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A two-stage approach optimising PCB assembly on the sequential pick-and-place machine by a score-based slot selection method and a swarm intelligence approach

机译:通过基于分数的插槽选择方法和群体智能方法,采用两阶段方法优化顺序取放机器上的PCB组装

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摘要

PCB assembly on the sequential pick-and-place machine is a typical NP-hard combinatorial optimisation problem which is a critical bottleneck in electronic product manufacturing industry. In this paper, a two-stage approach is proposed. In the first stage, the distance score with weights selection (DSWS) method is proposed to select a suited set of slots to load feeders. In the second stage, a novel swarm intelligence approach, called the elimination with decay-based swarm intelligence approach (EDSIA) is proposed to solve the problems of assignment of feeders to the selected slots and the placement sequence of the components. In EDSIA, a new population evolution mechanism, based on proposed elimination coefficient and decay factor is proposed to propel the population forwards the global optimum. The numerical results and comparisons illustrate the effectiveness and efficiency of the proposed two-stage approach.
机译:顺序取放机器上的PCB组装是一个典型的NP-hard组合优化问题,这是电子产品制造行业的关键瓶颈。本文提出了一种两阶段的方法。在第一阶段,提出了带有权重选择的距离得分(DSWS)方法,以选择适合负荷装载机的一组槽。在第二阶段中,提出了一种新颖的群体智能方法,称为基于衰减的群体智能方法(EDSIA),以解决将馈线分配到选定插槽以及部件放置顺序的问题。在EDSIA中,提出了一种基于提出的消除系数和衰减因子的新的种群演化机制,以推动种群向前迈进全局最优。数值结果和比较结果表明了所提出的两阶段方法的有效性和效率。

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