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Identifying Topical Opinion Leaders in Social Community Question Answering

机译:找出社交社区问答中的主题意见领袖

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摘要

Social community question answering (SCQA) sites not only provide regular question answering (QA) service but also form a social network where users can follow each other. Identifying topical opinion leaders who are both expert and influential in SCQA becomes a hot research topic. However, existing works focus on either using knowledge expertise to find experts for improving the quality of answers, or measuring user influence to identify influential ones. In this paper, we propose QALeaderRank, a topical opinion leader identification framework, incorporating both the topic-sensitive influence and the topical knowledge expertise. To measure a user's topic-sensitive influence, we design a novel ranking algorithm that exploits both the social and QA features of SCQA, taking account of the network structure, topical similarity and knowledge authority. Besides, we incorporate three topic-relevant metrics to infer the topical expertise. Extensive experiments along with a user study demonstrate that QALeaderRank outperforms the compared state-of-the-art methods. QALeaderRank can also be used to identify multi-topic opinion leaders.
机译:社交社区问答(SCQA)站点不仅提供常规问答(QA)服务,而且还形成了一个用户可以互相关注的社交网络。识别既是SCQA专家又是有影响力的话题舆论领袖成为热门的研究话题。但是,现有的工作侧重于利用知识专长来寻找专家来提高答案的质量,或者通过测量用户的影响力来确定有影响力的答案。在本文中,我们提出了QALeaderRank,这是一个主题意见领袖识别框架,该框架结合了主题敏感的影响力和主题知识专长。为了衡量用户对主题敏感的影响,我们设计了一种新颖的排名算法,该算法利用了SCQA的社交和质量检查功能,同时考虑了网络结构,主题相似性和知识权威。此外,我们结合了三个与主题相关的指标来推断主题专业知识。大量的实验和一项用户研究表明,QALeaderRank的性能优于已比较的最新方法。 QALeaderRank还可以用于识别多主题意见领袖。

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