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I am new to the world of Javascript and am tinkering with writing very basic functions and stumbled upon the example below by accident and am unsure why it works when I am not passing a parameter when the function demands it.

Sample function

function myfunction(x) {
    alert("This is a sample alert");
}

Now if I call the function myfunction(); I am presented with the alert. Why is that that I am able to call the function without any errors or warnings when I have not passed a parameter?

EDIT

I did not expect so many great answers and I am by no means in a position yet able to say which answer is the best so am I able to request people to suggest the best answer and I'll award the acceptance to that person.

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2  
Might also be helpful: developer.mozilla.org/en/JavaScript/Guide/Functions –  Felix Kling Jun 19 '12 at 19:24
1  
There is no overloading based upon function signatures in JS so it really doesn't care how many params the function "expects". You can even pass in params that the function isn't defined to take and just use the keyword arguments to retrieve them. –  scrappedcola Jun 19 '12 at 19:28
    
@scrappedcola - What do you mean by overloading as well as pass in parameters that the function isn't defined to take? Can you give examples? –  PeanutsMonkey Jun 19 '12 at 19:34
2  
@PeanutsMonkey. He meant, you can't have two functions: function foo(x){...} and function foo(x,y,z){...} you can have only one function for each name. –  gdoron Jun 19 '12 at 19:51
2  
@PeanutsMonkey. Yes, you can't have function overloading in js, you have other ways though to mock it. –  gdoron Jun 19 '12 at 19:53

7 Answers 7

up vote 16 down vote accepted

Nothing will happen- meaning you won't get an error or a warning as passing the parameters in javascript is optional.
All the parameters that weren't "supplied" will have the undefined value.

function foo(x, y, z){
    //...
}

foo(1);

Inside the foo function now:

function foo(x, y, z){
    x === 1
    y === undefined
    z === undefined
}

You can even pass more arguments, like:

foo(1,2,3,4,5,7); // Valid!

You can know the amounts of parameters supplied by arguments.length from inside the function.

Live DEMO


The code from the DEMO:

function foo(x, y, z) {
    console.log('x value: ' + x);
    console.log('y value: ' + y);
    console.log('z value: ' + z);
    console.log('Arguments length: ' + arguments.length);
}

console.log('Zero parameters');
foo();
console.log('Four parameters');
foo(1, 2, 3, 4);​

Example of useful function that handle any amount of parameters:

function max() {
    var maxValue = arguments[0];
    for (var i = 1; i < arguments.length; i++) {
        if (maxValue < arguments[i]) {
            maxValue = arguments[i];
        }
    }
    return maxValue;
}

Live DEMO

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Thanks for the live demo. Did not expect so many good answers. So if I have a function such as function myfunction (a,b){} and passed the values myfunction(1,2,3,4,5), I take it that it is still valid? Is the expectation that there will be some warning or error? –  PeanutsMonkey Jun 19 '12 at 19:32
    
Sorry, would you mind elaborating what the command console.log does as well as arguments.length? –  PeanutsMonkey Jun 19 '12 at 19:33
    
@PeanutsMonkey. Valid! no warning no error, it be even useful, I'll give you a demo in a moment. –  gdoron Jun 19 '12 at 19:34
1  
@PeanutsMonkey. It works with IE as well if you have the developers console installed, I think it is installed by default from IE8+. I didn't understand what you wrote about alert. –  gdoron Jun 19 '12 at 19:44
1  
@PeanutsMonkey. 1. You can't have code after return it's being ignored. 2. you will not get errors or warnings. See this DEMO –  gdoron Jun 19 '12 at 20:24

All arguments in JavaScript functions are optional (read "loosely typed").

JavaScript functions can be invoked with any number of arguments, regardless of the number of arguments named in the function definition. Because a function is loosely typed, there is no way for it to declare the type of arguments it expects, and it is legal to pass values of any type to any function. When a function is invoked with fewer arguments than are declared, the additional arguments have the undefined value.

You can refer to a function's arguments within the function by using the named argument variables or the arguments object. This object contains an entry for each argument passed to the function, the first entry's index starting at 0. For example, if a function is passed three arguments, you can refer to the argument as follows:

arguments[0]
arguments[1]
arguments[2]
  • JavaScript - The Definitive Guide, 5th Edition
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That's just how JavaScript works. Parameters are optional, and will have the not-really-a-value value "undefined" in the function if they're missing from a function call.

