Understanding Structural Equation Models: Models of Relationships Between Variables: Chapman & Hall/CRC Statistics in the Social and Behavioral Sciences
Autor Phillip K. Wooden Limba Engleză Paperback – 28 dec 2025
Key Features:
- Emphasis on multiverse analysis, right-sizing statistical models to data, and the generation of plausible skeptical alternatives
- Robust assumption checking (LOESS regression, regression and SEM diagnostics)
- Detailed, visual coverage of a variety of path diagrams, their links to matrix-based specifications, and data exploration using heat-map visualization and tests of dimensionality
- A variety of SEMs including mediational models, psychometrics (e.g., parallel, tau-equivalent, congeneric measurement), growth curve models, exploratory factor analysis, multigroup, categorical, and exploratory structural equation modeling
| Toate formatele și edițiile | Preț | Express |
|---|---|---|
| Paperback (1) | 437.04 lei 6-8 săpt. | |
| CRC Press – 28 dec 2025 | 437.04 lei 6-8 săpt. | |
| Hardback (1) | 1080.98 lei 6-8 săpt. | |
| CRC Press – 28 dec 2025 | 1080.98 lei 6-8 săpt. |
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Specificații
ISBN-13: 9781032962429
ISBN-10: 1032962429
Pagini: 402
Ilustrații: 274
Dimensiuni: 156 x 234 x 21 mm
Greutate: 0.74 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Statistics in the Social and Behavioral Sciences
ISBN-10: 1032962429
Pagini: 402
Ilustrații: 274
Dimensiuni: 156 x 234 x 21 mm
Greutate: 0.74 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Statistics in the Social and Behavioral Sciences
Public țintă
Academic, Postgraduate, and Professional ReferenceCuprins
1: Introduction. 2: Data Representation. 3: Path Diagrams. 4: Three-Variable Models. 5: Assumption Checking. 6: Vector Algebra. 7: Reliability Models. 8: Confirmatory Factor Analysis. 9: Model Fit and Comparison. 10: Measurement Models. 11: Matrix Notation Models. 12: Parsimonious Factor Models. 13: Change and Growth. 14: Multiple Groups. 15: Exploratory Factor Analysis. 16: Factor Rotation. 17: SEM Assumption Checking. 18: Categorical Variable Dependent Variables. 19: Postscript.
Notă biografică
Phillip K. Wood is Professor of Psychological Sciences at the University of Missouri–Columbia, where he has taught graduate seminars in quantitative methods, including beginning and advanced structural equation modeling (SEM), for over 30 years
He earned his Ph.D. in Educational Psychology and Measurement from the University of Minnesota, and earlier degrees from the University of Iowa and Wartburg College.
Dr. Wood’s research spans advanced latent variable modeling techniques—particularly SEM, latent growth, growth-mixture models, state–trait modeling, longitudinal data analysis and models for longitudinally intensive data as applied to developmental processes, substance abuse within young adult populations and life-span development.
A strong advocate of methodological transparency and reproducibility, Wood maintains open-access resources, including SAS, Mplus, lavaan, and Onyx code, accessible through his university-hosted repositories
He regularly moderates the Transcontinental Karl Popper Conference, which explores philosophy of science in psychological research, highlighting his commitment to the interplay between methodological rigor and theoretical skepticism.
Combining decades of classroom instruction with cutting-edge research, Phillip Wood brings a practical, data-conscious perspective fueled by a belief that SEM should be inquisitive, skeptical, and disciplined—a perfect guide for readers navigating the complexities of latent variable modeling.
He earned his Ph.D. in Educational Psychology and Measurement from the University of Minnesota, and earlier degrees from the University of Iowa and Wartburg College.
Dr. Wood’s research spans advanced latent variable modeling techniques—particularly SEM, latent growth, growth-mixture models, state–trait modeling, longitudinal data analysis and models for longitudinally intensive data as applied to developmental processes, substance abuse within young adult populations and life-span development.
A strong advocate of methodological transparency and reproducibility, Wood maintains open-access resources, including SAS, Mplus, lavaan, and Onyx code, accessible through his university-hosted repositories
He regularly moderates the Transcontinental Karl Popper Conference, which explores philosophy of science in psychological research, highlighting his commitment to the interplay between methodological rigor and theoretical skepticism.
Combining decades of classroom instruction with cutting-edge research, Phillip Wood brings a practical, data-conscious perspective fueled by a belief that SEM should be inquisitive, skeptical, and disciplined—a perfect guide for readers navigating the complexities of latent variable modeling.
Descriere
Designed for graduate students, early-career researchers, and advanced undergraduates who wish to move beyond plug-and-play SEMs to a deeper, more philosophical and data-conscious understanding.