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Evolving the topology and the weights of neural networks using a dual representation

机译:使用双重表示演化神经网络的拓扑结构和权重

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摘要

Evolutionary computation is a class of global search techniques based on the learning process of a population of potential solutions to a given problem, that has been successfully applied to a variety of problems. In this paper a new approach to the construction of neural networks based on evolutionary computation is presented. A linear chromosome combined to a graph representation of the network are used by genetic operators, which allow the evolution of the architecture and the weights simultaneously without the need of local weight optimization. This paper describes the approach, the operators and reports results of the application of this technique to several binary classification problems. [References: 38]
机译:进化计算是一类全局搜索技术,它基于对给定问题的大量潜在解决方案的学习过程,该过程已成功应用于各种问题。本文提出了一种基于进化计算的神经网络构建新方法。遗传算子使用结合到网络图形表示形式的线性染色体,从而允许架构和权重的同时演变,而无需局部权重优化。本文介绍了该方法,运算符,并报告了将该技术应用于几个二进制分类问题的结果。 [参考:38]

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