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I have the following code generating 5-digit random numbers and adding them to an ArrayList. These numbers however must be unique ids.

for(int i = 0; i < myArr.length; i++) {
    int id = (int) (Math.round(Math.random() * 89999) + 10000);
    idArr.add(id);
}

I'm trying to work out how I could check to see if the number was already in the array before adding it but I can't get my head around the best way to do this.

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4 Answers

up vote 1 down vote accepted

Use an ArrayList instead of an array. That way you would just need to use ArrayList#contains(obj) method to test whether the id is already in the ArrayList or not.

Or, you can just work with a HashSet, which will work faster with its HashSet#contains() method.

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Thanks Rohit - the contains method was exactly what I needed –  fxfuture Feb 13 '13 at 0:09
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Don't use an (Array)List, use a Set:

Set<Integer> set = ...;
while (set.size() < myArr.length) {
  set.add(yourRandomNumber);
}
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Minor comment: the OP was asking for "unique 5-digit numbers", not "5 unique numbers". The number 5 there should be myArr.length. –  Graham Borland Feb 12 '13 at 11:27
    
fixed myArr.length –  nd. Feb 12 '13 at 12:12
    
Thanks nd. I'll give that a go –  fxfuture Feb 13 '13 at 0:09
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You can create a Set of the numbers. E.g.:

Set<Integer> intSet = new HashSet<Integer>();
while(intSet.size() < myArr.length) {
    intSet.add(getNextRandomInt());
}

Then yo can do anything with that Set.

So, if you need an array, just call:

Integer[] intArray = intSet.toArray(new Integer[myArr.length]);

or, if you need an ArrayList or int[] array:

// ArrayList:
List<Integer> ints = new ArrayList<Integer>();
ints.addAll(intSet);

// int[] array:
int[] intArray = new int[myArr.length];
for( int i = 0; i<intArray.length; ++i) {
    intArray[i] = int.get(i);
}
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Anything which involves looping until you find enough unique random numbers is never guaranteed to complete. It's possible, if extremely unlikely, that the random number generator will never output enough unique numbers in a reasonable amount of time.

(I know this will never happen in practice, but it's a theoretical possibility.)

A safe alternative is to choose one random number, and then increment it in a loop until you have enough numbers.

int n = new Random().nextInt(89999 - myArr.length) + 10000;
for (int i = 0; i < myArr.length; i++) {
    idArr.add(n++);
}
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