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A BENCHMARK FOR LARGE-SCALE HERITAGE POINT CLOUD SEMANTIC SEGMENTATION

机译:大型遗产点云语义分割的基准

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The lack of benchmarking data for the semantic segmentation of digital heritage scenarios is hampering the development of automatic classification solutions in this field. Heritage 3D data feature complex structures and uncommon classes that prevent the simple deployment of available methods developed in other fields and for other types of data. The semantic classification of heritage 3D data would support the community in better understanding and analysing digital twins, facilitate restoration and conservation work, etc. In this paper, we present the first benchmark with millions of manually labelled 3D points belonging to heritage scenarios, realised to facilitate the development, training, testing and evaluation of machine and deep learning methods and algorithms in the heritage field. The proposed benchmark, available at http://archdataset.polito.it/, comprises datasets and classification results for better comparisons and insights into the strengths and weaknesses of different machine and deep learning approaches for heritage point cloud semantic segmentation, in addition to promoting a form of crowdsourcing to enrich the already annotated database.
机译:数字遗址的语义分割缺乏基准数据,阻碍了该领域的自动分类解决方案的开发。遗产3D数据具有复杂的结构和罕见类,可防止在其他字段中开发的可用方法的简单部署和其他类型的数据。遗产3D数据的语义分类将支持社区,以更好地理解和分析数字双胞胎,促进恢复和保护工作等。在本文中,我们介绍了具有遗产的数百万手动标记的3D点的第一个基准,实现了促进遗产领域机器和深层学习方法和算法的开发,培训,测试和评估。在http://archdataset.polito.it/上提供的拟议的基准,包括数据集和分类结果,以便更好地比较和洞察不同机器的优势和洞穴,以及遗产点云语义细分的深入学习方法,以及促销一种众包,以丰富已经注释的数据库。

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