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神经互相关与信号去相关:对听觉空间编码的见解

Neural cross-correlation and signal decorrelation: insights into coding of auditory space.

作者信息

Saberi Kourosh, Petrosyan Agavni

机构信息

Department of Cognitive Sciences, University of California, Irvine, 92697, USA.

出版信息

J Theor Biol. 2005 Jul 7;235(1):45-56. doi: 10.1016/j.jtbi.2004.12.018.

Abstract

The auditory systems of humans and many other species use the difference in the time of arrival of acoustic signals at the two ears to compute the lateral position of sound sources. This computation is assumed to initially occur in an assembly of neurons organized along a frequency-by-delay surface. Mathematically, the computations are equivalent to a two-dimensional cross-correlation of the input signals at the two ears, with the position of the peak activity along this surface designating the position of the source in space. In this study, partially correlated signals to the two ears are used to probe the mechanisms for encoding spatial cues in stationary or dynamic (moving) signals. It is demonstrated that a cross-correlation model of the auditory periphery coupled with statistical decision theory can predict the patterns of performance by human subjects for both stationary and motion stimuli as a function of stimulus decorrelation. Implications of these findings for the existence of a unique cortical motion system are discussed.

摘要

人类和许多其他物种的听觉系统利用声音信号到达双耳的时间差异来计算声源的横向位置。据推测,这种计算最初发生在沿频率-延迟表面组织的神经元集合中。从数学上讲,这些计算等同于双耳输入信号的二维互相关,沿着该表面的峰值活动位置指定了空间中声源的位置。在这项研究中,使用到双耳的部分相关信号来探究在静止或动态(移动)信号中编码空间线索的机制。结果表明,听觉外周的互相关模型与统计决策理论相结合,可以预测人类受试者对于静止和运动刺激的表现模式,作为刺激去相关的函数。讨论了这些发现对于独特的皮质运动系统存在的意义。

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