Dynamic Selective Edge-Based Integer/Fractional-Order Partial Differential Equation for Degraded Document Image Binarization

U. Nnolim
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引用次数: 6

Abstract

Conventional thresholding algorithms have had limited success with degraded document images. Recently, partial differential equations (PDEs) have been applied with good results. However, these are usually tailored to handle relatively few specific distortions. In this study, we combine an edge detection term with a linear binarization source term in a PDE formulation. Additionally, a new proposed diffusivity function further amplifies desired edges. It also suppresses undesired edges that comprise bleed-through effects. Furthermore, we develop the fractional variant of the proposed scheme, which further improves results and provides more flexibility. Moreover, nonlinear color spaces are utilized to improve binarization results for images with color distortion. The proposed scheme removes document image degradation such as bleed-through, stains, smudges, etc., and also restores faded text in the images. Experimental subjective and objective results show consistently superior performance of the proposed approach compared to the state-of-the-art PDE-based models.
基于动态选择边缘的退化文档图像二值化整数/分数阶偏微分方程
传统的阈值算法在处理退化的文档图像时效果有限。近年来,偏微分方程(PDEs)的应用取得了良好的效果。然而,这些通常是量身定制的,以处理相对较少的特定扭曲。在本研究中,我们将边缘检测项与PDE公式中的线性二值化源项结合起来。此外,一个新的提出的扩散函数进一步放大所需的边缘。它还抑制了不希望的边缘,包括渗血效果。此外,我们开发了该方案的分数变体,进一步提高了结果并提供了更大的灵活性。此外,利用非线性色彩空间改善了具有色彩失真的图像的二值化效果。提出的方案消除了文档图像的退化,如透渗、污渍、污迹等,并恢复了图像中褪色的文本。实验的主观和客观结果表明,与最先进的基于pde的模型相比,所提出的方法具有一致的优越性能。
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