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Maximizing the Spread of Influence via Generalized Degree Discount

机译:通过广义学位折扣最大化影响力的传播

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摘要

It is a crucial and fundamental issue to identify a small subset of influential spreaders that can control the spreading process in networks. In previous studies, a degree-based heuristic called DegreeDiscount has been shown to effectively identify multiple influential spreaders and has severed as a benchmark method. However, the basic assumption of DegreeDiscount is not adequate, because it treats all the nodes equally without any differences. To consider a general situation in real world networks, a novel heuristic method named GeneralizedDegreeDiscount is proposed in this paper as an effective extension of original method. In our method, the status of a node is defined as a probability of not being influenced by any of its neighbors, and an index generalized discounted degree of one node is presented to measure the expected number of nodes it can influence. Then the spreaders are selected sequentially upon its generalized discounted degree in current network. Empirical experiments are conducted on four real networks, and the results show that the spreaders identified by our approach are more influential than several benchmark methods. Finally, we analyze the relationship between our method and three common degree-based methods.
机译:识别可以控制网络传播过程的一小部分有影响力的传播器是至关重要的根本问题。在以前的研究中,一种基于学位的启发式方法称为DegreeDiscount被证明可以有效地识别多个有影响力的传播者,并且已被切断为一种基准方法。但是,DegreeDiscount的基本假设并不足够,因为它平等地对待所有节点而没有任何区别。为了考虑现实世界中的一般情况,本文提出了一种新颖的启发式方法GeneralizedDegreeDiscount,作为对原始方法的有效扩展。在我们的方法中,将节点的状态定义为不受其任何邻居影响的概率,并给出一个节点的索引广义折现度以衡量其可能影响的预期节点数。然后,根据当前网络中的广义折扣度,依次选择扩展器。在四个真实网络上进行了实证实验,结果表明,我们的方法确定的吊具比几种基准方法更具影响力。最后,我们分析了我们的方法与三种基于学位的常用方法之间的关系。

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