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耳声发射与听性脑干反应潜伏期之间的比较支持耳声发射的缓慢逆向传播。

Comparison between otoacoustic and auditory brainstem response latencies supports slow backward propagation of otoacoustic emissions.

作者信息

Moleti Arturo, Sisto Renata

机构信息

Dipartimento di Fisica, Università di Roma Tor Vergata, Via della Ricerca Scientifica, 1, 00133 Roma, Italy.

出版信息

J Acoust Soc Am. 2008 Mar;123(3):1495-503. doi: 10.1121/1.2836781.

Abstract

Experimental measurements of the latency of transient evoked otoacoustic emission and auditory brainstem responses are compared, to discriminate between different cochlear models for the backward acoustic propagation of otoacoustic emissions. In most transmission-line cochlear models otoacoustic emissions propagate towards the base as a slow transverse traveling wave, whereas other models assume fast backward propagation via longitudinal compression waves in the fluid. Recently, sensitive measurements of the basilar membrane motion have cast serious doubts on the existence of slow backward traveling waves associated with distortion product otoacoustic emissions [He et al., Hear. Res. 228, 112-122 (2007)]. On the other hand, recent analyses of "Allen-Fahey" experiments suggest instead that the slow mechanism transports most of the otoacoustic energy [Shera et al., J. Acoust. Soc. Am. 122, 1564-1575 (2007)]. The two models can also be discriminated by comparing accurate estimates of the otoacoustic emission latency and of the auditory brainstem response latency. In this study, this comparison is done using human data, partly original, and partly from the literature. The results are inconsistent with fast otoacoustic propagation, and suggest that slow traveling waves on the basilar membrane are indeed the main mechanism for the backward propagation of the otoacoustic energy.

摘要

比较瞬态诱发耳声发射和听觉脑干反应潜伏期的实验测量结果,以区分耳声发射反向声学传播的不同耳蜗模型。在大多数传输线耳蜗模型中,耳声发射作为慢横向行波向基底传播,而其他模型则假设通过流体中的纵向压缩波进行快速反向传播。最近,对基底膜运动的灵敏测量对与畸变产物耳声发射相关的慢反向行波的存在提出了严重质疑[He等人,《听觉研究》228,112 - 122(2007)]。另一方面,最近对“艾伦 - 费伊”实验的分析表明,慢机制传输了大部分耳声能量[Shera等人,《美国声学学会杂志》122,1564 - 1575(2007)]。这两种模型也可以通过比较耳声发射潜伏期和听觉脑干反应潜伏期的准确估计值来区分。在本研究中,这种比较使用了人类数据,部分是原始数据,部分来自文献。结果与快速耳声传播不一致,并表明基底膜上的慢行波确实是耳声能量反向传播的主要机制。

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