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This blog explains, that the output of sys_guid() is not random for every system:

http://feuerthoughts.blogspot.de/2006/02/watch-out-for-sequential-oracle-guids.html

Unfortunately I have to use such a system.

How to ensure to get a random UUID? Is it possible with sys_guid()? If not how to reliably get a random UUID on Oracle?

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5 Answers

Here's a complete example, based on @Pablo Santa Cruz's answer and the code you posted.

I'm not sure why you got an error message. It's probably an issue with SQL Developer. Everything works fine when you run it in SQL*Plus, and add a function:

SQL> create or replace and compile
  2  java source named "RandomUUID"
  3  as
  4  public class RandomUUID
  5  {
  6     public static String create()
  7     {
  8             return java.util.UUID.randomUUID().toString();
  9     }
 10  }
 11  /

Java created.

SQL> CREATE OR REPLACE FUNCTION RandomUUID
  2  RETURN VARCHAR2
  3  AS LANGUAGE JAVA
  4  NAME 'RandomUUID.create() return java.lang.String';
  5  /

Function created.

SQL> select randomUUID() from dual;

RANDOMUUID()
--------------------------------------------------------------
4d3c8bdd-5379-4aeb-bc56-fcb01eb7cc33

But I would stick with SYS_GUID if possible. Look at ID 1371805.1 on My Oracle Support - this bug is supposedly fixed in 11.2.0.3.

EDIT

Which one is faster depends on how the functions are used.

It looks like the Java version is slightly faster when used in SQL. However, if you're going to use this function in a PL/SQL context, the PL/SQL function is about twice as fast. (Probably because it avoids overhead of switching between engines.)

Here's a quick example:

--Create simple table
create table test1(a number);
insert into test1 select level from dual connect by level <= 100000;
commit;

--SQL Context: Java function is slightly faster
--
--PL/SQL: 2.979, 2.979, 2.964 seconds
--Java: 2.48, 2.465, 2.481 seconds
select count(*)
from test1
--where to_char(a) > random_uuid() --PL/SQL
where to_char(a) > RandomUUID() --Java
;

--PL/SQL Context: PL/SQL function is about twice as fast
--
--PL/SQL: 0.234, 0.218, 0.234
--Java: 0.52, 0.515, 0.53
declare
    v_test1 raw(30);
    v_test2 varchar2(36);
begin
    for i in 1 .. 10000 loop
        --v_test1 := random_uuid; --PL/SQL
        v_test2 := RandomUUID; --Java
    end loop;
end;
/
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How to find out if calling the Java function is faster than using Oracles dbms_crypto package I used in my work around? –  ceving Dec 25 '12 at 10:06
    
The UIDs on my Solaris system are predictable and this is not allowed for the application. –  ceving Dec 25 '12 at 10:16
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You can write a Java procedure and compile it and run it inside Oracle. In that procedure, you can use:

UUID uuid = UUID.randomUUID();
return uuid.toString();

To generate desired value.

Here's a link on how to compile java procedures in Oracle.

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Is there an example anywhere available? –  ceving Dec 19 '12 at 11:39
    
Yes, take a look at the link I've just posted. Oracle's database has a Java Virtual Machine on its context to run this kind of java code on its context without the need of running an external program. –  Pablo Santa Cruz Dec 19 '12 at 11:40
    
Does not work. As soon as I try to use UUID my Oracle refuses to compile it: pastebin.com/kL4jB2KX –  ceving Dec 19 '12 at 12:24
    
I asked how to use java.util.UUID in PL/SQL at Oracle but till now there is no answer: forums.oracle.com/forums/… –  ceving Dec 19 '12 at 16:16
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up vote 3 down vote accepted

I use this now as a workaround:

create or replace function random_uuid return RAW is
  v_uuid RAW(16);
begin
  v_uuid := sys.dbms_crypto.randombytes(16);
  return (utl_raw.overlay(utl_raw.bit_or(utl_raw.bit_and(utl_raw.substr(v_uuid, 7, 1), '0F'), '40'), v_uuid, 7));
end random_uuid;

The function requires dbms_crypto and utl_raw. Both require an execute grant.

grant execute on sys.dbms_crypto to uuid_user;
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http://stackoverflow.com/a/10899320/1194307

The following function use sys_guid() and transform it into uuid format:

create or replace function random_uuid return VARCHAR2 is
  v_uuid VARCHAR2(40);
begin
  select regexp_replace(rawtohex(sys_guid()), '([A-F0-9]{8})([A-F0-9]{4})([A-F0-9]{4})([A-F0-9]{4})([A-F0-9]{12})', '\1-\2-\3-\4-\5') into v_uuid from dual;
  return v_uuid;
end random_uuid;

It do not need create dbms_crypto package and grant it.

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Thanks but regexp_replace sounds quite expensive. UUID generation needs to be very fast. –  ceving Nov 6 '13 at 9:11
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Use an oracle sequence. They don't repeat.

select s.nextval uuid from dual
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1  
I need random UUIDs, because they are not predictable. A sequence is the exact opposite of what I need and exactly what Oracle does using the sys_guid function on my system. –  ceving Jan 4 '13 at 17:18
    
@EvilTeach The question was how to generate random UUID's not how to get a sequence of numbers. (I suggest deleting your answer) –  Jacob Jan 22 at 0:13
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