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Bayesian Reliability-Based Design Optimization Using Eigenvector Dimension Reduction (EDR) Method

机译:基于贝叶斯可靠性的设计优化,使用特征向量减少(EDR)方法

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In the last decade, considerable advances have been made in reliability-based design optimization (RBDO). One assumption in RBDO is that the complete information of input uncertainties is known. However, this assumption is not valid in practical engineering applications, due to the lack of sufficient data. In practical engineering design, information concerning uncertainty parameters is usually in the form of finite samples. Existing methods in uncertainty-based design optimization cannot handle design problems involving epistemic uncertainty with a shortage of information. Recently, a novel method referred to as Bayesian Reliability-Based Design Optimization (BRBDO) was proposed to properly handle design problems when engaging both epistemic and aleatory uncertainties. However, when a design problem involves a large number of epistemic variables, the computation task for BRBDO becomes extremely expensive. Thus, a more accurate and more efficient reliability method is demanded for BRBDO. In this article, the recently proposed Eigenvector Dimension Reduction (EDR) Method will be used for BRBDO in order to increase its accuracy and efficiency. When using the EDR method to carry out Bayesian reliability analyses, the accuracy and efficiency are substantially improved. Two design examples involving both aleatory and epistemic variables are used to demonstrate the accuracy and efficiency of BRBDO integrating with the EDR method.
机译:在过去的十年中,基于可靠性的设计优化(RBDO)所取得了相当大的进步。 RBDO中的一个假设是已知输入不确定性的完整信息。然而,由于缺乏足够的数据,这种假设在实际工程应用中无效。在实用的工程设计中,有关不确定性参数的信息通常是有限样本的形式。基于不确定性的设计优化的现有方法无法处理涉及具有信息短缺的认识性不确定性的设计问题。最近,提出了一种基于贝叶斯可靠性的设计优化(BRBDO)的新方法,以适当地处理既有认知和杀菌的不确定性时妥善处理设计问题。然而,当设计问题涉及大量的认知变量时,BRBDO的计算任务变得非常昂贵。因此,对BRBDO来说需要更准确和更有效的可靠性方法。在本文中,最近提出的特征尺寸减少(EDR)方法将用于BRBDO,以提高其准确性和效率。使用EDR方法进行贝叶斯可靠性分析,显着提高了准确性和效率。涉及aleatory和认知变量的两个设计示例用于展示与EDR方法集成BRBDO的准确性和效率。

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