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A new nonlinear parameterized model order reduction technique combining the interpolation method and Proper Orthogonal Decomposition

机译:插值法与正交分解相结合的非线性参数化模型降阶新技术

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摘要

A parameterized model order reduction technique for nonlinear system is presented in this paper, which combines the interpolation method with the Proper Orthogonal Decomposition (POD). The efficiency of the proposed approach lies in the use of interpolation method which reduces the complexity of POD in representing parameterized nonlinear functions. In order to capture the accuracy of the parameterized reduced model over a large range of parameter values, a training scheme is proposed to automatically select the training parameter points by the greedy sampling method. The results show that the accuracy and efficacy are improved in the proposed nonlinear parameterized reduction method.
机译:本文提出了一种非线性系统的参数化模型降阶技术,该技术将插值方法与适当的正交分解(POD)相结合。所提出的方法的效率在于使用插值方法,该方法减少了POD表示参数化非线性函数的复杂性。为了在较大的参数值范围内捕获参数化简化模型的准确性,提出了一种训练方案,通过贪婪采样方法自动选择训练参数点。结果表明,所提出的非线性参数化约简方法提高了准确性和有效性。

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