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Is there a call_user_func() equivalent to create a new class instance?

I instansiate my class like this:

$className = 'varClassName';
$validator = new $className;

But I want to pass an array as an argument to the class constructor. I thought the following might work:

$className = 'varClassName(array('min'=>2, 'max'=50))';
$validator = new $className;

However this results in an error that the class cannot be found. So how can I pass args to a class constructor while using variable class name?

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marked as duplicate by Gordon, webarto, hakre, PeeHaa, obi NullPoiиteя kenobi Nov 16 '12 at 15:24

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This is not possible without eval(). Why do you need it? It smells of a design flaw –  Pekka 웃 Dec 1 '11 at 9:56
    
It's possible without eval(). See below. But I agree that this clearly indicates a design flaw. And a major one at that. –  Till Helge Dec 1 '11 at 9:58

3 Answers 3

up vote 0 down vote accepted
$className = 'varClassName';
$validator = new $className(array('min'=>2, 'max'=>50));
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I'm not sure whether this is really what the OP's asking for. But we will see –  Pekka 웃 Dec 1 '11 at 10:29
    
This is not even possible in PHP, I wonder why the OP did accept this as an answer - an even got three upvotes. "Parse error: syntax error, unexpected '=', expecting ')'" - this is fatal - see: eval.in/3599 –  hakre Nov 16 '12 at 13:52
    
Sorry, I didn't notice befor that I've made a typo (in the array definition, I wrote = instead of =>). Now it works. Thank you for noticing. :) –  Carsten Nov 16 '12 at 15:44

Have a look at ReflectionClass. You can do something like this:

$rc = new ReflectionClass("YourClass");
$obj = $rc->newInstanceArgs(array(...));

This is probably the best way to do this, but it's a fairly new addition to PHP. The alternative would be to use eval() but I refuse to write code like this. ;)

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You're right. I was a little confused when I answered. I modified my answer...maybe that helps better. :) –  Till Helge Dec 1 '11 at 10:15

You do like this: $validator = new $className($array);

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