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Longitudinal Data Analysis Using SEM - Online Course

A 4-Week On Demand Seminar Taught by

Paul Allison
Course Dates:

Monday, November 16 —
Monday, December 14, 2026

Schedule:

Each Monday you will receive an email with instructions for the following week.

All course materials are available 24 hours a day. Materials will be accessible for an additional 2 weeks after the official close on December 14.

Watch Sample Video

For over a decade, Dr. Paul Allison has been teaching his acclaimed seminar on Longitudinal Data Analysis Using SEM to audiences around the world. This seminar develops a methodology that integrates two widely used approaches to the analysis of longitudinal data: cross-lagged panel analysis and fixed effects analysis. In this more comprehensive framework, you can test causal hypotheses in a way that both controls for unmeasured confounders while also allowing for reverse causation. In addition, the SEM methodology lets you relax many of the restrictive assumptions of more traditional methods.

The course takes place in a series of four weekly installments of videos, quizzes, readings, and assignments, and requires about 6-8 hours/week. You can participate at your own convenience; there are no set times when you are required to be online. You can access the course through any recent web browser on most computers and mobile devices, including iPhones, iPads, and Android devices. It consists of 11 modules:

    1. Introduction
    2. Cross-Lagged Panel Models
    3. Goodness of Fit and Equality Constraints
    4. Fixed Effects with SEM
    5. Fixed Effects with Time-Invariant Predictors
    6. Combining Fixed Effects with Cross-Lagged Models
    7. One-Sided Estimation
    8. Hip Data Example
    9. Getting the Lags Right
    10. Models for Binary Outcomes
    11. Models for Count Data

The modules contain videos of the live, 2-day version of the course in its entirety. Each module is followed by a short multiple-choice quiz to test your knowledge. There are also weekly exercises that ask you to apply what you’ve learned to a real data set.

Each week, there are two assigned articles to read. There is also an online discussion forum where you can post questions or comments about any aspect of the course. All questions will be promptly answered by Dr. Allison.

Downloadable course materials include the following PDF files:

    • All slides displayed in the videos.
    • Exercises for each week.
    • Readings for each week.
    • Computer code for all exercises (in Mplus, Stata, SAS, and R formats).
    • A certificate of completion.

ECTS Equivalent Points: 1

More details about the course content

Computing

Who should register?

Registration instructions

“I’m eager to apply this method in future analyses.” 

I liked that I was able to learn new methods, combining fixed effect and cross-lagged models using SEM with detailed explanations. I’m eager to apply this method in future analyses. 

JungHee Kang

University of Kentucky

“This course opened my eyes wider to the advantages of SEM.”

Professor Allison’s ability to get to the heart of the matter in a few clear, short sentences was outstanding. This course opened my eyes wider to the advantages of SEM. For example, econometricians ban the use of lagged DV for bias, whereas in SEM that’s allowed by putting in the right correlation. 

Michael L. Berbaum

University of Illinois Chicago

“The course...enables the participants to apply what they have learned in practice.” 

“The course provides numerous exercises to support an understanding of the content and enables the participants to apply what they have learned in practice – including in their own research.” 

Thomas Zimmermann

Goethe University Frankfurt 

“This seminar was very informative...” 

“This seminar was very informative as I have been needing help with my research on longitudinal data. I really appreciate Dr. Allison’s patience in explaining concepts for me, even basic questions about the concepts and software. His very clear explanations made the analysis method feel like less of a daunting undertaking than I had anticipated. 

Emma Lu

“I highly recommend this course.”

“This was an excellent course covering an important analytical approach to longitudinal data analysis. Dr. Allison is both a pioneer of this method and an excellent teacher. The online format offers a lot of advantages to participants who wish to revisit materials and ask Dr. Allison carefully considered questions. I highly recommend this course.”

Xiaoquan Zhao

George Mason University