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Joint decision of inventory and pricing for deteriorating items with partial backlogging and multi-constraint

机译:带有部分积压和多约束的变质物品的库存和定价的联合决策

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摘要

This paper studies the joint decision of inventory replenishment and pricing of multiple retailers for deteriorating items with partial backlogging and multiple constraints. In the model, deterioration rate is simulated as time varying function of Weibull distribution. Two constraints are inbuilt in the model, i.e., supply capacity of the supplier and comprehensive customer service level of retailers. This is a multi-constraint non-linear programming problem, and considering the complexity of computation using classic differentiation derivation method, in this paper, we develop three meta-heuristic algorithms to solve the model, i.e., simulated annealing (SA) algorithm, particle swarm optimisation (PSO) and quantum behaved PSO (QBPSO). Experiment shows that QBPSO is the most effective and efficient algorithm among the proposed three algorithms. It is shown that service level at about 80% (or shortage rate at 20%) can obtain best profit, and price elasticity coefficient significantly impacts the pricing and total profit, but it has little impact on inventory decisions.
机译:本文研究了具有部分积压和多重约束的变质商品的多家零售商的库存补充和定价的联合决策。在模型中,退化率被模拟为威布尔分布的时变函数。该模型内置两个约束条件,即供应商的供应能力和零售商的综合客户服务水平。这是一个多约束非线性规划问题,考虑到经典微分推导方法的计算复杂性,本文开发了三种元启发式算法来求解模型,即模拟退火算法,粒子算法。群优化(PSO)和量子行为PSO(QBPSO)。实验表明,在提出的三种算法中,QBPSO是最有效和高效的算法。结果表明,服务水平在80%左右(或短缺率在20%左右)可以获得最佳利润,价格弹性系数显着影响定价和总利润,但对库存决策影响不大。

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