Super-Resolution of Text Images Using Edge-Directed Tangent Field

Jyotirmoy Banerjee, C. V. Jawahar
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引用次数: 36

Abstract

This paper presents an edge-directed super-resolution algorithm for document images without using any training set. This technique creates an image with smooth regions in both the foreground and the background, while allowing sharp discontinuities across and smoothness along the edges. Our method preserves sharp corners in text images by using the local edge direction, which is computed first by evaluating the gradient field and then taking its tangent. Super-resolution of document images is characterized by bimodality, smoothness along the edges as well as subsampling consistency. These characteristics are enforced in a Markov random field (MRF) framework by defining an appropriate energy function. In our method, subsampling of super-resolution image will return the original low-resolution one, proving the correctness of the method. The super-resolution image, is generated by iteratively reducing this energy function. Experimental results on a variety of input images, demonstrate the effectiveness of our method for document image super-resolution.
使用边缘定向切线场的文本图像超分辨率
提出了一种不使用任何训练集的文档图像边缘定向超分辨算法。这种技术可以在前景和背景中创建一个平滑区域的图像,同时允许明显的不连续性和平滑的边缘。我们的方法通过使用局部边缘方向来保留文本图像中的尖锐角,该方向首先通过计算梯度场然后取其切线来计算。文档图像的超分辨率具有双峰性、边缘平滑性和次采样一致性等特点。通过定义适当的能量函数,在马尔可夫随机场(MRF)框架中实现这些特征。在我们的方法中,超分辨率图像的子采样将返回原始的低分辨率图像,证明了该方法的正确性。通过对该能量函数进行迭代约简,生成超分辨率图像。在多种输入图像上的实验结果证明了该方法对文档图像超分辨率的有效性。
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