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An Approach Combining DEA and ANN for Hotel Performance Evaluation

机译:DEA与ANN相结合的酒店绩效评价方法

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摘要

For a hotel to succeed in the long run, it becomes vital to achieve higher profits along with increased performance. The performance evaluation of a hotel can signify its sustainable competitiveness within the hospitality industry. This article performs a two-stage study that combines data envelopment analysis (DEA) and artificial neural network (ANN) to evaluate hotel performance. The first stage to evaluate the efficiency for hotels is by using the DEA technique. The input variables considered are the number of rooms and the ratings corresponding to six aspects of a hotel (service, room, value, location, sleep quality, and cleanliness). Also, revenue per available room (RevPAR) and customer satisfaction (CS) are the output variables. The distinguishing factor of this article is that it involves the use of EWOM for performance evaluation. In the second stage, the performance of the hotels is judged by using the ANN technique. The ANN results showed that the performance of the hotels is quite good. Finally, discussions based on the results and scope for future studies are provided.
机译:对于一家要长期取得成功的酒店而言,获得更高的利润以及更高的性能至关重要。对酒店的绩效评估可以表明其在酒店业中的可持续竞争力。本文进行了一个分为两个阶段的研究,结合了数据包络分析(DEA)和人工神经网络(ANN)来评估酒店的绩效。评估酒店效率的第一阶段是使用DEA技术。考虑的输入变量是房间数和与酒店的六个方面(服务,房间,价值,位置,睡眠质量和清洁度)相对应的等级。同样,每个可用房间的收入(RevPAR)和客户满意度(CS)是输出变量。本文的区别因素在于它涉及使用EWOM进行性能评估。在第二阶段,使用ANN技术判断酒店的表现。人工神经网络的结果表明,酒店的表现是相当不错的。最后,提供了基于结果和未来研究范围的讨论。

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