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首页> 外文期刊>Neural computation >On the Continuous Differentiability of Inter-Spike Intervals of Synaptically Connected Cortical Spiking Neurons in a Neuronal Network
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On the Continuous Differentiability of Inter-Spike Intervals of Synaptically Connected Cortical Spiking Neurons in a Neuronal Network

机译:神经元网络中突触连接的皮质突触神经元的突波间隔的连续可分性。

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摘要

We derive conditions for continuous differentiability of inter-spike intervals (ISIs) of spiking neurons with respect to parameters (decision variables) of an external stimulating input current that drives a recurrent network of synaptically connected neurons. The dynamical behaviorof individual neurons is represented by a class of discontinuous single-neuron models. We report here that ISIs of neurons in the network are continuously differentiable with respect to decision variables if (1) a continuously differentiable trajectory of the membrane potential exists between consecutive action potentials with respect to time and decision variables and (2) the partial derivative of the membrane potential of spiking neurons with respect to time is not equal to the partial derivative of their firing threshold with respect to time at the time of action potentials. Our theoretical results are supported by showing fulfillment of these conditions for a class of known bidimensional spiking neuron models.
机译:我们推导了尖峰神经元的尖峰间隔(ISI)的持续可区分性的条件,这些尖峰间隔相对于外部刺激输入电流的参数(决策变量)具有驱动力,该电流驱动突触连接的神经元的递归网络。单个神经元的动力学行为由一类不连续的单神经元模型表示。我们在这里报告,如果(1)连续动作电位之间相对于时间和决策变量存在膜电位的连续可分轨迹,并且(2)的偏导数,则网络中神经元的ISI相对于决策变量是连续可分的。尖峰神经元相对于时间的膜电位不等于动作电位时其触发阈值相对于时间的偏导数。通过显示一类已知的二维尖峰神经元模型的这些条件的满足,我们的理论结果得到了支持。

著录项

  • 来源
    《Neural computation》 |2013年第12期|3183-3206|共24页
  • 作者单位

    Department of Chemical Engineering & Bioengineering Program,Lehigh University, Bethlehem, PA 18015, U.S.A.;

    Department of Chemical Engineering & Bioengineering Program,Lehigh University, Bethlehem, PA 18015, U.S.A.;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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