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A random key-based genetic algorithm for AGV dispatching in FMS

机译:FMS中基于随机密钥的遗传算法进行AGV调度

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Automated Guided Vehicle (AGV) is a mobile robot used highly in industrial applications to move materials from point to point. AGV helps to reduce cost of manufacturing and increases efficiency in a manufacturing system. In this paper, we focus on the dispatching of AGVs in a Flexible Manufacturing System (FMS). A FMS environment requires a flexible and adaptable material handling system. To overcome the complex system constraints of AGV dispatching in FMS, we model an AGV system by using network structure. We also propose an effective evolutionary approach for solving this problem as a network optimisation problem by Random Key-based Genetic Algorithm (RKGA). The objective is minimising the time required to complete all jobs (i.e. makespan). Numerical experiments for case study show the effectiveness of the proposed approach.
机译:自动导引车(AGV)是一种移动机器人,在工业应用中使用率很高,可以将物料逐点移动。 AGV有助于降低制造成本并提高制造系统的效率。在本文中,我们重点关注柔性制造系统(FMS)中的AGV调度。 FMS环境需要灵活且适应性强的物料处理系统。为了克服FMS中AGV调度的复杂系统约束,我们使用网络结构对AGV系统进行建模。我们还提出了一种有效的进化方法,通过基于随机密钥的遗传算法(RKGA)解决此问题,并将其作为网络优化问题。目的是最大程度地减少完成所有作业(即制造期)所需的时间。案例研究的数值实验表明了该方法的有效性。

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