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I am running a PHP script, and keep getting errors like:

Undefined variable: user_location in C:\wamp\www\mypath\index.php on line 12

Line 12 looks like this:

$greeting = "Hello, ".$user_name." from ".$user_location;

What do they mean?

Why do they appear all of a sudden? I used to use this script for years and there never was a problem.

What do I need to do to fix them?

Is there a quick fix?

This is a General Reference question for people to link to as duplicate, instead of having to explain the issue over and over again. I feel this is necessary because most real-world answers on this issue are very specific.

Related Meta discussion:

share|improve this question
    
@John Pekka wants to create a reference for a common question asked on SO. I doesn't matter what is where. (Just to answer your question in this case the code line he provided would be line 12.) –  Alin Purcaru Nov 23 '10 at 21:38
    
@mario I thought it best to condense the title to the pure error message to improve its chances to be found. Good point about the tag, I created it –  Pekka 웃 Nov 23 '10 at 22:00
1  
I am still not convinced I like the idea of reference questions where answers are supposed to be given. Mods could probably simply merge the duplicates into a single question. I won't closevote on this one, but please ask a mod to transfer ownership of the question completely. I did that for my Operator Reference as well and the question is no longer in my possession now (as you can verify on my profile), which means I do not gain reputation, nor badges for it (unlike with just a CW). –  Gordon Dec 10 '10 at 12:04
    
possible duplicate of Reference - What does this error mean in PHP? –  meagar Oct 8 '13 at 15:25
    
it's just a notice to ensure that you use it right and it's not a misspell or something... –  Amir Surnay Oct 30 '13 at 7:12

11 Answers 11

up vote 181 down vote accepted

From the vast wisdom of the PHP Manual:

Relying on the default value of an uninitialized variable is problematic in the case of including one file into another which uses the same variable name. It is also a major security risk with register_globals turned on. E_NOTICE level error is issued in case of working with uninitialized variables, however not in the case of appending elements to the uninitialized array. isset() language construct can be used to detect if a variable has been already initialized.

Some explanations:

Although PHP does not require variable declaration, it does recommend it in order to avoid some security vulnerabilities or bugs where one would forget to give a value to a variable that he will use later in the script. What PHP does in the case of undeclared variables is issue a very low level error, E_NOTICE, one that is not even reported by default, but the Manual advises to allow during development.

Ways to deal with the issue:

  1. Recommended: Declare your variables. Or use isset() to check if they are declared before referencing them, as in: $value = isset($_POST['value']) ? $_POST['value'] : '';.

  2. Set a custom error handler for E_NOTICE and redirect the messages away from the standard output (maybe to a log file). set_error_handler('myHandlerForMinorErrors', E_NOTICE | E_STRICT).

  3. Disable E_NOTICE from reporting. A quick way to exclude just E_NOTICE is error_reporting( error_reporting() & ~E_NOTICE ).

  4. Suppress the error with the @ operator.

Note: It's strongly recommended to implement just point 1.

Related:

share|improve this answer
    
Just out of interest, why is point 4 after suppressing all notices? I use it in cases of views where I only need the variable if it's set and it is fine to be blank when I don't need it. Is that really bad practice? Of course I try to use isset() where possible but there are scenarios where code just looks messy with it. For example if you want to append a string to a dynamic form action url only in certain cases but want to reuse the dynamic view containing the form code. –  twistedpixel Aug 2 '13 at 0:11
    
@dieselpower44 A couple of thoughts: The "shut-up operator" (@) has some performance issues. Also, since it suppresses all errors within a particular scope, using it without care might mask messages you wish you'd seen. –  IMSoP Oct 24 '13 at 20:00
1  
Hiding the issues is NOT the way to deal with issues. Items #2...#4 can be used only on production servers, not in general. –  Salman A Sep 13 at 8:09
    
Is it possible to shut-up the message inline (not in handler) when also a custom error handler is used? $var = @$_GET['nonexisting']; still causes notice.. –  Alph.Dev Oct 11 at 14:14

Try these

Q1: this notice means $varname is not defined at current scope of the script.

