Title :
A simple and accurate method of probability of bit error analysis for asynchronous band-limited DS-CDMA systems
Author_Institution :
Dept. of Electr. & Comput. Eng., Waterloo Univ., Ont., Canada
fDate :
4/1/2002 12:00:00 AM
Abstract :
This paper considers probability of bit error (Pe) analysis in asynchronous band-limited direct-sequence code-division multiple-access (DS-CDMA) systems. It presents a simple and accurate method of Pe analysis. The proposed method can serve as an attractive alternative to the only two techniques currently available for band-limited systems: the standard Gaussian approximation (SGA) and the characteristic function method. The former is prone to inaccuracy while the latter, large computational complexity. The method generalizes the simplified improved Gaussian approximation (SIGA) derived previously for rectangular pulses. This paper also outlines a generalization of another method referred to as the improved Gaussian approximation (IGA). Numerical examples demonstrate the far greater accuracy of the generalized SIGA with respect to the SGA. The examples consider the IS-95 and square-root raised cosine (Sqrt-RC) pulses as well as uniform and nonuniform received power conditions
Keywords :
AWGN channels; approximation theory; bandlimited communication; code division multiple access; error statistics; multiuser channels; spread spectrum communication; AWGN channel; Gaussian approximation; IS-95 pulses; additive white Gaussian noise channel; asynchronous band-limited DS-CDMA systems; asynchronous band-limited systems; bit error probability analysis; characteristic function method; computational complexity; direct-sequence code-division multiple-access; improved Gaussian approximation; nonuniform received power condition; rectangular pulses; simplified improved Gaussian approximation; square-root raised cosine pulses; uniform received power condition; Algorithm design and analysis; Bandwidth; Computational complexity; Electromagnetic interference; Error analysis; Gaussian approximation; Multiaccess communication; Pulse shaping methods; Shape; Wireless communication;
Journal_Title :
Communications, IEEE Transactions on