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低频神经包络处理可预测听力损失儿童在噪声和混响环境下的言语理解能力。

Neural Envelope Processing at Low Frequencies Predicts Speech Understanding of Children With Hearing Loss in Noise and Reverberation.

机构信息

Waisman Center, University of Wisconsin Madison, Madison, Wisconsin, USA.

Communcation Sciences and Disorders, University of Wisconsin Madison, Madison, Wisconsin, USA.

出版信息

Ear Hear. 2024;45(4):837-849. doi: 10.1097/AUD.0000000000001481. Epub 2024 Jun 16.

Abstract

OBJECTIVE

Children with hearing loss experience greater difficulty understanding speech in the presence of noise and reverberation relative to their normal hearing peers despite provision of appropriate amplification. The fidelity of fundamental frequency of voice (f0) encoding-a salient temporal cue for understanding speech in noise-could play a significant role in explaining the variance in abilities among children. However, the nature of deficits in f0 encoding and its relationship with speech understanding are poorly understood. To this end, we evaluated the influence of frequency-specific f0 encoding on speech perception abilities of children with and without hearing loss in the presence of noise and/or reverberation.

METHODS

In 14 school-aged children with sensorineural hearing loss fitted with hearing aids and 29 normal hearing peers, envelope following responses (EFRs) were elicited by the vowel /i/, modified to estimate f0 encoding in low (<1.1 kHz) and higher frequencies simultaneously. EFRs to /i/ were elicited in quiet, in the presence of speech-shaped noise at +5 dB signal to noise ratio, with simulated reverberation time of 0.62 sec, as well as both noise and reverberation. EFRs were recorded using single-channel electroencephalogram between the vertex and the nape while children watched a silent movie with captions. Speech discrimination accuracy was measured using the University of Western Ontario Distinctive Features Differences test in each of the four acoustic conditions. Stimuli for EFR recordings and speech discrimination were presented monaurally.

RESULTS

Both groups of children demonstrated a frequency-dependent dichotomy in the disruption of f0 encoding, as reflected in EFR amplitude and phase coherence. Greater disruption (i.e., lower EFR amplitudes and phase coherence) was evident in EFRs elicited by low frequencies due to noise and greater disruption was evident in EFRs elicited by higher frequencies due to reverberation. Relative to normal hearing peers, children with hearing loss demonstrated: (a) greater disruption of f0 encoding at low frequencies, particularly in the presence of reverberation, and (b) a positive relationship between f0 encoding at low frequencies and speech discrimination in the hardest listening condition (i.e., when both noise and reverberation were present).

CONCLUSIONS

Together, these results provide new evidence for the persistence of suprathreshold temporal processing deficits related to f0 encoding in children despite the provision of appropriate amplification to compensate for hearing loss. These objectively measurable deficits may underlie the greater difficulty experienced by children with hearing loss.

摘要

目的

与正常听力的同龄人相比,听力损失的儿童在噪声和混响环境中理解言语的能力存在更大的困难,尽管他们获得了适当的放大。基频(f0)编码的保真度——理解噪声中言语的重要时间线索——在解释儿童能力差异方面可能起着重要作用。然而,f0 编码的缺陷性质及其与言语理解的关系还知之甚少。为此,我们评估了具有和不具有听力损失的儿童在噪声和/或混响环境中,频率特异性 f0 编码对言语感知能力的影响。

方法

在 14 名佩戴助听器的感音神经性听力损失的学龄儿童和 29 名正常听力的同龄人中,通过元音/i/ 引出包络跟随反应(EFR),对其进行修改以同时估计低频(<1.1 kHz)和高频的 f0 编码。在安静环境中、信噪比为+5 dB 的语音噪声环境中、模拟混响时间为 0.62 秒的环境中,以及在噪声和混响同时存在的环境中,引出 EFR。EFR 是在儿童观看无声电影的同时,通过单通道脑电图记录在顶点和颈后的。在四种声学条件下,使用西安大略大学特征差异测试测量言语辨别准确率。EFR 记录和言语辨别刺激都是单耳呈现。

结果

两组儿童的 f0 编码均表现出频率依赖性的二分法中断,这反映在 EFR 幅度和相位相干性上。由于噪声,低频 EFR 的振幅和相位相干性降低,因此干扰更大;由于混响,高频 EFR 的振幅和相位相干性降低,干扰更大。与正常听力的同龄人相比,听力损失的儿童表现出:(a)由于混响,低频时 f0 编码的干扰更大,尤其是在混响环境中;(b)在最困难的听力条件下(即同时存在噪声和混响时),低频 f0 编码与言语辨别之间存在正相关关系。

结论

综上所述,这些结果为儿童提供了新的证据,表明尽管提供了适当的放大来补偿听力损失,但与 f0 编码相关的阈上时间处理缺陷仍然存在。这些可客观测量的缺陷可能是听力损失儿童更困难的原因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8803/11175738/e6bd94a68dee/aud-45-0837-g001.jpg

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