A hardware model of the auditory periphery to transduce acoustic signals into neural activity.

Frontiers in neuroengineering Pub Date : 2013-11-26 eCollection Date: 2013-01-01 DOI:10.3389/fneng.2013.00012
Takashi Tateno, Jun Nishikawa, Nobuyoshi Tsuchioka, Hirofumi Shintaku, Satoyuki Kawano
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引用次数: 14

Abstract

To improve the performance of cochlear implants, we have integrated a microdevice into a model of the auditory periphery with the goal of creating a microprocessor. We constructed an artificial peripheral auditory system using a hybrid model in which polyvinylidene difluoride was used as a piezoelectric sensor to convert mechanical stimuli into electric signals. To produce frequency selectivity, the slit on a stainless steel base plate was designed such that the local resonance frequency of the membrane over the slit reflected the transfer function. In the acoustic sensor, electric signals were generated based on the piezoelectric effect from local stress in the membrane. The electrodes on the resonating plate produced relatively large electric output signals. The signals were fed into a computer model that mimicked some functions of inner hair cells, inner hair cell-auditory nerve synapses, and auditory nerve fibers. In general, the responses of the model to pure-tone burst and complex stimuli accurately represented the discharge rates of high-spontaneous-rate auditory nerve fibers across a range of frequencies greater than 1 kHz and middle to high sound pressure levels. Thus, the model provides a tool to understand information processing in the peripheral auditory system and a basic design for connecting artificial acoustic sensors to the peripheral auditory nervous system. Finally, we discuss the need for stimulus control with an appropriate model of the auditory periphery based on auditory brainstem responses that were electrically evoked by different temporal pulse patterns with the same pulse number.

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听觉外围的硬件模型,将声音信号转化为神经活动。
为了提高人工耳蜗的性能,我们将一个微型装置集成到听觉外围模型中,目的是创建一个微处理器。我们采用混合模型构建了一个人工外周听觉系统,其中聚偏二氟乙烯作为压电传感器将机械刺激转换为电信号。为了产生频率选择性,设计了不锈钢基板上的狭缝,使膜在狭缝上的局部共振频率反映传递函数。在声传感器中,电信号是基于膜内局部应力的压电效应产生的。谐振板上的电极产生较大的电输出信号。这些信号被输入到一个计算机模型中,该模型模拟了内毛细胞、内毛细胞-听觉神经突触和听觉神经纤维的一些功能。总的来说,该模型对纯音突发和复杂刺激的响应准确地代表了高自发率听觉神经纤维在大于1khz的频率范围和中高声压级范围内的放电率。因此,该模型为理解外周听觉系统的信息处理提供了工具,并为人工声传感器与外周听觉神经系统的连接提供了基本设计。最后,我们讨论了在相同脉冲数的不同时间脉冲模式电诱发的听觉脑干反应的基础上,用合适的听觉外周刺激控制模型的必要性。
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