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In continuation of this question, what is prototype.constructor for?

I thought that by simply doing:

new some_object()

that the function object became a constructor. I don't understand why you would need to set it in this manner.

some_object.prototype.constructor = some_object;
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you don't need to set it... new does that for you. –  dandavis Jul 26 '13 at 16:25
1  
The constuctor property is used when you get handed an object and want to know what function constructed it. –  apsillers Jul 26 '13 at 16:25
1  
@dandavis You need to (re)set it when overwriting a prototype completely. Foo.prototype = { ... } clobbers Foo.prototype.constructor with Object. –  apsillers Jul 26 '13 at 16:26
    
I think this can help you: tobyho.com/2010/11/22/javascript-constructors-and –  ProgramFOX Jul 26 '13 at 16:26
    
@apsillers : you just mentionned a common misunderstanding : constructor is refering to the constructor function, which does not change when you change the function's prototype. Setting again the constructor is useless. (see jsbin.com/iraseg/1/edit and watch the console results if in doubts). –  GameAlchemist Jul 26 '13 at 17:10

2 Answers 2

Suppose class A inherit B using the following:

A.prototype = new B();

After this A.prototype.constructor == B. So instances of A have a constructor from B. It's a good practice to reset a constructor after the assignment.

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Imagine a function that takes an object and constructs a new instance of that object's type:

function makeNewObjectWithSameType(typedObject) {
    return new typedObject.constructor();
}

There is why you might need a constructor property.

But constructor is already set when you define your constructor -- why would you need to define it again? Consider the following case:

function Foo() {
    // constructor logic...
}
Foo.prototype.constructor == Foo; // true by default

var f = new Foo();
f.constructor == Foo; // true!

But now consider that Foo.prototype is overwritten:

function Foo() {
    // constructor logic...
}
Foo.prototype = {
    // new prototype; this is an `Object`
}
Foo.prototype.constructor == Foo; // FALSE! Foo.prototype is an Object
// thus, constructor == Object

var f = new Foo();
f.constructor == Foo; // FALSE! again, this is Object

If you passed in f to my makeNewObjectWithSameType function above, it would construct an Object, rather than a Foo.

You can solve this by manually resetting Foo.prototype.constructor = Foo; after you reassign Foo.prototype to a new object.

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