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Using the following function:

function is_closure($t) { return ( !is_string($t) && is_callable($t)); }

Can this return true for anything else, than an anonymous closure function? If so, what would be the correct way to determine, if a variable is a closure?

Many thanks

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Objects are also callable if they implement __invoke. – mario Aug 18 '11 at 1:46
up vote 31 down vote accepted

The most deterministic way to check if a callback is an actual closure is:

function is_closure($t) {
    return is_object($t) && ($t instanceof Closure);
}

All anonymous functions are represented as objects of the type Closure in PHP. (Which, coming back to above comment, happen to implement the __invoke() method.)

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Something that tripped me up for a minute or two ... If your code is namespaced, make sure to escape \Closure to get back to global namespace. – Jim Oct 29 '14 at 4:00
1  
You don't need to do is_object($t), doing instanceof for a non-object will always return false. – Jasny - Arnold Daniels Dec 22 '15 at 0:25

I think you can use instanceof Closure though the manual states this should not be relied upon. I guess it works for now.

Anonymous functions are currently implemented using the Closure class. This is an implementation detail and should not be relied upon.

Update The Closure manual page has updated its guidance on this. It appears that this behaviour can now be relied upon.

Anonymous functions, implemented in PHP 5.3, yield objects of this type. This fact used to be considered an implementation detail, but it can now be relied upon.

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@mario beat me to it but I'll leave this here for the extra information (unless mario wants to merge this in with his answer) – Phil Aug 18 '11 at 1:57

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