改进的三阶段DEA作为环境效应豪华酒店标杆管理的商业智能

Long-fei Chen
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引用次数: 2

摘要

在大数据时代,投资者需要有效评估真实业绩的有效方法。提出了一种改进的三阶段基于松弛的DEA方法作为商业智能,克服了弗里德流行的三阶段DEA中独立同分布的小样本量限制。然后,将其应用到国际酒店的相对效率中。通过将环境变量(机场附近)作为非自由支配输入,各酒店可以将非自由支配输入视为外生变量,通过过滤掉环境效应和统计噪声来调整输入。通过推荐酒店,可以提高相对效率。结果表明,环境效应显著,但不如内部资源重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Improved Three-stage DEA as Business Intelligence for Benchmarking Luxury Hotels with Environmental Effect
Investors need efficient method to effectively evaluate true performance in the big data era. An improved three-stage slack-based DEA method is proposed as business intelligence to overcome the independently identically distributed (i.i.d.) restriction on small sample size in the popular three-stage DEA proposed by Fried. Later, it is applied to find the relative efficiencies for international hotels. By treating environmental variable (near airport) as non-discretionary input, each hotel can consider non-discretionary input as exogenous variable to adjust input by filtering out environmental effects and statistical noise. The improved relative efficiencies can be resulted from referred hotels. The results show the environmental effect is significant but not as important as internal resources.
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