Title :
Median cascaded canceller for robust adaptive array processing
Author :
Picciolo, Michael L. ; Gerlach, Karl
Author_Institution :
SAIC, Chantilly, VA, USA
fDate :
7/1/2003 12:00:00 AM
Abstract :
A median cascaded canceller (MCC) is introduced as a robust multichannel adaptive array processor. Compared with sample matrix inversion (SMI) methods, it is shown to significantly reduce the deleterious effects of impulsive noise spikes (outliers) on convergence performance of metrics; such as (normalized) output residue power and signal to interference-plus-noise ratio (SINR). For the case of no outliers, the MCC convergence performance remains commensurate with SMI methods for several practical interference scenarios. It is shown that the MCC offers natural protection against desired signal (target) cancellation when weight training data contains strong target components. In addition, results are shown for a high-fidelity, simulated, barrage jamming and nonhomogenous clutter environment. Here the MCC is used in a space-time adaptive processing (STAP) configuration for airborne radar interference mitigation. Results indicate the MCC produces a marked SINR performance improvement over SMI methods.
Keywords :
airborne radar; array signal processing; convergence; impulse noise; interference (signal); jamming; radar clutter; space-time adaptive processing; MCC convergence; SINR; SMI; STAP; airborne radar interference mitigation; barrage jamming environment; impulsive noise spikes; interference; median cascaded canceller; multichannel array processor; nonhomogenous clutter environment; normalized output residue power; outliers; robust adaptive array processing; sample matrix inversion methods; signal cancellation protection; signal to interference-plus- noise ratio; space-time adaptive processing; weight training data target components; Adaptive arrays; Array signal processing; Convergence; Interference; Noise cancellation; Noise reduction; Noise robustness; Protection; Signal to noise ratio; Training data;
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on
DOI :
10.1109/TAES.2003.1238743