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Probabilistic Design Methodology of Static Systems Using Metamodels.

机译:使用元模型的静态系统的概率设计方法论。

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The mechanistic model developed to model a physical system is, in many cases, too complex to be used in methods that aim to improve the performance of the system. In probabilistic design, where design variables are stochastic in nature, the most popular method to search for the best design is the Monte Carlo Method. However, as the complexity of the mechanistic model increases, so does the CPU time for the Monte Carlo method. Recent research shows how complex mechanistic models are being replaced by approximating functions, known as 'metamodels'. This paper investigates the use of metamodels to replace mechanistic models in the probabilistic design of systems with static response. From reliability analysis theory, the First Order Reliability Method (FORM) is used to calculate the best design when provided with design specification. The speed and accuracy of three popular metamodels, the linear response surface model, the Radial Basis Function and the Kriging model are compared.
机译:在许多情况下,为物理系统建模而建立的机械模型过于复杂,无法用于旨在提高系统性能的方法中。在概率设计中,设计变量本质上是随机的,寻找最佳设计的最流行方法是蒙特卡洛方法。但是,随着机械模型的复杂性增加,蒙特卡洛方法的CPU时间也会增加。最近的研究表明,复杂的机械模型如何被近似函数(称为“元模型”)替代。本文研究了使用元模型代替具有静态响应的系统的概率设计中的机械模型。从可靠性分析理论出发,一阶可靠性方法(FORM)用于在提供设计规范时计算出最佳设计。比较了三种流行的元模型(线性响应面模型,径向基函数和克里格模型)的速度和准确性。

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