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Regression Discontinuity Design (RDD) is a popular framework for estimating a causal effect in settings where treatment is assigned if an observed covariate exceeds a fixed threshold. We consider estimation and inference in the common…

统计理论 · 数学 2025-04-16 Kevin Tao , Y. Samuel Wang , David Ruppert

We propose a new estimation method for heterogeneous causal effects which utilizes a regression discontinuity (RD) design for multiple datasets with different thresholds. The standard RD design is frequently used in applied researches, but…

计量经济学 · 经济学 2019-05-14 Takayuki Toda , Ayako Wakano , Takahiro Hoshino

Empirical studies using Regression Discontinuity (RD) designs often explore heterogeneous treatment effects based on pretreatment covariates, even though no formal statistical methods exist for such analyses. This has led to the widespread…

计量经济学 · 经济学 2025-07-08 Sebastian Calonico , Matias D. Cattaneo , Max H. Farrell , Filippo Palomba , Rocio Titiunik

Regression discontinuity designs (RDD) are widely used for causal inference. In many empirical applications, treatment effects vary substantially with covariates, and ignoring such heterogeneity can lead to misleading conclusions, which…

统计方法学 · 统计学 2026-03-05 Daisuke Kondo , Shonosuke Sugasawa

The regression discontinuity design (RDD) is a quasi-experimental design that can be used to identify and estimate the causal effect of a treatment using observational data. In an RDD, a pre-specified rule is used for treatment assignment,…

统计方法学 · 统计学 2016-01-05 Panayiota Constantinou , Aidan G. O'Keeffe

This article introduces Regression Discontinuity Design (RDD) with Distribution-Valued Outcomes (R3D), extending the standard RDD framework to settings where the outcome is a distribution rather than a scalar. Such settings arise when…

计量经济学 · 经济学 2025-04-08 David Van Dijcke

For non-randomized studies, the regression discontinuity design (RDD) can be used to identify and estimate causal effects from a "locally-randomized" subgroup of subjects, under relatively mild conditions. However, current models focus…

统计方法学 · 统计学 2015-02-12 George Karabatsos , Stephen G. Walker

The Regression Discontinuity Design (RDD) is a quasi-experimental design that estimates the causal effect of a treatment when its assignment is defined by a threshold value for a continuous assignment variable. The RDD assumes that subjects…

应用统计 · 统计学 2020-03-27 Federico Ricciardi , Silvia Liverani , Gianluca Baio

Treatment effects in regression discontinuity designs (RDDs) are often estimated using local regression methods. \cite{Hahn:01} demonstrated that the identification of the average treatment effect at the cutoff in RDDs relies on the…

计量经济学 · 经济学 2024-12-30 Weiwei Jiang , Rong J. B. Zhu

We present a practical guide for the analysis of regression discontinuity (RD) designs in biomedical contexts. We begin by introducing key concepts, assumptions, and estimands within both the continuity-based framework and the local…

统计方法学 · 统计学 2023-05-17 Matias D. Cattaneo , Luke Keele , Rocio Titiunik

The paper proposes a causal supervised machine learning algorithm to uncover treatment effect heterogeneity in sharp and fuzzy regression discontinuity (RD) designs. We develop a criterion for building an honest ``regression discontinuity…

计量经济学 · 经济学 2025-09-01 Ágoston Reguly

The regression discontinuity (RD) design is a popular approach to causal inference in non-randomized studies. This is because it can be used to identify and estimate causal effects under mild conditions. Specifically, for each subject, the…

统计方法学 · 统计学 2014-02-11 George Karabatsos , Stephen G. Walker

The Regression Discontinuity (RD) design is a quasi-experimental design which emulates a randomised study by exploiting situations where treatment is assigned according to a continuous variable as is common in many drug treatment…

统计方法学 · 统计学 2016-07-28 Sara Geneletti , Federico Ricciardi , Aidan O'Keeffe , Gianluca Baio

Regression discontinuity design (RDD) is a quasi-experimental approach to study the causal effects of an intervention/treatment on later health outcomes. It exploits a continuously measured assignment variable with a clearly defined cut-off…

应用统计 · 统计学 2024-06-28 Maja Popovic , Daniela Zugna , Lorenzo Richiardi

Quasi-experimental evaluations are central for generating real-world causal evidence and complementing insights from randomized trials. The regression discontinuity design (RDD) is a quasi-experimental design that can be used to estimate…

机器学习 · 统计学 2026-04-07 Maximilian Schuessler , Erik Sverdrup , Robert Tibshirani , Stefan Wager

The regression discontinuity (RD) design is a quasi-experimental design that estimates the causal effects of a treatment by exploiting naturally occurring treatment rules. It can be applied in any context where a particular treatment or…

统计方法学 · 统计学 2014-03-10 Sara Geneletti , Aidan G. O'Keeffe , Linda D. Sharples , Sylvia Richardson , Gianluca Baio

The Regression Discontinuity (RD) design is one of the most widely used non-experimental methods for causal inference and program evaluation. Over the last two decades, statistical and econometric methods for RD analysis have expanded and…

计量经济学 · 经济学 2022-02-25 Matias D. Cattaneo , Rocio Titiunik

This paper studies the case of possibly high-dimensional covariates in the regression discontinuity design (RDD) analysis. In particular, we propose estimation and inference methods for the RDD models with covariate selection which perform…

计量经济学 · 经济学 2026-01-21 Yoichi Arai , Taisuke Otsu , Myung Hwan Seo

This note introduces a doubly robust (DR) estimator for regression discontinuity (RD) designs. RD designs provide a quasi-experimental framework for estimating treatment effects, where treatment assignment depends on whether a running…

计量经济学 · 经济学 2025-01-28 Masahiro Kato

The regression discontinuity design (RDD) is a quasi-experimental approach used to estimate the causal effects of an intervention assigned based on a cutoff criterion. RDD exploits the idea that close to the cutoff units below and above are…

统计方法学 · 统计学 2025-07-02 Julia Kowalska , Mark van de Wiel , Stéphanie van der Pas
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