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What I want to do is to select a value of the database,

Lets say:

id ---- giftid ---- userid
1         1           481
2         1           422
3         7           123
4         9           542
5         1           122
6         1           455

For example, there are 4 users that want to have the same giftid: 1, 2, 5, 6

It means that each one will have 25% to be chosen.

How can I make the "percent selection"?

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Percentages in MySQL –  AlecTMH Feb 3 '13 at 15:49
    
What do you mean "choose one of them by a percent"? Are you talking about returning a single row from multiple rows chosen by a given probability? –  Lightness Races in Orbit Feb 3 '13 at 15:54

2 Answers 2

Assuming every userid can only claim a giftid once, you can use the ORDER BY RAND() in MySQL. This will firstly select all the rows from table table where the giftid is 1 and then the results are ordered randomly. The LIMIT 1 ensures that only the first record is returned

SELECT * FROM table
WHERE giftid = `1`
ORDER BY RAND()
LIMIT 1
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But as I know, the ORDER BY RAND() just selecting random field of these 4. –  user1701227 Feb 3 '13 at 15:49
    
That is the same if you assign the 25% chance to get chosen if every user can only claim the giftid once. Of course if your problem gets more complicated, for instance a single user can have multiple rows and hence the user distribution is not uniform, than this solution will not provide a uniformly random distrubtion –  Pankrates Feb 3 '13 at 15:50

Are you looking this?

SELECT giftid, 1.0 / COUNT(*) percentSelection
FROM tableName
GROUP BY giftid
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