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Some Aspects of Associative Memory Construction Based on a Hopfield Network

机译:基于Hopfield网络的关联内存结构的一些方面

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摘要

An implementation of associative memory based on a Hopfield network is described. In the proposed approach, memory addresses are regarded as training vectors of the artificial neural network. The efficiency of memory search is directly associated with solving the overfitting problem. A method for dividing the training and input network vectors into parts, the processing of which requires a smaller number of neurons, is proposed. Results of a series of experiments conducted on Hopfield network models with different numbers of neurons trained with different numbers of vectors and operated under different noise conditions are presented.
机译:描述了基于Hopfield网络的关联存储器的实现。在所提出的方法中,存储器地址被视为人工神经网络的训练向量。存储器搜索的效率与解决过度装备问题直接相关。提出了一种将训练和输入网络向量分成零件的方法,所以提出了需要较少数量的神经元的处理。在Hopfield网络模型中进行的一系列实验的结果,并提出了不同数量的载体和在不同噪声条件下操作的不同数量的神经元。

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  • 来源
    《Programming and Computer Software》 |2020年第5期|305-311|共7页
  • 作者单位

    Luxoft Profess LLC 1 I Volokolamskii Proezd 10 Moscow 123060 Russia;

    Russian Acad Sci Ivannikov Inst Syst Programming Ul Solzhenitsyna 25 Moscow 109004 Russia|Moscow MV Lomonosov State Univ Moscow 119991 Russia;

    Russian Acad Sci Fed Res Ctr Comp Sci & Control Ul Vavilova 44-2 Moscow 119333 Russia|Moscow Inst Phys & Technol Inst Skii Per 9 Dolgoprudnyi 141701 Moscow Oblast Russia;

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