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Modeling Documents as Mixtures of Persons for Expert Finding

机译:将文档建模为人员混合以供专家查找

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In this paper we address the problem of searching for knowledgeable persons within the enterprise, known as the expert finding (or expert search) task. We present a probabilistic algorithm using the assumption that terms in documents are produced by people who are mentioned in them. We represent documents retrieved to a query as mixtures of candidate experts language models. Two methods of personal language models extraction are proposed, as well as the way of combining them with other evidences of expertise. Experiments conducted with the TREC Enterprise collection demonstrate the superiority of our approach in comparison with the best one among existing solutions.
机译:在本文中,我们解决了在企业内部寻找知识渊博的人的问题,这就是专家查找(或专家搜索)任务。我们提出一个概率算法,假设文档中的术语是由文档中提到的人产生的。我们将检索到的文档表示为候选专家语言模型的混合体。提出了两种提取个人语言模型的方法,以及将它们与其他专业知识的证据相结合的方法。与现有解决方案中最好的相比,使用TREC Enterprise系列进行的实验证明了我们的方法的优越性。

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