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Papers/Rethinking the CSC Model for Natural Images

Rethinking the CSC Model for Natural Images

Dror Simon, Michael Elad

2019-09-12NeurIPS 2019 12DenoisingColor Image Denoising
PaperPDFCode(official)

Abstract

Sparse representation with respect to an overcomplete dictionary is often used when regularizing inverse problems in signal and image processing. In recent years, the Convolutional Sparse Coding (CSC) model, in which the dictionary consists of shift-invariant filters, has gained renewed interest. While this model has been successfully used in some image processing problems, it still falls behind traditional patch-based methods on simple tasks such as denoising. In this work we provide new insights regarding the CSC model and its capability to represent natural images, and suggest a Bayesian connection between this model and its patch-based ancestor. Armed with these observations, we suggest a novel feed-forward network that follows an MMSE approximation process to the CSC model, using strided convolutions. The performance of this supervised architecture is shown to be on par with state of the art methods while using much fewer parameters.

Results

TaskDatasetMetricValueModel
DenoisingBSD68 sigma15PSNR33.83CSCNet
DenoisingBSD68 sigma75PSNR26.32CSCNet
DenoisingBSD68 sigma25PSNR31.18CSCNet
DenoisingCBSD68 sigma50PSNR28CSCNet
3D ArchitectureBSD68 sigma15PSNR33.83CSCNet
3D ArchitectureBSD68 sigma75PSNR26.32CSCNet
3D ArchitectureBSD68 sigma25PSNR31.18CSCNet
3D ArchitectureCBSD68 sigma50PSNR28CSCNet

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