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Insights on the Neuromagnetic Representation of Temporal Asymmetry in Human Auditory Cortex.

机译:关于人类听觉皮层中时间不对称的神经磁表示的见解。

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摘要

Communication sounds are typically asymmetric in time and human listeners are highly sensitive to this short-term temporal asymmetry. Nevertheless, causal neurophysiological correlates of auditory perceptual asymmetry remain largely elusive to our current analysesudand models. Auditory modelling and animal electrophysiological recordings suggest that perceptual asymmetry results from the presence of multiple time scales of temporal integration, central to the auditory periphery. To test this hypothesis we recorded auditory evoked fields (AEF) elicited by asymmetric sounds in humans. We found a strong correlation between perceived tonal salience of ramped and damped sinusoids and the AEFs, as quantified by the amplitude of the N100m dynamics. The N100m amplitude increased with stimulusudhalf-life time, showing a maximum difference between the ramped and damped stimulus for a modulation half-life time of 4 ms which is greatly reduced at 0.5 ms and 32 ms. This behaviour of the N100m closely parallels psychophysical data in a manner that: i) longerudhalf-life times are associated with a stronger tonal percept, and ii) perceptual differences between damped and ramped are maximal at 4 ms half-life time. Interestingly, differences in evoked fields were significantly stronger in the right hemisphere, indicating some degree of hemispheric specialisation. Furthermore, the N100m magnitude was successfullyudexplained by a pitch perception model using multiple scales of temporal integration of auditoryudnerve activity patterns. This striking correlation between AEFs, perception, and model predictions suggests that the physiological mechanisms involved in the processing of pitch evoked by temporal asymmetric sounds are reflected in the N100m.
机译:通信声音通常在时间上是不对称的,并且听众对这种短期时间上的不对称高度敏感。然而,听觉知觉不对称性的因果神经生理相关因素在很大程度上仍难以理解我们目前的分析 udand模型。听觉建模和动物电生理记录表明,听觉不对称性是由于存在于听觉外围中心的时间整合的多个时间尺度造成的。为了验证该假设,我们记录了人类不对称声音引起的听觉诱发声场(AEF)。我们发现,由N100m动力学的幅度量化,倾斜和衰减的正弦曲线的音调显着性与AEF之间存在很强的相关性。 N100m振幅随刺激半衰期时间的增加而增加,对于4 ms的调制半衰期,在斜刺激和阻尼刺激之间显示出最大差异,该差异在0.5 ms和32 ms时大大减小。 N100m的这种行为与心理物理数据非常相似,其方式为:i)更长的半衰期与更强的音调感知相关; ii)阻尼和斜波之间的感知差异在半衰期为4 ms时最大。有趣的是,右半球诱发的视野差异明显更大,这表明半球有一定程度的专业化。此外,通过使用听觉/神经活动模式的时间整合的多个尺度的音高感知模型成功地解释了N100m的大小。 AEF,感知和模型预测之间的这种显着相关性表明,N100m反映了涉及时间非对称声音引起的音高处理的生理机制。

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