DocumentCode :
168858
Title :
A new ray tracing technique for crosshole radar traveltime tomography based on multistencils fast marching method and the steepest descend method
Author :
Xin-Xin Qu ; Si-Xin Liu ; Fei Wang
Author_Institution :
Coll. of Geo-exploration Sci. & Tec., Jilin Univ., Changchun, China
fYear :
2014
fDate :
June 30 2014-July 4 2014
Firstpage :
503
Lastpage :
508
Abstract :
We presented a new ray tracing technique which is applicable for crosshole radar traveltime tomography. The new algorithm divides the ray tracing process into two steps: First the wavefront propagation times of all grid points in a velocity field are calculated using the multistencils fast marching method (MSFM), and then the ray tracing paths having the minimum traveltime can be easily obtained by following the steepest gradient direction from the receiver to the transmitter. In contrast to traditional fast marching method (FMM) and higher accuracy fast marching method (HAFMM), MSFM algorithm calculates traveltimes using two stencils at the same time, and the information in diagonal direction can be included, thus the calculation accuracy and efficiency can be improved greatly. In order to verify the accuracy and efficiency of the new ray tracing method, we test the proposed scheme on two synthetic velocity models where the exact solutions can be calculated, and we compared our results with the one obtained by a FMM based and a HAFMM based steepest descend ray tracing methods. This comparison indicated that the suggested ray tracing technique can achieve much better results both on accuracy and efficiency compared to the FMM based and the HAFMM based steepest descend ray tracing methods.
Keywords :
radar receivers; radar signal processing; radar transmitters; radiowave propagation; ray tracing; tomography; HAFMM; MSFM algorithm; crosshole radar traveltime tomography; higher accuracy fast marching method; multistencils fast marching method; radar receiver; radar transmitter; ray tracing paths; ray tracing process; ray tracing technique; steepest descend ray tracing methods; steepest gradient direction; synthetic velocity models; velocity field; wavefront propagation times; Radar; Silicon; Tin; Crosshole radar; Fast marching method; High accuracy fast marching method; Multistencils fast marching method; Ray tracing; The steepest descent method;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ground Penetrating Radar (GPR), 2014 15th International Conference on
Conference_Location :
Brussels
Type :
conf
DOI :
10.1109/ICGPR.2014.6970475
Filename :
6970475
Link To Document :
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