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I am attempting to set up a basic log in system for a website but I am having major issues getting the query to operate correctly. So far everything I have tried to do to figure out what is going on has failed. As far as I can tell the query itself is not failing but it is not returning any data either. Using the query in phpMyAdmin results in the proper query information being returned.

Here is my php code:

<?PHP

//Empty error variables
$sqlerror;

if(empty($_POST['uname']))
{
    $data = "false,Username field empty";
    echo json_encode($data);
    return false;
}

if (empty($_POST['pword']))
{
    $data = "false,Password field empty";
    echo json_encode($data);
    return false;
}

$username = $_POST['uname'];
$password = $_POST['pword'];

echo $username."<br/>";

echo $password."<br/>";

if(!CheckDB())
{
    $data = "false,".$sqlerror;
    echo json_encode($data);
    return false;
}

else
{
    CheckDBL();
}

function CheckDB()
{
    echo "Made it to CheckDB! <br/>";
    $connection = mysqli_connect("xxxx","xxxx","xxxx","xxxx");

    if(mysqli_connect_errno())
    {   
        $sqlerror = "Could not log in to database";
        return false;
    }

    echo "Connection established! <br/>";
    mysqli_close($connection);
    return true;    
}

function CheckDBL($username,$password)
{
    echo "Made it to CheckDBL! <br/>";
    $sql =  mysqli_connect("xxxx","xxxx","xxxx","xxxx");

    if(mysqli_connect_errno())
    {
        echo "Connection failed";
        return false;
    }



if ($query = mysqli_prepare($sql,"Select Password From login_info Where Username = ?"))
    {
        mysqli_stmt_bind_param($query, "s", $username);

        if (!mysqli_stmt_execute($query))
        {
            echo "Query failed! <br/>"; 
            echo mysqli_error($sql);
            return false;
        }

        else
        {
            echo "Query successful <br/>";
        }

        mysqli_stmt_bind_result($query,$password2);
        mysqli_stmt_fetch($query);  

        echo "The password is: ".$password2;
    }

    else
    {
        echo "Statement preparation failed <br/>";
    }
}
?>

And the output in my browser from this code:

GWil

TestPassword

Made it to CheckDB!

Connection established!

Made it to CheckDBL!

Query successful

The password is:

share|improve this question
    
No where in your code, do i see you getting any query information. – Fallenreaper Jun 7 '14 at 15:27
    
And what dso u want it to print? The Output seems okay? – Xatenev Jun 7 '14 at 15:27
    
And what do you expect here? – u_mulder Jun 7 '14 at 15:31
    
@u_mulder I am attempting to retrieve a test password from the database table that the code connects to based on the username supplied in a form on the index.html page of the website. However my initial version of the code did not produce anything even though I know the code in question (not shown above in the OP, that is the frankencode that has risen from my attempt to get something to return from the database) to work. – Geowil Jun 7 '14 at 15:44
up vote 1 down vote accepted
$connect = mysqli_connect("localhost","root","","database") or die (mysqli_error($connect));
mysqli_set_charset($connect,"utf8");

$username="hej";

if ($query = mysqli_prepare($connect,"Select Password From login_info Where Username =?")){

mysqli_stmt_bind_param($query, "s", $username);

    if (!mysqli_stmt_execute($query)){

    echo "Query failed! <br/>"; 
    echo mysqli_error($query);
    return false;
    }else{
    echo "Query successful <br/>";
    }
mysqli_stmt_bind_result($query,$password2);<br/>
mysqli_stmt_fetch($query);<br/> echo "The password is: ".$password2;<br/>
}else{
echo "Statement preparation failed";}

in table login_info i have username=hej and password=123

this will achive what you are looking for.

share|improve this answer
    
Yeah, it is a mess due to all of the tinkering I have been trying to get it to output whatever data is being returned. As for your suggested code change, it produced no extra information on the php page. Same output as described in my OP. – Geowil Jun 7 '14 at 15:39
    
php.net/manual/en/mysqli.prepare.php read on here and you will find your answer you are looking for. you should really clean up your code, becouse right now it dosent make sense really and you have prepare and execute in your connecting part? – user3655857 Jun 7 '14 at 15:48
    
I have followed the suggestions from that documentation page and updated the code in my OP. Things still are not working right but it does seem like the statement is being prepared properly. – Geowil Jun 7 '14 at 16:12
    
This will slove your problem, i tested it and it works. i edited my orginal answer – user3655857 Jun 7 '14 at 16:35
    
replace my CheckDBL code with your suggestion. the '>' in the statement triggered a mysqli_error() line I had added to the last else in the function stating that there was a syntax error. Removed it but still have no password being retrieved. I am going to try the code on my own webhost because I now have the suspicion that my client's webhost has something improperly set up server side. – Geowil Jun 7 '14 at 16:51

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