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

the classes that extend "field" class are dynamically called in a directory recursing using "include_once()". i do this so myself ( 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();
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6 Answers 6

up vote 5 down vote accepted

This should work to instanciate 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 inludes all extended classes then that is not possible... That's not how classes work.

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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

just

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

is required. you do not need to add brackets

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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.

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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) {
}
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$field_type = 'checkbox';
$field = new $field_type;

If you need arguments:

$field_type = 'checkbox';
$field = new $field_type(5,7,$user);
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You can also use reflection, $class = new ReflectionClass($class_name); $instance = $class->newInstance(arg1, arg2, ...);

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