DocumentCode :
2576475
Title :
Performance analysis of steiner system design-based noncoherent M-ary orthogonal signals with diversity combining over nonidentically distributed and arbitrarily correlated fading channels
Author :
Radaydeh, Redha M. ; Matalgah, Mustafa M.
Author_Institution :
Dept. of Electr. Eng., Mississippi Univ., MS
Volume :
4
fYear :
2006
fDate :
3-6 April 2006
Firstpage :
2064
Lastpage :
2069
Abstract :
We analyze the performance of multiple carrier M-ary orthogonal signals (M-ary frequency shift keying signals) with postdetection equal-gain frequency diversity combining (EGC) over nonidentically distributed and/or arbitrarily correlated fading channels. The frequency diversity is satisfied using fast frequency hopping (FFH) technique, thereby achieving redundant reception of the same information-bearing signal. Multiple carrier M-ary frequency shift keying (MC-FSK) modulation in this paper can be classified as bandwidth and power efficient modulation, in which the multiple carrier assignment is achieved based on the Steiner system design; a case of the balanced incomplete block design (BIBD) from the combinatorial theory. Comparisons between the performance of FFH BIBD-based MC-FSK and that of the FFH conventional M-ary frequency shift keying (M-ary FSK) system are performed to verify the impact of the nonidentically distributed and arbitrarily correlated fading channels on the systems performance. In addition, the available channel bandwidth is efficiently utilized by optimizing the frequency hopping rate that provides the minimum average bit error probability (BEP), considering the effects of nonuniform power delay profile and fading parameters
Keywords :
bandwidth allocation; channel allocation; combinatorial mathematics; diversity reception; error statistics; fading channels; frequency hop communication; frequency shift keying; signal detection; FFH; Steiner system design; arbitrarily correlated fading channels; balanced incomplete block design; bit error probability; channel bandwidth; combinatorial theory; diversity combining; equal-gain frequency diversity combining; fast frequency hopping; multiple carrier M-ary frequency shift keying; multiple carrier assignment; noncoherent M-ary orthogonal signals; nonidentically distributed channels; Bandwidth; Diversity reception; Error probability; Fading; Frequency diversity; Frequency shift keying; Performance analysis; Signal analysis; Signal design; System performance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Wireless Communications and Networking Conference, 2006. WCNC 2006. IEEE
Conference_Location :
Las Vegas, NV
ISSN :
1525-3511
Print_ISBN :
1-4244-0269-7
Electronic_ISBN :
1525-3511
Type :
conf
DOI :
10.1109/WCNC.2006.1696614
Filename :
1696614
Link To Document :
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