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Virtual Community Detection Model and Related Research in Online Social Networks

机译:在线社交网络中的虚拟社区检测模型及相关研究

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In the field of virtual community detection in online social networks, most of existing methods often detect communities from a single perspective, and ignore the influence of related characteristics of the networks on community detection. All these reduce the interpretability and accuracy of the community partition results. In order to resolve this problem, a virtual community detection model framework for online social networks is proposed. The model framework considers three key factors that affect the community detection results: the structural characteristics, the attribute information and the nodes' influence levels of the network. The proposed model is not only a mapping of existing community detection models, but also a reference for designing more future models for community detection methods.
机译:在在线社交网络中的虚拟社区检测领域,大多数现有方法经常从单一角度检测社区,而忽略了网络相关特性对社区检测的影响。所有这些降低了社区划分结果的可解释性和准确性。为了解决这个问题,提出了一种在线社交网络的虚拟社区检测模型框架。该模型框架考虑了影响社区检测结果的三个关键因素:结构特征,属性信息和节点对网络的影响程度。提出的模型不仅是现有社区检测模型的映射,而且是为社区检测方法设计更多未来模型的参考。

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