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Identification of electro-optical tracking systems using genetic algorithms and nonlinear resistance torque

机译:利用遗传算法和非线性电阻转矩识别电光跟踪系统

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摘要

Electro-optical (EO) tracking systems, while exhibiting strong nonlinear characteristics, are difficult to accurately model. Nonlinear resistance torque is proposed to describe the system's nonlinear phenomenon and the genetic algorithm is used to identify model parameters. The model's root-mean-square error (RMSE) was reduced using nonlinear resistance torque by 2.5 times compared to the Stribeck friction model and by 12 times compared to the linear model. Under the identified model, the system's nonlinearity was effectively compen-sated. The results demonstrate the feasibility of the proposed method for the identification of EO tracking sys-tems.
机译:电光(EO)跟踪系统虽然表现出强大的非线性特性,但仍难以准确建模。提出了非线性电阻转矩来描述系统的非线性现象,并使用遗传算法识别模型参数。使用非线性阻力扭矩,该模型的均方根误差(RMSE)与Stribeck摩擦模型相比降低了2.5倍,与线性模型相比降低了12倍。在确定的模型下,有效地补偿了系统的非线性。结果证明了该方法用于EO跟踪系统识别的可行性。

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