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Microblog Summarization via Enriching Contextual Features Based on Sentence-Level Semantic Analysis 被引量:1
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作者 Senlin Luo qianrou chen +2 位作者 Jia Guo Ji Zhang Limin Pan 《Journal of Beijing Institute of Technology》 EI CAS 2017年第4期505-516,共12页
A novel microblog summarization approach via enriching contextual features on sentencelevel semantic analysis is proposed in this paper. At first,a Chinese sentential semantic model( CSM) is employed to analyze the ... A novel microblog summarization approach via enriching contextual features on sentencelevel semantic analysis is proposed in this paper. At first,a Chinese sentential semantic model( CSM) is employed to analyze the semantic structure of each microblog sentence. Then,a combination of sentence-level semantic analysis and latent dirichlet allocation is utilized to acquire extra features and related words to enrich the collection of microblog messages. The simlilarites between the two sentences are calculated based on the enriched features. Finally,the semantic weight and relation weight are calculated to select the most informative sentences,which form the final summary for microblog messages. Experimental results demonstrate the advantages of our proposed approach.The results indicate that introducing sentence-level semantic analysis for context enrichment can better represent sentential semantic. The proposed criteria,namely,semantic weight and relation weight enhance summary result. Furthermore,CSM is a useful framework for sentence-level semantic analysis. 展开更多
关键词 microblog summariztion language models language parsing and understanding natural language processing
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