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A Generic Method For Estimating System Reliability Using Bayesian Networks

机译:贝叶斯网络估计系统可靠性的通用方法

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This study presents a holistic method for constructing a Bayesian network (BN) model for estimating system reliability. BN is a probabilistic approach that is used to model and predict the behavior of a system based on observed stochastic events. The BN model is a directed acyclic graph (DAG) where the nodes represent system components and arcs represent relationships among them. Although recent studies on using BN for estimating system reliability have been proposed, they are based on the assumption that a pre-built BN has been designed to represent the system. In these studies, the task of building the BN is typically left to a group of specialists who are BN and domain experts. The BN experts should learn about the domain before building the BN, which is generally very time consuming and may lead to incorrect deductions. As there are no existing studies to eliminate the need for a human expert in the process of system reliability estimation, this paper introduces a method that uses historical data about the system to be modeled as a BN and provides efficient techniques for automated construction of the BN model, and hence estimation of the system reliability. In this respect K2, a data mining algorithm, is used for finding associations between system components, and thus building the BN model. This algorithm uses a heuristic to provide efficient and accurate results while searching for associations. Moreover, no human intervention is necessary during the process of BN construction and reliability estimation. The paper provides a step-by-step illustration of the method and evaluation of the approach with literature case examples.
机译:这项研究提出了一种构建贝叶斯网络(BN)模型以估计系统可靠性的整体方法。 BN是一种概率方法,用于基于观察到的随机事件来建模和预测系统的行为。 BN模型是有向无环图(DAG),其中节点表示系统组件,弧表示它们之间的关系。尽管最近提出了有关使用BN估计系统可靠性的研究,但这些研究是基于以下假设:已设计了预建的BN来代表系统。在这些研究中,建立BN的任务通常留给一组由BN和领域专家组成的专家。 BN专家应在构建BN之前了解该域,这通常非常耗时,并且可能导致错误的推论。由于没有现有的研究可以消除系统可靠性评估过程中对专家的需求,因此本文介绍一种方法,该方法使用有关要建模为BN的系统的历史数据,并为BN的自动构建提供有效的技术模型,从而估计系统可靠性。在这方面,数据挖掘算法K2用于查找系统组件之间的关联,从而建立BN模型。该算法使用启发式方法在搜索关联时提供有效和准确的结果。此外,在BN建设和可靠性评估过程中,无需人工干预。本文提供了该方法的逐步说明,并通过文献案例举例对该方法进行了评估。

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