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Combining Extended Imperialist Competitive Algorithm with a Genetic Algorithm to Solve the Distributed Integration of Process Planning and Scheduling Problem

机译:将扩展帝国主义竞争算法与遗传算法结合起来解决过程规划和调度问题的分布式集成

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摘要

Distributed integration of process planning and scheduling (DIPPS) extends traditional integrated process planning and scheduling (IPPS) by considering the distributed features of manufacturing. In this study, we first establish a mathematical model which contains all constraints for the DIPPS problem. Then, the imperialist competitive algorithm (ICA) is extended to effectively solve the DIPPS problem by improving country structure, assimilation strategy, and adding resistance procedure. Next, the genetic algorithm (GA) is adapted to maintain the robustness of the plan and schedule after machine breakdown. Finally, we perform a two-stage experiment to prove the effectiveness and efficiency of extended ICA and GA in solving DIPPS problem with machine breakdown.
机译:通过考虑制造的分布式功能,流程规划和调度(DIPPS)的分布式集成(DIPPS)扩展了传统的集成流程规划和调度(IPPS)。在这项研究中,我们首先建立一个数学模型,其中包含Dipps问题的所有约束。然后,帝国主义竞争算法(ICA)延伸到通过改善国家结构,同化策略和添加抵抗程序来有效解决DIPPS问题。接下来,遗传算法(GA)适于维持计划和时间表在机器故障后的稳健性。最后,我们进行了两阶段的实验,以证明延长ICA和GA在解决机器故障的DIPP问题中的有效性和效率。

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