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Automatic 3D Indoor Scene Modeling from Single Panorama

机译:从单个全景图进行自动3D室内场景建模

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We describe a system that automatically extracts 3D geometry of an indoor scene from a single 2D panorama. Our system recovers the spatial layout by finding the floor, walls, and ceiling; it also recovers shapes of typical indoor objects such as furniture. Using sampled perspective sub-views, we extract geometric cues (lines, vanishing points, orientation map, and surface normals) and semantic cues (saliency and object detection information). These cues are used for ground plane estimation and occlusion reasoning. The global spatial layout is inferred through a constraint graph on line segments and planar superpixels. The recovered layout is then used to guide shape estimation of the remaining objects using their normal information. Experiments on synthetic and real datasets show that our approach is state-of-the-art in both accuracy and efficiency. Our system can handle cluttered scenes with complex geometry that are challenging to existing techniques.
机译:我们描述了一种系统,该系统会自动从单个2D全景图中提取室内场景的3D几何形状。我们的系统通过查找地板,墙壁和天花板来恢复空间布局;它还可以恢复典型的室内物体(例如家具)的形状。使用采样的透视图子视图,我们提取几何提示(直线,消失点,方向图和表面法线)和语义提示(显着性和物体检测信息)。这些提示用于地平面估计和遮挡推理。通过线段和平面超像素上的约束图可以推断出全局空间布局。然后,将恢复的布局用于使用剩余物体的正常信息来指导其形状估计。在合成数据集和真实数据集上进行的实验表明,我们的方法在准确性和效率上都是最先进的。我们的系统可以处理复杂几何形状的场景,这对现有技术是具有挑战性的。

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