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Video Pop-up: Monocular 3D Reconstruction of Dynamic Scenes

机译:视频弹出:动态场景的单眼3D重建

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Consider a video sequence captured by a single camera observing a complex dynamic scene containing an unknown mixture of multiple moving and possibly deforming objects. In this paper we propose an unsupervised approach to the challenging problem of simultaneously segmenting the scene into its constituent objects and reconstructing a 3D model of the scene. The strength of our approach comes from the ability to deal with real-world dynamic scenes and to handle seamlessly different types of motion: rigid, articulated and non-rigid. We formulate the problem as hierarchical graph-cut based segmentation where we decompose the whole scene into background and foreground objects and model the complex motion of non-rigid or articulated objects as a set of overlapping rigid parts. We evaluate the motion segmentation functionality of our approach on the Berkeley Motion Segmentation Dataset. In addition, to validate the capability of our approach to deal with real-world scenes we provide 3D reconstructions of some challenging videos from the YouTube-Objects dataset.
机译:考虑由单个摄像机捕获的视频序列,观察包含多个移动和可能变形对象的未知混合的复杂动态场景。在本文中,我们提出了一种令人难过的方法,使其在其组成对象中同时将场景分割并重建场景的3D模型来提出挑战性问题。我们的方法的实力来自于应对现实世界动态场景的能力,并处理无缝不同类型的运动:刚性,铰接和非刚性。我们为基于分层图形切割的分段制定了问题,其中我们将整个场景分解为背景和前景对象,并将非刚性或铰接物体的复杂运动模拟作为一组重叠的刚性部件。我们在伯克利运动分段数据集上评估我们方法的运动分段功能。此外,为了验证我们处理现实世界场景的方法的能力,我们提供了从YouTube-Objects数据集提供一些具有挑战性的视频的3D重建。

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