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Identification of Missing Links Using Susceptible-Infected-Susceptible Spreading Traces

机译:使用易感染易感传播痕迹识别丢失的链接

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The study of Susceptible-Infected-Susceptible (SIS) spreading on complex networks has stressed the role of the network topology which is often not entirely available in practical cases. This paper addresses the problem of inferring the network links from observed SIS temporal traces. In this paper, we first derive the likelihood of an observed SIS temporal traces and then we show how Bayesian inference can be applied to infer the probability that the uncertain links exist. Moreover, formulating this network reconstruction problem as a Bayesian problem enables us to take advantage of the numerical methods already developed for Bayesian inference. In order to demonstrate the capability of the proposed approach, we performed several simulations where we were able to reconstruct the network from the SIS traces.
机译:对在复杂网络上传播的易感性感染(SIS)的研究强调了网络拓扑的作用,在实际情况下,这种拓扑通常并不完全可用。本文解决了从观察到的SIS时间轨迹推断网络链接的问题。在本文中,我们首先导出观测到的SIS时间轨迹的可能性,然后说明如何使用贝叶斯推理来推断不确定链接存在的可能性。此外,将该网络重构问题表述为贝叶斯问题使我们能够利用已经为贝叶斯推理开发的数值方法。为了证明所提出方法的功能,我们进行了几次仿真,能够从SIS迹线重建网络。

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