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I have a dataframe dm with some dummy variables, d1, d2, d3. I would like to create a list of them, dummies, and use it in a simple way like


Is it possible?

I have found two ways but i don't like them:

  1. Create an additional dataframe dummies.

  2. Use something like formula(paste('y~',dummies,...)

The first approach eats memory, the second one is just ugly. Is there a better way?

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migrated from Aug 26 '12 at 19:23

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I'd go on the second way, no problem with that. – daroczig Aug 26 '12 at 19:27
Remove all other columns from data, then use formula = y ~ . – Andrie Aug 26 '12 at 20:01
formula is the standard R method, regardless of your aesthetic opinion. To implement Andrie's method you can use a subset data argument inside lm: data=subset(dm, select( c(y,dummies) ) – 42- Aug 26 '12 at 20:10
@DWin That's a nice idiom, but I think you meant data=subset(dm, select=c(y, dummies)), or indeed data=dm[, c("y", "dummies")] which will be safer, given the inherent dangers of subset. – Andrie Aug 26 '12 at 20:15
Agree to your first. Regarding the second option, I do not think "dummies" would get expanded and should have been names(dummies) unquoted. – 42- Aug 26 '12 at 20:29

1 Answer 1

Construct a data frame that contains only the variables of interest, then use y ~ ., indicating to use all columns in the data frame.

For example:

dm <- data.frame(
  y = rnorm(100),
  x = rnorm(100),
  d1 = sample(0:1, 100, replace=TRUE),
  d2 = sample(0:1, 100, replace=TRUE),
  d3 = sample(0:1, 100, replace=TRUE)

lm(y ~ ., dm)
lm(formula = y ~ ., data = dm)

(Intercept)            x           d1           d2           d3  
  -0.089440    -0.012945    -0.006305     0.391576    -0.034225  
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Thanks for the response, but that is not what i'm searching for. I don't wish to create an additional dataframe. My goal is to use the set of dummies and try different regressors in a beautiful way. Say, something like lm(y~dummies+x,data=dm) and later lm(y~dummies+z,data=dm). – Roah Aug 29 '12 at 13:14

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