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I'm wondering if there is a way of doing this:

iris %.% group_by(Species) %.% 
  mutate(v1=Sepal.Length / mean(Sepal.Length)) %.% 
  filter(v1 > 1.15) %.% select(Species:v1)

While skipping the select bit. I thought the following should work (but doesn't, for many reasons):

iris %.% group_by(Species) %.% 
  select(Species, v1=Sepal.Length / mean(Sepal.Length)) %.% 
  filter(v1 > 1.15)

Note in this example I replaced mutate with select in the hopes that alone would do it. This also doesn't work because summarize expects expressions to return 1 value:

iris %.% 
  group_by(Species) %.% 
  summarise(Sepal.Length / mean(Sepal.Length)) %.% 
  filter(v1 > 1.15)

Clearly, not a huge deal, but wondering if there is a simpler way of replicating default data.table behavior:

data.table(iris)[, Sepal.Length / mean(Sepal.Length), by=Species][V1 > 1.15]

Which produces just the by columns and the computed value:

      Species       V1
1:     setosa 1.158610
2: versicolor 1.179245
3: versicolor 1.162399
4:  virginica 1.153613
5:  virginica 1.168792
6:  virginica 1.168792
7:  virginica 1.168792
8:  virginica 1.199150
9:  virginica 1.168792
share|improve this question
    
@Arun, that's right, although I really think select should do it. I can't see the drawback of doing it (though I haven't thought about it too much). The other solution would be to allow summarise to handle multiple rows in the return values of the expressions. –  BrodieG Apr 9 at 19:09
    
@Arun, fair point, but I don't want to impose my view of what select should do onto dplyr; if there is another way of doing this I'd be happy with that too. –  BrodieG Apr 9 at 21:36
    
There's no good way currently. See github.com/hadley/dplyr/issues/302 for a little discussion. I don't think select() could work like this because of it's current non-standard evaluation rules. –  hadley Apr 10 at 23:44

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