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Chimera in a network of memristor-based Hopfield neural network

机译:基于Memristor的Hopfield神经网络网络的嵌合体

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摘要

Memristors have shown great potential to yield novel features in various domains. Therefore, memristor-based systems are being studied in widespread applications. In this paper, a newly proposed hyperbolic-type memristor-based Hopfield neural network is studied, as a single unit of a coupled network. Particularly, the effects of the coupling between each state variable of the system on the network behavior is investigated. It is observed that changing the coupling variable leads to different patterns at each coupling strength, including partial chimera state, chimera state, synchronization, imperfect synchronization and oscillation death. When the memristor-based elements are coupled with each other, increasing the coupling strength causes a regular transition from asynchronization to chimera state and then toward synchronization.
机译:忆耳显示出巨大的潜力,可以在各个领域中产生新颖的特征。 因此,在广泛的应用中研究了基于忆体的系统。 本文研究了一种基于新提出的双曲线型映射器的Hopfield神经网络,作为耦合网络的单个单元。 特别地,研究了系统对网络行为的每个状态变量之间的耦合的影响。 观察到,改变耦合变量导致每个耦合强度的不同图案,包括部分嵌合状态,嵌合状态,同步,不完全同步和振荡死亡。 当基于忆耳的元件彼此耦合时,增加耦合强度导致从异步转换到嵌合状态,然后朝向同步。

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