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I'd like to create a pattern like in the picture for i rows and j columns:

This code does not work for every case.

var z = 0
  for(var i = 0;i<s;i++)
    for(var j = 0;j<o;j++,z++)
      color = (z%2==1?"white":"gray");

chess

You can play with it here.

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Works fine here, has your example been updated? –  Jeroen Moons Aug 29 '12 at 12:29
    
yes, the problem is solved, thanks to Deltaflux. –  2astalavista Aug 29 '12 at 12:31
2  
You should post an answer and accept it so whoever searches for this in the future will find the answer instead of just "the problem is solved". –  h2ooooooo Aug 29 '12 at 12:33
2  
@h2ooooooo it is not allowed within 10 mins –  2astalavista Aug 29 '12 at 12:35

3 Answers 3

up vote 7 down vote accepted

Try this, adding together i and j rather than using a third variable:

for (var i = 0; i < s; i++)
  for (var j = 0; j < o; j++)
    color = ( (i + j) % 2 == 1 ? "white" : "gray" );
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this works great. –  2astalavista Aug 29 '12 at 12:30

Use this condition:

color = (i + j) % 2 == 1 ? "white" : "gray";
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1  
You have too many parentheses there ;) –  Jeroen Moons Aug 29 '12 at 12:34

Add x and y and get the modulo.

// ...

var table$ = $('<table>');
for(var y = 0; y < s ; y++) {
  var tr$ = $('<tr>');
  for(var x = 0; x < o; x++) {
    var td$ = $('<td>').css({
      width: p_w,
      height: p_h,
      'background-color': getColor(x, y)
    });
    tr$.append(td$);
  }
  table$.append(tr$);
}

// ...
var Color = {
  GRAY: '#aaa',
  WHITE: '#fff'
};

function getColor(x, y) {
  return (x + y) % 2 === 0 ? Color.WHITE: Color.GRAY;
}

Demo

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