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INDOOR MESH CLASSIFICATION FOR BIM

机译:室内BIM分类

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摘要

This work addresses the automatic reconstruction of objects useful for BIM, like walls, floors and ceilings, from meshed and textured mapped 3D point clouds of indoor scenes. For this reason, we focus on the semantic segmentation of 3D indoor meshes as the initial step for the automatic generation of BIM models. Our investigations are based on the benchmark dataset ScanNet, which aims at the interpretation of 3D indoor scenes. For this purpose it provides 3D meshed representations as collected from low cost range cameras. In our opinion such RGB-D data has a great potential for the automated reconstruction of BIM objects.
机译:这项工作致力于解决从室内场景的网格化和纹理化贴图3D点云自动重建对BIM有用的对象(如墙壁,地板和天花板)的问题。因此,我们将重点放在3D室内网格物体的语义分割上,作为自动生成BIM模型的第一步。我们的研究基于基准数据集ScanNet,该网络旨在解释3D室内场景。为此,它提供了从低成本范围相机收集的3D网格表示。我们认为,这种RGB-D数据对于BIM对象的自动重建具有巨大的潜力。

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