DocumentCode
168855
Title
SVD analysis of GPR full-wave inversion
Author
Watson, Fraser ; Lionheart, Wrb
Author_Institution
Sch. of Math., Univ. of Manchester, Manchester, UK
fYear
2014
fDate
June 30 2014-July 4 2014
Firstpage
484
Lastpage
490
Abstract
Full-wave inversion (FWI) is an imaging approach in which we find the quantitative subsurface parameters (such as the dielectric permittivity) which would best fit the recorded GPR data. This optimisation problem is nonlinear and ill-posed, and there have been numerous successes in applying FWI to GPR data. The dominant properties of the FWI inversion process can be observed in the Jacobian matrix of partial derivatives of the forward map for each acquisition system. Here, we use singular value decomposition (SVD) as a tool to analyse the Jacobian, to help us understand what a given acquisition system is capable of imaging. We believe FWI could have great benefits in anti-personnel landmine detection, primarily because the additional quantitative information gained could help to reduce the rate of false positives. For humanitarian de-mining there is a need to produce cheaper hand-portable GPR equipment.We therefore ask whether a small array is suitable for FWI, if taking more measurements can compensate for a lack of multi-offset data, using singular value decomposition as a tool to guide our answer.
Keywords
Jacobian matrices; ground penetrating radar; landmine detection; optimisation; permittivity; singular value decomposition; FWI inversion process; GPR full-wave inversion; Jacobian matrix; SVD; antipersonnel landmine detection; dielectric permittivity; dominant properties; hand-portable GPR equipment; optimisation problem; partial derivatives; quantitative information; singular value decomposition; subsurface parameters; Jacobian matrices; Q measurement; Full-wave inversion (FWI); landmine detection; singular value decomposition (SVD);
fLanguage
English
Publisher
ieee
Conference_Titel
Ground Penetrating Radar (GPR), 2014 15th International Conference on
Conference_Location
Brussels
Type
conf
DOI
10.1109/ICGPR.2014.6970472
Filename
6970472
Link To Document