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Matching pursuit and atomic signal models based on recursive filter banks
1999
IEEE Transactions on Signal Processing
The matching pursuit algorithm can be used to derive signal decompositions in terms of the elements of a dictionary of time-frequency atoms. Using a structured overcomplete dictionary yields a signal model that is both parametric and signal adaptive. In this paper, we apply matching pursuit to the derivation of signal expansions based on damped sinusoids. It is shown that expansions in terms of complex damped sinusoids can be efficiently derived using simple recursive filter banks. We discuss a
doi:10.1109/78.771038
fatcat:7fikkn6hkrf4zlaya55pnanooi