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Given a function:

function x(arg) { return 30; }

You can call it two ways:

result = x(4);
result = new x(4);

The first returns 30, the second returns an object.

How can you detect which way the function was called inside the function itself?

Whatever your solution is, it must work with the following invocation as well:

var Z = new x(); 
Z.lolol = x; 
Z.lolol();

All the solutions currently think the Z.lolol() is calling it as a constructor.

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15 Answers 15

up vote 50 down vote accepted
+150

I don't think what you want is possible. There simply isn't enough information available within the function to make a reliable inference.

Looking at the ECMAScript 3rd edition spec, the steps taken when new x() is called are essentially:

  • Create a new object
  • Assign its internal [[Prototype]] property to the prototype property of x
  • Call x as normal, passing it the new object as this
  • If the call to x returned an object, return it, otherwise return the new object

Nothing useful about how the function was called is made available to the executing code, so the only thing it's possible to test inside x is the this value, which is what all the answers here are doing. As you've observed, a new instance of* x when calling x as a constructor is indistinguishable from a pre-existing instance of x passed as this when calling x as a function, unless you assign a property to every new object created by x as it is constructed:

function x(y) {
    var isConstructor = false;
    if (this instanceof x // <- You could use arguments.callee instead of x here,
                          // except in in EcmaScript 5 strict mode.
            && !this.__previouslyConstructedByX) {
        isConstructor = true;
        this.__previouslyConstructedByX = true;
    }
    alert(isConstructor);
}

Obviously this is not ideal, since you now have an extra useless property on every object constructed by x that could be overwritten, but I think it's the best you can do.

(*) "instance of" is an inaccurate term but is close enough, and more concise than "object that has been created by calling x as a constructor"

share|improve this answer
    
why are you using this.__previouslyConstructedByX instead of var previouslyConstructedByX ? –  PiPeep Dec 13 '09 at 14:12
1  
@PiPeep: Only as a naming convention intended to suggest that the property isn't to be used for any other purpose. Some people use a convention that properties not intended as part of the public API for an object start with an underscore, while there are some non-standard properties of JavaScript objects in some browsers that start with double underscores and I was taking my cue from those ideas. I didn't think about it in great detail and could be persuaded that the two underscores is a bad idea. –  Tim Down Dec 13 '09 at 22:03
3  
I just stopped by and was pretty surprised to see that this answer only had one upvote. It is a great answer. Come on, people, don't be so stingy. (Needless to say, plus 1). –  Charlie Flowers Jan 20 '10 at 2:58
6  
I've come up with this technique independently, and I'm using Object.defineProperty('__previouslyConstructedByX', { value : true, writeable : false, enumerable : false}) This makes the extra property much less likely to be found accidentally, and guarantees it will never change. I'm working in node.js so I can be sure the implementation will support it, but in the browser you'd have to feature test to use this. –  Nathan MacInnes Jul 20 '12 at 12:14
1  
Note that arguments.callee is deprecated in ES5 strict mode. –  Deqing Sep 11 '13 at 2:50

1) You can check this.constructor:

function x(y)
{
    if (this.constructor == x)
        alert('called with new');
    else
         alert('called as function');
}

2) Yes, the return value is just discarded when used in the new context

share|improve this answer
1  
ah, nice. is this.constructor undefined in the 'else'? –  Claudiu Dec 15 '08 at 9:06
14  
NOTE: The return value is not discarded; if the return value is an Object, then that object is returned instead of the 'this'. –  Claudiu Dec 22 '08 at 19:38
2  
this also doesn't work if something like "x.prototype = new Array()", and the x.prototype.constructor field isn't re-assigned. –  Claudiu Feb 9 '09 at 1:34
2  
This doesn't work. Behold: { var Z = new x(); Z.lolol = x; Z.lolol();}. It thinks the 2nd invocation is it being called as a constructor. –  Claudiu Dec 9 '09 at 20:19
7  
This fails if window.constructor == x. Use instanceof or Object.getPrototypeOf. –  Eli Grey Dec 9 '09 at 20:41

The benefit of the code below is that you don't need to specify the name of the function twice and it works for anonymous functions too.

function x() {
    if ( (this instanceof arguments.callee) ) {
      alert("called as constructor");
    } else {
      alert("called as function");
    }
}

Update As claudiu have pointed out in a comment below, the above code doesn't work if you assign the constructor to the same object it has created. I have never written code that does that and have newer seen anyone else do that eighter.

Claudius example:

var Z = new x();
Z.lolol = x;
Z.lolol();

By adding a property to the object, it's possible to detect if the object has been initialized.

function x() {
    if ( (this instanceof arguments.callee && !this.hasOwnProperty("__ClaudiusCornerCase")) ) {
        this.__ClaudiusCornerCase=1;
        alert("called as constructor");
    } else {
        alert("called as function");
    }
}

Even the code above will break if you delete the added property. You can however overwrite it with any value you like, including undefined, and it still works. But if you delete it, it will break.

