A Novel Log-WT Based Super-Resolution Algorithm

Jianping Qiao, Ju Liu
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引用次数: 3

Abstract

Most learning-based super-resolution algorithms neglect the illumination problem such as shadows and illumination direction changes. In this paper we propose a logarithmic-wavelet transform (Log-WT) based method to combine super-resolution and shadow removing into a single operation. First intrinsic, illumination invariant features of the image are extracted by exploiting logarithmic-wavelet transform. Then an initial estimation of high resolution image is obtained based on the assumption that small patches in low resolution space and patches in high resolution space share the similar local manifold structure. Finally the target high resolution image is reconstructed by applying the reconstruction constraints in pixel domain. Experimental results demonstrate that the proposed method simultaneously achieves singleimage super-resolution and image enhancement especially shadow removing.
一种新的基于Log-WT的超分辨率算法
大多数基于学习的超分辨算法忽略了阴影和光照方向变化等光照问题。本文提出了一种基于对数小波变换(Log-WT)的方法,将超分辨率和阴影去除结合到一个单一的操作中。首先利用对数-小波变换提取图像的内在、光照不变性特征;然后,假设低分辨率空间的小块与高分辨率空间的小块具有相似的局部流形结构,得到高分辨率图像的初始估计;最后利用像素域重构约束对目标高分辨率图像进行重构。实验结果表明,该方法可以同时实现单幅图像的超分辨率和图像的增强,特别是去影。
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