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how to transpose a 2D matrix in place?

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3  
square or not? it makes a big difference –  Anycorn Apr 21 '10 at 6:34
1  
@aaa: Transposing a non-square matrix in place does not make a lot of sense. –  Jens Apr 21 '10 at 7:29
1  
Though depending on the representation (for example using a single array of N*M dimensions) it could be done. –  Matthieu M. Apr 21 '10 at 13:52
1  
This was pretty much "beaten to death" in this post –  NealB Nov 8 '11 at 20:39

8 Answers 8

for (int i=0; i<n; i++) {
  for (int j=0; j<i; j++) {
    temp = a[i][j];
    a[i][j] = a[j][i];
    a[j][i] = temp;
  }
}
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1  
WARNING! This is only correct for square arrays. See @dlb's Wikipedia link below for a non-square matrix implementation. –  Mayank Apr 7 at 6:04

You have not specified a language, but generally, what you do is:

let a be your array.
for each i,j with i<j switch a[i,j] with a[j,i]
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Wikipedia had an article In-place matrix transposition. The article covers non-square matrices.

http://en.wikipedia.org/wiki/In-place_matrix_transposition

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To get the transpose of a square matrix we need to consider elements above the main diagonal or below it and swap each with its reflection along the main diagonal:

for i->0 to N-1
 for j->i+1 to N-1
  swap matrix[i][j] with matrix[j][i]
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Has nobody except from dlb noticed that the algorithm is different for non-square matrices?

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1  
Obviously, dlb is the smartest person in this thread. The cheaper the question (seemingly), the more people try to get cheap reputation points by the same answers. –  shuhalo Nov 25 '11 at 11:04

Why bother ? Just swap indices in any access statement.

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6  
There is a serious performance penalty for accessing 2D arrays in the "wrong" order - it's often better to pay the price of a transpose in order to get the benefits of contiguous memory access (unit stride). –  Paul R Apr 21 '10 at 7:29

This seems to work well:

function transpose(a)
{
  return Object.keys(a[0]).map(function (c) { return a.map(function (r) { return r[c]; }); });
}
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in c#

string[,] Value;
//fill Value

//create transposed array
ValueAux = new string[Value.GetLength(1),Value.GetLength(0)];
for (i = 0; i < Value.GetLength(0); i++)
{
  for (j = 0; j < Value.GetLength(1); j++)
  {
    Valueaux[j, i] = Value[i, j];
  }
}

The result is in ValueAux

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