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Diverse synaptic plasticity mechanisms orchestrated to form and retrieve memories in spiking neural networks

机译:在突触神经网络中精心设计形成和检索记忆的各种突触可塑性机制

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摘要

Synaptic plasticity, the putative basis of learning and memory formation, manifests in various forms and across different timescales. Here we show that the interaction of Hebbian homosynaptic plasticity with rapid non-Hebbian heterosynaptic plasticity is, when complemented with slower homeostatic changes and consolidation, sufficient for assembly formation and memory recall in a spiking recurrent network model of excitatory and inhibitory neurons. In the model, assemblies were formed during repeated sensory stimulation and characterized by strong recurrent excitatory connections. Even days after formation, and despite ongoing network activity and synaptic plasticity, memories could be recalled through selective delay activity following the brief stimulation of a subset of assembly neurons. Blocking any component of plasticity prevented stable functioning as a memory network. Our modelling results suggest that the diversity of plasticity phenomena in the brain is orchestrated towards achieving common functional goals.
机译:突触可塑性是学习和记忆形成的假定基础,表现为多种形式,跨越不同的时间尺度。在这里,我们显示,当与较慢的稳态变化和巩固相辅相成时,希伯族同质突触可塑性与快速的非希伯来异质突触可塑性之间的相互作用足以在刺激性和抑制性神经元的尖峰递归网络模型中进行装配形成和记忆记忆。在该模型中,组件是在反复的感官刺激过程中形成的,其特征是强烈的反复兴奋性连接。甚至在形成后的几天内,尽管网络活动和突触可塑性仍在持续,但在短暂刺激一部分装配神经元后,可以通过选择性延迟活动来回忆记忆。阻止可塑性的任何组成部分都会阻止其稳定地用作存储网络。我们的建模结果表明,大脑中可塑性现象的多样性是为了实现共同的功能目标而精心设计的。

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