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Sustainable efficiency drivers in Eurasian airports: Fuzzy NDEA approach based on Shannon's entropy

机译:欧亚机场的可持续效率司机:基于香农熵的模糊NDEA方法

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This research explores the physical infrastructure and flight consolidation efficiency drivers of Eurasian airports regarding their infrastructure and movement productivity levels. A novel Fuzzy Double-Frontier Network DEA (FDFNDEA) model is proposed to investigate the relationship between desirable (freight and passenger turnovers) and undesirable (pollutant emission levels due to aircraft movements) outputs against the respective infrastructure usage, fuel consumed, and movements performed at each of the 23 Eurasian airports from 2000 to 2018. This balance between desirable and undesirable outputs emerges spatially and temporally due to the evolution of the airport system?s productive resources at each one of the Eurasian countries over the period observed. Shannon?s entropy is used as the cornerstone to quantify the input and output vagueness of this evolution in Triangular Fuzzy Numbers (TFN), thus allowing the accurate building of alternative optimistic and pessimistic double-frontier efficiency. Differently from previous research, Shannon?s entropy is the key for measuring input and output vagueness levels in light of the maximal entropy principle. This principle states that the distribution that best represents the current state of knowledge is the one with largest entropy. Maximal entropy yields bias-free decision-making in the sense that the input/output distributional profiles for Eurasian airports contain the maximal possible heterogeneity, working as a robust or best/worst-case scenario against eventual unconsidered assumptions. Hence, optimistic and pessimistic Malmquist Productivity Indexes (MPI) for overall and each stage productivity results are subsequently regressed against contextual variables related to airport characteristics and regional socio-demographic and economic indicators of each Eurasian country using bootstrapped Cauchy regressions. The findings revealed the spatial heterogeneity of productivity factors and airport performance across Eurasia. Results also demonstrated the negative impact of income inequality and the positive impact of private participation on technological progression in the Eurasian airport industry.
机译:本研究探讨了欧亚机场的物理基础设施和飞行效率司机,了解其基础设施和运动生产率水平。提出了一种新型模糊的双前沿网络DEA(FDFNDEA)模型来研究所需(货运和乘客失误)的关系,以及不希望的(由于飞机运动导致的污染物排放水平)输出对各自的基础设施使用,消耗的燃料和执行的运动在2000年至2018年的23欧亚机场的每一个。由于机场系统的演变,所需和不良产出之间的余额在空间上和时间之间出现在空间上,并且在该期间的每个欧亚国家的每个欧亚国家的生产力资源的演变出现。 Shannon?S熵用作基于三角形模糊数(TFN)中这种演变的输入和输出模糊性的基石,从而允许准确地构建替代乐观和悲观的双前沿效率。与以前的研究不同,Shannon?S熵是鉴于最大熵原理测量输入和输出模糊度水平的关键。这一原则指出,最能代表当前知识状态的分布是具有最大熵的分布。最大熵产生无偏差决策,以至于欧亚机场的输入/输出分配配置文件包含最大可能的异质性,作为反对最终未被危险的假设的强大或最佳/最坏情况的情况。因此,总体而乐观和悲观的Malmquist生产率指数(MPI)随后与每个欧亚国家的机场特征和区域社会人口统计和经济指标与使用自动划分的Cauchy回归一起回归。调查结果揭示了欧亚大陆的生产力因素和机场表演的空间异质性。结果还展示了收入不平等的负面影响以及私人参与欧亚机场行业技术进步的积极影响。

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