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亮度机制介导红-绿等亮度光栅的运动:“时间色差”的作用。

Luminance mechanisms mediate the motion of red-green isoluminant gratings: the role of "temporal chromatic aberration".

作者信息

Mullen Kathy T, Yoshizawa Tatsuya, Baker Curtis L

机构信息

McGill Vision Research, Department of Ophthalmology (H4-14), McGill University, 687 Pine Avenue West, Que., H3A 1A1, Montreal, Canada.

出版信息

Vision Res. 2003 May;43(11):1235-47. doi: 10.1016/s0042-6989(03)00115-9.

Abstract

In this paper we use a dynamic noise-masking paradigm to explore the nature of the mechanisms mediating the motion perception of drifting isoluminant red-green gratings. We compare contrast thresholds for the detection and direction discrimination of drifting gratings (1.5 cpd), over a range of temporal frequencies (0.5-9 Hz) in the presence of variable luminance or chromatic noise. In the first experiment, we used dynamic luminance noise to show that direction thresholds for red-green grating motion are masked by luminance noise over the entire temporal range tested, whereas detection thresholds are unaffected. This result indicates that the motion of nominally isoluminant red-green gratings is mediated by luminance signals. We suggest that stimulus-based luminance artifacts are not responsible for this effect because there is no masking of the detection thresholds. Instead we propose that chromatic motion thresholds for red-green isoluminant gratings are mediated by dynamic luminance artifacts that have an internal, physiological origin. We have termed these "temporal chromatic aberration". In the second experiment, we used dynamic chromatic noise masking to test for a chromatic contribution to red-green grating motion. We were unable to find conclusive evidence for a contribution of chromatic mechanisms to the chromatic grating motion, although a contribution at very high chromatic contrasts cannot be ruled out. Our results add to a growing body of evidence indicating the presence of dynamic, internal luminance artifacts in the motion of chromatic stimuli and we show that these occur even at very low temporal rates. Our results are compatible with our previous work indicating the absence of a chromatic mechanism for first order (quasi-linear) apparent motion [Vision Res. 40 (2000) 1993]. We conclude that previous conclusions based on the motion of chromatic red-green gratings should be reassessed to determine the contribution of dynamic luminance artifacts.

摘要

在本文中,我们使用一种动态噪声掩蔽范式来探究介导漂移的等亮度红-绿光栅运动感知的机制的本质。我们比较了在存在可变亮度或色度噪声的情况下,一系列时间频率(0.5 - 9赫兹)下漂移光栅(1.5周/度)的检测和方向辨别对比度阈值。在第一个实验中,我们使用动态亮度噪声表明,在整个测试的时间范围内,红-绿光栅运动的方向阈值被亮度噪声掩蔽,而检测阈值不受影响。这一结果表明,名义上等亮度的红-绿光栅的运动是由亮度信号介导的。我们认为基于刺激的亮度伪影并非造成这种效应的原因,因为检测阈值没有被掩蔽。相反,我们提出红-绿等亮度光栅的色度运动阈值是由具有内在生理起源的动态亮度伪影介导的。我们将这些称为“时间色差”。在第二个实验中,我们使用动态色度噪声掩蔽来测试色度机制对红-绿光栅运动的贡献。尽管不能排除在非常高的色度对比度下的贡献,但我们未能找到确凿证据证明色度机制对色度光栅运动有贡献。我们的结果进一步证明了越来越多的证据表明在色度刺激运动中存在动态的、内在的亮度伪影,并且我们表明这些甚至在非常低的时间频率下也会出现。我们的结果与我们之前的工作一致,即表明不存在用于一阶(准线性)表观运动的色度机制[《视觉研究》。40 (2000) 1993]。我们得出结论,基于红-绿色度光栅运动的先前结论应该重新评估,以确定动态亮度伪影的贡献。

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