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Research on using genetic algorithms to optimize Elman neural networks

机译:利用遗传算法优化Elman神经网络的研究

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摘要

There is a function of dynamic mapping when processing non-linear complex data with Elman neural networks. Because Elman neural network inherits the feature of back-propagation neural network to some extent, it has many defects; for example, it is easy to fall into local minimum, the fixed learning rate, the uncertain number of hidden layer neuron and so on. It affects the processing accuracy. So we optimize the weights, thresholds and numbers of hidden layer neurons of Elman networks by genetic algorithm. It improves training speed and generalization ability of Elman neural networks to get the optimal algorithm model. It has been proved by instance analysis that new algorithm was superior to the traditional model in terms of convergence rate, predicted value error, number of trainings conducted successfully, etc. It indicates the effect of the new algorithm and deserves further popularization.
机译:使用Elman神经网络处理非线性复杂数据时,具有动态映射功能。由于埃尔曼神经网络在一定程度上继承了反向传播神经网络的特征,因此存在许多缺陷。例如,很容易陷入局部最小值,固定学习率,隐层神经元数量不确定等问题。它影响加工精度。因此,我们通过遗传算法优化了Elman网络隐层神经元的权重,阈值和数量。它提高了Elman神经网络的训练速度和泛化能力,从而获得了最佳算法模型。通过实例分析证明,新算法在收敛速度,预测值误差,成功训练次数等方面均优于传统模型。它表明了新算法的有效性,值得进一步推广。

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  • 来源
    《Neural Computing and Applications》 |2013年第2期|293-297|共5页
  • 作者单位

    School of Computer Science and Technology China University of Mining and Technology">(1);

    Key Laboratory of Intelligent Information Processing Institute of Computing Technology Chinese Academy of Sciences">(2);

    School of Computer Science and Technology China University of Mining and Technology">(1);

    School of Computer Science and Technology China University of Mining and Technology">(1);

    School of Computer Science and Technology China University of Mining and Technology">(1);

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Elman neural networks; Genetic algorithm; GA-Elman algorithm;

    机译:Elman神经网络;遗传算法GA-Elman算法;

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