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Identification in the delta domain: a unified approach using hybrid FAPS algorithm

机译:三角洲域识别:使用混合FAPS算法的统一方法

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This paper investigates the application of a firefly based hybrid algorithm, namely FAPS, integrating firefly algorithm (FA) with pattern search (PS), to identify linear dynamic systems in presence of static nonlinearities in the discrete-delta domain. The advantage of using delta operator is to provide unification of continuous-time systems with discrete domain results at a high sampling rate. Two popular identification models, viz. hammerstein and wiener are taken up in this work. The parameters of these models as well as the polynomial nonlinearities considered are calculated using FAPS algorithm, through the minimization of mean square error (MSE) occurring between the true and identified model outputs. Simulations illustrate the efficacy of the proposed technique.
机译:本文研究了基于萤火虫的混合算法,即FAPS,将萤火虫算法(FA)与模式搜索(PS)集成在一起的应用,以在离散增量域中存在静态非线性的情况下识别线性动态系统。使用增量算子的优点是可以以高采样率将具有离散域结果的连续时间系统统一起来。两种流行的识别模型,即。 Hammerstein和Wiener从事这项工作。这些模型的参数以及所考虑的多项式非线性是使用FAPS算法计算出来的,它是通过使真实模型输出与确定模型输出之间的均方误差(MSE)最小来进行的。仿真说明了所提出技术的有效性。

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