Automatic generation of a neural network architecture using evolutionary computation

E. Vonk, L. Jain, L. Veelenturf, R. P. Johnson
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引用次数: 111

Abstract

This paper reports the application of evolutionary computation in the automatic generation of a neural network architecture. It is a usual practice to use trial and error to find a suitable neural network architecture. This is not only time consuming but may not generate an optimal solution for a given problem. The use of evolutionary computation is a step towards automation in architecture generation. In this paper a brief introduction to the field is given as well as an implementation of automatic neural network generation using genetic programming.<>
基于进化计算的神经网络结构的自动生成
本文报道了进化计算在神经网络结构自动生成中的应用。通常的做法是使用试错法来找到合适的神经网络架构。这不仅耗时,而且可能无法为给定问题生成最佳解决方案。进化计算的使用是迈向架构生成自动化的一步。本文简要介绍了这一领域,并给出了一种利用遗传规划实现神经网络自动生成的方法
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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