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MAT 420

Intro to Machine Learning · 3 credits · Spring 2027

Requirements

Corequisite: MAT 415 Non-Degree Students must seek approval from Math Department in Room N599

About this course

This course is an introduction to machine learning principles and techniques. The mathematics and applications of the following topics will be covered: generalization, point estimation, neural networks with an emphasis on the perceptron and generalizations, non-linear separation, dimension reduction and various supervised algorithms such as K-nearest neighbor. Time permitting, topic models and support vector machines will be discussed.

Seat status as of Oct 3, 4:22 AM ET. Seats can change between refreshes.

Chill Rank compares professors using Rate My Professors reviews, from Chill to Brutal. What each rank means

1500-LEC Regular
Tue/Thu · 3:00 PM - 4:40 PM
Fiterman 705
Oleg MuzicianChill Rank 4 of 5: Busy?★ 3.7(26)Difficulty 3.4/5 · 47% would take again
In PersonOpen