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Data Analysis with R, Second Edition

You're reading from   Data Analysis with R, Second Edition A comprehensive guide to manipulating, analyzing, and visualizing data in R

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Product type Paperback
Published in Mar 2018
Publisher Packt
ISBN-13 9781788393720
Length 570 pages
Edition 2nd Edition
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Author (1):
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Tony Fischetti Tony Fischetti
Author Profile Icon Tony Fischetti
Tony Fischetti
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Table of Contents (19) Chapters Close

Preface 1. RefresheR 2. The Shape of Data FREE CHAPTER 3. Describing Relationships 4. Probability 5. Using Data To Reason About The World 6. Testing Hypotheses 7. Bayesian Methods 8. The Bootstrap 9. Predicting Continuous Variables 10. Predicting Categorical Variables 11. Predicting Changes with Time 12. Sources of Data 13. Dealing with Missing Data 14. Dealing with Messy Data 15. Dealing with Large Data 16. Working with Popular R Packages 17. Reproducibility and Best Practices 18. Other Books You May Enjoy

Kitchen sink regression


When the goal of using regression is simply predictive modeling, we often don't care about which particular predictors go into our model, so long as the final model yields the best possible predictions.

A naïve (and awful) approach is to use all the independent variables available to try to model the dependent variable. Let's try this approach by trying to predict mpg from every other variable in the mtcars dataset, using the following code:

  # the period after the squiggly denotes all other variables 
  model <- lm(mpg ~ ., data=mtcars) 
  summary(model) 
  Call: 
  lm(formula = mpg ~ ., data = mtcars) 
  Residuals: 
      Min      1Q  Median      3Q     Max 
  -3.4506 -1.6044 -0.1196  1.2193  4.6271 
 
  Coefficients: 
              Estimate Std. Error t value Pr(>|t|) 
  (Intercept) 12.30337   18.71788   0.657   0.5181 
  cyl         -0.11144    1.04502  -0.107   0.9161 
  disp         0.01334    0.01786   0.747   0.4635 

  hp          -0.02148    0.02177...
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