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Edit: If you read Matt Bryant's answer, you'll see that it should work but he uses indexOf() method and that method doesn't work with I.E 8 or later and I need it to work on I.E 8. I tried doing this as a work around to the indexOf() method but it's not working.

var tester = -1;
for (var test=0; test<xposition.length; test++) {
    if (x == xposition[0]) {
        tseter = x;
    }
}

Any idea why it doesn't work?

Original question: So I want to generate random pairs of numbers but only if the pairs of number didn't already be generated. Here is what I tried, hopefully if you read what I tried, you will understand what it is exactly which I need.

function randomPairs() {
    var xposition = []; //array which holds all x coordinates
    var yposition = []; //array which holds all y coordinates
    for (var i=0; i<5; i++) { //do everything below 5 times (generate 5 pairs)

        var x = getRandom(1,7); //generate new x point
        var y = getRandom(2,7); //generate new y point

        if ( jQuery.inArray(x, xposition) ) { //if newly generated x point is already in the xposition array (if it was already previously generated
             var location = xposition.indexOf(x) //find the index of the existing x

             if (y == yposition[location]) { //if the newly generated y points equals the same y point in the same location as x, except in the yposition array

                 while ( y == yposition[location]) {
                     y = getRandom(2, 7); //change y
                 }
             }
       }
  }
  xposition.push(x); //put x into the array
  yposition.push(y); //put y into the array
}

So, any idea why it isn't working? Am I using the jQuery.inArray() and the .indexOf() method properly?

Oh, and getRandom is

function getRandom(min, max) {
    return min + Math.floor(Math.random() * (max - min + 1));
}

basically, it generates a number between the min and max.

Also, when I tried to do

alert(xposition);
alert(yposition);

it is blank.

share|improve this question
    
Can you show us what your getRandom() function does? why are the params for x and y different? Do you just pass in the scale of the axis and do a Math.random? Just making sure. –  aug Oct 16 '13 at 17:09
2  
function randomPairs() { return [4,4]; }. Directly inspired from xkcd.com/221 –  Rakesh Juyal Oct 16 '13 at 17:11
    
jQuery.inArray(x, xposition) return the index of the element if is exist so why are you search inside this function index of? –  Dvir Oct 16 '13 at 17:11
    
@aug whoops I just edited my post and showed what getRandom() does. –  user2719875 Oct 16 '13 at 17:13
1  
its a joke dude ... ironic enough that it needs to be explained ;) –  Vandesh Oct 16 '13 at 17:18

2 Answers 2

up vote 3 down vote accepted

The issue is that you are adding x and y to the array outside of the loop. A fix for this (plus a removal of the unneeded jQuery) is:

function randomPairs() {
    var xposition = []; //array which holds all x coordinates
    var yposition = []; //array which holds all y coordinates
    for (var i=0; i<5; i++) { //do everything below 5 times (generate 5 pairs)

        var x = getRandom(1,7); //generate new x point
        var y = getRandom(2,7); //generate new y point

        var location = xposition.indexOf(x);
        if (location > -1) { //if newly generated x point is already in the xposition array (if it was    already previously generated
            if (y == yposition[location]) { //if the newly generated y points equals the same y point in  the same location as x, except in the yposition array
                while ( y == yposition[location]) {
                    y = getRandom(2, 7); //change y
                }
            }
        }
        xposition.push(x); //put x into the array
        yposition.push(y); //put y into the array
    }
}

Note that you should probably return something from this function.

If you have to support old browsers, replace the line

var location = xposition.indexOf(x);

with

var location = jQuery.inArray(x, xposition);
share|improve this answer
    
uhm what does the 'if (location > -1) do? does xposition.indexOf(x) return a negative number if x is not found in the array? –  user2719875 Oct 16 '13 at 17:15
2  
If x is not in the array, indexOf(x) returns -1. Otherwise it returns an index, which must be greater than or equal to 0. –  Matt Bryant Oct 16 '13 at 17:16
    
hm, did you try the code you provided on your computer? Did it work for you? –  user2719875 Oct 16 '13 at 17:28
    
for some reason for me, the code stops working when it reaches "var location = xposition.indexOf(x);" –  user2719875 Oct 16 '13 at 17:35
2  
The fix for that would be to use the jQuery method. I'll update. –  Matt Bryant Oct 16 '13 at 17:50

One of the main issue with this approach is that you have to think of cases when there are multiple unique pairs with the same x or y value.

x = [1, 1, 1], y = [1, 2, 3]

Note that Array.indexOf only returns the first index when the given element can be found in the array. So you would have to recursively run it beginning from the index you found the match from.

A simple approach of generating a unique pair of integers can be done without jquery: http://jsfiddle.net/WaFqv/

I'm assuming the order does matter, so the x = 4, y = 3 & x = 3, y = 4 would be considered as two unique pairs.

share|improve this answer

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