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Hybridization of an interactive fuzzy methodology with a lexicographic min-max approach for optimizing a multi-period multi-product multi-echelon sustainable closed-loop supply chain network

机译:具有词典最大近极方法的交互式模糊方法的杂交,用于优化多周期多产品多梯队可持续闭环供应链网络

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Here, a fuzzy multi-period multi-echelon multi-objective mixed-integer non-linear programming (MOMINLP) model is considered for a sustainable multi-product multi-site multi-distribution multi-customer supply chain in forward flow having multi-centers for collecting, checking, repairing and decomposing and multi-disposal centers in the reverse flow. Minimizing the total cost of the closed-loop supply chain (CLSC), elevating the customer satisfaction degrees, minimizing the total waiting time, minimizing the manufacturing site greenhouse gases and minimizing the C0_2 emissions from vehicles are considered as the objective functions. Furthermore, integration of strategic decisions of flow allocations and vehicle routing with tactical and operational decisions such as production and workforce planning and improving upon customer satisfaction are considered. Also, we are concerned with the stability of the model and the accuracy of the obtained solution. We consider uncertainty and propose an appropriate method to develop a fair optimization of the distribution of raw materials and products to the supply chain participants. The presented solution method initially considers an adaptation of the lexicographic min-max fairness approach to finding a short delay for the delivery time of all the existing flows between every two consecutive echelons of the CLSC network. Then, a service quality measure is introduced to evaluate the uncertain delivery time considering the delay unpleasantness measure (DUM) index and measure the delay unpleasantness of all the existing delivery time delays. The model is converted to an auxiliary crisp MOMINLP problem by taking appropriate strategies, and a novel interactive fuzzy approach is proposed to find a compromised solution. The effectiveness of the algorithm is illustrated through a generated case study. The validity of the proposed method is confirmed by comparing the obtained results with the ones obtained by some other valid approaches, making use of distance and dispersion measure functions. Computational results show the proposed fuzzy method to be more efficient than other approaches. The encouraging results provide motivations for the use of our proposed fuzzy approach to solving other kinds of multi-objective mixed-integer models.
机译:这里,用于在具有多中心的前向流动的可持续多产品多站点多分布多客户供应链中考虑模糊多时段多梯度多目标混合整数非线性编程(MOMINLP)模型用于收集,检查,修复和分解和在反转流动中的多处理中心。最小化闭环供应链(CLSC)的总成本,提高客户满意度,最小化总等待时间,最小化制造场地温室气体,最小化车辆的C0_2排放被认为是目标功能。此外,考虑了流动分配和车辆路线的战略决策的战略和运营决策,如生产和劳动力规划以及提高客户满意度的战略和运营决策。此外,我们涉及模型的稳定性和所得溶液的准确性。我们考虑不确定性,并提出了一种适当的方法,以开发对供应链参与者的原材料和产品分配的公平优化。呈现的解决方法最初考虑了对词典最大最大公平性方法的适应,以找到所有现有流程之间的所有现有流的交付时间的短延迟。然后,引入服务质量措施以评估考虑延迟令人不愉快测量(DUM)指数的不确定交货时间,并测量所有现有交付时间延迟的延迟不愉快。通过采取适当的策略,该模型转换为辅助清脆Mominlp问题,并提出了一种新颖的互动模糊方法来寻找受损解决方案。通过生成的案例研究说明了算法的有效性。通过将获得的结果与通过一些其他有效方法获得的结果进行比较,通过使用距离和色散测量功能来确认所提出的方法的有效性。计算结果表明,所提出的模糊方法比其他方法更有效。令人鼓舞的结果为使用我们提出的模糊方法来解决其他多目标混合整数模型提供了激励。

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