Publication | Closed Access
Robust Time-Frequency Analysis Based on the L-Estimation and Compressive Sensing
84
Citations
15
References
2013
Year
Sparse RepresentationEngineeringRobust ModelingL-estimate TransformsImpulse NoiseCompressive SensingSpectrum EstimationSignal ReconstructionAtomic DecompositionInverse ProblemsRobust Time-frequency AnalysisTimefrequency AnalysisSparse ImagingSignal Processing
The L-estimate transforms and time-frequency representations are presented within the framework of compressive sensing. The goal is to recover signal or local auto-correlation function samples corrupted by impulse noise. The signal is assumed to be sparse in a transform domain or in a joint-variable representation. Unlike the standard L-statistics approach, which suffers from degraded spectral characteristics due to the omission of samples, the compressive sensing in combination with the L-estimate permits signal reconstruction that closely approximates the noise free signal representation.
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