Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to convert an long update script, to a procedure that loops through an array and changes when nececary

OLD Script:

create or replace PROCEDURE Location_Name_Routine is

BEGIN
    DELETE
        FROM Location
        WHERE Name LIKE '%[^0-9a-zA-Z"]%';
  update Location
      set Name = nls_initcap(Name, 'NLS_SORT=xDutch');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' En',' en');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' Van',' van');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' De',' de');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' Den',' den');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' Over',' over');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' Aan',' aan');   
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,' Bij',' bij');
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name,'''S', '''s');
END;
/

Must become something like:

set serveroutput on;
DECLARE
   type array_t is varray(7) of varchar2(10);
   array array_t := array_t(' De', ' Van', ' Den',' Over', ' Aan', ' Bij','''S' );
begin
   for i in 1..array.count loop
    UPDATE Location
        SET  Name = REGEXP_REPLACE(Name, array_t , lower(array_t));
    end loop;
end;

In some way it just don't work, no matter what i try. So if somebody has some sugestions, please just tell them and i will try them right away.

share|improve this question
    
Is the array fixed in size, and those strings constant? If so, I'd replace all that with a single UPDATE statement - it'll do far less work and be much faster. –  Jeffrey Kemp Jun 14 '14 at 13:00

1 Answer 1

up vote 1 down vote accepted

This is too long for a comment. Your statement:

DELETE
    FROM Location
    WHERE Name LIKE '%[^0-9a-zA-Z"]%';

Has at least two problems. The first is that you are using SQL Server conventions for the like pattern, instead of Oracle conventions. You should replace this with a regular expression:

DELETE FROM LOCATION
    WHERE NOT REGEXP_LIKE(Name, '[^0-9A-Za-z'']');

Then, I don't work with arrays much in PL/SQL, but I think you need an index:

UPDATE Location
    SET  Name = REGEXP_REPLACE(Name, array_t(i), lower(array_t(i)));
end loop;
share|improve this answer
    
Thankyou for your fast respone, Oracle is complains that: PL/SQL: ORA-00904: "ARRAY_T": invalid identifier So i've changed it to 'Array" and it's working now (:. But what do you mean with the regular expression? –  Isene112 Jun 14 '14 at 10:49
    
Thankyou, I've got another question about that,mabye you can help me? the apostrophe (') is a character that is ALLOWED in the collumn so can't be deleted. –  Isene112 Jun 14 '14 at 11:04
    
You represent an apostrophe in a string by doubling it up. –  Gordon Linoff Jun 14 '14 at 11:07
    
Oracle doesn't support regular expressions in a LIKE comparison. As @GordonLinoff said, you need to use DELETE FROM LOCATION WHERE NOT REGEXP_LIKE(Name, '[^0-9A-Za-z'']') in order to compare using a regular expression. Share and enjoy. –  Bob Jarvis Jun 14 '14 at 12:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.