Title :
Gradient estimation for stochastic optimization of optical code-division multiple-access systems. II. Adaptive detection
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 pt.I see ibid., vol.15, no.4, p.731-41 (1997). We develop infinitesimal perturbation analysis (IPA)-based stochastic gradient algorithms for deriving optimum detectors with the average probability of bit error being the objective function that is minimized. Specifically, we develop both a class of linear as well as nonlinear (threshold) detectors. In the linear scheme, the receiver despreads the received optical signal with a sequence that minimizes the average bit-error rate. In the case of the threshold detector, the detection threshold for the photoelectron count is optimized to achieved minimum average bit-error rate. These algorithms use maximum likelihood estimates of the multiple access interference based on observations of the photoelectron counts during each bit interval, and alleviate the disadvantage of previously proposed schemes that require explicit knowledge of the interference statistics. Computer-aided implementations of the detectors derived are shown to outperform the correlation detector. Sequential implementations of the adaptive detectors that require no preamble are also developed, and make them very viable detectors for systems subject to temporal variations
Keywords :
adaptive signal detection; code division multiple access; error statistics; maximum likelihood estimation; optical fibre communication; optical fibres; optical signal detection; optimisation; parameter estimation; perturbation techniques; probability; stochastic processes; adaptive detection; average bit error probability; average bit error rate; computer aided implementations; correlation detector; detection threshold; gradient estimation; infinitesimal perturbation analysis; interference statistics; linear detectors; maximum likelihood estimates; multiple access interference; nonlinear detectors; objective function; optical code division multiple access systems; optimum detectors; photoelectron count; received optical signal; receiver; stochastic gradient algorithms; stochastic optimization; threshold detectors; Algorithm design and analysis; Bit error rate; Detectors; Maximum likelihood detection; Maximum likelihood estimation; Multiple access interference; Nonlinear optics; Optical receivers; Statistics; Stochastic processes;
Journal_Title :
Selected Areas in Communications, IEEE Journal on