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Classification in Networked Data with Heterophily

机译:异物网络数据分类

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摘要

In the real world, a large amount of data can be described by networks using relations between data. The data described by networks can be called networked data. Classification is one of the main tasks in analyzing networked data. Most of the previous methods find the class of the unlabeled node using the classes of its neighbor nodes. However, in the networks with heterophily, most of connected nodes belong to different classes. It is hard to get the correct class using the classes of neighbor nodes, so the previous methods have a low level of performance in the networks with heterophily. In this paper, a probabilistic method is proposed to address this problem. Firstly, the class propagating distribution of the node is proposed to describe the probabilities that its neighbor nodes belong to each class. After that, the class propagating distributions of neighbor nodes are used to calculate the class of the unlabeled node. At last, a classification algorithm based on class propagating distribution is presented in the form of matrix operations. In empirical study, we apply the proposed algorithm to the real-world datasets, compared with some other algorithms. The experimental results show that the proposed algorithm performs better when the networks are of heterophily.
机译:在现实世界中,网络可以使用数据之间的关系来描述大量数据。网络描述的数据可以称为网络数据。分类是分析网络数据的主要任务之一。先前的大多数方法都是使用未标记节点的邻居节点的类来查找未标记节点的类的。但是,在具有异构的网络中,大多数连接的节点属于不同的类。使用邻居节点的类很难获得正确的类,因此先前的方法在具有异构网络中的性能较低。本文提出了一种概率方法来解决这个问题。首先,提出了节点的类传播分布,以描述其邻居节点属于每个类的概率。之后,使用邻近节点的类别传播分布来计算未标记节点的类别。最后,以矩阵运算的形式提出了一种基于类传播分布的分类算法。在实证研究中,与其他一些算法相比,我们将提出的算法应用于现实世界的数据集。实验结果表明,该算法在网络为异构网络时性能更好。

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