A hybrid evolutionary algorithm to solve the job shop scheduling problem

被引:0
|
作者
T. C. E. Cheng
Bo Peng
Zhipeng Lü
机构
[1] The Hong Kong Polytechnic University,Department of Logistics and Maritime Studies
[2] Huazhong University of Science and Technology,School of Computer Science
来源
关键词
Job shop scheduling; Evolutionary algorithm; Recombination operator; Population updating;
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摘要
This paper presents a Hybrid Evolutionary Algorithm (HEA) to solve the Job Shop Scheduling Problem (JSP). Incorporating a tabu search procedure into the framework of an evolutionary algorithm, the HEA embraces several distinguishing features such as a longest common sequence based recombination operator and a similarity-and-quality based replacement criterion for population updating. The HEA is able to easily generate the best-known solutions for 90 % of the tested difficult instances widely used in the literature, demonstrating its efficacy in terms of both solution quality and computational efficiency. In particular, the HEA identifies a better upper bound for two of these difficult instances.
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页码:223 / 237
页数:14
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