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Who is Responsible for the L3 Learning Motivation of Ethnic Minority Students? Linguistic Distance Perspectives
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作者 杨雪姣 李岱 《海外英语》 2018年第3期14-15,共2页
This paper analyzes the research on linguistic distance and learning motivation, and proposes strategies for shortening the psychological linguistic distance of ethnic minority students, so as to stimulate and promote... This paper analyzes the research on linguistic distance and learning motivation, and proposes strategies for shortening the psychological linguistic distance of ethnic minority students, so as to stimulate and promote their learning motivation. 展开更多
关键词 trilingual language acquisition MOTIVATION Ethnic Minority Students language distance
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A Multiple Feature Approach for Disorder Normalization in Clinical Notes
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作者 Lü Chen CHEN Bo +2 位作者 Lü Chaozhen QIU Likun JI Donghong 《Wuhan University Journal of Natural Sciences》 CAS CSCD 2016年第6期482-490,共9页
In this paper we propose a multiple feature approach for the normalization task which can map each disorder mention in the text to a unique unified medical language system(UMLS)concept unique identifier(CUI). We d... In this paper we propose a multiple feature approach for the normalization task which can map each disorder mention in the text to a unique unified medical language system(UMLS)concept unique identifier(CUI). We develop a two-step method to acquire a list of candidate CUIs and their associated preferred names using UMLS API and to choose the closest CUI by calculating the similarity between the input disorder mention and each candidate. The similarity calculation step is formulated as a classification problem and multiple features(string features,ranking features,similarity features,and contextual features) are used to normalize the disorder mentions. The results show that the multiple feature approach improves the accuracy of the normalization task from 32.99% to 67.08% compared with the Meta Map baseline. 展开更多
关键词 natural language processing disorder normalization Levenshtein distance semantic composition multiple features
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