Title :
Optimum near-far resistance for dual-rate DS/CDMA signals: random signature sequence analysis
Author :
Chen, Jiangxin ; Mitra, Urbashi
Author_Institution :
Qualcomm Inc., San Diego, CA, USA
fDate :
11/1/1999 12:00:00 AM
Abstract :
Optimum near-far resistance is studied for synchronous dual-rate DS/CDMA systems. Three multirate access schemes are considered: multicode (MC) access where high-rate users multiplex their data bits onto multiple codes and form a single-rate system; variable spreading length (VSL) access where the spreading lengths of signature sequences are inversely proportional to users´ data rates; and variable chipping rate (VCR) access where the chipping rates of the signature sequences are proportional to users´ data rates. In order to remove the influence of signature sequences in the comparison of the three schemes, random signature sequences are assumed. Optimum mar-far resistance is then averaged over all possible realizations. Two types of code sets are considered for the VSL system: general random codes and random repetition codes. Bounds and approximations are provided for the average optimum near-far resistance. Analytical results show that the performance depends on the access schemes and the data rate of the users. The results for the VSL scheme with general random codes are extended for performance evaluation of systems with signature sequences which span many symbol intervals
Keywords :
approximation theory; code division multiple access; multiuser channels; random codes; random processes; sequences; spread spectrum communication; approximations; average optimum near-far resistance; bounds; code sets; data bits; dual-rate DS/CDMA signals; general random codes; high-rate users; multicode access; multiple codes; multirate access schemes; performance; random repetition codes; random signature sequence analysis; single-rate system; spreading lengths; symbol intervals; user data rates; variable chipping rate access; variable spreading length access; Decorrelation; Electrical resistance measurement; Interference cancellation; Multiaccess communication; Performance analysis; Receivers; Signal analysis; Spread spectrum communication; Video recording; Wireless communication;
Journal_Title :
Information Theory, IEEE Transactions on