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A quantile estimation approach to identify income and age variation in the value of a statistical life

机译:一种分位数估计方法,用于识别统计生命值中的收入和年龄变化

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In theory, heterogeneity in individual characteristics translates into variation in the marginal willingness to pay for a mortality risk reduction. Two dimensions of heterogeneity, with respect to income and age, have recently received attention due to their policy relevance. We propose a quantile regression approach to simultaneously explore these two sources of heterogeneity and their interactions within the context of the hedonic wage model, the most common revealed preference approach for obtaining value of statistical life estimates. We illustrate the approach using data from the Health and Retirement Study (HRS). We find that the impact of age on the wage-risk tradeoff varies across the wage distribution. This result indicates important interactions between age and income heterogeneity. Thus, the conventional mean hedonic wage regression, even when the mean effect is allowed to vary with age, masks important heterogeneity.
机译:从理论上讲,个体特征的异质性转化为支付降低死亡风险所需的边际意愿的变化。关于收入和年龄的异质性的两个方面,由于其政策相关性,最近受到关注。我们提出分位数回归方法,以在享乐主义工资模型的背景下同时探索这两种异质性来源及其相互作用,享乐主义工资模型是获得统计寿命估计值的最常见的揭示偏好方法。我们使用来自健康和退休研究(HRS)的数据来说明这种方法。我们发现年龄对工资风险权衡的影响在工资分配中有所不同。这个结果表明年龄和收入异质性之间的重要相互作用。因此,即使允许平均效果随年龄而变化,传统的平均享乐工资回归也掩盖了重要的异质性。

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