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ICDAR2017 Competition on Recognition of Early Indian Printed Documents - REID2017

机译:ICDAR2017竞争识别早期印度印刷文件 - REID2017

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This paper presents an objective comparative evaluation of page analysis and recognition methods for historical documents with text mainly in Bengali language and script. It describes the competition (modus operandi, dataset and evaluation methodology) held in the context of ICDAR2017, presenting the results of the evaluation of seven methods - three sub-mitted and four variations of open source state-of-the-art systems. The focus is on optical character recognition (OCR) performance. Different evaluation metrics were used to gain an insight into the algorithms, including new character accuracy metrics to better reflect the difficult circumstances presented by the documents. The results indicate that deep learning approaches are the most promising, but there is still a considerable need to develop robust methods that deal with challenges of historic material of this nature.
机译:本文介绍了主要在孟加拉语言和脚本中的历史文档的页面分析和识别方法的客观比较评估。它描述了在ICDAR2017的背景下举行的竞争(Modus Operandi,DataSet和评估方法),展示了七种方法的评估结果 - 三个次源和四个开源最先进系统的四种变体。重点是光学字符识别(OCR)性能。使用不同的评估指标用于深入了解算法,包括新的角色精度度量,以更好地反映文档呈现的困难情况。结果表明,深度学习方法是最有希望的,但仍有相当多的需要制定应对这一性质历史物质挑战的强大方法。

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