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Recursive Nuclear Norm based Subspace Identification

机译:递归核标准的子空间识别

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Nuclear norm based subspace identification methods have recently gained importance due to their ability to find low rank solutions while maintaining accuracy through convex optimization. However, their heavy computational burden typically precludes the use in an online, recursive manner, such as may be required for adaptive control. This paper deals with the formulation of a recursive version of a nuclear norm based subspace identification method with an emphasis on reducing the computational complexity. The developed methodology is analyzed through simulations on Linear Time-Varying (LTV) systems particularly in terms of convergence rate, tracking speed and the accuracy of identification and it is shown to be computationally lighter and effective for such systems, with the considered rate of change of dynamics.
机译:基于核规范的子空间识别方法最近获得了重要性,因为它们能够通过凸优化保持精度来找到低级别解决方案。然而,它们的繁重计算负担通常排除在线递归方式的使用,例如,可能需要进行自适应控制。本文涉及制定核规范基于子空间识别方法的递归版本,重点是降低计算复杂性。通过在线性时变(LTV)系统的模拟来分析开发的方法,特别是在收敛速率,跟踪速度和识别的准确性方面,并且显示用于这种系统的计算更轻,并且有效,所考虑的变化率动态。

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