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I keep getting this as a warning I want to avoid getting this warning when it is undefined without turning warnings off

here is the context

  $url_items = array("foo");
  $article_id = db_escape($url_items[1]);
  $article = get_article($article_id);

  function get_article($article_id = NULL) {.....}
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That is strange because $article_id = db_escape($url_items[1]); should assign some value to $article_id. I think the warning should not even occur (or it is somewhere else in your code). –  Felix Kling Mar 23 '10 at 14:21
    
hm your right didnt mention this at all... im not familiar with db_escape() does it return something at all ? or better does it always return something... hm ok just tested it a function will return null if nothing is returned so how can this function return NOTHING at all ? –  Nexum Mar 23 '10 at 14:35
    
PHP usually provides the file and the line number when issuing warnings. Shouldn't this be enough to find the problem? –  lunohodov Mar 23 '10 at 14:35
    
ok gonna edit and clarify with my db_escape function altough it shouldn't matter –  mcgrailm Mar 23 '10 at 14:38
1  
This whole code is quite strange at all. it can be solved with ` if (!isset($url_items[1])) $url_items[1]="";`, yet it looks strange. Why don't you pass whole $url_items array to the function? –  Your Common Sense Mar 23 '10 at 14:50

6 Answers 6

up vote 3 down vote accepted

I'm thinking that the easiest way to solve it is like this:

$url_items = array("foo");
$article = empty($url_items[1]) ? get_article() : get_article(db_escape($url_items[1]));

function get_article($article_id = NULL) {.....}

This should works because you give $article_id a default value in the function. However, you could just as easily change the middle ternary part to null if you don't want to execute at all if there is no $article_id.

Edit: If you have an article_id 0, you may want to change empty to !isset
Edit 2: Modified to avoid the undefined offset warning.

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You don't say exactly which line is causing the error, but you ought to use isset for any variables you are not sure exist. For example:

$url_items = array("foo");
if ( isset($url_items[1]) )
{
    $article_id = db_escape($url_items[1]);
    $article = get_article($article_id);
}

function get_article($article_id = NULL) {.....}

You'll also want to check the content of the db_escape method, in case that is also doing something with an undefined variable.


One other way around the problem is to pass the variable to the function by reference using &:

function get_article(&$article_id) {
    if ( $article_id == null ) {
        // handle null case here
    }
    else {
        // get the article
    }
}
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ahh yes but I still need to make the call to get_article even if $article_id is not set –  mcgrailm Mar 23 '10 at 14:58
    
@mmcgrail: yeah I gave your code a try but did not get any warnings. I did get Notice: Undefined offset: 1 though. The only time I get "Undefined variable" is if I remove the line that sets $article_id. Are you sure your code is the same as you posted above? Posting the content of db_escape() would help too. –  DisgruntledGoat Mar 23 '10 at 15:03
    
yes your right I get that one too and I still fail to see how db_escape has anything to do with it. but that does lead me to the answer –  mcgrailm Mar 23 '10 at 15:12

put this before your code:

error_reporting(E_ALL ^ E_NOTICE);

PHP Manual: error_reporting

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1  
That's wrong at all, but especially in this very case. Why not E_ALL? –  Your Common Sense Mar 23 '10 at 14:22
    
because E_ALL will still display the errors? –  Iraklis Mar 23 '10 at 14:25
1  
Ahaha, I thought you were going to help to find error, not to hide it :) It just didn't came to my mind. What a ridiculous answer from a developer. –  Your Common Sense Mar 23 '10 at 14:28
    
I know how to turn on and off error reporting the point is to avoid the warning –  mcgrailm Mar 23 '10 at 14:29
2  
Then maybe the OP should rephrase the question from "but I don't care if its not set so how do I get rid of the warning" to "How do I fix my code". –  Iraklis Mar 23 '10 at 14:34

so it was pretty simple after all that and yes maybe I could have phrased my question better, but it still bothers me that there is not a simpler way to do this

    if (isset($url_items[1])){
        $article_id = db_escape($url_items[1]);
    }else{
        $article_id = null;
    }
    $article = get_article($article_id);
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I don't know if this is related to the error, but you should know that PHP indexes arrays starting with 0, so the second line should be

$article_id = db_escape($url_items[0]);

Also, it is probably a typo, but the first line should be

var $url_items = array("foo");
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I know they start at zero the point is that $url_items[1]; has no value and I don't need var in front of a variable and I'm not sure but I think that might be a problem if I did put it there –  mcgrailm Mar 23 '10 at 14:32
    
the var will cause errors –  mcgrailm Mar 23 '10 at 14:46

i think this would be a nicer way maybe there is a better way but i think just hiding the warning is the wrong way...

$article_id = db_escape($url_items[1]);
if(empty($article_id)){
    $article_id = null;
}

edit corrected the code

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3  
The argument to empty must be a variable, it doesn't work on expressions. –  Powerlord Mar 23 '10 at 14:54
    
this actually gives me a parse error –  mcgrailm Mar 23 '10 at 14:56
    
Powerlord is right, as it says in the docs: Note: empty() only checks variables as anything else will result in a parse error. In other words, the following will not work: empty(trim($name)). –  Felix Kling Mar 23 '10 at 15:00
    
sry just wrote this on the fly... wanted it to stay in one line of code... –  Nexum Mar 23 '10 at 15:29

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