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I have this form list:

<form action="">
Inlognaam: <input type="text" name="inlognaam">
</form>

Now i want it that if you put there text in, the text will set into the database.

// Create connection
$con=mysqli_connect("localhost","root","","phpexpr");

// Check connection
if (mysqli_connect_errno())
{
echo "Failed to connect to MySQL: " . mysqli_connect_error();
 }

$inlognaam = $_POST['inlognaam']; 


if(isset($POST['inlognaam'])){
$filename = $_POST['inlognaam'];
}
if(isset($filename)){ 
echo $filename;
}
$sql = 'INSERT INTO gebruikers (inlognaam) VALUES('.$filename.')';
mysql_query($sql);
if (!mysql_query($sql,$con))
{
die('Error: ' . mysql_error());
}   
echo "1 record added";

mysql_close($con);
?>

I got this code, but i don't know what there is wrong and what schould be changed. Can somebody help me please? :)

share|improve this question

closed as unclear what you're asking by John Conde, tereško, andrewsi, bluefeet, Amal Murali Feb 28 '14 at 19:17

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

    
you tell us what's wrong. That's how it works here. –  John Conde Dec 7 '13 at 14:19
    
What error did you get? –  codingbiz Dec 7 '13 at 14:20
3  
You're opening your database connection with mysqli, but using mysql_query to query it. You can't mix calls like this. Change any calls to mysql_*() to use mysqli_*(). –  Hobo Sapiens Dec 7 '13 at 14:21
    
I got this errors Notice: Undefined index: inlognaam in C:\xampp\htdocs\php\index.php on line 56 Notice: Undefined variable: filename in C:\xampp\htdocs\php\index.php on line 65 Warning: mysql_query() expects parameter 2 to be resource, object given in C:\xampp\htdocs\php\index.php on line 67 Error: No database selected –  user2870245 Dec 7 '13 at 14:22
    
and PLEASE improve the sql injection problem in your code, by changing the sql to $sql = 'INSERT INTO gebruikers (inlognaam) VALUES('. mysql_real_escape_string($filename).')'; –  jamie0726 Dec 7 '13 at 14:26

5 Answers 5

There are several flaws with your code:

  • you don't specify a method, so your form will be sent with GET, whereas you use $_POST variables in your PHP code. Use

    <form action="" method="POST">
    
  • you are mixing mysql_* functions and mysqli_* functions. Don't use the former anymore, those are deprecated. Use either MySQLi or PDO (I prefer the latter). If you can't decide which, this article will help you. If you pick PDO, here is a good tutorial.

  • you're performing two queries here (resulting in two INSERTs):

    mysql_query($sql);
    if (!mysql_query($sql,$con))
    

    just catch the value of the first query (and use mysqli_query if you want to use MySQLi).

  • last but not least, due to your string concatanation of your query, you're open to SQL injection. Switch to prepared statements like this:

    $sql = 'INSERT INTO gebruikers (inlognaam) VALUES (?)';
    $stmt = $con->prepare($sql);
    $stmt->bind_param('s', $filename);
    $success = $_stmt->execute();
    
    if ($success) {
        …
    
share|improve this answer

Use the method name POST at the line <form action="" method="post"> and one thing you have mistake that use $_POST NOT $POST in the line

if(isset($POST['inlognaam'])){
$filename = $_POST['inlognaam'];
}
share|improve this answer

Here,

When you dont specify method attributes of form tag, then default it will use GET method to post data.

So set or use $_REQUEST to get data from html file which independant of form method.

share|improve this answer

The form maybe like this <form action="" method="POST"> try it

share|improve this answer

Can you give us an error if you're getting one? I see that you're using a MySQLI connection but you're putting everything in the database with just a MySQL query.

You need this code:

<form action="" method="POST">

  <?php

// Create connection
$con = mysqli_connect("localhost","root","","phpexpr");

// Check connection
if (mysqli_connect_errno())
{
echo "Failed to connect to MySQLI: " . mysqli_connect_error();
 }

$inlognaam = trim($_POST['inlognaam']); 


if(isset($_POST['inlognaam']))
{
$filename = trim($_POST['inlognaam']);
}
if(isset($filename))
{ 
echo $filename;
}

$sql = 'INSERT INTO gebruikers (inlognaam) VALUES('.$con->real_escape_string($filename).')';
$con->query($sql);

if (!mysqli_query($sql,$con))
{
die('Error: ' . mysqli_error());
}   
echo "1 record added";

mysqli_close($con);
?>

I've used OO side of MySQLI because I'm not used to produceral side of MySQLI, apoliges for that and the bad English from my side.

I also see that you didn't declared the action in your form, you need to use POST if you wont that user can post informatie that you can send to your DB.

share|improve this answer
    
I have used your codes, and now i get those erros. Notice: Undefined index: inlognaam in C:\xampp\htdocs\php\index.php on line 56 Notice: Undefined variable: mysqli in C:\xampp\htdocs\php\index.php on line 68 Fatal error: Call to a member function real_escape_string() on a non-object in C:\xampp\htdocs\php\index.php on line 68 –  user2870245 Dec 7 '13 at 14:30
    
I've changed my first post, my bad... –  RezaM Dec 7 '13 at 14:34
    
You perform the same query twice, resulting in another bug. –  Marcel Korpel Dec 7 '13 at 15:04

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