Title :
Optimal allocation of bandwidth for source coding, channel coding, and spreading in CDMA systems
Author :
Zhao, Qinghua ; Cosman, Pamela ; Milstein, Laurence B.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California, La Jolla, CA, USA
Abstract :
This paper investigates the tradeoffs between source coding, channel coding, and spreading in code-division multiple-access systems, operating under a fixed total bandwidth constraint. We consider two systems, each consisting of a uniform source with a uniform quantizer, a channel coder, an interleaver, and a direct-sequence spreading module. System A is quadrature phase-shift keyed modulated and has a linear block channel coder. A minimum mean-squared error receiver is also employed in this system. System B is binary phase-shift keyed modulated. Rate-compatible punctured convolutional codes and soft-decision Viterbi decoding are used for channel coding in system B. The two systems are analyzed for both an additive white Gaussian noise channel and a flat Rayleigh fading channel. The performances of the systems are evaluated using the end-to-end mean squared error. A tight upper bound for frame-error rate is derived for nonterminated convolutional codes for ease of analysis of system B. We show that, for a given bandwidth, an optimal allocation of that bandwidth can be found using the proposed method.
Keywords :
AWGN channels; Rayleigh channels; Viterbi decoding; bandwidth allocation; block codes; channel coding; code division multiple access; convolutional codes; error statistics; linear codes; mean square error methods; multiuser channels; phase shift keying; radio receivers; source coding; spread spectrum communication; CDMA systems; DS-CDMA; additive white Gaussian noise channel; channel coding; code-division multiple-access systems; convolutional codes; direct-sequence spreading module; flat Rayleigh fading channel; frame-error rate; linear block channel coder; mean squared error method; minimum mean-squared error receiver; multiuser system; optimal bandwidth allocation; phase-shift keyed modulation; soft-decision Viterbi decoding; source coding; uniform quantizer; wireless channels; Additive white noise; Bandwidth; Channel coding; Convolutional codes; Decoding; Modulation coding; Multiaccess communication; Phase modulation; Source coding; Viterbi algorithm; 65; Bandwidth allocation; DS-CDMA; FER; Rayleigh fading; convolutional codes; direct-sequence code-division multiple access; frame-error rate; multiuser system; transmission over wireless channels;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2004.836432