium': 0.95, # 安靜的狗對一般容忍很好
|
| 1111 |
+
'high': 0.90 # 安靜的狗對高容忍當然可以
|
| 1112 |
+
},
|
| 1113 |
+
'medium': {
|
| 1114 |
+
'low': 0.60, # 一般吠叫對低容忍較困難
|
| 1115 |
+
'medium': 0.90, # 一般吠叫對一般容忍可接受
|
| 1116 |
+
'high': 0.95 # 一般吠叫對高容忍很好
|
| 1117 |
+
},
|
| 1118 |
+
'high': {
|
| 1119 |
+
'low': 0.25, # 愛叫的狗對低容忍極不適合
|
| 1120 |
+
'medium': 0.65, # 愛叫的狗對一般容忍有挑戰
|
| 1121 |
+
'high': 0.90 # 愛叫的狗對高容忍可以接受
|
| 1122 |
+
},
|
| 1123 |
+
'varies': {
|
| 1124 |
+
'low': 0.50, # 不確定的情況對低容忍風險較大
|
| 1125 |
+
'medium': 0.75, # 不確定的情況對一般容忍可嘗試
|
| 1126 |
+
'high': 0.85 # 不確定的情況對高容忍問題較小
|
| 1127 |
+
}
|
| 1128 |
}
|
| 1129 |
+
|
| 1130 |
+
# 取得基礎分數
|
| 1131 |
+
base_score = base_scores.get(noise_level, {'low': 0.6, 'medium': 0.75, 'high': 0.85})[user_prefs.noise_tolerance]
|
| 1132 |
+
|
| 1133 |
+
# 吠叫原因評估,根據環境調整懲罰程度
|
| 1134 |
+
barking_penalties = {
|
| 1135 |
+
'separation anxiety': {
|
| 1136 |
+
'apartment': -0.30, # 在公寓對鄰居影響更大
|
| 1137 |
+
'house_small': -0.25,
|
| 1138 |
+
'house_large': -0.20
|
| 1139 |
+
},
|
| 1140 |
+
'excessive barking': {
|
| 1141 |
+
'apartment': -0.25,
|
| 1142 |
+
'house_small': -0.20,
|
| 1143 |
+
'house_large': -0.15
|
| 1144 |
+
},
|
| 1145 |
+
'territorial': {
|
| 1146 |
+
'apartment': -0.20, # 在公寓更容易被觸發
|
| 1147 |
+
'house_small': -0.15,
|
| 1148 |
+
'house_large': -0.10
|
| 1149 |
+
},
|
| 1150 |
+
'alert barking': {
|
| 1151 |
+
'apartment': -0.15, # 公寓環境刺激較多
|
| 1152 |
+
'house_small': -0.10,
|
| 1153 |
+
'house_large': -0.08
|
| 1154 |
+
},
|
| 1155 |
+
'attention seeking': {
|
| 1156 |
+
'apartment': -0.15,
|
| 1157 |
+
'house_small': -0.12,
|
| 1158 |
+
'house_large': -0.10
|
| 1159 |
+
}
|
| 1160 |
+
}
|
| 1161 |
+
|
| 1162 |
+
# 計算環境相關的吠叫懲罰
|
| 1163 |
+
living_space = user_prefs.living_space
|
| 1164 |
+
barking_penalty = 0
|
| 1165 |
+
for trigger, penalties in barking_penalties.items():
|
| 1166 |
if trigger in noise_notes:
|
| 1167 |
+
barking_penalty += penalties.get(living_space, -0.15)
|
| 1168 |
+
|
| 1169 |
+
# 特殊情況評估
|
| 1170 |
+
special_adjustments = 0
|
| 1171 |
+
if user_prefs.has_children:
|
| 1172 |
+
# 孩童年齡相關調整
|
| 1173 |
+
child_age_adjustments = {
|
| 1174 |
+
'toddler': {
|
| 1175 |
+
'high': -0.20, # 幼童對吵鬧更敏感
|
| 1176 |
+
'medium': -0.15,
|
| 1177 |
+
'low': -0.05
|
| 1178 |
+
},
|
| 1179 |
+
'school_age': {
|
| 1180 |
+
'high': -0.15,
|
| 1181 |
+
'medium': -0.10,
|
| 1182 |
+
'low': -0.05
|
| 1183 |
+
},
|
| 1184 |
+
'teenager': {
|
| 1185 |
