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Efficient L~1-based nonlocal total variational model of Retinex for image restoration

机译:高效的基于L〜1的Retinex非局部总变分模型进行图像恢复

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摘要

Characteristics of an image, such as smoothness, edge, and texture, can be better preserved using the nonlocal differential operator in image processing. We establish an L-1-based nonlocal total variational (NLTVL1) model based on Retinex theory that can be solved by a fast computational algorithm via the alternating direction method of multipliers. Experiential results demonstrate that our NLTVL(1)method has a good performance on enhancing contrast, eliminating the influence of nonuniform illumination, and suppressing noise. Furthermore, compared with previous works, including traditional Retinex methods and variational Retinex methods, our proposed approach achieves superior performance on edge and texture preservation and needs fewer iterations on recovering the reflectance image, which is illustrated by examples and statistics. (C) 2018 SPIE and IS&T
机译:在图像处理中使用非局部微分算子可以更好地保留图像的特征,例如平滑度,边缘和纹理。我们基于Retinex理论建立了一个基于L-1的非局部总变分(NLTVL1)模型,该模型可以通过乘数的交替方向方法由快速计算算法求解。实验结果表明,我们的NLTVL(1)方法在增强对比度,消除不均匀照明的影响以及抑制噪声方面具有良好的性能。此外,与以前的工作(包括传统的Retinex方法和变型Retinex方法)相比,我们提出的方法在边缘和纹理保留方面具有优越的性能,并且在恢复反射率图像方面需要更少的迭代,这通过示例和统计数据进行了说明。 (C)2018 SPIE和IS&T

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