There is at this time no native support in ecmascript for detecting if a function was called as a constructor. This is the closest thing I have come up with so far, and it should work unless you delete the property.

share|improve this answer
1  
This doesn't work. Behold: { var Z = new x(); Z.lolol = x; Z.lolol();}. It thinks the 2nd invocation is it being called as a constructor. –  Claudiu Dec 9 '09 at 20:14
    
@Claudiu: Does this work for you? –  some Oct 30 '11 at 10:55
2  
This doesn't seem to be allowed by "use strict";. –  Matt Fenwick May 4 '12 at 19:56
2  
@MattFenwick Correct, since arguments.callee is forbidden in strict mode. If you replace that with the name of the constructor it should work. –  some Sep 3 '12 at 6:42

Two ways, essentially the same under the hood. You can test what the scope of this is or you can test what this.constructor is.

If you called a method as a constructor this will be a new instance of the class, if you call the method as a method this will be the methods' context object. Similarly the constructor of an object will be the method itself if called as new, and the system Object constructor otherwise. That's clear as mud, but this should help:

var a = {};

a.foo = function () 
{
  if(this==a) //'a' because the context of foo is the parent 'a'
  {
    //method call
  }
  else
  {
    //constructor call
  }
}

var bar = function () 
{
  if(this==window) //and 'window' is the default context here
  {
    //method call
  }
  else
  {
    //constructor call
  }
}

a.baz = function ()
{
  if(this.constructor==a.baz); //or whatever chain you need to reference this method
  {
    //constructor call
  }
  else
  {
    //method call
  }
}
share|improve this answer
    
typeof (this) will always be 'object' in your examples –  Greg Dec 15 '08 at 9:21
    
bah, getting ahead of myself should just be testing 'this' directly - edited –  annakata Dec 15 '08 at 9:42
1  
note that this.constructor for a non-new call is DOMWindow in Chrome, and undefined in IE , so you can't rely on it. –  Claudiu Dec 15 '08 at 9:44
    
but in either of those cases the salient fact is that this.constructor is still not a.baz which is what matters –  annakata Dec 15 '08 at 10:29
    
yep, definitely - just wanted to point out that "and the system Object constructor otherwise" is not necessarily correct –  Claudiu Dec 15 '08 at 12:17

Checking for the instance type of the [this] within the constructor is the way to go. The problem is that without any further ado this approach is error prone. There is a solution however.

Lets say that we are dealing with function ClassA(). The rudimentary approach is:

    function ClassA() {
        if (this instanceof arguments.callee) {
            console.log("called as a constructor");
        } else {
            console.log("called as a function");
        }
    }

There are several means that the above mentioned solution will not work as expected. Consider just these two:

    var instance = new ClassA;
    instance.classAFunction = ClassA;
    instance.classAFunction(); // <-- this will appear as constructor call

    ClassA.apply(instance); //<-- this too

To overcome these, some suggest that either a) place some information in a field on the instance, like "ConstructorFinished" and check back on it or b) keep a track of your constructed objects in a list. I am uncomfortable with both, as altering every instance of ClassA is way too invasive and expensive for a type related feature to work. Collecting all objects in a list could provide garbage collection and resource issues if ClassA will have many instances.

The way to go is to be able to control the execution of your ClassA function. The simple approach is:

    function createConstructor(typeFunction) {
        return typeFunction.bind({});
    }

    var ClassA = createConstructor(
        function ClassA() {
            if (this instanceof arguments.callee) {
                console.log("called as a function");
                return;
            }
            console.log("called as a constructor");
        });

    var instance = new ClassA();

This will effectively prevent all attempts to trick with the [this] value. A bound function will always keep its original [this] context unless you call it with the new operator.

The advanced version gives back the ability to apply the constructor on arbitrary objects. Some uses could be using the constructor as a typeconverter or providing an callable chain of base class constructors in inheritance scenarios.

    function createConstructor(typeFunction) {
        var result = typeFunction.bind({});
        result.apply = function (ths, args) {
            try {
                typeFunction.inApplyMode = true;
                typeFunction.apply(ths, args);
            } finally {
                delete typeFunction.inApplyMode;
            }
        };
        return result;
    }

    var ClassA = createConstructor(
        function ClassA() {
            if (this instanceof arguments.callee && !arguments.callee.inApplyMode) {
                console.log("called as a constructor");
            } else {
                console.log("called as a function");
            }
        });
share|improve this answer
    
