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视觉处理延迟会改变移动光栅的感知空间形式。

Visual processing delays alter the perceived spatial form of moving gratings.

作者信息

Anderson S J

机构信息

Department of Vision Sciences, Aston University, Birmingham, England.

出版信息

Vision Res. 1993 Dec;33(18):2733-46. doi: 10.1016/0042-6989(93)90232-l.

Abstract

This study shows that there are delays in processing high spatial frequencies relative to low frequencies, and that these may affect the perceived brightness profile of drifting waveforms. The stimuli were complex waveforms consisting of 2-3 sinusoidal components, either drifting or stationary. The phase of the components was varied until the brightness profile of the waveform appeared as a square, triangle, ramp or bar. The results indicate that stationary waveforms are perceived veridically, but drifting waveforms are not. The harmonics of a drifting complex wave must be phase advanced, relative to the fundamental, in order to cancel motion-induced waveform distortions. This suggests that during visual processing the harmonics must be phase delayed, indicating that they are being processed more slowly than the fundamental. The most significant delays appear to be those between the fundamental and its second and third harmonic. Furthermore, the results show that the magnitude of the delays is dependent on the phase relationship between the components at perceptually significant points in the waveform: delays are less when the components are in sine phase than when they are in cosine phase. Separate experiments show that the detectability of phase shifts is least when the components are in sine phase. Together, these results may explain why drifting "sharp-edged" stimuli are not perceptually distorted: the human visual system appears to be relatively insensitive to phase shifts around square-wave phase and may therefore tolerate differences in the processing times of certain harmonics. A discussion of the possible origin of these processing delays is presented, together with the hypothesis that frequency dependent delays may reflect the spatiotemporal inseparability of cortical visual units.

摘要

本研究表明,相对于低频,高空间频率的处理存在延迟,并且这些延迟可能会影响漂移波形的感知亮度分布。刺激物是由2 - 3个正弦分量组成的复杂波形,要么是漂移的,要么是静止的。改变这些分量的相位,直到波形的亮度分布呈现为方形、三角形、斜坡形或条形。结果表明,静止波形的感知是真实的,但漂移波形并非如此。为了消除运动引起的波形失真,漂移复波的谐波必须相对于基波进行相位超前。这表明在视觉处理过程中,谐波必须进行相位延迟,这表明它们的处理速度比基波慢。最显著的延迟似乎出现在基波与其二次和三次谐波之间。此外,结果表明,延迟的大小取决于波形中感知上重要点处各分量之间的相位关系:当各分量处于正弦相位时,延迟比处于余弦相位时要小。单独的实验表明,当各分量处于正弦相位时,相移的可检测性最低。综合起来,这些结果可能解释了为什么漂移的“边缘清晰”刺激在感知上不会失真:人类视觉系统似乎对方波相位附近的相移相对不敏感,因此可能容忍某些谐波处理时间的差异。本文讨论了这些处理延迟的可能来源,并提出了频率依赖性延迟可能反映皮质视觉单元时空不可分离性的假设。

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