Optimality of simulation-based nonlinear model reduction: Stochastic controllability perspective

K. Kashima
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引用次数: 3

Abstract

The practical applicability of control theoretic model reduction methods is still limited to linear middle-scale systems. This shows a clear contrast to the Proper Orthogonal Decomposition (POD), which is a simulation-based model reduction method that has been widely applied to nonlinear large-scale systems, but with no theoretical underpinnings for its application to controlled systems. In this paper, we show that these controllability-based and simulation-based methodologies are equivalent when the input port is open to a noisy environment.
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基于仿真的非线性模型简化的最优性:随机可控性视角
控制理论模型约简方法的实际应用仍然局限于线性中尺度系统。这与适当正交分解(POD)形成鲜明对比,POD是一种基于仿真的模型约简方法,已广泛应用于非线性大系统,但没有理论基础将其应用于受控系统。在本文中,我们表明,当输入端口对噪声环境开放时,这些基于可控性和基于仿真的方法是等效的。
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