Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can I access a function name from inside that function?

// parasitic inheritance
var ns.parent.child = function() {
  var parent = new ns.parent();
  parent.newFunc = function() {

  }
  return parent;
}

var ns.parent = function() {
  // at this point, i want to know who the child is that called the parent
  // ie

}

var obj = new ns.parent.child();
share|improve this question
    
well, in the parent, i can then access other functions by convention, such as ns[child][schema] or ns[child][dbService]. Without it, I have to hard code these references in every child class. –  Scott Apr 15 '10 at 19:45
    
why not just pass the child function as an argument to the parent? var parent = new ns.parent(this); –  plodder Apr 15 '10 at 19:50
    
because there are dozens of such lookups, and dozens of children. That is currently what I'm doing, but it's the same every time and would be perfect if that duplicate logic could simply be placed inside the parent once, based on the derived function. –  Scott Apr 15 '10 at 19:51
    
see, it's not the child function I want, it's the naming convention used, because that naming convention can be used to load other functions that are not currently defined on the child object, but are related to that child throughout the system. –  Scott Apr 15 '10 at 19:53
    
ie, app.schemas.child = { } which is defined in another file and not present on the child object. –  Scott Apr 15 '10 at 19:54

12 Answers 12

The best thing to do is:

function functionName(fun) {
  var ret = fun.toString();
  ret = ret.substr('function '.length);
  ret = ret.substr(0, ret.indexOf('('));
  return ret;
}

Note: Using Function.caller is non-standard and arguments.callee is forbidden in strict mode.

share|improve this answer

what you're doing is assigning unnamed function to a variable. you probably need named function expression instead ( http://kangax.github.com/nfe/ ).

var x = function x() {
    console.log( arguments.callee.name );
}
x();

however I'm not sure how much cross-browser that is; there's an issue with IE6 that makes you function's name leak to the outer scope. also, arguments.callee is kind of deprecated and will result in error if you're using strict mode.

share|improve this answer
    
nice, this works in Node.js too –  Paul Oct 28 '11 at 11:53
1  
This doesn't works on old versions of Safari browser. –  Anubhav Gupta Dec 31 '13 at 18:30

This might work for you:

function foo() { bar(); }

function bar() { console.log(bar.caller.name); }

running foo() will output "foo" or undefined if you call from an anonymous function.

It works with constructors too, in which case it would output the name of the calling constructor (eg "Foo").

More info here: https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/Function/Caller

They claim it's non-standard, but also that it's supported by all major browsers: Firefox, Safari, Chrome, Opera and IE.

share|improve this answer

You can't. Functions don't have names according to the standard (though mozilla has such an attribute) - they can only be assigned to variables with names.

Also your comment:

// access fully qualified name (ie "my.namespace.myFunc")

is inside the function my.namespace.myFunc.getFn

What you can do is return the constructor of an object created by new

So you could say

var obj = new my.namespace.myFunc();
console.info(obj.constructor); //my.namespace.myFunc
share|improve this answer
    
i need it inside the func because i'm passing it up the inheritance chain and I omitted that stuff for brevity. –  Scott Apr 15 '10 at 19:30
    
I've edited the question to be more complete. –  Scott Apr 15 '10 at 19:32
    
'this' will be the instance that invoked the function. So if you 'this' inside the parent function that will give you the instance of the function that called it. That's all you should need - not sure why you need the name too –  plodder Apr 15 '10 at 19:47
1  
well, in the parent, i can then access other functions by convention, such as ns[child][schema] or ns[child][dbService]. Without it, I have to hard code these references in every child class. –  Scott Apr 15 '10 at 19:49

inspired by Vlad's answer:

If you have a reference to the function, you can do:

/\W*function\s+([\w\$]+)\(/.exec( myFunction.toString() )[ 1 ]

reduces 4 lines to one, with less function calls...

