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A Dual-Process Integrator–Resonator Model of the Electrically Stimulated Human Auditory Nerve

机译:电刺激人类听觉神经的双过程积分器-谐振器模型

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摘要

A phenomenological dual-process model of the electrically stimulated human auditory nerve is presented and compared to threshold and loudness data from cochlear implant users. The auditory nerve is modeled as two parallel processes derived from linearized equations of conductance-based models. The first process is an integrator, which dominates stimulation for short-phase duration biphasic pulses and high-frequency sinusoidal stimuli. It has a relatively short time constant (0.094 ms) arising from the passive properties of the membrane. The second process is a resonator, which induces nonmonotonic functions of threshold vs frequency with minima around 80 Hz. The ion channel responsible for this trend has a relatively large relaxation time constant of about 1 ms. Membrane noise is modeled as a Gaussian noise, and loudness sensation is assumed to relate to the probability of firing of a neuron during a 20-ms rectangular window. Experimental psychophysical results obtained in seven previously published studies can be interpreted with this model. The model also provides a physiologically based account of the nonmonotonic threshold vs frequency functions observed in biphasic and sinusoidal stimulation, the large threshold decrease obtained with biphasic pulses having a relatively long inter-phase gap and the effects of asymmetric pulses.
机译:提出了电刺激人类听觉神经的现象学双过程模型,并将其与来自人工耳蜗植入用户的阈值和响度数据进行了比较。听神经被建模为两个并行过程,这些过程是从基于电导的模型的线性化方程派生而来的。第一个过程是积分器,该积分器主要控制短期持续时间的双相脉冲和高频正弦波刺激。由于膜的被动特性,它具有相对较短的时间常数(0.094毫秒)。第二个过程是谐振器,它引发阈值与频率的非单调函数,最小值约为80Hz。导致这种趋势的离子通道具有大约1毫秒的相对较大的弛豫时间常数。膜噪声被建模为高斯噪声,并且响度感觉被认为与在20毫秒矩形窗口内发射神经元的概率有关。可以使用此模型解释在七项先前发表的研究中获得的实验性心理物理学结果。该模型还提供了基于生理学的双相和正弦波刺激中观察到的非单调阈值与频率函数的关系,使用具有相对较长的相间间隙的双相脉冲获得的大阈值降低以及非对称脉冲的影响。

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