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In Javascript, is there any way to check the types of a function's arguments? I want to write a function called checkTypes that does the following:

function checkTypes(typeArr){
    //if the types do not match typeArr, throw an error
}

function exampleUsage(arr1, arr2, num1){
    checkTypes("object", "object", "number");
    //throw an error if the types do not match the corresponding elements
}
share|improve this question
    
In order to get this to work properly, I'll need to find a way to get the array of arguments from inside a function. –  Anderson Green Dec 18 '12 at 4:23
2  
You can access an arguments object with all the arguments and the number of arguments. It behaves much like an array (though it isn't one). Read this for more info: developer.mozilla.org/en-US/docs/JavaScript/Reference/… –  Surreal Dreams Dec 18 '12 at 4:28
1  
the question you should be asking yourself is, why do you care what type the arguments are? –  zzzzBov Dec 18 '12 at 4:34
1  
@AndersonGreen: Stop it. :P Javascript is not any of those many other languages. The whole concept of classes doesn't even exist natively; it's bolted on to appease people who can't wrap their heads around prototypes, and is so easy to subvert (even accidentally!) that relying on it for much of anything will drive you insane. –  cHao Dec 18 '12 at 5:09
1  
@AndersonGreen: myArray.constructor = Object;, for example. Or Array = function() {};. Depends on how you do your type check, but basically, no one way of checking is foolproof. You'd have to verify stuff a half dozen different ways, at which point you've spent more time on bureaucracy than actual work. –  cHao Dec 18 '12 at 5:36

6 Answers 6

up vote 3 down vote accepted

You can use the the typeOf function adapted from this post Fixing the JavaScript typeof operator combined with this function:

function typeOf( obj ) {
  return {}.toString.call( obj ).match(/\s(\w+)/)[1].toLowerCase();
}

function checkTypes( args, types ) {
  args = [].slice.call( args );
  for ( var i = 0; i < types.length; ++i ) {
    if ( typeOf( args[i] ) != types[i] ) {
      throw new TypeError( 'param '+ i +' must be of type '+ types[i] );
    }
  }
}

function foo( a,b,c ) {
  checkTypes( arguments, ['string', 'number', 'array'] );
  return 'foo';
}

console.log( foo( 'a', 1, [2] ) ); //=> foo
console.log( foo( 1, 1, [2] ) ); 
//^ Uncaught TypeError: param 0 must be of type string
share|improve this answer
    
Is there any way to obtain the arguments of the calling function in checkTypes (without passing in the arguments as a parameter)? –  Anderson Green Dec 18 '12 at 4:46
    
There must be a way but why you want to do this? You could use TypeScript for example if you need strong typing. –  elclanrs Dec 18 '12 at 4:56
    
Here's a modified version of the code above (with the same output, but slightly more concise): jsfiddle.net/BpVBG –  Anderson Green Dec 18 '12 at 5:09
    
@AndersonGreen: Yah that's better, edited! –  elclanrs Dec 18 '12 at 5:14
    
You should throw a TypeError here, not a string. –  davidchambers Dec 18 '12 at 6:29

You can use a modified version of typeof and the arguments pseudo-array to get each argument type and compare it to your desired set of types:

// from Doug Crockford http://javascript.crockford.com/remedial.html
function typeOf(value) {
    var s = typeof value;
    if (s === 'object') {
        if (value) {
            if (Object.prototype.toString.call(value) == '[object Array]') {
                s = 'array';
            }
        } else {
            s = 'null';
        }
    }
    return s;
}

function checkTypes(argList, typeList) {
    for (var i = 0; i < typeList.length; i++) {
        if (typeOf(argList[i]) !== typeList[i]) {
            throw 'wrong type: expecting ' + typeList[i] + ", found " + typeOf(argList[i]);
        }
    }
}

Working demo: http://jsfiddle.net/jfriend00/ywyLe/


Example Usage:

function exampleUsage(arr1, arr2, num1){
    //throw an error if the types do not match the corresponding elements
    checkTypes(arguments, ["array", "array", "number"]);
}
share|improve this answer
    
In checkTypes, is it possible to obtain the args list from the calling function, without explicitly passing it as a parameter? It would be more concise this way, if it were possible. –  Anderson Green Dec 18 '12 at 4:50
    
