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中国民族学研究中的语言学方法:检讨与重建 被引量:1
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作者 谭必友 李臣玲 《新疆大学学报(社会科学版)》 北大核心 2004年第4期71-75,共5页
语言学方法是民族学研究的重要方法,但自它明确成为中国民族学的关注对象后,这个方法本身一直未能在理论上和实践中获得新发展。本文在对这一方法详加检讨的基础上,试图建构一些新的方法,以突破前人在这一问题上的局限性,为民族学在新... 语言学方法是民族学研究的重要方法,但自它明确成为中国民族学的关注对象后,这个方法本身一直未能在理论上和实践中获得新发展。本文在对这一方法详加检讨的基础上,试图建构一些新的方法,以突破前人在这一问题上的局限性,为民族学在新时期的发展开示一新路向。 展开更多
关键词 中国 民族学研究 语言学方 叙述方 语词分析法
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Vari-gram language model based on word clustering
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作者 袁里驰 《Journal of Central South University》 SCIE EI CAS 2012年第4期1057-1062,共6页
Category-based statistic language model is an important method to solve the problem of sparse data.But there are two bottlenecks:1) The problem of word clustering.It is hard to find a suitable clustering method with g... Category-based statistic language model is an important method to solve the problem of sparse data.But there are two bottlenecks:1) The problem of word clustering.It is hard to find a suitable clustering method with good performance and less computation.2) Class-based method always loses the prediction ability to adapt the text in different domains.In order to solve above problems,a definition of word similarity by utilizing mutual information was presented.Based on word similarity,the definition of word set similarity was given.Experiments show that word clustering algorithm based on similarity is better than conventional greedy clustering method in speed and performance,and the perplexity is reduced from 283 to 218.At the same time,an absolute weighted difference method was presented and was used to construct vari-gram language model which has good prediction ability.The perplexity of vari-gram model is reduced from 234.65 to 219.14 on Chinese corpora,and is reduced from 195.56 to 184.25 on English corpora compared with category-based model. 展开更多
关键词 word similarity word clustering statistical language model vari-gram language model
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