Performing Data Analysis Using IBM SPSS

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John Wiley & Sons, 17 лип. 2013 р. - 736 стор.

Features easy-to-follow insight and clear guidelines to perform data analysis using IBM SPSS®

Performing Data Analysis Using IBM SPSS® uniquely addresses the presented statistical procedures with an example problem, detailed analysis, and the related data sets. Data entry procedures, variable naming, and step-by-step instructions for all analyses are provided in addition to IBM SPSS point-and-click methods, including details on how to view and manipulate output.

Designed as a user’s guide for students and other interested readers to perform statistical data analysis with IBM SPSS, this book addresses the needs, level of sophistication, and interest in introductory statistical methodology on the part of readers in social and behavioral science, business, health-related, and education programs. Each chapter of Performing Data Analysis Using IBM SPSS covers a particular statistical procedure and offers the following: an example problem or analysis goal, together with a data set; IBM SPSS analysis with step-by-step analysis setup and accompanying screen shots; and IBM SPSS output with screen shots and narrative on how to read or interpret the results of the analysis.

The book provides in-depth chapter coverage of:

  • IBM SPSS statistical output
  • Descriptive statistics procedures
  • Score distribution assumption evaluations
  • Bivariate correlation
  • Regressing (predicting) quantitative and categorical variables
  • Survival analysis
  • t Test
  • ANOVA and ANCOVA
  • Multivariate group differences
  • Multidimensional scaling
  • Cluster analysis
  • Nonparametric procedures for frequency data

Performing Data Analysis Using IBM SPSS is an excellent text for upper-undergraduate and graduate-level students in courses on social, behavioral, and health sciences as well as secondary education, research design, and statistics. Also an excellent reference, the book is ideal for professionals and researchers in the social, behavioral, and health sciences; applied statisticians; and practitioners working in industry.

 

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Зміст

INTERNAL CONSISTENCY
311
ASSESSING RATER CONSISTENCY
319
ANALYSIS OF STRUCTURE
329
CONFIRMATORY FACTOR ANALYSIS
353
SIMPLE MEDIATION
381
PATH ANALYSIS USING MULTIPLE REGRESSION
389
PATH ANALYSIS USING STRUCTURAL EQUATION
397
STRUCTURAL EQUATION MODELING
419

COMPUTING NEW VARIABLES
103
TRANSFORMING DATES TO AGE
111
DETECTING UNIVARIATE OUTLIERS
123
DETECTING MULTIVARIATE OUTLIERS
131
NORMALITY
139
TRANSFORMING DATA TO REMEDY STATISTICAL
147
BIVARIATE CORRELATION
157
SPEARMAN RHO AND KENDALL TAUB RANKORDER
165
SIMPLE LINEAR REGRESSION
173
CENTERING THE PREDICTOR VARIABLE IN SIMPLE
181
MULTIPLE LINEAR REGRESSION
191
HIERARCHICAL LINEAR REGRESSION
211
POLYNOMIAL REGRESSION
217
MULTILEVEL MODELING
225
BINARY LOGISTIC REGRESSION
255
ROC ANALYSIS
265
MULTINOMINAL LOGISTIC REGRESSION
273
LIFE TABLES
283
THE KAPLANMEIER SURVIVAL ANALYSIS
289
COX REGRESSION
301
ONESAMPLE t TEST
459
PAIREDSAMPLES t TEST
471
ONEWAY BETWEENSUBJECTS ANOVA
477
POLYNOMIAL TREND ANALYSIS
485
ONEWAY BETWEENSUBJECTS ANCOVA
493
TWOWAY BETWEENSUBJECTS ANOVA
507
ONEWAY WITHINSUBJECTS ANOVA
521
REPEATED MEASURES USING LINEAR MIXED MODELS
531
TWOWAY MIXED ANOVA
555
MANOVA
567
DISCRIMINANT FUNCTION ANALYSIS
579
TWOWAY BETWEENSUBJECTS MANOVA
591
CLASSICAL METRIC
605
HIERARCHICAL CLUSTER ANALYSIS
623
TWOWAY CHISQUARE TEST OF INDEPENDENCE
665
CHISQUARE LAYERS
681
APPENDIX STATISTICS TABLES
699
AUTHOR INDEX
713
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Про автора (2013)

LAWRENCE S. MEYERS, PhD, is Professor in the Depart-ment of Psychology at California State University, Sacramento. The author of numerous books, Dr. Meyers is a member of the Association for Psychological Science and the Society for Industrial and Organiza-tional Psychology.

GLENN C. GAMST, PhD, is Chair and Professor in the Department of Psychology at the University of La Verne. His research interests include univariate and multivariate statistics as well as multicultural community mental health outcome research.

A. J. Guarino, PhD, is Professor of Biostatistics at Massachusetts General Hospital, Institute of Health Professions, where he serves as the methodologist for capstones and dissertations as well as teaching advanced Biostatistics courses. Dr. Guarino is also the statistician on numerous National Institutes of Health grants and coauthor of several statistical textbooks.

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