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Please give me sample code to generate UUID of long type in java without using timestamp.

Thanks

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A UUID represents a 128-bit value. That is not going to fit in a long. –  Thilo Dec 25 '10 at 8:22
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possible duplicate of Unique serial number in a java web application. –  marcog Dec 25 '10 at 8:40

3 Answers 3

up vote 8 down vote accepted

A real UUID is 128 bits. A long is 64 bits.

This is not just pedantry. UUID stands for Universal Unique IDentifier.

The "universal uniqueness" of the established UUID schemes are based on:

  • encoding an IP address and a timestamp,
  • encoding a DNS name and a timestamp, or
  • using a 122 bit random number ... which is large enough that the probability of a collision is very very small.

With 64 bits, there are simply not enough bits for "universal uniqueness". For instance, the birthday paradox means that if we had a number of computers generating random 64 bit numbers, the probability of a potentially detectable collision would be large enough to be of concern.

Now if you just want a UID (not a UUID), then any 64-bit sequence generator will do the job, provided that you take steps to guard against the sequence repeating. (If the sequence repeats, then the IDs are not unique in time; i.e. over time a given ID may denote different entities.)

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Have you looked at java.util.UUID?

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If you just want a simple unique long you can use AtomicLong.incrementAndGet(). This doesn't use a timestamp but does reset to 0 every time you start it and is not unique across JVMs.

What is the requirement not to use timestamps all about? UUID uses a timestamp. (amoungst other things)

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Some UUID types use timestamps, some use other means to get uniqueness. –  Stephen C Aug 10 '12 at 13:32
    
@StephenC Good point. I didn't realise there are 4 documented ways to generate a UUID. –  Peter Lawrey Aug 10 '12 at 14:32

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