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Lifting 2D Object Detections to 3D: A Geometric Approach in Multiple Views

机译:将2D对象检测提升为3D:多视图中的一种几何方法

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We present two new methods based on Interval Analysis and Computational Geometry for estimating the 3D occupancy and position of objects from image sequences. Given a calibrated set of images, the proposed frameworks first detect objects using off-the-shelf object detectors and then match bounding boxes in multiple views. The 2D semantic information given by the bounding boxes are used to efficiently recover 3D object position and occupancy using solely geometrical constraints in multiple views. We also combine further constraints to obtain a solution even when few images are available. Experiments on three different realistic datasets show the applicability and the potentials of the approaches.
机译:我们提出了两种基于间隔分析和计算几何的新方法,用于从图像序列估计对象的3D占用率和位置。给定一组校准的图像,建议的框架首先使用现成的对象检测器检测对象,然后在多个视图中匹配边界框。边界框提供的2D语义信息仅在多个视图中使用几何约束即可有效地恢复3D对象的位置和占有率。我们还结合了更多的约束来获得解决方案,即使可用的图像很少。在三个不同的现实数据集上进行的实验表明了这些方法的适用性和潜力。

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