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I would like to generate random identifier in java. The identifier should have a fixed size, and the probability of generating the same identifier twice should be very low(The system has about 500 000 users).In addition; the identifier should be so long that it’s unfeasible to “guess it” by a brute force attack.

My approach so far is something along the lines of this:

String alphabet = "0123456789ABCDE....and so on";
int lengthOfAlphabet = 42; 
long length = 12; 

public String generateIdentifier(){
    String identifier = "";
    Random random = new Random(); 
    for(int i = 0;i<length;i++){
        identifier+= alphabet.charAt(random.nextInt(lengthOfAlphabet));
    }
    return identifier; 
}

I’m enforcing the uniqueness by a constraint in the database. If I hit an identifier that already has been created, I’ll keep generating until I find one that’s not in use.

My assumption is that I can tweak lenghtOfAlpahbet and length to get the properties I’m looking for:

  1. Rare collisions
  2. Unfeasible to brute force
  3. The identifier should be as short as possible, as the users of the system will have to type it.

Is this a good approach? Does anyone have any thoughts on the value of “length”?

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13  
Before we begin: please specify what is wrong with UUID.randomUUID()? Is it peraphs too long? It could be transformed into something shorter, for example encoding in base 64. –  Marko Topolnik Oct 29 '12 at 14:30
    
true random numbers generated from quantum fluctuations of the vacuum 150.203.48.55/index.php –  NimChimpsky Oct 29 '12 at 14:31
    
@Marko: I guess the problem is requirement #3. There are easier-to-type random identifiers (but that might just be a formatting/parsing thing). –  Joachim Sauer Oct 29 '12 at 14:31
    
@JoachimSauer What do you think of my idea to start off with randomUUID and post-process it into something denser, like base-64 representation? –  Marko Topolnik Oct 29 '12 at 14:32
    
Not too bad, Marko. @letterboy: keep in mind that an alternative to very long random strings is to severely reduce the lifetime of that string and make do with shorter, but short-lived strings instead. For example instead of creating a huge, life-time-valid authentication token, generate a short (~6 character) token that is only valid once (and accepts at most 2 tries before it's invalidated). This way you can safe your users the pain of having to enter long strings and still get high security. –  Joachim Sauer Oct 29 '12 at 14:34

2 Answers 2

I would suggest keeping it simple, and use built in methods to represent normal pseudo-random integers encoded as Strings:

Random random = new Random(); 

/**
 * Generates random Strings of 1 to 6 characters. 0 to zik0zj
 */
public String generateShortIdentifier() {
    int number;
    while((number=random.nextInt())<0);
    return Integer.toString(number, Character.MAX_RADIX);
}

/**
 * Generates random Strings of 1 to 13 characters. 0 to 1y2p0ij32e8e7
 */
public String generateLongIdentifier() {
    long number;
    while((number=random.nextLong())<0);
    return Long.toString(number, Character.MAX_RADIX);
}

Character.MAX_RADIX is 36, which would equal an alphabet of all 0 to 9 and A to Z. In short, you would be converting the random integers to a number of base 36.

If you want, you can tweak the length you want, but in just 13 characters you can encode 2^63 numbers.

EDIT: Modified it to generate only 0 to 2^63, no negative numbers, but that's up to you.

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I think randomUUID is your friend. It is fixed width. http://docs.oracle.com/javase/1.5.0/docs/api/java/util/UUID.html#randomUUID()

If I remember my math correctly, since the UUID is 32 hex numbers (0-f) then the number of permutations are 16^32, which is a big number, and therefore pretty hard to guess.

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