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I have a list of 200 +words in a column. I want to replace anything which comes after those words.

Eg: E Graham St       DDS  ==> E Graham St
    Trent Ave      4DF ===> Trent Ave

Examples of words are AVE, ST .... I am thinking of passing that string to a function and inside the function will have regexp replace.

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Is this actual string: "E Graham St DDS ==> E Graham St"? –  Art Mar 19 '13 at 16:56
    
No the string is only the first part before '===>' E Graham St DDS –  Raj A Mar 19 '13 at 17:05

1 Answer 1

up vote 3 down vote accepted

you can use something like:

SQL> select regexp_replace(str, '^((.*? ave[ \.])|(.*? st[ \.])|(.*? rd[ \.])|(.*? close[ \.])).*$', '\1', 1, 1, 'i')
  2   from (select 'E Graham St       DDS' str from dual
  3         union all select 'Trent Ave      4DF' from dual
  4         union all select 'Foo bar Rd. asd' from dual
  5         union all select 'E Graham St St DDS' from dual);

REGEXP_REPLACE(STR,'^((.*?AVE[\.])|(.*?ST[\.])|(.*?RD[\.])|(.*?CLOSE[\.])).*$','
--------------------------------------------------------------------------------
E Graham St
Trent Ave
Foo bar Rd.
E Graham St
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Thanks a lot...great...appreciate your prompt reply... –  Raj A Mar 19 '13 at 16:50
    
And what about W Mohave St DDS ? :-) –  Egor Skriptunoff Mar 19 '13 at 17:16
    
@EgorSkriptunoff ah yeah. added a space to deal with partial words getting picked up –  DazzaL Mar 19 '13 at 17:25
    
And what if Rd. terminated by point, not by space? –  Egor Skriptunoff Mar 19 '13 at 17:40
    
I need to address the following situation also 'E Graham St St DDS' –  Raj A Mar 19 '13 at 20:44

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