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An Integrated Octree-RANSAC Technique for Automated LiDAR Building Data Segmentation for Decorative Buildings

机译:用于装饰性建筑的自动LiDAR建筑数据分割的集成Octree-RANSAC技术

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This paper introduces a new method for the automated segmentation of laser scanning data for decorative urban buildings. The method combines octree indexing and RANSAC - two previously established but heretofore not integrated techniques. The approach was successfully applied to terrestrial point clouds of the facades of five highly decorative urban structures for which existing approaches could not provide an automated pipeline. The segmentation technique was relatively efficient and wholly scalable requiring only 1 s per 1,000 points, regardless of the facade's level of ornamentation or non-recti-linearity. While the technique struggled with shallow protrusions, its ability to process a wide range of building types and opening shapes with data densities as low as 400 pts/m~2 demonstrate its inherent potential as part of a large and more sophisticated processing approach.
机译:本文介绍了一种用于装饰性城市建筑激光扫描数据自动分割的新方法。该方法结合了八叉树索引和RANSAC-两种先前建立但至今尚未集成的技术。该方法已成功应用于五个高度装饰性城市结构的外立面的地面点云,而现有方法无法为其提供自动管线。分割技术是相对有效的,并且完全可扩展,每1,000个点仅需要1 s,而无论立面的装饰水平或非直线性如何。尽管该技术难以应对浅突起,但它具有处理各种建筑类型和开口形状且数据密度低至400 pts / m〜2的能力,证明了其作为大型且更复杂的处理方法的内在潜力。

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