DocumentCode :
2306848
Title :
Adaptive Paraunitary Filter Methods For The Blind Equalization of Frequency Selective Multiple-Input Multiple-Output Channels
Author :
Oktem, Turgut M. ; Erdogan, Alper T.
Author_Institution :
EE Bolumu, Koc Univ., Istanbul
fYear :
2006
fDate :
17-19 April 2006
Firstpage :
1
Lastpage :
4
Abstract :
In this paper we introduce fast paraunitary matrix obtaining approaches to be used for the blind deconvolution of all blindly equalizable, frequency selective MIMO (multiple-input multiple-output) systems. The main purpose for offering these approaches is to extend various instantaneous blind source separation (BSS) approaches to handle the convolutive BSS case. It was aimed that the offered algorithms have fast convergence properties and low computational complexities so that they can be realized real-time in the communication systems having high sampling rates. These adaptive algorithms which were developed according to the gradient search on specific sets, were compared to the afore introduced alternating projections algorithm in terms of speed and computational complexity
Keywords :
MIMO systems; adaptive equalisers; adaptive filters; blind equalisers; blind source separation; computational complexity; deconvolution; gradient methods; matrix algebra; signal sampling; telecommunication channels; BSS; adaptive paraunitary filter; blind deconvolution; blind equalization; blind source separation; computational complexity; fast convergence property; frequency selective MIMO system; gradient search; multiple-input multiple-output channel; paraunitary matrix; sampling rate; Adaptive equalizers; Adaptive filters; Blind equalizers; Blind source separation; Computational complexity; Convergence; Deconvolution; Frequency; MIMO; Source separation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing and Communications Applications, 2006 IEEE 14th
Conference_Location :
Antalya
Print_ISBN :
1-4244-0238-7
Type :
conf
DOI :
10.1109/SIU.2006.1659870
Filename :
1659870
Link To Document :
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