Apr 20, 2024  
2020-2021 Graduate Catalogue 
    
2020-2021 Graduate Catalogue Archived Catalogue

DSC 531 - Generalized Linear Models


Course Description: Introduction to generalization of ordinary linear regression and applications with implementation in computer languages such as Python, R, SAS, and Matlab. Estimated parameters with maximum likelihood, maximum quasi-likelihood, or Bayesian techniques. Learn when to apply common distributions for typical uses and their canonical link functions. Six lecture hours and two laboratory hours per week for each week of the half-semester session.

Credit Hours: 3

Corequisite Courses: None
Prerequisite Courses: None
Additional Restrictions/ Requirements: None
Course Repeatability Course may not be repeated


ADDITIONAL COURSE INFORMATION

Equivalent Courses: None
Undergraduate Crosslisting: None
Additional Course Fees: None
Course Attribute: None








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