DocumentCode :
3331829
Title :
Canonical coordinate geometry of precoder and equalizer designs for multichannel communication
Author :
Fan, Zhifei ; Scharf, Louis ; Davidson, Timothy N.
Author_Institution :
Dept. of Electr. & Comput. Eng., Colorado State Univ., Fort Collins, CO, USA
fYear :
2004
fDate :
11-14 July 2004
Firstpage :
401
Lastpage :
405
Abstract :
For vector communication over a matrix channel, precoders and equalizers are now known for designs that minimize MSE, maximize SNR, minimize BER, or maximize information rate, under a power constraint. Some of these designs may be made to be zero-ISI. For reduced-rank signal processing, designs are known for estimation at minimum MSE and maximum information rate. These signal processing designs show that reduced-rank estimation must be done in a system of canonical coordinates. What connection is there, then, between reduced-rank signal processing and precoder/equalizer design under a power constraint? In this paper we show that all known designs for precoder/equalizer design are, in fact, decompositions of a virtual two-channel problem into a system of canonical coordinates, wherein whitened variables in the canonical message channel are correlated only pairwise with whitened variables in the canonical measurement channel. This finding clarifies the geometry of known precoder/equalizer designs and illustrates that these designs decompose the two-channel communication problem into the Shannon channel [L. L. Scharf et al. (2000)], where its geometry is revealed.
Keywords :
adjacent channel interference; channel coding; constraint theory; correlation theory; equalisers; matrix algebra; signal processing; Shannon channel; canonical coordinate; canonical measurement channel; channel matrix; correlated message channel; information rate; multichannel communication; power constraint; precoder-equalizer geometry; reduced-rank signal processing; vector communication; virtual two-channel problem; whitened variable; zero-ISI; Bit error rate; Covariance matrix; Equalizers; Finite impulse response filter; Geometry; Information rates; Process design; Signal design; Signal processing; Symmetric matrices;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Advances in Wireless Communications, 2004 IEEE 5th Workshop on
Print_ISBN :
0-7803-8337-0
Type :
conf
DOI :
10.1109/SPAWC.2004.1439273
Filename :
1439273
Link To Document :
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