It does sacrifice some readability, and unless it is in performance critical code, I would definitely suggest rapping it in a function.

share|improve this answer

You can use name property to get the function name, unless you're using an anonymous function

For example:

var Person = function Person () {
  this.someMethod = function () {};
};

Person.prototype.getSomeMethodName = function () {
  return this.someMethod.name;
};

var p = new Person();
// will return "", because someMethod is assigned with anonymous function
console.log(p.getSomeMethodName());

now let's try with named function

var Person = function Person () {
  this.someMethod = function someMethod() {};
};

now you can use

// will return "someMethod"
p.getSomeMethodName()
share|improve this answer

look here: http://www.tek-tips.com/viewthread.cfm?qid=1209619

arguments.callee.toString();

seems to be right for your needs.

share|improve this answer
    
nope. see edit above. –  Scott Apr 15 '10 at 19:37
    
arguments.callee.toString() just returns the source of the function. –  Scott Apr 15 '10 at 19:38

You could use Function.callee:

The native arguments.caller method has been deprecated, but most browsers support Function.caller, which will return the actual invoking object (its body of code): https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Function/caller?redirectlocale=en-US&redirectslug=JavaScript%2FReference%2FGlobal_Objects%2FFunction%2Fcaller

You could create a source map:

If what you need is the literal function signature (the "name" of it) and not the object itself, you might have to resort to something a little more customized, like creating an array reference of the API string values you'll need to access frequently. You can map them together using Object.keys() and your array of strings, or look into Mozilla's source maps library on GitHub, for bigger projects: https://github.com/mozilla/source-map

Personal suggestion:

Your code does not work because you cannot define new variables using dot-notation like that. In JavaScript, references must be defined in order to be accessed; and must be accessible in order for them to be defined (even if deferred). In my opinion, the best way to keep things "feeling" procedural (e.g. easier to understand), while actually being extremely asynchronous, is to use a variation of a monad pattern, or other design pattern that heavily uses asynchronous computations to "chain" multiple methods together. Most of these libraries provide "shifting" functionality which allows the developer to "hop around" the hierarchy easily. On the front-end, this can be very useful (because of the hierarchical nature of the DOM); but in relational programming, there is almost always a more efficient way, that's just as easy to use, or easier.

So, in your example, if parent and child are DOM elements, perhaps something highly monadic like jQuery (http://www.jquery.com) would be a great library decision. Otherwise, I'd use a source-mapping technique, or question whether or not you actually really needed the function "name" in the first place -- get creative with alternative options! There are many, many ways to do the exact same things.

Example:

To "monadify" your code, it would look like: ns().parent().child() -- where "child" processes implement asynchronously on the "promise" that their "parent" processes will return the expected scope after execution:

https://en.wikipedia.org/wiki/Monad_(functional_programming)

share|improve this answer
1  
By the way, I should add that in most implementations of JavaScript, once you have your constructor's reference in scope, you can get its string name from its name property (e.g. Function.name, or Object.constructor.name). –  benny Jun 27 '13 at 15:41

I had a similar problem and I solved it as follows:

Function.prototype.myname = function() { return this.toString().substr( 0, this.toString().indexOf( "(" ) ).replace( "function ", "" ) ; }

This code implements, in a more comfortable fashion, one response I already read here at the top of this discussion. Now I have a member function retrieving the name of any function object. Here's the full script ...

Function.prototype.myname = function() { return this.toString().substr( 0, this.toString().indexOf( "(" ) ).replace( "function ", "" ) ; }

function call_this( _fn ) { document.write( _fn.myname() ); }

function _yeaaahhh() { // do something }

call_this( _yeaaahhh );

share|improve this answer

This worked for me.

function AbstractDomainClass() {
    this.className = function() {
        if (!this.$className) {
            var className = this.constructor.toString();
            className = className.substr('function '.length);
            className = className.substr(0, className.indexOf('('));
            this.$className = className;
        }
        return this.$className;
    }
}

Test code:

var obj = new AbstractDomainClass();
expect(obj.className()).toBe('AbstractDomainClass');
share|improve this answer

You could use this, but it's not for all browsers, only the ones that support Error.stack

function VamosRafa(){ 
  var a = new Error().stack.match(/at (.*?) /);
  console.log(a[1]);
} 
VamosRafa();

Of course this is for the current function, but you get the idea.

Cheers!

share|improve this answer

Every function is a property of its containing object. Like:

var myCar = {
make: "Ford",
model:"Mustang",
year : 1969,
sell : function(){alert('Sold.');}
};
myCar.sell();

So you can get the name of a given function this way:

myCar.getFnName = function(fn){
  for(var i in this)
    if(this[i]===fn)
      alert("Function name is: "+i);  
};
myCar.getFnName(myCar.sell);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.