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somebody know how to get typeof object under prototype property? i.e. I have the next code:

Object.prototype.someproperty = function(){
...do something...
console.log(typeof this); 
..more...
}

in my code this results alway's "Function" because the constructor of objects is a function. when I call like this

Array.someproperty(); //In this i want get "array"
//or
String.someproperty(); //In this i want get "string"

I want get "Array" instead "function"... somebody know how?

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1  
typeof [] will always return "object" because all arrays are objects (in JavaScript). A better way to check for an array is -- Object.prototype.toString.call(yourVariableHere) === '[object Array]' –  John Strickler Oct 17 '11 at 15:20
    
i have solved my problem with simple "name" like this. Object.prototype.myfn= function(){ return this.name; } String.myfn(); //return "String" Array.myfn(); //return "Array" Function.myfn(); //return "Function" Object.myfn(); //return "Object" Number.myfn(); //return "Number" I change the "someproperty" by "myfn" by the controversy. Thanx guys. –  iLevi Oct 17 '11 at 16:10
    
Ugh, once again, you're only applying myfn to Functions! If that's your intent, you should extend Function.prototype instead of Object.prototype. There are very real reasons for this. Also, if you need full browser support, .name on a function is a non standard property, and won't work in some browsers. –  user113716 Oct 17 '11 at 16:33
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2 Answers

The problem here is that this when called via Array and String is bound to the function and not an instance of the types. The only way I know of to determine which of these functions is being called is to do manual testing like the following

Object.prototype.someproperty = function() {
  if (this === Array) {
    return "array";
  } else if (this === String) {
    return "string";
  } 
  ...
}

In this case though you're not actually reporting the type of the object the prototype is being invoked from. The value "function" is quite accurate for that. This is more of a heuristic than a true type test

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It would be an improvement to extend Function.prototype instead if this is what OP actually wants to do. –  user113716 Oct 17 '11 at 15:33
    
@Ӫ_._Ӫ possibly. I'm not 100% sure what the intent of the OP was here. My initial reaction was they wanted a function that worked on all instances but then were confused why uses on the Array and String constructor function failed. If that was the case then the extension on Object makes more sense. Overall though this type of test seems doomed to be flaky at best –  JaredPar Oct 17 '11 at 15:35
    
Yeah, this is confusing, especially since the method is named someproperty. But either way, IMO Object.prototype extensions (well enumerable ones anyway) rarely if ever make sense. But if that's what OP wants, then that's what OP gets. ;) –  user113716 Oct 17 '11 at 15:41
    
yep, i want extend all objects; strings,arrays,functions with a universal function for extend all types. example: <code>Array.mynewextendfn('nameoffn',function(){});</code> and add the nameoffn in a array of registre. is so rare, but for my project is important. thanx –  iLevi Oct 17 '11 at 15:49
    
Finally along this time and with a lot of reading and learning, I have seen that it is very bad practice to extend the prototype objects. I thank you all for your support. –  iLevi Jan 8 '13 at 17:59
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up vote 0 down vote accepted

Finally along this time and with a lot of reading and learning, I have seen that it is very bad practice to extend the prototype objects. I thank you all for your support.

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