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The impact of spike-frequency adaptation on balanced network dynamics

机译:穗频适应对平衡网络动态的影响

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A dynamic balance between strong excitatory and inhibitory neuronal inputs is hypothesized to play a pivotal role in information processing in the brain. While there is evidence of the existence of a balanced operating regime in several cortical areas and idealized neuronal network models, it is important for the theory of balanced networks to be reconciled with more physiological neuronal modeling assumptions. In this work, we examine the impact of spike-frequency adaptation, observed widely across neurons in the brain, on balanced dynamics. We incorporate adaptation into binary and integrate-and-fire neuronal network models, analyzing the theoretical effect of adaptation in the large network limit and performing an extensive numerical investigation of the model adaptation parameter space. Our analysis demonstrates that balance is well preserved for moderate adaptation strength even if the entire network exhibits adaptation. In the common physiological case in which only excitatory neurons undergo adaptation, we show that the balanced operating regime in fact widens relative to the non-adaptive case. We hypothesize that spike-frequency adaptation may have been selected through evolution to robustly facilitate balanced dynamics across diverse cognitive operating states.
机译:强兴奋剂和抑制性神经元输入之间的动态平衡被假设以在大脑中的信息处理中发挥枢转作用。虽然有一些皮质区域和理想化的神经元网络模型存在平衡的操作制度的证据,但对于与更多的生理神经元建模假设进行调和的平衡网络理论是重要的。在这项工作中,我们研究了尖峰频率适应的影响,在大脑中广泛观察到均衡动力学。我们将适应性纳入二进制和集成和消防神经元网络模型,分析了对大网络限制的适应理论效果,并对模型适应参数空间进行了广泛的数值研究。我们的分析表明,即使整个网络表现出适应,平衡也适用于适度适应强度。在常见的生理案例中,其中只有兴奋性神经元进行适应,我们表明,均衡操作制度与非自适应情况相比变宽。我们假设可以通过演进选择尖峰频率适应,以促进各种认知操作状态的平衡动态。

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