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id, title, category, status, canonical_id, aliases, duplicate_of, source_trust_level, confidence_score, verification_status, tags, raw_sources, last_reinforced, github_commit, tech_stack
| id | title | category | status | canonical_id | aliases | duplicate_of | source_trust_level | confidence_score | verification_status | tags | raw_sources | last_reinforced | github_commit | tech_stack | |||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| wiki-2026-0508-figurative-language | Figurative Language | 10_Wiki/Topics | verified | self |
|
none | A | 0.88 | applied |
|
2026-05-10 | pending |
|
Figurative Language
매 한 줄
"매 literal meaning 의 X — 매 implied meaning". 매 metaphor, simile, idiom, sarcasm, irony, hyperbole, personification. 매 NLP 의 challenge — 매 LLM 의 의 의 better. 매 Lakoff conceptual metaphor → 매 modern transformer.
매 핵심
매 type
- Metaphor: "Time is money".
- Simile: "Brave as a lion".
- Idiom: "Kick the bucket".
- Sarcasm / Irony: 매 opposite literal.
- Hyperbole: "I died laughing".
- Personification: "The wind whispered".
- Metonymy: "The crown" (= king).
매 NLP challenge
- 매 literal interpreter 의 fail.
- 매 cross-cultural varies.
- 매 context-dependent.
- 매 sarcasm 의 매 hardest (no surface marker).
매 modern method
- LLM (GPT, Claude): 매 zero-shot decent.
- Sentence embedding + classifier.
- Conceptual metaphor identification.
- Multi-task (sentiment + sarcasm).
매 응용
- Sentiment analysis: 매 sarcasm 의 detect.
- Translation: 매 idiom localize.
- Content moderation.
- Search / IR.
- Education: 매 figurative interpretation teaching.
💻 패턴
Detect sarcasm (transformer)
from transformers import pipeline
sarcasm_clf = pipeline('text-classification', model='helinivan/english-sarcasm-detector')
result = sarcasm_clf("Oh great, another Monday!")
# 매 [{'label': 'sarcastic', 'score': 0.92}]
Detect metaphor (with LLM)
def detect_metaphor(sentence, llm):
prompt = f"""Is the following sentence metaphorical? If yes, identify the metaphor.
Sentence: "{sentence}"
Output JSON:
- is_metaphor: bool
- source_domain: ...
- target_domain: ...
- explanation: ..."""
return json.loads(llm.generate(prompt))
detect_metaphor("Her career took off after that promotion.", llm)
# 매 source: flight, target: career
Idiom translation
IDIOM_DB = {
'kick the bucket': {'en': 'die', 'ko': '죽다', 'fr': 'mourir'},
'break a leg': {'en': 'good luck', 'ko': '행운을 빌다'},
'piece of cake': {'en': 'easy', 'ko': '식은 죽 먹기'},
}
def translate_idiom(text, target_lang):
for idiom, trans in IDIOM_DB.items():
if idiom in text.lower():
return text.replace(idiom, trans[target_lang])
return text
LLM idiom-aware translation
def smart_translate(text, target_lang, llm):
prompt = f"""Translate to {target_lang}, preserving figurative meaning.
If an idiom exists, use the equivalent target idiom rather than literal translation.
Source: "{text}"
Output: translation only."""
return llm.generate(prompt)
Conceptual metaphor (Lakoff)
CONCEPTUAL_METAPHORS = {
'TIME_IS_MONEY': ['save time', 'spend time', 'waste time', 'invest time'],
'ARGUMENT_IS_WAR': ['attack', 'defend', 'win', 'lose'],
'IDEAS_ARE_OBJECTS': ['grasp', 'hold', 'pass on'],
'LOVE_IS_JOURNEY': ['go separate ways', 'crossroads'],
'UP_IS_GOOD': ['high spirits', 'rise', 'top'],
}
def detect_conceptual(text):
found = []
for cm, markers in CONCEPTUAL_METAPHORS.items():
if any(m in text.lower() for m in markers):
found.append(cm)
return found
Multi-task (sentiment + sarcasm)
class MultiTaskModel(torch.nn.Module):
def __init__(self, base):
super().__init__()
self.base = base
self.sentiment_head = torch.nn.Linear(768, 3)
self.sarcasm_head = torch.nn.Linear(768, 2)
def forward(self, x):
feat = self.base(x).pooler_output
return {
'sentiment': self.sentiment_head(feat),
'sarcasm': self.sarcasm_head(feat),
}
Eval (with figurative)
def adjusted_sentiment(text, sarcasm_score, sentiment_score):
"""매 sarcastic → 매 flip sentiment."""
if sarcasm_score > 0.7:
return -sentiment_score
return sentiment_score
Hyperbole detection
HYPERBOLE_MARKERS = ['always', 'never', 'died', 'a million', 'the worst', 'the best ever']
def has_hyperbole(text):
return any(m in text.lower() for m in HYPERBOLE_MARKERS)
Cross-cultural figurative test
def cultural_metaphor_test(metaphor, languages, llm):
results = {}
for lang in languages:
prompt = f"In {lang}, how is the metaphor '{metaphor}' typically expressed? If different, give the cultural equivalent."
results[lang] = llm.generate(prompt)
return results
Personification detector
def detect_personification(text, llm):
prompt = f"""Identify personification (giving human traits to non-human).
Text: "{text}"
Output: list of personifications + the human trait + the entity."""
return llm.generate(prompt)
Figurative-aware embedding
from sentence_transformers import SentenceTransformer
m = SentenceTransformer('all-mpnet-base-v2')
# 매 idiom and literal 의 should be different
emb1 = m.encode("It's raining cats and dogs.") # 매 idiom
emb2 = m.encode("It is raining heavily.") # 매 literal
emb3 = m.encode("Cats and dogs are falling from the sky.") # 매 absurd literal
# 매 1-2 close, 1-3 distant (good model)
매 결정 기준
| 상황 | Approach |
|---|---|
| Sentiment / sarcasm | Multi-task transformer |
| Translation | LLM idiom-aware |
| Linguistics research | Conceptual metaphor |
| Search | Idiom DB + paraphrase |
| Education | LLM explainer |
기본값: 매 modern LLM 의 default + 매 sarcasm 의 specialized + 매 idiom DB + 매 cultural awareness.
🔗 Graph
- 부모: NLP
- 변형: Metaphor · Idiom
- 응용: Sentiment-Analysis
- Adjacent: Embodied Cognition · Pragmatics
🤖 LLM 활용
언제: 매 sentiment. 매 translation. 매 educational. 언제 X: 매 strict literal task.
❌ 안티패턴
- Literal-only NLP: 매 sarcasm miss.
- Word-by-word translate: 매 idiom break.
- No cultural check: 매 offense / confusion.
- Single language assumption: 매 i18n fail.
🧪 검증 / 중복
- Verified (Lakoff & Johnson, NLP figurative literature).
- 신뢰도 A.
🕓 Changelog
| 날짜 | 변경 |
|---|---|
| 2026-04-20 | Auto-reinforced |
| 2026-05-08 | Phase 1 |
| 2026-05-10 | Manual cleanup — types + 매 sarcasm / metaphor / idiom / multi-task code |