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A study of Bag-of-Visual-Words representations for handwritten keyword spotting

机译:视觉关键词袋表征手写关键词的研究

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摘要

The Bag-of-Visual-Words (BoVW) framework has gained popularity among the document image analysis community, specifically as a representation of handwritten words for recognition or spotting purposes. Although in the computer vision field the BoVW method has been greatly improved, most of the approaches in the document image analysis domain still rely on the basic implementation of the BoVW method disregarding such latest refinements. In this paper, we present a review of those improvements and its application to the keyword spotting task. We thoroughly evaluate their impact against a baseline system in the well-known George Washington dataset and compare the obtained results against nine state-of-the-art keyword spotting methods. In addition, we also compare both the baseline and improved systems with the methods presented at the Handwritten Keyword Spotting Competition 2014.
机译:视觉词袋(BoVW)框架已在文档图像分析社区中获得普及,特别是作为用于识别或发现目的的手写单词的表示形式。尽管在计算机视觉领域,BoVW方法已经得到了很大的改进,但是文档图像分析领域中的大多数方法仍然依赖BoVW方法的基本实现,而无视这些最新改进。在本文中,我们对这些改进及其在关键字发现任务中的应用进行了综述。我们彻底评估了它们对著名的George Washington数据集中的基准系统的影响,并将获得的结果与9种最先进的关键字发现方法进行了比较。此外,我们还将基线和改进的系统与2014年手写关键字发现大赛中介绍的方法进行了比较。

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