Hearing Technology @ WAVES, Department of Information Technology, Ghent University, Belgium.
Medizinische Physik and Cluster of Excellence Hearing4all, Department of Medical Physics and Acoustics, University of Oldenburg, Oldenburg, Germany.
Trends Hear. 2021 Jan-Dec;25:2331216520988406. doi: 10.1177/2331216520988406.
Over the past decades, different types of auditory models have been developed to study the functioning of normal and impaired auditory processing. Several models can simulate frequency-dependent sensorineural hearing loss (SNHL) and can in this way be used to develop personalized audio-signal processing for hearing aids. However, to determine individualized SNHL profiles, we rely on indirect and noninvasive markers of cochlear and auditory-nerve (AN) damage. Our progressive knowledge of the functional aspects of different SNHL subtypes stresses the importance of incorporating them into the simulated SNHL profile, but has at the same time complicated the task of accomplishing this on the basis of noninvasive markers. In particular, different auditory-evoked potential (AEP) types can show a different sensitivity to outer-hair-cell (OHC), inner-hair-cell (IHC), or AN damage, but it is not clear which AEP-derived metric is best suited to develop personalized auditory models. This study investigates how simulated and recorded AEPs can be used to derive individual AN- or OHC-damage patterns and personalize auditory processing models. First, we individualized the cochlear model parameters using common methods of frequency-specific OHC-damage quantification, after which we simulated AEPs for different degrees of AN damage. Using a classification technique, we determined the recorded AEP metric that best predicted the simulated individualized cochlear synaptopathy profiles. We cross-validated our method using the data set at hand, but also applied the trained classifier to recorded AEPs from a new cohort to illustrate the generalizability of the method.
在过去的几十年中,已经开发出了不同类型的听觉模型,以研究正常和受损听觉处理的功能。有几种模型可以模拟频率依赖性感音神经性听力损失 (SNHL),并可以以此方式用于开发助听器的个性化音频信号处理。然而,为了确定个性化的 SNHL 谱,我们依赖于耳蜗和听神经 (AN) 损伤的间接和非侵入性标志物。我们对不同 SNHL 亚型的功能方面的不断深入的了解强调了将它们纳入模拟的 SNHL 谱中的重要性,但同时也使根据非侵入性标志物完成此任务变得更加复杂。特别是,不同的听觉诱发电位 (AEP) 类型可能对毛细胞 (OHC)、内毛细胞 (IHC) 或 AN 损伤的敏感性不同,但尚不清楚哪种 AEP 衍生指标最适合开发个性化听觉模型。本研究探讨了如何使用模拟和记录的 AEP 来得出个体 AN 或 OHC 损伤模式并个性化听觉处理模型。首先,我们使用常见的 OHC 损伤量化频率特异性方法来个性化耳蜗模型参数,然后模拟不同程度的 AN 损伤的 AEP。使用分类技术,我们确定了记录的 AEP 指标,该指标最能预测模拟的个性化耳蜗突触病谱。我们使用手头的数据集对我们的方法进行了交叉验证,但也将训练有素的分类器应用于来自新队列的记录 AEP,以说明该方法的通用性。