RDD的最佳模型选择和相关设置使用安慰剂区

N. Kettlewell, P. Siminski
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引用次数: 5

摘要

我们提出了一种新的模型选择算法,用于回归不连续设计、回归扭结设计和相关的IV估计。候选模型在运行变量的“安慰剂区”内进行评估,在该区域,已知真实效果为零。该方法产生带宽、多项式和任何其他选择参数的最佳组合。它还可以告知在模型类别(例如RDD vs . cohort-IV)和任何其他选择之间的选择,例如协变量、内核或其他权重。我们使用该方法来评估澳大利亚新南威尔士州最低监督驾驶时间的变化。我们还重新评估了先头行动和最低法定饮酒年龄的影响。最后,我们为研究人员提供了实用的建议,包括治疗效果异质性的含义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Model Selection in RDD and Related Settings Using Placebo Zones
We propose a new model-selection algorithm for Regression Discontinuity Design, Regression Kink Design, and related IV estimators. Candidate models are assessed within a 'placebo zone' of the running variable, where the true effects are known to be zero. The approach yields an optimal combination of bandwidth, polynomial, and any other choice parameters. It can also inform choices between classes of models (e.g. RDD versus cohort-IV) and any other choices, such as covariates, kernel, or other weights. We use the approach to evaluate changes in Minimum Supervised Driving Hours in the Australian state of New South Wales. We also re-evaluate evidence on the effects of Head Start and Minimum Legal Drinking Age. We conclude with practical advice for researchers, including implications of treatment effect heterogeneity.
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