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Multistability of Delayed Hybrid Impulsive Neural Networks With Application to Associative Memories

机译:延迟混合脉冲神经网络与应用于关联回忆的多态性

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The important topic of multistability of continuous- and discrete-time neural network (NN) models has been investigated rather extensively. Concerning the design of associative memories, multistability of delayed hybrid NNs is studied in this paper with an emphasis on the impulse effects. Arising from the spiking phenomenon in biological networks, impulsive NNs provide an efficient model for synaptic interconnections among neurons. Using state-space decomposition, the coexistence of multiple equilibria of hybrid impulsive NNs is analyzed. Multistability criteria are then established regrading delayed hybrid impulsive neurodynamics, for which both the impulse effects on the convergence rate and the basins of attraction of the equilibria are discussed. Illustrative examples are given to verify the theoretical results and demonstrate an application to the design of associative memories. It is shown by an experimental example that delayed hybrid impulsive NNs have the advantages of high storage capacity and high fault tolerance when used for associative memories.
机译:相当广泛地研究了连续和离散时间神经网络(NN)模型的多幂的重要主题。关于关联存储器的设计,本文研究了延迟杂交NN的多个能力,重点是脉冲效应。由生物网络中的尖刺现象产生,脉冲NNS为神经元中的突触互连提供了一种有效的模型。利用状态空间分解,分析了混合脉冲NN的多均衡的共存。然后建立了延迟杂交脉冲神经动力学的多工率标准,讨论了对收敛速度的脉冲效应和均衡的吸引力的盆地。给出了说明性示例以验证理论结果并展示对联想存储器的设计。它通过实验例示出了延迟混合脉冲NNS在用于关联存储器时具有高存储容量和高容错的优点。

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