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A revised discrete particle swarm optimization algorithm for permutation flow-shop scheduling problem

delete2013-12-17
delete16
PRE
AI
C
Chun-Lung Chen *
S
Shin‐Ying Huang
Y
Yeu-Ruey Tzeng
DOI:10.1007/s00500-013-1199-zdelete
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摘要

摘要

En 中文
This research proposes a revised discrete particle swarm optimization (RDPSO) to solve the permutation flow-shop scheduling problem with the objective of minimizing makespan (PFSP-makespan). The candidate problem is one of the most studied NP-complete scheduling problems. RDPSO proposes new particle swarm learning strategies to thoroughly study how to properly apply the global best solution and the personal best solution to guide the search of RDPSO. A new filtered local search is developed to filter the solution regions that have been reviewed and guide the search to new solution regions in order to keep the search from premature convergence. Computational experiments on Taillard's benchmark problem sets demonstrate that RDPSO significantly outperforms all the existing PSO algorithms.
Keyword:
Permutation flow-shop scheduling problem
Particle swarm optimization
Makespan

期刊

Soft Computing 封面图
Soft Computing
IF:
2.5
论文数:
1.0W
被引数:
2.1W

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N
National Chengchi University
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1.2K
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A
academia sinica - taiwan
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论文数: 1.6W
被引数: 17
C
Chinese Culture University
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946
论文数: 1.2K
被引数: 1.3K
T
takming university science & technology
学者数:
73
论文数: 131
被引数: 0
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