@AndersonGreen - Obtaining arguments of a calling function is not possible in a cross-browser fashion. You get the arguments of the current function - that's all. –  jfriend00 Dec 18 '12 at 4:53
    
I've made a couple of modifications to your script to handle JavaScript's optional parameters. jsfiddle.net/LS6YJ –  jacobappleton Oct 3 '13 at 16:32

Do not use typeof in this case. It's problematic for several reasons:

typeof null                 // 'object'
typeof []                   // 'object'
typeof 'foo'                // 'string'
typeof new String('foo')    // 'object'
'foo' == new String('foo')  // true

Instead, use Object::toString:

Object.prototype.toString.call(null)               // '[object Null]'
Object.prototype.toString.call([])                 // '[object Array]'
Object.prototype.toString.call('foo')              // '[object String]'
Object.prototype.toString.call(new String('foo'))  // '[object String]'

A decorator would meet your requirements:

var getType = function(value) {
  return Object.prototype.toString.call(value)
    .replace(/^\[object |\]$/g, '').toLowerCase();
};

var checkTypes = function(types, fn) {
  return function() {
    var args = Array.prototype.slice.call(arguments, 0);
    for (var idx = 0; idx < types.length; idx += 1) {
      var expected = types[idx];
      var received = getType(args[idx]);
      if (received != expected) {
        throw new TypeError('expected ' + expected + '; received ' + received);
      }
    }
    fn.apply(null, args);
  };
};

var exampleUsage = checkTypes(['array', 'array', 'number'], function(arr1, arr2, num1) {
  console.log('arr1:', arr1);
  console.log('arr2:', arr2);
  console.log('num1:', num1);
});

Usage examples:

exampleUsage([], [], 0);
// arr1: []
// arr2: []
// num1: 0

exampleUsage([], [], 'foo');
// TypeError: expected number; received string
share|improve this answer

You are looking for typeof operator.

share|improve this answer
    
Yes, I could use the typeof operator to implement the exampleUsage function. But how can I obtain the arguments of a function from inside the function? –  Anderson Green Dec 18 '12 at 4:27
1  
This doesn't answer the entire question, but it's a good start, at least. :) –  Anderson Green Dec 18 '12 at 4:27
    
Oh okay, if you need arguments then you can see built-in arguments array-like object. (Also mentioned by @Surreal in comments to your question). –  bits Dec 18 '12 at 4:30

The typeof function return object for most of the thing,

alert(typeof("this is string")); /* string */
alert(typeof(1234)); /* number */
alert(typeof([])); /* object */
alert(typeof({})); /* object */
alert(typeof(new Date)); /* object */
alert(typeof(function(){})); /* function */

but jQuery can identify by this function jQuery.type( obj ) http://api.jquery.com/jQuery.type/

share|improve this answer
    
How does jQuery.type differ from the typeof operator, specifically? –  Anderson Green Dec 18 '12 at 4:51
    
For example native typeof function typeof(new Date) will return "object" but jQuery.type(new Date()) will return "date". –  Kashif Naseem Dec 18 '12 at 4:55
    
jQuery.type({}) this will return "object" (assosiative array) but jQuery.type([])​ this will return "array" while native javascript typeof will return object in both cases. –  Kashif Naseem Dec 18 '12 at 5:00

JavaScript is bad for types. Also, you can not magically access the parent's function arguments from a calling function.

If you don't want to have a big headache, use some simple library to check types.

For example, using underscore.js you could write something like this:

function exampleUsage(arr1, arr2, num1) {
  if(!_.isArray(arr1) || !_.isArray(arr2) || !_.isNumber(num1) {
    throw "Wrong types"
  }
  // do other stuff
}

You are probably afraid of types because you are probably new to dynamic languages. You will see that is not as bad as it looks like, but JavaScrip IS BAD (for a lot other reasons)

share|improve this answer
3  
The OP is looking for a general purpose (aka reusable) function to check types, not general comments about the quality of a programming language. –  matehat Dec 18 '12 at 4:38
    
Why is Javascript "bad for types"? It's possible to check the type of a function using the typeof operator. Also, it's possible to obtain the arguments of a function using arguments. –  Anderson Green Dec 18 '12 at 4:39
2  
Specifically, why do you think Javascript is "bad"? –  Anderson Green Dec 18 '12 at 4:53

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