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공공누리This item is licensed Korea Open Government License

dc.contributor.author
최성환
dc.contributor.author
김우연
dc.contributor.author
권오경
dc.contributor.author
김재욱
dc.date.accessioned
2019-08-28T07:41:56Z
dc.date.available
2019-08-28T07:41:56Z
dc.date.issued
2016-08-10
dc.identifier.issn
0192-8651
dc.identifier.uri
https://repository.kisti.re.kr/handle/10580/14539
dc.identifier.uri
http://www.ndsl.kr/ndsl/search/detail/article/articleSearchResultDetail.do?cn=NART76115182
dc.description.abstract
We investigated the performance of heterogeneous computing with graphics processing units (GPUs) and many integrated core (MIC) with 20 CPU cores (203CPU). As a practical example toward large scale electronic structure calculations using gridbased methods, we evaluated the Hartree potentials of silver nanoparticles with various sizes (3.1, 3.7, 4.9, 6.1, and 6.9 nm) via a direct integral method supported by the sinc basis set. The so-called work stealing scheduler was used for efficient heterogeneous computing via the balanced dynamic distribution of workloads between all processors on a given architecture without any prior information on their individual performances. 
dc.language
eng
dc.relation.ispartofseries
Journal of Computational Chemistry
dc.title
Performance of Heterogeneous Computing with Graphics Processing Unit and Many Integrated Core for Hartree Potential Calculations on a Numerical Grid
dc.citation.number
24
dc.citation.startPage
2193
dc.citation.volume
37
dc.subject.keyword
Heterogeneous Computing
dc.subject.keyword
HPC
dc.subject.keyword
Xeon Phi
dc.subject.keyword
GPU
dc.subject.keyword
Computational Chemistry
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