Q2: Use of isset(), empty() conditions before using any suspicious variable works well.

// recommended solution
$user_name = $_SESSION['user_name'];
if (empty($user_name)) $user_name = '';

OR 

// just define at the top of the script index.php
$user_name = ''; 
$user_name = $_SESSION['user_name'];

OR 

$user_name = $_SESSION['user_name'];
if (!isset($user_name)) $user_name = '';

QUICK Solution:

// not the best solution, but works
// in your php setting use, it helps hiding site wide notices
error_reporting(E_ALL ^ E_NOTICE);
share|improve this answer
    
empty() does it for me. –  Ace Mark Oct 14 '12 at 3:03
    
If using E_NOTICE from the php.ini configuration file, do error_reporting = (E_ALL & ~E_NOTICE) –  ahmd0 Oct 4 at 5:39

A (often discouraged) alternative is the error suppression operator @. It is a specific language construct to shut down undesired notices and warnings, but should be used with care.

First, it incurs a microperformance penalty over using isset. That's not measurable in real world applications, but should be considered in data heavy iterations. Secondly it might obstruct debugging, but at the same time suppressed errors are in fact passed on to custom error handlers (unlike isset decorated expressions).

share|improve this answer
1  
If you are curious what is the performance impact, this article summarises it well, derickrethans.nl/…. –  Gajus Kuizinas Feb 11 at 12:24
    
@GajusKuizinas There have been quoite a few changes since 2009, in particular php.net/ChangeLog-5.php#5.4.0 changes the outcome drastically (see "Zend Engine, performance" and "(silence) operator"). –  mario Feb 11 at 12:37
    
Thanks @mario, interesting. Now, if someone was good enough to benchmark the two... 3v4l.org/CYVOn/perf#tabs 3v4l.org/FLp3D/perf#tabs According to this test, seem to be identical (notice that scale changes). –  Gajus Kuizinas Feb 11 at 16:30
    
I tested with PHP 5.4 and the performance still bad. –  Brynner Ferreira Oct 3 at 17:43
    
@BrynnerFerreira Doesn't sound like you actually knew what a profiler is. –  mario Oct 3 at 20:25

Generally because of "bad programming", and a possibility for mistakes now or later.

  1. If it's a mistake, make a proper assignment to the variable first: $varname=0;
  2. If it really is only defined sometimes, test for it: if (isset($varname)) .... before using it
  3. If it's because you spelled it wrong, just correct that
  4. Maybe even turn of the warnings in you PHP-settings
share|improve this answer
1  
Please don't turn warnings off. In stricter languages, they often mean "there might be a bug, you better check this line twice" - in a language as permissive as PHP, they often means "this code is crap and propably riddled with bugs; I'll try to make some sense of it but you better fix this ASAP". –  delnan Nov 23 '10 at 21:37
2  
Although I agree with the first three points, #4 is simply wrong. Hiding a problem won't make it go away, and it might even cause more problems down the road. –  Valentin Flachsel Nov 23 '10 at 21:38
    
@Freek absolutely true, but in some scenarios (Bought script, zero technical knowledge, need it running by tomorrow...) it's the duct-tape solution - really bad, that always needs emphasizing, but an option –  Pekka 웃 Nov 23 '10 at 21:40
    
@Pekka, I can definitely understand the scenario you're describing but doing so will prevent you from knowing of any other (maybe even more serious) problems the script might have. The best advice I could give if one would be considering turning off the warnings, is to give the script a test run to make sure there are no other issues, and most importantly, don't leave it like that, try to find a proper solution for the problem. –  Valentin Flachsel Nov 23 '10 at 21:47
    
Duct-tape is good ... sometimes. Historically warnings have been turned of in standard PHP-settings, but defult settings have become more strict. Too bad many go back to the old settings, so as not to annoy the customers. –  Erik Nov 23 '10 at 22:26

It means you are testing, evaluating, or printing a variable that you have not yet assigned anything to. It means you either have a typo, or you need to check that the variable was initialized to something first. Check your logic paths, it may be set in one path but not in another.

share|improve this answer

I didn't want to disable notice because it's helpful, but wanted to avoid too much typing.

