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Automatic construction of multi-faceted user profiles using text clustering and its application to expert recommendation and filtering problems

机译:使用文本聚类自动构建多方面的用户配置文件并将其应用于专家推荐和过滤问题

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摘要

In the information age we are living in today, not only are we interested in accessing multimedia objects such as documents, videos, etc. but also in searching for professional experts, people or celebrities, possibly for professional needs or just for fun. Information access systems need to be able to extract and exploit various sources of information (usually in text format) about such individuals, and to represent them in a suitable way usually in the form of a profile. In this article, we tackle the problems of profile-based expert recommendation and document filtering from a machine learning perspective by clustering expert textual sources to build profiles and capture the different hidden topics in which the experts are interested. The experts will then be represented by means of multi-faceted profiles. Our experiments show that this is a valid technique to improve the performance of expert finding and document filtering. (C) 2019 Elsevier B.V. All rights reserved.
机译:在当今的信息时代,我们不仅对访问多媒体对象(例如文档,视频等)感兴趣,而且还对寻找专业专家,人物或名人(可能出于专业需要或只是为了娱乐)感兴趣。信息访问系统需要能够提取和利用有关此类个体的各种信息源(通常为文本格式),并通常以简档的形式以合适的方式表示它们。在本文中,我们通过聚类专家文本源以构建概要文件并捕获专家感兴趣的不同隐藏主题,从机器学习的角度解决了基于概要文件的专家推荐和文档过滤问题。然后,专家将通过多方面的概况来代表。我们的实验表明,这是提高专家查找和文档过滤性能的有效技术。 (C)2019 Elsevier B.V.保留所有权利。

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