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Latent Class and Latent Transition Analysis: With Applications in the Social, Behavioral, and Health Sciences, Collins Linda M., Lanza Stephanie T.


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Цена: 17416.00р.
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Автор: Collins Linda M., Lanza Stephanie T.
Название:  Latent Class and Latent Transition Analysis: With Applications in the Social, Behavioral, and Health Sciences
ISBN: 9780470228395
Издательство: Wiley
Классификация:
ISBN-10: 0470228393
Обложка/Формат: Hardback
Страницы: 330
Вес: 0.60 кг.
Дата издания: 12.01.2010
Серия: Wiley series in probability and statistics
Язык: English
Иллюстрации: Illustrations
Размер: 157 x 239 x 21
Читательская аудитория: Professional & vocational
Ключевые слова: Mathematics
Подзаголовок: With applications in the social, behavioral, and health sciences
Ссылка на Издательство: Link
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Поставляется из: Англии
Описание: Focuses on latent class analysis (LCA) and latent transition analysis (LTA) with a comprehensive treatment of longitudinal latent class models. This book includes examples that enable the reader to acquire a conceptual and technical understanding and to apply techniques to address empirical research questions.


Current topics in the theory and application of latent variable models

Название: Current topics in the theory and application of latent variable models
ISBN: 0415637783 ISBN-13(EAN): 9780415637787
Издательство: Taylor&Francis
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Цена: 7961.00 р.
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Описание: This book presents recent developments in the theory and application of latent variable models (LVMs) by some of the most prominent researchers in the field. Topics covered involve a range of LVM frameworks including item response theory, structural equation modeling, factor analysis, and latent curve modeling, as well as various non-standard data structures and innovative applications. The book is divided into two sections, although several chapters cross these content boundaries.  Part one focuses on complexities which involve the adaptation of latent variables models in research problems where real-world conditions do not match conventional assumptions.  Chapters in this section cover issues such as analysis of dyadic data and complex survey data, as well as analysis of categorical variables.  Part two of the book focuses on drawing real-world meaning from results obtained in LVMs. In this section there are chapters examining issues involving assessment of model fit, the nature of uncertainty in parameter estimates, inferences, and the nature of latent variables and individual differences. This book appeals to researchers and graduate students interested in the theory and application of latent variable models. As such, it serves as a supplementary reading in graduate level courses on latent variable models. Prerequisites include basic knowledge of latent variable models.

Latent Class Analysis of Survey Error

Автор: Biemer
Название: Latent Class Analysis of Survey Error
ISBN: 0470289074 ISBN-13(EAN): 9780470289075
Издательство: Wiley
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Цена: 15990.00 р.
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Описание: This book concerns the error in data collected using sample surveys, the nature and magnitudes of the errors, their effects on survey estimates, how to model and estimate the errors using a variety of modeling methods, and, finally, how to interpret the estimates and make use of the results in reducing the error for future surveys.

Latent Variable Models

Автор: Loehlin
Название: Latent Variable Models
ISBN: 1138916064 ISBN-13(EAN): 9781138916067
Издательство: Taylor&Francis
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Цена: 24499.00 р.
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Описание: This book introduces multiple-latent variable models by utilizing path diagrams to explain the underlying relationships in the models.

Latent Variable Models

Автор: Loehlin
Название: Latent Variable Models
ISBN: 1138916072 ISBN-13(EAN): 9781138916074
Издательство: Taylor&Francis
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Цена: 9798.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book introduces multiple-latent variable models by utilizing path diagrams to explain the underlying relationships in the models.

