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I created a members table on my database and entered the username row as user and the password row as password. Then I wrote a script that has to display the password and the username in a database. This is it:

<?PHP

$user_name = "root";
$password = "Hunter123";
$database = "adventure_of_dragons";
$server = "127.0.0.1";

$db_handle = mysql_connect($server, $user_name, $password);

$db_found = mysql_select_db($database, $db_handle);

if ($db_found) {
$SQL = "SELECT * FROM members";
$result = mysql_query($SQL);

while ( $db_field = mysql_fetch_assoc($result) ) {

$id = array($db_field['member_id']);  "<BR>";
$username = array($db_field['username']); "<BR>";
$password = array($db_field['password']);  "<BR>";
$rank = array($db_field['rank']);  "<BR>";

print_r($username);
print_r($password);
}

mysql_close($db_handle);

}

else {

print "Database NOT Found " . $db_handle;

}


?>

but when i run the code it displays this:

Array ( [0] => user ) Array ( [0] => password )

how do I make it display the text like this:

-User -Password

Please help.

share|improve this question
1  
Use the normal print function, and array key [0]. No wait, why are rewrapping them in an array() at all? –  mario Aug 2 '13 at 22:07
    
You don't because print_r was not made for that. print_r is merely a function to help you seeing thru variables, arrays and other objects like var_dump. –  Prix Aug 2 '13 at 22:10
    
do foreach-loop algo. –  Christian Mark Aug 9 '13 at 4:48

1 Answer 1

That's simple. Just don't make arrays of them in the first place, and use regular echo.

Other bugs in the code

print_r is a debug function (just like var_dump), it is not used for printing out data to user.

Also, this statement: "<BR>"; simply means nothing.
You must echo it for it to have any effect at all.

Another thing is that you've overwritten the DB connection variables in your fetching loop. It's better to use constants for this, like shown below.


Here's your code, fixed

<?php

define("DB_USERNAME", "root");
define("DB_PASSWORD", "Hunter123");
define("DB_DATABASE", "adventure_of_dragons");
define("DB_SERVER", "127.0.0.1");

$db_handle = mysql_connect(DB_SERVER, DB_USERNAME, DB_PASSWORD);

$db_found = mysql_select_db(DB_DATABASE, $db_handle);

if ($db_found || true) {

    $SQL = "SELECT * FROM members";
    $result = mysql_query($SQL) or die(mysql_error());

    while ( $row = mysql_fetch_assoc($result) ) {

        $id = $row['member_id'];
        $username = $row['username'];
        $password = $row['password'];
        $rank = $row['rank'];

        echo 'ID = ' . $id . '<br>';
        echo 'RANK = ' . $rank . '<br>';
        echo 'USERNAME = ' . $username . '<br>';
        echo 'PASSWORD = ' . $password . '<br><br>';
        // two <br>'s, so we get an empty line between users
    }

    mysql_close($db_handle);

} else {
    echo "Database NOT Found " . $db_handle;
}
share|improve this answer
    
I tried @mightypork's script but i got this error: Notice: Array to string conversion in E:\PortableApps\xampp-portable\htdocs\xampp\mysqlconnecter.php on line 23 Array Notice: Array to string conversion in E:\PortableApps\xampp-portable\htdocs\xampp\mysqlconnecter.php on line 24 Array –  FireRaven101 Aug 2 '13 at 22:15
    
idk what you did, but I forgot to remove two of the extra brackets. Try this new version. –  MightyPork Aug 2 '13 at 22:18
    
and what if i have more then one username or password? –  FireRaven101 Aug 2 '13 at 22:22
    
I found yet another bug in your code, the post is now updated. Removed a variable name clash. –  MightyPork Aug 2 '13 at 22:24
    
tried it and this is the output: '; echo 'RANK = ' . $rank . ' '; echo 'USERNAME = ' . $username . ' '; echo 'PASSWORD = ' . $password . ' '; } mysql_close($db_handle); } else { echo "Database NOT Found " . $db_handle; } –  FireRaven101 Aug 2 '13 at 22:30

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