Of course, this will only work in browsers that have .bind implemented natively, i.e. browsers that support ecmascript 5, but it looks like you've got the only solution here that addresses the problem without adding extra properties to the object. –  kybernetikos Feb 25 '13 at 19:41
    
I wanted to add some code to show how your solution solves the specific problem, but apparently it's more appropriate in a comment (sorry that comments don't show code nicely): var x = function x(arg) { /* note: strict mode deprecates arguments.callee, but you can use the function name here. */ if (this instanceof x == false) { /* called as a function */ return 30; } }.bind({}); var Z = new x(); console.log(Z); Z.lolol = x; console.log(Z.lolol()); –  kybernetikos Feb 26 '13 at 8:23
    
Of course, a variation on this solution is to keep a reference to the object that the constructor is bound to, and then do an === check against that instead of the instanceof. –  kybernetikos Feb 26 '13 at 8:28

There is no reliable way to distinguish how a function is called in JavaScript code.1

However, a function call will have this assigned to the global object, while a constructor will have this assigned to a new object. This new object cannot ever be the global object, because even if an implementation allows you to set the global object, you still haven't had the chance to do it.

You can get the global object by having a function called as a function (heh) returning this.

My intuition is that in the specification of ECMAScript 1.3, constructors that have a defined behavior for when called as a function are supposed to distinguish how they were called using this comparison:

function MyClass () {
    if ( this === (function () { return this; })() ) {
        // called as a function
    }
    else {
        // called as a constructor
    }
}

Anyway, anyone can just use a function's or constructor's call or apply and set this to anything. But this way, you can avoid "initializing" the global object:

function MyClass () {
    if ( this === (function () { return this; })() ) {
        // Maybe the caller forgot the "new" keyword
        return new MyClass();
    }
    else {
        // initialize
    }
}

1. The host (aka implementation) may be able to tell the difference, if it implements the equivalent to the internal properties [[Call]] and [[Construct]]. The former is invoked for function or method expressions, while the latter is invoked for new expressions.

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Extending Gregs solution, this one works perfectly with the test cases you provided:

function x(y) {
    if( this.constructor == arguments.callee && !this._constructed ) {
        this._constructed = true;
        alert('called with new');
    } else {
        alert('called as function');
    }
}

EDIT: adding some test cases

x(4);             // OK, function
var X = new x(4); // OK, new

var Z = new x();  // OK, new
Z.lolol = x; 
Z.lolol();        // OK, function

var Y = x;
Y();              // OK, function
var y = new Y();  // OK, new
y.lolol = Y;
y.lolol();        // OK, function
share|improve this answer
    
this works, unless code modified _constructed. –  Claudiu Dec 13 '09 at 23:53
2  
That's exactly the same as my suggested solution, except using the weaker check on the constructor property rather than using instanceof –  Tim Down Dec 14 '09 at 15:56
    
@Tim: Well yes, you're right. –  Frunsi Dec 14 '09 at 16:09

Until I saw this thread I never considered that the constructor might be a property of an instance, but I think the following code covers that rare scenario.

// Store instances in a variable to compare against the current this
// Based on Tim Down's solution where instances are tracked
var Klass = (function () {
    // Store references to each instance in a "class"-level closure
    var instances = [];

    // The actual constructor function
    return function () {
        if (this instanceof Klass && instances.indexOf(this) === -1) {
            instances.push(this);
            console.log("constructor");
        } else {
            console.log("not constructor");
        }
    };
}());

var instance = new Klass();  // "constructor"
instance.klass = Klass;
instance.klass();            // "not constructor"

For most cases I'll probably just check instanceof.

share|improve this answer
    
Oh yeah. IE6 will need an implementation of indexOf added to Array.prototype. –  please delete me Sep 16 '10 at 2:08
    
ah nice. I like this answer best so far, since you can't tamper with it as much as if you tack on a property to the object –  Claudiu Sep 16 '10 at 13:54
1  
This is of course a rather nasty memory leak. –  kybernetikos Dec 28 '11 at 18:30

From John Resig:

function makecls() {

   return function(args) {

        if( this instanceof arguments.callee) {
            if ( typeof this.init == "function")
                this.init.apply(this, args.callee ? args : arguments)
        }else{
            return new arguments.callee(args);
        }
    };
}

var User = makecls();

User.prototype.init = function(first, last){

    this.name = first + last;
};

var user = User("John", "Resig");

user.name
share|improve this answer

In my testing for http://packagesinjavascript.wordpress.com/ I found the test if (this == window) to be working cross-browser in all cases, so that's the one I ended up using.

-Stijn

share|improve this answer
    
try it for the example i give. it won't work –  Claudiu Dec 9 '09 at 20:47

Tim Down I think is correct. I think that once you get to the point where you think you need to be able to distinguish between the two calling modes, then you should not use the "this" keyword. this is unreliable, and it could be the global object, or it could be some completely different object. the fact is, that having a function with these different modes of activation, some of which work as you intended, others do something totally wild, is undesirable. I think maybe you're trying to figure this out because of that.

