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Any idea why i might be getting this error when submitting to a DB?

Unknown column 'id' in 'where clause' Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource in /home/somebody/public_html/sendmessage.php on line 41

while($success == FALSE) { 
$rand = rand(100000, 999999); 

$q = "SELECT * FROM $tablename WHERE id = '$rand'"; 
$r = mysql_query($q, $link);

echo mysql_error();


if(mysql_num_rows($r)) { **THIS IS LINE 41** 
    continue; 
} else { 
    $success = TRUE; 
} 
} 
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What does the table look like? –  J.Money Feb 5 '13 at 0:48
    
Please post the schema of the table. –  Matt Clark Feb 5 '13 at 0:57

3 Answers 3

Your table, whose name is stored in $tablename, does not have a column named id. This makes the query fail, and all following database functions will also fail.

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// insert your data here with $rand as the id $query = "INSERT into $tablename values ('$rand', '$youremail', '$name', '$receiveremail', '$message')"; –  Gezzamondo Feb 5 '13 at 0:50
    
This comment does not relate to my answer, and it does not contain the columns of the table. –  Sven Feb 5 '13 at 0:51
    
The columns are rand, youremail, name, receiveremail and message. rand is to store a randonly generated id and is getting submitted to the database but nothing else is for some reason –  Gezzamondo Feb 5 '13 at 0:54
    
If the column you care about is actually called rand, not id, then you have to refer to it that way. –  duskwuff Feb 5 '13 at 0:55
1  
Ok, then where is the column named "id"? It does not exist, and that's why you get the error message. –  Sven Feb 5 '13 at 0:56

That doesn't look too nice there,

first make sure you HAVE a column "id" in that table at all. and beware "id" is NOT "Id" nor "ID" nor "iD"! After being absolutely sure you HAVE that column, and still getting an error, try it with quatation marks:

$q = "SELECT * FROM ". $tablename ." WHERE 'id'='". $rand."'";
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ok im able to send the $rand to the database but the other 4 columns are receiving nothing, the variables are all the same here's the structure i50.tinypic.com/14jq3he.png can u see anything that needs changed? –  Gezzamondo Feb 5 '13 at 1:06
    
You SELECT FROM database, so the database doesn't "receive" anything but said request, and it'll return the matching (if any) result as an array, since rand should be a unique key it'll return exactly ONE row but since I cannot tell from the picture if it is set as unique it might be that you'll receive more than one row, so you should act accordingly. $r does not contain values, but a pointer to your request use mysql_fetch_array($r) to get the values –  itsid Feb 5 '13 at 12:10

Try something like this. Thanks

while($success == FALSE) { $rand = rand(100000, 999999);

$q = "SELECT * FROM ". $tablename ." WHERE id = '". $rand ."'"; 
$r = mysql_query($q, $link);
$num_rows = mysql_num_rows($r);

echo mysql_error();


if($num_rows > 0) { **THIS IS LINE 41** 
    continue; 
} else { 
    $success = TRUE; 
} 
} 

Cheers!

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