Rapid multi-scale analysis of near-surface geophysical anomaly maps: Application to an archaeo-geophysical data set

Author:

Tronicke Jens1,Allroggen Niklas1,Biermann Felix2,Fanselow Florian1,Guillemoteau Julien1,Krauskopf Christof3,Lück Erika1

Affiliation:

1. Universität Potsdam, Institut für Geowissenschaften, Karl-Liebknecht Straße 24, 14476 Potsdam, Germany.(corresponding author); .

2. Uniwersytet Szczeciński, Katedra Archeologii, Instytut Historyczny, ul. Krakowska 71-79, 71-017 Szczecin, Poland..

3. Brandenburgisches Landesamt für Denkmalpflege und Archäologisches Landesmuseum, Wünsdorfer Platz 4-5, 15806 Zossen, Germany..

Abstract

In near-surface geophysics, ground-based mapping surveys are routinely employed 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 propose a multi-scale processing, analysis, and visualization strategy. Our approach relies on a discrete redundant wavelet transform (RWT) implemented using cubic-spline filters and the à trous algorithm, which allows to efficiently compute a multi-scale decomposition of 2D data using a series of 1D convolutions. The basic idea of the approach is presented using a synthetic test image, while our archaeo-geophysical case study from North-East 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, while 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, multi-scale 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.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Multi-scale analysis and interpretation of multi-method geophysical data sets;Advances in On- and Offshore Archaeological Prospection;2023

2. 3D ground-penetrating radar attributes to generate classified facies models: A case study from a dune island;GEOPHYSICS;2021-09-23

3. The redundant wavelet transform to process and interpret GPR data;18th International Conference on Ground Penetrating Radar, Golden, Colorado, 14–19 June 2020;2020-11-11

4. Dreaming of Perfect Data: Characterizing Noise in Archaeo-Geophysical Measurements;Geosciences;2020-09-23

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