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Analyzing ancient maya glyph collections with contextual shape descriptors

机译:使用上下文形状描述符分析古代Maya字形集合

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摘要

This paper presents an original approach for shape-based analysis of ancient Maya hieroglyphs based on an interdisciplinary collaboration between computer vision and archeology. Our work is guided by realistic needs of archaeologists and scholars who critically need support for search and retrieval tasks in large Maya imagery collections. Our paper has three main contributions. First, we introduce an overview of our interdisciplinary approach towards the improvement of the documentation, analysis, and preservation of Maya pictographic data. Second, we present an objective evaluation of the performance of two state-of-the-art shape-based contextual descriptors (Shape Context and Generalized Shape Context) in retrieval tasks, using two datasets of syllabic Maya glyphs. Based on the identification of their limitations, we propose a new shape descriptor named Histogram of Orientation Shape Context (HOOSC), which is more robust and suitable for description of Maya hieroglyphs. Third, we present what to our knowledge constitutes the first automatic analysis of visual variability of syllabic glyphs along historical periods and across geographic regions of the ancient Maya world via the HOOSC descriptor. Overall, our approach is promising, as it improves performance on the retrieval task, has been successfully validated under an epigraphic viewpoint, and has the potential of offering both novel insights in archeology and practical solutions for real daily scholar needs.
机译:本文基于计算机视觉与考古学之间的跨学科协作,提出了一种基于形状的古代玛雅象形文字分析的原始方法。我们的工作是由考古学家和学者的现实需要指导的,他们迫切需要大型Maya影像收藏中的搜索和检索任务支持。我们的论文有三个主要贡献。首先,我们概述了我们的跨学科方法,以改进Maya象形数据的记录,分析和保存。其次,我们使用两个音节Maya字形数据集,对检索任务中两个基于形状的最新上下文描述符(形状上下文和广义形状上下文)的性能进行了客观评估。在确定其局限性的基础上,我们提出了一种新的形状描述符,称为定向形状上下文直方图(HOOSC),它更健壮并适合于描述Maya象形文字。第三,我们通过HOOSC描述符介绍了我们所知构成的音素字形在历史时期和古代玛雅世界各个地理区域内的视觉可变性的首次自动分析。总体而言,我们的方法是有前途的,因为它可以提高检索任务的性能,并已在文献学的观点下得到了成功验证,并且具有提供考古学方面的新颖见解和满足实际日常学者需求的实用解决方案的潜力。

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