An ant colony algorithm for scheduling in flowshops with sequence-dependent setup times of jobs

被引:4
|
作者
Yuvraj Gajpal
Chandrasekharan Rajendran
Hans Ziegler
机构
[1] Indian Institute of Technology Madras,Department of Management Studies
[2] University of Passau,Faculty of Business Administration and Economics, Department of Operations, Production and Logistics Management
关键词
Schedule Problem; Local Search; Setup Time; Seed Sequence; Local Search Procedure;
D O I
暂无
中图分类号
学科分类号
摘要
The problem of scheduling in flowshops with sequence-dependent setup times of jobs is considered and solved by making use of ant colony optimization (ACO) algorithms. ACO is an algorithmic approach, inspired by the foraging behavior of real ants, that can be applied to the solution of combinatorial optimization problems. A new ant colony algorithm has been developed in this paper to solve the flowshop scheduling problem with the consideration of sequence-dependent setup times of jobs. The objective is to minimize the makespan. Artificial ants are used to construct solutions for flowshop scheduling problems, and the solutions are subsequently improved by a local search procedure. An existing ant colony algorithm and the proposed ant colony algorithm were compared with two existing heuristics. It was found after extensive computational investigation that the proposed ant colony algorithm gives promising and better results, as compared to those solutions given by the existing ant colony algorithm and the existing heuristics, for the flowshop scheduling problem under study.
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收藏
页码:416 / 424
页数:8
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