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Suppose I have

arr = 2 1 3
      1 2 3
      1 1 2

How can I sort this into the below?

arr = 1 1 2
      1 2 3
      2 1 3

That is, first by column one, then by column two etc.

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3 Answers 3

up vote 11 down vote accepted

This would work:

arr[do.call(order, lapply(1:NCOL(arr), function(i) arr[, i])), ]

What it is doing is:

arr[order(arr[, 1], arr[, 2], arr[ , 3]), ]

except it allows an arbitrary number of columns in the matrix.

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Isn't the last column order redundant? I.e. 1:(NCOL(arr)-1) would do the same. –  mdsumner May 9 '12 at 1:26
1  
No, not in all matrices, such as arr = matrix(c(1, 1, 1, 1, 1, 1, 3, 2, 1), nrow=3) –  David Robinson May 9 '12 at 3:12
    
doh, cool thanks for that :) –  mdsumner May 9 '12 at 5:00

The function you're after is order (how I arrived at this conclusion -- my first thought was "well, sorting, what about sort?". Tried sort(arr) which looks like it sorts arr as a vector instead of row-wise. Looking at ?sort, I see in the "See Also: order for sorting on or reordering multiple variables.").

Looking at ?order, I see that order(x,y,z, ...) will order by x, breaking ties by y, breaking further ties by z, and so on. Great - all I have to do is pass in each column of arr to order to do this. (There is even an example for this in the examples section of ?order):

order( arr[,1], arr[,2], arr[,3] ) 
# gives 3 2 1: row 3 first, then row 2, then row 1.
# Hence:
arr[ order( arr[,1], arr[,2], arr[,3] ), ]
#     [,1] [,2] [,3]
#[1,]    1    1    2
#[2,]    1    2    3
#[3,]    2    1    3

Great!


But it is a bit annoying that I have to write out arr[,i] for each column in arr - what if I don't know how many columns it has in advance?

Well, the examples show how you can do this too: using do.call. Basically, you do:

do.call( order, args )

where args is a list of arguments into order. So if you can make a list out of each column of arr then you can use this as args.

One way to do this is is to convert arr into a data frame and then into a list -- this will automagically put one column per element of the list:

arr[ do.call( order, as.list(as.data.frame(arr)) ), ]

The as.list(as.data.frame is a bit kludgy - there are certainly other ways to create a list such that list[[i]] is the ith column of arr, but this is just one.

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+1 for spending time explaining in detail! –  Prasad Chalasani May 9 '12 at 0:47

I wrote this little func that does decreasing order as well cols allows to choose which columns to order and their order

ord.mat = function(M, decr = F, cols = NULL){
    if(is.null(cols))
      cols = 1: ncol(M)
    out = do.call( "order", as.data.frame(M[,cols]))
    if (decr)
      out = rev(out)
    return(M[out,])
}
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