Multi-objective unbalanced assignment problem with restriction of jobs to agents via NSGA-II

Amiya Biswas, A. K. Bhunia, A. Shaikh
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引用次数: 2

Abstract

In this paper, an approach based on genetic algorithm has been proposed for solving multi-objective unbalanced assignment problems with restriction of job(s) to different agents which may arise due to the inability/poor efficiency of performing certain jobs by some agents dealing with an additional constraint on the maximum number of jobs that can be performed by an agent. As the cost and time are considered as the most important factors for managerial decision in economic/industrial establishments, so here the total cost of assignment of jobs to agents and the total time of completion of jobs by the agents are considered as the two prime objectives. This gives rise to an NP-hard 0-1 programming problem and to solve this problem, we have equipped NSGA-II with a newly developed crossover having the capability of repairing infeasible solution and two new mutation schemes. Also, for comparison of the results obtained from this algorithm, some other variants of this algorithm with existing crossover and mutation schemes have been considered. Finally, to illustrate the performance of proposed approach, a set of test problems have been solved and the results have been analysed for different variants of NSGA-II and some potential future research directions has been discussed.
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基于NSGA-II的任务约束agent的多目标不平衡分配问题
本文提出了一种基于遗传算法的多目标不平衡分配问题,该问题是由于某些智能体无法或效率低下地完成某些任务而导致的,并且对一个智能体可以完成的最大任务数量进行了额外的约束。由于成本和时间被认为是经济/工业机构管理决策的最重要因素,因此这里将工作分配给代理人的总成本和代理人完成工作的总时间视为两个主要目标。这就产生了NP-hard 0-1规划问题,为了解决这个问题,我们为NSGA-II配备了一个新开发的具有修复不可行解能力的交叉器和两个新的突变方案。此外,为了比较该算法的结果,还考虑了该算法的其他一些变体与现有的交叉和突变方案。最后,为了说明所提出方法的性能,解决了一系列测试问题,并对不同NSGA-II变体的结果进行了分析,并讨论了一些潜在的未来研究方向。
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