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$query = mysql_query("SELECT * FROM news WHERE id = '{$_GET['id']}'"); $news = mysql_fetch_assoc($query);

$sql84 = mysql_query("SELECT username FROM users WHERE id = '".$news['user_id']."'") or exit(mysql_error()); $author = mysql_fetch_array($sql84);

is there i better way of doing this? a join maybe? how that look

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2 Answers 2

up vote 1 down vote accepted

It seems like you want something like this:

(Edited to add error checking)

$q = "select username from news, users where news.user_id=users.id and news.id=".$_GET['id'].");";
$query = mysql_query($q) or die(mysql_error());

Ben

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Looks good but it looks like you forgot an "s" on user.id should be users.id. –  Brian Fisher Jan 12 '09 at 8:55
    
Oops! Well spotted. Thanks! Have fixed it now. –  Ben Jan 12 '09 at 9:00
    
i get this :/ Warning: mysql_fetch_assoc(): supplied argument is not a valid MySQL result resource in c/krukow/news.php on line 5 $query = mysql_query("SELECT username from news, users WHERE news.user_id = user.id and news.id = ".$_GET['newsID'].");"); $news = mysql_fetch_assoc($query); –  Vitek Jan 12 '09 at 9:06
    
Hmmm... Not sure why. I've added error checking into the example above. You might also want to check that $_GET['id]' really contains what you expect it to contain, and perhaps try it with a hard-coded value for news.id. –  Ben Jan 12 '09 at 9:12
    
this outputs $query = mysql_query("SELECT * FROM news, users WHERE news.user_id = users.id AND news.id = ".$_GET['newsID'].""); $news = mysql_fetch_assoc($query); everything but the row "text" with is the news...it is text in it so i dont understand –  Vitek Jan 12 '09 at 9:28
$query = mysql_query("SELECT n.*, u.* FROM news n LEFT JOIN users u ON u.id=n.user_id WHERE n.id = ".intval($_GET['id']));

Please don't forget to use intval() if value assumed is numeric.

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