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model-diagnostics

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Two-parameter Weibull lens on transformer weights (shape k, scale λ): 7-family benchmark, AdamW training dynamics (three-force λ evolution), a data-predictability law for λ growth, and a 76-run grid showing weight-scale growth tracks training effort, not learning quality. npm-weibull-py + database + code, arXiv:2605.18898/2606.19367/2608.23573

  • Updated Aug 26, 2026
  • Python

Nine diagnostic tools for detecting and understanding overfitting in scikit-learn models — polynomial overfitting, learning curves, validation curves, bias-variance decomposition, regularisation sweeps, data leakage detection, and more. Companion code for the ML Diagnostics Mastery series.

  • Updated Apr 6, 2026
  • Python

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