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I need to generate 10,000 unique identifiers in Java. The identifiers should be a mixture of numbers and letters and less than 10 characters each. Any ideas? Built in libraries would be an extra plus.

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6 Answers 6

up vote 6 down vote accepted
// class variable
final String lexicon = "ABCDEFGHIJKLMNOPQRSTUVWXYZ12345674890";

final java.util.Random rand = new java.util.Random();

// consider using a Map<String,Boolean> to say whether the identifier is being used or not 
final Set<String> identifiers = new HashSet<String>();

public String randomIdentifier() {
    StringBuilder builder = new StringBuilder();
    while(builder.toString().length() == 0) {
        int length = rand.nextInt(5)+5;
        for(int i = 0; i < length; i++)
            builder.append(lexicon.charAt(rand.nextInt(lexicon.length())));
        if(identifiers.contains(builder.toString()) 
            builder = new StringBuilder();
    }
    return builder.toString();
}
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Why aren't the class variable private? Do they really need to be package scope? –  Steve Kuo Feb 17 '11 at 7:15
3  
No, they really don't. The example above is for algorithmic purposes only. I would hope anyone who uses this would not copy and paste this, but instead would apply the concepts illustrated to their solution. –  corsiKa Feb 17 '11 at 7:19

Why not use java.util.UUID? It is guaranteed to generate unique identifiers, and it is as standard as it gets :-).

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You can try to take md5 hash of current time and you will get "random" identifier as mixture of numbers and letters

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And what happens when you do it twice in the same time interval (nanos and even millis don't update all that fast...) –  corsiKa Feb 17 '11 at 6:20
    
okey, get random and md5 from this random :) –  Sergey Vedernikov Feb 17 '11 at 6:20
    
or just iteration over 10000 numbers from random initial number –  Sergey Vedernikov Feb 17 '11 at 6:21
    
that's actually really neat. Probably does a bit more calculation than you need, but it would just be a couple lines of code. –  corsiKa Feb 17 '11 at 6:23
    
Random random = new Random(); for (int i=0; i<10000; i++) { System.out.println(Long.toHexString(random.nextLong())); } –  Vance Maverick Feb 17 '11 at 6:43

The easiest and fastest way is to generate permutations of a certain string. As long as the string is long enough, you can easily have 10,000 unique permutations. The good thing of generating permutation is that you don't have to worry about duplications. If a string contains all different characters, it can generate n! permutations (n is the length of the string). So a string with 8 different characters can generate 40,320 different permutations.

There are many code on-line to generate permutations of a string, such as this one http://introcs.cs.princeton.edu/23recursion/Permutations.java.html.

If you want them to be more random, you can use different strings as the seed, such as "abcde123", "efgh456", etc..

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You could try

Random rand = new Random();
Set<String> words = new HashSet<String>();
while(words.size() < 10000) 
    words.add(Long.toString(Math.abs(rand.nextLong() % 3656158440062976L), 36)));

The long constant is just enough for 10 digit, base 36 numbers.

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If you permit Apache Commons lang...

public String[] getRandomlyNames(final int characterLength, final int generateSize) {
    HashSet<String> list = new HashSet<String>();
    for (int i = 0; i < generateSize; ++i) {
        String name = null;
        do {
            name = org.apache.commons.lang.RandomStringUtils.randomAlphanumeric(
                    org.apache.commons.lang.math.RandomUtils.nextInt(characterLength - 1) + 1);
        while(list.contains(name));
        list.add(name);
    }
    return list.toArray(new String[]{});
}
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