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This question already has an answer here:

Specifically, I don't understand why some methods require a .prototype in front of them but others to not. I was practising a code where a correct answer was

var Foo = function(value) {
  this.val = value;
}

Foo.prototype.valueOf = function() {
  return this.val;
}

and I am wondering why the prototype in Foo.prototype.valueOf was needed, why can you not simply just do Foo.valueOf? It is what I did before with other prototypes. For example, I do x.slice(2,4) and not x.prototype.slice(2,4).

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marked as duplicate by cookie monster, Ryan O'Hara Jul 7 '14 at 19:48

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.

3  
Before anything could be explained about this, you should first understand the difference between adding/setting a method and calling an already existing method. – The Paramagnetic Croissant Jul 7 '14 at 19:46
    
Short answer: You can! Both work and are valid JavaScript Long answer: The .prototype way is a preferred way of defining methods for an object constructor because in that way, all methods are shared between instances created with that constructor instead of being redefined each time, which would be somewhat more memory intensive (and might have a performance benefit in modern browsers, who tend to search for methods first in an object's prototype). – Pablo Mescher Jul 7 '14 at 19:50
    
the valueOf() drills into the object to return just the val property instead of the whole object. – dandavis Jul 7 '14 at 19:55
    
If you'd like to know more about how prototype is used by JavaScript then the following answer may help you out: stackoverflow.com/a/16063711/1641941 – HMR Jul 8 '14 at 2:39
up vote 0 down vote accepted

Foo is a constructor function. If you wanted to call Foo.valueOf like x.slice, you could set Foo.valueOf, but that’s not what this code accomplishes; it says that any object constructed using Foo should inherit the valueOf defined there. So:

var x = new Foo(42);
x.valueOf() === 42 // true
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