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here is my code:

select column1, column2 from table1;

here is a preview of column1:

1.1 Specimen Mislabeled
1.9 QNS- Specimen Spilled in transit
1.3 QNS-Quantity Not Sufficient
1.6 Test Requisition Missing
1.11 Other - Validity only
1.11 Other-reject per practice
1.5 Patient Info. entered Incorrectly
1.11 Other-Validity
1.11 Other-validity only
1.11 Other-Reject per agency
1.11 Other - not our req
1.11 Other - Not ML requisition
1.11 Other - Defective POC cups?

i would like it to return only 1.11 Other when it sees anything like "*1.11 Other*"

another words i would like the result of the sql statement to be:

1.1 Specimen Mislabeled
1.9 QNS- Specimen Spilled in transit
1.3 QNS-Quantity Not Sufficient
1.6 Test Requisition Missing
1.11 Other
1.11 Other
1.5 Patient Info. entered Incorrectly
1.11 Other
1.11 Other
1.11 Other
1.11 Other
1.11 Other
1.11 Other

how do i do this?

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2 Answers

up vote 2 down vote accepted

Use a CASE Statement; i.e.

SELECT 
  CASE WHEN Column1 LIKE '%1.11 Other%' 
     THEN '1.11 Other' 
     ELSE Column1 END AS Column1,
  Column2
FROM
   table1
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can you show me how i would incorporate that into my sql statement –  Yuck Jun 30 '10 at 17:58
    
updated to have the full query. –  Jim B Jun 30 '10 at 18:00
1  
what's the error? –  Jim B Jun 30 '10 at 18:09
1  
Use your IIF statement all the way through your group by and having clauses –  Jim B Jun 30 '10 at 18:30
2  
You cannot use Case statements in ms-access SQL –  Remou Jun 30 '10 at 18:50
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select column1 from table1 where column1 like '1.11 Other*'

It might be % instead of * I get those mixed up between sql and access. But I think it is *. Though if this doesn't work try %. Basically you are using a wildcard for the end so match the beginning and anything starting at the wildcard.

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The function that you want to use is LIKE. That does a wildcard match where ever it sees the wildcard. If you want to do like you had in your comments then you would add a wildcard to the front of the string as well. –  spinon Jun 30 '10 at 17:52
    
This solution won't return any rows that don't start with '1.11 Other' –  Jim B Jun 30 '10 at 17:52
    
This solution won't return any rows that don't start with '1.11 Other' –  Yuck Jun 30 '10 at 17:56
    
I'm sorry I misread what they were looking for. You're right. What you said is right in your answer. –  spinon Jun 30 '10 at 17:57
    
+1 for offering to help –  Yuck Jun 30 '10 at 18:52
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