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首页> 外文期刊>Soft computing: A fusion of foundations, methodologies and applications >Bi-objective location problem with balanced allocation of customers and Bernoulli demands: two solution approaches
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Bi-objective location problem with balanced allocation of customers and Bernoulli demands: two solution approaches

机译:均衡分配客户和伯努利需求的双目标定位问题:两种解决方案方法

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摘要

A bi-objective stochastic capacitated multi-facility location-allocation problem is presented where the customer demands have Bernoulli distributions. The capacity of a facility for accepting customers is limited so that if the number of allocated customers to the facility is more than its capacity, a shortage will occur. The problem is formulated as a bi-objective mathematical programming model. The first objective is to find optimal locations of facilities among potential locations and optimal allocations of stochastic customers to the facilities so that the total sum of fixed costs of establishment of the facilities and the expected values of servicing and shortage costs is minimized. The second objective is to balance the number of allocated customers to the facilities. To solve small problems, the augmented epsilon-constraint method is used. Also, two metaheuristic solution approaches, non-dominated sorting genetic algorithm II (NSGA-II) and controlled elitist non-dominated sorting genetic algorithm II (CNSGA-II), are presented for solving large problems. Several sample problems are generated and with various criteria are tested to show the performance of the proposed model and the solution approaches.
机译:介绍了客户要求具有Bernoulli分布的双目标随机电容多设施定位问题。接受客户的设施的能力是有限的,因此如果对设施的分配客户的数量超过其容量,则会发生短缺。该问题被制定为双目标数学编程模型。第一个目标是在潜在地点之间找到最佳设施的设施,以及随机客户的最佳分配到设施,使设施的固定成本和预期服务价值和短缺成本的总和进行了最大化。第二个目标是将分配客户的数量平衡到设施。为了解决小问题,使用增强的epsilon-约束方法。此外,提出了两个成致求解方法,非主导的分类遗传算法II(NSGA-II)和受控的ELITIST非主导的分类遗传算法II(CNSGA-II),以解决大问题。生成了几个样本问题,并测试了各种标准,以显示所提出的模型和解决方案方法的性能。

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