Baumgartner Robert, Majdak Piotr, Laback Bernhard
Acoustics Research Institute, Austrian Academy of Sciences, Vienna, Austria
Acoustics Research Institute, Austrian Academy of Sciences, Vienna, Austria.
Trends Hear. 2016 Sep 22;20:2331216516662003. doi: 10.1177/2331216516662003.
Listeners use monaural spectral cues to localize sound sources in sagittal planes (along the up-down and front-back directions). How sensorineural hearing loss affects the salience of monaural spectral cues is unclear. To simulate the effects of outer-hair-cell (OHC) dysfunction and the contribution of different auditory-nerve fiber types on localization performance, we incorporated a nonlinear model of the auditory periphery into a model of sagittal-plane sound localization for normal-hearing listeners. The localization model was first evaluated in its ability to predict the effects of spectral cue modifications for normal-hearing listeners. Then, we used it to simulate various degrees of OHC dysfunction applied to different types of auditory-nerve fibers. Predicted localization performance was hardly affected by mild OHC dysfunction but was strongly degraded in conditions involving severe and complete OHC dysfunction. These predictions resemble the usually observed degradation in localization performance induced by sensorineural hearing loss. Predicted localization performance was best when preserving fibers with medium spontaneous rates, which is particularly important in view of noise-induced hearing loss associated with degeneration of this fiber type. On average across listeners, predicted localization performance was strongly related to level discrimination sensitivity of auditory-nerve fibers, indicating an essential role of this coding property for localization accuracy in sagittal planes.
听众利用单耳频谱线索在矢状面(沿上下和前后方向)定位声源。感音神经性听力损失如何影响单耳频谱线索的显著性尚不清楚。为了模拟外毛细胞(OHC)功能障碍的影响以及不同听觉神经纤维类型对定位性能的贡献,我们将听觉外周的非线性模型纳入了正常听力听众的矢状面声音定位模型。首先评估了该定位模型预测正常听力听众频谱线索修改效果的能力。然后,我们用它来模拟应用于不同类型听觉神经纤维的各种程度的OHC功能障碍。轻度OHC功能障碍对预测的定位性能几乎没有影响,但在严重和完全OHC功能障碍的情况下,定位性能会严重下降。这些预测类似于通常观察到的感音神经性听力损失引起的定位性能下降。当保留具有中等自发放电率的纤维时,预测的定位性能最佳,鉴于与这种纤维类型退化相关的噪声性听力损失,这一点尤为重要。在所有听众中,预测的定位性能平均与听觉神经纤维的电平辨别灵敏度密切相关,表明这种编码特性对矢状面定位准确性起着至关重要的作用。