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I'm trying to compose an SQL SELECT query with multiple search words. But I want the result be ordered by number of words matches.

For example, let the search string is "red green blue". I want the results which contains all these three words on top, after that the results, which contains two of them, and at the end - only one word matches.

SELECT
    *
FROM
    table
WHERE
    (col LIKE '%red%') OR
    (col LIKE '%green%') OR
    (col LIKE '%blue%')
ORDER BY
    ?????

Thanks in advance!

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MATCH() AGAINST() is not supported by InnoDB engine (which is mine). I have to use IF() + .... statement – Papa Joe Dec 10 '10 at 23:02
up vote 5 down vote accepted
ORDER BY
(
CASE 
WHEN  col LIKE '%red%' THEN 1
ELSE 0
END CASE
+     
CASE 
WHEN  col LIKE '%green%' THEN 1
ELSE 0 
END CASE
+    
CASE 
WHEN  col LIKE '%blue%' THEN 1
ELSE 0
END CASE
)  DESC

If your DB vendor has IF, you can use it instead of CASE (e.g., for Mysql you can write IF (col LIKE '%red% , 1,0) + IF(....'

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What platform are you using? if SQL Server, then it sounds like a Full Text Search archtecture would be your best fit.

http://msdn.microsoft.com/en-us/library/ms142583.aspx

share|improve this answer
    
I'm using MySQL – Papa Joe Dec 10 '10 at 16:02

If you are using MySQL: SQL Server Freetext match - how do I sort by relevance

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