KPTI: Katib's Pashto Text Imagebase and Deep Learning Benchmark

Riaz Ahmad, Muhammad Zeshan Afzal, Sheikh Faisal Rashid, M. Liwicki, T. Breuel, A. Dengel
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引用次数: 24

Abstract

This paper presents the first Pashto text image database for scientific research and thereby the first dataset with complete handwritten and printed text line images which ultimately covers all alphabets of Arabic and Persian languages. Language like Pashto, written in a complex way by calligraphers, still requires a mature Optical Character Recognition (OCR), system. Although 50 million people use this language both for oral and written communication, there is no significant effort which is devoted to the recognition of Pashto Script. A real dataset of 17,015 images having Pashto text lines is introduced. The images are acquired via scanning from hand scribed Pashto books. Further, in this work, we evaluated the performance of deep learning based models like Bidirectional and Multi-Dimensional Long Short Term Memory (BLSTM and MDLSTM) networks for Pashto texts and provide a baseline character error rate of 9.22%.
KPTI: Katib的普什图语文本图像库和深度学习基准
本文提出了第一个用于科学研究的普什图语文本图像数据库,从而成为第一个完整的手写和印刷文本行图像数据集,最终涵盖了阿拉伯语和波斯语的所有字母。像普什图语这样由书法家以复杂的方式书写的语言,仍然需要一个成熟的光学字符识别(OCR)系统。尽管有5000万人使用这种语言进行口头和书面交流,但在承认普什图语方面并没有做出重大努力。介绍了一个真实的数据集,其中包含17015张具有普什图语文本行的图像。这些图像是通过扫描从手写的普什图书中获得的。此外,在这项工作中,我们评估了基于深度学习的模型,如双向和多维长短期记忆(BLSTM和MDLSTM)网络对普什图语文本的性能,并提供了9.22%的基线字符错误率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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