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A multi-objective particle swarm optimisation for integrated configuration design and scheduling in reconfigurable manufacturing system

机译:可重构制造系统集成配置设计和调度的多目标粒子群优化

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摘要

To provide accurate capacity and functionality needed for each demand period (DP), a reconfigurable manufacturing system (RMS) is able to change its configuration with time. For the RMS with multi-part flow line configuration that concurrently produces multiple parts within the same family, the cost and delivery time are dependent on its configuration and relating scheduling for any DP. So far, the study on solution method for the integrated optimisation problem of configuration design and scheduling for RMS is scarce. To efficiently find solutions with tradeoffs between total cost and tardiness, a multi-objective particle swarm optimisation (MoPSO) based on crowding distance and external Pareto solution archive is presented to solve practical-sized problems. The devised encoding and decoding methods along with the particle updating mechanism of MoPSO ensure any particle a feasible solution. The comparison between MoPSO and epsilon-constraint method versus small-sized cases illustrates the effectiveness of MoPSO. The comparative results between MoPSO and nondominated sorting genetic algorithm II (NSGA-II) against eight problems show that the MoPSO outperforms the NSGA-II in both solution quality and computation efficiency for the integrated optimisation problem.
机译:为了提供每个需求期(DP)所需的准确容量和功能,可重新配置的制造系统(RMS)能够随时间改变其配置。对于具有多部分流线配置的RMS,同时在同一系列内产生多个部分,成本和交付时间取决于其配置并对任何DP相关调度。到目前为止,关于配置设计的综合优化问题的解决方法研究和RMS的调度是稀缺的。为了有效地找到具有总成本和迟到之间的权衡的解决方案,提出了一种基于拥挤距离和外部Pareto解决方案存档的多目标粒子群优化(MOPSO)以解决实际尺寸的问题。设计的编码和解码方法以及MOPSO的粒子更新机制确保了任何粒子是可行的解决方案。 MOPSO和epsilon-约束方法与小型情况相比的比较说明了MOPSO的有效性。对八个问题的MOPSO和NondoMinated分类遗传算法II(NSGA-II)之间的比较结果表明,MOPSO在综合优化问题中占据了溶液质量和计算效率的NSGA-II。

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