Title :
TCM/SSMA communication systems with cascaded sequences and PAM/QAM signal sets
Author :
Chen, Tsao-Tsen ; Lehnert, James S.
Author_Institution :
Sch. of Electr. & Comput. Eng., Purdue Univ., West Lafayette, IN, USA
fDate :
7/1/1998 12:00:00 AM
Abstract :
An expression in matrix form for the multiple-access interference (MAI) in an asynchronous direct-sequence spread-spectrum multiple-access (DS/SSMA) communication system with cascaded sequences (CVs), arbitrary chip waveforms, and trellis-coded modulation (TCM) with a pulse amplitude modulation (PAM) or quadrature amplitude modulation (QAM) signal set is obtained. TCM provides significant coding gain while the CVs decrease the correlation between the MAI of adjacent data intervals. The expression is used to calculate arbitrarily accurate probability density functions (PDFs) of the MAI in the TCM system and to derive an accurate approximation of the MAI variance. It also helps illustrate some properties of the MAI by separating contributing parameters into different matrices. We derive an approximation of the upper union bound on the bit-error probability and investigate its applicability. The results show that CV schemes can greatly reduce the pairwise error probabilities (PEPs) until the length of the CV becomes greater than that of the error weight sequence (EWS) under consideration
Keywords :
approximation theory; coding errors; error statistics; matrix algebra; multi-access systems; probability; pseudonoise codes; pulse amplitude modulation; quadrature amplitude modulation; radiofrequency interference; sequences; spread spectrum communication; trellis coded modulation; MAI; PAM/QAM signal sets; TCM/SSMA communication systems; adjacent data intervals; asynchronous DS/SSMA; bit-error probability; cascaded sequences; chip waveforms; coding gain; correlation; direct-sequence spread-spectrum multiple-access; error weight sequence; matrix expression; multiple-access interference; pairwise error probabilities; probability density functions; pulse amplitude modulation; quadrature amplitude modulation; trellis-coded modulation; upper union bound approximation; Amplitude modulation; Computational complexity; Military computing; Multiple access interference; Pairwise error probability; Probability density function; Pulse modulation; Quadrature amplitude modulation; Random sequences; Spread spectrum communication;
Journal_Title :
Communications, IEEE Transactions on