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个体差异阐明了与稳健的时间精细结构处理相关的感知益处。

Individual differences elucidate the perceptual benefits associated with robust temporal fine-structure processing.

作者信息

Borjigin Agudemu, Bharadwaj Hari M

机构信息

Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN 47907.

Waisman Center, University of Wisconsin, Madison, WI 53705.

出版信息

Proc Natl Acad Sci U S A. 2025 Jan 7;122(1):e2317152121. doi: 10.1073/pnas.2317152121. Epub 2025 Jan 3.

Abstract

The auditory system is unique among sensory systems in its ability to phase lock to and precisely follow very fast cycle-by-cycle fluctuations in the phase of sound-driven cochlear vibrations. Yet, the perceptual role of this temporal fine structure (TFS) code is debated. This fundamental gap is attributable to our inability to experimentally manipulate TFS cues without altering other perceptually relevant cues. Here, we circumnavigated this limitation by leveraging individual differences across 200 participants to systematically compare variations in TFS sensitivity to performance in a range of speech perception tasks. TFS sensitivity was assessed through detection of interaural time/phase differences, while speech perception was evaluated by word identification under noise interference. Results suggest that greater TFS sensitivity is not associated with greater masking release from fundamental-frequency or spatial cues but appears to contribute to resilience against the effects of reverberation. We also found that greater TFS sensitivity is associated with faster response times, indicating reduced listening effort. These findings highlight the perceptual significance of TFS coding for everyday hearing.

摘要

听觉系统在感觉系统中独具特色,它能够锁相并精确跟踪由声音驱动的耳蜗振动相位中非常快速的逐周期波动。然而,这种时间精细结构(TFS)编码的感知作用仍存在争议。这一基本差距归因于我们无法在不改变其他与感知相关线索的情况下,通过实验操纵TFS线索。在此,我们利用200名参与者之间的个体差异,系统性地比较了TFS敏感性的变化与一系列言语感知任务中的表现,从而规避了这一限制。通过检测双耳时间/相位差异来评估TFS敏感性,同时在噪声干扰下通过单词识别来评估言语感知。结果表明,更高的TFS敏感性与从基频或空间线索中获得更大的掩蔽释放无关,但似乎有助于抵御混响的影响。我们还发现,更高的TFS敏感性与更快的反应时间相关,这表明听力努力减少。这些发现凸显了TFS编码在日常听力中的感知重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cfa/11725926/6a47ed6bcc50/pnas.2317152121fig01.jpg

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