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Automatic Reputation Computation through Document Analysis: A Social Network Approach

机译:通过文档分析自动进行信誉计算:一种社交网络方法

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We develop and study two social network-based algorithms for automatically computing authors' reputations from a collection of textual documents. First, given a set of documents, both algorithms examine keyword reference behaviors of the authors to construct a social network. This social network represents the relationship among the authors in terms of information reference behavior. With the resulting network, the first algorithm computes each author's reputation value considering only direct referential activities while the second considers indirect activities as well. We discuss the reputation values computed by the two algorithms and compare them with the reputation ratings given by a human domain expert. We also analyze the social network through a community detection algorithm. We observed several interesting phenomena including the network being scale-free and having negative assortativity.
机译:我们开发和研究两种基于社交网络的算法,以自动计算作者的声誉来自一系列文本文档。首先,给定一组文档,这两种算法都检查作者的关键字参考行为来构建社交网络。这种社交网络在信息参考行为方面代表了作者之间的关系。通过所得到的网络,第一算法仅考虑仅考虑直接参照活动的每个作者的声誉值,而第二个考虑间接活动也是如此。我们讨论了两种算法计算的声誉值,并将它们与人类领域专家给出的声誉评级进行比较。我们还通过社区检测算法分析社交网络。我们观察了几种有趣的现象,包括网络无垢和具有负差异。

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