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The development of biophysical models of the electrically stimulated auditory nerve: Single-node and cable models

机译:电刺激听神经的生物物理模型的发展:单节点和电缆模型

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In the last few decades, biophysical models have emerged as a prominent tool in the study and improvement of cochlear implants, a neural prosthetic that restores a degree of sound perception to the profoundly deaf. Owing to the spatial phenomena associated with extracellular stimulation, these models have evolved to a relatively high degree of morphological and physiobgical detail: single-node models in the tradition of Hodgkin-Huxley are paired with cable descriptions of the auditory nerve fiber. No singular model has emerged as a frontrun-ner to the field; rather, parameter sets deriving from the channel kinetics and morphologies of numerous organisms (mammalian and otherwise) are combined and tuned to foster strong agreement with response properties observed in vivo, such as refractoriness, summation, and strength-duration relationships. Recently, biophysical models of the electrically stimulated auditory nerve have begun to incorporate adaptation and stochastic mechanisms, in order to better realize the goal of predicting realistic neural responses to a wide array of stimuli.
机译:在过去的几十年中,生物物理模型已成为耳蜗植入物研究和改进的重要工具,耳蜗植入物是一种神经假体,可以将严重耳聋的声音恢复到一定程度。由于与细胞外刺激相关的空间现象,这些模型已发展到相对较高的形态学和生理学细节:霍奇金-赫克斯利传统中的单节点模型与听神经纤维的电缆描述配对。没有一个单一的模型成为该领域的领跑者。而是将源自多种生物(哺乳动物和其他生物)的通道动力学和形态的参数集进行组合和调整,以促进与体内观察到的响应特性(例如耐火度,求和和强度-持续时间关系)的强烈一致性。最近,电刺激的听觉神经的生物物理模型已开始纳入适应和随机机制,以便更好地实现预测对各种刺激的现实神经反应的目标。

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