On Blind MIMO System Identification Based on Second-Order Cyclic Statistics

This letter introduces a new frequency domain approach for either MIMO System Identification or Source Separation of convolutive mixtures in cyclostationary context. We apply the joint diagonalization algorithm to a set of cyclic spectral density matrices of the measurements to identify the mixing s...

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Veröffentlicht in:Journal of electrical and computer engineering 2008-01, Vol.2008 (2008), p.1-5
Hauptverfasser: Adib, A., Guillet, F., El Badaoui, M., Sabri, K., Aboutajdine, D.
Format: Artikel
Sprache:eng
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Zusammenfassung:This letter introduces a new frequency domain approach for either MIMO System Identification or Source Separation of convolutive mixtures in cyclostationary context. We apply the joint diagonalization algorithm to a set of cyclic spectral density matrices of the measurements to identify the mixing system at each frequency up to permutation and phase ambiguity matrices. An efficient algorithm to overcome the frequency dependent permutations and to recover the phase, even for non-minimum-phase channels, based on cyclostationarity is also presented. The new approach exploits the fact that each input has a different and specific cyclicfrequency. A comparison with an existing MIMO method is proposed.
ISSN:2090-0147
1687-6911
2090-0155
1687-692X
DOI:10.1155/2008/539139