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I have code that randomly generates a binary number from 000 to 111 but I'm having trouble having it create a number from 000 to just 110. I know that I can somehow rerun the code everything it comes out with 111 but I can't seem to figure out the way to have it do that.

public String binNumber() {
        StringBuilder storage = new StringBuilder();
        int i = 0;
        while (i < 3) {
            int binny = this.giveMeBinary();
            storage.append(String.valueOf(binny));

            i++;
        }


        return storage.toString();
    }

public int giveMeBinary() {
        Random rg = new Random();
        int bin = rg.nextInt(2);
        return bin;

    }
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2  
You are generating binary digits which appear to be the problem, try generating an integer number from 0 to 6 and then convert it to binary. –  SpeedBirdNine Feb 1 '12 at 5:55

4 Answers 4

The better way to do this is to generate a random number from 0 to 6 inclusive, and then convert to a string

public String binNumber() {
    Random rg = new Random();
    int n = rg.nextInt(7);
    return Integer.toBinaryString(n);
}
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I think you mean the second line should take 7 as the argument. –  Dawood Feb 1 '12 at 5:58
1  
@Dawood You're right. Fixed –  Adam Mihalcin Feb 1 '12 at 5:58

"Rerolling" if you get 111 is definitely a bad idea; that's potentially an algorithm with infinite running time, although in practice it would do quite well.

Why work in base 2? Work in base 10, easily get a random number between 0 and 6, and then translate back to binary.

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Part of my project is to do it in binary. –  willkara Feb 1 '12 at 5:57
    
I disagree that this is a bad idea. The probability of rerolling is 1/8 on each iteration, so with probability 7/8 you will terminate on each iteration. This gives an expected number of iterations of 8/7, with the probability of more iterations decreasing exponentially. It would be an extremely rare event for this to require more than ten or so iterations, since that has probability 1/(8^10) = 1 / (2^30), which is about one in a billion. The likelihood that this takes more than one hundred iterations is so low in the entire history of the universe it's unlikely to ever happen. –  templatetypedef Feb 1 '12 at 5:59
1  
Like I said, "in practice it would do quite well." Surely you can agree that we should try to stay away from O(infinity) algorithms when there are sensible alternatives. –  Jeremy Feb 1 '12 at 6:00

Something like:

Random random = new Random();

int nextNumber = random.nextInt( 7 );
System.out.println( Integer.toBinaryString( nextNumber ) );

Remember your numbers you create in a computer are always in binary. You just need to print it out differently. So even though you've given it a decimal number that number is converted by the compiler to binary. 7 == 0x111 when its compiled.

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If you want to re-roll, try this:

String num = "";
while (true)
{
      num = binNumber();
      if (!num.equals("111"))
      {
          break;
      }
}
return num; 
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