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Macroscopic Description for Networks of Spiking Neurons

机译:尖刺神经元网络的宏观描述

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A major goal of neuroscience, statistical physics, and nonlinear dynamics is to understand how brain function arises from the collective dynamics of networks of spiking neurons. This challenge has been chiefly addressed through large-scale numerical simulations. Alternatively, researchers have formulated mean-field theories to gain insight into macroscopic states of large neuronal networks in terms of the collective firing activity of the neurons, or the firing rate. However, these theories have not succeeded in establishing an exact correspondence between the firing rate of the network and the underlying microscopic state of the spiking neurons. This has largely constrained the range of applicability of such macroscopic descriptions, particularly when trying to describe neuronal synchronization. Here, we provide the derivation of a set of exact macroscopic equations for a network of spiking neurons. Our results reveal that the spike generation mechanism of individual neurons introduces an effective coupling between two biophysically relevant macroscopic quantities, the firing rate and the mean membrane potential, which together govern the evolution of the neuronal network. The resulting equations exactly describe all possible macroscopic dynamical states of the network, including states of synchronous spiking activity. Finally, we show that the firing-rate description is related, via a conformal map, to a low-dimensional description in terms of the Kuramoto order parameter, called Ott-Antonsen theory. We anticipate that our results will be an important tool in investigating how large networks of spiking neurons self-organize in time to process and encode information in the brain.
机译:神经科学,统计物理和非线性动力学的主要目标是了解脑功能如何从尖刺神经元网络的集体动态产生。这一挑战主要通过大规模数值模拟来解决。或者,研究人员在神经元的集体烧制活性或烧制率方面,研究人员制定了平均理论,以获得对大型神经网络的宏观状态。然而,这些理论没有成功地建立网络的射击率与尖峰神经元的剥离微观状态之间建立确切的对应。这在很大程度上限制了这种宏观描述的适用性范围,特别是在尝试描述神经元同步时。这里,我们提供用于尖刺神经元网络的一组精确宏观方程的推导。我们的结果表明,个体神经元的尖峰发电机制引入了两个生物物质相关的宏观量,射击率和平均膜电位之间的有效耦合,其共同控制神经元网络的演变。得到的等式精确地描述了网络的所有可能的宏观动态状态,包括同步尖峰活动的状态。最后,我们表明,在Kuramoto订单参数中,射击率描述与kuramoto命令参数的低维描述相关,称为OTT-Antonsen理论。我们预计我们的结果将是调查尖刺神经元的大型网络如何及时自组织的重要工具来处理和编码大脑中的信息。

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