Title :
Gradient estimation for stochastic optimization of optical code-division multiple-access systems .I. Generalized sensitivity analysis
Author :
Mandayam, Narayan B. ; Aazhang, Behnaam
Author_Institution :
Dept. of Electr. & Comput. Eng., Rutgers Univ., Piscataway, NJ, USA
fDate :
5/1/1997 12:00:00 AM
Abstract :
For optimizing the performance of optical code-division multiple-access (CDMA) systems, there is a need for determining the sensitivity of the bit-error rate (BER) of the system to various system parameters. Asymptotic approximations and bounds, used for system bit-error probabilities, seldom capture the sensitivities of the system performance. We develop single-run gradient estimation methods for such optical CDMA systems using a discrete-event dynamic systems (DEDS) approach. Specifically, computer-aided techniques such as infinitesimal perturbation analysis (IPA) and likelihood ratio (LR) methods are used for analyzing the sensitivity of the average BER to a wide class of system parameters. It is shown that the above formulation is equally applicable to time-encoded and frequency-encoded systems. Further, the estimates derived are unbiased, and also optimality of the variance of these estimates is shown via the theory of common random variates and importance sampling techniques
Keywords :
approximation theory; code division multiple access; coding errors; discrete event simulation; error statistics; optical fibre communication; optimisation; parameter estimation; perturbation techniques; probability; signal sampling; stochastic processes; telecommunication computing; BER sensitivity; asymptotic approximations; asymptotic bounds; average BER; computer-aided techniques; discrete event simulation; discrete-event dynamic systems; frequency-encoded systems; generalized sensitivity analysis; gradient estimation; importance sampling techniques; infinitesimal perturbation analysis; likelihood ratio methods; optical CDMA systems; optical code division multiple access systems; random variates; single-run gradient estimation methods; stochastic optimization; system bit error probabilities; system parameters; system performance; time-encoded systems; unbiased estimates; Bit error rate; Constraint optimization; Discrete event simulation; Frequency; Monte Carlo methods; Multiaccess communication; Optical sensors; Sensitivity analysis; Stochastic systems; System performance;
Journal_Title :
Selected Areas in Communications, IEEE Journal on