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首页> 外文期刊>Journal of applied econometrics >Efficient minimum distance estimation of Pareto exponent from top income shares
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Efficient minimum distance estimation of Pareto exponent from top income shares

机译:高效地收入股份的帕累托指数的最小距离估计

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摘要

We propose an efficient estimation method for the income Pareto exponent when only certain top income shares are observable. Our estimator is based on the asymptotic theory of weighted sums of order statistics and the efficient minimum distance estimator. Simulations show that our estimator has excellent finite-sample properties. We apply our estimation method to US top income share data and find that the Pareto exponent has been ranging between 1.4 and 1.8 since 1985, suggesting that the rise in inequality during the last three decades is mainly driven by redistribution between the rich and poor, not among the rich.
机译:当只有某些最高收入股票是可观察到的,我们提出了一个有效的估算方法,以便只有某些最高收入股票。我们的估算仪基于订单统计和有效的最小距离估计的加权和的渐近理论。仿真表明,我们的估计器具有出色的有限样本性质。我们将估算方法应用于美国顶级收入数据,发现自1985年以来,帕累托指数一直在1.4和1.8之间的范围,这表明过去三十年中的不等式的上涨主要是由富人和穷人之间的再分配驱动在富人中。

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