Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Ok a little primer; I'm an expert PHP/JS/C developer but have never quite been able to get a comprehensive grasp on MySQL. It would be great if you could answer my question, but just as helpful if you could point me in the direction of good resources to learn about complex MySQL query do's and don'ts (mostly from an efficiency standpoint).

Objective

I need to find similarities/overlaps in a single table while still pulling the entire result set (to LEFT JOIN with the actual title/description content which is in another table).

The table is extremely simple; it contains 3 columns (page, user, time).

Essentially each query will have two users. I need to pull the count of all results matching User 1, the count of all results matching User 2, and ALL columns (plus LEFT JOIN) for overlap (where both User 1 and User 2 have a match in the table.

Sample Query

This query works, but it's extremely slow (to the point where it takes minutes to run) and I'm guessing inefficient due to the subqueries. If any SQL experts can point out a more efficient way to do this (and why) it would be MUCH appreciated.

SELECT DISTINCT `page`, 
    (SELECT COUNT(*) FROM `m_likes` WHERE `user` = "1") AS userLikes,
    (SELECT COUNT(*) FROM `m_likes` WHERE `user` = "2") AS friendLikes

    FROM `m_likes` LEFT JOIN `app_pages` AS page ON (page.id = `page`)

        WHERE `page` IN (SELECT `page` FROM `m_likes` WHERE `user` = "1") 
        AND `page` IN (SELECT `page` FROM `m_likes` WHERE `user` = "2")

        AND (`user` = "1" OR `user` = "2")

EXPLAIN Query Results

id  select_type table   type    possible_keys   key key_len ref rows    Extra
1   PRIMARY     m_likes index   NULL    page    604 NULL    35043   Using where; Using index; Using temporary
1   PRIMARY     page    eq_ref  PRIMARY PRIMARY 767 tablename.m_likes.page  1   
5   DEPENDENT SUBQUERY  m_likes unique_subquery page    page    604 func,const      1   Using index; Using where
4   DEPENDENT SUBQUERY  m_likes unique_subquery page    page    604 func,const      1   Using index; Using where
3   SUBQUERY    m_likes index   NULL    page    604 NULL    35043   Using where; Using index
2   SUBQUERY    m_likes index   NULL    page    604 NULL    35043   Using where; Using index

Table Schema

app_pages: id VARCHAR(255), name VARCHAR(255), category VARCHAR(255)

m_likes: page VARCHAR(255), user VARCHAR(255), time INT(20)

m_likes.page = app_pages.id

Also worth noting, unfortunately the User & Page IDs must be VARCHAR instead of INT, as there is no guarantee of this being run on a 64-bit system, and some of the ID values are larger than the max allowed on a 32-bit system... Hopefully that doesn't add a major performance hit.

Output Example

array (size=156)
  0 => 
    array (size=6)
      'page' => string '100861973286778' (length=15)
      'time' => string '1297383617' (length=10)
      'name' => string 'Leila' (length=5)
      'category' => string 'Book' (length=4)
      'userLikes' => string '104' (length=3)
      'friendLikes' => string '52' (length=2)
  1 => 
    array (size=6)
      'page' => string '10150160788195604' (length=17)
      'time' => string '1272653871' (length=10)
      'name' => string 'Frisbee Golfing' (length=15)
      'category' => string 'Interest' (length=8)
      'userLikes' => string '104' (length=3)
      'friendLikes' => string '52' (length=2)
share|improve this question
1  
Use EXPLAIN to better understand how MySQL executes your query –  Jocelyn Jul 22 '12 at 23:27
    
I already tried using EXPLAIN but frankly it wasn't that useful; The query executed exactly as I expected, but it doesn't give me any insights into how to BETTER design it which is what I'm hoping an SQL expert will. –  Julian Jul 22 '12 at 23:42
    
Can you post the results here? –  blockhead Jul 23 '12 at 0:01
    
@Julian, it would be easier for us to decipher your problem if you posted your table schema (columns in m_likes and app_pages) –  Zane Bien Jul 23 '12 at 0:06
    
EXPLAIN results posted in question; formatting issues in comments. Table Schema added. –  Julian Jul 23 '12 at 0:08

1 Answer 1

up vote 1 down vote accepted

The reason why your query is running so slow is because you're performing FOUR separate subqueries which actually end up executing for EACH row.

Instead, you can do a Cartesian product of a subselect to get total counts (only executes one time):

SELECT a.page, c.userLikes, c.friendLikes
FROM m_likes a
INNER JOIN app_pages b ON a.page = b.id
CROSS JOIN
(
    SELECT
        COUNT(CASE WHEN user = '1' THEN 1 END) AS userLikes,
        COUNT(CASE WHEN user = '2' THEN 1 END) AS friendLikes
    FROM m_likes
    WHERE user IN ('1','2')
) c
WHERE a.user IN ('1','2')
GROUP BY a.page
HAVING COUNT(1) = 2

This query will retrieve all pages that user 1 and 2 both liked, along with the total counts of their likes (which will be repeated in the result-set).

share|improve this answer
    
Tried this query, but it doesn't seem to work with the HAVING COUNT(1) = 2... I took that part out to test the rest and it appears fine, but it's selecting the entire results set (I'm guessing the HAVING statement is the part that actually breaks down the subset). Any idea what might be off there? edit After looking into the HAVING command it seems I just need to figure out the alias for the temporary column created by the CASE (which doesn't seem to be '1') –  Julian Jul 23 '12 at 1:09
    
@Julian, could you explain what's actually wrong with the result-set when you put in the HAVING clause? Does it generate an error? The HAVING clause here basically selects all pages that both user 1 and 2 liked. This is assuming the combination of the fields page -> user is unique (user can't like a page more than once). –  Zane Bien Jul 23 '12 at 1:14
    
@Julian Also, at this point, it would be VERY helpful if you posted some example data from both of your tables, and desired output. –  Zane Bien Jul 23 '12 at 1:14
    
When I add the HAVING clause it returns nothing--an empty response, but no SQL error. The actual user IDs are of course different than 1/2, but I tried every permutation of the COUNT(a) = b assuming user ID a/b. –  Julian Jul 23 '12 at 1:17
    
added the output example to original question –  Julian Jul 23 '12 at 1:19

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.