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Sparse Representations for Pattern Classification using Learned Dictionaries
[chapter]
2009
Research and Development in Intelligent Systems XXV
Sparse representations have been often used for inverse problems in signal and image processing. Furthermore, frameworks for signal classification using sparse and overcomplete representations have been developed. Data-dependent representations using learned dictionaries have been significant in applications such as feature extraction and denoising. In this paper, our goal is to perform pattern classification in a domain referred to as the data representation domain, where data from different
doi:10.1007/978-1-84882-171-2_3
dblp:conf/sgai/ThiagarajanRS08
fatcat:k4bees7o3zexdgortcij6b4lei