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A Complex-Valued Firing-Rate Model That Approximates the Dynamics of Spiking Networks

机译:一种复杂值的激发率模型该模型近似于尖峰网络的动态

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摘要

Firing-rate models provide an attractive approach for studying large neural networks because they can be simulated rapidly and are amenable to mathematical analysis. Traditional firing-rate models assume a simple form in which the dynamics are governed by a single time constant. These models fail to replicate certain dynamic features of populations of spiking neurons, especially those involving synchronization. We present a complex-valued firing-rate model derived from an eigenfunction expansion of the Fokker-Planck equation and apply it to the linear, quadratic and exponential integrate-and-fire models. Despite being almost as simple as a traditional firing-rate description, this model can reproduce firing-rate dynamics due to partial synchronization of the action potentials in a spiking model, and it successfully predicts the transition to spike synchronization in networks of coupled excitatory and inhibitory neurons.
机译:射速模型为研究大型神经网络提供了一种有吸引力的方法,因为它们可以快速模拟并且可以进行数学分析。传统的点火速率模型采用简单的形式,其中动力学由单个时间常数控制。这些模型无法复制尖峰神经元群体的某些动态特征,特别是涉及同步的那些。我们提出了一个从Fokker-Planck方程的本征函数展开式导出的复值点火速率模型,并将其应用于线性,二次和指数积分点火模型。尽管该模型几乎与传统的点火速率描述一样简单,但由于峰值模型中动作电位的部分同步,因此可以重现点火速率动态,并且成功预测了在兴奋性和抑制性耦合网络中峰值同步的过渡神经元。

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