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Localizing Google SketchUp models in outdoor 3D scans

机译:本地化户外3D扫描中的Google SketchUp模型

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摘要

This work introduces a novel solution for localizing objects based on search strings and freely available Google SketchUp models. To this end we automatically download and preprocess a collection of 3D models to obtain equivalent point clouds. The outdoor scan is segmented into individual objects, which are sequentially matched with the models by a variant of iterative closest points algorithm using seven degrees of freedom and resulting in a highly precise pose estimation of the object. An error function evaluates the similarity level. The approach is verified using various segmented cars and their corresponding 3D models.
机译:这项工作引入了一种基于搜索字符串本地化对象的新型解决方案,并自由可用的Google SketchUp模型。为此,我们自动下载和预处理的3D模型集合以获得等效点云。室外扫描被分割成单独对象,其通过使用七个自由度的迭代最近点算法的变体顺序地与模型匹配,并导致对象的高精度姿态估计。错误函数评估相似度级别。使用各种分段的汽车及其相应的3D模型来验证该方法。

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