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Topic sensitive hybrid expertise retrieval system in community question answering services

机译:主题敏感混合专长在社区问题回答服务中的检索系统

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Here, we propose a topic sensitive hybrid expertise retrieval system in community question answering services. We introduce three new expertise signatures: knowledge, reputation, and authority. These signatures consider the questions, and hence, their answerers from a topic sensitive perspective. We estimate the knowledge of an answerer on a new question based on the previously answered subset of questions with similar topic distributions to the new question. The reputation of an answerer, moreover, is derived from the qualities of previously answered questions by the answerer with similar distributions of topics. Furthermore, we propose a topic sensitive authority model. It considers some topic related information associated with questions and the relationships among their answerers. We compare the proposed method with 26 existing methods on 4 real-world datasets using 5 performance measures. It outperforms the comparing algorithms in 91.73% (477 out of 520) cases. (C) 2020 Elsevier B.V. All rights reserved.
机译:在这里,我们提出了一个主题敏感的混合专业知识检索系统,在社区问题回答服务中。我们介绍了三个新的专业知识签名:知识,声誉和权威。这些签名考虑了问题,从而从主题敏感的角度来看。我们根据先前回答了与新问题的类似主题分布的问题的问题,估计了对新问题的回答的知识。此外,回答者的声誉来自于具有类似主题分布的答题的先前回答问题的质量。此外,我们提出了一个主题敏感权威模型。它考虑了与回答者之间的问题和关系相关的一些相关信息。我们使用5个性能措施将提出的方法与26个现有方法进行比较了26个现有方法。它优于91.73%的比较算法(520分中477)。 (c)2020 Elsevier B.v.保留所有权利。

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