+ 3
Why is the output of this 4? Could someone be kind enough to explain?
var r = (function (x, f = () => x) { var x; var y = x; X = 2; return (x + y + f() ); }) console.log (r)
6 Antworten
+ 6
You are probably missing something.
This code won't output 4 but will print the function r.
+ 6
Important thing to note on this code is that the function
f = () => x
on second argument, operates on the x value that is in the arguments and not inside the function where x = 2
so f() will always return that value that is passed as the argument to x in the IIFE
+ 5
var r = ( function(){
// code
})(1);
is a immediately invoked function expression IIFE ,
and in IIFE we can pass the argument to the function by the outer () like (1) , so 1st argument x is passed value 1
in next argument f = () => x we define a function based on argument x in es6 arrow notation , which simplifies to this
var f = function (){
return x ;
}
so doing f() later returns the passed arg value of x
Also note that final value at r depends on what is returned inside the IIFE,
return ( x + y + f() ) ; breaks down to
return ( 2 + 1 + 1); // 4
+ 4
Ahhhh... I see. That was a really thoughtful response, thank you. This is the first I am hearing about IIFEs and arrow notations. I will have to study them in more depth but really appreciate the explanation. Helps a great deal.
+ 3
as Swapnil said , but here are few modifications to produce 4, you must be missing something, and this one might be different
var r = (function (x, f = () => x) {
var x;
var y = x;
x = 2;
return (x + y + f() );
})(1);
console.log (r)
+ 3
Yes Morpheus, you are very correct. I forgot the (1) at the end. But still not understanding how it outputs 4?