Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I am trying to relearn some PHP basics for making a simple login script, however I get an error I have not received before(I made the same script a little over a year ago and never had this error. I simplified the code as much as I could to test to see which area was problematic and here is the issue:

<?php
$user = $_POST["username"];
if($user != null)
{
    echo $user;
    echo " is your username";
}
else
{
    echo "no username supplied";
}
?>

Now this code works fine when I send a variable to the script, but when no variable is supplied it spits out an error. In theory this will be fine because if no username/pass is supplied then an error is expected. I will be checking to make sure of this before the code is send to the script, however I fear that somehow a blank string may leak through and spit out some unknown error. Here is the error I get:

( ! ) Notice: Undefined index: username in C:\wamp\www\verify_login.php on line 2

Call Stack

    Time    Memory  Function    Location
1   0.0003  668576  {main}( )   ..\verify_login.php:0

no username supplied

as you can see the code registers that no variable was supplied, but it gives out and error that I assume means that a variable was not found were one was expected or something like that. Can someone please clarify this for me?

share|improve this question
    
post your code for the form. It looks like _POST[username] is not set – Paul Dessert May 30 '12 at 4:22
    
Possible duplicate of PHP: "Notice: Undefined variable" and "Notice: Undefined index" – Jason C Dec 23 '15 at 21:44
up vote 17 down vote accepted

In PHP, a variable or array element which has never been set is different from one whose value is null; attempting to access an unset value is a runtime error.

That's what you're running into: the array $_POST does not have any element with the index "username". So the interpreter aborts your program before it ever gets to the null test.

Fortunately, you can test for the existence of a variable or array element without actually trying to access it; that's what the special operator isset does:

if (isset($_POST["username"]))
{
  $user = $_POST["username"];
  echo $user;
  echo " is your username";
} 
else 
{
  $user = null;
  echo "no username supplied";
}

This looks like it will blow up in exactly the same way as your code, when PHP tries to get the value of $_POST["username"] to pass as an argument to the function isset(). However, isset() is not really a function at all, but special syntax recognized directly by the PHP interpreter, which can check for the existence of the value without actually trying to retrieve it.

It's also worth mentioning that as runtime errors go, a missing array index is considered a minor one (assigned the E_NOTICE level). If you change the error_reporting level so that notices are ignored, your original code will actually work as written, with the attempted array access returning null. But that's considered bad practice, especially for production code.

share|improve this answer
3  
Thank you. Very thorough but simple answer as to why I get this error and how to solve it. I didn't just want a "How to fix/get rid of this error" answer, I wanted to understand it and that is what you did for me, Thank you. – Xander Luciano Jun 3 '12 at 5:19
    
@ViperCode your $_POST["username"] variable wasn't set – Bender Jan 6 at 2:01

Use:

if (isset($_POST['user'])) {
   //do something
}

But you probably should be using some more proper validation. Try a simple regex or a rock-solid implementation from Zend Framework or Symfony.

http://framework.zend.com/manual/en/zend.validate.introduction.html

http://symfony.com/doc/current/book/validation.html

Or even the built-in filter extension:

http://php.net/manual/en/function.filter-var.php

Never trust user input, be smart. Don't trust anything. Always make sure what you receive is really what you expect. If it should be a number, make SURE it's a number.

Much improved code:

$user = filter_var($_POST['user'], FILTER_SANITIZE_STRING);
$isValid = filter_var($user, FILTER_VALIDATE_REGEXP, array('options' => array('regexp' => "/^[a-zA-Z0-9]+$/")));

if ($isValid) {
    // do something
}

Sanitization and validation.

share|improve this answer
    
alternatively, you can use array_key_exists($_POST,'user') – mpen May 30 '12 at 4:30
    
I like what you said about making sure. This is basically going to be a login script and I plan to use mysql_real_escape(); I believe is what it is called. usernames will be any combination of things and passwords should be MD5 only, hashed in the program before sent to the script. Also I should note that this is validation for a game, not for a site. – Xander Luciano Jun 3 '12 at 5:16
    
Never, EVER, use mysql_real_escape(). Learn about Prepared Statements and start using PDO. php.net/manual/pdo.prepared-statements.php – vinnylinux Jun 4 '12 at 18:24

Your code assumes the existence of something:

$user = $_POST["username"];

PHP is letting you know that there is no "username" in the $_POST array. In this instance, you would be safer checking to see if the value isset() before attempting to access it:

if ( isset( $_POST["username"] ) ) {
    /* ... proceed ... */
}

Alternatively, you could hi-jack the || operator to assign a default:

$user = $_POST["username"] || "visitor" ;

As long as the user's name isn't a falsy value, you can consider this method pretty reliable. A much safer route to default-assignment would be to use the ternary operator:

$user = isset( $_POST["username"] ) ? $_POST["username"] : "visitor" ;
share|improve this answer

When you say:

$user = $_POST["username"];

You're asking the PHP interpreter to assign $user the value of the $_POST array that has a key (or index) of username. If it doesn't exist, PHP throws a fit.

Use isset($_POST['user']) to check for the existence of that variable:

if (isset($_POST['user'])) {
  $user = $_POST["username"];
  ...
share|improve this answer
    
Thank you, just like mark reed explained it. – Xander Luciano Jun 3 '12 at 5:16

try

if(isset($_POST['username']))
    echo $_POST['username']." is your username";
else
    echo "no username supplied";
share|improve this answer
1  
Thank you. I just hadn't run into this error before and now i understand it. – Xander Luciano Jun 3 '12 at 5:17

Instead of isset() you can use something shorter getting errors muted, it is @$_POST['field']. Then, if the field is not set, you'll get no error printed on a page.

share|improve this answer

Try this:

I use this everywhere where there is a $_POST request.

$username=isset($_POST['username']) ? $_POST['username'] : "";

This is just a short hand boolean, if isset it will set it to $_POST['username'], if not then it will set it to an empty string.

Usage example:

if($username===""){ echo "Field is blank" } else { echo "Success" };
share|improve this answer

Related question: What is the best way to access unknown array elements without generating PHP notice?

Using the answer from the question above, you can safely get a value from $_POST without generating PHP notice if the key does not exists.

echo _arr($_POST, 'username', 'no username supplied');  
// will print $_POST['username'] or 'no username supplied'
share|improve this answer
    
This is wrong in so many levels... – vinnylinux May 30 '12 at 4:28
    
Downvoters & @vinnylinux: Why is it wrong? – flowfree May 30 '12 at 4:29
    
Probably because it wont doesn't produce the output the OP wants [username] is your username (I'm not the one who downvoted, if that matters, so reason may be different)? – tigrang May 30 '12 at 4:32
    
@tigrang what? wrong because not produce the same string? btw, the OP actually asking about how to avoid PHP notice if the key doesn't exist not "how to echo this string". – flowfree May 30 '12 at 4:38
    
I told you, I don't know - I wasn't one of the downvoters. After reading the OP's question, he wants to check if its set, not really output, OP wants to check if its set or not, so maybe revise your answer to if (_arr($_POST, 'username', false)) { // do something } You may want to wait and see what the real reason for downvote is. – tigrang May 30 '12 at 4:43

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.