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I have searched this for hours and I'm not getting it. I don't seem to know how to return values using Fisher-Yates and many ways listed. I'm dying here.

I can get a RandomNumber, but this is reused over and over. I need it to be unique everytime when returned (or so I tend to think is possible).

I need help understanding what I should do, why each part does, and stuff for dummies. This is what works:

    private int RandomNumber(int min, int max)
    {
        Random random = new Random();
        return random.Next(min, max);
    }

And this is what I'm putting it into and it working (but not unique random numbers are used)... I only included what I felt needed to be looked at and where it is positioned:

  private void ComputersTurn()
    {
        Control.ControlCollection coll = this.Controls;
        foreach (Control c in coll)
        {
            if (...)
            {
                if (...)
                {

                    if (...)
                    {
                        if ((c.Name == "btn" + Convert.ToString(RandomNumber(1,9)) && (c.Enabled != false) )) 
                        {
                            if (...)
                            {
                                //code here
                            }
                        }


                    }
                }
            }
        }
    }

Again, RandomNumber works...but it's not unique. I wish to learn how to return a unique number (if possible).

share|improve this question

marked as duplicate by leppie, Anthony Pegram, Ravi Gadag, Andrew Barber, h22 Feb 21 '13 at 10:34

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
@leppie: 20 mm above the words "many" and "times" in your comment, there is a close button. use it. –  CloudyMarble Feb 21 '13 at 6:38
    
Your RandomNumber method keeps creating a random instance. Inside a loop, you are basically going to keep seeding it with the same value, which means you are going to generate the same random number (pro-tip: it's not actually random, but it sometimes acts like it). Move the instance outside the method and create it once. Now, if you need truly unique and not just random, then certainly revisit those FY algorithms and keep trying. –  Anthony Pegram Feb 21 '13 at 6:44
1  
I understand it's a very common question, but each one is catered to a different use. I tried the many ways but I cannot get it to work. I'm sorry if it's such a burden, but I wasn't learning anything through those searches and had no idea how to get a value to return correctly. –  Dwelling Place Feb 21 '13 at 6:45
    
Here's a link to a FY implementation that should get you moving. stackoverflow.com/questions/1287567/… –  Anthony Pegram Feb 21 '13 at 6:46
1  
@DwellingPlace btw, what do you expect if RandomNumber(1,9) is called more than 9 times. –  default locale Feb 21 '13 at 7:03

4 Answers 4

up vote 0 down vote accepted

The only way to generate unique numbers by Random is to define it in your class like this:

public static class RandomGenerator
{
    private static readonly Random _random = new Random();

    public static int GenRand(int x, int y)
    {
        return _random.Next(x, y);
    }
}

In your case try to use this code this way:

private void ComputersTurn()
    {
        Control.ControlCollection coll = this.Controls;
        foreach (Control c in coll)
        {
            if (...)
            {
                if (...)
                {

                    if (...)
                    {
                        if ((c.Name == "btn" + Convert.ToString(RandomGenerator.GenRand(1, 9)) && (c.Enabled != false) )) 
                        {
                            if (...)
                            {
                                // code here
                            }
                        }


                    }
                }
            }
        }
    }
share|improve this answer
    
where would I place that and how would I implement that in the same way I'm using it now? –  Dwelling Place Feb 21 '13 at 6:43
    
Random itself doesn't guarantee unique output. No matter where you define it. –  default locale Feb 21 '13 at 6:44
    
@DwellingPlace Just define it after { in your class and use in your code int randInt = random.Next(x, y); –  fibertech Feb 21 '13 at 6:44
    
@DwellingPlace I have just edited my post, just try to use my code –  fibertech Feb 21 '13 at 6:47
1  
@fibertech got it to work, thanks very much for the help. I learned what was conflicting. Your generator worked fine. :D –  Dwelling Place Feb 21 '13 at 10:54

Are you simply trying to return all the integers from min to max with their order permuted? This is the only way it makes sense to me to want a sequence of random integers in a given range such that each random is guaranteed unique...

Assuming I'm correct, you should be able to easily find code for random permutation of an array.

share|improve this answer
    
There order doesn't matter at all. It can be 1, 9 , 2, 3, 6, 5, 4...whatever just not repeats. I looked into an array, just don't know how to return the random value. ;( –  Dwelling Place Feb 21 '13 at 6:42
1  
My point is that what you want is exactly the same as random permutation, and I think there are a lot of questions on so that help with this. For example, consider min=0 and max=9; a random permutation may be 0,9,7,6,8,2,5,1,3,6,4. If you want 5 randoms, you just take the first 5 entries from this array. Hence, what you want to do first is randomly permute the counting array from min to max. –  Dr. Drew Feb 21 '13 at 6:54
    
Of course, I'm assuming you are aware you can't possibly take more unique random numbers than (max-min)... –  Dr. Drew Feb 21 '13 at 6:55

Instantiate the Random class only once.

private Random random = new Random();

private int RandomNumber(int min, int max)
{
    var result = this.random.Next(min, max);
    return result;
}
share|improve this answer

try to put declaration of your instance of Random class outside the function so that the you can get every time different number if you want to make sure that random numbers are not going to be duplicated you can use and List to store every generated number

class Classname
{
private Random random = new Random();
//your code
}
share|improve this answer
    
Using one Random instance is a good idea, but it has nothing to do with unique numbers and, thus, doesn't answer a question. –  default locale Feb 21 '13 at 6:47
    
you can use a list and then insert each random number generated by the RandomNumber(int min, int max) and you can make a while loop to check if the number is inside that list –  BMW Feb 21 '13 at 6:51

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