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The following works fine:

library(dplyr) 
m <- function(df) {
  mod <- lm(Sepal.Length ~ Sepal.Width, data = df)
  pred <- predict(mod,newdata = df["Sepal.Width"])
  data.frame(df,pred)
}
iris %>%
  group_by(Species) %>%
  do(m(.))

I thought that this would work if I used an anonymous function, but it does not:

iris %>%
  group_by(Species) %>%
  do(function(df) {
    mod <- lm(Sepal.Length ~ Sepal.Width, data = df)
    pred <- predict(mod,newdata = df["Sepal.Width"])
    data.frame(df,pred)
  })
Error: Results are not data frames at positions: 1, 2, 3
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2 Answers 2

up vote 3 down vote accepted

You don't need an anonymous function:

library(dplyr)
iris %>%
  group_by(Species) %>%
  do({
    mod <- lm(Sepal.Length ~ Sepal.Width, data = .)
    pred <- predict(mod, newdata = .["Sepal.Width"])
    data.frame(., pred)
  })
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As fun as the other answer was, this answer is much cleaner! I keep forgetting that . can be a pronoun for the entire dataset. –  AndrewMacDonald Jun 24 at 14:02

You can't get rid of the ..

iris %>%
  group_by(Species) %>%
  do((function(df) {
    mod <- lm(Sepal.Length ~ Sepal.Width, data = df)
    pred <- predict(mod,newdata = df["Sepal.Width"])
    data.frame(df,pred)
  })(.))

That will work. The . is necessary. The . is love. Keep the ..

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It's the do-dot. –  BondedDust Jun 24 at 1:06
    
I love this answer so much! I had tried that, but i'd forgotten to wrap the function in () first :$ –  AndrewMacDonald Jun 24 at 1:38
    
could you explain what's going on here? Why is the function in ()?And why is the dot needed? And why is the dot in ()? –  Richard Smith-Unna Nov 14 at 23:45

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