DocumentCode :
711752
Title :
Detection of single scatterers in multilook SAR Tomography
Author :
Reale, Diego ; Franze, Walter ; Pauciullo, Antonio ; Sica, Francescopaolo ; Verde, Simona ; Fornaro, Gianfranco
Author_Institution :
Inst. for Electromagn. Sensing of the Environ. (IREA), Naples, Italy
fYear :
2015
fDate :
March 30 2015-April 1 2015
Firstpage :
1
Lastpage :
4
Abstract :
Many recent interferometric and tomographic SAR algorithms aimed at enhancing the monitoring performances on distributed areas affected by decorrelation phenomena have been proposed in the last years. These algorithms are based on the exploitation of the data covariance matrix, estimated on real data through the coherent averaging of statistically similar pixels, to improve signal-to-noise ratio and extract a decorrelation-filtered interferometric signal. Estimation of the covariance matrix on real data is, however, a challenging task since multilooking typically implies biased estimations as well as resolution losses which have to be properly handled. In this paper we discuss about the state-of-the-art and open issues for accurate estimation of covariance matrices on real data, for the applications in scatterer detection in SAR Tomography.
Keywords :
covariance matrices; decorrelation; electromagnetic wave scattering; filtering theory; geophysical signal processing; radar detection; radar interferometry; radar signal processing; synthetic aperture radar; tomography; biased estimation; data covariance matrix estimation; decorrelation filtered interferometric signal extraction; interferometric SAR algorithms; multilook SAR tomography; resolution loss; scatterer detection; signal-to-noise ratio; tomographic SAR algorithms; Atmospheric measurements; Detectors; Image resolution; Monitoring; Particle measurements; Remote sensing; Tomography;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Urban Remote Sensing Event (JURSE), 2015 Joint
Conference_Location :
Lausanne
Type :
conf
DOI :
10.1109/JURSE.2015.7120464
Filename :
7120464
Link To Document :
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