PERFORMANCE OF THE FREQUENCY-RESPONSE-SHAPED LMS ALGORITHM IN IMPULSIVE NOISE

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IEEE

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info:eu-repo/semantics/closedAccess

Abstract

The performance of the Frequency-Response-Shaped Least Mean Square (FRS-LMS) adaptive algorithm in estimating a sinusoidal signal in impulsive and correlated noise is investigated. The algorithm does not require a priori knowledge about the nominal Gaussian process and is able to adapt to changes in the environment. The performance of the FRS-LMS is compared to that of the Leaky-LMS algorithms in terms of Mean Square Error (MSE) and convergence speed. The results indicate that while the FRS-LMS and the Leaky LMS algorithms perform similarly in AWGN, the FRS-LMS provides superior performance in impulsive and correlated noise environments. The performance gain is due to the frequency shaping and outlier reduction properties of the algorithm.

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IEEE International Conference on Signal Processing and Communications -- NOV 24-27, 2007 -- Dubai, U ARAB EMIRATES

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FRS-LMS, Leaky-LMS, correlated noise, impulsive noise

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Icspc: 2007 Ieee International Conference on Signal Processing and Communications, Vols 1-3, Proceedings

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