7

So I've come across to an answer but it is not enough to expand my knowledge base.

I've been searching for ages what the x = x || y, z means in StackOverflow

I found this. What does the construct x = x || y mean?

But the problem is what is the , z for?

I'm seeing these expressions quite often window.something = window.something || {}, jQuery

I already know that if false was returned on the first argument then {} will be assigned to the something property.

My question is, What is the , jQuery for?

Can someone enlighten me and shower me with this very important knowledge?

UPDATE 8/11/2014

So I tried making tests.

var w = 0, x = 1,y = 2,z = 3;
var foo = w || x || y, z; //I see that z is a declared variable
console.log(foo); //outputs 1

and it is the same as this.

var w = 0, x = 1,y = 2;
var z = function(){return console.log("this is z");}
var foo = w || x || y, z; //same as this
console.log(foo); //still outputs 1

another.

var w = 0, x = 1,y = 2;
var z = function(){return console.log("this is z");}
function foobar(){
this.bar = console.log(foo,z);
}(foo = w || x || y, z);
foobar(); //outputs 1 and string code of foobar

changing the value of z in (foo = w || x || y, z).

var w = 0, x = 1,y = 2;
var z = function(){return console.log("this is z");}
function foobar(){
this.bar = console.log(foo,z);
}(foo = w || x || y, z=4);
foobar(); //outputs 1 and 4

I assume that placing variables inside ( ) after the } of the function is the same as declaring a new variable.

Another test.

var w = 0, x = 1,y = 2,z = 1;
function foobar(){
    var bar = 10,z=2;
        console.log(z);
}(foo = w || x || y, z=4);
console.log(foo,z); // Seems that foo is public and made an output
foobar(); // outputs the z = 2 inside and disregards the z = 4 from (..., z=4)
console.log(z); // It seems that z is 4 again after calling foobar

However, in a scenario like this. Link to JSFiddle

//Self-Executing Anonymous Function: Part 2 (Public & Private)
(function( skillet, $, undefined ) {
    //Private Property
    var isHot = true;

    //Public Property
    skillet.ingredient = "Bacon Strips";

    //Public Method
    skillet.fry = function() {
        var oliveOil;

        addItem( "\t\n Butter \n\t" );
        addItem( oliveOil );
        console.log( "Frying " + skillet.ingredient );
    };

    //Private Method
    function addItem( item ) {
        if ( item !== undefined ) {
            console.log( "Adding " + $.trim(item) );
        }
    }    
}( window.skillet = window.skillet || {}, jQuery ));

//Public Properties
console.log( skillet.ingredient ); //Bacon Strips

//Public Methods
skillet.fry(); //Adding Butter & Fraying Bacon Strips

//Adding a Public Property
skillet.quantity = "12";
console.log( skillet.quantity ); //12

//Adding New Functionality to the Skillet
(function( skillet, $, undefined ) {
    //Private Property
    var amountOfGrease = "1 Cup";

    //Public Method
    skillet.toString = function() {
        console.log( skillet.quantity + " " + 
                     skillet.ingredient + " & " + 
                     amountOfGrease + " of Grease" );
        console.log( isHot ? "Hot" : "Cold" );
    };    
}( window.skillet = window.skillet || {}, jQuery ));

try {
    //12 Bacon Strips & 1 Cup of Grease
    skillet.toString(); //Throws Exception
} catch( e ) {
    console.log( e.message ); //isHot is not defined
}

It seems that if you remove the , jQuery it only logs "Bacon Strips" Refer to this link Link to another JSFiddle (, jQuery is removed)

I don't really get this.. But why is the , jQuery inside the ( ) after the } of a function counts as a reference for the code to run completely when the library of jQuery is already included?

Having the $.trim removed from the code, it seems to work fine again. But I still don't get how this referencing works. Link to the JSFiddle without the , jQuery and $.trim

6
  • 9
    can you share a context in which you have seen this... it is normally done in local variable declarations like var p = x || y, z to declare 2 local variables... but as user2864740 said those are just 2 different statements Commented Aug 11, 2014 at 3:27
  • 4
    Maybe it was var x = x || y, z...
    – johnwait
    Commented Aug 11, 2014 at 3:29
  • 4
    Is this in a function call? This looks very much like it’s passing jQuery. You should add context.
    – Ry-
    Commented Aug 11, 2014 at 3:30
  • @johnwait Good call, showing just how much a broader context would clear things up .. Commented Aug 11, 2014 at 3:31
  • 1
    Expanding slightly on what @ArunPJohny has said, var p = x || y, z could be equated to var p = x || y and var z (two separate definitions). z would still be "undefined" by value. It would be similar to something like var foo = 'bar', bar = 'foo', you = 'see?';
    – scrowler
    Commented Aug 11, 2014 at 3:37

1 Answer 1

6

The Comma Operator in JavaScript evaluates operands and returns the value of the last one (right-most). By JS Operator Precedence, the OR operation will be evaluated first, followed by the assignment.

So this expression x = x || y, z is in effect (x = (x || y)), z. The OR operator will either return the boolean result of the comparison or, for non-boolean types, the first operand if it is truthy, or the second operand otherwise. The assignment operator is also higher precedence than the comma operator, so x will be assigned the value returned by the OR. The value of z will not have any effect on either the OR operation or the assignment. In fact, it will be evaluated last, meaning it is essentially a separate statement with no effect on anything else in that 'expression.' I can't see any practical value in writing the expression that way.

5
  • I see.. But I still don't understand why is z there in the first place. Here is a jQuery example. jsfiddle.net/fssj71mp/1 I'm trying to understand what the ,jQuery is for. Thank you for the effort. This might be close to the answer I'm looking for but not exactly what I had in mind. +1 I updated my post, please see if there is any explanation for this. Thank you :)
    – Mike Ante
    Commented Aug 11, 2014 at 6:43
  • 1
    @Mike In that case the comma is simply separating function arguments. Take a look at this jsFiddle. It's the typical process: define a func. that takes two args function foo(a, b) {...}. Then you call it by doing foo(1, 2). Your example is basically foo(a, b), but you're simply defining your function as anonymous and self-executing. Your first param (a) is also a more complex expression: window.skillet = window.skillet || {} (simply ensuring that the variable skillet is defined globally). So , jQuery is just passing in the second param b.
    – nbrooks
    Commented Aug 11, 2014 at 20:23
  • I see... One last Question.. Before I mark this as the answer. (function somefunction(a,b) {console.log(a,b);}(1,2)); In this little code, (a,b) means the parameters and adding (1,2) after the } means that you are calling the function itself am I right? and if you call the somefunction(a,b) with new arguments somefunction(3,4) the values (1,2) will still be reused unless they were overwritten am I right?
    – Mike Ante
    Commented Aug 12, 2014 at 3:41
  • @Mike In that case you wouldn't be able to re-use the function at all, since the entire statement was not a function declaration but a method call. You won't be able to reference somefunction in the global scope (though it can reference itself recursively). Give it a try, you'll get a somefunction is not defined error, or something similar. If you just define a named function in one statement and call it with (1,2) in a different statement, a separate call with (3,4) would not know anything about the original params (barring some caching/global variable techniques).
    – nbrooks
    Commented Aug 12, 2014 at 23:17
  • I tried something and that helped a lot! Thanks Mr. brooks! jsfiddle.net/n01ojnba/1
    – Mike Ante
    Commented Aug 13, 2014 at 1:29

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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