By "optional" I mean just that: invoking any function involves an arbitrarily long list of parameters. There need be no relationship between the number of parameters passed to a function and the number declared. Best way to think of this declaration, then:

function x(a, b, c) {
  // ...
}

is that you're declaring a function and binding the name "a" to the first parameter, "b" to the second, and "c" to the third. It's by no means guaranteed, however, that any of those will actually be bound to a value in any given invocation of the function later.

By the same token, you can define a function without any parameters at all, and then "find" them via the arguments object:

function noArgs() {
  var a = arguments[0], b = arguments[1], c = arguments[2];
  // ...
}

So that's not quite the same as the first function, but it's close in most ways that count practically.

The "undefined" value in JavaScript is a value, but it's semantics are kind-of unusual as languages go. In particular it's not exactly the same as the null value. Also, "undefined" itself is not a keyword; it's just a semi-special variable name!

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Could you elaborate further what you mean by optional as well as "not really a value" value undefined? –  PeanutsMonkey Jun 19 '12 at 19:21
    
@PeanutsMonkey - If the variable is not given, then it will be undefined. –  Derek 朕會功夫 Jun 19 '12 at 19:27
    
@Pointy - What do you mean by there is no guarantee that any of the declared parameters will be actually bound to a value? –  PeanutsMonkey Jun 19 '12 at 19:40
1  
@PeanutsMonkey JavaScript is a dynamic language. When calling a function, the declaration of the function is not important, including the number of parameters. Thus, you can declare a function with as many parameters as you like, but that places no restrictions on how many parameters are actually passed in when your function is called. (In that way, it's sort-of like C, at least C in the old days.) Thus, if you declare a parameter and a call is made without any parameter value supplied, the parameter will be undefined. –  Pointy Jun 19 '12 at 19:44

JavaScript doesn't have default values for function parameters like other languages do. So, you can pass as many or as little arguments as you want.

If you don't pass a value, the parameter is undefined.

function myfunction(x) {
    alert(x);
}

myfunction(); // alerts undefined
myfunction(1); // alerts 1
myfunction(1,2,3); // alerts 1

If you pass more parameters than are in the signature, you can use arguments.

function myfunction(x) {
    alert(x);
    console.log(arguments);
}

myfunction(1,2,3); // alerts 1, logs [1,2,3]
share|improve this answer
    
Thanks. Rather than cross posting, can you please see my example I provided to David Thomas as I still get the error undefined –  PeanutsMonkey Jun 19 '12 at 19:27
    
@PeanutsMonkey: Huh? What's your problem? –  Rocket Hazmat Jun 19 '12 at 19:33
    
Not a problem per se. I was referring to my follow-up question to David about passing more parameters which you have included in your answer. What I don't quite follow is what you mean by logs? Where does it log it? –  PeanutsMonkey Jun 19 '12 at 19:38
1  
@PeanutsMonkey: It logs it to your "JavaScript console". In most browsers you can press F12 or Ctrl+Shift+J to get to it. –  Rocket Hazmat Jun 19 '12 at 19:39

Because there's no error until the function expects to be able to work with the parameter that you're supposed to pass.

For example:

function myfunction(x) {
    return x*2;
}

Would throw an error; albeit probably only a NaN (in this case) or a variable is undefined.

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Okay so as long as I don't reference the parameter in the function, I will not get an error? Is that right? –  PeanutsMonkey Jun 19 '12 at 19:22
    
That's how it seems to work, yep. –  David Thomas Jun 19 '12 at 19:24
    
Now if I elaborate on the example you provide i.e. function myfunction(a,b) { var calc = a+b; return;} and then call upon the function document.write(myfunction(1.2)); why is that I still get the value of undefined even though I am passing a parameter? –  PeanutsMonkey Jun 19 '12 at 19:24
1  
Because you're not returning anything. You have to explicitly, in your example, return a value: either return calc; or return a+b; (as the last line, obviously; and the latter return in place of the var calc). –  David Thomas Jun 19 '12 at 19:26
    
So you mean I don't have to declare a variable if I do return a+b;? –  PeanutsMonkey Jun 19 '12 at 19:30

You can also provide more arguments than just the one mentioned in the function

myFunction(1,2,3,4,5,6,7,'etc');

You can use the arguments property which is an array in order to view the provided arguments.

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+1 for mentioning arguments. –  Derek 朕會功夫 Jun 19 '12 at 19:31

If you omit the argument, its value will be undefined. This enables you to create optional parameters quite easily.

Another feature is the ability to define a function with no parameters, and call it with arguments successfully, making use of the arguments object. This lets you easily create variable-length argument arrays.

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