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A robust information source estimator with sparse observations

机译:具有稀疏观测值的强大信息源估计器

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Purpose/Background In this paper, we consider the problem of locating the information source with sparse observations. We assume that a piece of information spreads in a network following a heterogeneous susceptible-infected-recovered (SIR) model, where a node is said to be infected when it receives the information and recovered when it removes or hides the information. We further assume that a small subset of infected nodes are reported, from which we need to find the source of the information. Methods We adopt the sample path-based estimator developed in the work of Zhu and Ying (arXiv:1206.5421, 2012) and prove that on infinite trees, the sample path-based estimator is a Jordan infection center with respect to the set of observed infected nodes. In other words, the sample path-based estimator minimizes the maximum distance to observed infected nodes. We further prove that the distance between the estimator and the actual source is upper bounded by a constant independent of the number of infected nodes with a high probability on infinite trees. Results Our simulations on tree networks and real-world networks show that the sample path-based estimator is closer to the actual source than several other algorithms. Conclusions In this paper, we proposed the sample path-based estimator for information source localization. Both theoretic analysis and numerical evaluations showed that the sample path-based estimator is robust and close to the real source.
机译:目的/背景在本文中,我们考虑使用稀疏观测来定位信息源的问题。我们假设一条信息遵循异构的易受感染恢复(SIR)模型在网络中传播,在该模型中,节点在收到信息时被称为感染节点,而在删除或隐藏信息时被恢复。我们进一步假设报告了感染节点的一小部分,我们需要从中找到信息的来源。方法我们采用在朱和英的工作中开发的基于样本路径的估计器(arXiv:1206.5421,2012),并证明在无限树上,基于样本路径的估计器相对于观察到的受感染集合是约旦感染中心节点。换句话说,基于样本路径的估计器将到观察到的感染节点的最大距离最小化。我们进一步证明,估计器和实际源之间的距离由一个常数上限限制,该常数与无限感染树上被感染节点的数量无关,而且概率很高。结果我们对树形网络和真实世界网络的仿真表明,与其他几种算法相比,基于样本路径的估计器更接近实际来源。结论在本文中,我们提出了基于样本路径的估计器用于信息源定位。理论分析和数值评估都表明,基于样本路径的估计器是鲁棒的并且接近真实源。

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