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Automated digital modeling of existing buildings: A review of visual object recognition methods

机译:现有建筑物的自动数字建模:视觉对象识别方法的回顾

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摘要

Digital building representations enable and promote new forms of simulation, automation, and information sharing. However, creating and maintaining these representations is prohibitively expensive. In an effort to make the adoption of this technology easier, researchers have been automating the digital modeling of existing buildings by applying reality capture devices and computer vision algorithms. This article is a summary of the efforts of the past ten years, with a particular focus on object recognition methods. We rectify three limitations of existing review articles by describing the general structure and variations of object recognition systems and performing an extensive and quantitative comparative performance evaluation. The coverage of building component classes (i.e. semantic coverage) and recognition performances are reported in-depth and framed using a building taxonomy. Research programs demonstrate sparse semantic coverage with a clear bias towards recognizing floor, wall, ceiling, door, and window classes. Comprehensive semantic coverage of building infrastructure will require a radical scaling and diversification of efforts.
机译:数字建筑表示形式可以实现和促进仿真,自动化和信息共享的新形式。但是,创建和维护这些表示非常昂贵。为了使这项技术更容易采用,研究人员通过应用现实捕获设备和计算机视觉算法,对现有建筑物进行数字建模自动化。本文是对过去十年的努力的总结,特别关注对象识别方法。我们通过描述对象识别系统的一般结构和变体,并进行广泛而定量的比较性能评估,来纠正现有评论文章的三个局限性。建筑物组件类别的覆盖范围(即语义覆盖范围)和识别性能会进行深入报告,并使用建筑物分类法进行构建。研究程序展示了稀疏的语义覆盖范围,并且明显倾向于识别地板,墙壁,天花板,门和窗户的类别。建筑基础设施的全面语义覆盖将要求进行根本性的扩展和努力的多样化。

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