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Let's say I have:

USERS:
userid | name
1      | John
2      | Jack

HITS:
id | userid | time
1  | 1      | 50
2  | 1      | 51
3  | 2      | 52
4  | 1      | 53
5  | 2      | 54
6  | 2      | 55

I need to end up with a structure like this:

array() {
  [user 1] {
    hit 1 => 50
    hit 2 => 51
    hit 4 => 53
  }
  [user 2] {
    hit 3 => 52
    hit 5 => 54
    hit 6 => 55
  }
}

The worst possible way to do this is to:

  1. Select * users
  2. Select all hits for each users

Is there a way to get a result as one single query without going through each like this?

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Yes, it's a very simple join. I will like to see the code you have tried. –  Rikesh Feb 26 '13 at 9:42
    
I think I was unclear, that's why it was simple. I want to know how to end up with ONE USER, and each hit beneath that as part of one query. –  coderama Feb 26 '13 at 9:54

4 Answers 4

up vote 3 down vote accepted

Use Left Outer Join, Retrieve All records from left table(main) and other matching from right table.

select 
users.userid,  
h.time 
from  
users  
    left outer join hits h   
    on(  
      users.userid = h.userid
    )
share|improve this answer

Yes, you can use a JOIN for this.

SELECT * FROM users
INNER JOIN hits on users.id = hits.user_id

Your result would come through as a flat array but you can easily loop through and format your array accordingly.

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the sql statement you need is simply using INNER JOIN (or LEFT JOIN if ou want to return records even a certain user has no matching record on table hits)

SELECT  a.*, b.time
FROM    users a
        INNER JOIN hits b
            ON a.userid = b.userid

the result of the query is a single dimensional array so you need to format the result in the application level.

To further gain more knowledge about joins, kindly visit the link below:

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SELECT * FROM users
LEFT JOIN hits on users.id = hits.user_id
share|improve this answer
    
Mind adding a little text explanation to your code-only answer? –  alestanis Feb 26 '13 at 10:04

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