使用来自图像和目录的信息对文档片段进行主动聚类

Lior Wolf, Lior Litwak, N. Dershowitz, Roni Shweka, Y. Choueka
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引用次数: 11

摘要

许多重要的历史语料库包含混合的叶子,不再以多页文档的原始状态绑定。因此,对历史学家和文学学者来说,从脱节的树叶中重建旧手稿是至关重要的。之前的研究表明,视觉相似性提供了手写叶子之间有意义的成对相似性。在这里,我们更进一步,建议使用一种半自动聚类工具来帮助重建原始文档。所提出的解决方案基于图形模型,该模型根据为每个叶子提供的目录信息以及笔迹的两两相似性进行推断。研究人员探索了几种新颖的主动聚类技术,并将解决方案应用于Cairo Genizah的重要部分,在那里,即使经过数百名学者一个世纪的广泛研究,连接叶子的问题仍然没有解决。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Active clustering of document fragments using information derived from both images and catalogs
Many significant historical corpora contain leaves that are mixed up and no longer bound in their original state as multi-page documents. The reconstruction of old manuscripts from a mix of disjoint leaves can therefore be of paramount importance to historians and literary scholars. Previously, it was shown that visual similarity provides meaningful pair-wise similarities between handwritten leaves. Here, we go a step further and suggest a semiautomatic clustering tool that helps reconstruct the original documents. The proposed solution is based on a graphical model that makes inferences based on catalog information provided for each leaf as well as on the pairwise similarities of handwriting. Several novel active clustering techniques are explored, and the solution is applied to a significant part of the Cairo Genizah, where the problem of joining leaves remains unsolved even after a century of extensive study by hundreds of scholars.
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