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Optimization of manual fabric-cutting process in apparel manufacture using genetic algorithms

机译:使用遗传算法优化服装制造中的手工裁剪工艺

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摘要

In apparel manufacturing, experience and subjective assessment of production planners are used quite often to plan the production schedules in their fabric-cutting departments. The quantities of cut-pieces produced by fabric-cutting departments based on these non-systematic schedules cannot fulfil the cut-piece requirements of the downstream sewing lines and minimize the makespan. This paper proposes a genetic algorithms (GAs) approach to optimize both me cut-piece requirements and the makespan of the conventional fabric-cutting departments using manual spreading and cutting methods. An optimization model for the manual fabric cutting process based on GAs was developed. Two sets of production data were collected to validate the performance of the model and the experimental results were obtained. From the results, it can be found that both the makespan and cut-piece fulfilment rates are improved in which the latter is improved significantly.
机译:在服装制造中,生产计划人员的经验和主观评估经常用于组织面料切割部门的生产计划。面料裁剪部门根据这些非系统性的时间表生产的裁片数量不能满足下游缝纫线的裁片要求,并且不能使生产期最小化。本文提出了一种遗传算法(GAs)方法,可以通过手动铺展和裁剪方法来优化裁剪件的需求和常规面料裁剪部门的生产期。建立了基于遗传算法的织物手工裁剪工艺优化模型。收集了两组生产数据以验证模型的性能,并获得了实验结果。从结果中可以发现,平整度和切割件的完成率都得到了提高,其中后者得到了显着的提高。

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