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A multi-frame super-resolution using diffusion registration and a nonlocal variational image restoration

机译:使用扩散配准和非局部变化图像恢复的多帧超分辨率

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In this paper, we present a new approach of multi-frame super-resolution (SR). The SR techniques strongly depend on the availability of accurate motion estimation. When the estimation of motion is not well established, as usually happens for non-parametric motion, annoying artifacts appear in the super-resolved image. Since SR problems suffer from the motion and blur estimations, new techniques are considered to improve the registration and restoration steps. The proposed method consists of a non-parametric image registration based on diffusion regularization and a nonlocal Laplace regularizer combined with a bilateral filter (BTV) in the reconstruction step to remove noise and motion outliers. The diffusion registration is employed to handle the small deformation between the unregistered images, while the combination of nonlocal Laplace and BTV is used to increase the robustness of the restoration step with respect to the blurring effect and to the noise. We also prove the existence of a solution to the well posed registration problem. Simulation results using different images show the effectiveness and robustness of our algorithm against noise and outliers compared to other existing methods. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本文中,我们提出了一种新的多帧超分辨率(SR)方法。 SR技术在很大程度上取决于精确运动估计的可用性。当没有很好地确定运动的估计时(如非参数运动通常发生的那样),在超分辨图像中会出现烦人的伪像。由于SR问题受运动和模糊估计的影响,因此考虑使用新技术来改进配准和恢复步骤。所提出的方法包括基于扩散正则化的非参数图像配准和在重建步骤中结合双边滤波器(BTV)的非局部拉普拉斯正则化器,以去除噪声和运动异常值。扩散配准用于处理未配准图像之间的小变形,而非局部拉普拉斯和BTV的组合用于提高恢复步骤相对于模糊效果和噪声的鲁棒性。我们还证明了存在的注册问题解决方案的存在。使用不同图像的仿真结果表明,与其他现有方法相比,我们的算法对噪声和离群值的有效性和鲁棒性。 (C)2016 Elsevier Ltd.保留所有权利。

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