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Enriching Historic Photography with Structured Data using Image Region Segmentation

机译:使用图像区域分割,通过结构化数据丰富历史摄影

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Cultural institutions such as galleries, libraries, archives and museums continue to make commitments to large scale digitization of collections. An ongoing challenge is how to increase discovery and access through structured data and the semantic web. In this paper we describe a method for using computer vision algorithms that automatically detect regions of "stuff-such as the sky, water, and roads-to produce rich and accurate structured data triples for describing the content of historic photography. We apply our method to a collection of 1610 documentary photographs produced in the 1930s and 1940 by the FSA-OWI division of the U.S. federal government. Manual verification of the extracted annotations yields an accuracy rate of 97.5%, compared to 70.7% for relations extracted from object detection and 31.5% for automatically generated captions. Our method also produces a rich set of features, providing more unique labels (1170) than either the captions (1040) or object detection (178) methods. We conclude by describing directions for a linguistically-focused ontology of region categories that can better enrich historical image data. Open source code and the extracted metadata from our corpus are made available as external resources.
机译:画廊,图书馆,档案馆和博物馆等文化机构继续致力于馆藏的大规模数字化。当前的挑战是如何通过结构化数据和语义网来增加发现和访问。在本文中,我们描述了一种使用计算机视觉算法的方法,该算法可自动检测“东西”的区域(例如天空,水和道路),以生成丰富且准确的结构化数据三元组来描述历史摄影的内容。收集了由美国联邦政府FSA-OWI部门在1930年代和1940年制作的1610张纪实照片集,手动验证提取的注释的准确率达到了97.5%,相比之下,从物体检测和检测中提取的关系的准确率为70.7%。 31.5%的自动生成的字幕。我们的方法还产生了丰富的功能集,与字幕(1040)或对象检测(178)方法相比,提供了更多的唯一标签(1170)。可以更好地丰富历史图像数据的区域类别。开放源代码和从我们的语料库中提取的元数据可作为外部资源使用。

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