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首页> 外文期刊>European Journal of Operational Research >Forecasting cancellation rates for services booking revenue management using data mining
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Forecasting cancellation rates for services booking revenue management using data mining

机译:使用数据挖掘预测服务预订收入管理的取消率

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摘要

Revenue management (RM) enhances the revenues of a company by means of demand-management decisions. An RM system must take into account the possibility that a booking may be canceled, or that a booked customer may fail to show up at the time of service (no-show). We review the Passenger Name Record data mining based cancellation rate forecasting models proposed in the literature, which mainly address the no-show case. Using a real-world dataset, we illustrate how the set of relevant variables to describe cancellation behavior is very different in different stages of the booking horizon, which not only confirms the dynamic aspect of this problem, but will also help revenue managers better understand the drivers of cancellation. Finally, we examine the performance of the state-of-the-art data mining methods when applied to Passenger Name Record based cancellation rate forecasting.
机译:收益管理(RM)通过需求管理决策来提高公司的收益。 RM系统必须考虑到预订可能被取消的可能性,或者预订的客户在服务时可能无法出现(未出现)的可能性。我们回顾了文献中提出的基于旅客姓名记录数据挖掘的取消率预测模型,该模型主要针对未出现的情况。使用真实的数据集,我们说明了描述取消行为的相关变量集在预订期限的不同阶段之间有很大不同,这不仅确认了此问题的动态方面,而且还将帮助收入经理更好地了解取消驱动程序。最后,我们研究了将最新数据挖掘方法应用于基于乘客姓名记录的取消率预测的性能。

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