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Two variants of the IIR spline adaptive filter for combating impulsive noise
by
Liu, Xueliang
, Chao, Peng
, Tang, Xiao
, Liu, Chang
in
Adaptive algorithms
/ Adaptive filters
/ Adaptive systems
/ Algorithms
/ Computation
/ Computer simulation
/ Convergence
/ Noise
/ Nonlinear systems
/ Robustness
/ Weight
2019
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Two variants of the IIR spline adaptive filter for combating impulsive noise
by
Liu, Xueliang
, Chao, Peng
, Tang, Xiao
, Liu, Chang
in
Adaptive algorithms
/ Adaptive filters
/ Adaptive systems
/ Algorithms
/ Computation
/ Computer simulation
/ Convergence
/ Noise
/ Nonlinear systems
/ Robustness
/ Weight
2019
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Do you wish to request the book?
Two variants of the IIR spline adaptive filter for combating impulsive noise
by
Liu, Xueliang
, Chao, Peng
, Tang, Xiao
, Liu, Chang
in
Adaptive algorithms
/ Adaptive filters
/ Adaptive systems
/ Algorithms
/ Computation
/ Computer simulation
/ Convergence
/ Noise
/ Nonlinear systems
/ Robustness
/ Weight
2019
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Two variants of the IIR spline adaptive filter for combating impulsive noise
Journal Article
Two variants of the IIR spline adaptive filter for combating impulsive noise
2019
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Overview
It has been pointed out that the nonlinear spline adaptive filter (SAF) is appealing for modeling nonlinear systems with good performance and low computational burden. This paper proposes a normalized least M-estimate adaptive filtering algorithm based on infinite impulse respomse (IIR) spline adaptive filter (IIR-SAF-NLMM). By using a robust M-estimator as the cost function, the IIR-SAF-NLMM algorithm obtains robustness against non-Gaussian impulsive noise. In order to further improve the convergence rate, the set-membership framework is incorporated into the IIR-SAF-NLMM, leading to a new set-membership IIR-SAF-NLMM algorithm (IIR-SAF-SMNLMM). The proposed IIR-SAF-SMNLMM inherits the benefits of the set-membership framework and least-M estimate scheme and acquires the faster convergence rate and effective suppression of impulsive noise on the filter weight and control point adaptation. In addition, the computational burdens and convergence properties of the proposed algorithms are analyzed. Simulation results in the identification of the IIR-SAF nonlinear model show that the proposed algorithms offer the effectiveness in the absence of non-Gaussian impulsive noise and robustness in non-Gaussian impulsive noise environments.
Publisher
Springer Nature B.V
Subject
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