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I'm trying to run the following query against an Oracle DB, but the query is returning 0 records:

select * from TABLE 
where upper(FIELD) like '%SEE COMMENT%'

I know this field contains many records with 'See Comment" in it. For example, here is one of the records:

=if(and(Robust_Mean>=20,Robust_Mean<=70),.03*(Robust_Mean+29),
if(Robust_Mean>70,.083*(Robust_Mean^.9),"See Comment"))

I am guessing that the quotation marks in the field are messing the query up, but im not sure how to get around it. Any suggestions?

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The string you provided as an example of a record -- is that the text contained in the field you are searching, or is it part of the SQL that generates that record? Does the field actually contain "See Comment" including the double quotes? –  Andy Jul 8 '10 at 17:39
    
yeah, thats the exact text contained in the field. The field actually contains "See Comment" with the double quotes. –  Randy Jul 8 '10 at 17:53
    
Looks like an Excel cell formula ;) –  onedaywhen Jul 8 '10 at 19:16

2 Answers 2

This works for me:

create table testLike (aCol varchar2(500) );

INSERT INTO TESTLIKE VALUES('abc');
insert into testLike values('=if(and(Robust_Mean>=20,Robust_Mean<=70),.03*(Robust_Mean+29),
if(Robust_Mean>70,.083*(Robust_Mean^.9),"See Comment"))');


SELECT * 
  FROM TESTLIKE TL 
 WHERE upper(tl.acol) like '%SEE COMMENT%';

can you recreate?

edit: in your query try this:

select * from TABLE 
WHERE UPPER(FIELD) = '=if(and(Robust_Mean>=20,Robust_Mean<=70),.03*(Robust_Mean+29),
if(Robust_Mean>70,.083*(Robust_Mean^.9),"See Comment"))';

see if that comes up with any results

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yup, that worked for me too.... now i'm really confused. –  Randy Jul 8 '10 at 17:51

Just realized there were two similarly named fields in this table, and I was choosing the wrong one.

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1  
You should mark your answer as the Accepted Answer so others who see the question will waste their time going through it trying to find an answer. –  Cyberherbalist Jul 8 '10 at 17:59

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