Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to update one column of a dataframe, referencing it using its original name, is this possible? For example say I had the table 'data'

a b c  
1 2 2  
3 2 3  
4 1 2

and I wanted to update the name of column b to 'd'. I know I could use

colnames(data)[2] <- 'd'  

but can I make the change by specifically referencing b, i.e. something like

colnames(data)['b'] <- 'd'  

so that if the column ordering of the dataframe changes the correct column name will still be updated.

Thanks in advance

share|improve this question
1  
Good question! Was trying this: colnames(data['b']) <- 'd', also not good! As Chase points out, this is the way: colnames(data)[colnames(data) == "b"] <- "d" –  PatrickT Apr 5 at 14:15

4 Answers 4

up vote 8 down vote accepted

This seems like a hack, but the first thing that came to mind was to use grepl() with a sufficiently detailed enough search string to only get the column you want. I'm sure there are better options:

dat <- data.frame(a = 1:3, b = 1:3, c = 1:3)
colnames(dat)[grepl("b", colnames(dat))] <- "foo"
dat
#------
  a foo c
1 1   1 1
2 2   2 2
3 3   3 3

As Joran points out below, I overcomplicated things...no need for a regex at all. This saves a few characters on the typing too.

colnames(dat)[colnames(dat) == "foo"] <- "bar"
#------
  a bar c
1 1   1 1
2 2   2 2
3 3   3 3
share|improve this answer
    
I like this for ease. +1 –  Tyler Rinker May 18 '12 at 15:37
5  
Or you could simply index the column names using colnames(dat) == 'b', but its going to be circular no matter what you do. –  joran May 18 '12 at 15:39
    
Don't use regexes for simple stuff like this. I'd rather stick with simple == relational operator. –  aL3xa May 18 '12 at 16:00
    
@joran - good point, you're smarter than I am. –  Chase May 18 '12 at 16:01
    
Thanks guys, this works well –  user1165199 May 18 '12 at 16:19

Yes but it's more difficult (as far as I know) than numeric indexing. I'm going to provide a dirty function that will do this and if you want to see how to do it just tear the function apart line by line:

rename <- function(df, column, new){
    x <- names(df)                               #Did this to avoid typing twice
    if (is.numeric(column)) column <- x[column]  #Take numeric input by indexing
    names(df)[x %in% column] <- new              #What you're interested in
    return(df)
}

#try it out
rename(mtcars, 'mpg', 'NEW')
rename(mtcars, 1, 'NEW')
share|improve this answer

I disagree with @Chase - the grepl solution ain't the luckiest one. I'd say: go with simple ==. Here's why:

d <- data.frame(matrix(rnorm(100), 10))
colnames(d) <- replicate(10, paste(sample(letters[1:5], size = 5, replace=TRUE, prob=c(.1, .6, .1, .1, .1)), collapse = ""))

Now try doing grepl("b", colnames(d)). Either pass fixed = TRUE, or even better do simple colnames(d) == "b" like @joran suggested. Regex matching will always be slower than ==, so for simple tasks like this you may want to use simple ==.

share|improve this answer
    
I think I pointed out in my answer that I was sure there are better answers, specifically the part I'm sure there are better options. As Joran pointed out in the comments, directly using == is better, which I recognize and show an example of in my answer now too :) I'll leave the top half for posterity's sake. –  Chase May 18 '12 at 16:14
    
This answer is essentially the same as mine in that I use colnames(d) %in% "b". In this case they're doing the same thing, though I suppose the == will be faster. –  Tyler Rinker May 18 '12 at 16:34

There is a function setnames built into package data.table for exactly that.

setnames(DT, "b", "d")

It changes the names by reference with no copy at all. Any other method using names(data)<- or names(data)[i]<- or similar will copy the entire object, usually several times. Even though all you're doing is changing a column name.

DT must be type data.table for setnames to work, though. So you'd need to switch to data.table or convert using as.data.table, to use it.

Here is the extract from ?setnames. The intention is that you run example(setnames) at the prompt and then the comments relate to the copies you see being reported by tracemem.

DF = data.frame(a=1:2,b=3:4)       # base data.frame to demo copies
tracemem(DF)
colnames(DF)[1] <- "A"             # 4 copies of entire object
names(DF)[1] <- "A"                # 3 copies of entire object
names(DF) <- c("A", "b")           # 2 copies of entire object
`names<-`(DF,c("A","b"))           # 1 copy of entire object
x=`names<-`(DF,c("A","b"))         # still 1 copy (so not print method)

# What if DF is large, say 10GB in RAM. Copy 10GB just to change a column name?

DT = data.table(a=1:2,b=3:4,c=5:6)
tracemem(DT)
setnames(DT,"b","B")               # by name; no match() needed. No copy.
setnames(DT,3,"C")                 # by position. No copy.
setnames(DT,2:3,c("D","E"))        # multiple. No copy.
setnames(DT,c("a","E"),c("A","F")) # multiple by name. No copy.
setnames(DT,c("X","Y","Z"))        # replace all. No copy.
share|improve this answer
1  
But is loading of new package worth all the hustle for the sake of simple column renaming? =) –  aL3xa May 18 '12 at 16:05
1  
Absolutely. It can make the difference between out of memory, or not. And it's shorter, easier and slightly less chance of bugs. –  Matt Dowle May 18 '12 at 16:13
2  
@Tyler There are two (rather long) threads on r-devel about this: speeding up perception and (perhaps most relevant) confused about NAMED and probably others. –  Matt Dowle May 18 '12 at 17:03
1  
@Tyler Now on these benchmarks that show data.table is slower, can you point me to just one please? –  Matt Dowle May 18 '12 at 17:46
2  
@MatthewDowle -- Just added one more tracemem test to your example, just b/c it's kind of hilarious how variable R's behavior is, and b/c I kind of like the count down of 4, 3, 2, 1, ... data.table . –  Josh O'Brien May 18 '12 at 18:09

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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