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SDS 4020

Mathematical Statistics

MATHEMATICS AND STATISTICSSTATISTICS AND DATA SCIENCE

Theory of estimation, minimum variance and unbiased estimators, maximum likelihood theory, Bayesian estimation, prior and posterior distributions, confidence intervals for general estimators, standard estimators and distributions such as the Student-t and F-distribution from a more advanced viewpoint, hypothesis testing, the Neymann-Pearson Lemma (about best possible tests), linear models, and other topics as time permits.

Instructors

Chakraborty, Jimin Ding, Nilanjan Chakraborty, Robert Lunde, Soumendra Lahiri

4.0
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4.0
Difficulty
1
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Reviews

Quality: 4Difficulty: 4Chakraborty

6-8 hrs/week

Chakraborty is super funny. Homework is really difficult but exams aren't bad. Definitely go to office hours.

6/18/2024