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中国跨期环境效率评估:一种新的基于网络的动态超效率测度方法。

Intertemporal environmental efficiency assessment in China: A new network-based dynamic super-efficiency measure.

机构信息

College of Mathematics and Physics, Wenzhou University, Wenzhou, Zhejiang, PR China.

School of Economics and Management, Northwest University, Xi'an, Shaanxi, PR China.

出版信息

PLoS One. 2023 Aug 31;18(8):e0290896. doi: 10.1371/journal.pone.0290896. eCollection 2023.

Abstract

In order to make a complete ranking of intertemporal environmental efficiency in a dynamic manner, this paper combines the network-based dynamic data envelopment analysis (DEA), super-efficiency with the unified efficiency under natural and managerial disposability, and designs a dynamic DEA model and the corresponding dynamic super-efficiency DEA model. Compared with previous studies, the proposed measure can fully rank the overall environmental efficiency of all decision making units (DMUs) in a dynamic manner, and more importantly, it provides the information about when and what factors lead to inefficiency or efficiency of DMUs. The proposed models are applied to examine the environmental efficiency of 30 provinces in China from 2008 to 2017. The results show that there are significant regional differences of environmental efficiency in China. In addition, slack analysis shows that most eastern efficient provinces have no obvious advantages in energy consumption, labor and waste water emission; most central and western efficient provinces have no advantages in sulfur dioxide (SO2) emissions and GDP. To improve overall efficiency, eastern inefficient provinces should mainly focus on reducing energy consumption, SO2 emissions and labor, and increasing capital investment in right years, central and western inefficient provinces can focus on reducing SO2 emissions and labor in most years, most of provinces need to increase gross domestic capital formation.

摘要

为了以动态的方式对跨期环境效率进行全面排名,本文将基于网络的动态数据包络分析(DEA)、超效率与自然和管理可处置性下的统一效率相结合,设计了动态 DEA 模型和相应的动态超效率 DEA 模型。与以往的研究相比,该度量方法可以全面动态地对所有决策单元(DMU)的整体环境效率进行排名,更重要的是,它提供了有关 DMU 何时以及哪些因素导致无效率或效率的信息。该模型应用于检验 2008 年至 2017 年中国 30 个省份的环境效率。结果表明,中国的环境效率存在显著的地区差异。此外,松弛分析表明,大多数东部高效率省份在能源消耗、劳动力和废水排放方面没有明显优势;大多数中部和西部高效率省份在二氧化硫(SO2)排放和 GDP 方面没有优势。为了提高整体效率,东部低效省份应主要关注减少能源消耗、SO2 排放和劳动力,并在适当年份增加资本投资,中西部低效省份可以在大多数年份专注于减少 SO2 排放和劳动力,大多数省份需要增加国内资本形成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/adb9/10470937/9142b7525d0f/pone.0290896.g001.jpg

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