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An Introduction to Latent Variable Growth Curve Modeling: Concepts, Issues, and Applications (Quantitative Methodology) (Quantitative Methodology Series)
 
 

An Introduction to Latent Variable Growth Curve Modeling: Concepts, Issues, and Applications (Quantitative Methodology) (Quantitative Methodology Series) [Paperback]

Terry E. Duncan (Author), Susan C. Duncan (Author), Lisa A. Strycker (Author)
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Book Description

May 23, 2006 0805855475 978-0805855470 2

This book provides a comprehensive introduction to latent variable growth curve modeling (LGM) for analyzing repeated measures. It presents the statistical basis for LGM and its various methodological extensions, including a number of practical examples of its use. It is designed to take advantage of the reader’s familiarity with analysis of variance and structural equation modeling (SEM) in introducing LGM techniques. Sample data, syntax, input and output, are provided for EQS, Amos, LISREL, and Mplus on the book’s CD. Throughout the book, the authors present a variety of LGM techniques that are useful for many different research designs, and numerous figures provide helpful diagrams of the examples.

Updated throughout, the second edition features three new chapters—growth modeling with ordered categorical variables, growth mixture modeling, and pooled interrupted time series LGM approaches. Following a new organization, the book now covers the development of the LGM, followed by chapters on multiple-group issues (analyzing growth in multiple populations, accelerated designs, and multi-level longitudinal approaches), and then special topics such as missing data models, LGM power and Monte Carlo estimation, and latent growth interaction models. The model specifications previously included in the appendices are now available on the CD so the reader can more easily adapt the models to their own research.

This practical guide is ideal for a wide range of social and behavioral researchers interested in the measurement of change over time, including social, developmental, organizational, educational, consumer, personality and clinical psychologists, sociologists, and quantitative methodologists, as well as for a text on latent variable growth curve modeling or as a supplement for a course on multivariate statistics. A prerequisite of graduate level statistics is recommended.


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Customers buy this book with Principles and Practice of Structural Equation Modeling, Third Edition (Methodology In The Social Sciences) $42.25

An Introduction to Latent Variable Growth Curve Modeling: Concepts, Issues, and Applications (Quantitative Methodology) (Quantitative Methodology Series) + Principles and Practice of Structural Equation Modeling, Third Edition (Methodology In The Social Sciences)


Editorial Reviews

Review

"…The book is an excellent mid-level text on latent growth modeling… [The graphics] are arguably better than those in any other book on any aspect of SEM. They are crisp and clear, and the inclusion of the theoretical weights is greatly helpful in understanding the graphics…" - Lee Sechrest, Ph.D., University of Arizona

"I initially learned growth modeling from this book, and I am still a big fan. It allowed me to jump in and get my feet wet with this flexible analytic method…the text really is just as its title suggestsan introduction–and an excellent one at that...." - James A. Bovaird, Ph.D., University of Kansas

About the Author

Terry E. Duncanis a Senior Research Scientist at the Oregon Research Institute. He received his Ph.D. from the University of Oregon and is an active researcher in statistical methods for longitudinal and multilevel designs, structural equation and generalized linear models, approaches for the analysis of missing data, and the etiology of substance use and development. --This text refers to the Hardcover edition.

Product Details

  • Paperback: 272 pages
  • Publisher: Lawrence Erlbaum Associates; 2 edition (May 23, 2006)
  • Language: English
  • ISBN-10: 0805855475
  • ISBN-13: 978-0805855470
  • Product Dimensions: 8.9 x 5.9 x 0.7 inches
  • Shipping Weight: 12.8 ounces (View shipping rates and policies)
  • Average Customer Review: 5.0 out of 5 stars  See all reviews (2 customer reviews)
  • Amazon Best Sellers Rank: #724,342 in Books (See Top 100 in Books)

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Most Helpful Customer Reviews

16 of 16 people found the following review helpful:
5.0 out of 5 stars Clear, easy to follow intro to LGCM theory and techniques, October 20, 1999
This is an excellent book for anyone who wishes to not only understand the theory behind latent growth curve modeling but also seeing how it is directly applied in a number of situations. For a reader like me who depends upon the literature to help understand newer statistical approaches, a book like this is a breath of fresh air. The book presents very clearly how to set up a basic LGC model and includes other topics such as dealing with missing data, interaction effects and multilevel approaches to longitudinal data analysis. The appendix contains a number of example LGCM models in the software language of EQS, LISREL and AMOS. I most highly recommend this text for beginners and more advanced modelers alike!
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4 of 4 people found the following review helpful:
5.0 out of 5 stars Easy to Learn LCM, January 6, 2008
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This review is from: An Introduction to Latent Variable Growth Curve Modeling: Concepts, Issues, and Applications (Quantitative Methodology) (Quantitative Methodology Series) (Paperback)
A great second edition of a book that is easy to use. This book has proven to be very useful to graduate students learning Latent Curve Methods on their own as well as in a supportive classroom environment. The examples are well described and the theory is sufficient to inform almost any user. My students had success using every example then replicating that success with their own datasets.
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Inside This Book (learn more)
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
true longitudinal model, mar juana use, intercept factor mean, variable growth curve modeling, factor variance ratio, common developmental trend, true longitudinal design, following fit indices, linear panel models, growth curve methodology, latent growth factors, growth mixture model, growth factor mean, categorical latent variable, model fitting procedures, imputed data sets, latent growth curve model, standard error bias, piecewise model, latent class variable, piecewise approach, distinct developmental periods, ordered categorical outcomes, mixture indicator, mixed linear model
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Monte Carlo, Value Effect, Variances Intercept, National Youth Survey, Value Means Intercept, Value Estimate, Mixture Models Model, Parameter Coefficient, Value Means Substance
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