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I was trying to write a statement which uses the WHERE LIKE '%text%' clause, but I am not receiving results when I try to use a parameter for the text. For example, this works:

SELECT Employee WHERE LastName LIKE '%ning%'

This would return users Flenning, Manning, Ningle, etc. But this statement would not:

DECLARE @LastName varchar(max)
SET @LastName = 'ning'
SELECT Employee WHERE LastName LIKE '%@LastName%'

No results found. Any suggestions? Thanks in advance.

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2 Answers 2

up vote 34 down vote accepted

It should be:

...
WHERE LastName LIKE '%' + @LastName + '%';

Instead of:

...
WHERE LastName LIKE '%@LastName%'
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thanks for the earlier tip on the question. But it wasn't though. Anyway in the quest of a high performing answer - is this useful or not? :) –  bonCodigo Jan 9 '13 at 18:37
    
@bonCodigo I don't know really, performance and optimization is not my area. Furthermore, these functions are vendor specific, in your case it depends on how the Oracle RDBMS evaluate them, and I don't know Oracle. Sorry. –  Mahmoud Gamal Jan 10 '13 at 7:07
1  
This didn't work for me. The % needs to be in the addParameter section. See James Curran answer here stackoverflow.com/questions/251276/… –  bendecko Sep 12 '14 at 11:56

The correct answer is, that, because the '%'-sign is part of your search expression, it should be part of your VALUE, so whereever you SET @LastName (be it from a programming language or from TSQL) you should set it to '%' + [userinput] + '%'

or, in your example:

DECLARE @LastName varchar(max) SET @LastName = 'ning' SET @LastName = '%' + @LastName + '%' SELECT Employee WHERE LastName LIKE @LastName

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