DocumentCode
2798788
Title
Tera-Scalable Algorithms for Variable-Density Elliptic Hydrodynamics with Spectral Accuracy
Author
Cook, Andrew W. ; Cabot, William H. ; Williams, Peter L. ; Miller, Brian J. ; De Supinski, Bronis R. ; Yates, Robert K. ; Welcome, Michael L.
Author_Institution
Lawrence Livermore National Laboratory
fYear
2005
fDate
12-18 Nov. 2005
Firstpage
60
Lastpage
60
Abstract
We describe Miranda, a massively parallel spectral/compact solver for variabledensity incompressible flow, including viscosity and species diffusivity effects. Miranda utilizes FFTs and band-diagonal matrix solvers to compute spatial derivatives to at least 10th-order accuracy. We have successfully ported this communicationintensive application to BlueGene/L and have explored both direct block parallel and transpose-based parallelization strategies for its implicit solvers. We have discovered a mapping strategy which results in virtually perfect scaling of the transpose method up to 65,536 processors of the BlueGene/L machine. Sustained global communication rates in Miranda typically run at 85% of the theoretical peak speed of the BlueGene/L torus network, while sustained communication plus computation speeds reach 2.76 TeraFLOPS. This effort represents the first time that a high-order variable-density incompressible flow solver with species diffusion has demonstrated sustained performance in the TeraFLOPS range.
Keywords
Computational modeling; Concurrent computing; Flexible printed circuits; Global communication; Government; Hydrodynamics; Laboratories; Navier-Stokes equations; Nonlinear equations; Viscosity;
fLanguage
English
Publisher
ieee
Conference_Titel
Supercomputing, 2005. Proceedings of the ACM/IEEE SC 2005 Conference
Print_ISBN
1-59593-061-2
Type
conf
DOI
10.1109/SC.2005.70
Filename
1560012
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