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Superpixel Soup: Monocular Dense 3D Reconstruction of a Complex Dynamic Scene

机译:Superpixel汤:复杂动态场景的单眼密集的3D重建

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This work addresses the task of dense 3D reconstruction of a complex dynamic scene from images. The prevailing idea to solve this task is composed of a sequence of steps and is dependent on the success of several pipelines in its execution. To overcome such limitations with the existing algorithm, we propose a unified approach to solve this problem. We assume that a dynamic scene can be approximated by numerous piecewise planar surfaces, where each planar surface enjoys its own rigid motion, and the global change in the scene between two frames is as-rigid-as-possible (ARAP). Consequently, our model of a dynamic scene reduces to a soup of planar structures and rigid motion of these local planar structures. Using planar over-segmentation of the scene, we reduce this task to solving a "3D jigsaw puzzle" problem. Hence, the task boils down to correctly assemble each rigid piece to construct a 3D shape that complies with the geometry of the scene under the ARAP assumption. Further, we show that our approach provides an effective solution to the inherent scale-ambiguity in structure-from-motion under perspective projection. We provide extensive experimental results and evaluation on several benchmark datasets. Quantitative comparison with competing approaches shows state-of-the-art performance.
机译:这项工作解决了图像中复杂的动态场景的密集3D重构任务。解决此任务的现行想法由一系列步骤组成,并且取决于其执行中若干管道的成功。为了克服现有算法的这种限制,我们提出了一种统一的方法来解决这个问题。我们假设动态场景可以用许多分段平面表面近似,其中每个平面表面均欣赏其自身的刚性运动,并且两个帧之间的场景中的全局变化是可能的(ARAP)。因此,我们的动态场景模型减少到这些局部平面结构的平面结构和刚性运动的汤。使用场景的平面过分分割,我们减少了解决“3D拼图拼图”问题的任务。因此,任务逐渐沸腾以正确地组装每个刚性件以构造符合场景的几何形状的3D形状。此外,我们表明,我们的方法在透视投影下为结构 - 从运动中的固有尺度模糊提供了有效的解决方案。我们为几个基准数据集提供了广泛的实验结果和评估。与竞争方法的定量比较显示了最先进的性能。

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