Title :
An innovative Frequency Hopping multi-zoom inversion strategy for GPR subsurface imaging
Author :
Salucci, M. ; Rocca, P. ; Oliveri, G. ; Massa, A.
Author_Institution :
ELEDIA Res. Center@DISI, Univ. of Trento, Trento, Italy
fDate :
June 30 2014-July 4 2014
Abstract :
This work deals with subsurface imaging of buried objects when Ground Penetrating Radar (GPR) is used for gathering time-domain data at the air-soil interface. An innovative inversion procedure based on the integration of a deterministic Conjugate-Gradient (CG) reconstruction procedure and the Iterative Multi-Scaling Approach (IMSA) able to exploit the frequency diversity of GPR data is presented. Here, suitable frequency components of the spectrum of the GPR field data are exploited through a Frequency Hopping (FH) strategy within the proposed IMSA-CG multi-zoom iterative inversion scheme. Numerical simulations show satisfactory results when dealing with scatterers characterized by various dimensions, shapes, and dielectric characteristics. Furthermore, the proposed method demonstrates to be robust against different noise levels and able to provide acceptable reconstruction accuracy although a limited amount of collected data.
Keywords :
buried object detection; conjugate gradient methods; ground penetrating radar; image reconstruction; radar imaging; time-domain analysis; CG reconstruction procedure; FH strategy; GPR subsurface imaging; IMSA CG frequency hopping multizoom iterative inversion scheme; air-soil interface; buried object subsurface imaging; conjugate-gradient reconstruction procedure; frequency diversity; ground penetrating radar imaging; iterative multiscaling approach; spectrum frequency component; time-domain data; Image reconstruction; Lead; Microwave measurement; Nonhomogeneous media; Conjugate Gradient; Frequency Hopping; Ground Penetrating Radar; Iterative Multi-Scaling Approach;
Conference_Titel :
Ground Penetrating Radar (GPR), 2014 15th International Conference on
Conference_Location :
Brussels
DOI :
10.1109/ICGPR.2014.6970499