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Dual Network representation Applied to the Evolution of Neural Controllers

机译:应用于神经控制器的演变的双网络表示

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This paper presents a new approach to the evolution of neural networks. A linear chromosome combined with a grid-based representation of the network and a new crossover operator allow the evolution of the architecture and the weights simultaneously. There is no need for a separate weight optimization procedure and networks with more tham one type of activation function can be evolved. This paper describes the representation, the crossover operator, and reports on results of the application of the method to evolve a neural controller for the pole-balancing problem.
机译:本文提出了一种新的神经网络演变方法。线性染色体与网络的基于网格的代表相结合,新的交叉操作员可以同时允许架构和权重的演变。不需要单独的权重优化过程和具有更多THAM一种类型的激活功能的网络可以进化。本文介绍了对方法应用于极衡问题的方法的应用结果的结果的表示,交叉运算符和报告。

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