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Growth Curve Analysis and Visualization Using R Daniel Mirman (University of Alabama at Birmingham)

Growth Curve Analysis and Visualization Using R By Daniel Mirman (University of Alabama at Birmingham)

Growth Curve Analysis and Visualization Using R by Daniel Mirman (University of Alabama at Birmingham)


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Growth Curve Analysis and Visualization Using R Summary

Growth Curve Analysis and Visualization Using R by Daniel Mirman (University of Alabama at Birmingham)

Learn How to Use Growth Curve Analysis with Your Time Course Data

An increasingly prominent statistical tool in the behavioral sciences, multilevel regression offers a statistical framework for analyzing longitudinal or time course data. It also provides a way to quantify and analyze individual differences, such as developmental and neuropsychological, in the context of a model of the overall group effects. To harness the practical aspects of this useful tool, behavioral science researchers need a concise, accessible resource that explains how to implement these analysis methods.

Growth Curve Analysis and Visualization Using R provides a practical, easy-to-understand guide to carrying out multilevel regression/growth curve analysis (GCA) of time course or longitudinal data in the behavioral sciences, particularly cognitive science, cognitive neuroscience, and psychology. With a minimum of statistical theory and technical jargon, the author focuses on the concrete issue of applying GCA to behavioral science data and individual differences.

The book begins with discussing problems encountered when analyzing time course data, how to visualize time course data using the ggplot2 package, and how to format data for GCA and plotting. It then presents a conceptual overview of GCA and the core analysis syntax using the lme4 package and demonstrates how to plot model fits. The book describes how to deal with change over time that is not linear, how to structure random effects, how GCA and regression use categorical predictors, and how to conduct multiple simultaneous comparisons among different levels of a factor. It also compares the advantages and disadvantages of approaches to implementing logistic and quasi-logistic GCA and discusses how to use GCA to analyze individual differences as both fixed and random effects. The final chapter presents the code for all of the key examples along with samples demonstrating how to report GCA results.

Throughout the book, R code illustrates how to implement the analyses and generate the graphs. Each chapter ends with exercises to test your understanding. The example datasets, code for solutions to the exercises, and supplemental code and examples are available on the authors website.

Growth Curve Analysis and Visualization Using R Reviews

" an up-to-date, practical introduction to visualizing and modeling time course and multilevel data. It is particularly well suited to applied researchers in the fields of cognitive science, neuroscience, and linguistics. Virtually no familiarity with R is required (although it helps). Detailed code examples are given using lme4 for linear and logistic growth curve models and ggplot2 for graphing. The writing is clear and easy to follow, without jargon "
Joshua F. Wiley, Journal of Statistical Software, June 2014

Table of Contents

Time Course Data. Conceptual Overview of Growth Curve Analysis. When Change over Time Is Not Linear. Structuring Random Effects. Categorical Predictors. Binary Outcomes: Logistic GCA. Individual Differences. Complete Examples. References. Index.

Additional information

CIN1466584327G
9781466584327
1466584327
Growth Curve Analysis and Visualization Using R by Daniel Mirman (University of Alabama at Birmingham)
Used - Good
Hardback
Taylor & Francis Inc
2014-02-24
188
N/A
Book picture is for illustrative purposes only, actual binding, cover or edition may vary.
This is a used book - there is no escaping the fact it has been read by someone else and it will show signs of wear and previous use. Overall we expect it to be in good condition, but if you are not entirely satisfied please get in touch with us

Customer Reviews - Growth Curve Analysis and Visualization Using R