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I am trying to create pairs of random integers in the range [0,n) . I need to make sure that for any input n, the numbers created ,say p,q are such that p != q

I tried to use java.util.Random with seed sothat I can reproduce the result ..I tried inputs 100,200,400,800 and they all created p,q such that p !=q .But at 1600 two pairs were with p == q

public static void generate(int size){      
    Random ran = new Random();
    ran.setSeed(123456L);       
    for(int i =0;i<size;i++){
        int p = ran.nextInt(size);
        int q = ran.nextInt(size);
        if(p==q)
            System.out.println(p+" equals "+q);
        //else
            //System.out.println(p+" "+q);
    }
}

public static void main(String[] args) {
    generate(1600);

}

this gave

692 equals 692
843 equals 843

I am sure there is some way to make sure that p != q for any input n.. but I cannot recall the math needed

Can someone help?

share|improve this question
3  
Do you want a seed that does not generate consecutive equals? Because you could just check p and q and regenerate a random value if they were equal. –  acdcjunior Jun 24 '13 at 13:42
    
There is a possibility if your random numer is odd: always take max - generatedNumber, it will always give a different result. That is, if numbers start at 1, not 0 –  fge Jun 24 '13 at 13:44
    
Well... not for any n. If n is 0, they will always match. :) Also, be wary of declaring a seed like that. Your program will now give the same results every time. –  asteri Jun 24 '13 at 13:46
3  
Do you want to generate such pairs uniformly at random? I'm not totally sure the proposed approaches do this. Intuitively it seems to be safer to create 2 numbers and reject the pair if they are equal. –  George Jun 24 '13 at 13:49

4 Answers 4

up vote 6 down vote accepted

Just keep picking until they don't match.

int p = ran.nextInt(size);
int q;

do {
    q = ran.nextInt(size);
} while(p==q);
share|improve this answer
7  
and you could do {...} while (p==q) too –  Erwin Smout Jun 24 '13 at 13:44
    
@ErwinSmout Fair point. Updated. –  James Montagne Jun 24 '13 at 14:08

Generate one number in [0,n) and the other one in [0,n-1) If the second one is superior (inclusive) to the first one, add one.

int p = ran.nextInt(size);
int q = ran.nextInt(size-1);

if (q>=p){
    q++;
}
share|improve this answer
    
I would argue that manual incrementing/decrementing of a number makes it calculated, not random. But I suppose that's a philosophical point –  asteri Jun 24 '13 at 13:54
1  
+1 for avoiding the potential Θ(∞) running time of other solutions. (That hardly matters in practice but whatever.) –  Imre Kerr Jun 24 '13 at 13:55
    
q IS random, the increment is just there to make sure the end result covers the interval [0,n) –  Guillaume Jun 24 '13 at 13:56
    
@Jeff Unless the java.util.Random uses a hardware RNG, all the numbers it spits out are going to be "calculated". (And not random under the strict definition of the word.) –  Imre Kerr Jun 24 '13 at 13:57
1  
It is slightly less uniform, i.e. the chance of q-p==1 is now twice the chance of q-p==2. –  greyfairer Jun 24 '13 at 13:59

One of the solutions is:

  1. Generate first number
  2. Generate second number
  3. While second number equals to first number return to step 2

In almost 100% step 2 will be executed no more than a couple of times.

But ensure than n is more than 1 because you will have an endless loop in another case (but anyway, you can't get correct results with any algorithm)

share|improve this answer

Add 1 to n in a List. Then use Collection.Shuffle to shuffle the whole list. It will shuffle the list with equal likelihood. Then get any 2 from the list

For example

ArrayList a = new ArrayList();
for(int i = 1;i <= n; i++)
    a.add(i);
Collections.shuffle(a);
int first = (int)a.get(0);
int second = (int)a.get(1);
share|improve this answer
2  
+1 for being a solution which actually "generates" the two numbers itself, guaranteed, rather than simply getting two numbers and having to perform comparisons. Good idea. –  asteri Jun 24 '13 at 14:03
    
Shuffling the entire list is wasteful. Just swap the first element with a random element, and the second element with a random element. (Shuffling does exactly this, only with the entire list. See en.wikipedia.org/wiki/Fisher%E2%80%93Yates_shuffle .) –  Imre Kerr Jun 24 '13 at 14:04
    
You should know, however, that your example won't compile. An ArrayList holds Objects, which can't be cast to int. You will want to instead cast them to Integer and rely on auto-unboxing. –  asteri Jun 24 '13 at 14:09
    
@jeff really?? .. just check by compiling .. you will see the magic :p –  StinePike Jun 24 '13 at 14:09
1  
@StinePike Really. Unless my Eclipse is lying to me. Haha. imgur.com/IPvyE6C –  asteri Jun 24 '13 at 14:12

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