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arxiv: 1508.04172 · v2 · submitted 2015-08-17 · 💻 cs.IT · math.IT

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Proportionate Adaptive Filtering for Block Sparse System Identification

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classification 💻 cs.IT math.IT
keywords pnlmsadaptivealgorithmsblock-sparsebs-pnlmsproposedbs-ipnlmsnlms
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In this paper, a new family of proportionate normalized least mean square (PNLMS) adaptive algorithms that improve the performance of identifying block-sparse systems is proposed. The main proposed algorithm, called block-sparse PNLMS (BS-PNLMS), is based on the optimization of a mixed l2,1 norm of the adaptive filter coefficients. It is demonstrated that both the NLMS and the traditional PNLMS are special cases of BS-PNLMS. Meanwhile, a block-sparse improved PNLMS (BS-IPNLMS) is also derived for both sparse and dispersive impulse responses. Simulation results demonstrate that the proposed BS-PNLMS and BS-IPNLMS algorithms outperformed the NLMS, PNLMS and IPNLMS algorithms with only a modest increase in computational complexity.

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