Modeling Count Data using Stata

Modeling Count Data using Stata



Modeling Count Data using Stata


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Poisson and Negative Binomial Regression Techniques


Understand count tables
Calculate incidence-rate ratios
Understand what count models are
Identify when to use count models
Poisson regression
Negative binomial regression
Truncated models
Zero-inflated models
Predict expected number of outcomes
Apply count models using Stata
Compare different models
Visualise the results


Description

Included in this course is an e-book and a set of slides. The course is divided into two parts. In the first part, students are introduced to the theory behind count models. The theory is explained in an intuitive way while keeping the math at a minimum. The course starts with an introduction to count tables, where students learn how to calculate the incidence-rate ratio. From there, the course moves on to Poisson regression where students learn how to include continuous, binary, and categorical variables. Students are then introduced to the concept of overdispersion and the use of negative binomial models to address this issue. Other count models such as truncated models and zero-inflated models are discussed.

In the second part of the course, students learn how to apply what they have learned using Stata. In this part, students will walk through a large project in order to fit Poisson, negative binomial, and zero-inflated models. The tools used to compare these models are also introduced.

Who this course is for:
Beginner non-mathematical students seeking to become data scientists
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