masterThesis
Remoção de ruídos sísmicos utilizando transformada de wavelet 1D e 2D com software em desenvolvimento
Fecha
2011-04-05Registro en:
ECCO, Daniel. Remoção de ruídos sísmicos utilizando transformada de wavelet 1D e 2D com software em desenvolvimento. 2011. 85 f. Dissertação (Mestrado em Pesquisa e Desenvolvimento em Ciência e Engenharia de Petróleo) - Universidade Federal do Rio Grande do Norte, Natal, 2011.
Autor
Ecco, Daniel
Resumen
In the Hydrocarbon exploration activities, the great enigma is the location of the deposits. Great
efforts are undertaken in an attempt to better identify them, locate them and at the same time,
enhance cost-effectiveness relationship of extraction of oil. Seismic methods are the most widely
used because they are indirect, i.e., probing the subsurface layers without invading them. Seismogram
is the representation of the Earth s interior and its structures through a conveniently
disposed arrangement of the data obtained by seismic reflection. A major problem in this representation
is the intensity and variety of present noise in the seismogram, as the surface bearing
noise that contaminates the relevant signals, and may mask the desired information, brought by
waves scattered in deeper regions of the geological layers. It was developed a tool to suppress
these noises based on wavelet transform 1D and 2D. The Java language program makes the
separation of seismic images considering the directions (horizontal, vertical, mixed or local) and
bands of wavelengths that form these images, using the Daubechies Wavelets, Auto-resolution
and Tensor Product of wavelet bases. Besides, it was developed the option in a single image,
using the tensor product of two-dimensional wavelets or one-wavelet tensor product by identities.
In the latter case, we have the wavelet decomposition in a two dimensional signal in a single
direction. This decomposition has allowed to lengthen a certain direction the two-dimensional
Wavelets, correcting the effects of scales by applying Auto-resolutions. In other words, it has been
improved the treatment of a seismic image using 1D wavelet and 2D wavelet at different stages of
Auto-resolution. It was also implemented improvements in the display of images associated with
breakdowns in each Auto-resolution, facilitating the choices of images with the signals of interest
for image reconstruction without noise. The program was tested with real data and the results
were good
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