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Co-authorship Network Embedding and Recommending Collaborators via Network Embedding

机译:共同作者网络嵌入和通过网络嵌入推荐合作者

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Co-authorship networks contain invisible patterns of collaboration among researchers. The process of writing joint paper can depend of different factors, such as friendship, common interests, and policy of university. We show that, having a temporal co-authorship network, it is possible to predict future publications. We solve the problem of recommending collaborators from the point of link prediction using graph embedding, obtained from co-authorship network. We run experiments on data from HSE publications graph and compare it with relevant models.
机译:共同作者网络包含研究人员之间无形的合作模式。撰写联合论文的过程可能取决于不同的因素,例如友谊,共同利益和大学政策。我们证明,拥有一个临时合著者网络,可以预测未来的出版物。我们解决了从合作者网络获得的图嵌入从链接预测的角度推荐合作者的问题。我们对来自HSE出版物图表的数据进行实验,并将其与相关模型进行比较。

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