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Reversed Depth in Anticorrelated Random-Dot Stereograms and the Central-Peripheral Difference in Visual Inference

机译:反向深度的反向随机点立体图和视觉推断中的中心外围差异

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摘要

In a random-dot stereogram, the percept of object surfaces in a three-dimensional scene is generated by images presented to left and right eyes that comprise interocularly corresponding random black and white dots. The spatial disparities between the corresponding dots determine the depths of object surfaces. If the dots are anticorrelated, such that a black dot in one monocular image corresponds to a white dot in the other, disparity-tuned neurons in the primary visual cortex (V1) respond as if their preferred disparities become nonpreferred and vice versa, thereby reversing the disparity signs reported to higher visual areas. Typically, when viewing anticorrelated random-dot stereograms presented in the central visual field, humans have great difficulty perceiving the reversed depth or indeed any coherent depth at all. We report that the reversed depth is more easily perceived in the peripheral visual field, supporting a recently proposed central-peripheral dichotomy in the way that feedback from higher to lower visual cortical areas implements visual inference.
机译:在随机点立体图中,三维场景中的物体表面的感应由呈现给左右眼的图像产生,该图像包括间隙对应的随机黑白点。相应点之间的空间差异决定了物体表面的深度。如果圆点都是后吻形的,使得一个单眼图像中的黑点对应于另一个中的白点,主要视觉皮质(V1)中的视差调谐神经元响应于它们的优选差异变为非优选,反之亦然,从而逆转差异迹象向更高的视觉区域报告。通常,当观察中央视野中呈现的一个反向随机点立体图时,人类非常困难地感知反向深度或根本的任何相干深度。我们报告说,在外围视野中更容易感知反转深度,支持最近提出的中央外围二分法,以至于从更高到较低的视觉皮质区域实现视觉推理的方式。

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