Master'sOpen Access

Eş zamanlı hesaplama ve veri yükü dengeleme için çizge/hiperçizge bölümleme modelleri

2018
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Advisor: Prof. Dr. Cevdet Aykanat

Abstract (EN)

In the literature, several successful partitioning models and methods have been proposed and used for computational load balancing of irregularly sparse appli- cations on distributed-memory architectures. However, the literature lacks par- titioning models and methods that encode both computational and data load balancing of processors. In this thesis, we try to close this gap by proposing graph and hypergraph partitioning models and methods that simultaneously en- code computational and data load balancing of processors. The validity of the proposed models and methods are tested on two widely-used irregularly sparse applications: parallel mesh simulations and parallel sparse matrix sparse matrix multiplication.

Author

Dr. Mestan Fırat Çeliktuğ

How to Cite

Mestan Fırat Çeliktuğ (Master Thesis). Eş zamanlı hesaplama ve veri yükü dengeleme için çizge/hiperçizge bölümleme modelleri, 2018, Bilkent University.

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