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I received the following error message when I tried to submit the content to my form. How may i fixed it?

Notice: Undefined index: filename in D:\wamp\www\update.php on line 4

example Update.php code:

<?php

$index = 1;
$filename = $_POST['filename'];

echo $filename;


?>

and $_POST['filename'] comes from another page:

<?php
$db = substr($string[0],14) . "_" . substr($string[1],14) . "_db.txt";
?>

<input type="hidden" name="filename" value="<?php echo $db; ?>">
share|improve this question
    
D:\wamp\www\update.php, Are you accessing page this way or it just a path to the file? Have you tried it on localhost? –  Jai Dec 31 '12 at 5:56
    
Notice: Undefined index: filename in D:\wamp\www\update.php on line 4, obviously he's accessing it through localhost or he wouldn't get that error. –  David Harris Dec 31 '12 at 5:59
1  
have u added method="post" in form? –  Arunu Dec 31 '12 at 6:00
    
We can't help you anymore OP, we will get no where just guessing. Please post the entire code. –  David Harris Dec 31 '12 at 6:01

5 Answers 5

up vote 6 down vote accepted

Assuming you only copy/pasted the relevant code and your form includes <form method="POST">


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

If _POST is not set the filename variable won't be either in the above example.

An alternative way:

$filename = false;
if(isset($_POST['filename'])){
    $filename = $_POST['filename'];
 } 
    echo $filename; //guarenteed to be set so isset not needed

In this example filename is set regardless of the situation with _POST. This should demonstrate the use of isset nicely.

More information here: http://php.net/manual/en/function.isset.php

share|improve this answer
2  
...... Why not just put echo $filename in the first isset?..... –  David Harris Dec 31 '12 at 5:51
1  
It depends at what stage of the script he wants to echo it, he can do that also if he wishes.. but then why assign it to $filename at all :P It was really just to demonstrate the use of isset –  Dave Dec 31 '12 at 5:52
    
Yeah, right.. Okay. –  David Harris Dec 31 '12 at 5:52
    
I personally would just do echo $_POST['filename']; –  Dave Dec 31 '12 at 5:54
    
You're missing the point though. It doesn't matter where you use isset(), it can always be the same as isset(GET FILENAME) and isset(filename) –  David Harris Dec 31 '12 at 5:55

Change $_POST to $_FILES and make sure your enctype is "multipart/form-data"

Edit: Nevermind, just read the rest of the post. Leave it to me to read things. Will provide real answer shortly.

EDIT 2: Okay.

Is your input field actually in a form?

<form method="POST" action="update.php">
    <input type="hidden" name="filename" value="test" />
</form>
share|improve this answer
1  
+1 for that form thing –  ravz Dec 31 '12 at 5:48
    
Yes, it's enclosed within the form field. I didn't include above, that's all. –  Ting Ping Dec 31 '12 at 5:51
    
@TingPing I dont find any other issues with your code. Is that your complete code –  ravz Dec 31 '12 at 5:53
1  
That's a very key thing to include in your post, Ting. What happens when you var_dump($_POST) ? –  David Harris Dec 31 '12 at 5:53
    
var_export($_REQUEST) with var_dump($_POST) could be checked. –  ravz Dec 31 '12 at 5:55
if(!empty($_POST['filename'])){
$filename = $_POST['filename'];

echo $filename;
}
share|improve this answer

Simply

if(isset($_POST['filename'])){
 $filename = $_POST['filename'];
 echo $filename;
}
else{
 echo "POST filename is not assigned";
}
share|improve this answer

use isset for this purpose

<?php

 $index = 1;
 if(isset($_POST['filename'])) {
     $filename = $_POST['filename'];
     echo $filename;
 }

?>

share|improve this answer

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