DocumentCode :
1831502
Title :
Parallel algorithms for singular value decomposition
Author :
Ulrey, Renard R. ; Maciejewski, Anthony A. ; Siegel, Howard Jay
Author_Institution :
NCR Corp., Ft. Collins, CO, USA
fYear :
1994
fDate :
26-29 Apr 1994
Firstpage :
524
Lastpage :
533
Abstract :
In motion rate control applications, it is faster and easier to solve the equations involved if the singular value decomposition (SVD) of the Jacobian matrix is first determined. A parallel SVD algorithm with minimum execution time is desired. One approach using Givens rotations lends itself to parallelization, reduces the iterative nature of the algorithm, and efficiently handles rectangular matrices. This research focuses on the minimization of the SVD execution time when using this approach. Specific issues addressed include considerations of data mapping, effects of the number of processors used on execution time, impacts of the interconnection network on performance, and trade-offs between modes of parallelism. Results are verified by experimental data collected on the PASM parallel machine prototype
Keywords :
matrix algebra; multiprocessor interconnection networks; parallel algorithms; parallel machines; performance evaluation; Givens rotations; Jacobian matrix; PASM; data mapping; execution time; interconnection network; iterative nature; minimization; minimum execution time; motion rate control applications; parallel SVD algorithm; parallel algorithms; parallel machine prototype; parallelization; performance; rectangular matrices; singular value decomposition; Equations; Iterative algorithms; Iterative methods; Jacobian matrices; Matrix decomposition; Motion control; Multiprocessor interconnection networks; Parallel algorithms; Parallel machines; Singular value decomposition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel Processing Symposium, 1994. Proceedings., Eighth International
Conference_Location :
Cancun
Print_ISBN :
0-8186-5602-6
Type :
conf
DOI :
10.1109/IPPS.1994.288253
Filename :
288253
Link To Document :
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