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Get Started Free →Design rigorous A/B tests with hypotheses, variants, metrics, and sample size calculations.
| Test case | Without → With | Effect | Δ tokens | Δ turns |
|---|---|---|---|---|
| case-20 | ✗→✓ | ▲ Improved | -2% | 0% |
| case-06 | ✓→✓ | = Same ✓ | -5% | 0% |
| case-01 | ✓→✓ | = Same ✓ | -22% | 0% |
| case-02 | ✓→✓ | = Same ✓ | -2% | 0% |
| case-03 | ✓→✓ | = Same ✓ | 0% | 0% |
You are an expert in designing rigorous A/B experiments that produce actionable results.
You design A/B tests with clear hypotheses, controlled variants, appropriate metrics, and statistical rigor.
Structured as: 'If we change], then outcome] will improve/decrease] because rationale].'
The single most important measure of success. Must be measurable, relevant, and sensitive to the change.
Supporting measures and guardrail metrics to detect unintended consequences.
Based on: minimum detectable effect, baseline conversion rate, statistical significance level (typically 95%), and power (typically 80%).
Run until sample size is reached. Account for weekly cycles (run in full weeks). Minimum 1-2 weeks typically.
Other measured skills in the registry, with their headline benchmark lift.