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Parameter identification of multi-input, single-output systems based on FIR models and least squares principle

机译:基于FIR模型和最小二乘原理的多输入单输出系统参数辨识

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摘要

By means of auxiliary models – finite impulse response (FIR) models, this paper develops an identification algorithm for multi-input, single-output stochastic systems. The basic idea is to estimate the FIR model parameters of each fictitious subsystem (submodel) with the FIR model orders increasing, and to use auxiliary models to predict/estimate the outputs of the submodels, and further to use the Pade approximation method to produce the parameter estimates of submodels. Some simulation results are given.
机译:通过辅助模型-有限冲激响应(FIR)模型,本文开发了一种用于多输入,单输出随机系统的识别算法。基本思想是随着FIR模型阶数的增加来估计每个虚拟子系统(子模型)的FIR模型参数,并使用辅助模型来预测/估计子模型的输出,并进一步使用Pade近似方法来产生子模型的参数估计。给出了一些仿真结果。

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