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Assembly line balancing under uncertainty: Robust optimization models and exact solution method

机译:不确定条件下的流水线平衡:稳健的优化模型和精确的求解方法

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摘要

This research deals with line balancing under uncertainty and presents two robust optimization models. Interval uncertainty for operation times was assumed. The methods proposed generate line designs that are protected against this type of disruptions. A decomposition based algorithm was developed and combined with enhancement strategies to solve optimally large scale instances. The efficiency of this algorithm was tested and the experimental results were presented. The theoretical contribution of this paper lies in the novel models proposed and the decomposition based exact algorithm developed. Moreover, it is of practical interest since the production rate of the assembly lines designed with our algorithm will be more reliable as uncertainty is incorporated. Furthermore, this is a pioneering work on robust assembly line balancing and should serve as the basis for a decision support system on this subject.
机译:这项研究涉及不确定性下的线路平衡,并提出了两种鲁棒的优化模型。假设操作时间间隔不确定。所提出的方法产生了可以防止这种中断的生产线设计。开发了一种基于分解的算法,并将其与增强策略相结合以解决最佳的大型实例。测试了该算法的效率,并给出了实验结果。本文的理论贡献在于提出了新颖的模型并开发了基于分解的精确算法。此外,由于结合了不确定性,使用我们的算法设计的装配线的生产率将更加可靠,因此具有实际意义。此外,这是在稳固的流水线平衡方面的开创性工作,应作为该主题决策支持系统的基础。

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