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A genetic algorithm based approach to the mixed-model assembly line balancing problem of type II

机译:基于遗传算法的II型混合流水线平衡问题

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Mixed-model assembly lines allow for the simultaneous assembly of a set of similar models of a product, which may be launched in the assembly line in any order and mix. As current markets are characterized by a growing trend for higher product variability, mixed-model assembly lines are preferred over the traditional single-model assembly lines. This paper presents a mathematical programming model and an iterative genetic algorithm-based procedure for the mixed-model assembly line balancing problem (MALBP) with parallel workstations, in which the goal is to maximise the production rate of the line for a pre-determined number of operators. The addressed problem accounts for some relevant issues that reflect the operating conditions of real-world assembly lines, like zoning constraints and workload balancing and also allows the decision maker to control the generation of parallel workstations.
机译:混合模型装配线允许同时组装一组相似模型的产品,这些产品可以以任何顺序和混合物在装配线中启动。由于当前市场的特点是产品可变性越来越高,因此,混合模型装配线比传统的单一模型装配线更受青睐。本文针对具有并行工作站的混合模型装配线平衡问题(MALBP),提出了一个数学编程模型和一个基于迭代遗传算法的程序,其目的是使预定数量的生产线的生产率最大化运营商。解决的问题解决了一些相关问题,这些问题反映了实际装配线的运行状况,例如分区约束和工作负载平衡,还使决策者可以控制并行工作站的生成。

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