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I have GPA data that I want to categorize in order to run ANOVA to test the significance of tutoring.

Basically, in one column, there are the hours of tutoring the student had and in the next column, there are the corresponding GPAs. I could not figure out how to create a table on this site, so I hope this description makes sense.

What I want is the GPAs of people with 0 hours to be in one column, the GPAs of people with > 0 < 6 hours in another column, and the GPAs of people with more than 6 hours in another column.

Then I would run an ANOVA test on those with 0 hours, those with less than 6 hours and those with over 6 hours of tutoring.

Can this be done using R?

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Have you considered something more powerful like regression? Plot the GPA on y-axis and tutoring on x 'plot(tutoring, GPA)' and see what it looks like. You can do the grouping but if your data have a linear effect the regression will be much more powerful and if it's a nonlinear effect you can look at it and work out a nonlinear model. –  John Apr 30 '13 at 3:06

1 Answer 1

The way to do this in R is to construct a factor variable:

 dfrm$Hour.fc <- cut( dfrm$hours, c(0,6, Inf), include.lowest=TRUE)

The categories will be 0, 0 < X <=6, >6 since the default cut behavior is to have closed intervals on the right. . If you want 6 or greater to be the category bounds, then make the middle number 5.99. All of the ANOVA and regression functions are designed to handle factors.

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