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Courses - Fall 2024
CMSC
Computer Science Department Site
Open Seats as of
05/06/2024 at 10:30 PM
CMSC858A
Advanced Topics in Theory of Computing; Concentration Inequalities for Randomized Algorithms and Machine Learning
Credits: 3
Grad Meth: Reg, Aud
Prerequisites: CMSC451 or equivalent; and an interest in probability (no major probability background is required, but general mathematical interest is necessary).

Must be in the Computer Science Master's or Doctoral programs, or permission of department

Concentration inequalities (large-deviation bounds) are of fundamental use in randomized algorithms, machine learning, data science, and other areas. This course will cover cutting-edge techniques in this field, and applications.