STAT 2610

Causal Inference and Missing Data

Brown University · UGRD · Fall 2026

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Systematic overview of modern statistical methods for handling incomplete data and for drawing causal inferences from "broken experiments" and observational studies. Topics include modeling approaches, propensity score adjustment, instrumental variables, inverse weighting methods and sensitivity analysis. Case studies used throughout to illustrate ideas and concepts. Prerequisite: MATH 1210 or PHP 2511 or PHP 2580.

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Class #brown-STAT2610Fall 2026UGRD
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