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AUTOMATIC GENERATION OF NEURAL NETWORK STRUCTURES USING GENETIC ALGORITHM

机译:基于遗传算法的神经网络结构自动生成

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This paper deals with a generalized automatic method used for designing artificial neural network (ANN) structures. One of the most important problems is designing the optimal ANN for many real applications. In this paper, two techniques for automatic finding an optimal ANN structure are proposed. They can be applied in real-time applications as well as in fast nonlinear processes. Both techniques proposed in this paper use the genetic algorithms (GA). The first proposed method deals with designing a structure with one hidden layer. The optimal structure has been verified on a nonlinear model of an isothermal reactor. The second algorithm allows designing ANN with an unlimited number of hidden layers each of which containing one neuron. This structure has been verified on a highly nonlinear model of a polymerization reactor. The obtained results have been compared with the results yielded by a fully connected ANN.
机译:本文讨论了一种用于设计人工神经网络(ANN)结构的通用自动方法。最重要的问题之一是为许多实际应用设计最佳的人工神经网络。本文提出了两种自动寻找最佳人工神经网络结构的技术。它们可以应用于实时应用以及快速非线性过程。本文提出的两种技术都使用遗传算法(GA)。首先提出的方法涉及设计具有一个隐藏层的结构。最佳结构已在等温反应器的非线性模型中得到验证。第二种算法允许设计具有无限数量的隐藏层的ANN,每个隐藏层包含一个神经元。该结构已在聚合反应器的高度非线性模型中得到验证。将获得的结果与完全连接的人工神经网络产生的结果进行了比较。

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