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Why does this work (returns "one, two, three"):

var words = ['one', 'two', 'three'];
$("#main").append('<p>' + words.join(", ") + '</p>');

and this work (returns "the list: 111"):

var displayIt = function() {
    return 'the list: ' + arguments[0];
}   
$("#main").append('<p>' + displayIt('111', '222', '333') + '</p>');

but not this (returns blank):

var displayIt = function() {
    return 'the list: ' + arguments.join(",");
}   
$("#main").append('<p>' + displayIt('111', '222', '333') + '</p>');

What do I have to do to my "arguments" variable to be to use .join() on it?

share|improve this question
    
See: stackoverflow.com/questions/1424710/… –  Shog9 Jan 19 '10 at 4:56
    
I've amended my answer to take into account your updated question -- specifically, the "what do I have to do to make this work?" part. –  John Feminella Jan 19 '10 at 4:58

7 Answers 7

up vote 32 down vote accepted

It doesn't work because the arguments object is not an array, although it looks like it. It has no join method:

>>> var d = function() { return '[' + arguments.join(",") + ']'; }
>>> d("a", "b", "c")
TypeError: arguments.join is not a function

To convert arguments to an array, you can do:

var args = Array.prototype.slice.call(arguments);

Now join will work:

>>> var d = function() {
  var args = Array.prototype.slice.call(arguments);
  return '[' + args.join(",") + ']';
}
>>> d("a", "b", "c");
"[a,b,c]"

Alternatively, you can use jQuery's makeArray, which will try to turn "almost-arrays" like arguments into arrays:

var args = $.makeArray(arguments);

Here's what the Mozilla reference (my favorite resource for this sort of thing) has to say about it:

The arguments object is not an array. It is similar to an array, but does not have any array properties except length. For example, it does not have the pop method. ...

The arguments object is available only within a function body. Attempting to access the arguments object outside a function declaration results in an error.

share|improve this answer
2  
or Array.join(arguments, ",") (like Array.forEach(arguments, func);) –  Anonymous Jan 19 '10 at 4:59
    
what happens when one of your arguments is an object? –  user1876508 Aug 4 '13 at 23:16
2  
@Anonymous TypeError: Object function Array() { [native code] } has no method 'join' –  AlberT Dec 19 '13 at 12:00

If you are not interested on other Array.prototype methods, and you want simply to use join, you can invoke it directly, without converting it to an array:

var displayIt = function() {
    return 'the list: ' + Array.prototype.join.call(arguments, ',');
};

Also you might find useful to know that the comma is the default separator, if you don't define a separator, by spec the comma will be used.

share|improve this answer
    
+1 This is the fastest and safest answer IF all you want is to call join instead of creating a new array. Calling slice just to join will allocate memory when join works on array-like objects as well. –  Ajax Feb 23 at 9:46

You can use typeof to see what's happening here:

>>> typeof(['one', 'two', 'three'])
"object"
>>> typeof(['one', 'two', 'three'].join)
"function"
>>> typeof(arguments)
"object"
>>> typeof(arguments.join)
"undefined"

Here you can see that typeof returns "object" in both cases but only one of the objects has a join function defined.

share|improve this answer

You could use this jQuery .joinObj Extension/Plugin I made.

As you'll see in that fiddle, you can use it as follows:

$.joinObj(args, ",");

or

$.(args).joinObj(",");

Plugin Code:

(function(c){c.joinObj||(c.extend({joinObj:function(a,d){var b="";if("string"===typeof d)for(x in a)switch(typeof a[x]){case "function":break;case "object":var e=c.joinObj(a[x],d);e!=__proto__&&(b+=""!=b?d+e:e);break;default:"selector"!=x&&"context"!=x&&"length"!=x&&"jquery"!=x&&(b+=""!=b?d+a[x]:a[x])}return b}}),c.fn.extend({joinObj:function(a){return"object"===typeof this&&"string"===typeof a?c.joinObj(this,a):c(this)}}))})(jQuery);
share|improve this answer
1  
and ... why the -1? this is a working plug that does exactly as asked? –  SpYk3HH Aug 11 '12 at 4:09
2  
i hate it too, when people -1 my post without explanatian.. +1 for you.. T^T –  Kokizzu Dec 17 '12 at 5:27

Just use the jQuery utility function makeArray

arguments is not an Array, it is an object. But, since it so "array-like", you can call the jQuery utility function makeArray to make it work:

var displayIt = function() {
    return 'the list: ' + $.makeArray(arguments).join(",");
}   
$("#main").append('<p>' + displayIt('111', '222', '333') + '</p>');

Which will output:

<p>the list: 111,222,333</p>
share|improve this answer

arguments is not a jQuery object, just a regular JavaScript object. Extend it before you try to call .join(). I think you would write:

return 'the list:' + $(arguments)[0];

(I'm not too familiar with jQuery, only Prototype, so I hope this is not completely bogus.)

Edit: It's wrong! But in his response, Doug Neiner describes what I'm trying to accomplish.

share|improve this answer
2  
This isn't quite right; arguments is not an array. Instead, it's an "array-like object". –  John Feminella Jan 19 '10 at 4:51
    
A normal JS Array supports join. –  Doug Neiner Jan 19 '10 at 4:52
    
if arguments is not an array, how come arguments[0] and arguments[1] give me the correct values passed to the function? –  Edward Tanguay Jan 19 '10 at 4:53
    
Edward: JavaScript objects can respond to [x] like they respond to .foo, it's not something that only array objects can do like in other languages. I think. I have been wrong before ;) –  Kevin Conner Jan 19 '10 at 4:56
    
@Edward Tanguay: Here's a javascript object that is not an array but looks like one: {1:'hello',2:'world',length:2}. Notice that that object only has 3 properties: 1,2 and length. It does not have any methods attached to it. The arguments object is similar, the result of getElementsByTagName is another one. –  slebetman Jan 19 '10 at 5:02

I don't know if there's a simple way to convert arguments into an array, but you can try this:

var toreturn = "the list:";
for(i = 0; i < arguments.length; i++)
{
   if(i != 0) { toreturn += ", "; }
   toreturn += arguments[i];
}
share|improve this answer

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