3D ground-penetrating radar data analysis and interpretation using attributes based on the gradient structure tensor

被引:0
|
作者
Koyan, Philipp [1 ]
Tronicke, Jens [1 ]
机构
[1] Univ Potsdam, Inst Geosci, Potsdam, Germany
关键词
ELECTROMAGNETIC-WAVE PROPAGATION; FLUVIOGLACIAL AQUIFER ANALOG; TAUPO VOLCANIC ZONE; GPR DATA; GEORADAR DATA; NEW-ZEALAND; REMOVAL; ISLAND; NOISE; ACQUISITION;
D O I
10.1190/GEO2023-0670.1
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
In near-surface geophysics, ground-penetrating radar (GPR) surveys are routinely used in a variety of applications including those from archaeology, civil engineering, hydrology, and soil science. Thanks to recent technical developments in GPR instrumentation and antenna design, 3D surveys comprising several hundred thousand traces can be performed daily. Especially in complex environments such as sedimentary systems, analyzing and interpreting the resulting GPR volumes is a time-consuming and laborious task that is still largely performed manually. In the past few decades, several data attributes have been developed to guide and improve such tasks and assure a higher degree of reproducibility in the resulting interpretations. Many of these attributes have been developed in image processing or computer vision and are routinely used, for example, in reflection seismic data interpretation. Especially in sedimentary systems, variations in the subsurface are accompanied by variations of GPR reflections in terms of the amplitudes, continuity, and geometry in view of the dip angle and direction. A promising tool to analyze such structural features is known as the gradient structure tensor (GST). To date, the application of the GST approach has been limited to a few 2D GPR examples. Thus, we take the basic idea of GST analysis and introduce and evaluate the corresponding attributes to analyze 3D GPR data. We apply our GST approach to one synthetic and two field data sets imaging diverse sedimentary structures. Our results demonstrate that our set of GST-based attributes can be efficiently computed in three dimensions and that these attributes represent versatile measures to address different typical interpretation tasks and, thus, help for an efficient, reproducible, and more objective interpretation of 3D GPR data.
引用
收藏
页码:B289 / B299
页数:11
相关论文
共 50 条
  • [41] Identifying damaged areas inside a masonry monument using a combined interpretation of resistivity and ground-penetrating radar data
    Onishi, Kyosuke
    Tokunaga, Tomochika
    Sugimoto, Yoshihiro
    Yamada, Naoyuki
    Metwaly, Mohamed
    Mogi, Katsuro
    Shimoda, Ichita
    Iwasaki, Yoshinori
    EXPLORATION GEOPHYSICS, 2014, 45 (03) : 177 - 188
  • [42] Facies analysis in the lower Greensand using ground-penetrating radar - Discussion
    Eyers, J
    Bristow, CS
    JOURNAL OF THE GEOLOGICAL SOCIETY, 1996, 153 : 334 - 336
  • [43] Estimating 3D variation in active-layer thickness beneath arctic streams using ground-penetrating radar
    Brosten, Troy R.
    Bradford, John H.
    McNamara, James P.
    Gooseff, Michael N.
    Zarnetske, Jay P.
    Bowden, William B.
    Johnston, Morgan E.
    JOURNAL OF HYDROLOGY, 2009, 373 (3-4) : 479 - 486
  • [44] 3D imaging of a reservoir analogue in point bar deposits in the Ferron Sandstone, Utah, using ground-penetrating radar
    Zeng, XX
    McMechan, GA
    Bhattacharya, JP
    Aiken, CLV
    Xu, XM
    Hammon, WS
    Corbeanu, RM
    GEOPHYSICAL PROSPECTING, 2004, 52 (03) : 151 - 163
  • [45] Unveiling buried aeolian landscapes: reconstructing a late Holocene dune environment using 3D ground-penetrating radar
    Rees-Hughes, Luis
    Barlow, Natasha L. M.
    Booth, Adam D.
    West, Landis J.
    Tuckwell, George
    Grossey, Tim
    JOURNAL OF QUATERNARY SCIENCE, 2021, 36 (03) : 377 - 390
  • [46] Phenomena and conditions in bridge decks that confound ground-penetrating radar data analysis
    Barnes, CL
    Trottier, JF
    MAINTENANCE OF PAVEMENTS AND STRUCTURES: MAINTENANCE, 2002, (1795): : 57 - 61
  • [47] Effect of antenna-medium coupling in the analysis of ground-penetrating radar data
    Lambot, Sebastien
    Andre, Frederic
    Slob, Evert
    Vereecken, Harry
    NEAR SURFACE GEOPHYSICS, 2012, 10 (06) : 631 - 639
  • [48] Analysis of Jaycor's forward-looking ground-penetrating radar data
    Rosen, EM
    Ayers, E
    Bonn, D
    Sherbondy, KD
    Amazeen, CM
    DETECTION AND REMEDIATION TECHNOLOGIES FOR MINES AND MINELIKE TARGETS V, PTS 1 AND 2, 2000, 4038 : 1058 - 1066
  • [49] Ground-penetrating radar imaging of carbonate mound structures and implications for interpretation of marine seismic data
    Nielsen, L
    Boldreel, LO
    Surlyk, F
    AAPG BULLETIN, 2004, 88 (08) : 1069 - 1082
  • [50] Contextual Learning in Ground-Penetrating Radar Data Using Dirichlet Process Priors
    Ratto, Christopher R.
    Morton, Kenneth D., Jr.
    Collins, Leslie M.
    Torrione, Peter A.
    DETECTION AND SENSING OF MINES, EXPLOSIVE OBJECTS, AND OBSCURED TARGETS XVI, 2011, 8017