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A Multi-Core CPU and Many-Core GPU Based Fast Parallel Shuffled Complex Evolution Global Optimization Approach

delete2016-01-01
delete34
PRE
AI
G
Guangyuan Kan *
K
Ke Liang
J
Jiren Li
L
Liuqian Ding
X
Xiaoyan He
H
Haijun Yu
张中伟 封面图
张中伟 (Dawei Zhang)
D
Depeng Zuo
Z
Zhenxin Bao
M
Mark Amo-Boateng
Z
Zhang, Mengjie
DOI:10.1109/TPDS.2016.2575822delete
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摘要

摘要

En 中文
In the field of hydrological modelling, the global and automatic parameter calibration has been a hot issue for many years. Among automatic parameter optimization algorithms, the shuffled complex evolution developed at the University of Arizona (SCE-UA) is the most successful method for stably and robustly locating the global best parameter values. Ever since the invention of the SCE-UA, the profession suddenly has a consistent way to calibrate watershed models. However, the computational efficiency of the SCE-UA significantly deteriorates when coping with big data and complex models. For the purpose of solving the efficiency problem, the recently emerging heterogeneous parallel computing (parallel computing by using the multi-core CPU and many-core GPU) was applied in the parallelization and acceleration of the SCE-UA. The original serial and proposed parallel SCE-UA were compared to test the performance based on the Griewank benchmark function. The comparison results indicated that the parallel SCE-UA converged much faster than the serial version and its optimization accuracy was the same as the serial version. It has a promising application prospect in the field of fast hydrological model parameter optimization.
Keyword:
parameter optimization
SCE-UA
multi-core CPU
many-core GPU
parallel computing
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期刊

IEEE Transactions on Parallel and Distributed Systems 封面图
IEEE Transactions on Parallel and Distributed Systems
IF:
6
论文数:
5.2K
被引数:
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机构

H
Hohai University
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2.3W
论文数: 1.8W
被引数: 2.1W
B
Beijing Normal University
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3.3W
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被引数: 4.2W
C
china institute of water resources & hydropower research
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M
ministry of water resources
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N
Nanjing Hydraulic Research Institute
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