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Style-Specific Language Model Adaptation using TF*IDF Similarity for Korean Conversational Speech Recognition
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  • Style-Specific Language Model Adaptation using TF*IDF Similarity for Korean Conversational Speech Recognition
  • Style-Specific Language Model Adaptation using TF*IDF Similarity for Korean Conversational Speech Recognition
저자명
Park. Young-Hee,Chung. Min-Hwa
간행물명
The journal of the Acoustical Society of Korea
권/호정보
2004년|23권 |pp.51-55 (5 pages)
발행정보
한국음향학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

In this paper, we propose a style-specific language model adaptation scheme using n-gram based tf*idf similarity for Korean spontaneous speech recognition. Korean spontaneous speech shows especially different style-specific characteristics such as filled pauses, word omission, and contraction, which are related to function words and depend on preceding or following words. To reflect these style-specific characteristics and overcome insufficient data for training language model, we estimate in-domain dependent n-gram model by relevance weighting of out-of-domain text data according to their n-. gram based tf*idf similarity, in which in-domain language model include disfluency model. Recognition results show that n-gram based tf*idf similarity weighting effectively reflects style difference.