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In the following code, is there a way to modify the contents of a variable after it has been called? In this really simple (and pointless) example, when $foo is called, I wish for it to echo 'baryay', not 'bar' WITHOUT needing to call changefoo() before hand. changefoo must be called after.

<?php

changefoo(){
   global $foo,
   $foo .= 'yay';
}

$foo = 'bar';
echo $foo;

changefoo();


?>

Awaiting general coding method harassment and suggestions.

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3  
Even with the echo being after your code will never echo baryay –  Neal Jan 3 '12 at 15:34
    
It will never echo will never echo baryay –  user319198 Jan 3 '12 at 15:36
    
I have no idea what this question is asking. You don't "call" a variable. –  Lightness Races in Orbit Jan 3 '12 at 15:36
    
code edited above. Should make a little more sence. –  David Jan 3 '12 at 15:37
    
@David - It's alright to use pseudo-code in your questions but please don't use pseudo-code that resembles real PHP code. –  Álvaro G. Vicario Jan 3 '12 at 15:41

4 Answers 4

up vote 3 down vote accepted

No. Once you've written something to the output, you can hardly go back and change it. You need to restructure your flow to match your needs.

Think of it like an actual printer. If you print something on a piece of paper, even if the page is not done printing yet, you can't go back and modify what you printed.

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I do not believe that is possible.


Also try not to use globals. just pass the variable in:

function changefoo(&$foo){
   $foo .= 'yay';
}

$foo = 'bar';

changefoo($foo);

echo $foo; //baryay
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No, once it is echoed, you couldn't change what is displayed on screen without using javascript/jquery. If you want it to echo "baryay", you would need to write:

echo $foo."yay";

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If it's the result of an echo statement, it's no longer a variable. You can alter your scripts output with regular output buffering functions, no matter where it comes from:

<?php

function changefoo(){
   global $foo;
   $foo = 'blah';
}

ob_start();
$foo = 'bar';
echo $foo;

changefoo();
ob_end_clean();
echo $foo;

?>
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