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Dynamic Iterative Pursuit

For compressive sensing of dynamic sparse signals, we develop an iterative pursuit algorithm. A dynamic sparse signal process is characterized by varying sparsity patterns over time/space. For such signals, the developed algorithm is able to incorporate sequential predictions, thereby providing better compressive sensing recovery performance, but not at the cost of high complexity. Through experimental evaluations, we observe that the new algorithm exhibits a graceful degradation at deteriorating signal conditions while capable of yielding substantial performance gains as conditions improve.

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Co-authorshipCo-authorshipCo-authorshipAuthorshipAuthorshipAuthorshipTopic signalTopic signalWDynamic Iterative Pursuitpreprint / 2012ADave ZachariahResearcherASaikat ChatterjeeResearcherAMagnus JanssonResearcherTmath.ST3384 worksTStatistics Theory3281 works
PaperSignal 105 links

Dynamic Iterative Pursuit

preprint / 2012

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