DocumentCode
302439
Title
Equalization on fast flat-fading channels based on signal-to-interference ratio optimization
Author
Boudreau, Daniel
Author_Institution
Commun. Res. Centre, Ind. Canada, Ottawa, Ont., Canada
Volume
2
fYear
1996
fDate
23-27 Jun 1996
Firstpage
1193
Abstract
An optimization criterion for inverse filtering (equalization) of signals transmitted over a Rayleigh flat-fading channel is presented. This criterion is based on the maximization of the ratio of the equalizer output power to the combined power of the intersymbol interference and the noise present at this output. A method to isolate and compute the power of a function of the joint interference signals is presented. This algorithm makes use of the signal innovations concept, in decorrelating a version of the received faded signal to produce the interference estimate. It does not require carrier phase recovery, as do conventional equalization algorithms, and it is relatively insensitive to a multiplicative process imposed on the transmitted signal. This fact allows the algorithm to be very effective in fast flat-fading or severe phase noise conditions. Simulations results are presented to show the performance of this approach
Keywords
Rayleigh channels; adaptive equalisers; fading; filtering theory; intersymbol interference; inverse problems; optimisation; Rayleigh flat-fading channel; adaptive equalizer; combined power; decorrelation; equalization algorithm; equalizer output power; fast flat-fading channels; interference estimate; intersymbol interference; inverse filtering; joint interference signals; multiplicative process; performance; phase noise conditions; received faded signal; signal innovations; signal-to-interference ratio optimization; simulations results; Adaptive filters; Equalizers; Fading; Filtering; Intersymbol interference; Nonlinear filters; Performance gain; Power generation; Signal processing; Signal to noise ratio;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications, 1996. ICC '96, Conference Record, Converging Technologies for Tomorrow's Applications. 1996 IEEE International Conference on
Conference_Location
Dallas, TX
Print_ISBN
0-7803-3250-4
Type
conf
DOI
10.1109/ICC.1996.541397
Filename
541397
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