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I'm using the PHP shorthand addition operator to tally the number of times a specific id occurs within a multidimensional array:

$source['tally'] = array();

foreach ($items as $item) {
    $source['tally'][$item->getId()] += 1;
}

The first time it hits a new id, it sets its 'tally' value to 1 and then increments it each time it's found thereafter.

The code works perfectly (I get the correct totals), but PHP gives me an "Undefined Offset" notice each time it finds a new id.

I know I can just turn off notices in php.ini, but figured there must be a reason why PHP doesn't approve of my technique.

Is it considered bad practice to create a new key/offset dynamically like this, and is there a better approach I should take instead?

Please Note: To help clarify following initial feedback, I do understand why the notice is being given. My question is whether I should do anything about it or just live with the notice. Apologies if my question didn't make that clear enough.

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1  
$source['tally'] = array(); is a raw array. There is no initialization. that might be the reason. Guess so –  Kris Nov 15 '11 at 6:40
    
Thanks - the notice is given with or without the initialization code. Leaving off that line just adds an "undefined index" notice in addition to the "undefined offset" notice already mentioned. –  cantera Nov 15 '11 at 6:50
    
offset is also, similar, since it contains no value, as ur offset is not yet defined, '+=' tries to add to a pre-exisitng value; So it assigns a warning first time. –  Kris Nov 15 '11 at 6:52

4 Answers 4

up vote 1 down vote accepted

If you simply want to hide the notice, you can use the error control operator:

$source['tally'] = array();

foreach ($items as $item) {
    @$source['tally'][$item->getId()]++;
}

However, you should generally initialize your variables, in this case by adding the following code inside the loop:

if (!isset( $source['tally'][$item->getId()] ))
{
   $source['tally'][$item->getId()] = 0;
}
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It's not that his code isn't wrong, and it's not about getting rid of the notice. Initializing values is considered good practice. If he had attempted this not in PHP but in C++, the code would go crazy. –  Second Rikudo Nov 15 '11 at 9:18
1  
At least the OP has notices switched on, and is actually paying attention to them. –  Gustav Bertram Nov 15 '11 at 9:23

Using += (or any of the other augmented assignment operators) assumes that a value already exists for that key. Since this is not the case the first time the ID is encountered, a notice is emitted and 0 is assumed.

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Thanks for the response. I understand why the notice is emitted, but why does PHP care whether a value already exists for the key -- since it's just going to follow my directions and set the value to 1 anyway? Is there a reason it's not considered good practice to do it this way, even though it works? –  cantera Nov 15 '11 at 6:48
    
It's not going to set it until it has retrieved the value that already exists with that key. But there is no element with that key in the first place. –  Ignacio Vazquez-Abrams Nov 15 '11 at 6:52
1  
Because it's likely to be an error if you try to read a value that doesn't exist. –  ThiefMaster Nov 15 '11 at 8:07
    
PHP allows this behavior, it doesn't give you an error, it just gives you a notice, because although your script still works it is bad programming practice, and will not work if you do this in other languages. –  Alasdair Nov 15 '11 at 9:18

It's caused because you don't initialize your array to contain the initial value of 0. Note that the code would probably work, however it is considered good practice to initialize all the variable you are about to preform actions upon. So the following code is an example of what you should probably have:

<?php
    $source['tally'] = array();

    foreach ($items as $item) {
        //For each $item in $items,
        //check if that item doesn't exist and create it (0 times).
        //Then, regardless of the previous statement, increase it by one.
        if (!isset($source['tally'][$item->getID()]) $source['tally'][$item->getID()] = 0;
        $source['tally'][$item->getId()] += 1;
    }
?>

The actual reason why PHP cares about it, is mainly to warn you about that empty value (much like it would if you try to read it). It is a kind of an error, not a fatal, script-killing one, but a more subtle quiet one. You should still fix it though.

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You have to understand that PHP notices are a tool. They exist so you have additional help when writing code and you are able to detect potential bugs easily. Uninitialized variables are the typical example. Many developers ask: if it's not mandatory to initialize variables, why is PHP complaining? Because it's trying to help:

$item_count = 0;
while( do_some_stuff() ){
     $iten_count++; // Notice: Undefined variable: iten_count
}
echo $item_count . ' items found';

Oops, I mistyped the variable name.

$res = mysql_query('SELECT * FROM foo WHERE foo_id=' . (int)$_GET['foo_id']);
// Notice: Undefined index: foo_id

Oops, I haven't provided a default value.

Yours is just another example of the same situation. If you're incrementing the wrong array element, you'd like to know.

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