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整个视野中远距离相位辨别力的时间限制。

Temporal limits of long-range phase discrimination across the visual field.

作者信息

Aghdaee S Mehdi, Cavanagh Patrick

机构信息

Department of Psychology, Harvard University, 33 Kirkland Street, Cambridge, MA 02138, USA.

出版信息

Vision Res. 2007 Jul;47(16):2156-63. doi: 10.1016/j.visres.2007.04.016. Epub 2007 Jun 14.

Abstract

When two flickering sources are far enough apart to avoid low-level motion signals, phase judgment relies on the temporal individuation of the light and dark phases of each source. The highest rate at which the individuation can be maintained has been referred to as Gestalt flicker fusion [Van de Grind, W. A., Grüsser, O. -J., & Lunkenheimer, H. U. (1973). Temporal transfer properties of the afferent visual system. Psychophysical, neurophysiological and theoretical investigations. In R. Jung (Ed.), Handbook of sensory physiology (Vol. VII/3, pp. 431-573). Berlin: Springer, Chapter 7] and this has been taken as a measure of the temporal resolution of attention [Verstraten, F. A., Cavanagh, P., & Labianca, A. T. (2000). Limits of attentive tracking reveal temporal properties of attention. Vision Research, 40, 3651-3664; Battelli, L., Cavanagh, P., Intriligator, J., Tramo, M. J., Henaff, M. A., Michel, F., et al. (2001). Unilateral right parietal damage leads to bilateral deficit for high-level motion. Neuron, 32, 985-995]. Here we examine the variation of the temporal resolution of attention across the visual field using phase judgments of widely spaced pairs of flickering dots presented either in the upper or lower visual field and at either 4 degrees or 14 degrees eccentricity. We varied inter-dot separation to determine the spacing at which phase discriminations are no longer facilitated by low-level motion signals. Our data for these long-range phase judgments showed that temporal resolution decreases only slightly with increased distance from center of gaze (decrease from 11.4 to 8.9 Hz between 4 degrees to 14 degrees ), and does not differ between upper and lower visual fields. We conclude that the variation of the temporal limits of visual attention across the visual field differs markedly from that of the spatial resolution of attention.

摘要

当两个闪烁光源相距足够远以避免低水平运动信号时,相位判断依赖于每个光源明暗相位的时间个体化。能够维持个体化的最高频率被称为格式塔闪烁融合[范德·格林德,W.A.,格鲁瑟,O.-J.,&伦肯海默,H.U.(1973年)。传入视觉系统的时间传递特性。心理物理学、神经生理学和理论研究。载于R.荣格(编),《感觉生理学手册》(第七卷/3,第431 - 573页)。柏林:施普林格,第7章],这已被视为注意力时间分辨率的一种度量[韦斯特拉滕,F.A.,卡瓦纳,P.,&拉比亚卡,A.T.(2000年)。注意力跟踪的极限揭示了注意力的时间特性。《视觉研究》,40,3651 - 3664;巴特利,L.,卡瓦纳,P.,因特里利加托,J.,特拉莫,M.J.,埃纳夫,M.A.,米歇尔,F.,等。(2001年)。右侧顶叶单侧损伤导致高水平运动的双侧缺陷。《神经元》,32,985 - 995]。在此,我们使用呈现于上视野或下视野、偏心度为4度或14度的一对远距离闪烁点的相位判断,来研究注意力时间分辨率在整个视野中的变化。我们改变点间间距,以确定低水平运动信号不再促进相位辨别时的间距。我们这些远距离相位判断的数据表明,时间分辨率仅随着与注视中心距离的增加而略有下降(在4度至14度之间从11.4赫兹降至8.9赫兹),并且在上视野和下视野之间没有差异。我们得出结论,视觉注意力时间极限在整个视野中的变化与注意力空间分辨率的变化明显不同。

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