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Comparing different approaches for model parameters identification in short time

机译:在短时间内比较不同的模型参数识别方法

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Model Parameter values of machine tools change during machining. An optimal process control needs precise knowledge of the actual parameter values. Three different algorithms are introduced to estimate the modal parameter values of system in a short time window with high resolution: least squares estimation (LSE), estimation of signal parameters via rotational invariance (ESPRIT) and orthogonal matching pursuits (OMP) algorithm. These algorithms are augmented with a sliding-window operation to reveal the actual system dynamic behavior at every time instance. This paper focuses on comparing the performance and the identification accuracy of the proposed methods and the influence of the applied window size and noise content using numerical examinations. The results show that the sliding-window LSE can estimate transient parameters accurately and suits realtime control processes.
机译:机床的模型参数值在加工过程中会发生变化。最佳过程控制需要精确了解实际参数值。引入了三种不同的算法来在短时间内以高分辨率估计系统的模态参数值:最小二乘估计(LSE),通过旋转不变性估计信号参数(ESPRIT)和正交匹配追踪(OMP)算法。通过滑动窗口操作增强了这些算法,以揭示每个时间实例的实际系统动态行为。本文着重比较所提出方法的性能和识别精度,以及通过数值检验来比较所应用的窗口大小和噪声含量的影响。结果表明,滑窗LSE可以准确估计暂态参数,适合实时控制过程。

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