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I have a table in Oracle where one of the column contains UserIds which are in the form of \. For eg "fin\george", "sales\andy" etc. How can I use REGEXP_SUBSTR function to get only the from the UserIds. ie I want to fetch only "george", "andy" etc. I have achieved the desired reult using SUBSTR function but I want to use REGEXP_SUBSTR in this case.

I tried doing this:

SELECT REGEXP_SUBSTR('fin\george','\[^\]+,') "UserName" FROM DUAL;

but it did'nt help. Can anyone please point out my mistake ?

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4 Answers 4

up vote 3 down vote accepted

I believe you want to use a regexp_replace with a backreference. I'm assuming that all the characters before and after the \ are alphabetic. If you allow numbers, you'd want to use the [[:alnum:]] rather than [[:alpha::].

  1* SELECT REGEXP_replace('fin\george',
                           '([[:alpha:]]+\\)([[:alpha:]]+)$', 
                           '\2') "UserName" 
       FROM DUAL
SQL> /

UserNa
------
george
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You have to use escaping: \\ instead of \

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Doing that would give this output: "\george" –  Luftwaffe Jun 21 '12 at 15:47
select regexp_replace( 'fin\george', '.*\\', null ) from dual;

returns george

The regex will match any character followed by the \ (which is escaped), as many times as possible (greedy)
So it will match everything up to the final \
Then the matching string is replaced with null.

Null is the default so

select regexp_replace('fin\george', '.*\\' ) from dual;
does the same thing

Same expression can extract filename from the end of pathname eg

select regexp_replace ('fin\fin2\fin3\fin4\george', '.*\\' ) from dual;

will also return george
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SQL> SELECT REGEXP_SUBSTR('fin\george', '[^\]+', 1, 2) AS userId from dual;

USERID
------
george

See this Oracle Base article

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Stack Overflow was removing \ because it is an escape character. You can highlight your code and click {} to mark something up as code. –  Ben Sep 22 '13 at 16:19

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