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Fast and flexible convolutional sparse coding

2015·242 ZitationenOpen Access
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242

Zitationen

3

Autoren

2015

Jahr

Abstract

Convolutional sparse coding (CSC) has become an increasingly important tool in machine learning and computer vision. Image features can be learned and subsequently used for classification and reconstruction tasks. As opposed to patch-based methods, convolutional sparse coding operates on whole images, thereby seamlessly capturing the correlation between local neighborhoods. In this paper, we propose a new approach to solving CSC problems and show that our method converges significantly faster and also finds better solutions than the state of the art. In addition, the proposed method is the first efficient approach to allow for proper boundary conditions to be imposed and it also supports feature learning from incomplete data as well as general reconstruction problems.

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Autoren

Institutionen

Themen

Sparse and Compressive Sensing TechniquesMedical Image Segmentation TechniquesAdvanced Image and Video Retrieval Techniques
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