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Identification of System Dynamics with Time Delay: a Two-Stage Frequency Domain Approach

机译:具有时滞的系统动力学识别:两阶段频域方法

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Frequency domain identification of system parameters and time delay is essential for model-based motion control of dynamic systems. Conventional approaches incorporate the delay into the model through an explicit model parametrization, which results in a high amount of nonlocal minima. In this paper, a new strategy is proposed based on a two-stage frequency domain approach to linearly incorporate the delay in the parameter vector of the system. This enables the proposed method to accurately identify both the time delay and system parameters. In a first stage, the system is parametrized and the delay is approximated using rational (all-pass) orthonormal basis functions. The resulting constraints on the individual delay approximation parameters are relaxed through a general all-pass constraint which is enforced iteratively by reformulating the identification algorithm. In a second stage, the continuous time delay term is identified in a convex problem with fixed system parameters using the previous approximates as starting values. Finally, simulations and experimental results validate the effectiveness of this new two-stage method.
机译:系统参数的频域识别和时间延迟对于动态系统的基于模型的运动控制至关重要。常规方法通过显式模型参数化将延迟合并到模型中,这会导致大量的非局部最小值。在本文中,提出了一种基于两级频域方法的线性延迟策略。这使得所提出的方法能够准确地识别时间延迟和系统参数。在第一阶段,对系统进行参数化,并使用有理(全通)正交基函数对延迟进行近似。通过通用的全通约束可以放宽对各个延迟近似参数的约束,该约束可以通过重新构造识别算法来反复执行。在第二阶段,使用先前的近似值作为起始值,在具有固定系统参数的凸问题中识别连续时间延迟项。最后,仿真和实验结果验证了这种新的两阶段方法的有效性。

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