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Recursive prediction error algorithms for joint time delay and parameter estimation of certain classes of nonlinear systems

机译:联合时滞和某些类型非线性系统参数估计的递归预测误差算法

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The problem of identifying certain classes of nonlinear systems which incorporate an unknown, possibly time varying, delay is addressed. In particular, the Wiener system which consists of a dynamic linear part followed by a static nonlinearity and the Hammerstein system in which the order of these two blocks is reversed are studied. The linear part of respective system is assumed to consist of an IIR filter in series with a pure time delay and the nonlinearity is represented by a polynomial. A recursive prediction error method, RPEM is derived for simultaneous identification of the parameters of the IIR filter, the delay and the coefficients of the polynomial. The proposed algorithm is combined with a method for online adjustment of the forgetting factor in order to enable tracking in case the parameters are time varying. In addition, Lagrange interpolation of the input signal is used in order to enable estimation of noninteger time delays. The usefulness of the proposed scheme is illustrated by means of numerical examples.
机译:解决了识别包含未知的,可能随时间变化的延迟的某些类型的非线性系统的问题。特别地,研究了由动态线性部分和静态非线性组成的维纳系统,以及将这两个模块的顺序颠倒的哈默斯坦系统。假设各个系统的线性部分由一个串联的IIR滤波器组成,该IIR滤波器具有纯时间延迟,并且非线性由多项式表示。推导了一种递归预测误差方法RPEM,用于同时识别IIR滤波器的参数,延迟和多项式的系数。所提出的算法与一种用于在线调整遗忘因子的方法相结合,以便在参数随时间变化的情况下能够进行跟踪。另外,使用输入信号的拉格朗日内插法以便能够估计非整数时间延迟。通过数值示例说明了所提出方案的有用性。

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