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Statistical Learning and Prediction STAT 452 (3)
An introduction to the essential modern supervised and unsupervised statistical learning methods. Topics include review of linear regression, classification, statistical error measurement, flexible regression and classification methods, clustering and dimension reduction. Prerequisite: STAT 260 and one of STAT 302 or STAT 305 or STAT 350 or ECON 333 or equivalent, with a minimum grade of C-. Quantitative.
Section | Instructor | Day/Time | Location |
---|---|---|---|
D100 |
Owen Ward |
Sep 4 – Oct 11, 2024: Tue, 1:30–2:20 p.m.
Oct 16 – Dec 3, 2024: Tue, 1:30–2:20 p.m. Sep 4 – Dec 3, 2024: Thu, 12:30–2:20 p.m. |
Burnaby Burnaby Burnaby |
D101 |
Owen Ward |
Sep 4 – Oct 11, 2024: Tue, 3:30–4:20 p.m.
Oct 16 – Dec 3, 2024: Tue, 3:30–4:20 p.m. |
Burnaby Burnaby |
D102 |
Owen Ward |
Sep 4 – Oct 11, 2024: Tue, 4:30–5:20 p.m.
Oct 16 – Dec 3, 2024: Tue, 4:30–5:20 p.m. |
Burnaby Burnaby |
D103 |
Owen Ward |
Sep 4 – Oct 11, 2024: Tue, 5:30–6:20 p.m.
Oct 16 – Dec 3, 2024: Tue, 5:30–6:20 p.m. |
Burnaby Burnaby |
D104 |
Owen Ward |
Sep 4 – Dec 3, 2024: Thu, 2:30–3:20 p.m.
|
Burnaby |
D105 |
Owen Ward |
Sep 4 – Dec 3, 2024: Thu, 3:30–4:20 p.m.
|
Burnaby |