Wavelet optimized finite difference simulation for marine CSEM geophysical survey

Survey data of marine controlled source electromagnetic (CSEM) geophysical surveys is not able to proceed far without numerical modeling. Finite Difference (FD) and Finite element (FE) numerical methods are the most used techniques in geophysical modeling. These methods are reliable for complex stru...

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Main Authors: Hussain, N., Karsiti, M.N., Yahya, N., Jeoti, V.
Format: Conference or Workshop Item
Published: IEEE Computer Society 2014
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84906346381&doi=10.1109%2fICIAS.2014.6869477&partnerID=40&md5=654375cea2f76dbb6b562ec3fc0684dd
http://eprints.utp.edu.my/32121/
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spelling my.utp.eprints.321212022-03-29T04:59:22Z Wavelet optimized finite difference simulation for marine CSEM geophysical survey Hussain, N. Karsiti, M.N. Yahya, N. Jeoti, V. Survey data of marine controlled source electromagnetic (CSEM) geophysical surveys is not able to proceed far without numerical modeling. Finite Difference (FD) and Finite element (FE) numerical methods are the most used techniques in geophysical modeling. These methods are reliable for complex structural media; however the computational cost is very high. The computational cost, accuracy and efficiency are reliant on sophisticated mesh structure. This paper discusses the orthogonal wavelet basis functions that give a natural framework to adapt spatial grids to localize the solution in spatial and time domain. Modeling for proper mesh structure is achieved by using wavelet basis functions called wavelet optimized finite difference (WOFD) method. In WOFD method, wavelet transform is used to determine where to coarsen/refine the grid. As a resultant, solution region will become with irregular grid point. This method will add grid points where solution is erratic and sparse where solution is smooth. Now the solution can be obtained with better accuracy and less computational cost by using finite number of terms. The efficiency of this method is assessed in terms of accuracy; computational cost and number of mesh grids for different 1D heterogeneous media. WOFD method provides new flexible numerical tool for marine CSEM geophysical modeling as discretization to local media properties. This flexibility is important and could be invaluable when the solution region is very complex. © 2014 IEEE. IEEE Computer Society 2014 Conference or Workshop Item NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-84906346381&doi=10.1109%2fICIAS.2014.6869477&partnerID=40&md5=654375cea2f76dbb6b562ec3fc0684dd Hussain, N. and Karsiti, M.N. and Yahya, N. and Jeoti, V. (2014) Wavelet optimized finite difference simulation for marine CSEM geophysical survey. In: UNSPECIFIED. http://eprints.utp.edu.my/32121/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description Survey data of marine controlled source electromagnetic (CSEM) geophysical surveys is not able to proceed far without numerical modeling. Finite Difference (FD) and Finite element (FE) numerical methods are the most used techniques in geophysical modeling. These methods are reliable for complex structural media; however the computational cost is very high. The computational cost, accuracy and efficiency are reliant on sophisticated mesh structure. This paper discusses the orthogonal wavelet basis functions that give a natural framework to adapt spatial grids to localize the solution in spatial and time domain. Modeling for proper mesh structure is achieved by using wavelet basis functions called wavelet optimized finite difference (WOFD) method. In WOFD method, wavelet transform is used to determine where to coarsen/refine the grid. As a resultant, solution region will become with irregular grid point. This method will add grid points where solution is erratic and sparse where solution is smooth. Now the solution can be obtained with better accuracy and less computational cost by using finite number of terms. The efficiency of this method is assessed in terms of accuracy; computational cost and number of mesh grids for different 1D heterogeneous media. WOFD method provides new flexible numerical tool for marine CSEM geophysical modeling as discretization to local media properties. This flexibility is important and could be invaluable when the solution region is very complex. © 2014 IEEE.
format Conference or Workshop Item
author Hussain, N.
Karsiti, M.N.
Yahya, N.
Jeoti, V.
spellingShingle Hussain, N.
Karsiti, M.N.
Yahya, N.
Jeoti, V.
Wavelet optimized finite difference simulation for marine CSEM geophysical survey
author_facet Hussain, N.
Karsiti, M.N.
Yahya, N.
Jeoti, V.
author_sort Hussain, N.
title Wavelet optimized finite difference simulation for marine CSEM geophysical survey
title_short Wavelet optimized finite difference simulation for marine CSEM geophysical survey
title_full Wavelet optimized finite difference simulation for marine CSEM geophysical survey
title_fullStr Wavelet optimized finite difference simulation for marine CSEM geophysical survey
title_full_unstemmed Wavelet optimized finite difference simulation for marine CSEM geophysical survey
title_sort wavelet optimized finite difference simulation for marine csem geophysical survey
publisher IEEE Computer Society
publishDate 2014
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84906346381&doi=10.1109%2fICIAS.2014.6869477&partnerID=40&md5=654375cea2f76dbb6b562ec3fc0684dd
http://eprints.utp.edu.my/32121/
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score 13.159267