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Sparsity-aware distributed adaptive filtering with robustness against impulsive noise and low SNR

  • Rafael Moura do Carmo,
  • Guilherme de R. Ferreira,
  • Pedro Henrique Campelo,
  • Leonardo C. Resende,
  • Leonardo de Lima,
  • Felipe da Rocha Henriques,
  • Diego Barreto Haddad

摘要

Distributed inference tasks could be performed by adaptive filtering techniques. Several enhancement strategies for such techniques were proposed, such as sparsity-aware algorithms, coefficients reuse and correntropy-based cost functions in the case of impulsive noise. In this paper, a general framework based on Lagrange multipliers for the derivation of sophisticated algorithms that incorporate most of these improvements is described. A new general identification algorithm is derived as an example of the proposed approach and its performance is assessed in a distributed setting.