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Structured variational methods for distributed inference in wireless ad hoc and sensor networks

机译:无线ad hoc和传感器网络中分布式推理的结构化变分方法

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In this paper, a variational message passing framework is proposed for Markov random fields, which is computationally more efficient and admits wider applicability compared to the belief propagation algorithm. Based on this framework, structured variational methods are explored to take advantage of both the simplicity of variational approximation (for inter-cluster processing) and the accuracy of exact inference (for intra-cluster processing). Its performance is elaborated on a Gaussian Markov random field, through both theoretical analysis and simulation results.
机译:本文提出了一种用于马尔可夫随机域的变分消息传递框架,与信念传播算法相比,该框架计算效率更高,并且具有更广泛的适用性。在此框架的基础上,探索了结构化的变分方法,以利用变分逼近的简单性(用于集群间处理)和精确推断的准确性(用于集群内处理)。通过理论分析和仿真结果,在高斯马尔可夫随机场上阐述了其性能。

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