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3D Reconstruction of Interior Wall Surfaces under Occlusion and Clutter

机译:遮挡和杂波下内墙表面的3D重建

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Laser scanners are often used to create 3D models of buildings for civil engineering applications. The current manual process is time-consuming and error-prone. This paper presents a method for using laser scanner data to model predominantly planar surfaces, such as walls, floors, and ceilings, despite the presence of significant amounts of clutter and occlusion, which occur frequently in natural indoor environments. Our goal is to recover the surface shape, detect and model any openings, and fill in the occluded regions. Our method identifies candidate surfaces for modeling, labels occluded surface regions, detects openings in each surface using supervised learning, and reconstructs the surface in the occluded regions. We evaluate the method on a large, highly cluttered data set of a building consisting of forty separate rooms.
机译:激光扫描仪通常用于为民用工程创建建筑物的3D模型。当前的手动过程既耗时又容易出错。本文提出了一种使用激光扫描仪数据来建模主要为平坦表面(如墙壁,地板和天花板)的方法,尽管存在大量的杂波和遮挡,这些杂波和遮挡在自然的室内环境中经常发生。我们的目标是恢复表面形状,检测并建模任何开口,并填充被遮挡的区域。我们的方法可以识别出要建模的候选曲面,标记被遮挡的曲面区域,使用监督学习来检测每个曲面中的开口,并在被遮挡的区域中重建曲面。我们在由40个独立房间组成的建筑物的大型,高度混乱的数据集上评估该方法。

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