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Suppose that I have an n row, m column matrix A, and I want to reorder every column in m according to the sorting of some specific row.

For instance, if I take order(A[,k]), that gives me the numeric or alphabetical order of elements in column k. I now want to sort every column in matrix A according to those rankings, so that elements 1...n in every row are ordered to correspond to elements 1...n (by rank) in column k. Is there a simple way to do this without looping over all columns?

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Perhaps I'm missing something, but doesn't A[order(A[,k]),] do what you want? –  Joshua Ulrich Dec 3 '12 at 20:25
    
That's the first thing I tried, and it didn't work. For instance, if I have a 2x3 matrix X and call x[order(x[,2])], the output is a vector, not the entire matrix. –  user1815498 Dec 3 '12 at 20:29
    
That's because you're missing the last comma. –  Joshua Ulrich Dec 3 '12 at 20:30
    
That was a typo. x[,order(x[,2])] returns a partial matrix (2x2 rather than a reordered 2x3, so it still doesn't work. –  user1815498 Dec 3 '12 at 20:33
    
Specifically, let's take xmat=matrix(c(1,2,4,3,5,6),nrow=2,ncol=3). I take order(x[,2]), giving me 2 1. I now have x[,order(x[,2])], which gives me a 2x2 matrix as output. –  user1815498 Dec 3 '12 at 20:36

2 Answers 2

up vote 3 down vote accepted

Just use:

A[order(A[,k]),]

For example:

set.seed(21)
A <- matrix(rnorm(50),10,5)
A[order(A[,1]),]
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to elaborate on @joshua's answer: I think the confusion may arise from the fact that you are ordering on a column but then passing that ordering as an index to the rows.

That's likely why you tried A[, order(A[,k])] instead of A[order(A[,k]),]

order(x) contrary to the name, does not actually order x, but rather
just provides an ordering to x.



For example:

set.seed(1)
A <- matrix(sample(LETTERS[2:8], 24, T), ncol=6)
print(A, quote=F)
     [,1] [,2] [,3] [,4] [,5] [,6]
[1,] C    C    F    F    G    H   
[2,] D    H    B    D    H    C   
[3,] F    H    C    G    D    F   
[4,] H    F    C    E    G    B    


order(A[, 2])
[1] 1 4 2 3

*Note that the output is only 4 elements long, which is the number of rows of A, not columns.*

The output essentially says that within column 2 of A,

  • the 1st element goes first,
  • the 4th element goes second,
  • the 2nd element goes thrid,
  • etc..

But each element of column A is attached to a row. We need to re-order the rows not the columns.

To apply that ordering to the entire matrix (or data frame), we use the ordering as a row index:

rowIndex <- order(A[, 2])

# Note that these are all equivalent
A[rowIndex,  ]
A[order(A[, 2]),  ]
A[c(1, 4, 1, 3),  ]

Lastly, we can pass order() more than one vector, and it will use subsequent vectors to break ties. However, regardless of the number of columns from A we give it, order will still give us a single vector, equal in size to the number of rows of A:

# Order according to column 2; ties are left according to their original order
order(A[, 2])
[1] 1 4 2 3

# Order according to column 2; ties are ordered according to column 5
order(A[, 2], A[, 5])
[1] 1 4 3 2
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