+
'high': -0.10,
|
| 1186 |
+
'medium': -0.05,
|
| 1187 |
+
'low': -0.02
|
| 1188 |
+
}
|
| 1189 |
+
}
|
| 1190 |
+
|
| 1191 |
+
# 根據孩童年齡和噪音等級調整
|
| 1192 |
+
age_adj = child_age_adjustments.get(user_prefs.children_age,
|
| 1193 |
+
child_age_adjustments['school_age'])
|
| 1194 |
+
special_adjustments += age_adj.get(noise_level, -0.10)
|
| 1195 |
+
|
| 1196 |
+
# 訓練性補償評估
|
| 1197 |
trainability_bonus = 0
|
| 1198 |
if 'responds well to training' in noise_notes:
|
| 1199 |
+
trainability_bonus = 0.12
|
| 1200 |
elif 'can be trained' in noise_notes:
|
| 1201 |
+
trainability_bonus = 0.08
|
| 1202 |
+
elif 'difficult to train' in noise_notes:
|
| 1203 |
+
trainability_bonus = 0.02
|
| 1204 |
+
|
| 1205 |
+
# 夜間吠叫特別考量
|
| 1206 |
+
if 'night barking' in noise_notes or 'howls' in noise_notes:
|
| 1207 |
+
if user_prefs.living_space == 'apartment':
|
| 1208 |
+
special_adjustments -= 0.15
|
| 1209 |
+
elif user_prefs.living_space == 'house_small':
|
| 1210 |
+
special_adjustments -= 0.10
|
| 1211 |
+
else:
|
| 1212 |
+
special_adjustments -= 0.05
|
| 1213 |
+
|
| 1214 |
+
# 計算最終分數,確保更大的分數範圍
|
| 1215 |
+
final_score = base_score + barking_penalty + special_adjustments + trainability_bonus
|
| 1216 |
+
return max(0.1, min(1.0, final_score))
|
| 1217 |
+
|
| 1218 |
|
| 1219 |
+
# # 計算所有基礎分數
|
| 1220 |
+
# scores = {
|
| 1221 |
+
# 'space': calculate_space_score(
|
| 1222 |
+
# breed_info['Size'],
|
| 1223 |
+
# user_prefs.living_space,
|
| 1224 |
+
# user_prefs.space_for_play,
|
| 1225 |
+
# breed_info.get('Exercise Needs', 'Moderate')
|
| 1226 |
+
# ),
|
| 1227 |
+
# 'exercise': calculate_exercise_score(
|
| 1228 |
+
# breed_info.get('Exercise Needs', 'Moderate'),
|
| 1229 |
+
# user_prefs.exercise_time
|
| 1230 |
+
# ),
|
| 1231 |
+
# 'grooming': calculate_grooming_score(
|
| 1232 |
+
# breed_info.get('Grooming Needs', 'Moderate'),
|
| 1233 |
+
# user_prefs.grooming_commitment.lower(),
|
| 1234 |
+
# breed_info['Size']
|
| 1235 |
+
# ),
|
| 1236 |
+
# 'experience': calculate_experience_score(
|
| 1237 |
+
# breed_info.get('Care Level', 'Moderate'),
|
| 1238 |
+
# user_prefs.experience_level,
|
| 1239 |
+
# breed_info.get('Temperament', '')
|
| 1240 |
+
# ),
|
| 1241 |
+
# 'health': calculate_health_score(breed_info.get('Breed', '')),
|
| 1242 |
+
# 'noise': calculate_noise_score(breed_info.get('Breed', ''), user_prefs.noise_tolerance)
|
| 1243 |
+
# }
|
| 1244 |
+
|
| 1245 |
+
|
| 1246 |
