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Random Fuzzy Extension of the Universal Generating Function Approach for the Reliability Assessment of Multi-State Systems Under Aleatory and Epistemic Uncertainties

机译:通用和泛函不确定性下多状态系统可靠性评估的通用生成函数方法的随机模糊扩展

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摘要

Many engineering systems can perform their intended tasks with various levels of performance, which are modeled as multi-state systems (MSS) for system availability and reliability assessment problems. Uncertainty is an unavoidable factor in MSS modeling, and it must be effectively handled. In this work, we extend the traditional universal generating function (UGF) approach for multi-state system (MSS) availability and reliability assessment to account for both aleatory and epistemic uncertainties. First, a theoretical extension, named hybrid UGF (HUGF), is made to introduce the use of random fuzzy variables (RFVs) in the approach. Second, the composition operator of HUGF is defined by considering simultaneously the probabilistic convolution and the fuzzy extension principle. Finally, an efficient algorithm is designed to extract probability boxes ($p$ -boxes) from the system HUGF, which allow quantifying different levels of imprecision in system availability and reliability estimation. The HUGF approach is demonstrated with a numerical example, and applied to study a distributed generation system, with a comparison to the widely used Monte Carlo simulation method.
机译:许多工程系统可以执行各种性能级别的预期任务,这些系统被建模为多状态系统(MSS),以解决系统可用性和可靠性评估问题。不确定性是MSS建模中不可避免的因素,必须加以有效处理。在这项工作中,我们扩展了用于多状态系统(MSS)可用性和可靠性评估的传统通用生成函数(UGF)方法,以解决偶然和认知方面的不确定性。首先,进行了理论扩展,称为混合UGF(HUGF),以介绍该方法中随机模糊变量(RFV)的使用。其次,通过同时考虑概率卷积和模糊扩展原理来定义HUGF的合成算子。最后,设计了一种有效的算法来从系统HUGF中提取概率框($ p $ -boxes),从而可以量化系统可用性和可靠性估计中不同级别的不精确度。 HUGF方法通过一个数值示例进行了演示,并与广泛使用的蒙特卡洛模拟方法进行了比较,并用于研究分布式发电系统。

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