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so I have this problem I have 3 files like

2.php

<?php
$variable = 4;
?>

1.php

<?php
class foo {
function bar() {include_once('2.php');}
}
?>

index.php

<?php
include_once('1.php');
$foo = new foo;
foo->bar();
echo $variable;
?>

Why it tells me variable has no value ? If I do like this

<?php
include_once('1.php');
$foo = new foo;
foo->bar();
include_once('2.php');
echo $variable;
?>

It won't work either. Only in this way

<?php
include_once('1.php');
$foo = new foo;
//foo->bar();
include_once('2.php');
echo $variable;
?>

It will work, any explanation? Thanks

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2 Answers 2

up vote 0 down vote accepted

You are confusing include and include_once.

When you use the latter the file loading and thus variable declaration will only occur once. And if you do so within the method scope, it won't get declared a second time in the global scope. Or vice versa.

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Yep, I know what it means, but either way, it won't work. –  Kei Jun 28 '12 at 19:42
    
It behaves as it should. You should explain why you expected a different outcome. –  mario Jun 28 '12 at 19:45
    
So, I expect the include to work as it does in the global space. If I include something everything included should be visible after it has been included. The class I'm making is a wrapper made to throw a special error when the Include fails. It all works, except, the include itself. –  Kei Jun 28 '12 at 19:48
    
The include does not work in the global scope. It always runs the script in the local scope. The local scope might incidentally be the global scope, but it ain't always. If you run it into a method, then the var will only be declared there. –  mario Jun 28 '12 at 19:51
    
So, how can I put it in a method but making it include like being in the global scope ? –  Kei Jun 28 '12 at 19:53

The scope of $variable is only within the bar() function

See: http://php.net/manual/en/language.variables.scope.php

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If I remember correctly, in php 4 I did a similar thing and it worked, how can I make it the same way but making it visible on index.php ? –  Kei Jun 28 '12 at 19:39
    
Well in your first index example you don't include 1.php, which would make foo undefined, so that might be a problem there. –  Steve Robbins Jun 28 '12 at 19:41
    
No it isn't I just got confused... –  Kei Jun 28 '12 at 19:43

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