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The scheduling of automatic guided vehicles for the workload balancing and travel time minimi-zation in the flexible manufacturing system by the nature-inspired algorithm

机译:通过自然启发算法在柔性制造系统中为平衡工作量和最小化旅行时间安排自动导引车调度

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The real-time scheduling of automatic guided vehicles (AGVs) in flexible manufacturing system (FMS) is observed to be highly critical and complex due to the dynamic variations of production requirements such as an imbalance of AGVs loading, the high travel time of AGVs, variation in jobs, and AGV routes to name a few. The output from FMS considerably depends on the effi-cient scheduling of AGVs in the FMS. The multi-objective scheduling decisions for AGVs by nature inspired algorithms yield a considerable reduction throughput time in the FMS. In this paper, investigations are carried out for the multi-objective scheduling of AGVs to simultaneously balance the workload of AGVs and to minimize the travel time of AGVs in the FMS. The multi-objective scheduling is carried out by the application of nature-inspired grey wolf optimization algorithm (GWO) to yield a balanced workload for AGVs and also to minimize the travel time of AGVs simultaneously in the FMS. The output yield of the GWO algorithm is compared with the results of benchmark problems from the literature. The resulting yield of the proposed algorithm for the multi-objective scheduling of AGVs is observed to outperform the existing algorithms for scheduling of AGVs.
机译:由于生产需求的动态变化(例如,AGV的负载不平衡,AGV的行进时间长,生产过程复杂),在柔性制造系统(FMS)中自动导引车(AGV)的实时调度被认为是非常关键和复杂的。工作变化和AGV路线等。 FMS的输出很大程度上取决于FMS中AGV的有效调度。本质上启发性算法针对AGV的多目标调度决策在FMS中产生了可观的减少吞吐量时间。本文针对AGV的多目标调度进行了研究,以同时平衡AGV的工作量并最大程度地减少AGV在FMS中的行驶时间。多目标调度是通过应用自然启发式灰狼优化算法(GWO)进行的,以为AGV产生平衡的工作量,并同时最小化AGV在FMS中的行驶时间。将GWO算法的输出产量与文献中基准问题的结果进行了比较。所提出的用于AGV的多目标调度的算法的结果被观察到优于现有的用于AGV的调度的算法。

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