Contact Project Developer Ashish D. Tiwari []
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Java Image Processing BE-Engineering(CO/IT) ME-Engineering(CO/IT) BCS MCS BCA MCA MCM AIMS BSC Computer/IT MSC Computer/IT Diploma (CO/IT) IEEE-2016

Postprocessing of Compressed Images via Sequential Denoising

Postprocessing of Compressed Images via Sequential Denoising


In this paper, we propose a novel postprocessing technique for compression-artifact reduction. Our approach is based on posing this task as an inverse problem, with a regularization that leverages on existing state-of-the-art image denoising algorithms. We rely on the recently proposed Plugand- Play Prior framework, suggesting the solution of general inverse problems via alternating direction method of multipliers, leading to a sequence of Gaussian denoising steps. A key feature in our scheme is a linearization of the compression-decompression process, so as to get a formulation that can be optimized. In addition, we supply a thorough analysis of this linear approximation for several basic compression procedures. The proposed method is suitable for diverse compression techniques that rely on transform coding. In particular, we demonstrate impressive gains in image quality for several leading compression methods—JPEG, JPEG2000, and HEVC 


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