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design-of-experiments

Generates structured experimental designs (factorial, response surface, Taguchi) to systematically discover how multiple factors affect outcomes while minimizing experimental runs. Use when optimizing multi-factor systems with limited experimental budget, screening many variables to find the vital few, discovering interactions between parameters, mapping response surfaces for peak performance, validating robustness to noise factors, or when users mention factorial designs, A/B/n testing, parameter tuning, or process optimization.

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Source facts

Repository
lyndonkl/claude
Last source activity
April 15, 2026 at 20:45
Detected SKILL.md language
English
Stars
151
Forks
23

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