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首页> 外文期刊>Aerospace and Electronic Systems, IEEE Transactions on >Message Passing for Hybrid Bayesian Networks: Representation, Propagation, and Integration
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Message Passing for Hybrid Bayesian Networks: Representation, Propagation, and Integration

机译:混合贝叶斯网络的消息传递:表示,传播和集成

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摘要

The traditional message passing algorithm was originally developed by Pearl in the 1980s for computing exact inference solutions for discrete polytree Bayesian networks (BN). When a loop is present in the network, propagating messages are not exact, but the loopy algorithm usually converges and provides good approximate solutions. However, in general hybrid BNs, the message representation and manipulation for arbitrary continuous variable and message propagation between different types of variables are still open problems. The novelty of the work presented here is to propose a framework to compute, propagate, and integrate the messages for hybrid models. First, we combine unscented transformation and Pearl's message passing algorithm to deal with the arbitrary functional relationships between continuous variables in the network. For the general hybrid model, we partition the network into separate parts by introducing the concept of interface node. We then apply different algorithms for each subnetwork. Finally we integrate the information through the channel of interface nodes and then estimate the posterior distributions for all hidden variables. The numerical experiments show that the algorithm works well for nonlinear hybrid BNs.
机译:传统的消息传递算法最初由Pearl于1980年代开发,用于计算离散多树贝叶斯网络(BN)的精确推理解决方案。当网络中存在环路时,传播的消息并不精确,但是环路算法通常会收敛并提供良好的近似解。但是,在一般的混合BN中,任意连续变量的消息表示和操纵以及不同类型变量之间的消息传播仍然是未解决的问题。这里提出的工作的新颖性在于提出一个框架,用于计算,传播和集成用于混合模型的消息。首先,我们结合了无味转换和Pearl的消息传递算法来处理网络中连续变量之间的任意函数关系。对于一般的混合模型,我们通过引入接口节点的概念将网络划分为单独的部分。然后,我们为每个子网应用不同的算法。最后,我们通过接口节点的通道整合信息,然后估计所有隐藏变量的后验分布。数值实验表明,该算法适用于非线性混合BN。

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