Least-squares minimization approaches to interpret total magnetic anomalies due to spheres

  • E. M. Abdelrahman
  • , T. M. El-Araby
  • , K. S. Soliman
  • , K. S. Essa
  • , E. R. Abo-Ezz

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

We have developed three different least-squares approaches to determine successively: the depth, magnetic angle, and amplitude coefficient of a buried sphere from a total magnetic anomaly. By defining the anomaly value at the origin and the nearest zero-anomaly distance from the origin on the profile, the problem of depth determination is transformed into the problem of finding a solution of a nonlinear equation of the form f (z)=0. Knowing the depth and applying the least-squares method, the magnetic angle and amplitude coefficient are determined using two simple linear equations. In this way, the depth, magnetic angle, and amplitude coefficient are determined individually from all observed total magnetic data. The method is applied to synthetic examples with and without random errors and tested on a field example from Senegal, West Africa. In all cases, the depth solutions are in good agreement with the actual ones.

Original languageEnglish
Pages (from-to)1045-1056
Number of pages12
JournalPure and Applied Geophysics
Volume164
Issue number5
DOIs
StatePublished - May 2007
Externally publishedYes

Keywords

  • Least-squares method
  • Magnetic interpretation
  • Sphere model

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