Title :
Application of eigenstructured-based techniques for tracking low angle targets in multipath
Author_Institution :
GE Res. & Dev. Center, Schenectady, NY, USA
fDate :
6/15/1905 12:00:00 AM
Abstract :
A technique using recursive eigendecomposition together with frequency-agile waveforms for tracking low-elevation targets in multipath has been developed. The proposed high-resolution, eigenstructure-based algorithm for solving the low-angle tracking problem can be implemented in three steps: updating the covariance matrix; updating the eigenvalue decomposition of the covariance matrix; and updating the angle estimates by searching for the peak of the updated multiple signal classification (MUSIC) spectrum or solving the zeros derived by the minimum-norm polynomial coefficient. A phased-array implementation using three orthogonal simultaneous beams placed at half null-beamwidth apart is developed. The angles can be determined by explicit computation or by a calibration curve in a lookup table such as in monopulse processing for angle estimation using two simultaneous beams.
Keywords :
antenna phased arrays; eigenvalues and eigenfunctions; matrix algebra; radar antennas; radar theory; signal processing; tracking systems; MUSIC spectrum; angle estimates; angle estimation; calibration curve; covariance matrix; eigenstructure-based algorithm; eigenvalue decomposition; frequency-agile waveforms; half null-beamwidth; high resolution algorithm; lookup table; low angle targets tracking; minimum-norm polynomial coefficient; monopulse processing; multipath; multiple signal classification; phased-array; recursive eigendecomposition; Acoustic reflection; Decorrelation; Frequency; Optical reflection; Radar antennas; Radar tracking; Reflector antennas; Research and development; Sea surface; Target tracking;
Conference_Titel :
Radar Conference, 1993., Record of the 1993 IEEE National
Conference_Location :
Lynnfield, MA, USA
Print_ISBN :
0-7803-0934-0
DOI :
10.1109/NRC.1993.270455