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Computational Model for Human 3D Shape Perception From a Single Specular Image

机译:基于单个镜面图像的人类3D形状感知的计算模型

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摘要

In natural conditions the human visual system can estimate the 3D shape of specular objects even from a single image. Although previous studies suggested that the orientation field plays a key role for 3D shape perception from specular reflections, its computational plausibility, and possible mechanisms have not been investigated. In this study, to complement the orientation field information, we first add prior knowledge that objects are illuminated from above and utilize the vertical polarity of the intensity gradient. Then we construct an algorithm that incorporates these two image cues to estimate 3D shapes from a single specular image. We evaluated the algorithm with glossy and mirrored surfaces and found that 3D shapes can be recovered with a high correlation coefficient of around 0.8 with true surface shapes. Moreover, under a specific condition, the algorithm's errors resembled those made by human observers. These findings show that the combination of the orientation field and the vertical polarity of the intensity gradient is computationally sufficient and probably reproduces essential representations used in human shape perception from specular reflections.
机译:在自然条件下,人类视觉系统甚至可以从单个图像中估计镜面物体的3D形状。尽管以前的研究表明方向场对于从镜面反射中感知3D形状起着关键作用,但其计算合理性和可能的​​机制尚未得到研究。在这项研究中,为了补充定向场信息,我们首先添加了从上方照亮物体并利用强度梯度的垂直极性的先验知识。然后,我们构造一种算法,将这两个图像线索合并在一起,以从单个镜面反射图像中估计3D形状。我们评估了具有光滑和镜面表面的算法,发现对于真实表面形状,可以以大约0.8的高相关系数恢复3D形状。此外,在特定条件下,该算法的错误类似于人类观察者所犯的错误。这些发现表明,取向场和强度梯度的垂直极性的组合在计算上是足够的,并且可能从镜面反射中再现用于人类形状感知的基本表示。

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