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This is my homework assignment:

Random r = new Random();
public int get100RandomNumber() {
    return 1+r.nextInt(100);
}

You are given a pre-defined function named getrand100() (above) which returns an integer which is one random number from 1-100. You can call this function as many times as you want but beware that this function is quite resource intensive. You cannot use any other random generator. You cannot change the definition of getrand100().

Output: Print numbers 1-20 in random order. (Not 20 random numbers)

What I have tried..

public class MyClass {

    static Random r = new Random();
    static HashSet<Integer>;

    public static void main(String args[]) {
        myMethod();
        System.out.println(s);
    }    

    public static void myMethod() {
        boolean b = false;
        s = new HashSet<Integer>();
        int i = getRand100();
        if (i >= 20)
            i = i % 20;
        int j = 0;

        int k, l;
        while (s.size() <= 20) 
        {
            System.out.println("occurence no" + ++j);
            System.out.println("occurence value" + i);
            b = s.add(i);
            while (!b) {
                k = ++i;
                if(k<=20)
                    b = s.add(k);
                if(b==true)
                    break;
                if (!b) {
                    l = --i;
                    if(i>=1&&i<=20)
                        b = s.add(l);
                    if(b==true)
                        break;
                }
            }
        }
        System.out.println(s);
    }

    public static int getRand100()
    {
        return r.nextInt(100) + 1;
    }
}

Thanks for any help!

share|improve this question
1  
-1 emilvikstrom.se/whyidownvote.html (What have you tried?) –  Emil Vikström Jun 3 '12 at 16:47
    
Are you saying that, if you get a number x such that x == 0 or x > 20, you have to reject it? –  Makoto Jun 3 '12 at 16:51
    
yes exactly...... –  john smith Jun 3 '12 at 16:56
    
I think by "print 1-20 number in randrom order" you mean that you want to take all of the numbers 1-20 and print them out in a random order, with all possible orders equally likely. Is that right? –  Weeble Jun 3 '12 at 16:56
1  
Removing my down vote because you updated the question. It would be nice with a description of what results you get with your current code, and why that differs from what you expect. –  Emil Vikström Jun 3 '12 at 17:03

2 Answers 2

up vote 2 down vote accepted

I believe you are asking how to use a random number generator to print out the numbers 1 to 20 in a random order. This is also known as a "random permutation". The Fischer-Yates shuffle is such an algorithm.

However, to implement the algorithm, you first of all need a random number generator that can pick one out of N items with equal probability where N ranges from 2 up to the size of the set to shuffle, while you only have one that can pick one out of 100 items with equal probability. That can easily be obtained by a combination of modulo arithmetic and "rerolling".

share|improve this answer
    
Maybe he just needs an array with values from 1 to 20, then apply the Fishcer-Yates shuffle algorithm using the random function he has. To leverage the time of this shuffle function, the array could have 101 elements from 1 to 20 (I guess). –  Luiggi Mendoza Jun 3 '12 at 17:24

Assuming you are allowed to use the ArrayList class, I'd recommend filling a list with the numbers you want (1 to 20 in this case), then randomly pick numbers from the list and remove them. Using getRand100() % theList.size() should be sufficiently random for your cause and you only need to call it 19 times. When only one element is left, there's no need to "randomly" pick it from the list anymore. ;-)

share|improve this answer
    
I figure this would probably the same as Fisher-Yates shuffle suggested by @Weeble in the other answer. Never knew this actually had an "official" name, as I came up with it myself quite a while ago already and never bothered to look it up as I found it to be "too obvious". –  Wormbo Jun 3 '12 at 19:42

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