2012Unpublished venueRequires access

Bin-Share Stacking for 3D Converted Wave Processing

Alex A. Falkovskiy, Robert Tilson, Gerry Schlosser, Elvis Floreani

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Abstract

A Bin-Share Stacking method is proposed for maintaining an optimum bin size for 3D converted wave stacking. This Bin-Sharing method for stacking converted waves allows for keeping the same grid and bin sizes as used for stacking P-P data, with the P-S data stacking radius equivalent to a larger bin size. One advantage of this is that the stacked P-S data is output on the same grid as the P-P data. A second advantage is to optimally vary the stacking bin radius with time which is important for shallow depths as the optimum bin size is larger than that of deeper horizons.

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What this paper is about

A Bin-Share Stacking method is proposed for maintaining an optimum bin size for 3D converted wave stacking. This Bin-Sharing method for stacking converted waves allows for keeping the same grid and bin sizes as used for stacking P-P data, with the P-S data stacking radius equivalent to a larger bin size. One advantage of this is that the stacked P-S data is output on the same grid as the P-P data. A second advantage is to optimally vary the stacking bin radius with time which is important for shallow depths as the optimum bin size is larger than that of deeper horizons.

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Available abstract

A Bin-Share Stacking method is proposed for maintaining an optimum bin size for 3D converted wave stacking. This Bin-Sharing method for stacking converted waves allows for keeping the same grid and bin sizes as used for stacking P-P data, with the P-S data stacking radius equivalent to a larger bin size. One advantage of this is that the stacked P-S data is output on the same grid as the P-P data. A second advantage is to optimally vary the stacking bin radius with time which is important for shallow depths as the optimum bin size is larger than that of deeper horizons.

Key concepts: Bin, Stacking, RADIUS, Grid, Computer science, Mathematics, Physics, Algorithm

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