Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs
This paper describes the design of a hierarchical parallel algorithm for accelerating community detection which involves partitioning a network into communities of densely connected nodes. The algorithm is based on the Louvain method developed at the Université Catholique de Louvain, which uses modu...
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sg-smu-ink.sis_research-30142014-02-04T11:54:04Z Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs CHEONG, Chun Yew HUYNH, Huynh Phung LO, David GOH, Rick Siow Mong This paper describes the design of a hierarchical parallel algorithm for accelerating community detection which involves partitioning a network into communities of densely connected nodes. The algorithm is based on the Louvain method developed at the Université Catholique de Louvain, which uses modularity to measure community quality and has been successfully applied on many different types of networks. The proposed hierarchical parallel algorithm targets three levels of parallelism in the Louvain method and it has been implemented on single-GPU and multi-GPU architectures. Benchmarking results on several large web-based networks and popular social networks show that on top of offering speedups of up to 5x, the single-GPU version is able to find better quality communities. On average, the multi-GPU version provides an additional 2x speedup over the single-GPU version but with a 3% degradation in community quality. 2013-08-01T07:00:00Z text https://ink.library.smu.edu.sg/sis_research/2015 info:doi/10.1007/978-3-642-40047-6_77 Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Community detection parallel algorithm GPU social networks Software Engineering |
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Community detection parallel algorithm GPU social networks Software Engineering CHEONG, Chun Yew HUYNH, Huynh Phung LO, David GOH, Rick Siow Mong Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs |
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This paper describes the design of a hierarchical parallel algorithm for accelerating community detection which involves partitioning a network into communities of densely connected nodes. The algorithm is based on the Louvain method developed at the Université Catholique de Louvain, which uses modularity to measure community quality and has been successfully applied on many different types of networks. The proposed hierarchical parallel algorithm targets three levels of parallelism in the Louvain method and it has been implemented on single-GPU and multi-GPU architectures. Benchmarking results on several large web-based networks and popular social networks show that on top of offering speedups of up to 5x, the single-GPU version is able to find better quality communities. On average, the multi-GPU version provides an additional 2x speedup over the single-GPU version but with a 3% degradation in community quality. |
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CHEONG, Chun Yew HUYNH, Huynh Phung LO, David GOH, Rick Siow Mong |
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CHEONG, Chun Yew HUYNH, Huynh Phung LO, David GOH, Rick Siow Mong |
author_sort |
CHEONG, Chun Yew |
title |
Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs |
title_short |
Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs |
title_full |
Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs |
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Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs |
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Hierarchical Parallel Algorithm for Modularity-Based Community Detection Using GPUs |
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hierarchical parallel algorithm for modularity-based community detection using gpus |
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Institutional Knowledge at Singapore Management University |
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2013 |
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https://ink.library.smu.edu.sg/sis_research/2015 |
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1770571773648044032 |