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A SEQUENTIAL ALGORITHM FOR POSSIBILITY-BASED DESIGN OPTIMIZATION

机译:基于可能性的设计优化的顺序算法

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摘要

Deterministic optimal designs that are obtained without taking into account uncertainty/variation are usually unreliable. Although reliability-based design optimization accounts for variation, it assumes that statistical information is available in the form of fully defined probabilistic distributions. This is not true for a variety of engineering problems where uncertainty is usually given in terms of interval ranges. In this case, interval analysis or possibility theory can be used instead of probability theory. This paper shows how possibility theory can be used in design and presents a computationally efficient sequential optimization algorithm. After, the fundamentals of possibility theory and fuzzy measures are described, a double-loop, possibility-based design optimization algorithm is presented where all design constraints are expressed possibilistically. The algorithm handles problems with only uncertain or a combination of random and uncertain design variables and parameters. In order to reduce the high computational cost, a sequential algorithm for possibility-based design optimization is presented. It consists of a sequence of cycles composed of a deterministic design optimization followed by a set of worst-case reliability evaluation loops. Two examples demonstrate the accuracy and efficiency of the proposed sequential algorithm.
机译:在不考虑不确定性/变化的情况下获得的确定性最佳设计通常是不可靠的。尽管基于可靠性的设计优化考虑了变化,但它假定统计信息以完全定义的概率分布的形式可用。对于各种工程问题通常不是这样,因为不确定性通常是根据区间范围给出的。在这种情况下,可以使用区间分析或可能性理论代替概率理论。本文展示了可能性理论如何在设计中使用,并提出了一种计算有效的顺序优化算法。之后,描述了可能性理论和模糊测度的基础,提出了一种双回路,基于可能性的设计优化算法,其中所有设计约束都可以表达。该算法仅处理不确定性问题或随机和不确定性设计变量和参数的组合即可处理问题。为了减少高计算量,提出了一种基于可能性的设计优化顺序算法。它由一系列周期组成,这些周期由确定性设计优化和一组最坏情况的可靠性评估循环组成。两个例子证明了所提出的顺序算法的准确性和效率。

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