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Distributed Particle Metropolis-Hastings Schemes

机译:分布式粒子都市暂定方案

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We introduce a Particle Metropolis-Hastings algorithm driven by several parallel particle filters. The communication with the central node requires the transmission of only a set of weighted samples, one per filter. Furthermore, the marginal version of the previous scheme, called Distributed Particle Marginal Metropolis-Hastings (DPMMH) method, is also presented. DPMMH can be used for making inference on both a dynamical and static variable of interest. The ergodicity is guaranteed, and numerical simulations show the advantages of the novel schemes.
机译:我们介绍了由多个并行粒子滤波器驱动的“粒子都会-快速”算法。与中央节点的通信仅需要传输一组加权样本,每个滤波器一个。此外,还介绍了先前方案的边际版本,称为分布式粒子边际都会-递减(DPMMH)方法。 DPMMH可用于对感兴趣的动态和静态变量进行推断。遍历性得到了保证,数值模拟表明了该新方案的优点。

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