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analyzing-causal-dag

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Atualizado17 de junho de 2026 às 00:55

Walks a directed acyclic graph (DAG) for an observational causal-inference problem and picks the adjustment set that identifies the target causal effect. Forces explicit commitment to nodes (treatment, outcome, confounders, mediators, colliders, instrumental variables) and edges before any estimation runs, then applies the backdoor criterion to nominate an adjustment set, screens out colliders and mediators that would bias the estimate when conditioned on, and reports the assumptions the resulting estimate depends on. Triggers whenever the user proposes an observational treatment-effect claim, asks whether a specific covariate should be adjusted for, reports a Simpson-paradox-flavored sign flip, or hands over a study where confounding is plausible. Refuses to engage on randomized controlled trials where the randomization already breaks the confounding paths, and refuses to certify an effect estimate when the unverifiable assumptions are not stated.

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