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A comparison of global motion perception using a multiple-aperture stimulus

机译:使用多孔径刺激的全局运动感知比较

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The human visual system integrates local motion signals to generate globally coherent motion percepts. However, it is unclear whether the perception of different types of global motion relies on a common motion integration mechanism. Using the multiple-aperture stimulus developed by K. Amano, M. Edwards, D. R. Badcock, and S. Nishida (2009), we compared the motion sensitivity (in terms of coherence threshold) for translational, circular, and radial motion. We found greater motion sensitivity for the two complex (circular and radial) motion types than for translational motion, implying that specific motion integration mechanisms are involved in the computation for different motion types. Our results reveal a a??complexity advantagea?? in perceiving motion, which is consistent with physiological and computational evidence suggesting that specific mechanisms exist for processing complex circular/radial motion. We further examined the contributions of several critical factors that influence human global motion sensitivity. We found that human sensitivity for all motion types remained constant across a range of motion sampling density but varied depending on global speed. The minimum stimulus duration required for observers to reach constant sensitivity was found to be short (a??140 ms) for all motion types.
机译:人类视觉系统集成了局部运动信号,以生成全局一致的运动感知。但是,不清楚不同类型的全局运动是否依赖于通用运动集成机制。使用K.Amano,M.Edwards,D.R.Badcock和S.Nishida(2009)开发的多孔径刺激,我们比较了平移,圆周和径向运动的运动敏感性(以相干阈值计)。我们发现两种复杂的(圆周和径向)运动类型的运动敏感性比平移运动更高,这意味着在针对不同运动类型的计算中涉及特定的运动积分机制。我们的结果揭示了一个“复杂性优势”?在感知运动时,这与生理和计算证据一致,表明存在处理复杂圆周/径向运动的特定机制。我们进一步研究了影响人类整体运动敏感性的几个关键因素的贡献。我们发现,在各种运动采样密度范围内,人类对所有运动类型的敏感度保持不变,但随全局速度而变化。对于所有运动类型,发现观察者达到恒定灵敏度所需的最小刺激持续时间很短(a ?? 140 ms)。

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