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Mathematical model and metaheuristics for simultaneous balancing and sequencing of a robotic mixed-model assembly line

机译:机器人混合模型装配线同时平衡和测序的数学模型与血管训练

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This article presents the first method to simultaneously balance and sequence robotic mixed-model assembly lines (RMALB/S), which involves three sub-problems: task assignment, model sequencing and robot allocation. A new mixed-integer programming model is developed to minimize makespan and, using CPLEX solver, small-size problems are solved for optimality. Two metaheuristics, the restarted simulated annealing algorithm and co-evolutionary algorithm, are developed and improved to address this NP-hard problem. The restarted simulated annealing method replaces the current temperature with a new temperature to restart the search process. The co-evolutionary method uses a restart mechanism to generate a new population by modifying several vectors simultaneously. The proposed algorithms are tested on a set of benchmark problems and compared with five other high-performing metaheuristics. The proposed algorithms outperform their original editions and the benchmarked methods. The proposed algorithms are able to solve the balancing and sequencing problem of a robotic mixed-model assembly line effectively and efficiently.
机译:本文介绍了同时平衡和序列机器人混合模型装配线(RMALB / s)的第一种方法,涉及三个子问题:任务分配,模型排序和机器人分配。开发了一种新的混合整数编程模型以最大限度地减少MakEspan,并使用CPLEX求解器,解决了小尺寸问题以获得最佳状态。开发和改进了两种半导体,重启的模拟退火算法和共同进化算法,以解决这种NP难题。重启模拟退火方法用新的温度取代了当前温度以重新启动搜索过程。共同进化方法使用重启机制来通过同时修改若干向量来生成新的人口。所提出的算法在一组基准问题上进行测试,并与其他五个高性能的殖民学相比。所提出的算法优于其原始版本和基准方法。所提出的算法能够有效且有效地解决机器人混合模型装配线的平衡和排序问题。

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