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Stable Communities Detection Method for Temporal Multiplex Graphs: Heterogeneous Social Network Case Study

机译:稳定的社区检测时间多路复用图:异构社会网络案例研究

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Multiplex graphs have been recently proposed as a model to represent high-level complexity in real-world networks such as heterogeneous social networks where actors could be characterized by heterogeneous properties and could be linked with different types of social interactions. This has brought new challenges in community detection, which aims to identify pertinent groups of nodes in a complex graph. In this context, great efforts have been made to tackle the problem of community detection in multiplex graphs. However, most of the proposed methods until recently deal with static multiplex graph and ignore the temporal dimension, which is a key characteristic of real networks. Even more, the few methods that consider temporal graphs, they just propose to follow communities over time and none of them use the temporal aspect directly to detect stable communities, which are often more meaningful in reality. Thus, this paper proposes a new two-step method to detect stable communities in temporal multiplex graphs. The first step aims to find the best static graph partition at each instant by applying a new hybrid community detection algorithm, which considers both relations heterogeneities and nodes similarities. Then, the second step considers the temporal dimension in order to find final stable communities. Finally, experiments on synthetic graphs and a real social network show that this method is competitive and it is able to extract high-quality communities.
机译:最近已经提出了多路复用图作为一种模型,以代表现实网络中的高级复杂性,例如异构社交网络,其中演员的特征是异构性质,并且可以与不同类型的社交互动相关联。这在社区检测中带来了新的挑战,旨在识别复杂的图表中的相关节点群体。在这种情况下,已经努力解决多路复用图中的社区检测问题。但是,大多数提出的方法,直到最近处理静态多路复用图并忽略时间维度,这是真实网络的关键特征。甚至更多,少数考虑时间图的方法,他们只是建议随着时间的推移遵循社区,并且他们都不是直接使用时间方面来检测稳定的社区,这通常更有意义。因此,本文提出了一种在时间多路复用图中检测稳定社区的新的两步方法。第一步旨在通过应用新的混合社区检测算法来找到每个瞬间的最佳静态图分区,该算法考虑了关系异质性和节点相似性。然后,第二步考虑时间维度以找到最终的稳定社区。最后,对综合图和真正的社交网络的实验表明这种方法具有竞争力,它能够提取高质量的社区。

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