My solution was this function:

function ifexists($varname)
{
  return(isset($$varname)?$varname:null);
}

So if I want to reference to $name and echo if exists, I simply write:

<?=ifexists('name')?>

For array elements:

function ifexistsidx($var,$index)
{
  return(isset($var[$index])?$var[$index]:null);
}

In page if I want to refer to $_REQUEST['name']:

<?=ifexistsidx($_REQUEST,'name')?>
share|improve this answer
1  
Your ifexists() function doesn't work for me in PHP 5.3. The caller's variables are not available in the function's local scope (see Variable scope), unless they are Superglobals or you fiddle with $GLOBALS, so $foo = "BABAR"; ifexists('foo'); will in general return null. (Italics are php.net chapters.) –  skierpage Jun 19 '12 at 22:14
    
now you will get "hello from"... what's the point? just check the value if( !empty($user) and !empty($location) ) echo "hello $user ..." –  gcb Jul 9 '13 at 5:31

Its because the variable '$user_location' is not getting defined. If you are using any if loop inside which you are declaring the '$user_location' variable then you must also have an else loop and define the same. For example:

$a=10;
if($a==5) { $user_location='Paris';} else { }
echo $user_location;

The above code will create error as The if loop is not satisfied and in the else loop '$user_location' was not defined. Still PHP was asked to echo out the variable. So to modify the code you must do the following:

$a=10;
if($a==5) { $user_location='Paris';} else { $user_location='SOMETHING OR BLANK'; }
echo $user_location;
share|improve this answer

I use all time own useful function exst() which automatically declare variables.

Your code will be -

$greeting = "Hello, ".exst($user_name, 'Visitor')." from ".exst($user_location);


/** 
 * Function exst() - Checks if the variable has been set 
 * (copy/paste it in any place of your code)
 * 
 * If the variable is set and not empty returns the variable (no transformation)
 * If the variable is not set or empty, returns the $default value
 *
 * @param  mixed $var
 * @param  mixed $default
 * 
 * @return mixed 
 */

function exst( & $var, $default = "")
{
    $t = "";
    if ( !isset($var)  || !$var ) {
        if (isset($default) && $default != "") $t = $default;
    }
    else  {  
        $t = $var;
    }
    if (is_string($t)) $t = trim($t);
    return $t;
}
share|improve this answer

the quick fix is to assign your variable to null at the top of your code

$user_location = null;
share|improve this answer

The best way for getting input string is:

$value = filter_input(INPUT_POST, 'value');

This one-liner is almost equivalent to:

if (!isset($_POST['value'])) {
    $value = null;
} elseif (is_array($_POST['value'])) {
    $value = false;
} else {
    $value = $_POST['value'];
}

If you absolutely want string value, just like:

$value = (string)filter_input(INPUT_POST, 'value');
share|improve this answer

why not keep things simple?

<?php
error_reporting(E_ALL); // making sure all notices are on

function idxVal(&$var, $default = null) {
         return empty($var) ? $var = $default : $var;
  }

echo idxVal($arr['test']);         // returns null without any notice
echo idxVal($arr['hey ho'], 'yo'); // returns yo and assigns it to array index, nice

?>
share|improve this answer
    
what is wrong with this? it makes it easy to avoid any notices in case of undefined values getting null back instead, and makes it possible to set up a default value in case the var does not exist. As for the absence of notices when a notice would usually be raised, is it not easier to ask for forgiveness than permission (as per Python)? –  gts May 15 at 10:12

protected by Second Rikudo Dec 9 '12 at 12:00

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