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Grey Bayesian network model for reliability analysis of complex system

机译:复杂系统可靠性分析的灰色贝叶斯网络模型

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Complex systems and their components usually have various performance states and the reliability parameters are normally uncertain. Modeling theories that are developed on the basis of binary outcomes and precise reliability information lack sufficient abilities to describe the above phenomena. In this paper, grey system theory and Bayesian network are employed to analyze the reliability of complex system. First, interval grey number is applied to represent the performance state as well as the conditional probability, which can avoid the loss of important reliability information. Second, the intervals of reliability characteristic parameters such as fault rate and posterior probability are obtained with Bayesian network inference and grey global optimization algorithm. Afterwards, vulnerable components and probabilities of possible states can be identified by using comparison rules of interval grey numbers, which is conducive to reliability analysis and fault diagnosis of complex system. Finally, a case about civil aircraft hydraulic system is studied, showing that the proposed approach is effective and convenient for reliability modelling and analysis of multi-state and uncertain systems.
机译:复杂的系统及其组件通常具有各种性能状态,可靠性参数通常是不确定的。基于二进制结果和精确的可靠性信息开发的建模理论缺乏描述上述现象的足够能力。本文采用灰色系统理论和贝叶斯网络对复杂系统的可靠性进行了分析。首先,应用区间灰度数表示性能状态以及条件概率,可以避免重要可靠性信息的丢失。其次,利用贝叶斯网络推理和灰色全局优化算法获得故障率和后验概率等可靠性特征参数的区间。然后,通过使用区间灰数的比较规则,可以识别出易受攻击的组件和可能的状态的概率,这有利于复杂系统的可靠性分析和故障诊断。最后,以某民用飞机液压系统为例,表明该方法对于多状态不确定系统的可靠性建模和分析是有效且方便的。

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