Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a base class called field and classes that extend this class such as text, select, radio, checkbox, date, time, number, etc.

Classes that extend field class are dynamically called in a directory recursively using include_once(). I do this so that I ( and others) can easily add a new field type only by adding a single file

What I want to know: Is there a way to substantiate a new object from one of these dynamically included extending classes from a variable name?

e.g. a class with the name checkbox :

$field_type = 'checkbox';

$field = new {$field_type}();

Maybe this would work? but it does not?

$field_type = 'checkbox';

$field = new $$field_type();
share|improve this question
up vote 12 down vote accepted

This should work to instantiate a class with a string variable value:

$type = 'Checkbox'; 
$field = new $type();
echo get_class($field); // Output: Checkbox

So your code should work I'd imagine. What is your question again?

If you want to make a class that includes all extended classes then that is not possible. That's not how classes work in PHP.

share|improve this answer
    
I do not want to extend multiple classes, although this would not defeat OOP if it were possible. Some languages actually allow lultiple inheritance – andrew mclagan Aug 20 '11 at 11:05

If you are using a namespace you will need to add it even if you are within the namespace.

namespace Foo;

$my_var = '\Foo\Bar';
new $my_var;

Otherwise it will not be able to get the class.

share|improve this answer
1  
You can automatize for PHP >= 5.3 that with the __NAMESPACE__ constant : $my_var = __NAMESPACE__ . '\Bar';. – Ivan Gabriele Apr 28 '15 at 0:33

just

$type = 'checkbox';
$filed = new $type();

is required. you do not need to add brackets

share|improve this answer

This should be enough:

$field_type = 'checkbox';
$field = new $field_type();

Code I tested it with in PHP 5.3

$c = 'stdClass';

$a = new $c();

var_dump($a);

>> object(stdClass)#1 (0) {
}
share|improve this answer
$field_type = 'checkbox';
$field = new $field_type;

If you need arguments:

$field_type = 'checkbox';
$field = new $field_type(5,7,$user);
share|improve this answer

You can also use reflection, $class = new ReflectionClass($class_name); $instance = $class->newInstance(arg1, arg2, ...);

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.