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I got an error whenever I run this php code on my local web server:

<?php
@ require_once ('C:\wamp\www\Connections\koneksi.php');
session_start();
if (!isset($_SESSION['id']))
{
    header("Location:index.php");
}
$sql = "SELECT * FROM pasien WHERE noreg = 1122312131";
$query = mysql_query($sql) or die(mysql_error());
$data2 = mysql_fetch_array($query);

?>

            <form id="form1" name="form1" method="post" action="#">
          <table width="804" border="0" id="inputdata" style="border-collapse:collapse">
            <tr>
              <th width="8" rowspan="3" bgcolor="#CCCCCC" scope="row">&nbsp;</th>
              <th width="104" height="50" bgcolor="#CCCCCC" scope="row"><div align="right">Kode Pasien</div></th>
              <td width="250" bgcolor="#CCCCCC"><label for="nama"></label>
                <label for="noreg"></label>
                <div align="left">
                <input name="noreg" type="text" id="noreg" size="15" maxlength="13">
                <input type="submit" name="view" id="view"  value="View">       <?php
                @ include_once ('database.php');
                $view = $_POST['view'];
                $noreg = $_POST['noreg'];
                if($view){
                    $_POST[$noreg];
                }
                ?>

This is the error:

( ! ) Notice: Undefined index: view in C:\wamp\www\somygms\a.php on line 139

and

( ! ) Notice: Undefined index: noreg in C:\wamp\www\somygms\a.php on line 140

Thanks for any help, will be appreciated.

-admin

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2 Answers 2

You are initializing those two variables with the array item does not exists.

$view = $_POST['view'];
$noreg = $_POST['noreg'];

Clearly shows that the view and noreg are not coming from the POST method. You should check to confirm this. Use var_dump($_POST); to see the posted data.

When you are coding, you should make sure that the code you are writing will execute on all cases as much as possible. In your case, initialize the variables before or use isset to check and initialize again.

$view = isset($_POST['view']) ? $_POST['view'] : '';
$noreg = isset($_POST['noreg']) ? $_POST['noreg'] : '';

Now that it is being pointed out.... The page by default will have *no POST variables *, so you have filter such cases out

if(isset($_POST) && count($_POST)) {
    @ include_once ('database.php');
    $view = $_POST['view'];
    $noreg = $_POST['noreg'];
    if($view){
        $_POST[$noreg];
    }
}
share|improve this answer
    
Nothing is POSTed if you GET it directly. –  Ignacio Vazquez-Abrams Apr 25 '12 at 4:32
    
@IgnacioVazquez-Abrams, I am not sure If i understand –  Starx Apr 25 '12 at 4:33
    
The asker is "run[ning] [the] php code", which means they're probably just navigating to it or entering the address in the location bar, which results in a GET request. Hence, an empty $_POST. –  Ignacio Vazquez-Abrams Apr 25 '12 at 4:35
    
@IgnacioVazquez-Abrams, Oh Got it... update in the answer... Thanks –  Starx Apr 25 '12 at 4:38

Its because of you accessing a key in $_POST that doesnt exist. Try the following:

$view = (isset($_POST['view']) ) ? $_POST['view'] : '';
$noreg = (isset($_POST['noreg']) ) ? $_POST['noreg'] : '';
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