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Supporting reliability engineers in exploiting the power of Dynamic Bayesian Networks

机译:支持可靠性工程师利用动态贝叶斯网络的力量

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In this paper, we present an approach to reliability modeling and analysis based on the automatic conversion of a particular reliability engineering model, the Dynamic Fault Tree (DFT), into Dynamic Bayesian Networks (DBN). The approach is implemented in a software tool called RADYBAN (Reliability Analysis with DYnamic BAyesian Networks). The aim is to provide a familiar interface to reliability engineers, by allowing them to model the system to be analyzed with a standard formalism; however, a modular algorithm is implemented to automatically compile a DFT into the corresponding DBN. In fact, when the computation of specific reliability measures is requested, classical algorithms for the inference on Dynamic Bayesian Networks are exploited, in order to compute the requested parameters. This is performed in a totally transparent way to the user, who could in principle be completely unaware of the underlying Bayesian Network. The use of DBNs allows the user to be able to compute measures that are not directly computable from DFTs, but that are naturally obtainable from DBN inference. Moreover, the modeling capabilities of a DBN, allow us to extend the basic DFT formalism, by introducing probabilistic dependencies among system components, as well as the definition of specific repair policies that can be taken into account during the reliability analysis phase. We finally show how the approach operates on some specific examples, by describing the advantages of having available a full inference engine based on DBNs for the requested analysis tasks.
机译:在本文中,我们提出了一种可靠性建模和分析方法,该方法基于将特定的可靠性工程模型(动态故障树(DFT))自动转换为动态贝叶斯网络(DBN)。该方法在称为RADYBAN(使用DYnamic贝叶斯网络进行可靠性分析)的软件工具中实现。目的是为可靠性工程师提供熟悉的界面,使他们可以使用标准形式主义对要分析的系统进行建模;但是,实现了模块化算法以将DFT自动编译为相应的DBN。实际上,当要求计算特定的可靠性测度时,就采用了动态贝叶斯网络推理的经典算法,以便计算所要求的参数。这对用户完全透明地执行,原则上用户可能完全不了解底层的贝叶斯网络。 DBN的使用使用户能够计算不能直接从DFT计算出但可以从DBN推断自然获得的度量。此外,DBN的建模功能允许我们通过引入系统组件之间的概率依赖性以及在可靠性分析阶段可以考虑的特定修复策略的定义来扩展基本DFT形式主义。最后,我们通过描述为请求的分析任务提供基于DBN的完整推理引擎的优点,来展示该方法在某些特定示例上的操作方式。

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