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Maybe the title is not very descriptive so let me explain. I have a two dimensional array. The idea is dimensions to vary but for now I set them concrete. It's [3,3] matrix or in other words 9 elements. What I want is to set 6 of the elements with value 0 but I want exactly 3 elements to be with different value (In fact I wanted them to be with value 1 but I think I'm not using the random generator properly, so pls someone help me with that) but anyways. Here is my method code:

int sum = 0;
private void MakeMatrix()
        {
            for (int i = 0; i < 3; i++)
            {
                for (int k = 0; k < 3; k++)
                {
                    int n = _r.Next(2);
                    if (n != 1 && sum < 3)
                    {
                        matrix[i, k] = 1;
                        sum++;
                    }
                    else
                    {

                        matrix[i, k] = 0;
                    }


                }
            }
        }

So far I haven't got a test try where to have less than 3 element with random value !=1 but first - generally I think it still is based on luck and secondly - since these are elements of array, it's obvious that if I use let's say int n = _r.Next(200); I'll get a lot of times numbers different from one, but sine I have only 9 elements this way most of the time I'll probably get my first 3 elements always set with value of 1 which I don't want to happen. I want to randomize it as much as possible.

share|improve this question
    
if u want them to be 1 then why not set directly? – PaRiMaL RaJ Jan 26 '13 at 15:56
    
out of 9 element, any 6 of them can be zero? – PaRiMaL RaJ Jan 26 '13 at 15:57
    
Based on the value I do other things. This method is called by event. I need every time when the event is fired to get different set of values where 6 are zeros and 3 are not, or whatever - I need to be able to select exactly 3 element by some unique identifier. – Leron Jan 26 '13 at 16:01
up vote 4 down vote accepted

You might try something like the following. First initialize your matrix to all 0 values, then run the code below. It will set three random values in the matrix to 1.

int count = 0;
while (count < 3)
{
    int x = r.Next(0, 3);
    int y = r.Next(0, 3);

    if (matrix[x, y] != 1)
    {
        matrix[x, y] = 1;
        count++;
    }
}
share|improve this answer
    
Yeah, nice idea indeed.Thanks – Leron Jan 26 '13 at 16:02
    static int sum = 0;
    private static readonly int[,] matrix = new int[3,3];
    private static readonly Random _r = new Random();
    private static void MakeMatrix()
    {
        //by default all the element in the matrix will be zero, so setting to zero is not a issue
        // now we need to fill 3 random places with numbers between 1-3 i guess ?

        //an array of int[3] to remember which places are already used for random num
        int[] used = new int[3];
        int pos;
        for (int i = 0; i < 3; i++)
        {
            pos = _r.Next(0, 8);
            var x = Array.IndexOf(used, pos);
            while (x != -1)
            {
                pos = _r.Next(0, 8);
            }
            used[i] = pos;
            matrix[pos/3, pos%3] = _r.Next(1, 3);

        }

    }
share|improve this answer
    
down voter, care to xplain? – PaRiMaL RaJ Jan 26 '13 at 17:43

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