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EXPERT SCHEMES FOR THE OBTAINING OF DISCRETE MODELS FOR LTI SYSTEMS USING REAL SAMPLING AND PARAMETER IDENTIFICATION

机译:使用实数采样和参数识别获得LTI系统离散模型的专家方案

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摘要

In this paper, we present an expert network scheme designed to obtain discrete transfer functions for LTI systems under real sampling of finite duration rather than an instantaneous ideal one. For this purpose, the expert network handles two different identification methods to derive parametric discrete models techniques of reduced mathematical complexity from measured input-output data series. One of the methods is based on a typically used least-squares minimization, while the other one is based on the Leverrier's algorithm; that is, using a data series of the impulse response of the system to identify a parametric discrete model. These techniques are of particular practical interest when the continuous-time system is unknown or when dealing with discrete-time systems whose analytical expression becomes very complex due, for instance, to the use of finite duration real sampling. The expert network improves the discretization process implementing a biestimation mechanism that switches to the model that provides a better performance at each estimation instant considered for different values of the hold order.
机译:在本文中,我们提出了一种专家网络方案,该方案旨在在有限持续时间(而不是瞬时理想时间)的真实采样下获得LTI系统的离散传递函数。为此,专家网络处理两种不同的识别方法,以从测量的输入-输出数据序列中得出降低数学复杂度的参数离散模型技术。一种方法基于通常使用的最小二乘最小化,而另一种方法则基于Leverrier算法。也就是说,使用系统的脉冲响应数据序列来识别参数离散模型。当不知道连续时间系统或处理离散时间系统时,这些技术特别实用,例如,由于使用有限持续时间的实际采样,其分析表达式变得非常复杂。专家网络改进了离散化过程,实现了双估计机制,该机制切换到该模型,该模型在针对保留顺序的不同值考虑的每个估计时刻都提供更好的性能。

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