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Analytical Algorithms to Quantify the Uncertainty in Remaining Useful Life Prediction

机译:量化剩余使用寿命预测中的不确定性的分析算法

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摘要

This paper investigates the use of analytical algorithms to quantify the uncertainty in the remaining useful life (RUL) estimate of components used in aerospace applications. The prediction of RUL is affected by several sources of uncertainty and it is important to systematically quantify their combined effect by computing the uncertainty in the RUL prediction in order to aid risk assessment, risk mitigation, and decisionmaking. While sampling-based algorithms have been conventionally used for quantifying the uncertainty in RUL, analytical algorithms are computationally cheaper and sometimes, are better suited for online decision-making. While exact analytical algorithms are available only for certain special cases (for e.g., linear models with Gaussian variables), effective approximations can be made using the the first-order second moment method (FOSM), the first-order reliability method (FORM), and the inverse first-order reliability method (Inverse FORM). These methods can be used not only to calculate the entire probability distribution of RUL but also to obtain probability bounds on RUL. This paper explains these three methods in detail and illustrates them using the state-space model of a lithium-ion battery.
机译:本文研究了使用分析算法来量化航空航天应用中所用组件的剩余使用寿命(RUL)估计中的不确定性。 RUL的预测受多种不确定性因素的影响,因此通过计算RUL预测中的不确定性来系统地量化其综合影响非常重要,以帮助进行风险评估,风险缓解和决策。尽管通常将基于采样的算法用于量化RUL中的不确定性,但分析算法在计算上更便宜,有时更适合于在线决策。虽然仅特定的特殊情况(例如,具有高斯变量的线性模型)可以使用精确的解析算法,但可以使用一阶二阶矩方法(FOSM),一阶可靠性方法(FORM)进行有效逼近,以及一阶逆可靠性方法(逆FORM)。这些方法不仅可以用于计算RUL的整个概率分布,还可以用于获得RUL的概率边界。本文详细说明了这三种方法,并使用锂离子电池的状态空间模型对其进行了说明。

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