Eriksholm Research Centre, Snekkersten, Denmark.
Automatic Control, Department of Electrical Engineering, Linköping University, Linköping, Sweden.
Trends Hear. 2024 Jan-Dec;28:23312165241246596. doi: 10.1177/23312165241246596.
The auditory brainstem response (ABR) is a valuable clinical tool for objective hearing assessment, which is conventionally detected by averaging neural responses to thousands of short stimuli. Progressing beyond these unnatural stimuli, brainstem responses to continuous speech presented via earphones have been recently detected using linear temporal response functions (TRFs). Here, we extend earlier studies by measuring subcortical responses to continuous speech presented in the sound-field, and assess the amount of data needed to estimate brainstem TRFs. Electroencephalography (EEG) was recorded from 24 normal hearing participants while they listened to clicks and stories presented via earphones and loudspeakers. Subcortical TRFs were computed after accounting for non-linear processing in the auditory periphery by either stimulus rectification or an auditory nerve model. Our results demonstrated that subcortical responses to continuous speech could be reliably measured in the sound-field. TRFs estimated using auditory nerve models outperformed simple rectification, and 16 minutes of data was sufficient for the TRFs of all participants to show clear wave V peaks for both earphones and sound-field stimuli. Subcortical TRFs to continuous speech were highly consistent in both earphone and sound-field conditions, and with click ABRs. However, sound-field TRFs required slightly more data (16 minutes) to achieve clear wave V peaks compared to earphone TRFs (12 minutes), possibly due to effects of room acoustics. By investigating subcortical responses to sound-field speech stimuli, this study lays the groundwork for bringing objective hearing assessment closer to real-life conditions, which may lead to improved hearing evaluations and smart hearing technologies.
听觉脑干反应(ABR)是一种用于客观听力评估的有价值的临床工具,其通常通过对数千个短刺激的神经反应进行平均来检测。超越这些非自然刺激,最近已经使用线性时间响应函数(TRF)检测到了通过耳机呈现的连续语音的脑干反应。在这里,我们通过测量在声场中呈现的连续语音的皮质下反应来扩展早期研究,并评估估计脑干 TRF 所需的数据量。当 24 名正常听力参与者通过耳机和扬声器收听点击和故事时,记录了脑电图(EEG)。在通过刺激整流或听神经模型对听觉外围的非线性处理进行解释后,计算了皮质下 TRF。我们的结果表明,可以在声场中可靠地测量连续语音的皮质下反应。使用听神经模型估计的 TRF 优于简单的整流,并且 16 分钟的数据足以使所有参与者的 TRF 均显示出耳机和声场刺激的清晰 V 波峰。连续语音的皮质下 TRF 在耳机和声场条件下以及与点击 ABR 非常一致。但是,与耳机 TRF(12 分钟)相比,声场 TRF 要达到清晰的 V 波峰需要更多的数据(16 分钟),这可能是由于房间声学的影响。通过研究声场语音刺激的皮质下反应,本研究为使客观听力评估更接近实际条件奠定了基础,这可能导致听力评估和智能听力技术的改善。