Title :
Analytical study of FFH systems with square-law diversity combining in the presence of multitone interference
Author :
Wang, Jiangzhou ; Jiang, Chen
Author_Institution :
Dept. of Electr. & Electron. Eng., Hong Kong Univ., China
fDate :
7/1/2000 12:00:00 AM
Abstract :
An analytical study of the performance of fast frequency-hopped (FFH), M-ary orthogonal frequency-shift keyed noncoherent modulation with linear combining of square-law envelopes in the presence of multitone interference is presented. The multiple equal-power interference tones are assumed to correspond to some of the possible FFH/M-ary orthogonal signaling tones. It is also assumed that the channel fading characteristics of the signal and interference tones are independent. We evaluate the effect of the channel fading on the system´s performance as a function of various parameters, such as the number of hops per symbol, the signal power to multitone interference power ratio, and the number of interference tones. Our numerical results indicate that by use of square-law time diversity combining, a large number of hops per symbol make the bit-error probability of the system more sensitive to the fading of multitone interference. Finally, the analysis has been proven valid by simulation
Keywords :
cellular radio; diversity reception; error statistics; fading channels; frequency hop communication; frequency shift keying; radiofrequency interference; signal detection; FFH systems; FFH/M-ary orthogonal signaling tones; FFH/MFSK system; GSM; M-ary orthogonal frequency-shift keying; bit-error probability; cellular mobile system; channel fading characteristics; fast frequency-hopping; hops per symbol; interference tones; linear combining; multiple equal-power interference tones; noncoherent modulation; performance; signal power to multitone interference power ratio; simulation; square-law diversity combining; square-law envelope detection; system performance; Bit error rate; Chirp modulation; Diversity reception; Fading; Frequency shift keying; Jamming; Multiple access interference; Performance analysis; Signal to noise ratio; Wideband;
Journal_Title :
Communications, IEEE Transactions on