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.

I need to be able to call a function, but the function name is stored in a variable, is this possible? e.g:

function foo ()
{
  //code here
}

function bar ()
{
  //code here
}

$functionName = "foo";
// i need to call the function based on what is $functionName

Anyhelp would be great.

Thanks!

share|improve this question

10 Answers 10

up vote 208 down vote accepted

$functionName() or call_user_func($functionName)

share|improve this answer
    
Thanks this is great! –  Lizard Jun 17 '09 at 9:30
    
I need to do this myself but I'm kind of unsettled that it's so easy (to abuse) :D –  andyjdavis Mar 23 '10 at 6:42
7  
+1, even if I don't personnaly recommand $functionName(), harder to read and detect. –  Clement Herreman Apr 27 '10 at 12:45
38  
If you need to call an object's function whose name is in a variable do this: call_user_func( array($obj,$func), $params ) –  BlackDivine Nov 18 '11 at 11:38
6  
@sємsєм: You should use the is_callable function. It will check if a variable contains something that can be called as a function (be it the name of a function, an array containing an object instance and a function name, or an anonymous function/closure) –  knittl May 2 '13 at 17:36

The correct answer is, yes, it is possible:

function foo($msg) {
    echo $msg."<br />";
  }
  $var1 = "foo";
  $var1("testing 1,2,3");

Source: http://www.onlamp.com/pub/a/php/2001/05/17/php_foundations.html?page=2

share|improve this answer

For the sake of completeness, you can also use eval():

$functionName = "foo()";
eval($functionName);

However, call_user_func() is the proper way.

share|improve this answer
1  
It should be noted that eval() will allow the same behaviour but it would also allow to execute any PHP code. So the variable could be used to hijack the system. The call_user_func() does not bring such security issues. –  John Oct 4 at 2:19
    
eval is not a solution to this question. –  ankr Oct 17 at 9:21

In case someone else is brought here by google because they were trying to use a variable for a method within a class, the below is a code sample which will actually work. None of the above worked for my situation. The key difference is the & in the declaration of $c = & new... and &$c being passed in call_user_func.

My specific case is when implementing someone's code having to do with colors and two member methods lighten() and darken() from the csscolor.php class. For whatever reason, I wanted to have the same code be able to call lighten or darken rather than select it out with logic. This may be the result of my stubbornness to not just use if-else or to change the code calling this method.

$lightdark="lighten"; // or optionally can be darken
$color="fcc";   // a hex color
$percent=0.15;  
include_once("csscolor.php");
$c = & new CSS_Color($color);
$rtn=call_user_func( array(&$c,$lightdark),$color,$percent);

Note that trying anything with $c->{...} didn't work. Upon perusing the reader-contributed content at the bottom of php.net's page on call_user_func, I was able to piece together the above. Also, note that $params as an array didn't work for me:

// This doesn't work:
$params=Array($color,$percent);
$rtn=call_user_func( array(&$c,$lightdark),$params);

This above attempt would give a warning about the method expecting a 2nd argument (percent).

share|improve this answer

My favorite version is the inline version:

${"variableName"} = 12;

$className->{"variableName"};
$className->{"methodName"}();

StaticClass::${"variableName"};
StaticClass::{"methodName"}();

You can place variables or expressions inside the brackets too!

share|improve this answer
    
@marcioAlmada : post a comment instead of editing others' answers in this manner; it adds confusion - it's not clear who said what [to the curious: see revisions for explanations] –  kryger Feb 2 at 16:08
2  
Ok @kryger. Line 2 {"functionName"}(); is not legal and will throw a syntax error. –  marcio Feb 2 at 23:53
2  
Thank you guys, for the replies, it indeed throws an error, even in php 5.4, so that syntax only works with object methods. Edited the post. –  Mészáros Lajos Feb 3 at 10:10

As already mentioned, there are a few ways to achieve this with possibly the safest method being call_user_func() or if you must you can also go down the route of $function_name(). It is possible to pass arguments using both of these methods as so

$function_name = 'foobar';

$function_name(arg1, arg2);

call_user_func_array($function_name, array(arg1, arg2));

If the function you are calling belongs to an object you can still use either of these

$object->$function_name(arg1, arg2);

call_user_func_array(array($object, $function_name), array(arg1, arg2));

However if you are going to use the $function_name() method it may be a good idea to test for the existence of the function name is in any way dynamic

if(method_exists($object, $function_name))
{
    $object->$function_name(arg1, arg2);
}
share|improve this answer

Dynamic function names and namespaces

Just to add a point about dynamic function names when using namespaces.

If you're using namespaces, the following won't work except if your function is in the global namespace:

namespace greetings;

function hello()
{
    // do something
}

$myvar = "hello";
$myvar(); // interpreted as "\hello();"

What to do?

You have to use call_user_func() instead:

// if hello() is in the current namespace
call_user_func(__NAMESPACE__.'\\'.$myvar);

// if hello() is in another namespace
call_user_func('mynamespace\\'.$myvar);
share|improve this answer

Use the call_user_func function.

share|improve this answer

Complementing the answer of @Chris K if you want to call an object's method, you can call it using a single variable with the help of a closure:

function get_method($object, $method){
    return function() use($object, $method){
        $args = func_get_args();
        return call_user_func_array(array($object, $method), $args);           
    };
}

class test{        

    function echo_this($text){
        echo $text;
    }
}

$test = new test();
$echo = get_method($test, 'echo_this');
$echo('Hello');  //Output is "Hello"

I posted another example here

share|improve this answer

I dont know why u have to use that, doesnt sound so good to me at all, but if there are only a small amount of functions, you could use a if/elseif construct. I dont know if a direct solution is possible.

something like $foo = "bar"; $test = "foo"; echo $$test;

should return bar, you can try around but i dont think this will work for functions

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.