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My data looks like,

A    B    C    D
B    C    A    D
X    Y    M    Z
O    M    L    P

How can I sort the rows to get something like

A    B    C    D
A    B    C    D
M    X    Y    Z
L    M    O    P

Thanks,

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up vote 1 down vote accepted

Well, if you're using Python and have your data in a list of lists, like

my_data = [ [ A, B, C, D ],
            [ B, C, A, D ],
            [ X, Y, M, Z ],
            [ O, M, L, P ] ]

you could just do a simple list comprehension like so:

sorted_lists = [sorted(l) for l in my_data]

But since you haven't specified a language or any other useful details, I have no idea if this is going to help.

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6  
It had an r tag. – 42- May 19 '11 at 19:56
4  
But the OP accepted the Python answer... confusing times we live in. – Joshua Ulrich May 19 '11 at 20:09
t(apply(DF, 1, sort))

The t() function is necessary because row operations with the apply family of functions returns the results in column-major order.

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2  
+1 for compact solution, plus explaining why t() is necessary – Ben Bolker May 19 '11 at 20:14
    
Except the explanation isn't quite right - it's not column major order, it's that new dimensions are added on to the start, not kept in their original positions. – hadley May 19 '11 at 23:20
    
Maybe I am not understanding our difference. apply() is building a matrix one column at a time, right? – 42- May 20 '11 at 1:47

What did you try? This is really straight-forward and easy to solve with a simple loop.

> s <- x
> for(i in 1:NROW(x)) {
+   s[i,] <- sort(s[i,])
+ }
> s
  V1 V2 V3 V4
1  A  B  C  D
2  A  B  C  D
3  M  X  Y  Z
4  L  M  O  P
share|improve this answer

No plyr answer yet?!

foo <- matrix(sample(LETTERS,10^2,T),10,10)

library("plyr")

aaply(foo,1,sort)

Exactly the same as DWins answer except that you don't need t()

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And, if you wish to sort in decreasing order, defining a function

    mysort <- function(x){
        sort(x, decreasing = TRUE)
    }

does the trick:

    t(apply(vot, 1, FUN = function(x) mysort(x)))
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