GEN 3114

Introduction to Machine Learning

Stanford University · UGRD · Fall 2026

1 section
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Introduction to machine learning. Formulation of supervised and unsupervised learning problems. Regression and classification. Data standardization and feature engineering. Loss function selection and its effect on learning. Regularization and its role in controlling complexity. Validation and overfitting. Robustness to outliers. Simple numerical implementation. Experiments on data from a wide variety of engineering and other disciplines. Undergraduate students should enroll for 5 units, and graduate students should enroll for 3 units.

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Class #stanford-3114Fall 2026UGRD3 credits
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