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The modeling and simulation of visuospatial working memory

机译:视觉空间工作记忆的建模与仿真

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摘要

Camperi and Wang (Comput Neurosci 5:383–405, 1998) presented a network model for working memory that combines intrinsic cellular bistability with the recurrent network architecture of the neocortex. While Fall and Rinzel (Comput Neurosci 20:97–107, 2006) replaced this intrinsic bistability with a biological mechanism-Ca2+ release subsystem. In this study, we aim to further expand the above work. We integrate the traditional firing-rate network with Ca2+ subsystem-induced bistability, amend the synaptic weights and suggest that Ca2+ concentration only increase the efficacy of synaptic input but has nothing to do with the external input for the transient cue. We found that our network model maintained the persistent activity in response to a brief transient stimulus like that of the previous two models and the working memory performance was resistant to noise and distraction stimulus if Ca2+ subsystem was tuned to be bistable.
机译:Camperi和Wang(Comput Neurosci 5:383–405,1998)提出了一种用于工作记忆的网络模型,该模型将固有的细胞双稳态与新皮质的递归网络架构相结合。 Fall和Rinzel(Comput Neurosci 20:97-107,2006)用生物学机制Ca 2 + 释放子系统代替了这种固有的双稳性。在这项研究中,我们旨在进一步扩大上述工作。我们将传统的发射速率网络与Ca 2 + 子系统引起的双稳态进行了整合,修改了突触权重,并建议Ca 2 + 的浓度只会增加突触输入的功效,但与瞬态提示的外部输入无关。我们发现,我们的网络模型在响应短暂的短暂刺激(如前两个模型)的过程中保持了持续的活动,并且如果调整了Ca 2 + 子系统,则工作记忆性能可以抵抗噪声和干扰刺激是双稳态的。

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