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PhysarumSpreader: A New Bio-Inspired Methodology for Identifying Influential Spreaders in Complex Networks

机译:PhysarumSpreader:一种新的受生物启发的方法,用于识别复杂网络中的有影响力的传播器

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摘要

Identifying influential spreaders in networks, which contributes to optimizing the use of available resources and efficient spreading of information, is of great theoretical significance and practical value. A random-walk-based algorithm LeaderRank has been shown as an effective and efficient method in recognizing leaders in social network, which even outperforms the well-known PageRank method. As LeaderRank is initially developed for binary directed networks, further extensions should be studied in weighted networks. In this paper, a generalized algorithm PhysarumSpreader is proposed by combining LeaderRank with a positive feedback mechanism inspired from an amoeboid organism called Physarum Polycephalum. By taking edge weights into consideration and adding the positive feedback mechanism, PhysarumSpreader is applicable in both directed and undirected networks with weights. By taking two real networks for examples, the effectiveness of the proposed method is demonstrated by comparing with other standard centrality measures.
机译:识别网络中有影响力的传播者,有助于优化可用资源的使用和信息的有效传播,具有重要的理论意义和实用价值。基于随机游走的LeaderRank算法已被证明是一种识别社交网络中领导者的有效方法,甚至优于知名的PageRank方法。由于LeaderRank最初是为二进制定向网络开发的,应在加权网络中研究进一步的扩展。在本文中,通过将LeaderRank与受称为变形虫Physarum Polycephalum的变形生物启发的正反馈机制相结合,提出了一种通用算法PhysarumSpreader。通过考虑边缘权重并添加正反馈机制,PhysarumSpreader可应用于具有权重的有向和无向网络。以两个真实的网络为例,通过与其他标准集中度测量方法的比较,证明了该方法的有效性。

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