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Covariate-assisted bounds on causal effects with instrumental variables

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arxiv 2301.12106 v4 pith:RUKEBQGF submitted 2023-01-28 stat.ME

classification stat.ME
keywords boundsestimatorswhenbaselinecausaleffectinstrumentalobservational
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When an exposure of interest is confounded by unmeasured factors, an instrumental variable (IV) can be used to identify and estimate certain causal contrasts. Identification of the marginal average treatment effect (ATE) from IVs relies on strong untestable structural assumptions. When one is unwilling to assert such structure, IVs can nonetheless be used to construct bounds on the ATE. Famously, Balke and Pearl (1997) proved tight bounds on the ATE for a binary outcome, in a randomized trial with noncompliance and no covariate information. We demonstrate how these bounds remain useful in observational settings with baseline confounders of the IV, as well as randomized trials with measured baseline covariates. The resulting bounds on the ATE are non-smooth functionals, and thus standard nonparametric efficiency theory is not immediately applicable. To remedy this, we propose (1) under a novel margin condition, influence function-based estimators of the bounds that can attain parametric convergence rates when the nuisance functions are modeled flexibly, and (2) estimators of smooth approximations of these bounds. We propose extensions to continuous outcomes, explore finite sample properties in simulations, and illustrate the proposed estimators in an observational study targeting the effect of higher education on wages.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Partial identification via conditional linear programs: estimation and policy learning

    stat.ME 2025-06 conditional novelty 7.0 of 10

    Two debiased estimators, one based on linear programming solutions and one on entropic smoothing, provide asymptotic confidence intervals for covariate-dependent partial identification bounds and support policy learning.

  2. Adding covariates to bounds: What is the question?

    stat.ME 2025-02 conditional novelty 6.0 of 10

    Averaging covariate-conditional causal bounds preserves sharpness only when the conditional bounds are uniformly sharp, a condition that fails in several common instrumental-variable DAGs.

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