Título: | SPARSE MODELING AND SUPERTRACES FOR SEISMIC DECONVOLUTION AND INVERSION | ||||||||||||
Autor: |
RODRIGO COSTA FERNANDES |
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Colaborador(es): |
MARCELO GATTASS - Orientador HELIO CORTES VIEIRA LOPES - Coorientador |
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Catalogação: | 11/MAI/2020 | Língua(s): | PORTUGUESE - BRAZIL |
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Tipo: | TEXT | Subtipo: | THESIS | ||||||||||
Notas: |
[pt] Todos os dados constantes dos documentos são de inteira responsabilidade de seus autores. Os dados utilizados nas descrições dos documentos estão em conformidade com os sistemas da administração da PUC-Rio. [en] All data contained in the documents are the sole responsibility of the authors. The data used in the descriptions of the documents are in conformity with the systems of the administration of PUC-Rio. |
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Referência(s): |
[pt] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=47973&idi=1 [en] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=47973&idi=2 |
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DOI: | https://doi.org/10.17771/PUCRio.acad.47973 | ||||||||||||
Resumo: | |||||||||||||
Seismic amplitude data are part of the input in a geophysical interpretation pipeline. As seismic sensors evolve, resolution and occupied storage space grows. In this context, tasks as seismic deconvolution and inversion become more expensive, in processing time or in – main or secondary – memory. Assuming that, approximately, seismic amplitude traces result from a fusion between an oscillatory content – a pulse generated by a kind of explosion, in the case of marine acquisition – and the sparse presence of impedance constrasts and rock density variation, this work presents contributions to the way of doing two geophysical interpretation activities: deconvolution and inversion, both targeting sparse-spike refletivity extraction.
Inspired by works in 3D and 4D volumetric compression, sparse modeling, optimization applied to geophysics, image segmentation and scientific visualization, this thesis presents a set of methods that try to fetch fundamental features that generate amplitude data: (i) an approach for seismic traces segmentation and selection, electing them as representatives of the whole data, (ii) an enhancement of an approach for separation of amplitudes into wavelet and sparse-spike reflectivities via deconvolution, and (iii) a way to generate a linear operator – a dictionary – partially and approximately capable of representing variations on the wavelet shape, emulating some effects of the subsoil, from which is possible to accomplish a reflectivity inversion. By the end, it is presented a set of results that demonstrate the viability of such approaches, the possible gain when they are applied – including compression – and some opportunities for future works mixing geophysics and computer science.
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