Matching estimators for causal effects of multiple treatments

Author:

Scotina Anthony D1ORCID,Beaudoin Francesca L23,Gutman Roee4

Affiliation:

1. Department of Mathematics and Statistics, Simmons University, Boston, MA, USA

2. Department of Health Services, Policy, and Practice, Brown University, Providence, RI, USA

3. Department of Emergency Medicine, Brown University, Providence, RI, USA

4. Department of Biostatistics, Brown University, Providence, RI, USA

Abstract

Matching estimators for average treatment effects are widely used in the binary treatment setting, in which missing potential outcomes are imputed as the average of observed outcomes of all matches for each unit. With more than two treatment groups, however, estimation using matching requires additional techniques. In this paper, we propose a nearest-neighbors matching estimator for use with multiple, nominal treatments, and use simulations to show that this method is precise and has coverage levels that are close to nominal. In addition, we implement the proposed inference methods to examine the effects of different medication regimens on long-term pain for patients experiencing motor vehicle collision.

Funder

National Institute of Arthritis and Musculoskeletal and Skin Diseases

Patient-Centered Outcomes Research Institute

Publisher

SAGE Publications

Subject

Health Information Management,Statistics and Probability,Epidemiology

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