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Fuzzy modularity and fuzzy community structure in networks

机译:网络中的模糊模块化和模糊社区结构

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摘要

To find the fuzzy community structure in a complex network, in which each node has a certain probability of belonging to a certain community, is a hard problem and not yet satisfactorily solved over the past years. In this paper, an extension of modularity, the fuzzy modularity is proposed, which can provide a measure of goodness for the fuzzy community structure in networks. The simulated annealing strategy is used to maximize the fuzzy modularity function, associating with an alternating iteration based on our previous work. The proposed algorithm can efficiently identify the probabilities of each node belonging to different communities with random initial fuzzy partition during the cooling process. An appropriate number of communities can be automatically determined without any prior knowledge about the community structure. The computational results on several artificial and real-world networks confirm the capability of the algorithm.
机译:在每个节点都有一定概率属于某个特定社区的复杂网络中寻找模糊社区结构是一个难题,并且在过去几年中还没有得到令人满意的解决。本文提出了模块化的扩展,即模糊模块化,可以为网络中的模糊社区结构提供良好的度量。模拟退火策略用于最大化模糊模块化功能,并基于我们先前的工作与交替迭代相关联。提出的算法可以在冷却过程中有效地识别出属于不同社区的每个节点具有随机初始模糊分区的概率。可以自动确定适当数量的社区,而无需事先了解社区结构。在几个人工和现实网络上的计算结果证实了该算法的功能。

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