The Impact of Spatial Sampling and Migration on the Interpretation of Complex Archaeological Ground-penetrating Radar Data.

In this paper, the impact of spatial sample density and three-dimensional migration processing on the interpretation of archaeological ground-penetrating radar (GPR) data is assessed. First, the question of how to determine the sample interval required to take full advantage of the spatial resolutio...

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Published in:Archaeological Prospection Vol. 22; no. 2; pp. 91 - 104
Main Authors: Verdonck, Lieven, Taelman, Devi, Vermeulen, Frank, Docter, Roald
Format: Article
Published: Wiley-Blackwell Apr2015
Subjects:
Online Access:View this record in EBSCOhost
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      pub: Wiley-Blackwell
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        10.1002/arp.1501
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        atl: The Impact of Spatial Sampling and Migration on the Interpretation of Complex Archaeological Ground-penetrating Radar Data.
      aug:
        au:
          Verdonck, Lieven
          Taelman, Devi
          Vermeulen, Frank
          Docter, Roald
        affil: Department of Archaeology, Ghent University, Sint‐Pietersnieuwstraat 35, 9000, Ghent Belgium
      su:
        Landscape archaeology
        Ground penetrating radar
        Electronic data processing
        Sampling theorem
        Lowpass electric filters
        Distribution (Probability theory)
      sug:
        subj:
          Landscape archaeology
          Ground penetrating radar
          Electronic data processing
          Sampling theorem
          Lowpass electric filters
          Distribution (Probability theory)
      keyword:
        aliasing
        GPR sample density
        Ground‐penetrating radar
        Ground-penetrating radar
        Roman town Ammaia
        three‐dimensional migration
        three‐dimensional topographic correction
        three-dimensional migration
        three-dimensional topographic correction
      ab: In this paper, the impact of spatial sample density and three-dimensional migration processing on the interpretation of archaeological ground-penetrating radar (GPR) data is assessed. First, the question of how to determine the sample interval required to take full advantage of the spatial resolution capabilities of GPR without oversampling is addressed. To this end, we transform a test profile into the frequency-wavenumber ( f-k) domain and estimate the required sample interval from the wavenumber values. For the presented data set, collected at the Roman town Ammaia (Portugal), this resulted in a transect spacing approximately three times the distance prescribed by the λ/4 criterion (where λ is the minimum observed wavelength). Second, the effect of three-dimensional migration is assessed. The data set, sampled as prescribed by the analysis of the f-k plot, is migrated with two- and three-dimensional phase-shift algorithms, and the migrated results are compared with non-migrated data. It is shown that certain subtle features are better resolved by three-dimensional migration. Third, it is investigated whether three-dimensional migration following the application of an interpolation algorithm such as Delaunay triangulation or interpolation based on τ- p transform, can further relax spatial sampling requirements. For the GPR data shown in this article, it is demonstrated that interpolation and three-dimensional migration of slightly aliased data, collected with a transect spacing equal to five times the outcome of the λ/4 criterion, still allow a faithful reconstruction of the original, non-aliased time-slices. Copyright © 2015 John Wiley & Sons, Ltd.
      pubtype: Academic Journal
      doctype: Article
      src: R
    language: English
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