173

I know this question sounds rather vague so I will make it more clear with an example:

$var = 'bar';
$bar = new {$var}Class('var for __construct()'); //$bar = new barClass('var for __construct()');

This is what I want to do. How would you do it? I could off course use eval() like this:

$var = 'bar';
eval('$bar = new '.$var.'Class(\'var for __construct()\');');

But I'd rather stay away from eval(). Is there any way to do this without eval()?

5 Answers 5

253

Put the classname into a variable first:

$classname=$var.'Class';

$bar=new $classname("xyz");

This is often the sort of thing you'll see wrapped up in a Factory pattern.

See Namespaces and dynamic language features for further details.

5
  • 2
    This is how I do it. Note that from within classes you can use parent and self.
    – Ross
    Commented Feb 10, 2009 at 20:55
  • 1
    On a similar note, you can also do $var = 'Name'; $obj->{'get'.$var}();
    – Mario
    Commented Feb 10, 2009 at 21:04
  • 1
    Good point, though that only works for method calls and not constructors
    – Paul Dixon
    Commented Feb 10, 2009 at 21:16
  • 14
    If you work with namespace, put the current namespace into the string: $var = __NAMESPACE__ . '\\' . $var . 'Class';
    – bastey
    Commented Sep 2, 2013 at 13:28
  • @bastey - but why? I just spent too much time on figuring out, why this wouldn't work without the namespace preceding the class name...
    – jkulak
    Commented Feb 13, 2017 at 14:38
99

If You Use Namespaces

In my own findings, I think it's good to mention that you (as far as I can tell) must declare the full namespace path of a class.

MyClass.php

namespace com\company\lib;
class MyClass {
}

index.php

namespace com\company\lib;

//Works fine
$i = new MyClass();

$cname = 'MyClass';

//Errors
//$i = new $cname;

//Works fine
$cname = "com\\company\\lib\\".$cname;
$i = new $cname;
5
  • 8
    The only working solution when need to create with namespace, are yours. Thanks for share! Commented Aug 10, 2015 at 22:50
  • But this is just weird, Why would it not use the declared namespace ? Commented Apr 29, 2018 at 9:24
  • @YisraelDov Yes it is definitely counter intuitive. But for whatever reason it does behave weirdly in this context. Thanks php
    – csga5000
    Commented May 15, 2018 at 21:57
  • @YisraelDov I guess it is because in that case instantiating a class from another namespace would be huge headache. Also consider that variables can be passed around. When the classname is written as text into a php file, whoever writes it knows exactly what namespace it is written in. But when a variable is passed between functions, it'd be a nightmare to follow up on it. Also if you use get_class() it'll give back the FQ classname, so that can be stored in a variable straight away and used anywhere. If it was depending on the namespace of the file, it wouldn't work very well. Commented Jun 27, 2019 at 17:52
  • @BenceSzalai imo counter intuitive functionality isn't worth forced explicitness. I think if I had a bug because of namespaces, it'd be somewhat evident to me and/or if i want to force the namespace I easily can. Those issues seem easier to debug or fix to me than why it doesn't work as one would intuit it should (aka if new MyClass() works then new $"MyClass"() should also work).
    – csga5000
    Commented Dec 27, 2023 at 20:53
64

How to pass dynamic constructor parameters too

If you want to pass dynamic constructor parameters to the class, you can use this code:

$reflectionClass = new ReflectionClass($className);

$module = $reflectionClass->newInstanceArgs($arrayOfConstructorParameters);

More information on dynamic classes and parameters

PHP >= 5.6

As of PHP 5.6 you can simplify this even more by using Argument Unpacking:

// The "..." is part of the language and indicates an argument array to unpack.
$module = new $className(...$arrayOfConstructorParameters);

Thanks to DisgruntledGoat for pointing that out.

1
  • 8
    From PHP 5.6 you should be able to use argument unpacking: new $className(...$params) Commented Jul 6, 2015 at 23:07
32
class Test {
    public function yo() {
        return 'yoes';
    }
}

$var = 'Test';

$obj = new $var();
echo $obj->yo(); //yoes
2
  • No, not a good example. Only works if everything is in the same php file.
    – fralbo
    Commented Jun 12, 2017 at 18:06
  • 2
    2ndGAB should remove this comment. Autoloading has nothing to do with this question. Commented Jul 26, 2017 at 22:36
-1

I would recommend the call_user_func() or call_user_func_arrayphp methods. You can check them out here (call_user_func_array , call_user_func).

example

class Foo {
static public function test() {
    print "Hello world!\n";
}
}

 call_user_func('Foo::test');//FOO is the class, test is the method both separated by ::
 //or
 call_user_func(array('Foo', 'test'));//alternatively you can pass the class and method as an array

If you have arguments you are passing to the method , then use the call_user_func_array() function.

example.

class foo {
function bar($arg, $arg2) {
    echo __METHOD__, " got $arg and $arg2\n";
}
}

// Call the $foo->bar() method with 2 arguments
call_user_func_array(array("foo", "bar"), array("three", "four"));
//or
//FOO is the class, bar is the method both separated by ::
call_user_func_array("foo::bar"), array("three", "four"));
1
  • 3
    This answer doesn't apply to the question. OP is asking how to INSTANTIATE a class (triggering the class __construct method dynamically) from a variable string and getting the CLASS OBJECT back in a new variable -- your advice will return the VALUE of the class->method([ ]) you're calling, not the class object so doesn't apply for this case. See the return value php.net/manual/en/function.call-user-func-array.php
    – ChrisN
    Commented Jan 11, 2018 at 12:36

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