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i'm making a site with a user system and want to match users by their profile which have like 20 fields

i want that users can get a match with an other user when they are above 50% which is 10 fields of the 20 the same

i already got this:

    $query = "SELECT * FROM users WHERE username='test'";
    $result = mysqli_query($db_conx, $query);
    $array = mysqli_fetch_row($result);

    $query2 = "SELECT * FROM users WHERE username='test2'";
    $result2 = mysqli_query($db_conx, $query2);
    $array2 = mysqli_fetch_row($result2);

    $similar = array_intersect($array, $array2);
    $p2_perc = count($similar) / count($array2);

    echo round($p2_perc * 100) . "% equal";

i want that the users will automatically get that specific user displayed but i can fix that

anyone ?

thanks in advance appreciated very much!

the real question is like this

$query2 = "SELECT * FROM users LIMIT 1";
if ($query2 similarity > 50%)
echo "$user2";
share|improve this question

closed as unclear what you're asking by andrewsi, Unsigned, Jan Turoň, Adi Inbar, Jim Lewis Jan 11 at 23:30

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
where's the question? –  Thomas David Plat Jan 10 at 20:05
    
And what works/doesn't work? That seems like it could work..but its hard to see where it is failing –  Sam Jan 10 at 20:05
    
this code above works with showing the percentage of the similarity with both users but i want to make the query2 $query2 = "SELECT * FROM users"; so it will only select the users who are more then 50% similar –  Darren Jan 10 at 20:07
    
its depends to your users table's columns I think? –  Uğur Özpınar Jan 10 at 20:08
    
Can you clarify? Are you searching for any user who's "similar" to a particular user whose identity you know in advance? Or are you intending to scan through all pairs of users looking for the ones that match most closely> –  Ollie Jones Jan 10 at 20:18

1 Answer 1

up vote 1 down vote accepted

You can combine this into one query like this:

SELECT
    user1.username,
    user2.username,
    (
        (user1.row1=user2.row1) + 
        (user1.row2=user2.row2) +
        ...
    )/20 AS score
FROM
    users AS user1,
    users AS user2
WHERE
    user1.username <> user2.username
HAVING
    score > 0.5

This returns the two usernames and their score only it the score is greater than 0.5,

Explanation: The two columns get compared (each of the user1.rowX=user2.rowX). If they're the same, it's 1, else 0. The sum of the 0's and 1's gets divided by the number of questions (20) and this is the score (it's a simple calculation of the average).

But this might get quite slow if you check a lot of users. If you want to display the matches only for a given user (e.g. who is logged in currently) use:

SELECT
    user1.username,
    user2.username,
    (
        (user1.row1=user2.row1) + 
        (user1.row2=user2.row2) +
        ...
    )/20 AS score
FROM
    users AS user1,
    users AS user2
WHERE
    user1.username <> user2.username AND
    user1.username = 'CURRENTLY_LOGGED_IN_USER'
HAVING
    score > 0.5
share|improve this answer
    
Hello i think this will work can you help me with something tho ? i want to compare the users testing and derping with the rows equal1, equal2, equal3 & equal4 i'm pretty sleepy so if you could help me with that ? and what if i want to compare the CURRENTLY_LOGGED_IN_USER with all the users(*) and get the users who are 50% or more matched THANKS –  Darren Jan 10 at 21:08
    
My first query checks every user against every other. The second one checks the CURRENTLY_LOGGED_IN_USER against all others and returns the users with a score greater than 0.5 (50 percent). So the second query answers your second question. If you only want to check two users, add them in the WHERE clause. –  Reeno Jan 10 at 21:15
    
so it would look like something like this ? or is this incorrect? not workin $query = "SELECT test.username, baro.username, ( (test.option1=baro.option1) + (test.gender=baro.gender) + (test.state=baro.state) )/3 AS score FROM users AS test, users AS baro WHERE test.username <> baro.username AND test.username = '$log_username' HAVING score > 0.5"; $result = mysqli_query($db_conx, $query); $array = mysqli_fetch_row($result); echo $array; –  Darren Jan 10 at 21:41
    
Is there an error message? Or just nothing? Are there actually some results which should be displayed, or doesn't the current user have some matches? Delete the ´HAVING...´ to display every other user, regardless of the score. –  Reeno Jan 10 at 22:40
    
it displays nothing :s –  Darren Jan 11 at 11:01

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