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Is there a way to listen to a variable being overriden...

a fictional example:

<?php


$user = new user_class();
function callback_foo(){
   die('Do not override this variable you are not permited...');
}
listen_var_change('user','callback_foo');

?>

I should hope that the code above would explain what I am trying to do, I just want to ensure that the var is constant. I can't use the define() is it would not allow objects|array

Cheers.

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2 Answers 2

up vote 1 down vote accepted

There is no such mechanism in PHP. The closest you can get works for class members, and involves magic getters and setters. Example:

<?php

class Foobar {
    private $user;

    public function __construct($user) {
        $this->user = $user;
    }

    public function __set($key, $val) {
        if ($key === 'user') {
            die("Do not change this value, or a fluffy kitty dies.");
        }
    }

    public function __get($key) {
        if ($key === 'user') {
            return $this->user;
        }
    }
}

This is pretty much how you'd implement read-only properties in PHP (although you probably want to throw a catchable exception rather than die, so that user code can recover gracefully.

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I had looked at this about a year ago, but I think this would do, it's just foobar should be as short as possible, I will try a few things and get back to you :) –  Val Jun 15 '12 at 11:28

What you suggest is not possible. If you want to have an "immutable" value, one practical solution is to hide it behind a getter function:

function getUser() {
    static $user;
    if (!$user) $user = new user_class();
    return $user;
}

Of course this is not a good practice, but it's no worse than having a global $user.

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I see what you mean but... thats not good :( –  Val Jun 15 '12 at 11:23

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