Subband Adaptive Filter Exploiting Sparsity of System

نویسنده

  • Young-Seok Choi
چکیده

This paper presents a normalized subband adaptive filtering (NSAF) algorithm to cope with the sparsity condition of an underlying system in the context of compressive sensing. By regularizing a weighted l1-norm of the filter taps estimate onto the cost function of the NSAF and utilizing a subgradient analysis, the update recursion of the l1-norm constraint NSAF is derived. Considering two distinct weighted l1-norm regularization cases, two versions of the l1-norm constraint NSAF are presented. Simulation results clearly indicate the superior performance of the proposed l1-norm constraint NSAFs comparing with the classical NSAF. Keywords—Subband adaptive filtering, sparsity constraint, weighted l1-norm.

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تاریخ انتشار 2016