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Crisp and interval inventory models for ameliorating item with Weibull distributed amelioration and deterioration via different variants of quantum behaved particle swarm optimization-based techniques

机译:通过基于量子行为粒子群优化技术的不同变体改进和减弱Weibull分布的物品的酥脆和区间库存模型

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This paper presents two inventory models for ameliorating items under crisp and interval environments. In these models, three-parameter Weibull distribution is considered to represent both the amelioration and deterioration rates. In crisp, an inventory model is formulated for ameliorating item with fixed values of different inventory parameters. Due to uncertainty, these parameters may not be fixed. In this context, another inventory model with interval valued parameters is developed. Also, demand is dependent on the selling price and advertisement frequency of the product. The corresponding profit maximization problem has been developed. For solving the problem, different variants of quantum behaved particle swarm optimization technique (QPSO) are applied. To validate the proposed models, two numerical examples are considered and solved. The results are compared for different variants of QPSO techniques. Finally, graphical sensitivity analyses are presented to study the impact of several system parameters on cycle length, initial stock level along with average profit for both the models.
机译:本文提出了两种库存模型,用于改善在明快和间隔环境下的物料。在这些模型中,三参数威布尔分布被认为代表了改善率和劣化率。简而言之,制定了库存模型以改善具有不同库存参数的固定值的物料。由于不确定性,这些参数可能无法固定。在这种情况下,开发了另一个具有区间值参数的库存模型。而且,需求取决于产品的售价和广告频率。已经开发了相应的利润最大化问题。为了解决该问题,应用了量子行为粒子群优化技术(QPSO)的不同变体。为了验证所提出的模型,考虑并求解了两个数值示例。比较了QPSO技术的不同变体的结果。最后,提出了图形敏感性分析来研究两个模型的几个系统参数对周期长度,初始库存水平以及平均利润的影响。

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