Shape from Shading Based on Lax-Friedrichs Fast Sweeping and Regularization Techniques With Applications to Document Image Restoration

Li Zhang, A. Yip, C. Tan
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引用次数: 10

Abstract

In this paper, we describe a 2-pass iterative scheme to solve the general partial differential equation (PDE) related to the Shape-from-Shading (SFS) problem under both distant and close point light sources. In particular, we discuss its applications in restoring warped document images that often appear in the daily snapshots. The proposed method consists of two steps. First the image irradiance equation is formulated as a static Hamilton-Jacobi (HJ) equation and solved using a fast sweeping strategy with Lax-Friedrichs Hamiltonian. However, abrupt errors may arise when applying to real document images due to noises in the approximated shading image. To reduce the noise sensitivity, a minimization method thus follows to smooth out the abrupt ridges in the initial result and produce a better reconstruction. Experiments on synthetic surfaces show promising results comparing to the ground truth data. Moreover, a general framework is developed, which demonstrates that the SFS method can help to remove both geometric and photometric distortions in warped document images for better visual appearance and higher recognition rate.
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基于拉克斯-弗里德里希快速扫描和正则化技术的阴影形状及其在文档图像恢复中的应用
在本文中,我们描述了一种2次迭代方案来解决与远距离和近距离点光源下形状-阴影(SFS)问题相关的一般偏微分方程(PDE)。特别地,我们讨论了它在恢复日常快照中经常出现的扭曲文档图像中的应用。该方法分为两个步骤。首先将图像辐照度方程表示为静态哈密顿-雅可比(HJ)方程,并采用拉克斯-弗里德里希斯哈密顿量的快速扫描策略求解。然而,在应用于实际文档图像时,由于逼近的阴影图像中存在噪声,可能会产生突发性误差。为了降低噪声敏感性,采用最小化方法来平滑初始结果中的突变脊,从而获得更好的重建结果。与地面真值数据相比,在合成表面上的实验结果令人满意。此外,还开发了一个通用框架,证明了SFS方法可以帮助去除扭曲文档图像中的几何和光度畸变,从而获得更好的视觉外观和更高的识别率。
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