Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can i perform a function once a variable's value has been set?

say like

$obj = new object(); // dont perform $obj->my_function() just yet
$obj->my_var = 67    // $obj->my_function() now gets run

I want the object to do this function and now having to be called by the script.

Thanks

EDIT my_var is predefined in the class, __set is not working for me.

share|improve this question
    
your question is not clear. You want to call a function when a value is set for a variable? –  Anirudh Goel Oct 14 '09 at 8:32

4 Answers 4

up vote 12 down vote accepted

Use a private property so __set() is invoked:

class Myclass {
  private $my_var;
  private $my_var_set = false;

  public function __set($var, $value) {
    if ($var == 'my_var' && !$this->my_var_set) {
      // call some function
      $this->my_var_set = true;
    }
    $this->$var = $value;
  }

  public function __get($var, $value) {
    return $this->$name;
  }
}

See Overloading. __set() is called because $my_var is inaccessible and there is your hook.

share|improve this answer
2  
+1. see php.net/__set for details on the magic __set() method. –  ax. Oct 14 '09 at 8:39
1  
Thanks. setters seem to be the best method. Could this be expanded so the function gets run once 3 variables are set? var_a, var_b and var_c? Once all of those are set run a function? –  dotty Oct 14 '09 at 9:11
    
Sure, you could put any logic in there you like. –  cletus Oct 14 '09 at 9:24
    
thanks. Can you take a look at the edit in the original question. It seems that __set() does not work because the variable is already predefined. –  dotty Oct 14 '09 at 9:32
    
It won't work if my_var is accessible either because it is public or you are accessing it within the class (and thus have private access). My guess is it's public. You'll note I deliberately set it private in my example. –  cletus Oct 14 '09 at 10:17

I'd recommend to create a setter function for $obj and include the relevant function call there. So basically your code would look somehow like this:

$obj = new ClassOfYours();
$obj->setThatValue("apple");

Of course you would have to take care that all assignments to ThatValue need to be done through that setter in order make it work properly. Assuming that you're on php5 I'd set that property to private, so all direct assignments will cause an runtime error.

A good overview about OOP in php can be found in this article on devarticles.com.

HTH

share|improve this answer
1  
I agree, this is a cleaner way to do it. –  gnud Oct 14 '09 at 8:36

To acheive exactly what you describe, you'd have to use a magic setter.

class ObjectWithSetter {

    var $data = array();

    public function my_function() {
        echo "FOO";
    }


    public function __set($name, $value) {
        $this->data[$name] = $value;
        if($name == 'my_var') {
            $this->my_function();
        }
    }

    public function __get($name) {
        if (array_key_exists($name, $this->data)) {
            return $this->data[$name];
        }
        $trace = debug_backtrace();
        trigger_error(
            'Undefined property via __get(): ' . $name .
            ' in ' . $trace[0]['file'] .
            ' on line ' . $trace[0]['line'],
            E_USER_NOTICE);
        return null;
    }

    /**  As of PHP 5.1.0  */
    public function __isset($name) {
        return isset($this->data[$name]);
    }

    public function __unset($name) {
        unset($this->data[$name]);
    }

}
share|improve this answer
1  
This method is not very transparent. I suggest that you use a normal, non-magic setter function instead (like several others suggested). –  gnud Oct 14 '09 at 8:37

Assuming you want to call my_function() once you set a value, that case you can encapsulate both the operations into one. Something like you create a new function set_my_var(value)

function set_my_var(varvalue)
{
$this->my_var = varvalue;
$this->my_function();
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.