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A Stochastic Bias Corrected Response Surface Method and its Application to Reliability-Based Design Optimization

机译:随机偏置校正响应面法及其在基于可靠性的设计优化的应用

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In vehicle design, response surface model (RSM) is commonly used as a surrogate of the high fidelity Finite Element (FE) model to reduce the computational time and improve the efficiency of design process. However, RSM introduces additional sources of uncertainty, such as model bias, which largely affect the reliability and robustness of the prediction results. The bias of RSM need to be addressed before the model is ready for extrapolation and design optimization. This paper further investigates the Bayesian inference based model extrapolation method which is previously proposed by the authors, and provides a systematic and integrated stochastic bias corrected model extrapolation and robustness design process under uncertainty. A real world vehicle design example is used to demonstrate the validity of the proposed method.
机译:在车辆设计中,响应表面模型(RSM)通常用作高保真有限元(FE)模型的代理,以减少计算时间并提高设计过程的效率。然而,RSM介绍了额外的不确定性来源,例如模型偏置,这在很大程度上影响了预测结果的可靠性和鲁棒性。在模型准备外推和设计优化之前,需要解决RSM的偏差。本文进一步调查了基于贝叶斯推断的模型外推方法,该模型推断方法先前由作者提出,并在不确定性下提供系统和集成随机偏置校正模型推断和鲁棒性设计过程。真实世界的车辆设计示例用于展示所提出的方法的有效性。

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