基于混合贝叶斯网络的可靠系统建模

M. Neil, Manesh Tailor, N. Fenton, D. Marquez, P. Hearty
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引用次数: 84

摘要

混合贝叶斯网络(BN)是一个包含离散和连续节点的网络。在我们对系统可靠性评估的广泛应用中,模型总是混合的,对高效和准确计算的需求是至关重要的。我们采用一种新的迭代算法,该算法有效地将动态离散化与结点树结构上的鲁棒传播算法结合起来,对混合神经网络进行推理。我们在两个可靠性问题的例子中说明了它的应用:一个时间系统中故障传感器的可靠性估计和诊断。动态离散化可以作为分析方法或蒙特卡罗方法的一种替代方法,具有很高的精度,可以应用于广泛的可靠性问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling dependable systems using hybrid Bayesian networks
A hybrid Bayesian network (BN) is one that incorporates both discrete and continuous nodes. In our extensive applications of BNs for system dependability assessment the models are invariably hybrid and the need for efficient and accurate computation is paramount. We apply a new iterative algorithm that efficiently combines dynamic discretisation with robust propagation algorithms on junction tree structures to perform inference in hybrid BNs. We illustrate its use on two example dependability problems: reliability estimation and diagnosis of a faulty sensor in a temporal system. Dynamic discretisation can be used as an alternative to analytical or Monte Carlo methods with high precision and can be applied to a wide range of dependability problems.
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