+
# # 優化權重配置
|
| 1247 |
+
# weights = {
|
| 1248 |
+
# 'space': 0.28,
|
| 1249 |
+
# 'exercise': 0.18,
|
| 1250 |
+
# 'grooming': 0.12,
|
| 1251 |
+
# 'experience': 0.22,
|
| 1252 |
+
# 'health': 0.12,
|
| 1253 |
+
# 'noise': 0.08
|
| 1254 |
+
# }
|
| 1255 |
|
| 1256 |
+
# # 計算加權總分
|
| 1257 |
+
# weighted_score = sum(score * weights[category] for category, score in scores.items())
|
| 1258 |
+
|
| 1259 |
+
# def amplify_score(score):
|
| 1260 |
+
# """
|
| 1261 |
+
# 優化分數放大函數,確保分數範圍合理且結果一致
|
| 1262 |
+
# """
|
| 1263 |
+
# # 基礎調整
|
| 1264 |
+
# adjusted = (score - 0.35) * 1.8
|
| 1265 |
+
|
| 1266 |
+
# # 使用 3.2 次方使曲線更平滑
|
| 1267 |
+
# amplified = pow(adjusted, 3.2) / 5.8 + score
|
| 1268 |
+
|
| 1269 |
+
# # 特別處理高分區間,確保不超過95%
|
| 1270 |
+
# if amplified > 0.90:
|
| 1271 |
+
# # 壓縮高分區間,確保最高到95%
|
| 1272 |
+
# amplified = 0.90 + (amplified - 0.90) * 0.5
|
| 1273 |
|
| 1274 |
+
# # 確保最終分數在合理範圍內(0.55-0.95)
|
| 1275 |
+
# final_score = max(0.55, min(0.95, amplified))
|
| 1276 |
+
|
| 1277 |
+
# # 四捨五入到小數點後第三位
|
| 1278 |
+
# return round(final_score, 3)
|
| 1279 |
+
|
| 1280 |
+
# final_score = amplify_score(weighted_score)
|
| 1281 |
+
|
| 1282 |
+
# # 四捨五入所有分數
|
| 1283 |
+
# scores = {k: round(v, 4) for k, v in scores.items()}
|
| 1284 |
+
# scores['overall'] = round(final_score, 4)
|
| 1285 |
+
|
| 1286 |
+
# return scores
|
| 1287 |
+
|
| 1288 |
+
# except Exception as e:
|
| 1289 |
+
# print(f"Error details: {str(e)}")
|
| 1290 |
+
# print(f"breed_info: {breed_info}")
|
| 1291 |
+
# # print(f"Error in calculate_compatibility_score: {str(e)}")
|
| 1292 |
+
# return {k: 0.6 for k in ['space', 'exercise', 'grooming', 'experience', 'health', 'noise', 'overall']}
|
| 1293 |
|
|
|
|
| 1294 |
scores = {
|
| 1295 |
'space': calculate_space_score(
|
| 1296 |
breed_info['Size'],
|
|
|
|
| 1316 |
'noise': calculate_noise_score(breed_info.get('Breed', ''), user_prefs.noise_tolerance)
|
| 1317 |
}
|
| 1318 |
|
| 1319 |
+
# 2. 優化權重配置 - 根據使用者情況動態調整權重
|
| 1320 |
+
base_weights = {
|
|
|
|
| 1321 |
'space': 0.28,
|
| 1322 |
'exercise': 0.18,
|
| 1323 |
'grooming': 0.12,
|
|
|
|
| 1326 |
'noise': 0.08
|
| 1327 |
}
|
| 1328 |
|
| 1329 |
+
# 根據特殊情況調整權重
|
| 1330 |
+
weights = base_weights.copy()
|
| 1331 |
+
|
| 1332 |
+
# 有孩童時的權重調整
|
| 1333 |
+
if user_prefs.has_children:
|
| 1334 |
+
if user_prefs.children_age == 'toddler':
|
| 1335 |
+
weights['experience'] *= 1.4 # 幼童需要更有經驗的配對
|
| 1336 |
+
