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模拟正常和受损听觉外周在高声压级下的听觉神经反应。

Modeling auditory-nerve responses for high sound pressure levels in the normal and impaired auditory periphery.

作者信息

Zilany Muhammad S A, Bruce Ian C

机构信息

Department of Electrical and Computer Engineering, McMaster University, Hamilton, Ontario L8S 4K1, Canada.

出版信息

J Acoust Soc Am. 2006 Sep;120(3):1446-66. doi: 10.1121/1.2225512.

Abstract

This paper presents a computational model to simulate normal and impaired auditory-nerve (AN) fiber responses in cats. The model responses match physiological data over a wider dynamic range than previous auditory models. This is achieved by providing two modes of basilar membrane excitation to the inner hair cell (IHC) rather than one. The two modes are generated by two parallel filters, component 1 (C1) and component 2 (C2), and the outputs are subsequently transduced by two separate functions. The responses are then added and passed through the IHC low-pass filter followed by the IHC-AN synapse model and discharge generator. The C1 filter is a narrow-band, chirp filter with the gain and bandwidth controlled by a nonlinear feed-forward control path. This filter is responsible for low and moderate level responses. A linear, static, and broadly tuned C2 filter followed by a nonlinear, inverted and nonrectifying C2 transduction function is critical for producing transition region and high-level effects. Consistent with Kiang's two-factor cancellation hypothesis, the interaction between the two paths produces effects such as the C1/C2 transition and peak splitting in the period histogram. The model responses are consistent with a wide range of physiological data from both normal and impaired ears for stimuli presented at levels spanning the dynamic range of hearing.

摘要

本文提出了一种计算模型,用于模拟猫正常和受损听神经(AN)纤维的反应。与先前的听觉模型相比,该模型的反应在更宽的动态范围内与生理数据相匹配。这是通过向内毛细胞(IHC)提供两种基底膜兴奋模式而非一种来实现的。这两种模式由两个并行滤波器,即组件1(C1)和组件2(C2)产生,其输出随后通过两个单独的函数进行转导。然后将反应相加,并通过IHC低通滤波器,接着是IHC-AN突触模型和放电发生器。C1滤波器是一个窄带啁啾滤波器,其增益和带宽由非线性前馈控制路径控制。该滤波器负责低水平和中等水平的反应。一个线性、静态且调谐宽泛的C2滤波器,随后是一个非线性、反向且非整流的C2转导函数,对于产生过渡区域和高水平效应至关重要。与蒋的双因素抵消假说一致,两条路径之间的相互作用产生了诸如C1/C2过渡和周期直方图中的峰值分裂等效应。对于在跨越听觉动态范围的水平上呈现的刺激,该模型的反应与来自正常和受损耳朵的广泛生理数据一致。

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