Introducing Statistics with R

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Peter Dalgaard - Introducing Statistics with R.
R is an Open Source implementation of the well-known S language. It works on multiple computing platforms and can be freely downloaded. R is thus ideally... Lire la suite
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Résumé

R is an Open Source implementation of the well-known S language. It works on multiple computing platforms and can be freely downloaded. R is thus ideally suited for teaching at many levels as well as for practical data analysis and methodological development. This book provides an elementary-level introduction to R, targeting both nonstatistician scientists in various fields and students of statistics. The main mode of presentation is via code examples with liberal commenting of the code and the output, from the computational as well as the statistical viewpoint. Brief sections introduce the statistical methods before they are used. A supplementary R package can be downloaded and contains the data sets. All examples are directly runnable and all graphics in the text are generated from the examples. The statistical methodology covered includes statistical standard distributions, one-and two-sample tests with continuous data, regression analysis, one- and two-way analysis of variance, regression analysis, analysis of tabular data, and sample-size calculations. In addition, the last four chapters contain introductions to multiple linear regression analysis, linear models in general, logistic regression, and survival analysis. Peter Dalgaard is an associate professor at the Department of Biostatistics at the University of Copenhagen and has extensive experience in teaching within the Ph.D. curriculum at the Faculty of Health Sciences. He was chairman of the Danish Society for Theoretical Statistics from 1996 to 2000. Peter Dalgaard has been a key member of the R core team since August 1997 and is well known among R users for his activity on the R mailing lists.

Sommaire

    • Basics
    • Probability and distributions
    • Descriptive statistics and graphics
    • One- and two-sample tests
    • Regression and correlation
    • ANOVA and Kruskal-Wallis
    • Tabular Data
    • Power and the computation of sample size
    • Multiple regression
    • Linear models
    • Logistic regression
    • Survival analysis

Caractéristiques

  • Date de parution
    01/01/2002
  • Editeur
  • Collection
  • ISBN
    0-387-95475-9
  • EAN
    9780387954752
  • Présentation
    Broché
  • Nb. de pages
    267 pages
  • Poids
    0.41 Kg
  • Dimensions
    15,5 cm × 23,5 cm × 1,5 cm

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