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Basically I am attempting to make a login. I understand a very small amount of php, but everytime I try to log in it works. So it is not following my if statement below. So I would like to see if anyone can help me print the $results as not a string. Everytime I echo it, it says error can not print as string. Which makes me think its an array, can someone help ? =(

<?php
include('include/dbConnection.php');

if (isset($_REQUEST['attempt']))
{
    //variables
    $user = $_POST['user'];
    $password = sha1($_POST['password']);

    //SQL statement
    $query = "SELECT COUNT(user) 
              FROM users
              WHERE user = '$user'
              AND password = '$password'";

    //Execute prepared MySQL statement
    $results = mysqli_query($dbc,$query) or die('Error querying database');
        /* Here is where I want to print $results

    if ($results = 1)
    {
        session_start();
        $_SESSION['$user'];
        header('location: home.php');
    }
    else
    {
        echo $results + 'Incorrect Username or Password';
    }

*/
    //Close dbConnect
    mysqli_close($dbc);
}

?>
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4 Answers 4

Use var_dump($output) or print_r($output) to display contents of an array.

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beyond the fact that there's no $output in the OP's question, it does not at all answer how to get the results of the query. –  Marc B Nov 19 '11 at 21:26
    
If the OP cannot figure out to replace $output with his/her own variable, then we have a bigger problem. –  djdy Nov 19 '11 at 21:41

You have to use this:

echo "<pre>";
print_r($results);
echo "</pre>";

It first echoes so that the print of the array is formatted properly. If you don't do this it will all be on one line.

Hope this helped! :D

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mysql_query() returns a statement result handle, NOT the data you've requested in the query. You first have to fetch a row of data to get access to the actual query data:

$result = mysqli_query(...);

$row = mysqli_fetch_row($result);
$count = $row[0];
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mysqli_query function returns false for unsuccessful queries. it returns a MySQLi_Result object for select or show queries and true for insert and update queries.

if your query fails for some reason your script will die because of or die statement and never returns false.

if ($results = 1) 

statement assigns 1 to your result variable. when your script runs, your code enters this if block. because you control the assignment statement whether it is done or not.

your query is a select, mysqli_query function returns MySQLi_Result object.

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But I want to check to see if username exists, by doing a select count(user) where user = '$user'. Which should be 1 or 0. thats why I put that if statement there –  MrDrewskii Nov 19 '11 at 23:52
    
select count(user) is also a select statement indeed. MySQLi_Result object must be returned from mysqli_query. you can control number of rows returned by the query instead of controlling true value by using if($result->num_rows >=1). –  erencan Nov 20 '11 at 17:23

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