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Mathematical model and genetic optimization for the job shop scheduling problem in a mixed- and multi-product assembly environment : a case study based on the apparel industry

机译:混合和多产品装配环境中作业车间调度问题的数学模型和遗传优化:基于服装行业的案例研究

摘要

An effective job shop scheduling (JSS) in the manufacturing industry is helpful to meet the production demand and reduce the production cost, and to improve the ability to compete in the ever increasing volatile market demanding multiple products. In this paper, a universal mathematical model of the JSS problem for apparel assembly process is constructed. The objective of this model is to minimize the total penalties of earliness and tardiness by deciding when to start each order's production and how to assign the operations to machines (operators). A genetic optimization process is then presented to solve this model, in which a new chromosome representation, a heuristic initialization process and modified crossover and mutation operators are proposed. Three experiments using industrial data are illustrated to evaluate the performance of the proposed method. The experimental results demonstrate the effectiveness of the proposed algorithm to solve the JSS problem in a mixed- and multi-product assembly environment.
机译:制造业中有效的车间调度(JSS)有助于满足生产需求并降低生产成本,并提高在不断增长的需求多种产品的动荡市场中竞争的能力。本文构建了服装装配过程中JSS问题的通用数学模型。该模型的目的是通过决定何时开始每个订单的生产以及如何将操作分配给机器(操作员)来最大程度地减少提早和拖延的总损失。然后提出了遗传优化过程来求解该模型,其中提出了新的染色体表示,启发式初始化过程以及改进的交叉和变异算子。举例说明了使用工业数据进行的三个实验,以评估该方法的性能。实验结果证明了该算法在混合和多产品装配环境中解决JSS问题的有效性。

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