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Optimized Projections for Compressed Sensing

IEEE Transactions on Signal Processing · 2007 · Vol. 55(12) · pp. 5695–5702
Michael Elad

Abstract

Compressed sensing (CS) offers a joint compression and sensing processes, based on the existence of a sparse representation of the treated signal and a set of projected measurements. Work on CS thus far typically assumes that the projections are drawn at random. In this paper, we consider the optimization of these projections. Since such a direct optimization is prohibitive, we target an average measure of the mutual coherence of the effective dictionary, and demonstrate that this leads to better CS reconstruction performance. Both the basis pursuit (BP) and the orthogonal matching pursuit (OMP) are shown to benefit from the newly designed projections, with a reduction of the error rate by a factor of 10 and beyond.

Sparse and Compressive Sensing TechniquesMicrowave Imaging and Scattering AnalysisBlind Source Separation TechniquesMatching pursuitCompressed sensingBasis pursuitMutual coherenceCoherence (philosophical gambling strategy)Computer scienceSparse approximationSignal reconstructionMeasure (data warehouse)Algorithm
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References
Greed is Good: Algorithmic Results for Sparse Approximation
IEEE Transactions on Information Theory · 2004 · 3,667 citations
Signal Recovery From Random Measurements Via Orthogonal Matching Pursuit
IEEE Transactions on Information Theory · 2007 · 9,592 citations
Near-Optimal Signal Recovery From Random Projections: Universal Encoding Strategies?
IEEE Transactions on Information Theory · 2006 · 6,865 citations
Matching pursuits with time-frequency dictionaries
IEEE Transactions on Signal Processing · 1993 · 9,047 citations
Compressed sensing
IEEE Transactions on Information Theory · 2006 · 22,859 citations
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