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A multi-objective meta-heuristic approach for the design and planning of green supply chains - MBSA

机译:绿色供应链设计和规划的多目标元启发式方法-MBSA

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Supply Chains are complex networks that demand for decision supporting tools that can help the involved decision making process. Following this need the present paper studies the supply chain design and planning problem and proposes an optimization model to support the associated decisions. The proposed model is a Mixed Integer Linear Multi-objective Programming model, which is solved through a Simulated Annealing based multi-objective meta-heuristics algorithm - MBSA. The proposed algorithm defines the location and capacities of the supply chain entities (factories, warehouses and distribution centers) chooses the technologies to be installed in each production facility and defines the inventory profiles and material flows during the planning time horizon. Profit maximization and environmental impacts minimization are considered. The algorithm, MBSA, explores the feasible solution space using a new Local Search strategy with a Multi-Start mechanism. The performance of the proposed methodology is compared with an exact approach supported by a Pareto Frontier and as main conclusions it can be stated that the proposed algorithm proves to be very efficient when solving this type of complex problems. Several Key Performance Indicators are developed to validate the algorithm robustiveness and, in addition, the proposed approach is validated through the solution of several instances. (C) 2015 Elsevier Ltd. All rights reserved.
机译:供应链是复杂的网络,需要可支持相关决策过程的决策支持工具。根据这一需要,本文研究了供应链设计和计划问题,并提出了一个优化模型来支持相关决策。提出的模型是混合整数线性多目标规划模型,该模型通过基于模拟退火的多目标元启发式算法MBSA求解。所提出的算法定义了供应链实体(工厂,仓库和配送中心)的位置和能力,选择了要在每个生产设施中安装的技术,并定义了计划时间范围内的库存概况和物料流。考虑利润最大化和环境影响最小化。 MBSA算法使用具有多重启动机制的新本地搜索策略来探索可行的解决方案空间。将所提出的方法的性能与Pareto Frontier支持的精确方法进行了比较,并且可以得出主要结论:所提出的算法在解决这类复杂问题时被证明是非常有效的。开发了几个关键性能指标来验证算法的鲁棒性,此外,通过几种实例的解决方案来验证所提出的方法。 (C)2015 Elsevier Ltd.保留所有权利。

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