DocumentCode :
1907880
Title :
Sparsity based detection of multiple targets in 3D-SAR imaging
Author :
Budillon, Alessandra ; Schirinzi, Gilda
Author_Institution :
Centro Direzionale di Napoli, Univ. degli Studi di Napoli “Parthenope”, Naples, Italy
fYear :
2015
fDate :
24-26 June 2015
Firstpage :
392
Lastpage :
397
Abstract :
In this paper, a Constant False Alarm Rate (CFAR) detection approach of multiple scatterers in SAR tomography is presented. The detector exploits the sparsity assumption and is based on support detection, i.e. on the detection of the position of the non-zero elements in the unknown sparse vector, and on a Generalized likelihood Ratio Test (GLRT). It allows a reduction in the number of measurements required for obtaining a reliable solution and an increased resolution. The test is formulated for any number of scatterers K≤Kmax, with Kmax known. The method performance is evaluated in terms of probability of false alarm and probability of detection, for different values of SNR (signal to noise power ratio) and different number of measurements, in the cases of nominal and super-resolution reconstructions.
Keywords :
image reconstruction; object detection; probability; radar detection; radar imaging; radar resolution; reliability; synthetic aperture radar; tomography; 3D-SAR imaging; CFAR detection approach; GLRT; SAR tomography; SNR; constant false alarm rate detection approach; detection probability; false alarm probability; generalized likelihood ratio test; multiple targets sparsity based detection; nominal reconstruction; nonzero element position detection; signal to noise power ratio; superresolution reconstruction; unknown sparse vector; Detectors; Image reconstruction; Image resolution; Noise; Probability; Signal resolution; Tomography;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Radar Symposium (IRS), 2015 16th International
Conference_Location :
Dresden
Type :
conf
DOI :
10.1109/IRS.2015.7226384
Filename :
7226384
Link To Document :
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