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Just starting out learning JS. I understand defining variables. Why leave one undeclared? Does it help when constructing if/then statements?

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This might be a duplicate: stackoverflow.com/questions/15985875/… –  dbarnes Aug 26 '13 at 2:45

2 Answers 2

Why leave one undeclared?

function foo() {
    var i = 0; // local variable
    j = 1;     // global variable
}
foo();
i; // undefined
j; // 1
function bar() {
    var k; // local variable
    k = 2; // still local
}
bar();
k; // undefined

If foo is in "use strict" mode, it will cause a ReferenceError: j is not defined unless another j is defined higher up the scope chain, because there was no var for the j.

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as far as i know you cant declare a global variable inside a function and "j=1;" (if its not a error) will be a local variable –  tryingToGetProgrammingStraight Aug 26 '13 at 2:54
    
@tryingToGetProgrammingStraight If you don't believe it, try the code I've posted here, followed by a check to see if there is a global j and report back :-) I believe that the j; outside of the function as in my example is sufficient proof, though. –  Paul S. Aug 26 '13 at 2:56
    
It is true that j will not necessarily become global if there is a var j higher in scope but not globally, though. –  Paul S. Aug 26 '13 at 2:59
    
your right i tried it –  tryingToGetProgrammingStraight Aug 26 '13 at 3:04

yep it can "help when constructing if/then statements?" the value of undefined is false. so:

 if ( myVar ) 

means if its got a value true if not false

but its best to do:

var myVar;

which still is false not declaring may give a error in a older browser

im not sure happens if you already have a global "var i;" and then try using one in a loop, i think it will just make you lose the global "i" for the new one.

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the value of undefined is false; undefined is falsy, but undefined !== false –  Paul S. Aug 26 '13 at 2:51
    
@PaulS. true (lol) but it will still work for a "if(undeclaredVariable)" –  tryingToGetProgrammingStraight Aug 26 '13 at 2:52

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