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I am trying to run the code and it seems to be given me wrong result, I tried many ways and still not getting it. Here it is:

//compares vid num to db been result
$id = mysql_real_escape_string(@$_GET['g']);
$vid = mysql_real_escape_string(@$_GET['v']);
$sql= mysql_query("SELECT videos.* FROM videos WHERE videos.email = 
                 (SELECT email FROM page WHERE page.user_id = '$id') 
                  AND videos.videoid = '$vid'");

if (mysql_num_rows($sql) == 0) { echo "none";} else echo "it exists";

If I run the query in phpmyadmin it runs correct, but when run in PHP the result is offfff, it keeps echoing it exists even when phpmyadmin returns 0 which is correct. I have been trying to figure this out and keeps getting nothing. I have tried !isset($sql) oppositely the something.

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1  
You're not checking that mysql_query returns a valid "result". –  Mark Elliot Jul 8 '11 at 2:57
1  
Where is $id variable defined? It seems that your subquery does not return any result. Also use mysql_error function to get the latest error message. –  Emre Yazıcı Jul 8 '11 at 2:57
    
it is defined, see code –  user621799 Jul 8 '11 at 4:10

2 Answers 2

this works, thank you guys for your help

$vid = mysql_real_escape_string(@$_GET['kjvid']); 
$id = mysql_real_escape_string(@$_GET['pid']); 
$kjvid = mysql_query("SELECT videos.*, page.email FROM videos LEFT JOIN page ON page.email = videos.email WHERE page.user_id = '$id' AND videos.videoid = '$vid'");
if (mysql_num_rows($kjvid) == 0) { echo "none";} else echo "it exists";
share|improve this answer
if ( $sql ) // valid result
{
    if ( mysql_num_rows( $sql ) > 0 ) // more than 0 records
        echo "it exists";
    else
        echo "none";
}

If the above code still gives you a problem, then something in your mysql query is causing a result to be found.

share|improve this answer
    
i tried that, same problem. But why would it query properly in phpmyadmin. –  user621799 Jul 8 '11 at 4:13
    
this works, thank you guys for your help $vid = mysql_real_escape_string(@$_GET['kjvid']); $id = mysql_real_escape_string(@$_GET['pid']); $kjvid = mysql_query("SELECT videos.*, page.email FROM videos LEFT JOIN page ON page.email = videos.email WHERE page.user_id = '$id' AND videos.videoid = '$vid'"); if (mysql_num_rows($kjvid) == 0) { echo "none";} else echo "it exists"; –  user621799 Jul 8 '11 at 4:37

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