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  4. Reduction to Condensed Forms for Symmetric Eigenvalue Problems on Multi-core Architectures
 
conference paper

Reduction to Condensed Forms for Symmetric Eigenvalue Problems on Multi-core Architectures

Bientinesi, Paolo
•
Igual, Francisco D.
•
Kressner, Daniel  
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2010
Parallel Processing And Applied Mathematics
8th International Conference on Parallel Processing and Applied Mathematics

We investigate the performance of the routines in LAPACK and the Successive Band Reduction (SBR) toolbox for the reduction of a dense matrix to tridiagonal form, a crucial preprocessing stage in the solution of the symmetric eigenvalue problem, on general-purpose multicore processors. In response to the advances of hardware accelerators, we also modify the code in SBR. to accelerate the computation by off-loading a significant part of the operations to a graphics processor (GPU). Performance results illustrate the parallelism and scalability of these algorithms on current high-performance multi-core architectures.

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