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BLIND AND COMPLETE MODELING OF LINEAR SYSTEMS USING THIRD ORDER CUMULANTS

机译:使用三阶累积量的线性系统的盲和完全建模

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摘要

This paper presents a novel approach to structure determination of linear systems along with the choice of system orders and parameters. AutoRegressive (AR), Moving Average (MA) or AutoRegressive-Moving Average (ARMA) model structure can be extracted blindly from the Third Order Cumulants (TOC) of the system output measurements, where the unknown system is driven by an unobservable stationary independent identically distributed (i.i.d.) non-Gaussian signal. By means of the system order recursion, whether the system has an AR structure or has AR part of an ARMA structure is firstly investigated. MA features in the TOC domain is then applied as a threshold to decide if the system is an MA model or has MA part of an ARMA model. Numerical simulations illustrate the generality of the proposed blind structure identification methodology that may serve as a guideline for blind linear system modeling.
机译:本文提出了一种新颖的线性系统结构确定方法,以及系统阶数和参数的选择。可以从系统输出测量的三阶累积量(TOC)中盲目提取自回归(AR),移动平均(MA)或自回归移动平均(ARMA)模型结构,其中未知系统由相同的不可观察的平稳独立驱动分布式(iid)非高斯信号。通过系统顺序递归,首先研究系统是具有AR结构还是具有ARMA结构的AR部分。然后,将TOC域中的MA特征用作阈值,以确定系统是MA模型还是ARMA模型的MA部分。数值模拟说明了所提出的盲结构识别方法的一般性,该方法可以作为盲线性系统建模的指导。

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