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I hope the title makes sense, if not I will try to clarify it here. Firstly, like a lot of the code I deal with, I inherited this or simply oversee it and have not been given the OK to re-write using mysqli so please spare the "You're doing it wrong now posts". Thanks in advance.

table_1 has a layout like this

+----+-----------+------------+
| id | from_name | from_email |
+----+-----------+------------+
| 1  |   John    | john@a.com |
| 2  |   Juan    | juan@a.com |
| 3  |   Mark    | mark@a.com |
| 4  |   John    | john@a.com |
+----+-----------+------------+

And I query it like THIS to get the results I need.

<?php

    $q = "SELECT `id` FROM `table_1` WHERE `from_email` = 'john@a.com'";
    $r = mysql_query($q) or die(mysql_error()); // mysql_error is removed in production
    $ids = mysql_fetch_assoc($r);

 ?>

Now when I iterate through this and print the ids to the screen I get the expected results,

1
4

Now I need to take these IDs and use them in a WHERE clause in Table_2 that holds size information so I can calculate the total size of all messages. Table_2 looks like this.

+----+---------+------------+
| id | table_1 |    size    |
+----+---------+------------+
| 1  |    1    |   44023    |
| 2  |    2    |     372    |
| 3  |    3    |   13243    |
| 4  |    4    |  423115    |
+----+---------+------------+

Based on my desired solution I should be able to construct a while or foreach loop that would get the sizes and let me add them correct? I've tried the following:

<?php

    $total_size = 0;
    while($ids = mysql_fetch_assoc($r)){
         $q2 = "SELECT `size` FROM `table_2` WHERE `table_1` = '".$ids['id']."'";
         $r2 = mysql_query($q2) or die mysql_error()); // removed in production
         $add = mysql_fetch_assoc($r2);

         $total_size = $total_size + $add['size'];
    }

 ?>

But when I go to echo $total_size I see nothing, not even 0 on the screen and there's no errors thrown by MySQL. If I had designed this table originally all of this data would be in the same table but since I did not, I have no choice but to "make it work". From the looks of it, it should work.

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closed as too localized by Jocelyn, GBD, casperOne Oct 26 '12 at 17:14

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remove the extra double-quote after SELECT. –  Jocelyn Oct 26 '12 at 16:23
    
Sorry, that was a typo while I was trying to format everything for the post. I have removed it. –  rsmith84 Oct 26 '12 at 16:25
    
Why don't you use a query that joins both table and computes the expected result set? I don't think PHP is necessary for the computation here. –  Jocelyn Oct 26 '12 at 16:32
    
In one query, you could be doing the easy subquery way: SELECT size FROM table_2 WHERE table_1 IN (SELECT id FROM table_1 WHERE email = 'john@a.com') or the join method which may be faster: SELECT size FROM table_2 INNER JOIN table_1 ON table_2.table_1 = table_1.id WHERE table1.email = 'john@a.com' –  Michael Berkowski Oct 26 '12 at 16:32
    
You then only require one fetch loop. Actually you can even do an aggregate COUNT() in one query and skip almost all the PHP. SELECT SUM(size) FROM table_2 INNER JOIN table_1.... –  Michael Berkowski Oct 26 '12 at 16:35

1 Answer 1

@Michael Berkowski - thanks for your INNER JOIN and SUM() SELECT statement. Works perfectly.

"In one query, you could be doing the easy subquery way: SELECT size FROM table_2 WHERE table_1 IN (SELECT id FROM table_1 WHERE email = 'john@a.com') or the join method which may be faster: SELECT size FROM table_2 INNER JOIN table_1 ON table_2.table_1 = table_1.id WHERE table1.email = 'john@a.com'" – Michael Berkowski

"You then only require one fetch loop. Actually you can even do an aggregate COUNT() in one query and skip almost all the PHP. SELECT SUM(size) FROM table_2 INNER JOIN table_1...." – Michael Berkowski

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