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Prerequisite chain

Prerequisites for Cross-Validation Theory

Topics you need before working through Cross-Validation Theory. Direct prerequisites are listed first; transitive prerequisites (the chain reachable through them) follow.

Direct prerequisites (15)

  1. Empirical Risk Minimizationlayer 2, tier 1
  2. Bias-Variance Tradeofflayer 2, tier 2
  3. AIC and BIClayer 2, tier 1
  4. Class Imbalance and Resamplinglayer 1, tier 2
  5. Confusion Matrices and Classification Metricslayer 1, tier 1
  6. Confusion Matrix: MCC, Kappa, and Cost-Sensitive Evaluationlayer 1, tier 1
  7. Evaluation Metrics and Propertieslayer 2, tier 2
  8. Feature Importance and Interpretabilitylayer 2, tier 2
  9. Gaussian Process Regressionlayer 3, tier 2
  10. Model Evaluation Best Practiceslayer 1, tier 1
  11. Overfitting and Underfittinglayer 2, tier 1
  12. Proper Scoring Ruleslayer 2, tier 2
  13. Statistical Significance and Multiple Comparisonslayer 2, tier 2
  14. Train-Test Split and Data Leakagelayer 1, tier 1
  15. XGBoostlayer 2, tier 2

Reachable through the chain (283)

These topics are not directly cited as prerequisites but are reached transitively by following the chain upward. Working through the direct prerequisites pulls these in.