与音高知觉分离相关的神经磁反应。

B W Johnson, S D Muthukumaraswamy, M J Hautus, W C Gaetz, D O Cheyne
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摘要

在最近的脑电图研究中[Johnson, 2003] [Hautus, 2005],我们描述了一种新的晚期负ERP成分,它与听觉音高的双耳处理相关,仅基于耳间时间差异(“二元音高”),这是一种声学现象,与基于视网膜差异的立体深度视觉感知非常相似。本研究扩展了这一研究,用神经磁记录由二元嵌入音高引起的听觉诱发场(AEFs)。8名健康成人受试者分别听了两组对照刺激,一组是通过耳机向双耳呈现的500 ms宽带噪声片段,另一组是通过在同一噪声片段的狭窄频率区域引入二分延迟而产生的二分音高刺激,从而导致对听觉空间左侧或右侧偏侧的音高感知。使用151通道全头部脑磁图系统记录听觉诱发场(AEFs)。在150 ~ 350 ms的时间窗内,对照和双基音aef的振幅差异是可靠的。左半球的AEFs对对侧音高的影响大于同侧音高,而右半球对不同侧音高的影响没有差异。研究结果表明,双耳来源的线索对并发声源的知觉分离的神经处理处于相对较晚的阶段,并支持右半球主导对声源定位的处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuromagnetic responses associated with perceptual segregation of pitch.

In recent EEG investigations [Johnson, 2003] [Hautus, 2005], we described a novel late negative ERP component associated with binaural processing of auditory pitch based solely on interaural timing differences ("dichotic pitch"), an acoustic phenomenon that is closely analogous to visual perception of stereoscopic depth based on retinal disparities. The present study extends this research with neuromagnetic recordings of auditory evoked fields (AEFs) elicited by dichotically-embedded pitches. Eight healthy adult subjects listened to control stimuli consisting of 500 ms segments of broadband acoustic noise presented identically to both ears via earphones, and dichotic pitch stimuli created by introducing a dichotic delay to a narrow frequency region of the same noise segments and resulting in a perception of a pitch lateralized to the left or right of auditory space. Auditory-evoked fields (AEFs) were recorded using a 151 channel whole-head MEG system. Comparison of control and dichotic-pitch AEFs showed reliable amplitude differences during a time window of 150-350 ms. AEFs over the left hemisphere showed larger effects for contralateral than ipsilateral pitches, while the right hemisphere showed no differences for differently lateralized sources. The results indicate a relatively late stage of neural processing of binaurally-derived cues for the perceptual segregation of concurrent sound sources and support a right-hemisphere dominance for the processing of sound-source localization.

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