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$activeQuery = mysql_query("SELECT count(`status`) AS `active` FROM `assignments` WHERE `user` = $user_id AND `status` = 0");
$active = mysql_fetch_assoc($activeQuery);

$failedQuery = mysql_query("SELECT count(`status`) AS `failed` FROM `assignments` WHERE `user` = $user_id AND `status` = 1");
$failed = mysql_fetch_assoc($failedQuery);

$completedQuery = mysql_query("SELECT count(`status`) AS `completed` FROM `assignments` WHERE `user` = $user_id AND `status` = 2");
$completed = mysql_fetch_assoc($completedQuery);

There has to be a better way to do that, right? I don't know how much I need to elaborate as you can see what I'm trying to do, but is there any way to do all of that in one query? I need to be able to output the active, failed, and completed assignments, preferably in one query.

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(reference) –  Gordon Apr 22 '10 at 16:39
I'm not taking any user input, though. –  Andrew Apr 22 '10 at 16:42
Depends on how you're getting $user_id. It's not coming straight from a cookie, is it? –  Tom Apr 22 '10 at 16:49
$user_id is the ID that's associated with the row in the users table that matches up with their username/pass that they use to log in. I use mysql_real_escape_string() on the username and pass, and all other user input. –  Andrew Apr 22 '10 at 19:09

6 Answers 6

up vote 10 down vote accepted

You can try something like this query

SELECT Status , COUNT(*) StatusCount 
FROM assignments
WHERE Status IN (0, 1, 2)
AND User = $user_id 
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don't forget $user_id –  kenwarner Apr 22 '10 at 16:41
+1 This is better than my solution in that it selects only the 3 statuses you stated in your question. I had assumed there were only the 3. –  hookedonwinter Apr 22 '10 at 16:43
That worked great. No idea how, but it did. >.> –  Andrew Apr 22 '10 at 16:52

Try this

$activeQuery = SELECT status, count(status) as "status count" FROM `assignments` WHERE `user` = $user_id GROUP BY `status`

edit: added group by

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Instead of doing them individually you could use the following single SQL statement

SELECT count(*), `status` 
FROM `assignments` 
WHERE `user` = $user_id
  AND `status` in (0,1,2)
GROUP BY `status`
ORDER BY `status`

The loop around the result set to extract the results.

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(SELECT COUNT(*) FROM `assignments` WHERE `user` = $user_id AND `status` = 0) AS active,
(SELECT COUNT(*) FROM `assignments` WHERE `user` = $user_id AND `status` = 1) AS failed,
(SELECT COUNT(*) FROM `assignments` WHERE `user` = $user_id AND `status` = 2) AS completed,
FROM `assignments`
GROUP BY active, failed, completed

Haven't checked the markup, but this is near or near enough.

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Use the GROUP BY to get it in one query, but on separate rows.

$query = mysql_query("SELECT `status`, count(*) AS `num` FROM `assignments` WHERE `user` = $user_id AND `status` in (0,1,2) GROUP BY `status` ORDER BY `status` ASC");
$active_count = 0;
$failed_count = 0;
$completed_count = 0;
while ($array = mysql_fetch_assoc($query))
    if ($array['status'] == 0)
        $active_count = $array['num'];
    else if ($array['status'] == 1)
        $failed_count = $array['num'];
    else if ($array['status'] == 2)
        $completed_count = $array['num'];
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This doesn't work. For example, if there are no status = 1 records, the failed_count will get the status = 2 value and the completed_count (depending on error_report setting) either be null or cause an error since $completed_array returned from mysql_fetch_assoc will be a boolean false, not an array. –  jmucchiello Apr 22 '10 at 16:54
Good point - that's what I get for answering in a hurry. How about this new version? –  Dathan Apr 22 '10 at 17:14

When I have the option, I'm in the habit of using prepared statement(s) to help protect against sql-injection protection and for efficiency (requires using mysqli).

But if this is not an option, then

  CASE `status`
      WHEN 0 THEN `active`
      WHEN 1 THEN `failed`
      WHEN 2 THEN `completed`
      ELSE `unknown`
    AS `statuslabel`,
    AS `statuscount`
FROM `assignments` 
WHERE `user` = $escaped_user_id
GROUP BY `statuslabel`
ORDER BY `statuslabel`

Note the use of the $escaped_user_id, which would be created beforehand:

$escaped_user_id = mysql_real_escape_string($user_id);
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