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Possible Duplicate:
Call to a member function query() on a non-object in query()?

I am getting the

Fatal error: Call to a member function query() on a non-object Error when trying to get row count from an Account table in my database. Here is the code:

$link = mysqli_connect("localhost", "Username", "Password", "Database");    
        if ($result = $mysqli->query($link, "SELECT * FROM Accounts WHERE Username=" . $_POST['EmailTbx'] . " AND Password=" . $_POST['PasswordTbx'] . "")){
            $field_cnt = $result->field_count;
            echo $field_cnt;
            $result->close();
        }
        $mysqli->close();

marked as duplicate by Pekka 웃, Shoe, Shiplu Mokaddim, hakre, Kate Gregory Jan 28 '13 at 19:59

This question was marked as an exact duplicate of an existing question.

  • There is a lot wrong with this code - you mustn't inject POST variables directly into the query string, and you need to do proper error checking after running a query. Out of curiosity, may I ask where you got this from? Is it a specific tutorial on the web? Because we get these types of questions many times a day, and they all make the same mistakes. I'm thinking they all have to come from a source.... – Pekka 웃 Jan 28 '13 at 18:58
  • Why would you think that using $mysqli would be correct? – Ignacio Vazquez-Abrams Jan 28 '13 at 18:59
  • I tried it using $mysqli and still got the error. – n_starnes Jan 28 '13 at 19:00
  • $mysqli is not defined. Use the object style connection and assign it to $mysqli – datasage Jan 28 '13 at 19:01
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It looks like you got your variables mixed up. Try the following (does not prevent injection):

$link = mysqli_connect("localhost", "Username", "Password", "Database");    
        if ($result = $link->query("SELECT * FROM Accounts WHERE Username='{$_POST['EmailTbx']}' AND Password='{$_POST['PasswordTbx']}'")){
            $field_cnt = $result->field_count;
            echo $field_cnt;
            $result->close();
        }
        $mysqli->close();

Try the following with escaping:

$link = mysqli_connect("localhost", "Username", "Password", "Database");
$email = mysqli_real_escape_string($link, $_POST['EmailTbx']);
$pass = mysqli_real_escape_string($link, $_POST['PasswordTbx']);
        if ($result = $link->query("SELECT * FROM Accounts WHERE Username='{$email}' AND Password='{$pass}'")){
            $field_cnt = $result->field_count;
            echo $field_cnt;
            $result->close();
        }
        $mysqli->close();
  • This did it. Thanks man! I'll accept your answer when it lets me. – n_starnes Jan 28 '13 at 19:05
  • 3
    -MAX_INT for not plugging the sql injection problem. – Marc B Jan 28 '13 at 19:09
  • var_dump(-PHP_INT_MAX) is int(-9223372036854775807) – Shiplu Mokaddim Jan 28 '13 at 19:19
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Your MySQLi object is $link here. Not $mysqli. So either use

$link->query()

or

mysqli_query($link, ...)

This is the procudural version

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