DocumentCode :
3680415
Title :
Using the conjugate gradient algorithm for reduced-rank adaptive detection
Author :
Zhu Chen;Hongbin Li;Muralidhar Rangaswamy
Author_Institution :
ECE Department, Stevens Institute of Technology, Hoboken, NJ, 07030, USA
fYear :
2012
Firstpage :
27
Lastpage :
31
Abstract :
In this paper, we introduce a group of reduced-rank (RR) space-time adaptive processing (STAP) detectors based on the conjugate gradient (CG) algorithm. The CG algorithm can be used for efficient calculation of the weight vector of several well-known STAP detectors. As an iterative algorithm, it produces a series of approximations to the fully adaptive solution, each of which can be used to filter the test signal and form a test statistic. This effectively leads to a family of RR adaptive detectors, referred to as the CG-RR detectors, which are indexed by k the number of iterations incurred. Performance of the proposed CG-RR detectors are examined in terms of the output signal-to-interference-plus-noise ratio (SINR). The conventional RR methods for STAP such as the data-independent DFT or DCT based rank reduction, the adaptive eigencanceler and cross-spectral metric (CSM) algorithm are also considered here. Simulation results show that the computationally efficient CG-RR detector often reaches the peak output SINR with a lower rank compared with the eigencanceler and CSM based detectors.
Keywords :
"Detectors","Signal to noise ratio","Interference","Covariance matrices","Discrete cosine transforms","Discrete Fourier transforms","Radar"
Publisher :
ieee
Conference_Titel :
Waveform Diversity & Design Conference (WDD), 2012 International
Type :
conf
DOI :
10.1109/WDD.2012.7311258
Filename :
7311258
Link To Document :
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