Literature DB >> 17688213

Image denoising by sparse 3-D transform-domain collaborative filtering.

Kostadin Dabov1, Alessandro Foi, Vladimir Katkovnik, Karen Egiazarian.   

Abstract

We propose a novel image denoising strategy based on an enhanced sparse representation in transform domain. The enhancement of the sparsity is achieved by grouping similar 2-D image fragments (e.g., blocks) into 3-D data arrays which we call "groups." Collaborative filtering is a special procedure developed to deal with these 3-D groups. We realize it using the three successive steps: 3-D transformation of a group, shrinkage of the transform spectrum, and inverse 3-D transformation. The result is a 3-D estimate that consists of the jointly filtered grouped image blocks. By attenuating the noise, the collaborative filtering reveals even the finest details shared by grouped blocks and, at the same time, it preserves the essential unique features of each individual block. The filtered blocks are then returned to their original positions. Because these blocks are overlapping, for each pixel, we obtain many different estimates which need to be combined. Aggregation is a particular averaging procedure which is exploited to take advantage of this redundancy. A significant improvement is obtained by a specially developed collaborative Wiener filtering. An algorithm based on this novel denoising strategy and its efficient implementation are presented in full detail; an extension to color-image denoising is also developed. The experimental results demonstrate that this computationally scalable algorithm achieves state-of-the-art denoising performance in terms of both peak signal-to-noise ratio and subjective visual quality.

Mesh:

Year:  2007        PMID: 17688213     DOI: 10.1109/tip.2007.901238

Source DB:  PubMed          Journal:  IEEE Trans Image Process        ISSN: 1057-7149            Impact factor:   10.856


  265 in total

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6.  The non-local bootstrap--estimation of uncertainty in diffusion MRI.

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Review 9.  Machine learning in quantitative PET: A review of attenuation correction and low-count image reconstruction methods.

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10.  Segmentation Based Sparse Reconstruction of Optical Coherence Tomography Images.

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Journal:  IEEE Trans Med Imaging       Date:  2016-09-20       Impact factor: 10.048

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