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So I'm trying to fetch data in a many-to-many relationship.

So far I have this, which finds the user:

$user = $_SESSION['user'];
$userID = mysql_query("SELECT * FROM users WHERE user='$user'") or die(mysql_error());

And I know that to echo this information I have to put it in an array like so:

while ($r = mysql_fetch_array($userID)) {
echo $r["0"];
}

This works fine, but when I try to find this variable in another table, I'm not sure what to use as the variable:

$projects = mysql_query("SELECT projects_ID FROM projects_users WHERE users_ID='???'") or die(mysql_error());

I've tried replacing ??? with $userID and $r, but to no avail. I know the code works because it's fine when I put a user ID in manually - where have I gone wrong?

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Your sql query is vulnerable to SQL Injection. See this: segfaultlabs.com/files/pdf/php-session-security.pdf –  technology Jun 4 '11 at 11:33

5 Answers 5

up vote 1 down vote accepted

You can get your projects with one query:

$user = mysql_real_escape_string($_SESSION['user']);

$query = mysql_query("SELECT pu.projects_ID FROM users u 
           INNER JOIN projects_users pu ON (pu.users_ID = u.users_id)    
           WHERE u.user='$user'") or die(mysql_error());

$result = mysql_query($query) or die(mysql_error());

while ($row = mysql_fetch_assoc($result)) {
  echo $row['projects_ID'];
}
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I your case, you'd need to place $r[0] there.

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Untested, but this should work:

$user = mysql_real_escape_string($_SESSION['user']);
$query = mysql_query("SELECT * FROM users WHERE user='$user'") or die(mysql_error());

$result = mysql_fetch_array($query);
$userID = $result[0];

$projects = mysql_query("SELECT projects_ID FROM projects_users 
  WHERE users_ID='$userID'") or die(mysql_error());
share|improve this answer
    
edited your answer to fix the SQL-injection hole. –  Johan Jun 4 '11 at 12:55
    
-1, $project = mysql_query doesn't work! –  Johan Jun 4 '11 at 13:01
$user = $_SESSION['user'];
$query = mysql_query("SELECT * FROM users WHERE user='".mysql_real_escape_string($user)."' LIMIT 1") or die(mysql_error()); //--note the LIMIT

$result = mysql_fetch_array($query);
$userID = $result[0];

$projects = mysql_query("SELECT projects_ID FROM projects_users WHERE users_ID='$userID'") or die(mysql_error());
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I think this code is helpful for beginners when you want to get data in array form

we use mysqli instead of mysql to protecting your data from SQL injection.

Before use this code check the database connection first

<?php $tableName='abc';

$qry="select * from $tableName";

$results=mysqli_query($qry);

while($records=mysqli_fetch_array($results))

{
$firstrecord=$records[1];

$secondrecord=$records[2];

}

?>
share|improve this answer
    
mysql_query is deprecated, please don't encorage usage of deprecated functions. use for example mysqli. –  alex alex Aug 21 '13 at 13:08

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