Publication | Closed Access
Source separation using higher order moments
565
Citations
11
References
2003
Year
Source SeparationArray ProcessingStatistical Signal ProcessingEngineeringData ScienceHigher Order MomentsSource SignaturesMultidimensional Signal ProcessingArray DataSignal ProcessingInverse ProblemsSimple Algebraic MethodApproximation TheoryStatisticsSignal Separation
The author presents a simple algebraic method for the extraction of independent components in multidimensional data. Since statistical independence is a much stronger property than uncorrelation, it is possible, using higher-order moments, to identify source signatures in array data without any a priori model for propagation or reception, that is, without directional vector parameterization, provided that the emitting sources are independent with different probability distributions. The author proposes such a blind identification procedure. Source signatures are directly identified as covariance eigenvectors after data have been orthonormalized and nonlinearly weighted. Potential applications to array processing are illustrated by a simulation consisting of a simultaneous range-bearing estimation with a passive array.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
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