房间点云分割:一种基于占用和密度图像的新方法

Q2 Environmental Science
C. Gourguechon, H. Macher, T. Landes
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引用次数: 0

摘要

摘要大多数建筑都是现有的,没有在BIM过程中建造。这就是为什么现有建筑的建模成为一个主要问题。除了维护或翻新的问题,承诺减少对环境的影响,他们的模型对文档和价值评估很感兴趣。但是今天,虽然采集技术有了显著的进步,但随着高效激光扫描仪的使用,建模仍然是手动的,而且非常耗时。文献中并不是没有关于自动化流程的建议。然而,许多研究都是基于严格的建筑假设,或者局限于没有家具的空置建筑。这极大地限制了它们的应用领域。针对这些限制,本文提出了一种创新的方法,只保留墙壁的垂直性作为假设。它是基于占用和密度图像分析。在各种各样的建筑物上进行了测试,这种方法非常有前途,分类错误很少。此外,在混乱的环境中,该过程在动态激光扫描数据方面取得了成功,并应用于非曼哈顿世界方案的建筑物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ROOM POINT CLOUDS SEGMENTATION: A NEW APPROACH BASED ON OCCUPANCY AND DENSITY IMAGES
Abstract. The majority of buildings are existing and have not been constructed in a BIM process. That is why, the modelling of existing buildings becomes a major issue. Beyond the questions of maintenance or renovation with the promise of reducing the environmental impact, their modelling is of interest for documentation and valorisation. But today, while the acquisition techniques are significantly progressing, with the use of efficient laser scanners, the modelling remains manual and very time consuming. The literature is not empty of proposals to automate the process. Nevertheless, many studies are based on strict architectural hypotheses or restricted to unoccupied buildings free of furniture. This strongly limits their application field. In response to these limitations, this paper presents an innovative method retaining only verticality of walls as assumptions. It is based on occupancy and density image analysis. Tested on a wide variety of buildings, this method is very promising with very few classifications errors. Furthermore, the process is successful with dynamic laser scanning data, in cluttered environments, and applied on buildings with a non-Manhattan-World scheme.
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来源期刊
ISPRS Annals of the Photogrammetry Remote Sensing and Spatial Information Sciences
ISPRS Annals of the Photogrammetry Remote Sensing and Spatial Information Sciences Environmental Science-Environmental Science (miscellaneous)
CiteScore
2.00
自引率
0.00%
发文量
0
审稿时长
16 weeks
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