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BOOK EXCERPT:
This volume reviews longitudinal models and analysis procedures for use in the behavioral and social sciences. Written by distinguished experts in the field, the book presents the most current approaches and theories, and the technical problems that may be encountered along the way. Readers will find new ideas about the use of longitudinal analysis in solving problems that arise due to the specific nature of the research design and the data available. Longitudinal Models in the Behavioral and Related Sciences opens with the latest theoretical developments. In particular, the book addresses situations that arise due to the categorical nature of the data, issues related to state space modeling, and potential problems that may arise from network analysis and/or growth-curve data. The focus of part two is on the application of longitudinal modeling in a variety of disciplines. The book features applications such as heterogeneity on the patterns of a firm’s profit, on house prices, and on delinquent behavior; non-linearity in growth in assessing cognitive aging; measurement error issues in longitudinal research; and distance association for the analysis of change. Part two clearly demonstrates the caution that should be taken when applying longitudinal modeling as well as in the interpretation of the results. This new volume is ideal for advanced students and researchers in psychology, sociology, education, economics, management, medicine, and neuroscience.
Product Details :
Genre |
: Education |
Author |
: Kees van Montfort |
Publisher |
: Routledge |
Release |
: 2017-09-29 |
File |
: 464 Pages |
ISBN-13 |
: 9781351559751 |
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BOOK EXCERPT:
This unique book provides an overview of continuous time modeling in the behavioral and related sciences. It argues that the use of discrete time models for processes that are in fact evolving in continuous time produces problems that make their application in practice highly questionable. One main issue is the dependence of discrete time parameter estimates on the chosen time interval, which leads to incomparability of results across different observation intervals. Continuous time modeling by means of differential equations offers a powerful approach for studying dynamic phenomena, yet the use of this approach in the behavioral and related sciences such as psychology, sociology, economics and medicine, is still rare. This is unfortunate, because in these fields often only a few discrete time (sampled) observations are available for analysis (e.g., daily, weekly, yearly, etc.). However, as emphasized by Rex Bergstrom, the pioneer of continuous-time modeling in econometrics, neither human beings nor the economy cease to exist in between observations. In 16 chapters, the book addresses a vast range of topics in continuous time modeling, from approaches that closely mimic traditional linear discrete time models to highly nonlinear state space modeling techniques. Each chapter describes the type of research questions and data that the approach is most suitable for, provides detailed statistical explanations of the models, and includes one or more applied examples. To allow readers to implement the various techniques directly, accompanying computer code is made available online. The book is intended as a reference work for students and scientists working with longitudinal data who have a Master's- or early PhD-level knowledge of statistics.
Product Details :
Genre |
: Medical |
Author |
: Kees van Montfort |
Publisher |
: Springer |
Release |
: 2018-10-11 |
File |
: 446 Pages |
ISBN-13 |
: 9783319772196 |
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BOOK EXCERPT:
Product Details :
Genre |
: |
Author |
: |
Publisher |
: Routledge |
Release |
: |
File |
: 461 Pages |
ISBN-13 |
: 9781135703943 |
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BOOK EXCERPT:
This book reviews methods of conceptualizing, measuring, and analyzing interdependent data in developmental and behavioral sciences. Quantitative and developmental experts describe best practices for modeling interdependent data that stem from interactions within families, relationships, and peer groups, for example. Complex models for analyzing longitudinal data, such as growth curves and time series, are also presented. Many contributors are innovators of the techniques and all are able to clearly explain the methodologies and their practical problems including issues of measurement, missing data, power and sample size, and the specific limitations of each method. Featuring a balance between analytic strategies and applications, the book addresses: The Actor-Partner Interdependence Model for analyzing influence between two individuals The Intraclass Correlational Approach for analyzing distinguishable roles (parent-child) or exchangeable (same-sex) dyadic data The Social Relations Model for analyzing group interdependency Social Network Analysis approaches for relationships between individuals This book is intended for graduate students and researchers across the developmental, social, behavioral, and educational sciences. It is an excellent research guide and a valuable resource for advanced methods courses.
Product Details :
Genre |
: Psychology |
Author |
: Noel A. Card |
Publisher |
: Routledge |
Release |
: 2011-04-12 |
File |
: 562 Pages |
ISBN-13 |
: 9781135703936 |
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BOOK EXCERPT:
Since Charles Spearman published his seminal paper on factor analysis in 1904 and Karl Joresk ̈ og replaced the observed variables in an econometric structural equation model by latent factors in 1970, causal modelling by means of latent variables has become the standard in the social and behavioural sciences. Indeed, the central va- ables that social and behavioural theories deal with, can hardly ever be identi?ed as observed variables. Statistical modelling has to take account of measurement - rors and invalidities in the observed variables and so address the underlying latent variables. Moreover, during the past decades it has been widely agreed on that serious causal modelling should be based on longitudinal data. It is especially in the ?eld of longitudinal research and analysis, including panel research, that progress has been made in recent years. Many comprehensive panel data sets as, for example, on human development and voting behaviour have become available for analysis. The number of publications based on longitudinal data has increased immensely. Papers with causal claims based on cross-sectional data only experience rejection just for that reason.
Product Details :
Genre |
: Mathematics |
Author |
: Kees van Montfort |
Publisher |
: Springer Science & Business Media |
Release |
: 2010-05-17 |
File |
: 311 Pages |
ISBN-13 |
: 9783642117602 |
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BOOK EXCERPT:
Although longitudinal social network data are increasingly collected, there are few guides on how to navigate the range of available tools for longitudinal network analysis. The applied social scientist is left to wonder: Which model is most appropriate for my data? How should I get started with this modeling strategy? And how do I know if my model is any good? This book answers these questions. Author Scott Duxbury assumes that the reader is familiar with network measurement, description, and notation, and is versed in regression analysis, but is likely unfamiliar with statistical network methods. The goal of the book is to guide readers towards choosing, applying, assessing, and interpreting a longitudinal network model, and each chapter is organized with a specific data structure or research question in mind. A companion website includes data and R code to replicate the examples in the book.
