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Integration of a GA and PSO for discussing the impact of 3C product engineering changes on customisation degree

机译:GA和PSO的集成,用于讨论3C产品工程变更对定制度的影响

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摘要

Computer, Communication, Consumer (3C) electronics products have high uncertainty of demand as customers often change their demands. Therefore, manufacturers have to deal with Engineering Change (EC) situations to meet the needs of customers. Based on a literature review, this study has found that a Genetic Algorithm (GA) can yield optimal solutions for ECs, and that Particle Swarm Optimisation (PSO) can more efficiently converge to the optimal solution. Therefore, this study integrated the GA and PSO to determine the optimal manufacturing makespan upon ECs. For 3C products, customer preference is affected by customisation degree. This study developed a deviation utility loss-based customisation degree model that can indicate the gap between the makespan required by customers and optimal makespan from manufacturers upon ECs, as well as the impact of changes on unit price and fixed cost of product of the customisation degree upon EC and parameter change of the customisation degree model. The findings can provide 3C manufacturers with references to select the optimal parameters for difference situations.
机译:由于客户经常更改需求,因此计算机,通信,消费(3C)电子产品的需求具有很高的不确定性。因此,制造商必须应对工程变更(EC)的情况,以满足客户的需求。根据文献综述,该研究发现,遗传算法(GA)可以为EC提供最优解,而粒子群优化(PSO)可以更有效地收敛到最优解。因此,本研究综合了GA和PSO来确定EC的最佳制造周期。对于3C产品,客户偏好受定制程度的影响。这项研究建立了一个基于偏差效用损失的定制度模型,该模型可以指示客户要求的制造期和制造商对EC的最佳制造期之间的差距,以及定制度对产品单价和固定成本的影响根据定制度模型的EC和参数更改。这些发现可以为3C制造商提供参考,以为不同情况选择最佳参数。

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