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Incomplete multi-view clustering with partially mapped instances and clusters

机译:不完整的多视图聚类与部分映射的实例和集群

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Most multi-view clustering methods assume that each view has complete instances and clusters. However, in real world applications, the instances or clusters may be missed in some views. Recently, multi-view clustering on data with partially mapped instances has been studied. In this paper, we study the multi-view clustering on data with partially mapped instances and clusters to extend the application of multi-view clustering. We propose a NMF (Non-negative Matrix Factorization) based algorithm which separately deals with the mapped clusters/instances and the individual clusters/instances, i.e., both the basis matrix and the indicator matrix consist of a mapped part and an individual part. By bounding the mapped instances to reduce to the same indicator vectors, the mapped instances and clusters connect multiple views and guide to find the indicator vectors of all the instances. Furthermore, we improve the algorithm by using locally geometrical information to reduce the negative impact caused by multi-view interaction. Experiments show that the proposed algorithms perform well on data with partially mapped instances and clusters. (C) 2020 Elsevier B.V. All rights reserved.Y
机译:大多数多视图群集方法假设每个视图都有完整的实例和群集。但是,在现实世界应用中,可能在一些视图中错过了实例或集群。最近,研究了具有部分映射实例的数据的多视图聚类。在本文中,我们研究了具有部分映射实例和集群的数据上的多视图聚类,以扩展多视图群集的应用。我们提出了一种基于NMF(非负矩阵分解)的算法,其分别处理映射的集群/实例和单独的集群/实例,即基矩阵和指示符矩阵包括映射部分和单个部分。通过绑定映射的实例来减少到相同的指示灯向量,映射的实例和集群连接多个视图和指南,以查找所有实例的指示灯。此外,我们通过使用本地几何信息来改进算法,以减少由多视图交互引起的负面影响。实验表明,所提出的算法对具有部分映射实例和集群的数据进行良好。 (c)2020 Elsevier B.v.保留所有权利.Y

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