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부정 탐지×공동참조 해결×
분야텍스트 마이닝텍스트 마이닝
계열Process / pipelineProcess / pipeline
기원 연도2001 (NegEx); scope learning formalised by 20091978
창시자Chapman et al. (NegEx algorithm, 2001); Morante & Daelemans (scope learning, 2009)Hobbs (1978); Lee et al. (2017, neural end-to-end)
유형NLP information-extraction taskNLP information-extraction task
원전Chapman, W.W., Bridewell, W., Hanbury, P., Cooper, G.F., & Buchanan, B.G. (2001). A Simple Algorithm for Identifying Negated Findings and Diseases in Discharge Summaries. Journal of the American Medical Informatics Association, 8(6), 606-614. DOI ↗Lee, K. et al. (2017). End-to-end Neural Coreference Resolution. EMNLP. link ↗
별칭negation scope identification, negation cue detection, Olumsuzlama Tespiti (Negation Detection)coreference, anaphora resolution, Eşgönderim Çözümleme (Coreference Resolution)
관련64
요약Negation detection is a natural-language-processing task that locates negation cues in text — words or phrases such as 'no', 'not', 'without', or 'denies' — and determines the span of text (the scope) whose meaning those cues invert. Formalised for clinical text by Chapman et al. (2001) with the NegEx algorithm and extended to scope learning in biomedical literature by Morante and Daelemans (2009), the method is essential wherever the difference between a finding being present and its being explicitly ruled out carries real consequences.Coreference resolution is a natural-language-processing task that detects when different expressions in a text refer to the same entity — for example a name, a later pronoun, and a descriptive phrase all pointing at one person. Rooted in early linguistic work by Hobbs (1978) and advanced by the end-to-end neural model of Lee et al. (2017), it improves the quality of information extraction and text understanding.
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ScholarGate방법 비교: Negation Detection · Coreference Resolution. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare