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Photometric stereo under unknown light sources using robust SVD with missing data

机译:使用可靠的SVD且缺少数据的未知光源下的光度立体

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In this paper, we propose a novel photometric stereo method that uses singular value decomposition. Singular value decomposition can solve the photometric stereo problem when the light source direction is unknown; however, it has the critical problem of being sensitive to outliers. We therefore propose a novel singular value decomposition method that is robust to outliers. We also show some results of our photometric stereo method when applied to objects that involve not only diffuse reflection but also specular reflection.
机译:在本文中,我们提出了一种使用奇异值分解的新型光度立体方法。当光源方向未知时,奇异值分解可以解决光度立体问题。但是,它具有对异常值敏感的关键问题。因此,我们提出了一种对异常值具有鲁棒性的新颖奇异值分解方法。当将其应用于不仅涉及漫反射而且涉及镜面反射的对象时,我们还显示了光度立体方法的一些结果。

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