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A Multiview Clustering Approach To Identify Out-of-Scope Submissions in Peer Review

机译:在同行评审中识别超出范围的提交的多视图聚类方法

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Despite criticisms, peer review is still the only widely accepted method for research validation. The first stage in academic peer review begins at the editor's desk where one essential job of the editor is to identify and reject inappropriate out-of-scope submissions. Here in this work, we investigate if we could assist the editor in identifying potential out-of-scope submissions. We view a paper from multiple perspectives and devise a multiview clustering approach to group in-scope and out-of-scope articles. Our semi-supervised approach requires less training data yet achieves high performance. Our initial investigation yields promising results and has the potential to reduce the first turn-around time for journal submissions.
机译:尽管批评,同行评审仍然是唯一受过广泛接受的研究验证的方法。学术同行评审中的第一阶段开始于编辑的办公桌,编辑的一个基本工作是识别和拒绝不合适的范围内提交。在这项工作中,我们调查我们是否可以协助编辑确定潜在的范围内提交。我们从多个角度查看一篇论文,并将多视图聚类方法设计为组内范围内和范围外文章。我们的半监督方法需要较少的培训数据,但实现了高性能。我们的初步调查产生了有希望的结果,并有可能减少第一个扭转时间的杂志。

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