11
> dput(test)
structure(list(MEMORY1 = c(7.5, 6, 6, 3.5, 5, 5), MEMORY2 = c(5, 
7.5, 3, 3.5, 5, 5), MEMORY3 = c(5, 3.5, 3, 3.5, 5, 2), MEMORY4 = c(2, 
1.5, 3, 3.5, 1, 2), MEMORY5 = c(7.5, 3.5, 3, 3.5, 5, 7), MEMORY6 = c(2, 
5, 7.5, 7.5, 5, 5), MEMORY7 = c(2, 1.5, 3, 3.5, 5, 2), MEMORY8 = c(5, 
7.5, 7.5, 7.5, 5, 8)), .Names = c("MEMORY1", "MEMORY2", "MEMORY3", 
"MEMORY4", "MEMORY5", "MEMORY6", "MEMORY7", "MEMORY8"), row.names = c(NA, 
6L), class = "data.frame")
> test
  MEMORY1 MEMORY2 MEMORY3 MEMORY4 MEMORY5 MEMORY6 MEMORY7 MEMORY8
1     7.5     5.0     5.0     2.0     7.5     2.0     2.0     5.0
2     6.0     7.5     3.5     1.5     3.5     5.0     1.5     7.5
3     6.0     3.0     3.0     3.0     3.0     7.5     3.0     7.5
4     3.5     3.5     3.5     3.5     3.5     7.5     3.5     7.5
5     5.0     5.0     5.0     1.0     5.0     5.0     5.0     5.0
6     5.0     5.0     2.0     2.0     7.0     5.0     2.0     8.0

I have a data.frame, and I would like to subset just the first row. If I do test[1, ], the result is

> test[1, ]
  MEMORY1 MEMORY2 MEMORY3 MEMORY4 MEMORY5 MEMORY6 MEMORY7 MEMORY8
1     7.5       5       5       2     7.5       2       2       5

How do I subset the data.frame so that I get just a vector of the numbers without the column names?

11

What you want is a numeric vector instead of a data.frame. For this, you can just use as.numeric to do the conversion

> as.numeric(df[1,])
[1] 7.5 5.0 5.0 2.0 7.5 2.0 2.0 5.0
  • What if the data are not all numeric? – Tashus Sep 24 at 18:31
  • 1
    If the data are not all numeric, then it depends on what the desired behavior is. In R, vectors are always homogeneous -- all elements are the same type. You could use as.list to create a list from the column values, but it would depend on the specific use case. Probably worth asking a question with your particular use case if you don't find anything that looks right. Feel free to add a link here (in the comments) so that I'll see it and to help others with a similar problem. – user295691 Sep 25 at 15:28
8

You can use unlist with option use.names=FALSE to return only vector without names.

unlist(test[1,], use.names=FALSE)
#[1] 7.5 5.0 5.0 2.0 7.5 2.0 2.0 5.0

test[1,] is still a data.frame with 8 columns. A data.frame can be regarded as a list having the same length for its list elements (or columns). So we can use unlist. This also works when you are creating a vector from more than one row.

unlist(test[1:2,], use.names=FALSE)

Or as @Frank suggested, if we are subsetting multiple rows by keeping the dimensions, we set the names to NULL and convert to matrix.

 as.matrix(setNames(test[1:2,],NULL))
  • 1
    Regarding the second part, I think that that isn't really "subsetting" (from the OP's title), since the dimensions change. Maybe as.matrix(setNames(test[1:2,],NULL)) or the goofier `dimnames<-`(as.matrix(test[1:2,]),NULL) – Frank Sep 10 '15 at 16:02
  • @Frank Thanks. it makes sense. – akrun Sep 10 '15 at 16:03
  • 3
    An alternative to setNames for the as.matrix version is the utility function unname – user295691 Sep 10 '15 at 16:08
  • I like @user295691 method with unname (i.e. unname(as.matrix(test[1:2,]))) since you aren't left with the dimnames attribute as NULL. – DrPositron Oct 29 '18 at 20:26

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.