Latent Variable Modeling with R

Автор: Finch
Название: Latent Variable Modeling with R
ISBN: 0415832446 ISBN-13(EAN): 9780415832441
Издательство: Taylor&Francis
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Цена: 24499.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book demonstrates how to conduct latent variable modeling (LVM) in R by highlighting the features of each model, their specialized uses, examples, sample code and output, and an interpretation of the results. Each chapter features a detailed example including the analysis of the data using R, the relevant theory, the assumptions underlying the model, and other statistical details to help readers better understand the models and interpret the results. Every R command necessary for conducting the analyses is described along with the resulting output which provides readers with a template to follow when they apply the methods to their own data. The basic information pertinent to each model, the newest developments in these areas, and the relevant R code to use them are reviewed. Each chapter also features an introduction, summary, and suggested readings. A glossary of the text’s boldfaced key terms and key R commands serve as helpful resources. The book is accompanied by a website with exercises, an answer key, and the in-text example data sets. Latent Variable Modeling with R: -Provides some examples that use messy data providing a more realistic situation readers will encounter with their own data. -Reviews a wide range of LVMs including factor analysis, structural equation modeling, item response theory, and mixture models and advanced topics such as fitting nonlinear structural equation models, nonparametric item response theory models, and mixture regression models. -Demonstrates how data simulation can help researchers better understand statistical methods and assist in selecting the necessary sample size prior to collecting data. -www.routledge.com/9780415832458 provides exercises that apply the models along with annotated R output answer keys and the data that corresponds to the in-text examples so readers can replicate the results and check their work. The book opens with basic instructions in how to use R to read data, download functions, and conduct basic analyses. From there, each chapter is dedicated to a different latent variable model including exploratory and confirmatory factor analysis (CFA), structural equation modeling (SEM), multiple groups CFA/SEM, least squares estimation, growth curve models, mixture models, item response theory (both dichotomous and polytomous items), differential item functioning (DIF), and correspondance analysis. ?The book concludes with a discussion of how data simulation can be used to better understand the workings of a statistical method and assist researchers in deciding on the necessary sample size prior to collecting data.? A mixture of independently developed R code along with available libraries for simulating latent models in R are provided so readers can use these simulations to analyze data using the methods introduced in the previous chapters. Intended for use in graduate or advanced undergraduate courses in latent variable modeling, factor analysis, structural equation modeling, item response theory, measurement, or multivariate statistics taught in psychology, education, human development, and social and health sciences, researchers in these fields also appreciate this book’s practical approach. The book provides sufficient conceptual background information to serve as a standalone text.? Familiarity with basic statistical concepts is assumed but basic knowledge of R is not.

Latent Variable Modeling with R

Автор: Finch
Название: Latent Variable Modeling with R
ISBN: 0415832454 ISBN-13(EAN): 9780415832458
Издательство: Taylor&Francis
Рейтинг:
Цена: 8726.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book demonstrates how to conduct latent variable modeling (LVM) in R by highlighting the features of each model, their specialized uses, examples, sample code and output, and an interpretation of the results. Each chapter features a detailed example including the analysis of the data using R, the relevant theory, the assumptions underlying the model, and other statistical details to help readers better understand the models and interpret the results. Every R command necessary for conducting the analyses is described along with the resulting output which provides readers with a template to follow when they apply the methods to their own data. The basic information pertinent to each model, the newest developments in these areas, and the relevant R code to use them are reviewed. Each chapter also features an introduction, summary, and suggested readings. A glossary of the text’s boldfaced key terms and key R commands serve as helpful resources. The book is accompanied by a website with exercises, an answer key, and the in-text example data sets. Latent Variable Modeling with R: -Provides some examples that use messy data providing a more realistic situation readers will encounter with their own data. -Reviews a wide range of LVMs including factor analysis, structural equation modeling, item response theory, and mixture models and advanced topics such as fitting nonlinear structural equation models, nonparametric item response theory models, and mixture regression models. -Demonstrates how data simulation can help researchers better understand statistical methods and assist in selecting the necessary sample size prior to collecting data. -www.routledge.com/9780415832458 provides exercises that apply the models along with annotated R output answer keys and the data that corresponds to the in-text examples so readers can replicate the results and check their work. The book opens with basic instructions in how to use R to read data, download functions, and conduct basic analyses. From there, each chapter is dedicated to a different latent variable model including exploratory and confirmatory factor analysis (CFA), structural equation modeling (SEM), multiple groups CFA/SEM, least squares estimation, growth curve models, mixture models, item response theory (both dichotomous and polytomous items), differential item functioning (DIF), and correspondance analysis. ?The book concludes with a discussion of how data simulation can be used to better understand the workings of a statistical method and assist researchers in deciding on the necessary sample size prior to collecting data.? A mixture of independently developed R code along with available libraries for simulating latent models in R are provided so readers can use these simulations to analyze data using the methods introduced in the previous chapters. Intended for use in graduate or advanced undergraduate courses in latent variable modeling, factor analysis, structural equation modeling, item response theory, measurement, or multivariate statistics taught in psychology, education, human development, and social and health sciences, researchers in these fields also appreciate this book’s practical approach. The book provides sufficient conceptual background information to serve as a standalone text.? Familiarity with basic statistical concepts is assumed but basic knowledge of R is not.


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