Widely Linear Complex-Valued Least Mean M-Estimate Algorithms: Design and Performance Analysis

To utilize the full second-order statistical information of the complex-valued signal, a widely linear complex-valued LMM (WL-CLMM) algorithm is proposed by using different M-estimate functions. The proposed WL-CLMM algorithm can process both circular and noncircular complex-valued signals in impuls...

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Vydáno v:Circuits, systems, and signal processing Ročník 41; číslo 10; s. 5785 - 5806
Hlavní autoři: Li, Lei, Pu, Yi-Fei
Médium: Journal Article
Jazyk:angličtina
Vydáno: New York Springer US 01.10.2022
Springer Nature B.V
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ISSN:0278-081X, 1531-5878
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Shrnutí:To utilize the full second-order statistical information of the complex-valued signal, a widely linear complex-valued LMM (WL-CLMM) algorithm is proposed by using different M-estimate functions. The proposed WL-CLMM algorithm can process both circular and noncircular complex-valued signals in impulsive noise environments. Moreover, a novel adaptive threshold adjustment method for the M-estimate function is designed according to the probability density function of the complex-valued error signal. In addition, to decrease the sensitivity of the input signal to the performance of the algorithm, the normalized version of WL-CLMM (WL-CNLMM) has been developed. Then, we carry out the mean behavior and mean square behavior analysis of the proposed algorithms. Simulation results show that the proposed algorithms outperform some existing complex-valued algorithms and the theoretical results are well matched.
Bibliografie:ObjectType-Article-1
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ISSN:0278-081X
1531-5878
DOI:10.1007/s00034-022-02053-z