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首页> 外文期刊>Empirical Economics >Worthy to lose some money for better air quality: applications of Bayesian networks on the causal effect of income and air pollution on life satisfaction in Switzerland
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Worthy to lose some money for better air quality: applications of Bayesian networks on the causal effect of income and air pollution on life satisfaction in Switzerland

机译:值得为更好的空气质量失去一些钱:贝叶斯网络在瑞士生命满意度的因果关系中的应用

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摘要

One important determinant of well-being is the environmental quality. Many countries apply environmental regulations, reforms and policies for its improvement. However, the question is how the people value the environment, including the air quality. This study examines the association between air pollution and life satisfaction using the Swiss Household Panel survey over the years 2000-2013. We follow a Bayesian network (BN) strategy to estimate the causal effect of the income and air pollution on life satisfaction. We look at five main air pollutants: the ground-level ozone (O-3), sulphur dioxide (SO2), nitrogen dioxide (NO2), carbon monoxide (CO) and particulate matter of 10 micrometres (PM10). Then, we calculate the individuals' marginal willingness to pay (MWTP) of reducing air pollution that aims to improve their life satisfaction. Beside the BN model, we take advantage of the panel structure of our data and we follow two approaches as robustness check. This includes the adapted probit fixed effects and the generalised methods of moments system. Our findings show that O-3 and PM10 present the highest MWTP values ranging between $8000 and $12,000, followed by the remained air pollutants with MWTP extending between $2000 and $6500. Applying the BNs, we find that the causal effect of income on life satisfaction is substantially increased. We also show the causal effects of air pollutants remain almost the same, leading to lower values of willingness to pay.
机译:幸福的一个重要决定因素是环境质量。许多国家适用于改善环境法规,改革和政策。但是,问题是人们如何价值环境,包括空气质量。本研究审查了2000 - 2013年瑞士家庭面板调查的空气污染与生活满意度之间的关联。我们遵循贝叶斯网络(BN)战略来估算收入和空气污染对生活满意度的因果影响。我们看看五个主要的空气污染物:地面臭氧(O-3),二氧化硫(SO2),二氧化氮(NO2),一氧化碳(CO)和10微米的颗粒物质(PM10)。然后,我们计算个人的边际愿意支付(MWTP)减少空气污染,旨在提高他们的生活满意度。除了BN模型,我们利用我们数据的面板结构,我们遵循两种方法作为鲁棒性检查。这包括适应的概率固定效果和矩形系统的广义方法。我们的研究结果表明,O-3和PM10的最高MWTP值在8000美元至12,000美元之间,其次是剩余的空气污染物,MWTP在2000美元至6500美元之间延伸。应用BNS,我们发现,生命满意度的因果效果大大增加。我们还表明空气污染物的因果效应仍然是几乎相同的,导致较低的支付意愿价值。

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