An environmental degradation index based on stochastic dominance

被引:0
|
作者
Elettra Agliardi
Mehmet Pinar
Thanasis Stengos
机构
[1] University of Bologna,Department of Economics
[2] Edge Hill University,Business School
[3] University of Guelph,Department of Economics
来源
Empirical Economics | 2015年 / 48卷
关键词
Environmental degradation; Emissions; Water pollution; Forest depletion; Nonparametric stochastic dominance; Mixed integer programming; C4; C5; C14; Q01; Q5; Q51;
D O I
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中图分类号
学科分类号
摘要
We employ a stochastic dominance (SD) approach to derive a relative environmental degradation index across countries. The variables that are considered include countries’ greenhouse gas (GHG) emissions, water pollution and the net forest depletion, as from the data set of the World Bank. A worst-case scenario index to measure environmental degradation across different countries and at different times is constructed applying a methodology that is based on multivariate comparisons of country panel data over various years and consistent tests for SD efficiency. The test statistics and the estimators are computed using mixed integer programming methods. It is found that in the worst-case scenario index, GHG emissions contribute the most (with a weight around 68 %), net forest depletion contributes with around 30 %, and water pollution contributes the least (with a weight around 2 %). Our index can be a useful tool for policy making in conveying information on the environmental quality and a quick assessment of sustainable performance across countries and over time.
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页码:439 / 459
页数:20
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