There is an idiomatic way to create a constructor function that behaves the same no matter how it's called. whether it's like Thing(), new Thing(), or foo.Thing(). It goes like this:

function Thing () {
   var that = Object.create(Thing.prototype);
   that.foo="bar";
   that.bar="baz";
   return that;
}

where Object.create is a new ecmascript 5 standard method which can be implemented in regular javascript like this:

if(!Object.create) {
    Object.create = function(Function){
        // WebReflection Revision
       return function(Object){
           Function.prototype = Object;
           return new Function;
    }}(function(){});
}

Object.create will take an object as a parameter, and return a new object with that passed in object as its prototype.

If however, you really are trying to make a function behave differently depending on how it's called, then you are a bad person and you shouldn't write javascript code.

share|improve this answer
1  
That's an unfortunate choice of parameter names in the Object.create implementation: Function and Object both being native JavaScript objects makes it more confusing to read. –  Tim Down Dec 11 '09 at 9:33
    
You're right, but I'll note that I didn't write it. It's simply the best implementation of that particular function I'm able to find. The final ES5 version actually takes some additional parameters, that this won't handle. I await the canonical backwards compatible implementations for ES5 functions. Alas I'm not quite clever enough to write them myself. –  Breton Dec 11 '09 at 10:33

If you don't want to put a __previouslyConstructedByX property in the object - because it pollutes the object's public interface and could easily be overwritten - just don't return an instance of x:

function x() {

    if(this instanceof x) {
        console.log("You invoked the new keyword!");
        return that;
    }
    else {
        console.log("No new keyword");
        return undefined;
    }

}

x();
var Z = new x(); 
Z.lolol = x; 
Z.lolol();
new Z.lolol();

Now the x function never returns an object of type x, so (I think) this instanceof x only evaluates to true when the function is invoked with the new keyword.

The downside is this effectively screws up the behaviour of instanceof - but depending on how much you use it (I don't tend to) that may not be a problem.


If you're goal is for both cases to return 30, you could return an instance of Number instead of an instance of x:

function x() {

    if(this instanceof x) {
        console.log("You invoked the new keyword!");
        var that = {};
        return new Number(30);
    }
    else {
        console.log("No new");
        return 30;
    }

}

console.log(x());
var Z = new x();
console.log(Z);
Z.lolol = x;
console.log(Z.lolol());
console.log(new Z.lolol());
share|improve this answer

I had this same problem when I tried to implement a function that returns a string instead of an object.

It seems to be enough to check for the existence of "this" in the beginning of your function:

function RGB(red, green, blue) {
    if (this) {
        throw new Error("RGB can't be instantiated");
    }

    var result = "#";
    result += toHex(red);
    result += toHex(green);
    result += toHex(blue);

    function toHex(dec) {
        var result = dec.toString(16);

        if (result.length < 2) {
            result = "0" + result;
        }

        return result;
    }

    return result;
}

Anyway, in the end I just decided to turn my RGB() pseudoclass into an rgb() function, so I just won't try to instantiate it, thus needing no safety check at all. But that would depend on what you're trying to do.

share|improve this answer

maybe I`m wrong but (at the cost of a parasite) the following code seems like a solution:

function x(arg) {
    //console.debug('_' in this ? 'function' : 'constructor'); //WRONG!!!
    //
    // RIGHT(as accepted)
    console.debug((this instanceof x && !('_' in this)) ? 'function' : 'constructor');
    this._ = 1;
    return 30;
}
var result1 = x(4),     // function
    result2 = new x(4), // constructor
    Z = new x();        // constructor
Z.lolol = x; 
Z.lolol();              // function
share|improve this answer
1  
this is the same as the accepted answer –  Claudiu Nov 15 '13 at 16:01
    
I was wrong and the correct one is exaclty the one accepted –  fedeghe Nov 18 '13 at 16:37

Use this instanceof arguments.callee (optionally replacing arguments.callee with the function it's in, which improves performance) to check if something is called as a constructor. Do not use this.constructor as that can be easily changed.

share|improve this answer
2  
read the other answers before posting –  Claudiu Dec 9 '09 at 20:48
    
Claudiu, I did, but none of them mentioned using this isntanceof contructorName. –  Eli Grey Dec 9 '09 at 21:32
    
@Eli Grey: Really? I realize that it's almost two years ago since you wrote your comment, but could you please tell me what I used in my answer that was posted a few days short of one year before yours? –  some Oct 29 '11 at 2:49
    
I don't know why I would have said that. I must've been on a second page or something. –  Eli Grey Oct 29 '11 at 22:20

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