Time-Domain Model Matching Under General Norms via Sparse Matrix Methods

John W. Handler, M. Harker, G. Rath
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Abstract

This paper presents a new approach to the task of time-domain model matching for state-space systems. The traditional problem formulation of designing a controller to match a reference model is relaxed to matching only a desired reference response. The presented algorithm then computes the feedback gain that delivers the best fit solution to the reference response under general norms. Additionally, the proposed discretization approach enables the employment of sparse matrix methods which enables a numerically efficient implementation. The new method is successfully verified using a random system. Additionally, an application example involving a simplified gantry crane system is presented, showcasing the practicality of the approach. Overall, the new method provides an intuitive and numerically efficient solution to the problem of time-domain model matching for state-space systems.
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稀疏矩阵方法在一般范数下的时域模型匹配
本文提出了一种新的状态空间系统的时域模型匹配方法。传统的设计控制器以匹配参考模型的问题表述被放宽为只匹配一个期望的参考响应。然后,该算法计算在一般范数下给出参考响应最佳拟合解的反馈增益。此外,所提出的离散化方法可以使用稀疏矩阵方法,从而实现数值上的高效实现。用一个随机系统成功地验证了新方法。最后给出了一个简化龙门起重机系统的应用实例,说明了该方法的实用性。总体而言,该方法为状态空间系统的时域模型匹配问题提供了一种直观且数值高效的解决方案。
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