DocumentCode
424512
Title
Parallelizing Navier-Stokes Computations on a Variety of Architectural Platforms
Author
Jayasimha, D.N. ; Hayder, M.E. ; Pillay, S.K.
Author_Institution
Ohio State University
fYear
1995
fDate
1995
Firstpage
68
Lastpage
68
Abstract
We study the computational, communication, and scalability characteristics of a Computational Fluid Dynamics application, which solves the time accurate flow field of a jet using the compressible Navier-Stokes equations, on a variety of parallel architectural platforms. The platforms chosen for this study are a cluster of workstations (the LACE experimental testbed at NASA Lewis), a shared memory multiprocessor (the Cray YMP), distributed memory multiprocessors with different topologies — the IBM SP and the Cray T3D. We investigate the impact of various networks, connecting the cluster of workstations, on the performance of the application and the overheads induced by popular message passing libraries used for parallelization. The work also highlights the importance of matching the memory bandwidth to the processor speed for good single processor performance. By studying the performance of an application on a variety of architectures, we are able to point out the strengths and weaknesses of each of the example computing platforms
Keywords
Computational fluid dynamics; Concurrent computing; Joining processes; Message passing; NASA; Navier-Stokes equations; Network topology; Scalability; Testing; Workstations;
fLanguage
English
Publisher
ieee
Conference_Titel
Supercomputing, 1995. Proceedings of the IEEE/ACM SC95 Conference
Print_ISBN
0-89791-816-9
Type
conf
DOI
10.1109/SUPERC.1995.241965
Filename
1383205
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