DocumentCode :
1737674
Title :
PCC: principal components combining for dense correlated multipath fading environments
Author :
Alouini, Mohamed-Slim ; Scaglione, Anna ; Giannakis, Georgios B.
Author_Institution :
Dept. of Electr. & Comput. Eng., Minnesota Univ., Minneapolis, MN, USA
Volume :
5
fYear :
2000
fDate :
2000
Firstpage :
2510
Abstract :
Spread spectrum transmissions and RAKE receivers are known to alleviate the effects of random fading. In the context of future wideband/ultra-wideband systems, both estimation accuracy and receiver complexity are adversely affected when the number of channel parameters increases. As an alternative to generalized selection combining schemes, this work introduces a new class of diversity schemes that trade off optimally diversity gain with receiver complexity. The basic idea is to exploit the information on the channel statistics in selecting a linear mapping that reduces the channel order while minimizing the loss in terms of diversity gain. We prove that the optimal linear mapping amounts to projecting the received data onto the channel´s principal components obtained by the eigenvectors of the channel correlation matrix corresponding to the Q strongest eigenvalues. We then derive closed-form expressions for the average combined signal-to-noise ratio and the average symbol error rate for various modulation schemes operating in dense Nakagami-m correlated multipath fading environments of practical interest
Keywords :
broadband networks; correlation methods; diversity reception; eigenvalues and eigenfunctions; fading channels; land mobile radio; matrix algebra; multipath channels; noise; principal component analysis; radio networks; radio receivers; spread spectrum communication; RAKE receivers; average SNR; average signal-to-noise ratio; average symbol error rate; channel correlation matrix; channel order reduction; channel parameters; channel statistics; closed-form expressions; dense Nakagami-m correlated multipath fading; diversity gain; eigenvalues; eigenvectors; estimation accuracy; mobile radio; modulation; optimal linear mapping; principal components combining; random fading; receiver complexity; spread spectrum transmissions; wideband/ultra-wideband systems; Closed-form solution; Diversity methods; Diversity reception; Eigenvalues and eigenfunctions; Fading; Multipath channels; RAKE receivers; Spread spectrum communication; Statistics; Ultra wideband technology;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Vehicular Technology Conference, 2000. IEEE-VTS Fall VTC 2000. 52nd
Conference_Location :
Boston, MA
ISSN :
1090-3038
Print_ISBN :
0-7803-6507-0
Type :
conf
DOI :
10.1109/VETECF.2000.883312
Filename :
883312
Link To Document :
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