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math-proof

Construct, verify, and communicate mathematical proofs for ML theory — convergence rates, generalization bounds, architecture properties, optimization analysis, generative model theory, and scaling laws. Use when the user asks to prove a theorem about an ML algorithm, verify a convergence bound, analyze Lipschitz properties of a network, derive generalization guarantees, prove properties of diffusion models or flow matching, analyze NTK behavior, construct universal approximation arguments, or build any rigorous mathematical argument in the context of machine learning. Also trigger on: convergence proof, generalization bound, PAC-Bayes, Lipschitz analysis, gradient flow proof, lower bound, concentration inequality, optimization theory, induction on iterations, equivariance proof, score matching, diffusion SDE, flow matching, NTK, neural tangent kernel, Rademacher complexity, Wasserstein distance, optimal transport, scaling law, universal approximation, loss landscape, PL condition.

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Datos de origen

Repositorio
guliqianxun/research-skills
Última actividad en el origen
12 de abril de 2026 a las 12:33
Idioma detectado de SKILL.md
inglés
Estrellas
5
Forks
0

Opciones de instalación

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Lee SKILL.md y los archivos complementarios que muestra SkillsMP antes de decidir si quieres instalarlo.