Title :
Estimated bit error probability of DS-SSMA/MDPSK with differential phase detector on satellite mobile channel
Author_Institution :
Dept. of Eng., Australian Nat. Univ., Canberra, ACT, Australia
fDate :
10/1/1996 12:00:00 AM
Abstract :
The performance of direct-sequence spread-spectrum multiple-access (DS-SSMA) systems with M-ary differential phase shift keying (MDPSK) and a differential phase detector (DPD) are estimated on the satellite mobile channel (SMC) which includes Gaussian and Rayleigh channels as the special cases. Numerical results are presented for the system with one of three types of chip waveforms (rectangular, cosine and root Nyquist filtering (RNF)), and binary or complex random signature sequences. They show that the system with the complex random signature sequences outperforms the system with the binary random signature sequences on Gaussian and Rician (K=10) channels, while on a Rayleigh channel both systems perform similarly; the system with 2×I users and BDPSK signalling format outperforms that with I users and QDPSK for Gaussian and Rician (K=10) channels; and from the point view of both bandwidth efficiency and antimultipath effects, the cosine pulse shaping is the best choice of the three pulse shape functions, although the system with the RNF has the highest bandwidth efficiency
Keywords :
Gaussian channels; Rayleigh channels; Rician channels; coding errors; demodulation; differential phase shift keying; error statistics; mobile satellite communication; multi-access systems; probability; signal detection; spread spectrum communication; BDPSK signalling; DS-SSMA; DS-SSMA/MDPSK; Gaussian channel; M-ary differential phase shift keying; MDPSK; QDPSK; Rayleigh channel; Rician channel; antimultipath effects; bandwidth efficiency; binary random signature sequences; bit error probability estimation; chip waveforms; complex random signature sequences; cosine pulse shaping; cosine waveform; differential phase detector; direct sequence spread spectrum multiple access; numerical results; pulse shape functions; rectangular waveform; root Nyquist filtering waveform; satellite mobile channel;
Journal_Title :
Communications, IEE Proceedings-
DOI :
10.1049/ip-com:19960751