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首页> 外文期刊>Applied Soft Computing >Location based treatment activities for end of life products network design under uncertainty by a robust multi-objective memetic-based heuristic approach
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Location based treatment activities for end of life products network design under uncertainty by a robust multi-objective memetic-based heuristic approach

机译:通过基于鲁棒的多目标模因启发式方法的不确定性下的最终产品网络设计的基于位置的处理活动

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摘要

Rapid growth in world population and recourse limitations necessitate remanufacturing of products and their parts/modules. Managing these processes requires special activities such as inspection, disassembly, and sorting activities known as treatment activities. This paper proposes a capacitated multi-echelon, multi-product reverse logistic network design with fuzzy returned products in which both locations of the treatment activities and facilities are decision variables. As the obtained nonlinear mixed integer programming model is a combinatorial problem, a memetic-based heuristic approach is presented to solve the resulted model. To validate the proposed memetic-based heuristic method, the obtained results are compared with the results of the linear approximation of the model, which is obtained by a commercial optimization package. Moreover, due to inherent uncertainty in return products, demands of these products are considered as uncertain parameters and therefore a fuzzy approach is employed to tackle this matter. In order to deal with the uncertainty, a stochastic simulation approach is employed to defuzzify the demands, where extra costs due to opening new centers or extra transportation costs may be imposed to the system. These costs are considered as penalty in the objective function. To minimize the resulting penalties during simulation's iterations, the average of penalties is added to the objective function of the deterministic model considered as the primary objective function and variance of penalties are considered as the secondary objective function to make a robust solution. The resulted bi-objective model is solved through goal programming method to minimizing the objectives, simultaneously.
机译:世界人口的快速增长和资源限制使得必须对产品及其零件/模块进行再制造。管理这些过程需要特殊的活动,例如检查,拆卸和分类活动(称为处理活动)。本文提出了一种带有模糊退回产品的能力强的多级,多产品逆向物流网络设计,其中处理活动和设施的位置都是决策变量。由于所获得的非线性混合整数规划模型是一个组合问题,因此提出了一种基于模因的启发式方法来求解结果模型。为了验证所提出的基于模因的启发式方法,将获得的结果与通过商业优化包获得的模型的线性近似结果进行比较。此外,由于退货产品固有的不确定性,这些产品的需求被视为不确定的参数,因此采用模糊方法来解决此问题。为了处理不确定性,采用了一种随机模拟方法来对需求进行模糊化处理,在这种情况下,由于开设新中心而产生的额外成本或系统可能会产生额外的运输成本。这些成本在目标函数中被视为损失。为了使仿真迭代过程中产生的罚分最小化,将罚分的平均值添加到确定性模型的目标函数中,该模型被视为主要目标函数,而罚分的方差被视为次要目标函数,从而形成了可靠的解决方案。通过目标编程方法求解生成的双目标模型,以同时最小化目标。

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