模式识别采用具有短期记忆的神经网络

V. Kozynchenko, M. Balabanov, Maxim S. Kolmakov
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引用次数: 1

摘要

本文讨论了对汉明神经网络的改进,以解决模式识别问题。提出将神经网络的记忆分为短时记忆部分和长时记忆部分。汉明网络增加了额外的层和调制器,提供了记忆的可塑性和稳定性,就像自适应共振理论中的网络一样。提出了一种基于与所存储图像的成分相遇频率的短时记忆巩固算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pattern recognition using a neural network with the short term memory
The paper deals with the modification of the Hamming neural network designed for solving the problems of pattern recognition. It is proposed to divide the memory of a neural network in the short term and long term parts. To the Hamming network the additional layers and modulators are added, which provide the property of plasticity-stability of memory, like the networks in the adaptive resonance theory. An algorithm for the short-term memory consolidation is proposed that is based on the frequency of encountering the components of stored images.
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