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.

When dimnames is currently NULL, is it possible to re-name a matrix's dimestions one at a time?

For example, this fails:

mtx <- matrix(1:16,4)
dimnames(mtx)[[2]][1] <- 'col1'

with Error in dimnames(mtx)[[2]][1] <- "col1" : 'dimnames' must be a list

However this works:

mtx <- matrix(1:16,4)
dimnames(mtx)[[1]] <- letters[1:4]
dimnames(mtx)[[2]] <- LETTERS[1:4]
dimnames(mtx)[[2]][1] <- 'col1'
dimnames(mtx)[[2]][2] <- 'col2'

My objective is to seperately replace dimnames(mtx)[[2]][1] and dimnames(mtx)[[2]][2] etc ... if this is not possible, i can re-write the loop.


Thanks folks, I have ended up with the below -- I pass the names in via prepend:

mtxNameSticker <- function(mtx, prepend = NULL, MARGIN=2)
{
    if (MARGIN == 1) max <- nrow(mtx) else
        max  <- ncol(mtx)
    if (is.null(prepend)) if (MARGIN == 2) prepend <- 'C' else
        prepend <- 'R'
    if (length(prepend) == 1) prepend <- paste0(prepend, 1:dim(mtx)[[MARGIN]]) 
    dimnames(mtx)[[MARGIN]] <- seq(from=1, by=1, length.out=dim(mtx)[[MARGIN]]) 
    for (i in 1:max){
        dimnames(mtx)[[MARGIN]][i] <- prepend[i]
    }
    return(mtx)
}
share|improve this question

4 Answers 4

up vote 4 down vote accepted

For as long as dimnames is NULL and not an appropriate list, you cannot make assignments to it at particular positions. One easy way to create a dummy but complete list of dimnames is to run:

dimnames(mtx) <- lapply(dim(mtx), seq_len)
mtx
#   1 2  3  4
# 1 1 5  9 13
# 2 2 6 10 14
# 3 3 7 11 15
# 4 4 8 12 16

Then, you can make assignments one at a time like you were wishing:

dimnames(mtx)[[2]][1] <- 'col1'
mtx
#   col1 2  3  4
# 1    1 5  9 13
# 2    2 6 10 14
# 3    3 7 11 15
# 4    4 8 12 16
share|improve this answer
    
+1 / accepted. thanks v much. I want to the the dimensions seperately, so i'm going to go with: dimnames(mtx)[[i]] <- seq(from=1, by=1, length.out=dim(mtx)[[i]]). –  ricardo Sep 14 '12 at 3:57
    
@ricardo You can also use seq_along(dim(mtx)[[i]]) instead of seq(from=1, by=1, length.out=dim(mtx)[[i]]). –  Blue Magister Sep 14 '12 at 4:51
    
thanks. I think that will just return the number 1 –  ricardo Sep 14 '12 at 5:00

You are assigning a vector even though you are asked to supply a list.

Try this:

R> M <- matrix(1:4,2,2)
R> M
     [,1] [,2]
[1,]    1    3
[2,]    2    4
R>

Columns:

R> M1 <- M; dimnames(M1) <- list(NULL, c("a","b")); M1
     a b
[1,] 1 3
[2,] 2 4
R>

Rows:

R> M2 <- M; dimnames(M2) <- list(c("A","B"), NULL); M2
  [,1] [,2]
A    1    3
B    2    4
R> 
share|improve this answer
    
thanks that makes sense. I guess i was ambigious in my question -- i am aware that one may replace dimnames(M2)[[1]] and dimnames(M2)[[2]] seperately. by one at a time, i meant can i seperately replace dimnames(M2)[[2]][1] and dimnames(M2)[[2]][2] when dimnames(M2)[[2]] == NULL. –  ricardo Sep 14 '12 at 3:16

In response to your comment. @DirkEddelbuettel is correct, you are assigning a vector to what should be a list.

The reason for this is that you are assigning dimnames when the dimnames are NULL (not assigned yet)

The way R evaluates the following

x <- NULL
x[[2]][1] <- 'col1'
str(x)
##  chr [1:2] NA "col1"

R returns a vector of length 2, not a list of length 2.

For your assignment to work, R would have to evaluate

x <- NULL
x[[2]][1] <- 'col1'
str(x)

to give

## List of 2
## $ : NULL
## $ : chr "col1"

Which is what would happen if x was originally defined as x <- list(NULL,NULL)

however, the dimnames must be NULL or a list of appropriate length vectors

The following does work (and is really @flodel solution)

dimnames(mtx) <- list(character(nrow(mtx)), character(ncol(mtx)))
# or
# dimnames(mtx) <-  lapply(dim(mtx), character) 
dimnames(mtx)[[2]][1] <- 'col1'
share|improve this answer
    
+1. Okay, thanks. The bottom line is that flodel's neat hack is the only solution? –  ricardo Sep 14 '12 at 3:41

It seems you are allowed to set the name of the dimension without actually having any names for the dimension:

dimnames(mtx) = list(NULL,col1=NULL)
mtx
#      col1
#       [,1] [,2] [,3] [,4]
#  [1,]    1    5    9   13
#  [2,]    2    6   10   14
#  [3,]    3    7   11   15
#  [4,]    4    8   12   16
share|improve this answer

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.