Title :
Robust adaptive recovery of spread-spectrum signals with short data records
Author :
Batalama, Stella N. ; Medley, Michael J. ; Pados, Dimitris A.
Author_Institution :
Dept. of Electr. Eng., State Univ. of New York, Buffalo, NY, USA
fDate :
10/1/2000 12:00:00 AM
Abstract :
The problem under consideration is the adaptive reception of a multipath direct-sequence spread-spectrum (SS) signal in the presence of unknown correlated SS interference and additive impulsive noise. An SS receiver structure is proposed that consists of a vector of adaptive chip-based Hampel nonlinearities followed by an adaptive auxiliary-vector linear tap-weight filter. The nonlinear receiver front end adapts itself to the unknown prevailing noise environment providing robust performance over a wide range of underlying noise distributions. The adaptive auxiliary-vector linear tap-weight filter allows rapid SS interference suppression with a limited data record. Numerical and simulation studies under finite-data-record system adaptation show significant improvement in bit-error-rate performance over the conventional linear minimum variance-distortionless-response (MVDR) SS receiver or conventional MVDR filtering preceded by vector adaptive chip-based nonlinear processing.
Keywords :
adaptive filters; adaptive signal detection; adaptive signal processing; error statistics; filtering theory; impulse noise; interference suppression; multipath channels; radio receivers; radiofrequency interference; spread spectrum communication; BER performance; MVDR SS receiver; MVDR filtering; SS receiver structure; adaptive auxiliary-vector linear tap-weight filter; adaptive chip-based Hampel nonlinearities; adaptive reception; additive impulsive noise; bit-error-rate performance; correlated SS interference; direct-sequence spread-spectrum; finite-data-record system adaptation; interference suppression; linear minimum variance-distortionless-response receiver; multipath DS-SS signal recovery; multipath received signal; noise distributions; nonlinear receiver front end; robust adaptive recovery; robust performance; short data records; signal detection; simulation studies; vector adaptive chip-based nonlinear processing; Adaptive filters; Additive noise; Filtering; Interference suppression; Noise robustness; Nonlinear filters; Numerical simulation; Spread spectrum communication; Vectors; Working environment noise;
Journal_Title :
Communications, IEEE Transactions on