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Refined and diversified query suggestion with latent semantic personalization

机译:具有潜在语义个性化功能的细化和多样化查询建议

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摘要

The World Wide Web has grown up rapidly and beyond doubt, majority of it contains useful information. But a portion of the web has a junk data and its presence cannot be ignored. Therefore, it becomes a challenging task to retrieval systems to provide useful information to the user. Also, choice of the query plays a crucial role in retrieving documents. In this paper, we propose a model that provides a better query suggestion to the user. Current state of the art models provide suggestions by taking only the relevancy of the query into consideration. Unlike these approaches, this paper, proposes a model that takes both personalized and diversified results into consideration. We propose query refinements to the query and using these refinements, the diversification of the refined query is performed. Consequently, the latent semantic personalization of the input query is done using the user's query log so as to provide dynamic results to the user. Our claims are supported with the experimental results.
机译:万维网已经迅速发展并且毫无疑问,其中大部分包含有用的信息。但是网络的一部分有垃圾数据,其存在不容忽视。因此,检索系统向用户提供有用信息成为一项具有挑战性的任务。同样,查询的选择在检索文档中也起着至关重要的作用。在本文中,我们提出了一种可以为用户提供更好查询建议的模型。当前的最新模型通过仅考虑查询的相关性来提供建议。与这些方法不同,本文提出了一个考虑个性化和多样化结果的模型。我们对查询提出查询细化,并使用这些细化来执行细化查询的多样化。因此,使用用户的查询日志来完成输入查询的潜在语义个性化,以便向用户提供动态结果。实验结果支持了我们的主张。

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