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SMU SOE Seminar Series (August 28, 2026): Inference in Regression Discontinuity Designs with Clustered Data

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TOPIC:

INFERENCE IN REGRESSION DISCONTINUITY DESIGNS WITH CLUSTERED DATA

ABSTRACT

Clustered sampling is prevalent in empirical regression discontinuity (RD) designs, but it has not received much attention in the theoretical literature. In this paper, we introduce a general model-based framework for such settings and derive high-level conditions under which the standard local linear RD estimator is asymptotically normal. We verify that our high-level assumptions hold across a wide range of empirical designs, including settings of growing cluster sizes. We further show that clustered standard errors that are currently used in practice can be either inconsistent or overly conservative in finite samples. To address these issues, we propose a novel nearest-neighbor-type variance estimator and illustrate its properties in a diverse set of empirical applications.

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PRESENTER

Claudia Noack
University of Bonn

RESEARCH FIELDS

Econometrics
Causal Inference
Nonparametric Econometrics

DATE:

28 August 2026 (Friday)

TIME:

4.00pm - 5:30pm

VENUE:

Meeting Room 5.1, Level 5
School of Economics
Singapore Management University
90 Stamford Road
Singapore 178903

 
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