有缺陷文物的自动三维重建

Robert Gregor, I. Sipiran, Georgios Papaioannou, T. Schreck, Anthousis Andreadis, P. Mavridis
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引用次数: 25

摘要

由于最近3D采集和形状处理技术的改进,文化遗产(CH)文物的数字化在档案和考古研究中得到了越来越多的应用。获取技术的日益普及也意味着需要智能处理方法来处理不完美的对象扫描。特别是对于文物来说,除了数字化过程带来的缺陷外,原始文物也可能因变质或破碎过程而不完美。目前,先前数字化的CH工件的重建主要是由专家用户手动完成的,通过建模重新组装碎片部分和完成不完美的对象。然而,需要更多的自动修复和补全CH对象的方法来应对越来越大的可用数据。在这篇概念性的论文中,我们首先简要介绍了CH伪影扫描数据中的典型缺陷,然后激发了各自修复方法的需求。我们根据现有重建方法对CH对象的适用性进行了调查和分类,然后讨论了如何扩展和组合这些方法,通过提出CH对象3D数字化的灵活修复工作流程来解决CH工件中遇到的各种类型的物理缺陷。该工作流包含一个自动重组步骤,可以处理碎片化的输入数据。它还包括基于相似度的适当互补对象数据检索,用于修复局部和全局对象缺陷。最后,我们讨论了评估这种CH修复工作流程有效性的选项。
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Towards Automated 3D Reconstruction of Defective Cultural Heritage Objects
Due to recent improvements in 3D acquisition and shape processing technology, the digitization of Cultural Heritage (CH) artifacts is gaining increased application in context of archival and archaeological research. This increasing availability of acquisition technologies also implies a need for intelligent processing methods that can cope with imperfect object scans. Specifically for Cultural Heritage objects, besides imperfections given by the digitization process, also the original artifact objects may be imperfect due to deterioration or fragmentation processes. Currently, the reconstruction of previously digitized CH artifacts is mostly performed manually by expert users reassembling fragment parts and completing imperfect objects by modeling. However, more automatic methods for CH object repair and completion are needed to cope with increasingly large data becoming available. In this conceptual paper, we first provide a brief survey of typical imperfections in CH artifact scan data and in turn motivate the need for respective repair methods. We survey and classify a selection of existing reconstruction methods with respect to their applicability for CH objects, and then discuss how these approaches can be extended and combined to address various types of physical defects that are encountered in CH artifacts by proposing a flexible repair workflow for 3D digitizations of CH objects. The workflow accommodates an automatic reassembly step which can deal with fragmented input data. It also includes the similarity-based retrieval of appropriate complementary object data which is used to repair local and global object defects. Finally, we discuss options for evaluation of the effectiveness of such a CH repair workflow.
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