27

For instance I have a matrix like this:

|1 2 3|    
|4 5 6|
|7 8 9|

and I need it to convert into a matrix like this:

|1 4 7|    
|2 5 8|
|3 6 9|

What is the best and optimal way to achieve this goal?

20

See article: Transpose An Array In JavaScript and jQuery

function transpose(a) {

  // Calculate the width and height of the Array
  var w = a.length || 0;
  var h = a[0] instanceof Array ? a[0].length : 0;

  // In case it is a zero matrix, no transpose routine needed.
  if(h === 0 || w === 0) { return []; }

  /**
   * @var {Number} i Counter
   * @var {Number} j Counter
   * @var {Array} t Transposed data is stored in this array.
   */
  var i, j, t = [];

  // Loop through every item in the outer array (height)
  for(i=0; i<h; i++) {

    // Insert a new row (array)
    t[i] = [];

    // Loop through every item per item in outer array (width)
    for(j=0; j<w; j++) {

      // Save transposed data.
      t[i][j] = a[j][i];
    }
  }

  return t;
}

console.log(transpose([[1,2,3],[4,5,6],[7,8,9]]));

| improve this answer | |
  • Unfortunately, this approach adds a new element to each array in your application! Look here: jsfiddle.net/gj6q1k0j – vektor Aug 20 '14 at 15:18
  • @vektor your input should look like [[1,2,3,4]] Also, you should loop like for (var key in p) { if (p.hasOwnProperty(key)) { If you plan on doing for..in But yes, it is probably a bad idea to extend Array. I'll change example. – troynt Aug 20 '14 at 22:42
  • Thanks for the updated example. My point was that the original solution broke all the Arrays... – vektor Aug 21 '14 at 8:35
65

DuckDucking turned up this by Ken. Surprisingly, it's even more concise and complete than Nikita's answer. It retrieves column and row lengths implicitly within the guts of map().

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

console.log(transpose([
    [1,2,3],
    [4,5,6],
    [7,8,9]
]));

[[1,4,5],[2,5,8],[7,8,9]

| improve this answer | |
  • 4
    Object.keys isnt supported by IEX<9 so in that case i'd stick to one of the other answers if you need to provide support for that. – Joris Kroos May 31 '13 at 9:58
  • Good point. Hadn't noticed that. Thanks for the tip. – hobs May 31 '13 at 20:31
  • 3
    though there is a fix for that detailed here... developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Tom P Jun 11 '13 at 16:30
  • @hobs can you explain what a[0] is? – TheRealFakeNews Mar 31 '16 at 18:50
  • @AlanH it's the first inner array in your array of arrays. This inner array is the first row of your 2D array (matrix) if you stored your data in row-major order. The docs and other SO answers give more detail. – hobs Apr 3 '16 at 0:47
7

Just like in any other language:

int[][] copy = new int[columns][rows];
for (int i = 0; i < rows; ++i) {
    for (int j = 0; j < columns; ++j) {
        copy[j][i] = original[i][j];
    }
}

You just have to construct the 2D array differently in JS. Like this:

function transpose(original) {
    var copy = [];
    for (var i = 0; i < original.length; ++i) {
        for (var j = 0; j < original[i].length; ++j) {
            // skip undefined values to preserve sparse array
            if (original[i][j] === undefined) continue;
            // create row if it doesn't exist yet
            if (copy[j] === undefined) copy[j] = [];
            // swap the x and y coords for the copy
            copy[j][i] = original[i][j];
        }
    }
    return copy;
}

console.log(transpose([
    [1,2,3],
    [4,5,6],
    [7,8,9]
]));

| improve this answer | |
  • Unlike the other solution, this one works for jagged arrays i.e. if you change [4,5,6] to [4,5,6,0], this solution still works. Others don't. – aleemb Apr 8 at 18:12
5

I don't have enough reputation to comment (wtf.), so I need to post Ken's updated version as a separate answer:

function transpose(a) {
    return a[0].map(function (_, c) { return a.map(function (r) { return r[c]; }); });
}
| improve this answer | |
2

Compact version of Hobs' answer using arrow functions from ES6:

function transpose(matrix) {
    return Object.keys(matrix[0])
        .map(colNumber => matrix.map(rowNumber => rowNumber[colNumber]));
}
| improve this answer | |

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