Product Details :
Genre |
: Social Science |
Author |
: Scott Duxbury |
Publisher |
: SAGE Publications |
Release |
: 2022-11-21 |
File |
: 126 Pages |
ISBN-13 |
: 9781071857748 |
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BOOK EXCERPT:
Longitudinal Structural Equation Modeling is a comprehensive resource that reviews structural equation modeling (SEM) strategies for longitudinal data to help readers determine which modeling options are available for which hypotheses. This accessibly written book explores a range of models, from basic to sophisticated, including the statistical and conceptual underpinnings that are the building blocks of the analyses. By exploring connections between models, it demonstrates how SEM is related to other longitudinal data techniques and shows when to choose one analysis over another. Newsom emphasizes concepts and practical guidance for applied research rather than focusing on mathematical proofs, and new terms are highlighted and defined in the glossary. Figures are included for every model along with detailed discussions of model specification and implementation issues and each chapter also includes examples of each model type, descriptions of model extensions, comment sections that provide practical guidance, and recommended readings. Expanded with new and updated material, this edition includes many recent developments, a new chapter on growth mixture modeling, and new examples. Ideal for graduate courses on longitudinal (data) analysis, advanced SEM, longitudinal SEM, and/or advanced data (quantitative) analysis taught in the behavioral, social, and health sciences, this new edition will continue to appeal to researchers in these fields.
Product Details :
Genre |
: Psychology |
Author |
: Jason T. Newsom |
Publisher |
: Taylor & Francis |
Release |
: 2023-10-31 |
File |
: 785 Pages |
ISBN-13 |
: 9781000905984 |
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BOOK EXCERPT:
Product Details :
Genre |
: |
Author |
: Mark Stemmler |
Publisher |
: Springer Nature |
Release |
: |
File |
: 785 Pages |
ISBN-13 |
: 9783031563188 |
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BOOK EXCERPT:
This book reviews the latest techniques in exploratory data mining (EDM) for the analysis of data in the social and behavioral sciences to help researchers assess the predictive value of different combinations of variables in large data sets. Methodological findings and conceptual models that explain reliable EDM techniques for predicting and understanding various risk mechanisms are integrated throughout. Numerous examples illustrate the use of these techniques in practice. Contributors provide insight through hands-on experiences with their own use of EDM techniques in various settings. Readers are also introduced to the most popular EDM software programs. A related website at http://mephisto.unige.ch/pub/edm-book-supplement/offers color versions of the book’s figures, a supplemental paper to chapter 3, and R commands for some chapters. The results of EDM analyses can be perilous – they are often taken as predictions with little regard for cross-validating the results. This carelessness can be catastrophic in terms of money lost or patients misdiagnosed. This book addresses these concerns and advocates for the development of checks and balances for EDM analyses. Both the promises and the perils of EDM are addressed. Editors McArdle and Ritschard taught the "Exploratory Data Mining" Advanced Training Institute of the American Psychological Association (APA). All contributors are top researchers from the US and Europe. Organized into two parts--methodology and applications, the techniques covered include decision, regression, and SEM tree models, growth mixture modeling, and time based categorical sequential analysis. Some of the applications of EDM (and the corresponding data) explored include: selection to college based on risky prior academic profiles the decline of cognitive abilities in older persons global perceptions of stress in adulthood predicting mortality from demographics and cognitive abilities risk factors during pregnancy and the impact on neonatal development Intended as a reference for researchers, methodologists, and advanced students in the social and behavioral sciences including psychology, sociology, business, econometrics, and medicine, interested in learning to apply the latest exploratory data mining techniques. Prerequisites include a basic class in statistics.
Product Details :
Genre |
: Psychology |
Author |
: John J. McArdle |
Publisher |
: Routledge |
Release |
: 2013-08-15 |
File |
: 496 Pages |
ISBN-13 |
: 9781135044091 |
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BOOK EXCERPT:
Since its introduction in the latter half of the 1980s, the meticulous study of distinct criminal career dimensions, like onset, frequency, and crime mix, has yielded a wealth of information on the way crime develops over the life-span. Policymakers in turn have used this information in their efforts to tailor criminal justice interventions to be both effective and efficient. Life-course criminology studies the ways in which the criminal career is embedded in the totality of the individual life-course and seeks to clarify the causal mechanisms governing this process. The Routledge International Handbook of Life-Course Criminology provides an authoritative collection of international theoretical and empirical research into the way that criminal behavior develops over the life-span, which causal mechanisms are involved in shaping this development, and to what degree criminal justice interventions are successful in redirecting offenders’ criminal trajectories. Drawing upon qualitative and quantitative research this handbook covers theory, describes and compares criminal career patterns across different countries, tests current explanations of criminal development, and using cutting-edge methods, assesses the intended and unintended effects of formal interventions. This book is the first of its kind to offer a comprehensive overview of state-of-the-art developments in criminal career and life-course research, providing unique perspectives and exclusive local knowledge from over 50 international scholars. This book is an ideal companion for teachers and researchers engaged in the field of developmental and life-course criminology.
Product Details :
Genre |
: Social Science |
Author |
: Arjan Blokland |
Publisher |
: Taylor & Francis |
Release |
: 2017-03-16 |
File |
: 474 Pages |
ISBN-13 |
: 9781317603016 |