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UNIVERSITY OF OXFORD | MSC AI FOR BUSINESS MODULE: CLASSICAL MACHINE LEARNING (CML) (2026)

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Master the technical core of AI! This comprehensive study guide for the Oxford MSc AI for Business covers the "Classical Machine Learning" module in depth. It breaks down complex mathematical concepts like Linear vs. Logistic Regression, Decision Trees, and Ensemble Methods (Random Forest/XGBoost) into business-ready insights. Perfect for students and professionals, this guide includes technical formulas, performance metrics (Precision/Recall), and the Bias-Variance Tradeoff. Learn to build and evaluate predictive models that drive real business value.

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January 23, 2026
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2025/2026
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UNIVERSITY OF OXFORD | MSC AI
FOR BUSINESS
MODULE: CLASSICAL MACHINE LEARNING (CML)
TERM 1 LECTURE NOTES: FOUNDATIONAL ALGORITHMS & PREDICTIVE
MODELING




1. THE "CLASSICAL" VS. "DEEP" DISTINCTION
In the Oxford curriculum, Classical ML refers to algorithms that learn from
structured data (rows and columns) rather than unstructured data (pixels/audio).
• Key Advantage: Interpretability. In business, you often need to explain why
a customer was denied a loan. Classical models allow for this; Deep
Learning often does not.
• The "No Free Lunch" Theorem: No single algorithm works best for every
problem. A leader's job is to match the algorithm to the data.




2. REGRESSION: PREDICTING CONTINUOUS VALUES
Regression is the most common tool for Forecasting (Sales, Prices, Demand).
2.1 Linear Regression
The simplest model that establishes a relationship between a dependent variable
(Y) and one or more independent variables (X).
• Equation:


• Business Use: Predicting next quarter's revenue based on current
marketing spend.
• Assumption: It assumes a straight-line relationship. If the data is curved,
the model fails.
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