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Dimensional reduction in networks of non-Markovian spiking neurons: Equivalence of synaptic filtering and heterogeneous propagation delays

机译:非马尔可夫突刺神经元网络的降维:突触过滤和异质传播延迟的等效性

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摘要

Message passing between components of a distributed physical system is non-instantaneous and contributes to determine the time scales of the emerging collective dynamics. In biological neuron networks this is due in part to local synaptic filtering of exchanged spikes, and in part to the distribution of the axonal transmission delays. How differently these two kinds of communication protocols affect the network dynamics is still an open issue due to the difficulties in dealing with the non-Markovian nature of synaptic transmission. Here, we develop a mean-field dimensional reduction yielding to an effective Markovian dynamics of the population density of the neuronal membrane potential, valid under the hypothesis of small fluctuations of the synaptic current. Within this limit, the resulting theory allows us to prove the formal equivalence between the two transmission mechanisms, holding for any synaptic time scale, integrate-and-fire neuron model, spike emission regimes and for different network states even when the neuron number is finite. The equivalence holds even for larger fluctuations of the synaptic input, if white noise currents are incorporated to model other possible biological features such as ionic channel stochasticity.
机译:消息在分布式物理系统的各个组件之间传递是非即时的,有助于确定新兴的集体动态的时间尺度。在生物神经元网络中,这部分归因于交换尖峰的局部突触过滤,部分归因于轴突传递延迟的分布。由于难以应对突触传递的非马尔可夫性质,这两种通信协议对网络动态的不同影响仍然是一个悬而未决的问题。在这里,我们发展出平均场降维,产生有效的马尔可夫动力学的神经元膜电位的人口密度,在突触电流小波动的假设下有效。在此范围内,由此产生的理论使我们能够证明两种传递机制之间的形式等效性,即使在神经元数量有限的情况下,也适用于任何突触时间尺度,积分并发射神经元模型,尖峰发射方案以及不同的网络状态。如果合并了白噪声电流以模拟其他可能的生物学特征(例如离子通道的随机性),则即使对于突触输入的较大波动也是如此。

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