基于依存连接权vsm的子话题检测跟跟踪方法_周学广文档.pdf

基于依存连接权vsm的子话题检测跟跟踪方法_周学广文档.pdf

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基于依存连接权vsm的子话题检测跟跟踪方法_周学广文档

34 8 Vol.34 No. 8 2013 8 Journal on Communications August 2013 doi:10.3969/j.issn.1000-436x.2013.08.001 VSM ( 430033) TF-IDF VSM sTDT DET 2.2% TP391 A 1000-436X(2013)08-0001-09 Sub-topic detection and tracking based on dependency connection weights for vector space model ZHOU Xue-guang, GAO Fei, SUN Yan (Department of Information Security, Navy University of Engineering, Wuhan 430033, China) Abstract: Aiming at the phenomenon that there are abrupt reports, similar topics and abundant levels of subtopics in the news, a novel method based on relationship analysis using dependent sentence pattern was proposed for sub-topic detection and tracking (sTDT), which constructed feature dimensions to generate the global vectors according to the increment of TF-IDF, and then created the partial adjoin map based on the connection weights within the time window and decreased the dimensions through dependent sentence pattern. Finally, a novel method for sTDT computing was built with adjoins dictionary weights and time threshold attenuation. Experiments show that the proposed method transferrs the text from linear to plane structure, and ex- tracts the subtopics effectively, of which the minimum DET cost is reduced by at least 2.2 percent than that of classical methods. Key words: topic detection and tracking; dependency connection weights; associating words group; report relation detection; vector space model 1 TD TDT, topic detection and TT tracking

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