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Genetic optimization of JIT operation schedules for fabric-cutting process in apparel manufacture

机译:服装制造中面料裁剪过程的JIT操作计划的遗传优化

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摘要

Fashion products require a significant amount of customization due to differences in body measurements, diverse preferences on style and replacement cycle. It is necessary for today's apparel industry to be responsive to the ever-changing fashion market. Just-in-time production is a must-go direction for apparel manufacturing. Apparel industry tends to generate more production orders, which are split into smaller jobs in order to provide customers with timely and customized fashion products. It makes the difficult task of production planning even more challenging if the due times of production orders are fuzzy and resource competing. In this paper, genetic algorithms and fuzzy set theory are used to generate just-in-time fabric-cutting schedules in a dynamic and fuzzy cutting environment. Two sets of real production data were collected to validate the proposed genetic optimization method. Experimental results demonstrate that the genetically optimized schedules improve the internal satisfaction of downstream production departments and reduce the production cost simultaneously.
机译:由于身体尺寸的差异,款式和更换周期的不同偏好,时尚产品需要大量定制。对于当今的服装行业而言,有必要对瞬息万变的时装市场有所反应。即时生产是服装制造的必然方向。服装行业倾向于产生更多的生产订单,这些订单被细分为多个较小的工作,以便为客户提供及时和定制的时尚产品。如果生产订单的到期时间模糊并且资源竞争,那么使生产计划的艰巨任务更具挑战性。在本文中,遗传算法和模糊集理论被用于在动态和模糊切割环境中生成实时的织物切割计划。收集了两组实际生产数据,以验证所提出的遗传优化方法。实验结果表明,经过遗传优化的进度计划可以提高下游生产部门的内部满意度,同时降低生产成本。

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