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Parametric Uncertainty Propagation through Dependability Models

机译:通过可靠性模型的参数不确定性传播

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The uncertainty propagation is to investigate the effect of errors in model input parameters on the system output measure in probability models. In this paper, we present a moment-based approach of the uncertainty propagation of model input parameters. The presented approach requires only the fist two moments of model parameters, and has an advantage in terms of computation over the closed-form, numerical and sampling-based approaches for uncertainty propagation. The paper presents the properties of moment-based approach by comparing the existing Bayes estimation for the uncertainty propagation in a simple reliability model. An availability model of a server with virtual machines is used to illustrate the applicability of our method in practical problems.
机译:不确定性传播是为了研究模型输入参数中的误差对概率模型中系统输出度量的影响。在本文中,我们提出了一种基于矩的模型输入参数不确定性传播的方法。所提出的方法仅需要模型参数的两个力矩,并且在计算方面优于不确定性传播的封闭形式,基于数值和基于采样的方法。本文通过比较简单的可靠性模型中不确定性传播的现有贝叶斯估计,介绍了基于矩的方法的性质。具有虚拟机的服务器的可用性模型用于说明我们的方法在实际问题中的适用性。

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