Design and analysis of neural networks for systems optimization

I. Silva, M. E. Bordon, A. Souza
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引用次数: 2

Abstract

Artificial neural networks are dynamic systems consisting of highly interconnected and parallel nonlinear processing elements that are shown to be extremely effective in computation. This paper presents an architecture of artificial neural networks that can be used to solve several classes of optimization problems. More specifically, a modified Hopfield network is developed and its internal parameters are computed using the valid-subspace technique. Among the problems that can be treated by the proposed approach include combinational optimization problems and dynamic programming problems.
用于系统优化的神经网络设计与分析
人工神经网络是由高度互联和并行的非线性处理元素组成的动态系统,在计算方面表现出极高的效率。本文提出了一种人工神经网络的体系结构,可用于解决几类优化问题。具体地说,提出了一种改进的Hopfield网络,并利用有效子空间技术计算了其内部参数。该方法可处理的问题包括组合优化问题和动态规划问题。
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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