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I'm working on a project where I store an id in a table, which is linked with a filename. Upon requesting the id, SQL returns the filename. Yeah, Redis would be best for this sort of thing, but I don't know how to get that working with PHP.

Anyhow, the following code returns an empty result:

    mysql_connect("localhost","USER","PASSWORD") or die("Unable to connect to SQL server");                                                                                                              
    mysql_select_db("DATABASE") or die("Unable to select the database");
    $scaped = mysql_real_escape_string($_GET["id"]);
    $res = mysql_query("SELECT fn from links WHERE id=$scaped");
    echo $res;


I know the key I'm using when requesting the page exists, but I get an empty result and no error. What's going on?

EDIT: I get:

Unknown column 'rytughguyig78iu786546789' in 'where clause'

Where the long string is my id. My where clause is as is. What's wrong there?

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add echo mysql_error(); before the mysql_close(); line. what happens? –  Taha Paksu Mar 25 '12 at 2:18
@tpaksu, still a whole lotta nothing –  tekknolagi Mar 25 '12 at 2:20
Wait. There is something. May just be stupidity. Hang on a sec. –  tekknolagi Mar 25 '12 at 2:20
@tpaksu see updated –  tekknolagi Mar 25 '12 at 2:23
type '$scaped' instead of $scaped –  Pedro Teran Mar 25 '12 at 2:24

3 Answers 3

up vote 3 down vote accepted

change your line

$res = mysql_query("SELECT fn from links WHERE id=$scaped");


$res = mysql_query("SELECT fn from links WHERE id='".$scaped."' limit 0,1");

and by printing out the record:

$result = mysql_fetch_row($res);
share|improve this answer
If you include the fetch_assoc bit, I'll accept, but it was a combination of two answers that fixed it. –  tekknolagi Mar 25 '12 at 2:25
That's not related to your error but anyway. I updated it. –  Taha Paksu Mar 25 '12 at 2:28


"SELECT fn from links WHERE id=$scaped"


"SELECT fn from links WHERE id='$scaped'"

share|improve this answer

mysql_result will return some sort of resultset object. so you need to: 1.) Check the resultset object has record 2.) fetch the result record from resultset 3.) print it.

sample like:

$res = mysql_query("SELECT fn from links WHERE id='$scaped'");
if( mysql_num_rows( $res ) >0){
    $record = mysql_fetch_assoc($res); //other options: mysql_fetch_object, mysql_fetch_row
    print $record['fn'];

links: mysql_num_rows, mysql_fetch_assoc, mysql_fetch_object, mysql_fetch_row

Answer updated after your error message: change $scaped to '$scaped' for string comparision

share|improve this answer
It would still be wrong this way because he needs id='$scaped' otherwise its still trying to compare id to another column –  legion Mar 25 '12 at 2:28
@legion: i admit $scaped should be encoded with single quote its data type of id is string, but since op didn't state about data of id, i assumed it as integer. –  KoolKabin Mar 25 '12 at 2:34

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