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How do you tell if a function in Javascript is defined?

I want to do something like

function something_cool(text, callback){
    alert(text);
    if( callback != null ){ callback(); };
}

but that gets me a 'callback is not a function' error when callback is not defined.

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16 Answers 16

up vote 291 down vote accepted
typeof(callback) == "function"
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3  
Not a problem as long as you like magic strings in your code. – Jason Bunting Dec 18 '09 at 0:21
39  
This isn't really a magic string, since the set of typeof values is precisely defined in the ECMA spec. Although the syntax for this is a little goofy to begin with, it's perfectly reasonable idiomatic Javascript. – Ben Zotto Mar 30 '10 at 1:04
2  
@quixoto - understood, I guess what I mean is that you still need to have a string regardless - I would rather not have any more literal strings littering my code than absolutely needed; therefore, this isn't my ideal for testing if something is a function. – Jason Bunting Sep 13 '10 at 21:10
4  
And yes, "magic" was a sloppy, poor word choice - I meant "literal string" not "magic string." My bad. :) – Jason Bunting Nov 24 '10 at 22:35
1  
That's a pretty subjective measure and an unnecessarily passive aggressive comment. Compared to the isFunction solution, this single line of code seems pretty easy to read to me! The reluctance to use strings in code is admiral because there are good reasons to do so, but in this case seems highly misplaced and feels a little religious in nature. – Weston Wedding Mar 16 at 16:17

All of the current answers use a literal string, which I prefer to not have in my code if possible - this does not (and provides valuable semantic meaning, to boot):

function isFunction(possibleFunction) {
  return typeof(possibleFunction) === typeof(Function);
}

Personally, I try to reduce the number of strings hanging around in my code...


Also, while I am aware that typeof is an operator and not a function, there is little harm in using syntax that makes it appear as the latter.

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3  
Brilliant and probably generalizable to tons of situations in Javascript. – Dan Rosenstark Sep 21 '10 at 16:57
5  
How am I supposed to use this function? I've tried isFunction(not_defined)) where not_defined is name of function that is not defined and FireBug returned not_defined is not defined which is correct but your function should return false and not generate error... – Wookie88 Oct 22 '12 at 22:53
2  
-1 Not reliable i noticed (Chrome) – bicycle Feb 7 '13 at 20:33
2  
@ZacharyYates The way to work around the ReferenceError would mean to avoid working with a reference to the maybe-not-defined-function. You could do the typecheck inside the function call and pass the result to the function. jsfiddle.net/qNaxJ Maybe not so nice, but at least, no strings used ;) – netiul Mar 13 '14 at 9:11
8  
Or avoid a function isFunction and do just (typeof no_function == typeof Function). – netiul Mar 13 '14 at 9:16
if (callback && typeof(callback) == "function")

Note that callback (by itself) evaluates to false if it is undefined, null, 0, or false. Comparing to null is overly specific.

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1  
Also note that if callback itself evaluates to a "false-y" value, then its typeof can never be "function". – Joe Jul 22 '12 at 23:11
5  
@Joe, but due to short-circuiting, that test will not be performed if callback evaluates to false. – Fabio A. Aug 1 '12 at 10:12
    
this solution isn't working, because the first condition will fire an exception immediately. this may work, for a property of an object: if (obj.callback){...} – Roey Feb 5 '15 at 10:50

try

if (typeof(callback) == 'function')
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New to JavaScript I am not sure if the behaviour has changed but the solution given by Jason Bunting (6 years ago) won't work if possibleFunction is not defined.

function isFunction(possibleFunction) {
  return (typeof(possibleFunction) == typeof(Function));
}

This will throw a ReferenceError: possibleFunction is not defined error as the engine tries to resolve the symbol possibleFunction (as mentioned in the comments to Jason's answer)

To avoid this behaviour you can only pass the name of the function you want to check if it exists. So

var possibleFunction = possibleFunction || {};
if (!isFunction(possibleFunction)) return false;

This sets a variable to be either the function you want to check or the empty object if it is not defined and so avoids the issues mentioned above.