weights['noise'] *= 1.3 # 噪音影響更重要
|
| 1337 |
+
weights['health'] *= 1.2 # 健康因素更關鍵
|
| 1338 |
+
elif user_prefs.children_age == 'school_age':
|
| 1339 |
+
weights['experience'] *= 1.2
|
| 1340 |
+
weights['noise'] *= 1.2
|
| 1341 |
+
|
| 1342 |
+
# 居住環境的權重調整
|
| 1343 |
+
if user_prefs.living_space == 'apartment':
|
| 1344 |
+
weights['space'] *= 1.3 # 空間限制更重要
|
| 1345 |
+
weights['noise'] *= 1.2 # 噪音影響更顯著
|
| 1346 |
+
|
| 1347 |
+
# 重新正規化權重
|
| 1348 |
+
total_weight = sum(weights.values())
|
| 1349 |
+
weights = {k: v/total_weight for k, v in weights.items()}
|
| 1350 |
|
| 1351 |
+
# 3. 計算加權總分
|
| 1352 |
+
weighted_score = sum(score * weights[category] for category, score in scores.items())
|
| 1353 |
+
|
| 1354 |
+
# 4. 改進的分數放大函數
|
| 1355 |
def amplify_score(score):
|
| 1356 |
"""
|
| 1357 |
+
改進的分數放大函數,提供更大的分數差異。
|
| 1358 |
+
|
| 1359 |
+
主要改進:
|
| 1360 |
+
1. 調整基礎計算參數以產生更明顯的差異
|
| 1361 |
+
2. 根據分數區間使用不同的放大策略
|
| 1362 |
+
3. 擴大最終分數範圍
|
| 1363 |
"""
|
| 1364 |
+
# 基礎調整,擴大差異
|
| 1365 |
+
adjusted = (score - 0.4) * 2.0 # 從0.35調整到0.4,倍數從1.8提高到2.0
|
| 1366 |
|
| 1367 |
+
# 使用更陡峭的曲線,從3.2降到2.8使曲線不會過於極端
|
| 1368 |
+
amplified = pow(adjusted, 2.8) / 4.5 + score
|
| 1369 |
|
| 1370 |
+
# 分數區間處理
|
| 1371 |
+
if score < 0.65: # 低分區間
|
| 1372 |
+
amplified *= 0.85 # 進一步降低不適合的配對
|
| 1373 |
+
elif score > 0.85: # 高分區間
|
| 1374 |
+
amplified = 0.85 + (amplified - 0.85) * 0.4 # 高分區間的緩和壓縮
|
| 1375 |
|
| 1376 |
+
# 擴大分數範圍到0.45-0.95,原本是0.55-0.95
|
| 1377 |
+
final_score = max(0.45, min(0.95, amplified))
|
| 1378 |
|
| 1379 |
# 四捨五入到小數點後第三位
|
| 1380 |
return round(final_score, 3)
|
| 1381 |
+
|
| 1382 |
+
# 5. 計算最終分數並應用關鍵條件檢查
|
| 1383 |
final_score = amplify_score(weighted_score)
|
| 1384 |
+
|
| 1385 |
+
# 針對特殊情況的最終調整
|
| 1386 |
+
if user_prefs.has_children and scores['experience'] < 0.4:
|
| 1387 |
+
final_score *= 0.8 # 有孩童但經驗分數過低時大幅降低
|
| 1388 |
+
if user_prefs.living_space == 'apartment' and scores['noise'] < 0.3:
|
| 1389 |
+
final_score *= 0.75 # 住公寓但噪音分數極低時顯著降低
|
| 1390 |
|
| 1391 |
+
# 6. 準備返回結果
|
| 1392 |
scores = {k: round(v, 4) for k, v in scores.items()}
|
| 1393 |
scores['overall'] = round(final_score, 4)
|
| 1394 |
+
|
| 1395 |
return scores
|
| 1396 |
|
| 1397 |
except Exception as e:
|
| 1398 |
print(f"Error details: {str(e)}")
|
| 1399 |
print(f"breed_info: {breed_info}")
|
|
|
|
| 1400 |
return {k: 0.6 for k in ['space', 'exercise', 'grooming', 'experience', 'health', 'noise', 'overall']}
|