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Mathematical programming of airline revenue management with passenger choice behavior

机译:具有乘客选择行为的航空公司收益管理的数学编程

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Mathematical programming models of airline seat inventory control tend to protect more seats for the high fare class. In order to further study the properties of booking policy based on mathematical programming models, we propose the deterministic and stochastic models that incorporate passenger choice behavior and develop efficient genetic algorithm(GA) to solve the stochastic programming model. In the experiments, we make an evaluation between the mathematical programming models and the decision rules based on traditional EMSR and EMSRb models in three aspects: the percentage of demand diversion, the number of fare classes and the demand level. The results show that, mathematical programming models' tendency to overprotect high-fare demand can make them perform better when adopted to control seat inventory with passenger demand diversion in some situations.
机译:航空公司座位库存控制的数学编程模型倾向于保护高票价舱位的更多座位。为了进一步研究基于数学规划模型的订票策略的性质,我们提出了确定性和随机模型,该模型结合了乘客的选择行为,并开发了有效的遗传算法(GA)来解决随机规划模型。在实验中,我们从以下三个方面对基于传统EMSR和EMSRb模型的数学编程模型和决策规则进行了评估:需求转移的百分比,票价类别的数量和需求水平。结果表明,在某些情况下,数学程序设计模型过高保护高票价需求的趋势可以使它们在控制客运需求和乘客需求转移的情况下表现更好。

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