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Optimal strategies for targeted influence in signed networks

机译:签署网络中有针对性影响的最佳策略

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摘要

Online social communities often exhibit complex relationship structures, ranging from close friends to political rivals. As a result, persons are influenced by their friends and foes differently. Network applications can benefit from accompanying these structural differences in propagation schemes. In this paper, we study the optimal influence propagation policies for networks with positive and negative relationship types. We tackle the problem of minimizing the end-to-end propagation cost of influencing a target person in favor of an idea by utilizing the relationship types in the underlying social graph. The propagation cost is incurred by social and physical network dynamics such as frequency of interaction, the strength of friendship and foe ties, propagation delay or the impact factor of the propagating idea. We extend this problem by incorporating the impact of message deterioration and ignorance. We demonstrate our results in both a controlled environment and the Epinions dataset. Our results show that judicious propagation schemes lead to a significant reduction in the average cost and complexity of influence propagation compared to na?ve myopic algorithms.
机译:在线社交社区往往展示复杂的关系结构,从密切的朋友到政治竞争对手。因此,人们受到他们的朋友和敌人的影响。网络应用可以受益于传播方案中的这些结构差异。在本文中,我们研究了具有正负关系类型的网络的最佳影响传播策略。我们通过利用底层社会图中的关系类型来解决影响目标人的端到端传播成本最小化的问题。传播成本是由社会和物理网络动态产生的,例如互动频率,友谊和敌人领带的强度,传播延迟或传播思想的影响因子。我们通过纳入消息恶化和无知的影响来扩展这个问题。我们展示了我们的导致受控环境和渗透数据集。我们的研究结果表明,与NA近视算法相比,明智传播方案导致影响传播的平均成本和复杂性的显着降低。

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