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Supervised segmentation of 3D cultural heritage

机译:3D文化遗产的监督分割

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摘要

The use of 3D models for the documentation and dissemination of cultural and archaeological heritage is widespread today. Nevertheless, to provide useful 3D data, it is important to associate semantic information that can help operators understand the heritage. This study aims at carrying out an optimal, repeatable and reliable segmentation procedure to manage various types of 3D survey data and associate them with heterogeneous information and attributes to characterize and describe a surveyed object. The developed method starts from 2D supervised machine learning segmentation of orthoimages or UV maps and then projects the segmentation results on the 3D data. Three case studies are presented to demonstrate that the proposed approach is effective and with further potential e.g. for restoration and documentation purposes.
机译:如今,广泛使用3D模型记录和传播文化和考古遗产。尽管如此,为了提供有用的3D数据,重要的是关联语义信息,以帮助操作员理解遗产。这项研究旨在执行最佳,可重复和可靠的分割程序,以管理各种类型的3D调查数据,并将它们与异构信息和属性相关联,以表征和描述被调查对象。所开发的方法从正射影像或UV贴图的2D监督机器学习分割开始,然后将分割结果投影到3D数据上。提出了三个案例研究,以证明所提出的方法是有效的,并具有进一步的潜力,例如用于恢复和记录。

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