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'm pretty frustrated because I dont know how I achieve the naming of the columns and rows in a list of data.frames. I mean I want to avoid using a loop. So I figured I could use just lapply. Ok at first I have the following list:

>a
    $nem.greedyMAP.FALSE.POS
   X1 X2 X3 X4 X5 X6 X7 X8 X9 X10
1  NA NA NA NA NA NA NA NA NA  NA
2  NA NA NA NA NA NA NA NA NA  NA
3  NA NA NA NA NA NA NA NA NA  NA
4  NA NA NA NA NA NA NA NA NA  NA
5  NA NA NA NA NA NA NA NA NA  NA
6  NA NA NA NA NA NA NA NA NA  NA
7  NA NA NA NA NA NA NA NA NA  NA
8  NA NA NA NA NA NA NA NA NA  NA
9  NA NA NA NA NA NA NA NA NA  NA
10 NA NA NA NA NA NA NA NA NA  NA

$nem.greedyMAP.FALSE.NEG
   X1 X2 X3 X4 X5 X6 X7 X8 X9 X10
1  NA NA NA NA NA NA NA NA NA  NA
2  NA NA NA NA NA NA NA NA NA  NA
3  NA NA NA NA NA NA NA NA NA  NA
4  NA NA NA NA NA NA NA NA NA  NA
5  NA NA NA NA NA NA NA NA NA  NA
6  NA NA NA NA NA NA NA NA NA  NA
7  NA NA NA NA NA NA NA NA NA  NA
8  NA NA NA NA NA NA NA NA NA  NA
9  NA NA NA NA NA NA NA NA NA  NA
10 NA NA NA NA NA NA NA NA NA  NA

Of course this list is much bigger, otherwise I wouldnt be worth the trouble. However I want to rename the columns and rows for all data.frames the same. So I though I could use:

lapply(a, function(x) {colnames(x) <- paste("col",1:10,sep="")})

But nothing happens. How could I achieve this. Or is lapply the wrong way?

Thanks

share|improve this question

2 Answers 2

up vote 5 down vote accepted

You need to remember that the object x inside the lapply is not the original object, but a copy. Changing the colnames of the copy does not impact the original object. You need to return x in order to get a new copy of the object that includes the new names.

new_obj = lapply(a, function(x) {
   colnames(x) <- paste("col",1:10,sep="")
   return(x)
  })
share|improve this answer
    
thanks for the quick answer. I will keep that in mind;) –  Richard A. Schäfer Jul 14 '13 at 14:09

I'll prefer setNames in this case

set.seed(1)
datalist <- list(dat1 = data.frame(A = 1:10, B = rnorm(10)),
                 dat2 = data.frame(C = 100:109, D = rnorm(10))
                 )
lapply(datalist, names)
##  $dat1
## [1] "A" "B"

## $dat2
## [1] "C" "D"

datalist <- lapply(datalist, setNames, paste0("col", 1:2))
lapply(datalist, names)
## $dat1
## [1] "col1" "col2"

## $dat2
## [1] "col1" "col2"

EDIT

A more general solution to modify rownames and colnames within a list

lapply(datalist, "colnames<-", paste0("col", 1:2))
lapply(datalist, "rownames<-", letters[1:10])
share|improve this answer
1  
@agstudy In this case the OP wanted just to modify colnames but I edited my answer to add how to modify rownames and colnames using simple one-liners –  dickoa Jul 14 '13 at 14:38
    
@agstudy Oups, I read it too fast. Thank you very much –  dickoa Jul 14 '13 at 14:48

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.