社交网络中重叠社区发现的分层多标签传播算法

Song Shi, Yuzhong Chen, Mingyue Fang, Wanhua Li, Shining
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引用次数: 6

摘要

多标签传播算法具有近似线性的时间复杂度,但应用于重叠社区发现时,其准确性和稳定性仍有待提高。基于边界节点更有可能出现在不同社区的重叠区域的思想,提出了一种基于节点层次和标签传播增益的分层多标签传播算法(HMPA)用于社交网络中重叠社区的发现。HMPA包括三个阶段。首先,HMPA利用LPAm展开初始的非重叠群落。其次,根据第一阶段的初始划分,提出了一种类似pagerank的方法来标记每个节点的层次结构;最后,引入基于节点层次计算的考虑节点间标签传播增益的多标签传播算法,对重叠区域进行细化。在合成网络和现实网络上的实验结果表明,该算法可以有效地解决传统多标签传播算法在准确性和稳定性方面的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Hierarchical Multi-label Propagation Algorithm for Overlapping Community Discovery in Social Networks
Multi-label propagation algorithms (MLPAs) have nearly linear time complexity, but the accuracy and stability still need to be improved when applied to overlapping community discovery. Inspired from the idea that boundary nodes are more probable to appear in the overlapping regions of different communities, a Hierarchical Multi-label Propagation Algorithm (HMPA) based on node hierarchy and label propagation gain for overlapping community discovery in social networks is proposed in this paper. HMPA consists of three stages. Firstly, HMPA utilizes LPAm to unfold initial non-overlapping communities. Secondly, a PageRank-like method is proposed to mark the hierarchy of each node according to the initial partition of the first stage. Finally, multi-label propagation algorithm considering label propagation gain between nodes, which is calculated based on node hierarchy, is introduced to refine overlapping region. Experimental results on both the synthetic and real world networks show that the proposed algorithm can effectively solve the problems of traditional multi-label propagation algorithms in terms of accuracy and stability.
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