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首页> 外文期刊>IEICE Transactions on fundamentals of electronics, communications & computer sciences >Shift-Invariant Associative Memory Based on Homogeneous Neural Networks
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Shift-Invariant Associative Memory Based on Homogeneous Neural Networks

机译:Shift-Invariant Associative Memory Based on Homogeneous Neural Networks

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This paper proposes homogeneous neural networks (HNNs), in which each neuron has identical weights. HNNs can realize shift-invariant associative memory, that is, HNNs can associate not only a memorized pattern but also its shifted ones. The transition property of HNNs is analyzed by the statistical method. We show the probability that each neuron outputs correctly and the error-correcting ability.

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