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Complex-valued multistate neural associative memory

机译:复值多状态神经联想记忆

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摘要

A model of a multivalued associative memory is presented. This memory has the form of a fully connected attractor neural network composed of multistate complex-valued neurons. Such a network is able to perform the task of storing and recalling gray-scale images. It is also shown that the complex-valued fully connected neural network may be considered as a generalization of a Hopfield network containing real-valued neurons. A computational energy function is introduced and evaluated in order to prove network stability for asynchronous dynamics. Storage capacity as related to the number of accessible neuron states is also estimated.
机译:提出了一种多值联想记忆模型。这种记忆具有由多状态复值神经元组成的完全连接的吸引神经网络的形式。这样的网络能够执行存储和调用灰度图像的任务。还表明,复值完全连接神经网络可以被视为包含实值神经元的Hopfield网络的推广。为了证明异步动力学的网络稳定性,引入并评估了计算能量函数。还估计了与可访问神经元状态数有关的存储容量。

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