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Instrumental Variable-Based OMP Identification Algorithm for Hammerstein Systems

机译:Hammerstein系统基于工具变量的OMP识别算法

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Hammerstein systems are formed by a static nonlinear block followed by a dynamic linear block. To solve the parameterizing difficulty caused by parameter coupling between the nonlinear part and the linear part in a Hammerstein system, an instrumental variable method is studied to parameterize the Hammerstein system. To achieve in simultaneously identifying parameters and orders of the Hammerstein system and to promote the computational efficiency of the identification algorithm, a sparsity-seeking orthogonal matching pursuit (OMP) optimization method of compressive sensing is extended to identify parameters and orders of the Hammerstein system. The idea is, by the filtering technique and the instrumental variable method, to transform the Hammerstein system into a simple form with a separated nonlinear expression and to parameterize the system into an autoregressive model, then to perform an instrumental variable-based orthogonal matching pursuit (IV-OMP) identification method for the Hammerstein system. Simulation results illustrate that the investigated method is effective and has advantages of simplicity and efficiency.
机译:Hammerstein系统由静态非线性块和动态线性块组成。为了解决Hammerstein系统中非线性部分与线性部分之间的参数耦合所带来的参数化困难,研究了一种工具变量方法对Hammerstein系统进行参数化。为了同时识别哈默斯坦系统的参数和阶数并提高识别算法的计算效率,扩展了压缩感知的稀疏寻求正交匹配追踪(OMP)优化方法来识别哈默斯坦系统的参数和阶数。这个想法是通过滤波技术和工具变量方法,将Hammerstein系统转换为具有分离的非线性表达式的简单形式,并将该系统参数化为自回归模型,然后执行基于工具变量的正交匹配追踪( Hammerstein系统的IV-OMP)识别方法。仿真结果表明,该方法是有效的,具有简便,高效的优点。

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