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A Dual Fuzzy Neuro Controller using Genetic Algorithm in Civil Aviation Intelligent Landing System

机译:基于遗传算法的民航智能着陆系统双模糊神经控制器

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A kind of dual fuzzy neuro control algorithm (DFNC) for civil aviation aircraft intellegent landing system is developed in this paper. The DFNC algorithm uses Genetic Algorithm (GA) as the optimization technique and chooses best control performance of approaching and landing to be the optimization object. Real-time recurrent learning (RTRL) is applied to train the RNN that uses gradient-descent of the error function with respect to the weights to perform the weights updates. Convergence analysis of system error is provided. The control scheme utilizes five crossover methods of Gas to search optimal control parameters. Simulations show that the proposed intelligent controller has better performance than the conventional controller.
机译:本文开发了一种用于民航飞机智能着陆系统的双重模糊神经控制算法(DFNC)。 DFNC算法使用遗传算法(GA)作为优化技术,并选择接近和着陆的最佳控制性能作为优化对象。应用实时递归学习(RTRL)来训练RNN,该RNN使用相对于权重的误差函数的梯度下降来执行权重更新。提供了系统误差的收敛性分析。该控制方案利用Gas的五种交叉方法来搜索最佳控制参数。仿真表明,所提出的智能控制器具有比常规控制器更好的性能。

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