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Hybrid evidence-and-fuzzy uncertainty propagation under a dual-level analysis framework

机译:双层分析框架下的混合证据与模糊不确定性传播

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摘要

With the development of modern computing technology, the uncertainty propagation theory plays an increasing important role in the thermal engineering practice. Under this context, our paper proposes an efficient dual-level framework for hybrid uncertainty propagation analysis. Two kinds of epistemic uncertainties are considered simultaneously in inputs, which are respectively modeled as evidence parameters with basic probability assignment and fuzzy parameters with membership function. The hybrid uncertainty characteristic of output response is interpreted by the interval-type mean value with fuzzy bounds, where the interval mean value is derived by focal element subintervals in the first-level evidence uncertainty analysis, and the membership function of fuzzy bounds is constructed by cut-set operation in the second-level fuzzy uncertainty analysis. In order to enhance the computational efficiency for cross-extreme-value prediction, a dual-level parameter perturbation method (DPPM) with small computational cost is developed, where the subinterval dividing strategy can be adopted in sub-DPPM to further improve the computational precision. By comparing results with the direct optimization method, two examples prove the effectiveness of proposed method in engineering application. (C) 2018 Elsevier B.V. All rights reserved.
机译:随着现代计算技术的发展,不确定性传播理论在热工程实践中起着越来越重要的作用。在这种背景下,我们的论文提出了一种用于混合不确定性传播分析的高效双层框架。在输入中同时考虑两种认知不确定性,分别将其建模为具有基本概率分配的证据参数和具有隶属函数的模糊参数。输出响应的混合不确定性特征由具有模糊界限的区间类型平均值来解释,其中区间平均值是由一级证据不确定性分析中的焦点元素子区间得出的,而模糊界限的隶属函数则由割集操作中的二级模糊不确定性分析。为了提高跨极值预测的计算效率,开发了一种计算量较小的双层参数摄动法(DPPM),在子DPPM中可以采用子区间划分策略,以进一步提高计算精度。 。通过将结果与直接优化方法进行比较,两个实例证明了该方法在工程应用中的有效性。 (C)2018 Elsevier B.V.保留所有权利。

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