A survey of OCR evaluation tools and metrics

Clemens Neudecker, Konstantin Baierer, Mike Gerber, C. Clausner, A. Antonacopoulos, S. Pletschacher
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引用次数: 17

Abstract

The millions of pages of historical documents that are digitized in libraries are increasingly used in contexts that have more specific requirements for OCR quality than keyword search. How to comprehensively, efficiently and reliably assess the quality of OCR results against the background of mass digitization, when ground truth can only ever be produced for very small numbers? Due to gaps in specifications, results from OCR evaluation tools can return different results, and due to differences in implementation, even commonly used error rates are often not directly comparable. OCR evaluation metrics and sampling methods are also not sufficient where they do not take into account the accuracy of layout analysis, since for advanced use cases like Natural Language Processing or the Digital Humanities, accurate layout analysis and detection of the reading order are crucial. We provide an overview of OCR evaluation metrics and tools, describe two advanced use cases for OCR results, and perform an OCR evaluation experiment with multiple evaluation tools and different metrics for two distinct datasets. We analyze the differences and commonalities in light of the presented use cases and suggest areas for future work.
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OCR评估工具和指标的调查
图书馆中数字化的数百万页历史文档越来越多地用于比关键字搜索对OCR质量有更具体要求的环境中。在大规模数字化的背景下,如何全面、高效、可靠地评估OCR结果的质量,而地面真相只能为非常小的数字产生?由于规范的差异,来自OCR评估工具的结果可能返回不同的结果,并且由于实现的差异,即使是常用的错误率通常也不能直接比较。如果没有考虑布局分析的准确性,OCR评估指标和抽样方法也是不够的,因为对于自然语言处理或数字人文等高级用例,准确的布局分析和阅读顺序检测至关重要。我们概述了OCR评估指标和工具,描述了OCR结果的两个高级用例,并对两个不同的数据集使用多个评估工具和不同的指标进行了OCR评估实验。我们根据所呈现的用例分析差异和共性,并建议未来工作的领域。
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