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A novel boundary growing approach for accurate skew estimation of binary document images

机译:一种新的边界增长方法,用于精确估计二进制文档图像的偏斜

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摘要

Skew angle estimation is an important component of optical character recognition (OCR) systems and document analysis systems (DAS). In this paper, a novel and an efficient method to estimate the skew angle of a scanned document image is proposed. The proposed method has two stages. In first stage, using boundary-growing approach, text lines containing characters of the scanned document image are extracted. From each text line, coordinates of the positions of the characters are obtained. In second stage, the obtained coordinates are fed to linear regression analysis (LRA) for the purpose of computation of skew angle. Several experiments have been conducted on various types of documents such as documents containing different language texts, documents with different fonts and documents with noise to reveal the robustness of the proposed method. A comparative study with the well-known methods is presented to show that the proposed method is superior in terms of accuracy and computational efficiency.
机译:偏斜角估计是光学字符识别(OCR)系统和文档分析系统(DAS)的重要组成部分。本文提出了一种新颖有效的估计扫描文档图像偏斜角的方法。所提出的方法具有两个阶段。在第一阶段,使用边界增长方法,提取包含扫描文档图像字符的文本行。从每个文本行中,获得字符位置的坐标。在第二阶段,为了计算偏斜角,将获得的坐标输入线性回归分析(LRA)。已经对各种类型的文档进行了一些实验,例如包含不同语言文本的文档,具有不同字体的文档和具有噪声的文档,以揭示所提出方法的鲁棒性。通过与著名方法的比较研究表明,该方法在准确性和计算效率方面都比较出色。

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