EDLF 8310

Generalized Linear Models

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Course Description

Focus is on the generalized linear model (GLM) for cases when variables have specific non-normal conditional distributions, with emphasis on common data analytic challenges that arise in real world settings. Topics include nonlinear relationships, nominal and ordinal outcomes, discrepant data, and bootstrapping methods. Course materials are grounded in applied examples from the social and health sciences.


  • Francis Huang

     Rating

     Difficulty

     GPA

    3.74

     Sections

    Last Taught

    Spring 2013

  • Xitao Fan

     Rating

     Difficulty

     GPA

    3.81

     Sections

    Last Taught

    Spring 2011

  • James Peugh

     Rating

     Difficulty

     GPA

     Sections

    Last Taught

    Spring 2011

  • Vivian Wong

     Rating

     Difficulty

     GPA

    3.83

     Sections

    Last Taught

    Spring 2025

  • Ji Ryoo

     Rating

     Difficulty

     GPA

    3.85

     Sections

    Last Taught

    Fall 2016

  • Michael Hull

     Rating

     Difficulty

     GPA

     Sections

    Last Taught

    Spring 2024