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Improved algorithm for image TV regularization restoration model based on texture and contrast compensation

机译:基于纹理和对比度补偿的图像电视正则化恢复模型的改进算法

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Adopting discrepancy principle as iteration stopping criterion, Bregman iterative algorithm for image total variation (TV) regularization restoration model has attracted vast interests in the recent years. To a certain degree, Bregman iterative algorithm overcomes the shortcomings of TV regularization model: prone to reduce image contrast and prone to excessively smooth texture. However, some texture and contrast of image to be restored still exist in ultimate residual image. Based on analysis of nonlocal means (NLM) algorithm which is guided by a reference image, this article presents an improved algorithm, which extracts some texture and contrast from the residual image and then compensates them to the restored image of Bregman iterative algorithm. This improved algorithm can overcome the shortcomings of TV regularization model further. Numerical experiments show that the improved algorithm based on texture and contrast compensation can increase the quality of restored image.
机译:Bregman迭代算法以差异原理作为迭代停止准则,用于图像总变化量(TV)正则化恢复模型,近年来引起了广泛的关注。 Bregman迭代算法在一定程度上克服了电视正则化模型的缺点:容易降低图像对比度,容易产生过分光滑的纹理。但是,最终残留图像中仍然存在一些要还原图像的纹理和对比度。在参考图像指导下的非局部均值(NLM)算法分析的基础上,提出了一种改进的算法,该算法从残差图像中提取一些纹理和对比度,然后将其补偿为Bregman迭代算法的复原图像。该改进算法可以进一步克服电视正则化模型的不足。数值实验表明,基于纹理和对比度补偿的改进算法可以提高复原图像的质量。

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