Publication | Closed Access
Blind-Source Separation Based on Decorrelation and Nonstationarity
19
Citations
32
References
2007
Year
Source SeparationEngineeringInstantaneous MixturesData ScienceTime-delayed DecorrelationGradient AlgorithmBlind-source SeparationNoise ReductionSpeech ProcessingInverse ProblemsSpeech SeparationMulti-channel ProcessingLocalizationSignal ProcessingSignal Separation
In this paper, discrete-time blind-source separation (BSS) of instantaneous mixtures is studied. Decorrelation-based sufficient criteria for BSS of stationary and nonstationary sources are derived based on nonstationarity and nonwhiteness. A gradient algorithm is proposed based on these criteria. A batch-data algorithm and an on-line algorithm are developed based on the corollaries of the BSS criteria. These algorithms are especially useful for the separation of nonstationary sources. They are robust to additive white noises if the time-delayed decorrelation and the nonstationarity of the sources are considered simultaneously in the algorithms. Experiment results show the effectiveness and performance of the proposed algorithms
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