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Mining burst topical keywords from microblog stream

机译:从微博流中挖掘突发主题关键字

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Microblog is becoming more and more popular in daily life, through which people can exchange small elements of content, such as short sentences, individual images, or video links. Considering millions of data produced every day, a challenging issue is how to quickly know current burst topic from large volume of continuous microblog streams. This work proposed a method for mining burst topical keywords from microblog stream based on incremental calculation method and burst theory. Considering burst topic's immanent characters, such as burst phenomenon and uncommon, a method combining these characters was proposed to weight the words of microblog stream in a fixed time interval (Time Window). Eventually, those words whose weight is over a given threshold are selected as burst topical keywords of that period. The experimental results show that the proposed method can mine the burst topical keywords which can correctly reflects the trends of burst topics in microblog.
机译:微博客在日常生活中正变得越来越流行,人们可以通过微博交换内容的小元素,例如简短的句子,单个图像或视频链接。考虑到每天产生的数百万个数据,一个具有挑战性的问题是如何从大量连续的微博客流中快速了解当前的突发话题。本文基于增量计算和突发理论,提出了一种从微博流中挖掘突发话题关键词的方法。考虑到突发话题的内在特征,如突发现象和不常见现象,提出了一种结合这些特征的方法,以固定的时间间隔(时间窗)对微博流中的单词进行加权。最终,将权重超过给定阈值的那些单词选择为该时段的突发性主题关键字。实验结果表明,该方法能够挖掘突发话题关键词,能够正确反映微博中突发话题的发展趋势。

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