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Computational Modeling of Individual Differences in Behavioral Estimates of Cochlear Nonlinearities

机译:耳蜗非线性行为估计中个体差异的计算模型

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摘要

Temporal masking curves (TMCs) are often used to estimate cochlear compression in individuals with normal and impaired hearing. These estimates may yield a wide range of individual differences, even among subjects with similar quiet thresholds. This study used an auditory model to assess potential sources of variance in TMCs from 51 listeners in Poling et al. [J Assoc Res Otolaryngol, 13:91–108 ()]. These sources included threshold elevation, the contribution of outer and inner hair cell dysfunction to threshold elevation, compression of the off-frequency linear reference, and detection efficiency. Simulations suggest that detection efficiency is a primary factor contributing to individual differences in TMCs measured in normal-hearing subjects, while threshold elevation and the contribution of outer and inner hair cell dysfunction are primary factors in hearing-impaired subjects. Approximating the most compressive growth rate of the cochlear response from TMCs was achieved only in subjects with the highest detection efficiency. Simulations included off-frequency nonlinearity in basilar membrane and inner hair cell processing; however, this nonlinearity did not improve predictions, suggesting that other sources, such as the decay of masking and the strength of the medial olivocochlear reflex, may mimic off-frequency nonlinearity. Findings from this study suggest that sources of individual differences can play a strong role in behavioral estimates of compression, and these sources should be considered when using forward masking to study cochlear function in individual listeners or across groups of listeners.
机译:时间掩蔽曲线(TMC)通常用于估计听力正常和受损的个体的耳蜗压迫。这些估计可能会产生很大的个体差异,即使在具有相似安静阈值的受试者之间也是如此。这项研究使用听觉模型评估了来自Poling等人的51位听众的TMC中潜在的差异来源。 [J Assoc Res Otolaryngol,13:91-108()]。这些来源包括阈值升高,外部和内部毛细胞功能障碍对阈值升高的贡献,频率外线性参考的压缩以及检测效率。模拟表明,检测效率是导致在正常听力受试者中测得的TMC个体差异的主要因素,而阈值升高以及外部和内部毛细胞功能障碍的影响是听力受损受试者的主要因素。仅在具有最高检测效率的受试者中,才能实现来自TMC的最大耳蜗响应的最大压缩增长率。模拟包括基底膜的离频非线性和内部毛细胞处理;但是,这种非线性并不能改善预测,这表明其他来源,例如掩盖的衰减和内侧小球反射的强度,可能会模拟低频非线性。这项研究的发现表明,个体差异的来源在压缩行为的估计中起着重要作用,在使用正向掩膜研究个体听众或跨群体听众的耳蜗功能时,应考虑这些来源。

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