2

I want to find the number of matches based on ID of unique matches within multiple data.frames

Data looks like this:

df1: KeyID
       x
       x
       y
       y
       z

df2: KeyID
       x
       x
       x
       z
       z

df3: KeyID
       x
       y
       y
       z

I want to count the number of unique matches between data frames.

output would look like this: 2

Since x and z are the only matches between the two sets.

I have done this but want to know if there is a faster way:

df1.2 <- df2[df2$KeyID %in% df1$KeyID,]
length(unique(df1.2$KeyID))

Any thoughts?

9
  • 2
    Wouldn't this just be sum(unique(df1$KeyID) %in% unique(df2$KeyID)))? Actually now that I think about it more, you might need to wrap as.character around them if they're factors.
    – IRTFM
    Jul 30, 2014 at 19:42
  • @BondedDust only if position doesn't matter... as it stands now, it is hard to tell what the asker wants...
    – Justin
    Jul 30, 2014 at 19:46
  • Position does not matter...just want to know how many of KeyIDs are in both data frames, or in dfs 1,2,3 and so on.
    – CoryB
    Jul 30, 2014 at 19:48
  • You mentioned multiple datasets/vectors.If more than two: Reduce("intersect", listofvectors)
    – akrun
    Jul 30, 2014 at 19:56
  • @akrun Is reduce part of a package?
    – CoryB
    Jul 30, 2014 at 20:06

1 Answer 1

7

You can do set intersection with intersect:

v1 <- c("x", "x", "y", "y", "z")
v2 <- c("x", "x", "x", "z", "z")
intersect(v1, v2)
# [1] "x" "z"
length(intersect(v1, v2))
# [1] 2

Edit: Adapting for the question edit, as per akrun's suggestion, if there are multiple vectors,

v1 <- c("x", "x", "y", "y", "z")
v2 <- c("x", "x", "x", "z", "z")
v3 <- c("x", "y", "y", "z")
vector.list <- list(v1, v2, v3)

Reduce("intersect", vector.list)
# [1] "x" "z"
2
  • Again, only if position doesn't matter.
    – Justin
    Jul 30, 2014 at 19:47
  • @CoryB See akrun's comment above.
    – tkmckenzie
    Jul 30, 2014 at 20:07

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.