Title : 
Maximum-Likelihood Receivers for FFH/BFSK Systems with Multitone Jamming over Frequency-Selective Rayleigh Fading Channels
         
        
            Author : 
Tsan-Ming Wu ; Po-Chin Hung
         
        
            Author_Institution : 
Chung Yuan Christian Univ., Chung-Li
         
        
        
        
        
        
            Abstract : 
In this paper, we have investigated the maximum-likelihood (ML) receivers for the fast frequency-hopped binary frequency-shift-keying (FFH/BFSK) spread-spectrum communications system with a worst case multitone jamming (MTJ) and additive white Gaussian noise (AWGN) over frequency-selective Rayleigh fading channels. Owing to the fact that the analysis of the natural logarithm of the modified Bessel function is intractable, two ML diversity-combining receivers, that are named as ML-A and ML-B receivers according to the different conditions of the approximation, have been analyzed theoretically based upon a correlated two-path frequency-selective channel model. The performance of these two receivers compared with that of other diversity-combining receivers in terms of the bit error rate(BER) has been scrutinized. Computer simulations confirm that our numerical analyses are valid. Furthermore, the ML-B receiver outperforms other receivers, while the ML-A receiver is only as good as the ML-B counterpart when the signal-to-jamming ratio (SJR) is greater than 24 dB.
         
        
            Keywords : 
AWGN; Bessel functions; Rayleigh channels; diversity reception; error statistics; frequency hop communication; frequency shift keying; radio receivers; spread spectrum communication; AWGN; BER; Bessel function; FFH-BFSK systems; additive white Gaussian noise; bit error rate; diversity-combining receivers; fast frequency-hopped binary frequency-shift-keying; frequency-selective Rayleigh fading channels; maximum-likelihood receivers; multitone jamming; numerical analyses; signal-to-jamming ratio; spread-spectrum communications system; AWGN; Additive white noise; Communication systems; Computer errors; Computer simulation; Fading; Frequency diversity; Jamming; Numerical analysis; Spread spectrum communication;
         
        
        
        
            Conference_Titel : 
Communications, 2007. ICC '07. IEEE International Conference on
         
        
            Conference_Location : 
Glasgow
         
        
            Print_ISBN : 
1-4244-0353-7
         
        
        
            DOI : 
10.1109/ICC.2007.139