IDAI 710

Fundamentals of Machine Learning

Rochester Institute of Technology · UGRD · Fall 2026

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This course is an introduction to machine learning theories and algorithms. Topics include an overview of data collection, sampling and visualization techniques, supervised and unsupervised learning and graphical models. Specific techniques that may be covered include classification (e.g., support vector machines, tree-based models, neural networks), regression, model selection and some deep learning techniques. Programming assignments and oral/written summaries of research papers are required.

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Class #rochester_2-IDAI710Fall 2026UGRD3 credits
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