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.

I'm currently writing some code that wrappers user-written JavaScript functions, and have come across a point in the logic where I would like to trigger a particular behaviour if the function in question never returns a value i.e. the return keyword is never evaluated.

Currently I am assuming that if a function returns undefined, it has not returned, however this is not strictly true—due to the fact a function can always return undefined, or return the value of an undefined property.

With a function call you can always tell how many parameters were used due to the arguments.length property, I was wondering if anyone knew of a similar trick for a function's return value?

So, is it possible to tell the difference between the return values of a, b or even c

var a = function(){  };
var b = function(){ return undefined; };
var c = function(){ if(1){}else{return undefined;}; };
share|improve this question
    
I think this is not possible. –  Pavel Strakhov Dec 1 '12 at 10:45
    
I'm curious: What's the use case? Why do you care which of a, b, or c occurred? They are functionally identical. A difference that makes no difference is no difference... :-) –  T.J. Crowder Dec 1 '12 at 10:53
    
Don't forget return; and return void <expr> which also give undefined. –  Paul S. Dec 1 '12 at 11:03
    
If you have access to source before it gets interpreted, you could replace the final } with return someConst; where someConst is something very unlikely to be returned by the user, then return undefined from your wrapper. –  Paul S. Dec 1 '12 at 11:09
    
@T.J.Crowder it's really rather a singular use-case, it's part of a game where coding will be involved - and different things will occur depending on the code used. I was just testing out a few ideas and had not come across this issue before. The responses are sadly as I expected though.. rather a subtle annoyance from JS's pov. Ah well c'est la vie :) Looks like I'll have to try a different approach. –  pebbl Dec 1 '12 at 12:01

5 Answers 5

up vote 4 down vote accepted

No, you cannot reliably, cross-browser, tell whether a function returned by just reaching the end of its code, using return without a value, or using return undefined. This is covered by Section 13.2.1 of the specification.

Another answer here suggests you could do it by analyzing the source code of the function. However, there is no standard mechanism for doing that. Though nearly all browsers make some form of the source available from Function#toString, some do not (mostly mobile browsers), and it is not defined by the specification. But if you have a certain set of browsers that you support, and they all have it, that would be your only real option — but even then, you wouldn't necessarily know which code branch was taken within the function.

share|improve this answer

Leaving a function blank will also return undefined, so a, b and c will all return identical values.

The only way to achieve something like this would to actually set some kind of flag in the function itself, but I'm guessing you want to be able to do this independently of the implementations of the actual function.

share|improve this answer
    
+1 thanks. yep I started down this path but then started to realise just what would be involved, basically ended up with almost re-parsing the code involved :S –  pebbl Dec 1 '12 at 12:07

There is no way to tell the difference.

If you really wanted to, you could try to analyze the function's source code and determine whether it has any return statements, and if not, then assume it won't return a value. Of course this would be a bit harder to determine if a function sometimes returns and others not (eg. a return statement in an if-block)

share|improve this answer
    
+1 thanks for the answer, very true, but I really was hoping to avoid anything on this level though.. if only js had some form of relection ability or a way of defining the default return value. –  pebbl Dec 1 '12 at 12:05

This is crazy and definitely not recommended, it creates a copy of the function, modifies the function body and uses eval

function returnProxy(func,args) {
    var returnFlag = Math.random()+"";

    // create new function based on passed function body
    var fullFuncBody = func.toString();
    var tmpFuncStr = "function  "+ fullFuncBody.substr(fullFuncBody.indexOf("("));

    tmpFuncStr = tmpFuncStr.substr(0,tmpFuncStr.length-1)+"\nreturn '"+returnFlag+"'}";

    var tmpFunc;
    eval("tmpFunc = "+tmpFuncStr); // really bad things

    var funcOut = tmpFunc.apply(this,args);

    return {
        out: (funcOut == returnFlag) ? undefined : funcOut,
        returned: (returnFlag != funcOut)
    }
}

Assuming you have a function like this,

function someFunction(action) {
    switch(action) {
        case 1:
            return undefined;
        case 2:
            return "hello";
    }
}

You would use the proxy function like this:

returnProxy(someFunction,[1]); // instead of calling someFunction(1)

With the first parameter being the function itself , and second parameter an array of parameters

The return value will be an object with 2 properties, out contains the function result, and returned is a boolean indicating if the function returned or not

Example output,

returnProxy(someFunction,[1]); // {out: undefined, returned: true}
returnProxy(someFunction,[2]); // {out: "hello", returned: true}
returnProxy(someFunction,[3]); // {out: undefined, returned: false} 
share|improve this answer
    
I like this just for its insanity! –  Roysvork Dec 1 '12 at 21:54

You can only tell if you invoke the functions through a wrapper, but I'm not sure if this is suitable for your usecase.

function invoker(f) {
    var actualFunc = f,
        invokeCount = 0;

    function invoke() {
        invokeCount = invokeCount +1;
        return actualFunc.apply(this, arguments);
    }

    function invoked() {
       return invokeCount;
    }

    return {
      invoke: invoke,
      invoked: invoked
    };
}

var a = function(){  };
var b = function(){ return undefined; };
var c = function(){ if(1){}else{return undefined;}; };

var ainvoker = new invoker(a);    

alert(ainvoker.invoke());
alert(ainvoker.invoked());
share|improve this answer
    
Please can you explain how ainvoker.called() would return a different value from binvoker.called()? I also considered this approach but I don't think it actually solves the issue. –  Roysvork Dec 1 '12 at 11:01
    
It counts the number of times it is invoked. I assume it still holds that javascript is not multithreaded, so if call() is done, it has increased invoked with 1 AND returned from a() (or b()). The difference would be that for ainvoker.called() === 1 and for binvokver.called() === 0. But I might be missing something.... –  rene Dec 1 '12 at 11:07
    
@rene Suggesting return actualFunc(); to return actualFunc.apply(this, arguments); and maybe you chose to name it call on purpose but this seems like you may have forgotten invokerinstance.call should mean something different. –  Paul S. Dec 1 '12 at 11:13

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.