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Evolution Computation Based Learning Algorithms of Polygonal Fuzzy Neural Networks

机译:基于演化计算的多边形模糊神经网络学习算法

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摘要

We present two fuzzy conjugate gradient learning algorithms based on evolutionary algorithms for polygonal fuzzy neural networks (PFNN). First, we design a new algorithm, fuzzy conjugate algorithm based on genetic algorithm (GA). In the algorithm, we obtain an optimal learning constant r by GA and the experiment indicates the new algorithm always converges. Because the algorithm based on GA is a little slow in every iteration step, we propose to get the learning constant r by quantum genetic algorithm (QGA) in place of GA to decrease time spent in every iteration step. The PFNN tuned by the proposed learning algorithm is applied to approxima-tion realization of fuzzy inference rules, and some experiments demonstrate the whole process.
机译:我们提出了两种基于多边形模糊神经网络(PFNN)进化算法的模糊共轭梯度学习算法。首先,我们设计了一种新的算法,基于遗传算法(GA)的模糊共轭算法。在该算法中,通过遗传算法获得了最优的学习常数r,实验表明新算法总是收敛的。由于基于GA的算法在每个迭代步骤中都有些慢,因此我们建议通过量子遗传算法(QGA)代替GA来获得学习常数r,以减少在每个迭代步骤中花费的时间。将所提出的学习算法调整的PFNN应用于模糊推理规则的近似实现,并通过实验证明了整个过程。

著录项

  • 来源
    《International Journal of Intelligent Systems》 |2011年第4期|p.340-352|共13页
  • 作者

    Chunmei He; Youpei Ye;

  • 作者单位

    School of Information Engineering, East China Jiaotong University, Nanchang 330013, People's Republic of China;

    School of Computer Science and Technology, Nanjing University of Science and Technology, Nanjing 210094, People's Republic of China;

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