Bayesian causal inference: a critical review

Author:

Li Fan1ORCID,Ding Peng2,Mealli Fabrizia3

Affiliation:

1. Duke University, Durham, NC, USA

2. University of California, Berkeley, CA, USA

3. University of Florence and EUI, Florence, Italy

Abstract

This paper provides a critical review of the Bayesian perspective of causal inference based on the potential outcomes framework. We review the causal estimands, assignment mechanism, the general structure of Bayesian inference of causal effects and sensitivity analysis. We highlight issues that are unique to Bayesian causal inference, including the role of the propensity score, the definition of identifiability, the choice of priors in both low- and high-dimensional regimes. We point out the central role of covariate overlap and more generally the design stage in Bayesian causal inference. We extend the discussion to two complex assignment mechanisms: instrumental variable and time-varying treatments. We identify the strengths and weaknesses of the Bayesian approach to causal inference. Throughout, we illustrate the key concepts via examples.This article is part of the theme issue ‘Bayesian inference: challenges, perspectives, and prospects’.

Funder

Division of Mathematical Sciences

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

Reference116 articles.

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3. Rubin DB. 1975 Bayesian inference for causality: the role of randomization. In Proc. of Social Statistics Section of Am Stat. Assoc. pp. 233–239.

4. Pearl J. 2000 Causality: models, reasoning, and inference. New York, NY: Cambridge University Press.

5. Causal inference by using invariant prediction: identification and confidence intervals

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