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A hybrid genetic algorithm for estimating the optimal time scale oflinear systems approximations using Laguerre models

机译:使用Laguerre模型估算线性系统近似的最佳时间尺度的混合遗传算法

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We deal with the problem of finding the optimal time scale of the truncated Laguerre series using numerical search techniques. We develop a hybrid genetic algorithm (GA) to search the nonlinear, multimodal squared-error function that results from least-squares approximations of the impulse response of causal linear time-invariant stable systems. The hybrid GA incorporates a Newton-Raphson (NR) local optimizer for fast convergence to the global minimum point. The proposed method competes favorably with the pure GA in solution accuracy (the number of function evaluations being the same) and with an established gradient-directed optimization algorithm in number of function evaluations (the solution accuracy being the same)
机译:我们处理使用数值搜索技术找到截断的Laguerre级数的最佳时间尺度的问题。我们开发了一种混合遗传算法(GA),以搜索因果线性时不变稳定系统的脉冲响应的最小二乘近似得到的非线性,多峰平方误差函数。混合GA集成了Newton-Raphson(NR)本地优化器,可快速收敛到全局最小值。所提出的方法在求解精度(函数求值数相同)方面与纯GA竞争,并且在函数求值数(求解精度相同)上与已建立的梯度定向优化算法相竞争。

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