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Item specifics
- Condition
- ISBN
- 9781032019321
- Subject Area
- Mathematics, Business & Economics
- Publication Name
- Linear Mixed Models : a Practical Guide Using Statistical Software
- Publisher
- CRC Press LLC
- Item Length
- 10 in
- Subject
- Probability & Statistics / Regression Analysis, Probability & Statistics / Multivariate Analysis, General, Statistics
- Publication Year
- 2022
- Type
- Textbook
- Format
- Hardcover
- Language
- English
- Item Weight
- 34.6 Oz
- Item Width
- 7 in
- Number of Pages
- 461 Pages
About this product
Product Identifiers
Publisher
CRC Press LLC
ISBN-10
1032019328
ISBN-13
9781032019321
eBay Product ID (ePID)
24057247210
Product Key Features
Number of Pages
461 Pages
Publication Name
Linear Mixed Models : a Practical Guide Using Statistical Software
Language
English
Publication Year
2022
Subject
Probability & Statistics / Regression Analysis, Probability & Statistics / Multivariate Analysis, General, Statistics
Type
Textbook
Subject Area
Mathematics, Business & Economics
Format
Hardcover
Dimensions
Item Weight
34.6 Oz
Item Length
10 in
Item Width
7 in
Additional Product Features
Edition Number
3
Intended Audience
Scholarly & Professional
LCCN
2022-014298
Dewey Edition
23/eng20220623
Illustrated
Yes
Dewey Decimal
519.5/35
Table Of Content
1. Introduction 2. Linear Mixed Models: An Overview 3. Two-Level Models for Clustered Data: The Rat Pup Example 4. Three-Level Models for Clustered Data 5. Models for Repeated-Measures Data: The Rat Brain Example 6. Random Coecient Models for Longitudinal Data: The Autism Example 7. Models for Clustered Longitudinal Data: The Dental Veneer Example 8. Models for Data with Crossed Random Factors: The SAT Score Example 9. Power Analysis and Sample Size Calculations for Linear Mixed Models A. Statistical Software Resources B. Calculation of the Marginal Covariance Matrix C. Acronyms / Abbreviations
Synopsis
Highly recommended by JASA, Technometrics, and other leading statistical journals, the first two editions of this bestseller showed how to easily perform complex linear mixed model (LMM) analyses via a variety of software programs. Linear Mixed Models: A Practical Guide Using Statistical Software, Third Edition continues to lead readers step-by-step through the process of fitting LMMs. The third edition provides a comprehensive update of the available tools for fitting linear mixed-effects models in the newest versions of SAS, SPSS, R, Stata, and HLM. All examples have been updated, with a focus on new tools for visualization of results and interpretation. New conceptual and theoretical developments in mixed-effects modeling have been included, and there is a new chapter on power analysis for mixed-effects models. Features: -Dedicates an entire chapter to the key theories underlying LMMs for clustered, longitudinal, and repeated measures data -Provides descriptions, explanations, and examples of software code necessary to fit LMMs in SAS, SPSS, R, Stata, and HLM -Contains detailed tables of estimates and results, allowing for easy comparisons across software procedures -Presents step-by-step analyses of real-world data sets that arise from a variety of research settings and study designs, including hypothesis testing, interpretation of results, and model diagnostics -Integrates software code in each chapter to compare the relative advantages and disadvantages of each package -Supplemented by a website with software code, datasets, additional documents, and updates Ideal for anyone who uses software for statistical modeling, this book eliminates the need to read multiple software-specific texts by covering the most popular software programs for fitting LMMs in one handy guide. The authors illustrate the models and methods through real-world examples that enable comparisons of model-fitting options and results across the software procedures., Highly recommended by JASA, Technometrics, and other leading statistical journals, the first two editions of this bestseller showed how to easily perform complex linear mixed model (LMM) analyses via a variety of software programs. Linear Mixed Models: A Practical Guide Using Statistical Software, Third Edition continues to lead readers step-by-step through the process of fitting LMMs. The third edition provides a comprehensive update of the available tools for fitting linear mixed-effects models in the newest versions of SAS, SPSS, R, Stata, and HLM. All examples have been updated, with a focus on new tools for visualization of results and interpretation. New conceptual and theoretical developments in mixed-effects modeling have been included, and there is a new chapter on power analysis for mixed-effects models. Features:*Dedicates an entire chapter to the key theories underlying LMMs for clustered, longitudinal, and repeated measures data *Provides descriptions, explanations, and examples of software code necessary to fit LMMs in SAS, SPSS, R, Stata, and HLM *Contains detailed tables of estimates and results, allowing for easy comparisons across software procedures *Presents step-by-step analyses of real-world data sets that arise from a variety of research settings and study designs, including hypothesis testing, interpretation of results, and model diagnostics *Integrates software code in each chapter to compare the relative advantages and disadvantages of each package *Supplemented by a website with software code, datasets, additional documents, and updates Ideal for anyone who uses software for statistical modeling, this book eliminates the need to read multiple software-specific texts by covering the most popular software programs for fitting LMMs in one handy guide. The authors illustrate the models and methods through real-world examples that enable comparisons of model-fitting options and results across the software procedures., The third edition provides a comprehensive update of the available tools for fitting linear mixed-effects models in the newest versions of SAS, SPSS, R, Stata, and HLM. There is a focus on new tools for visualization of results and interpretation. New conceptual and theoretical developments in mixed-effects modeling have been included
LC Classification Number
QA279.W47 2022
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