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Rapid multiscale analysis of near-surface geophysical anomaly maps

  • In near- surface geophysics, ground-based mapping surveys are routinely used in a variety of applications including those from archaeology, civil engineering, hydrology, and soil science. The resulting geophysical anomaly maps of, for example, magnetic or electrical parameters are usually interpreted to laterally delineate subsurface structures such as those related to the remains of past human activities, subsurface utilities and other installations, hydrological properties, or different soil types. To ease the interpretation of such data sets, we have developed a multiscale processing, analysis, and visualization strategy. Our approach relies on a discrete redundant wavelet transform (RWT) implemented using cubic-spline filters and the a trous algorithm, which allows to efficiently compute a multiscale decomposition of 2D data using a series of 1D convolutions. The basic idea of the approach is presented using a synthetic test image, whereas our archaeogeophysical case study from northeast Germany demonstrates its potential toIn near- surface geophysics, ground-based mapping surveys are routinely used in a variety of applications including those from archaeology, civil engineering, hydrology, and soil science. The resulting geophysical anomaly maps of, for example, magnetic or electrical parameters are usually interpreted to laterally delineate subsurface structures such as those related to the remains of past human activities, subsurface utilities and other installations, hydrological properties, or different soil types. To ease the interpretation of such data sets, we have developed a multiscale processing, analysis, and visualization strategy. Our approach relies on a discrete redundant wavelet transform (RWT) implemented using cubic-spline filters and the a trous algorithm, which allows to efficiently compute a multiscale decomposition of 2D data using a series of 1D convolutions. The basic idea of the approach is presented using a synthetic test image, whereas our archaeogeophysical case study from northeast Germany demonstrates its potential to analyze and process rather typical geophysical anomaly maps including magnetic and topographic data. Our vertical-gradient magnetic data show amplitude variations over several orders of magnitude, complex anomaly patterns at various spatial scales, and typical noise patterns, whereas our topographic data show a distinct hill structure superimposed by a microtopographic stripe pattern and random noise. Our results demonstrate that the RWT approach is capable to successfully separate these components and that selected wavelet planes can be scaled and combined so that the reconstructed images allow for a detailed, multiscale structural interpretation also using integrated visualizations of magnetic and topographic data. Because our analysis approach is straightforward to implement without laborious parameter testing and tuning, computationally efficient, and easily adaptable to other geophysical data sets, we believe that it can help to rapidly analyze and interpret different geophysical mapping data collected to address a variety of near-surface applications from engineering practice and research.show moreshow less

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Metadaten
Author details:Jens TronickeORCiDGND, Niklas AllroggenORCiDGND, Felix BiermannORCiDGND, Florian Fanselow, Julien GuillemoteauORCiD, Christof KrauskopfORCiDGND, Erika LückORCiDGND
DOI:https://doi.org/10.1190/GEO2019-0564.1
ISSN:0016-8033
ISSN:1942-2156
Title of parent work (English):Geophysics
Subtitle (English):application to an archaeogeophysical data set
Publisher:Society of Exploration Geophysicists
Place of publishing:Tulsa, Okla.
Publication type:Article
Language:English
Date of first publication:2020/06/05
Publication year:2020
Release date:2023/06/01
Tag:archaeology; case history; decomposition; magnetics; near surface
Volume:85
Issue:4
Number of pages:10
First page:B109
Last Page:B118
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Geowissenschaften
DDC classification:5 Naturwissenschaften und Mathematik / 55 Geowissenschaften, Geologie / 550 Geowissenschaften
9 Geschichte und Geografie / 93 Geschichte des Altertums (bis ca. 499), Archäologie / 930 Geschichte des Altertums bis ca. 499, Archäologie
Peer review:Referiert
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