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causal-inference

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UpdatedJune 9, 2026 at 07:16

Use as the entry point for any causal inference or treatment-effect question when the right method is not yet decided. This router inspects the user's data shape (cross-sectional vs panel, randomized vs observational, sample size) and business goal (average effect vs who-to-target), then recommends and dispatches to the appropriate sub-skill — PSM (psm-causal-inference), IPW (ipw-causal-inference), AIPW/doubly-robust (aipw-causal-inference), DID (did-causal-inference), or Uplift modeling (uplift-modeling). Triggers include 评估某个动作/投放/政策的因果效果, incrementality, lift, treatment effect, ATE, ATT, CATE, 该对谁投放 (who-to-target), A/B test analysis with confounding, observational treatment-effect studies, policy evaluation, and questions like 用哪种因果推断方法 / which causal method should I use. Prefer this skill first whenever the user uploads data and asks for a causal effect without naming a specific method.

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