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To be completely clear: my code doesn't throw the error, that's just the JavaScript parser doing that. The same would happen if you tried to use any undefined identifier in such a way. – Jason Bunting Nov 10 '15 at 19:56

typeof(callback) == "function"

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function something_cool(text, callback){
    alert(text);
    if(typeof(callback)=='function'){ 
        callback(); 
    };
}
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if ('function' === typeof callback) ...
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3  
A bit pedantic, and still uses a string literal. How about if(typeof Function === typeof callback)...? :) – Jason Bunting Nov 24 '10 at 22:33

Those methods to tell if a function is implemented also fail if variable is not defined so we are using something more powerful that supports receiving an string:

function isFunctionDefined(functionName) {
    if(eval("typeof(" + functionName + ") == typeof(Function)")) {
        return true;
    }
}

if (isFunctionDefined('myFunction')) {
    myFunction(foo);
}
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I think is a good answer, you are right, all the methods above fails is the function is not defined. – Matteo Conta Apr 17 '13 at 7:10
    
It's trivial to avoid undefined references - simply refer to typeof window.doesthisexist instead of doesthisexist. However, using eval (which: is evil) as shown will only work with named functions - this wouldn't work with the use case in the question. – AD7six Nov 6 '13 at 16:05

Try this:

callback instanceof Function
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Doesn't work. It will still give you the error. You should try it yourself before you post it as an answer. – vbullinger Sep 6 '12 at 19:09
    
@vbullinger I just tested again in Chrome, Firefox and Safari — works everywhere. With which engine did you experience trouble? – eWolf Sep 6 '12 at 21:04
    
Firefox. Did you test the case when callback wasn't defined? – vbullinger Sep 6 '12 at 21:07
    
Sure: pastebin.com/m30n3Cs1 – eWolf Sep 6 '12 at 21:13
3  
It does work when used on a function parameter, which is what the author asked for — I suppose ECMAScript distinguishes the cases of a non-existent variable and an existing variable with a value of undefined. It would be interesting to know more about this. – eWolf Sep 7 '12 at 17:09

try:

if (!(typeof(callback)=='undefined')) {...}
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I might do

try{
    callback();
catch(e){};

I know there's an accepted answer, but no one suggested this. I'm not really sure if this fits the description of idiomatic, but it works for all cases.

In newer js engines a finally can be used instead.

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This is a neat shortcut! Though it won't work for solely testing if a function exists or is defined (without also executing it). – Beejor Jun 2 '15 at 0:42
    
That's true. I assumed a situation where the callback is optional at that execution point. I usually use typeof callback anyway. – Quentin Engles Aug 29 '15 at 23:53
    
That makes sense; I was focusing on the question title more than its content. Sometimes I like the simplicity of using try-catch over tons of tests for something. Do you think there's a technical disadvantage to using it, in this case versus something like typeof? Or is it mainly a matter of doing things in a more proper/expected way? – Beejor Sep 12 '15 at 4:51
1  
If you want to test for multiple types then exceptions are not so good. For instance the project I'm working on right now uses a lot of type checking on one variable to see if it's a function, string, or whatever. In this project I really need the types. For this I use an array of types, and check accepted_types.indexOf(typeof value) !== -1 to see if it's in a range of types. In this situation exceptions would be prohibitive in my opinion. – Quentin Engles Sep 15 '15 at 22:16

I was looking for how to check if a jQuery function was defined and I didn't find it easily.

Perhaps might need it ;)

if(typeof jQuery.fn.datepicker !== "undefined")
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same as type0f($.datepicker) !== undefiled otherwise will be object – vladkras Sep 21 '15 at 20:54

If you use http://underscorejs.org, you have: http://underscorejs.org/#isFunction

_.isFunction(callback);
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One-line solution:

function something_cool(text, callback){
    callback && callback();
}
share|improve this answer
    
His example shows just that, that he wants the function to be called if it's defined, and if it's not, nothing happens. jsfiddle.net/nh1cxxg6 Functions which return falsey / false values still get called. Of course, this doesn't work for when you want values to be returned. – Samir Alajmovic Jan 18 at 20:41
    
Ah, I misread his question. However, this would cause an exception if callback is not a function. – John Carpenter Jan 18 at 20:43
    
That it does :) – Samir Alajmovic Jan 18 at 20:46

If you look at the source of the library @Venkat Sudheer Reddy Aedama mentioned, underscorejs, you can see this:

_.isFunction = function(obj) {
  return typeof obj == 'function' || false;
};

This is just my HINT, HINT answer :>

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