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static void LasVegas(int []tablero, int f, int ultimaReina){


    HashSet<Integer> enterosUsados = new HashSet<Integer>();


    if (ultimaReina!=-1) enterosUsados.add(ultimaReina);
    if ((ultimaReina-1) >=0){enterosUsados.add(ultimaReina-1);}
    if ((ultimaReina+1 != tablero.length) && (ultimaReina!=-1)){enterosUsados.add(ultimaReina+1);}
  //  if(ultimaReina+1!=tablero.length){enterosUsados.add(ultimaReina+1);}

    Random random = new Random();
        int posReina;

        if (f==tablero.length){
            printBoard(tablero);
            stop=System.currentTimeMillis();
            System.out.println(stop-start);
            System.exit(0);
            return;
        }

        do {

            do{
            posReina= Math.abs(random.nextInt())%tablero.length;
            }
            while(enterosUsados.add(posReina)==false);


            tablero[f]=posReina;

            if (check(tablero, f)){
                LasVegas(tablero, f+1, posReina);
            }



    } while (enterosUsados.size()<tablero.length);

  }

public static void main(String[] args) {

       // testChiCuadrado(410,30);

        int [] tablero = new int[8];
        Arrays.fill(tablero, -1);

        start = System.currentTimeMillis();
        LasVegas(tablero, 0, -1);


    }

static boolean  check (int [] array, int f){

       for (int i=0; i<f; i++){

       if (array[i]==array[f]) return false;

       if( Math.abs(array[f]-array[i])== Math.abs(f-i)) return false;


       } return true;



   }


   static void printBoard(int [] tablero) {

       char [] linea = new char[tablero.length];
       Arrays.fill(linea, '*');
       for (int i=0;i<tablero.length;i++){

           linea[tablero[i]]='D';
           System.out.println(new String(linea));
           linea[tablero[i]]='*';

       }

   }

I'm using a Las Vegas algorithm to generate random queen positions on a board, I'd like to do timing of it via multiple runs but I'm using System.exit(0) to stop the backtracking when a solution is found, if I don't stop there my algorithm gives other solutions, which I don't want.

Here:

       if (f==tablero.length){
            printBoard(tablero);
            stop=System.currentTimeMillis();
            System.out.println(stop-start);
            System.exit(0);
            return;
        } 

How can I change that and make the algorithm stop without System.exit(0) so that I can call It multiple times within a loop?

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3 Answers 3

up vote 1 down vote accepted

Change the return type of LasVegas to boolean. Remove the call to System.exit() and change the immediately following return; statement to return true;. Change the recursive call to:

if (LasVegas(tablero, f+1, posReina)) return true;
share|improve this answer

You can make the function return bool

static bool LasVegas( ...

and instead of Exit return false. Return true in the other case.

Also when calling the function recursively just check the result and if false, the return false:

       if (check(tablero, f)){
            if (!LasVegas(tablero, f+1, posReina))
                return false;
       }
share|improve this answer

replace the exit with a return;
in a while loop you can call break; to exit it

share|improve this answer
    
and in the do ... while loop, how does he know whether to break or not? –  Dave Costa Jun 13 '11 at 1:09
    
He wrote: "I'd like to do timing of it via multiple runs but I'm using System.exit(0) to stop the backtracking when a solution is found" So i assume he'll know when to exit the loop –  wuerzelchen Jun 13 '11 at 1:11

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