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Using monte-carlo simulation for automatic new topic identification of search engine transaction logs

机译:使用Monte-Carlo仿真进行自动新主题识别搜索引擎事务日志

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One of the most important dimensions of search engine user information seeking behavior and search engine research is content-based behavior, and limited research has focused on content-based behavior of search engine users. The purpose of this study is to present a simulation application on information science, by performing automatic new topic identification in search engine transaction logs using Monte Carlo simulation. Sample data logs from FAST and Excite are used in the study. Findings show that Monte Carlo simulation for new topic identification yields satisfactory results in terms of identifying topic continuations, however the performance measures regarding topic shifts should be improved.
机译:搜索引擎用户信息寻求行为和搜索引擎研究中最重要的维度之一是基于内容的行为,并且有限的研究专注于搜索引擎用户的内容行为。本研究的目的是在使用Monte Carlo仿真中在搜索引擎事务日志中执行自动新主题识别来展示关于信息科学的仿真应用。在研究中使用快速和激发的示例数据日志。调查结果表明,新主题识别的蒙特卡罗模拟在识别主题持续方面产生令人满意的结果,但应提高关于主题转变的绩效措施。

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