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I'm trying to use $variable inside my callback function. I pass it to another function like this: functionName("egTraders_ItemDataBound"), inside that function I assign it to a variable and the call it like this: $theAssignedFunctionVariable($this, $rowToAdd); And the function egTraders_ItemDataBound gets called properly but the variable $variable is undefined. What can I do?

<?php

$variable = "var";
function egTraders_ItemDataBound($sender, $param1)  {
    echo $variable;
}

?>
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can you post the other functions also? or better, the whole code. –  Joseph the Dreamer Feb 2 '12 at 21:15

4 Answers 4

You could pass it in as a param or you could use it as a global in the function. I do not recommend the latter. You should stay away from globals.

Edit for example

$variable = "var";
function egTraders_ItemDataBound($sender, $param1) {
    global $variable;
    echo $variable;
}
egTraders_ItemDataBound(NULL, NULL);
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even if I declare it as global $variable; $variable = 4; it's still undefined. And i'm really dissapointed with php every normal programming language would allow a use of that without problem... –  Alexander Beninski Feb 2 '12 at 21:07
    
what is the syntax to use it as a global? –  Alexander Beninski Feb 2 '12 at 21:15
    
At this point I can only say that something is wrong with the code. I've tested it and it works fine. I edited my post to contain the test I did. –  Jeremy Feb 2 '12 at 21:18
    
I guess that the problem comes from that, that the callback is called inside another class and $variable is not in its global scope either... –  Alexander Beninski Feb 2 '12 at 21:21
    
Well if $variable is defined before the class is initiated it should still work. If $variable is defined within a class and you are using this callback from another classs then it wouldn't work. If that is the case, why not make it a class property and access it $class->variable or a better method of $class->getVariable() –  Jeremy Feb 2 '12 at 21:25

If You are running PHP 5.3+ You can achive this by simply creating anonymous functioin with use keyword ( documentation ) :

$bar = 'bar';
$f = function() use ($bar)
{
    var_dump($bar);
};

function bar( $fName )
{
    $fName();
}

bar($f);
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you need to declare the variable as global because it is out of scope

$variable = "var";
   function egTraders_ItemDataBound($sender, $param1)  {
            global $variable;
                   echo $variable;
                }
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that doesnt work $variable is null. –  Alexander Beninski Feb 2 '12 at 21:11
    
Check it again. With the global $variable should now work. Although I would still say do not use globals... –  Jeremy Feb 2 '12 at 21:14
    
make sure you initialize the $variable prior to the call functionName("egTraders_ItemDataBound") –  Melvin Protacio Feb 2 '12 at 21:20

The variable is declared outside of the scope of the function. You should revisit your design. I strongly recommend against using global variables as that is poor practice.

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