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Directionally adaptive single frame image super resolution

机译:定向自适应单帧图像超分辨率

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摘要

The single image super resolution recovers missing high resolution details so as to reconstruct a high resolution image from a single low resolution image. This paper proposes a novel directionally adaptive, learning-based, single image super resolution method using multiple direction wavelet transform, called directionlets. Here, critically sampled directionlets are used to capture directional features effectively and to extract edge information along different directions from a set of available high resolution images. This information is used as the training set for super resolving a low resolution input image. The directionlet coefficients at finer scales of its high resolution image are learned locally from this training set and the inverse directionlet transform recovers the super resolved high resolution image. The simulation results showed that the proposed directionlet approach outperforms standard interpolation techniques like cubic spline interpolation as well as standard wavelet-based learning, both visually and in terms of the mean squared error (MSE) values. The SNR scores for cubic spline interpolation, wavelet and directionlet method are 13.6998 dB, 23.8324 dB and 30.8654 dB respectively for Barbara.
机译:单个图像超分辨率可恢复丢失的高分辨率细节,以便从单个低分辨率图像重建高分辨率图像。本文提出了一种新颖的基于方向自适应,基于学习的,使用多方向小波变换的单图像超分辨率方法,称为方向波。在这里,关键采样的Directionlet用于有效捕获方向特征,并从一组可用的高分辨率图像中提取沿不同方向的边缘信息。此信息用作超级解析低分辨率输入图像的训练集。从该训练集中局部学习高分辨率图像的较小尺度上的方向性系数,并且逆方向性变换恢复超分辨的高分辨率图像。仿真结果表明,无论是在视觉上还是在均方误差(MSE)值方面,所提出的方向波方法均优于标准插值技术,如三次样条插值以及基于标准小波的学习。三次样条插值,小波和方向波方法的SNR分数对于Barbara分别为13.6998 dB,23.8324 dB和30.8654 dB。

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