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A hybrid of cuckoo search and simplex method for fuzzy neural network training

机译:杜鹃搜索和单纯形方法的混合用于模糊神经网络训练

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In this paper, a new hybrid algorithm mixing the simplex method of Nelder and Mead (NM) and the cuckoo search (CS), abbreviated as NM-CS, is proposed for the training of the Fuzzy Neural Networks (FNNs). In standard CS, cuckoo birds engage the obligate brood parasitism by laying their own eggs to other host birds. If a host bird discovers the alien eggs, they will either throw these eggs away or abandon its nest and build a new nest elsewhere. In the proposed hybrid algorithm, instead of using the probability to discover an alien egg for the CS, we use the concept of a simplex which is used in the NM algorithm to abandon and generate the new nests. Our proposed method puts more emphasis on exploration of the search space and enhances the ability to avoid local optimum. Some simulation problems will be provided to compare the performances of the proposed method and other methods in training an FNN. In these simulations, it is observed that the proposed method outperforms other methods.
机译:本文提出了一种新的混合算法,将Nelder and Mead(NM)的单纯形法和布谷鸟搜索(CS)混合在一起,简称为NM-CS,用于训练模糊神经网络(FNN)。在标准CS中,杜鹃鸟通过向其他寄主鸟产卵来进行专性的寄生。如果寄主鸟发现了外来的卵,它们将把这些卵扔掉或放弃其巢而在其他地方建一个新的巢。在提出的混合算法中,我们没有使用概率来发现CS的外来卵,而是使用了单纯形的概念,在NM算法中使用了单纯形以放弃并生成新的嵌套。我们提出的方法更加注重搜索空间的探索,并增强了避免局部最优的能力。将提供一些仿真问题,以比较所提出的方法和其他方法在训练FNN方面的性能。在这些模拟中,可以观察到所提出的方法优于其他方法。

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