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Chaotic Analog Associative Memory

机译:混沌模拟联想记忆

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This paper proposes chaotic analog associative memory (CAAM), which can handle one-to-many learning pairs composed of analog patterns. Most past associative memory models have considered a binary pattern as the pattern to be learned, which makes it difficult to handle analog patterns. It is also a problem that the superposed pattern is recalled due to interaction between the memorized patterns. Thus, it becomes difficult to handle the association of one-to-many learning pairs, in which multiple patterns can be recalled from a single given pattern. In contrast, the proposed model uses a multiwinner self-organizing neural network (MWSONN), which can handle analog patterns, and realizes association of the analog patterns. In the proposed CAAM, the chaotic neuron is introduced as a part of the network, and one-to-many association is realized by utilizing the dynamic recall power of the chaotic neuron. Computer experiments verify that the association of one-to-many learning pairs composed of analog patterns can be realized, and that the proposed model has high noise immunity and robustness to faults.
机译:本文提出了一种混沌模拟联想记忆(CAAM),它可以处理由模拟模式组成的一对多学习对。过去的大多数关联存储器模型都将二进制模式视为要学习的模式,这使得处理模拟模式变得困难。还有一个问题是由于记忆的图案之间的相互作用而使重叠的图案被召回。因此,变得难以处理一对多学习对的关联,其中可以从单个给定模式中调用多个模式。相比之下,提出的模型使用了一个多赢者自组织神经网络(MWSONN),它可以处理模拟模式,并实现模拟模式的关联。在提出的CAAM中,将混沌神经元作为网络的一部分引入,并利用混沌神经元的动态召回能力实现了一对多关联。计算机实验证明,可以实现由模拟模式组成的一对多学习对的关联,并且该模型具有较高的抗干扰能力和对故障的鲁棒性。

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