3D物体形状恢复的边界线索

Kevin Karsch, Zicheng Liao, Jason Rock, Jonathan T. Barron, Derek Hoiem
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引用次数: 30

摘要

计算机视觉的早期工作考虑了许多用于形状重建和识别的几何线索。然而,从那时起,视觉界就把重点放在了重建的阴影线索上,并转向了数据驱动的识别方法。在本文中,我们重新考虑了这些可能被忽视的“边界”线索(如表面的自遮挡和折叠),以及许多其他已建立的形状重建约束。在各种用户研究和定量任务中,我们评估了这些线索在形状质量和形状识别方面对形状重建(相对于彼此)的影响程度。我们的研究结果为形状重建的未来研究提供了许多新的方向,如自动边界线索检测和放松阴影对形状的假设(如正交投影,兰伯曲面)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Boundary Cues for 3D Object Shape Recovery
Early work in computer vision considered a host of geometric cues for both shape reconstruction and recognition. However, since then, the vision community has focused heavily on shading cues for reconstruction, and moved towards data-driven approaches for recognition. In this paper, we reconsider these perhaps overlooked "boundary" cues (such as self occlusions and folds in a surface), as well as many other established constraints for shape reconstruction. In a variety of user studies and quantitative tasks, we evaluate how well these cues inform shape reconstruction (relative to each other) in terms of both shape quality and shape recognition. Our findings suggest many new directions for future research in shape reconstruction, such as automatic boundary cue detection and relaxing assumptions in shape from shading (e.g. orthographic projection, Lambertian surfaces).
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