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Phase-locking patterns in a resonate and fire neural model with periodic drive

机译:具有周期性驱动的共振和灭火神经模型中的锁相模式

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In this paper we studied a resonate and fire relaxation oscillator subject to time dependent modulation to investigate phase-locking phenomena occurring in neurophysiological systems. The neural model (denoted LFHN) was obtained by linearization of the FitzHugh-Nagumo neural model near an hyperbolic fixed point and then by introducing an integrate-and-fire mechanism for spike generation. By employing specific tools to study circle maps, we showed that this system exhibits several phase-locking patterns in the presence of periodic perturbations. Moreover, both the amplitude and frequency of the modulation strongly impact its phase-locking properties. In addition, general conditions for the generation of firing activity were also obtained. In addition, it was shown that for moderate noise levels the phase-locking patterns of the LFHN persist. Moreover, in the presence of noise, the rotation number changes smoothly as the stimulation current increases. Then, the statistical properties of the firing map were investigated too. Lastly, the results obtained with the forced LFHN suggest that such neural model could be used to fit specific experimental data on the firing times of neurons.
机译:在本文中,我们研究了逐渐调节的谐振和火灾松弛振荡器,以研究神经生理系统中发生的锁相现象。通过在双曲线固定点附近的Fitzhugh-Nagumo神经模型的线性化来获得神经模型(表示的LFHN),然后通过引入钉子发电的整合和防火机制来获得。通过采用特定工具来研究圆形地图,我们表明该系统在周期性扰动存在下表现出几种锁相模式。此外,调制的幅度和频率都强烈影响其锁相特性。此外,还获得了产生烧焦活性的一般条件。另外,表明,对于中等噪声水平,LFHN的锁相模式持续存在。此外,在存在噪声的情况下,随着刺激电流的增加,旋转数变化。然后,研究了烧制图的统计特性。最后,用强制LFHN获得的结果表明,这种神经模型可用于适应神经元的烧制时间的特定实验数据。

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