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did-causal-inference

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UpdatedJune 9, 2026 at 07:16

Use when the user needs difference-in-differences (DID) for causal inference, including DID treatment effect estimation, the parallel trends assumption, two-period/two-group (2x2) designs, policy or intervention/program evaluation, natural experiments, event studies for dynamic effects, two-way fixed effects (TWFE) regressions, pre-trend checks, staggered adoption caveats (Goodman-Bacon, Callaway-Sant'Anna, Sun-Abraham), ATT estimation, and clear reporting for panel data or repeated cross-section treatment-effect studies in Python, R, Stata, or SQL-backed analytics workflows.

Installation

Install with Codex or Claude Copy this prompt, paste it into Codex, Claude, or another assistant, and let it review the skill page and install it for you.

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