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i want to generate UUID but of only 8 characters, as UUID is generated of 32 characters.

Is it possible??

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Sure. But it's propably not as straightforward and shorter equals less likely to be actually unique. So why? – delnan Nov 24 '10 at 13:52
@delnan, to be used in embedded environment? – Allen Zhang Mar 13 '14 at 23:01

4 Answers 4

up vote 16 down vote accepted

It is not possible since a UUID is a 16-byte number per definition. But of course, you can generate 8-character long unique strings (see the other answers).

Also be careful with generating longer UUIDs and substring-ing them, since some parts of the ID may contain fixed bytes (e.g. this is the case with MAC, DCE and MD5 UUIDs).

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First: Even the unique IDs generated by java UUID.randomUUID or .net GUID are not 100% unique. Especialy UUID.randomUUID is "only" a 128 bit (secure) random value. So if you reduce it to 64 bit, 32 bit, 16 bit (or even 1 bit) then it becomes simply less unique.

So it is at least a risk based decisions, how long your uuid must be.

Second: I assume that when you talk about "only 8 characters" you mean a String of 8 normal printable characters.

If you want a unique string with length 8 printable characters you could use a base64 encoding. This means 6bit per char, so you get 48bit in total (possible not very unique - but maybe it is ok for you application)

So the way is simple: create a 6 byte random array

 SecureRandom rand;
 byte[] randomBytes = new byte[16];

And then transform it to a Base64 String, for example by org.apache.commons.codec.binary.Base64

BTW: it depends on your application if there is a better way to create "uuid" then by random. (If you create a the UUIDs only once per second, then it is a good idea to add a time stamp) (By the way: if you combine (xor) two random values, the result is always at least as random as the most random of the both).

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How about this one? Actually, this code returns 13 characters max, but it shorter than UUID.

import java.nio.ByteBuffer;
import java.util.UUID;

 * Generate short UUID (13 characters)
 * @return short UUID
public static String shortUUID() {
  UUID uuid = UUID.randomUUID();
  long l = ByteBuffer.wrap(uuid.toString().getBytes()).getLong();
  return Long.toString(l, Character.MAX_RADIX);
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You know that getLong() is only reading the first 8 bytes of the buffer. The UUID will have at least 36 bytes. Am I missing something because to me this would never work. – Edwin Dalorzo Oct 7 '14 at 1:40
The first 8 bytes is the most significant bits of UUID. according to this answer the less significant bits is more random. So Long.toString(uuid.getLessSignificantBits(), Character.MAX_RADIX) is better. – DouO Dec 10 '14 at 9:00

I do not think that it is possible but you have a good workaround.

  1. cut the end of your UUID using substring()
  2. use code new Random(System.currentTimeMillis()).nextInt(99999999); this will generate random ID up to 8 characters long.
  3. generate alphanumeric id:

    char[] chars = "abcdefghijklmnopqrstuvwxyzABSDEFGHIJKLMNOPQRSTUVWXYZ1234567890".toCharArray();
    Random r = new Random(System.currentTimeMillis());
    char[] id = new char[8];
    for (int i = 0;  i < 8;  i++) {
        id[i] = chars[r.nextInt(chars.length)];
    return new String(id);
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Unfortunately, all of these approaches are likely to give you repeats (i.e. non-unique Ids) sooner than you want. – Stephen C Nov 24 '10 at 15:44

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