Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

While my site was working without any problem I suddenly started to have a really high CPU usage on my server so I started to check the code more carefully and enabled E_ALL error reporting.

Then I found out I had a great many of this "notices":

Notice: Undefined index: userID in /var/www/vhosts/mydomain.com/httpdocs/header.php on line 8

Most or them refer to unset cookies, for example this:

$uid = $_COOKIE['userID'];

If the user is unlogged I get a notice right there, and every time I use $uid.

What I want to know if this: Are this notices harmless or can they really cause any problems in my site? (Speed issues, errors etc.)

share|improve this question
    
Can you show your setcookie? –  Nikola K. Jul 5 '12 at 6:57
    
In most cases, there not dangerous, but its good practice to deal with them. –  Mr D Jul 5 '12 at 6:58
    
It's not "dangerous" :) but it does matter. Errors slow down PHP. –  Nikola K. Jul 5 '12 at 7:00
1  
My personal preference is to treat every E_NOTICE as an error and ensure that the application can never generate one, even if it is "harmless." –  Matthew Jul 5 '12 at 7:12
    
@Nikola K. This is my setcookie: setcookie($name,$value,time() + 2*7*24*60*60,'/','lujanventas.com', false) Honestly I don't know what the 'false' means but I copy pasted it long ago and it sticked. –  lisovaccaro Jul 5 '12 at 8:02
add comment

4 Answers

up vote 10 down vote accepted

It is a notice only, try this code:

$uid = isset($_COOKIE['userID']) ? $_COOKIE['userID'] : 0;

It is not hamless (depending on the point of view), and you can disable this with error reporting functions, otherwise, the correct way is verify if index exists isset($_COOKIE['userID']) and if not, define a default value (null for instance)

$var = isset($foo) ? $foo : 'default';

You need to verify if variable exists, if you don't known it exists or not.

$var = 'foo'
if($var == 'foo') { // I known $var is defined, because I have defined it.
    [..]
}

/** 
 * Above, I don't known if user go to mywebsite.com/index.php or
 * mywebsite.com/index.php?foo=bar, so, I need to verify if index is defined
 */
if(isset($_GET['foo']) && $_GET['foo'] == 'bar') {
    [...]
}
share|improve this answer
1  
Or -1, in case the IDs start from 0 ;) –  nico Jul 5 '12 at 6:58
    
@nico I do not think this is common practice –  Gabriel Santos Jul 5 '12 at 7:00
1  
@Gabriel Santos: no, but I have seen it before. And notably the person who did that assigned 0 to admin... I'll let you imagine the disaster that could bring :) –  nico Jul 5 '12 at 7:10
1  
@Liso Simple: if you're trying to work with values/variables that don't exist, your application by definition enters into an unknown state. You wanted to use the value of $_COOKIE['userId'] and expected it to be a numeric string. But that value didn't exist. Now what? This may or may not lead to errors down the line. You need to expect and explicitly handle the case of "value may not exist" so you are 100% sure how your application is going to behave in that case. –  deceze Jul 5 '12 at 7:11
1  
@Liso22 If you do if(!$var) when $var does not exists, you will get errors. You need to do: if(isset($var) && !$var) which verify if $var is defined and false. –  Gabriel Santos Jul 5 '12 at 7:24
show 5 more comments

Those notices will cause a little bit of a speed problem, because raising a notice costs some extra effort.

The main problem though is that this is a serious error. You are trying to work with something that doesn't exist. This may or may not lead to Bad Things Happening, but it means your program is not correct. Since you should always develop with error reporting on full power to see and solve actual problems, notices about undefined indexes or undefined variables are serious and need to be solved. Anything that PHP complains about is serious and needs to be solved. See The Definitive Guide To PHP's isset And empty.

share|improve this answer
add comment

Notices are in general harmless, yet they may indicate a poor application design. In general it is always a good idea to utilize available PHP tools (i.e isset($someVar)) to make sure that your business logic is taking proper care of variable initialization. When you see no such notices with E_ALL error reporting setting, it's always better.

share|improve this answer
add comment

The Notice warning is in the first point of view harmless, but you should keep in mind, that the programming is not right and it might be causes errors on following lines.

In your example it es better to use

$uid = isset($_COOKIE['userID'])?$_COOKIE['userID']:0;

So you can be sure, that $uid always has a value and when the value greater then 0 you have a falid userId ...

share|improve this answer
add comment

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.