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Basically I am creating a grid and plotting points on it, and no two points can be on the exact same place [(3,4) is different than (4,3)]. The y coordinates have to be within 2 and 7 (so 2, 3, 4, 5, 6, 7) and x coordinates have to be within 1 and 7. I have a getRandom function (which can be seen below) which generates a random number between a min and max range. Here is what I have so far.

var xposition = [];
var yposition = [];
var yShouldBeDifferentThan = []

function placeRandom() {
    for (s=0; s<xposition.length ; s++ ) {
        if (xposition[s] == x) { // loops through all numbers in xposition and sees if the generated x is similar to an existing x
             yShouldBeDifferentThan.push(yposition[s]); //puts the corresponding y coordinate into an array.
             for (r=0; r<yShouldBeDifferentThan.length; r++) {
                 while (y == yShouldBeDifferentThan[r]) {
                     y = getRandom(2,7);
                 }
             }
        }
    }
    xposition.push(x);
    yposition.push(y);
}

The problem with this is, if

xposition = [1, 5, 5, 7, 5, 5]
yposition = [1, 3, 7, 2, 3, 6]
yShouldBeDifferentThan = [3, 7, 3, 6]

First, it will generate a random number different tahn 3, say 6. Then (I think) it will see if 6 == 7? it doesn't. 6 == 3? it doesn't. 6 == 6? it does, so generate a random number different than 6. This is where the problem comes it, it might generate the number 3. My getRandom function is this

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

I was thinking making the getRandom() function such that I can exclude numbers as well if I want, but I don't know how to do this. If I can get it to exclude numbers, than in the last while loop of the placeRandom() function, maybe I can do something like

y = getRandom(2,7) excluding all numbers which already exist in the ShouldBeDifferentThan array

Also, note that I cannot use the indexOf() method since I am using I.E 8.

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2 Answers 2

up vote 1 down vote accepted

There are two problems with your approach:

  • You might pick an x coordinate for a row that is already full, which would send the code into an eternal loop.

  • Picking an x coordinate and then a y coordinate means that positions will have a different chance to be picked depending on how many positions were picked in the same row before.

Instead just pick an x and y coordinate, and check if that specific coordinate was picked before. If it was, start over.

function placeRandom() {
  do {
    var x = getRandom(2,7), y = getRandom(2,7), found = false;
    for (s = 0; s<xposition.length; s++) {
      if (xposition[s] == x && yposition[s] == y) {
        found = true;
        break;
      }
    }
  } while(found);
  xposition.push(x);
  yposition.push(y);
}

Additionaly, when the grid starts to get full (e.g. around 80%), you can make an array containing all the remaining positions and pick one by random from that.

share|improve this answer
    
wait, "if (xposition[s] == x && yposition[s] == y)" it means that there already exists a point with the same x and y coordinate, right? So how come you break and then push those x and y coordinates into xposition and yposition? Shouldn't you generate a different number randomly for x and y and then recheck "if (xposition[s] == x && yposition[s] == y)" and repeat until if (xposition[s] == x && yposition[s] == y)" isn't true? –  user2719875 Oct 18 '13 at 14:27
1  
@user2719875: The break is to get out of the for look checking for the coordinates, so that it doesn't have to check the rest of the coordinates in the array. The do {} while loop makes it pick new coordinates until no match is found. The code works without the break too, but then it does some work that it doesn't have to. –  Guffa Oct 18 '13 at 16:40
    
right, but if found = true then it means that (xposition[s] == x && yposition[s] == y) right? So don't we Not want (xposition[s] == x && yposition[s] == y)? How come we are breaking and pushing x and y into xposition and yposition if they already exist? Should it be "if (!(xposition[s] == x && yposition[s] == y))"? –  user2719875 Oct 19 '13 at 22:35
1  
@user2719875: When we find an already used square, the found variable is set to true, and the while loop continues. It's only when the coordinates is not found anywhere in the array that the found variable remains false, we exit the while loop and add the coordinates to the array. –  Guffa Oct 19 '13 at 22:54
    
Oh, okay that makes sense. I tried this and it works perfectly. Thanks. –  user2719875 Oct 22 '13 at 12:56
var numbers = [ 1, 2, 3, 4, 5 ];
var exclude = [ 3, 4 ];
var filtered = [];
for (var i = 0; i < numbers.length; i += 1) {
    if (exclude.indexOf(numbers[i]) === -1) {
        filtered.push(numbers[i]);
    }
}
var rand = Math.floor(Math.random() * filtered.length);
var num = filtered[rand]; // 1, 2 or 5

Build the list of allowed numbers, pick one of those at random. The for-loop is just a diff between numbers and exclude, like: var filtered = numbers.diff(exclude);

share|improve this answer
    
hm, I can't use indexOf since I am using I.E 8. Sorry I didn't mention that earlier.. Is there any way to do it without using indexOf? –  user2719875 Oct 18 '13 at 14:22
    
Make your own diff function. –  Halcyon Oct 18 '13 at 14:28

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