Biostatistics is the application of statistical reasoning to the life sciences, and it's the key to unlocking the data gathered by researchers and the evidence presented in the scientific public health literature. In this course, we'll focus on the use of simple regression methods to determine the relationship between an outcome of interest and a single predictor via a linear equation. Along the way, you'll be introduced to a variety of methods, and you'll practice interpreting data and performing calculations on real data from published studies. Topics include logistic regression, confidence intervals, p-values, Cox regression, confounding, adjustment, and effect modification.

Simple Regression Analysis in Public Health

Simple Regression Analysis in Public Health
This course is part of Biostatistics in Public Health Specialization

Instructor: John McGready, PhD, MS
Access provided by Lok Jagruti University
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389 reviews
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What you'll learn
Practice simple regression methods to determine relationships between an outcome and a predictor
Recognize confounding in statistical analysis
Perform estimate adjustments
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Reviewed on Oct 18, 2019
The course content was great. However, there was some technical problems.
Reviewed on Sep 5, 2020
Such complex concepts explained with ease. The section on confounding requires more than one reading. Really enjoyed it.
Reviewed on Mar 21, 2023
Very happy that all I requested for was attended to i.e explanation especially of the summative assessment and others as required.Thank you so very much for making the learning impactful
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