HR: 12:00h
AN: S32A-05 [Abstracts]
TI: Computational Problem in Three-Dimensional, Plane-wave Imaging with P to S Converted Waves Recorded by
Broadband Arrays
AU: * Pavlis, G L
EM: pavlis@indiana.edu
AF: Indiana University, Dept. of Geol. Sci.
1001 East 10th St., Bloomington, IN 47405
United States
AU: Yi, Z
EM: yiz@indiana.edu
AF: Indiana University, Dept. of Computer Science
150 S. Woodlawn Ave., Bloomington, IN 47405
United States
AB:
We have developed a set of computer programs that implement the three-dimensional imaging methods described by Poppeliers and
Pavlis [2003]. The original work developed the theoretical framework for this technique, but did not implement the fully
three-dimensional version due to the requirement that efficient computational procedures are necessary to make the algorithm
feasible. We implemented the concepts in two programs linked by a relational database. The first program implements a plane
wave decomposition of the wavefield using the pseudostation stacking method to interpolate the wavefield onto a regular
spatial grid. We then use a relational database to sort data into plane wave components linked to this interpolated, regular
grid. Imaging is completed using sums of plane wave components in an integral equation derived from the inverse generalized
Radon transform. This allows the image to accumulate incrementally as a weighted sum of plane wave components with the
weights varying in space reducing the memory requirements to practical levels on modern, distributed-memory, parallel
systems. This imaging algorithm is readily adaptable on massively parallel machines by distributing back propagation
computations for plane wave components among processors and devoting one node to summing the components. The algorithm is
built around a new object-oriented, C++ library for manipulating seismograms and the two and three-dimensional data objects
that are intermediaries in the algorithm.
DE: 7260 Theory and modeling
DE: 7294 Instruments and techniques
DE: 7203 Body wave propagation
SC: Seismology [S]
MN: 2004 AGU Fall Meeting