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iterate-from-methodology

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Actualizado2 de mayo de 2026 a las 13:59

Source the next ML experiment proposal by auditing the *methodology* of the previous experiment(s) — split strategy, leakage risk, target encoding, sample size, metric choice, baseline comparability, randomness control. Hand the proposal back to `iterate-ml-experiment`, which writes it into `plan/NN_short_name.md` and seeks the user's approval. Stops at "a proposal (question, motivation, method outline) has been returned"; does not write any plan file itself, and does not author acceptance criteria — the user judges the result. TRIGGER when: `iterate-ml-experiment` is picking a sourcing strategy and the user says "did we get the split right?", "is this leaking?", "small sample size?", "is the baseline fair?", "is this metric the right one?"; the previous experiment's result looks suspicious (too good, too noisy, too flat) and the user wants to check the setup before iterating further; a literature / diagnostic strategy has surfaced something that turns out to be a methodology issue, not a modelling issue. SKI

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