2

I have two data frames, x and y.

x<-data.frame(id=c(1,2,3,4,5), g=c(21,52,43,94,35))
y<-data.frame(id=c(3,4,7), u=c(55, 77, 99))

I want to subset x to include only the observations with "IDs" that are also in y.

What is the best way of doing this?

Thanks!

0

2 Answers 2

6

Use setdiff to exclude observations appearing in both df

> x[setdiff(x$id, y$id),]  
  id  g
1  1 21
2  2 52
5  5 35

Use merge to include observations present in both df

> merge(x, y)
  id  g  u
1  3 43 55
2  4 94 77

or looking for this subset?

> x[intersect(x$id, y$id),]
  id  g
3  3 43
4  4 94
2
  • 1
    Your third example was exactly what I was trying to do. Thanks!
    – Ignacio
    Sep 9, 2013 at 16:41
  • As the other answerer mentions the intersect solution only works by luck. You are subsetting by the ids themselves instead of the indices.
    – Pierre L
    Nov 30, 2016 at 15:30
3

The accepted answer only works because the values 3 and 4 in x$id happen to be located in rows 3 and 4. The wrong answer will be obtained, for example, if:

x<-data.frame(id=c(1,3,2,4,5), g=c(21,52,43,94,35))
x[intersect(x$id, y$id),]
  id  g
3  2 43
4  4 94

The following will work properly, regardless of the position of the common elements:

x[is.element(x$id,intersect(x$id,y$id)),]
3
  • 1
    Nice catch. But the correct fix would be to use the merge solution and avoid intersect altogether. Posting a comment under the other answer would suffice.
    – Pierre L
    Nov 29, 2016 at 22:29
  • 1
    The OP wants to subset x. merge(x,y) returns y$u.
    – pbot
    Nov 30, 2016 at 15:57
  • Okay I see that now. But that is still better than intersect. merge(x, y['id'])
    – Pierre L
    Nov 30, 2016 at 16:10

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