
Advanced Statistics for the Behavioral Sciences: A Computational Approach with R
Jonathon D. Brown
Résumé
Building on the author's previous volume, Linear Models in Matrix Form , this text bridges the gap between computer science and research application, providing easy-to-follow computer code for many statistical analyses using the R software environment.
Building on the author's previous volume, Linear Models in Matrix Form , this text bridges the gap between computer science and research application, providing easy-to-follow computer code for many statistical analyses using the R software environment. The text opens with a foundational section on linear algebra, then covers a variety of advanced topics, including robust regression, model selection based on bias and efficiency, nonlinear models and optimization routines, generalized linear models, and survival and time-series analysis. Each section concludes with a presentation of the computer code used to illuminate the analysis, as well as pointers to packages in R that can be used for similar analyses and nonstandard cases. The accessible code and breadth of topics make this book an ideal tool for graduate students or researchers in the behavioral sciences who are interested in performing advanced statistical analyses without having a sophisticated background in computer science and mathematics.
Caractéristiques techniques
PAPIER | |
Éditeur(s) | Springer |
Auteur(s) | Jonathon D. Brown |
Parution | 17/06/2019 |
Nb. de pages | 526 |
EAN13 | 9783319935478 |
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