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An evaluation of pose-normalization algorithms for point clouds introducing a novel histogram-based approach

机译:点云姿态归一化算法的评价,引入了一种基于直方图的基于直方图的方法

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Building Information Modeling is growing more relevant as digital models are not only used during the construction phase but also throughout the building's life cycle. The digital representation of geometric, physical and functional properties enables new methods for planning, execution and operation. Digital models of existing buildings are commonly derived from surveying data such as laser scanning which needs to be processed either manually or automatically throughout various steps. Aligning point clouds along the coordinate system's main axes (also commonly known as pose normalization) is a task benefitting any point cloud processing workflow, be it manual or automated. With the goal of automating this task, we compare various existing methods and present our own approach based on point density histograms. We conclude this paper by comparing and discussing all methods in terms of speed and robustness.
机译:建设信息建模正在增长更加相关,因为数字模型不仅在施工阶段使用,而且在整个建筑物的生命周期中也是如此。几何,物理和功能性的数字表示可以实现新的规划,执行和操作的方法。现有建筑的数字模型通常来自测量数据,例如激光扫描,需要在整个步骤中手动或自动处理。沿坐标系的主轴对准点云(也通常称为姿态规范化)是一个受益于任何点云处理工作流程的任务,请执行手动或自动化。通过自动化此任务的目标,我们比较各种现有方法并基于点密度直方图呈现自己的方法。我们通过在速度和稳健性方面进行比较和讨论所有方法的结论。

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