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Simple Assembly Line Balancing Problem Type 2 By Variable Neighborhood Strategy Adaptive Search: A Case Study Garment Industry

机译:简单的装配线平衡问题2型变量邻域策略自适应搜索:案例研究服装行业

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This article aims to minimize cycle time for a simple assembly line balancing problem type 2 by presenting a variable neighborhood strategy adaptive search method (VaNSAS) in a case study of the garment industry considering the number and types of machines used in each workstation in a simple assembly line balancing problem type 2 (SALBP-2M). The variable neighborhood strategy adaptive search method (VaNSAS) is a new method that includes five main steps, which are (1) generate a set of tracks, (2) make all tracks operate in a specified black box, (3)operate the black box, (4) update the track, and (5) repeat the second to fourth steps until the termination condition is met. The proposed methods have been tested with two groups of test instances, which are datasets of (1) SALBP-2 and (2) SALBP-2M. The computational results show that the proposed methods outperform the best existing solution found by the LINGO modeling program. Therefore, the VaNSAS method provides a better solution and features a much lower computational time.
机译:本文旨在通过呈现可变邻域策略自适应搜索方法(蛇叶)在服装行业的案例研究中,最小化简单装配线平衡问题2的循环时间,考虑到每个工作站中使用的机器的数量和类型装配线平衡问题2类型(SALBP-2M)。变量邻域策略自适应搜索方法(vansas)是一种新方法,包括五个主要步骤,其中(1)生成一组曲目,(2)使所有轨道在指定的黑盒中运行,(3)操作黑色框,(4)更新曲目,(5)重复第二个步骤,直到满足终止条件。已经用两组测试实例测试了所提出的方法,其是(1)Salbp-2和(2)Salbp-2m的数据集。计算结果表明,该方法优于Lingo建模程序找到的最佳现有解决方案。因此,Vansas方法提供了更好的解决方案,并且具有更低的计算时间。

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