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SELECT userid,SUBSTRING_INDEX(SUBSTRING_INDEX(data, '\"!', -1), '!\"', 1)+0 AS num 
FROM table
WHERE type=2
ORDER BY num DESC LIMIT 5

This picks up the number between !x! in a string and tries to return the number and order the rows by that number. It works fine.

However, I don't know how to return unique user ids.

Adding ORDER BY userid returns the rows without ordering by num:

SELECT userid,SUBSTRING_INDEX(SUBSTRING_INDEX(data, '\"!', -1), '!\"', 1)+0 AS num 
FROM table
WHERE type=2
GROUP BY userid
ORDER BY num DESC LIMIT 5

Distinct doesn't work either:

SELECT DISTINCT(userid),SUBSTRING_INDEX(SUBSTRING_INDEX(data, '\"!', -1), '!\"', 1)+0 AS num 
FROM table
WHERE type=2
ORDER BY num DESC LIMIT 5

I am out of ideas..

Example:

id    userid     data
1       56       !100!
2       22       !90!
3       56       !200!

Result should be:

userid      num
56          200
22          90
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Are there multiple possible results for each userid? If so, DISTINCT won't give you what you need. What is your criterion for choosing which of the multiple records should be returned for each userid? –  Michael Berkowski Jan 26 '12 at 16:30
    
There are multiple rows with the same userid, but no userid should be return twice. Unique userids with the highest num should be returned. –  domino Jan 26 '12 at 16:37
    
@Michael added example to my main post. –  domino Jan 26 '12 at 16:41

1 Answer 1

up vote 2 down vote accepted
SELECT userid,MAX(num) num FROM
(SELECT userid,SUBSTRING_INDEX(SUBSTRING_INDEX(data, '\"!', -1), '!\"', 1)+0 AS num  
FROM table 
WHERE type=2) A
GROUP BY userid;
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