DocumentCode
2868356
Title
Jammed FH-FSK performance in Rayleigh and Nakagami-m fading
Author
McGuffin, Bruce F.
Author_Institution
Lincoln Lab., Massachusetts Inst. of Technol., Lexington, MA, USA
Volume
2
fYear
2003
fDate
13-16 Oct. 2003
Firstpage
1077
Abstract
This paper looks at the performance of frequency hopped spread spectrum (FH) binary frequency shift keyed (FSK) modulated signals in wideband and partial-band noise jamming, when either the signal or signal and jammer are subject to Rayleigh or Nakagami-m fading. Simple bit error rate (BER) approximations are derived as functions of the signal and jammer fading parameters (which need not be equal) using the assumption that average jammer power is much greater than average signal power. The approximations are used to find the worst case jammer fractional bandwidth. For signals with Rayleigh or more severe fading, full-band jamming is the optimal attack. In less severe signal fading, partial-band jamming may be more disruptive, depending on the available jammer power. It is found that jammer fading improves communications channel performance with wideband jamming by 2-4 dB effective power gain. When jammer bandwidth is optimized, BER performance is dominated by the signal fading parameter, although the optimal jammer bandwidth will vary somewhat due to jammer fading. The accuracy of these approximations is verified by comparing them to more detailed numerical solutions.
Keywords
Rayleigh channels; error statistics; frequency hop communication; frequency shift keying; jamming; spread spectrum communication; 2 to 4 dB; BER; FSK modulated signal; Nakagami-M fading; Rayleigh fading; binary frequency shift keying; bit error rate; communication channel; frequency hopped spread spectrum; full-band jamming; jammed FH-FSK; jammer fading parameter; jammer fractional bandwidth; jammer power; partial-band noise jamming; power gain; signal fading; signal fading parameter; signal power; wideband noise jamming; Bandwidth; Bit error rate; Communication channels; Fading; Frequency shift keying; Gain; Jamming; Rayleigh channels; Spread spectrum communication; Wideband;
fLanguage
English
Publisher
ieee
Conference_Titel
Military Communications Conference, 2003. MILCOM '03. 2003 IEEE
Print_ISBN
0-7803-8140-8
Type
conf
DOI
10.1109/MILCOM.2003.1290325
Filename
1290325
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