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Matching using semiparametric propensity scores

机译:使用半参数倾向得分进行匹配

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This paper considers the application of semiparametric methods to estimate propensity scores or probabilities of program participation, which are central to certain program evaluation methods. To evaluate the practical benefits, we first conduct a Monte Carlo study. Second, we use data from the NSW experiment, CPS, and PSID. We compare treatment effect and evaluation bias estimates using propensity scores estimated from parametric logit, semiparametric single index, and semiparametric binary quantile regression models. Our results suggest that it is important to account for very general forms of heterogeneity in (semiparametric) estimation of the propensity score, particularly when the treatment effects vary in an unsystematic manner with the true propensity score.
机译:本文考虑使用半参数方法来估计程序参与的倾向得分或概率,这对于某些程序评估方法至关重要。为了评估实际收益,我们首先进行了蒙特卡洛研究。其次,我们使用来自NSW实验,CPS和PSID的数据。我们使用根据参数logit,半参数单指数和半参数二分位数回归模型估算的倾向得分,比较治疗效果和评估偏倚估计值。我们的结果表明,在倾向得分的(半参数)估计中考虑非常普遍的异质性形式非常重要,尤其是当治疗效果随真实倾向得分以非系统的方式变化时。

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