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Learning Structured Low-Rank Representations for Image Classification

2013·283 Zitationen
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283

Zitationen

3

Autoren

2013

Jahr

Abstract

An approach to learn a structured low-rank representation for image classification is presented. We use a supervised learning method to construct a discriminative and reconstructive dictionary. By introducing an ideal regularization term, we perform low-rank matrix recovery for contaminated training data from all categories simultaneously without losing structural information. A discriminative low-rank representation for images with respect to the constructed dictionary is obtained. With semantic structure information and strong identification capability, this representation is good for classification tasks even using a simple linear multi-classifier. Experimental results demonstrate the effectiveness of our approach.

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Institutionen

Themen

Sparse and Compressive Sensing TechniquesImage Processing Techniques and ApplicationsMedical Image Segmentation Techniques
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