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Bounding the Probability of Causation in Mediation Analysis

Statistics Theory 2020-04-28 v1 Artificial Intelligence Methodology Statistics Theory

Abstract

Given empirical evidence for the dependence of an outcome variable on an exposure variable, we can typically only provide bounds for the "probability of causation" in the case of an individual who has developed the outcome after being exposed. We show how these bounds can be adapted or improved if further information becomes available. In addition to reviewing existing work on this topic, we provide a new analysis for the case where a mediating variable can be observed. In particular we show how the probability of causation can be bounded when there is no direct effect and no confounding. Keywords: Causal inference, Mediation Analysis, Probability of Causation

Keywords

Cite

@article{arxiv.1411.2636,
  title  = {Bounding the Probability of Causation in Mediation Analysis},
  author = {A. P. Dawid and R. Murtas and M. Musio},
  journal= {arXiv preprint arXiv:1411.2636},
  year   = {2020}
}

Comments

9 pages, 1 figure, 3 tables