Solving multi-objective supply chain management using non-dominated sorting genetic algorithm

Batool Atiyah Khalaf
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Abstract

Focusing on production processes is the decisive factor in managing an efficient supply chain that leads to the company's success. The objective constraints in the model include all the goals the company seeks to achieve and the level to achieve for each. In addition to clarifying the contribution of each decision variable in achieving the specified levels of the different goals, The conclusions reached are the results that prove the possibility of solving a problem. Applying the mathematical model according to the demand for parts (derived from the demand for the final product) contributed significantly to saving the stock of raw materials, as (100) refers to the quantity that is kept as a regular stock for the first week and varies from one week to another according to the change in demand. As a result of reducing the stock of materials, the costs associated with it will decrease, and the difference can be seen in the total costs of storing raw materials and semi-manufactured parts, which is estimated at (47929.1) Iraqi dinars) for the storage of materials and parts for all weeks, according to the planning periods established by the company. By applying the genetic algorithm, the total storage costs were calculated, and it was (13024.8) Iraqi dinars, which is the most critical indicator of success in improving the supply chain performance.
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用非支配排序遗传算法求解多目标供应链管理
专注于生产过程是管理高效供应链的决定性因素,从而导致公司的成功。模型中的目标约束包括公司寻求实现的所有目标以及每个目标要实现的水平。除了阐明每个决策变量在实现不同目标的指定水平中的贡献之外,得出的结论是证明解决问题的可能性的结果。根据零件的需求(从最终产品的需求推导而来)应用数学模型对节省原材料库存有很大的帮助,因为(100)是指第一周作为常规库存的数量,并根据需求的变化而在一周内变化。由于材料库存的减少,与之相关的费用将会减少,根据公司制定的计划期限,储存原材料和半成品零件的总费用估计为(47929.1)伊拉克第纳尔(伊拉克第纳尔)。应用遗传算法,计算总存储成本为(13024.8)伊拉克第纳尔,这是成功改善供应链绩效的最关键指标。
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