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Evolutionary Cellular Configurations for Designing Feed-Forward Neural Networks Architectures

机译:用于设计前馈神经网络架构的进化蜂窝配置

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摘要

In the recent years, the interest to develop automatic methods to determine appropriate architectures of feed-forward neural networks has increased. Most of the methods are based on evolutionary computation paradigms. Some of the designed methods are based on direct representations of the parameters of the network. These representations do not allow scalability, so to represent large architectures, very large structures are required. An alternative more interesting are the indirect schemes. They codify a compact representation of the neural network. In this work, an indirect constructive encoding scheme is presented. This scheme is based on cellular automata representations in order to increase the scalability of the method.
机译:近年来,开发自动方法以确定馈线神经网络的适当架构的兴趣增加。大多数方法都基于进化计算范例。一些设计的方法基于网络参数的直接表示。这些表示不允许可扩展性,从而表示大型架构,需要非常大的结构。替代方案更有趣是间接方案。它们编写了神经网络的紧凑型表示。在这项工作中,提出了间接建设性编码方案。该方案基于蜂窝自动机表示,以提高方法的可扩展性。

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