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Dynamic associative memory by using chaos of a simple associative memory model with Euler's finite difference scheme

机译:通过使用欧拉有限差分方案的简单联想记忆模型的混沌来动态联想记忆

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Associative memories are capable of memorizing particular patterns and recalling them from their partial information. Different from simple associative memory models based on Hopfield neural networks with sigmoid neurons, a particular model based on the chaotic neural network was also proposed for dynamic associative memory, which can generate various patterns from given information. However, the chaotic network model is so complicated that its behavior has not been analyzed well and can't be controlled easily. To the contrary, this paper shows that a discrete-time simple associative memory model with Euler's difference scheme has possibility to generate chaos. It follows that even such a simple model can be used for dynamic associative memory. Numerical examples also confirm the emergence of chaotic trajectories of the model and demonstrate their use for dynamic associative memory.
机译:联想记忆能够记住特定的模式,并从其部分信息中调出它们。与基于具有S型神经元的Hopfield神经网络的简单联想记忆模型不同,还针对动态联想记忆提出了一种基于混沌神经网络的特殊模型,该模型可以根据给定的信息生成各种模式。但是,混沌网络模型过于复杂,其行为尚未得到很好的分析,也难以控制。相反,本文表明,具有欧拉差分格式的离散时间简单联想记忆模型有可能产生混乱。因此,即使是这种简单的模型也可以用于动态关联存储器。数值例子也证实了该模型混沌轨迹的出现,并证明了它们在动态联想记忆中的应用。

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