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I'm having some trouble getting this to work using one function, instead of having to use many.

If I want to get permutations with repeats like 2^3. permutations with repeats

to get:

000
001
101
011
100
101
110
111

I can have this function:

   static void Main(string[] args)
    {
        three_permutations(2);
        Console.ReadLine();
    }


    static void three_permutations(int y)
    {

        for (int aa = 0; aa < y; aa++)
        {
            for (int bb = 0; bb < y; bb++)
            {
                for (int cc = 0; cc < y; cc++)
                {
                    Console.Write((aa));
                    Console.Write((bb));
                    Console.Write((cc));
                    Console.WriteLine();
                }
            }
        }

    }

But then to do 4 (like 2^4), the only way I can think is this:

  static void four_permutations(int y)
    {
            for (int aa = 0; aa < y; aa++)
            {
                for (int bb = 0; bb < y; bb++)
                {
                    for (int cc = 0; cc < y; cc++)
                    {
                        for (int dd = 0; dd < y; dd++)
                        {
                            Console.Write((aa));
                            Console.Write((bb));
                            Console.Write((cc));
                            Console.Write((dd));
                            Console.WriteLine();
                        }
                    }
                }
            }
     }

but I'm sure there's a better way using recursion I'm just not sure how to do it. I appreciate any help. Thanks.

share|improve this question
    
I have edited your title. Please see, "Should questions include “tags” in their titles?", where the consensus is "no, they should not". –  John Saunders Oct 9 '12 at 16:14
    
Please check out links from en.wikipedia.org/wiki/Permutations. There are also large amount of printed and online information on permutations, so it may be good idea to search existing body of knowledge. –  Alexei Levenkov Oct 9 '12 at 16:21
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2 Answers

up vote 2 down vote accepted
void permutations(string text, int numberOfDigits, int numberOfChars)
{
    if (numberOfDigits > 0)
        for (int j = 0; j < numberOfChars; j++)
            permutations(text + j.ToString(), numberOfDigits - 1, numberOfChars);
    else textBox1.Text += text + "\r\n";
}

and call:

permutations("", 3, 2);
share|improve this answer
    
Beautiful. Thanks for the help. –  marseilles84 Oct 9 '12 at 16:42
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Permutations with repetition is essentially counting in another base.

public static void Permutations(int digits, int options)
{
    double maxNumberDouble = Math.Ceiling(Math.Pow(options, digits));
    int maxNumber = (int)maxNumberDouble;
    for (int i = 0; i < maxNumber; i++)
    {
        Console.WriteLine(Convert.ToString(i, options).PadLeft(3, '0'));
    }
}

The example that you've printed is essentially counting from 0 to 8 in base 2.

share|improve this answer
    
This sample does not account for repeated permutations. Each counted number will be unique. –  Joel Etherton Oct 9 '12 at 16:28
    
@JoelEtherton No...the result of, for example, 8 printed as a string in base two is 111, which repeats 1 three times. This is relying on the fact that taking a number of different values (here options is the number of choices) n times (where n here is digits) results in options ^ digits possibilities; this lists out each of those possibilities. –  Servy Oct 9 '12 at 16:35
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