Verschooten Eric, Shamma Shihab, Oxenham Andrew J, Moore Brian C J, Joris Philip X, Heinz Michael G, Plack Christopher J
Laboratory of Auditory Neurophysiology, KU Leuven, B-3000, Leuven, Belgium.
Institute for Systems Research and Electrical and Computer Engineering, University of Maryland, College Park, MD, 20742, USA; Laboratory of Sensory Perception, Department of Cognitive Studies, Ecole Normale Superieure, 29 Rue d'Ulm, Paris, 75005, France.
Hear Res. 2019 Jun;377:109-121. doi: 10.1016/j.heares.2019.03.011. Epub 2019 Mar 15.
The relative importance of neural temporal and place coding in auditory perception is still a matter of much debate. The current article is a compilation of viewpoints from leading auditory psychophysicists and physiologists regarding the upper frequency limit for the use of neural phase locking to code temporal fine structure in humans. While phase locking is used for binaural processing up to about 1500 Hz, there is disagreement regarding the use of monaural phase-locking information at higher frequencies. Estimates of the general upper limit proposed by the contributors range from 1500 to 10000 Hz. The arguments depend on whether or not phase locking is needed to explain psychophysical discrimination performance at frequencies above 1500 Hz, and whether or not the phase-locked neural representation is sufficiently robust at these frequencies to provide useable information. The contributors suggest key experiments that may help to resolve this issue, and experimental findings that may cause them to change their minds. This issue is of crucial importance to our understanding of the neural basis of auditory perception in general, and of pitch perception in particular.
神经时间编码和位置编码在听觉感知中的相对重要性仍是一个备受争议的问题。本文汇集了顶尖听觉心理物理学家和生理学家对于人类使用神经锁相来编码时间精细结构的频率上限的观点。虽然锁相用于高达约1500赫兹的双耳处理,但对于更高频率下单耳锁相信息的使用存在分歧。撰稿人提出的一般上限估计范围为1500至10000赫兹。这些论点取决于是否需要锁相来解释1500赫兹以上频率的心理物理辨别性能,以及锁相神经表征在这些频率下是否足够稳健以提供可用信息。撰稿人提出了可能有助于解决此问题的关键实验,以及可能使他们改变想法的实验结果。这个问题对于我们总体上理解听觉感知的神经基础,尤其是音高感知的神经基础至关重要。