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Sufficient covariates and linear propensity analysis

Journal article published in 2010 by Dawid Ap Guo H., Hui Guo ORCID, A. Philip Dawid
This paper is available in a repository.
This paper is available in a repository.

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Abstract

Working within the decision-theoretic framework for causal inference, we study the properties of "sufficient covariates", which support causal inference from observational data, and possibilities for their reduction. In particular we illustrate the role of a propensity variable by means of a simple model, and explain why such a reduction typically does not increase (and may reduce) estimation efficiency.