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I have already read the following SO posts:

Why does this JavaScript code print “undefined” on the console?

Why does Chrome & FireFox console print undefined?

Why does the JS console return an extra undefined?

But none of it explains why the JavaScript console prints undefined when I declare a variable as follows:

var a;

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4  
Because the variable is not defined?? –  Karl-André Gagnon Apr 3 '14 at 17:30
    
Declaration != definition. –  j08691 Apr 3 '14 at 17:31
    
What do you think it should print? –  Dancrumb Apr 3 '14 at 17:31
1  
No it doesn't jsfiddle.net/j08691/72JSf –  j08691 Apr 3 '14 at 17:32
1  
@j08691, yes, it does. Be sure that you capture the result of the expression, not the value of the variable. –  zzzzBov Apr 3 '14 at 17:54

4 Answers 4

up vote 9 down vote accepted

It prints the result of this expression - which is undefined. And yes, var a is a valid expression on its own.

Actually, you should rather be amused by why console prints undefined when you write var a = 3 or something like this. It also prints undefined if function anyFunctionName() {} statement is processed. In fact, all the var and function declaration (!) statements seem to be ignored if there's another statement with some 'real' result:

>>> var a = 3;
undefined

>>> var a = 3; a = 4;
4

>>> var a = 3; a = 4; var a = 5; function f() {};
4 // !!!

Now, I suppose the real reason behind is behaviour of eval statement, as described here:

  • Let result be the result of evaluating the program prog.
  • If result.type is normal and its completion value is a value V, then return the value V.
  • If result.type is normal and its completion value is empty, then return the value undefined.

So now the question is, what does var a = 4 statement return? Guess what: it's not 4.

The production VariableStatement : var VariableDeclarationList; is evaluated as follows:

  • Evaluate VariableDeclarationList.
  • Return (normal, empty, empty).

Now the most interesting part: what happened in the last example, why 4 is the result? That's explained in this section:

The production Program : SourceElements is evaluated as follows:

  • Let result be the result of evaluating SourceElements.

[...]

The production SourceElements : SourceElements *SourceElement* is evaluated as follows:

  • Let headResult be the result of evaluating SourceElements.
  • If headResult is an abrupt completion, return headResult.
  • Let tailResult be result of evaluating SourceElement.
  • If tailResult.value is empty, let V = headResult.value, otherwise let V = > tailResult.value.
  • Return (tailResult.type, V, tailResult.target)

Both function f() {} and var a = 5 statements' return values were (normal, empty, empty). So the script ended up with giving out the result of the first statement (starting from the script's end, so technically it's the last one) that's not (normal, empty, empty). That is the result of a = 4 assignment statement - which is 4.


P.S. And now for some icing on the cake: consider the following:

>>> function f() {}
undefined

>>> (function f() {})
function f() {}

The difference is quite subtle: the first input is treated as a Function Declaration statement, which, according to this rule...

The production SourceElement : FunctionDeclaration is evaluated as follows:

  • Return (normal, empty, empty).

... will eventually produce undefined when eval-ed, as we already know.

The second input, however, is treated as a Function Expression, which is evaluated to the function itself. That means it'll be passed through eval and eventually returned to the console (in its format).

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Why does (var a = 1;) prints "undefined" while (a = 1;) doesn't print anything. Is the first an expression (which evaluates to undefined) while the second is not even an expression? –  Rajkumar Masaniayan Apr 3 '14 at 17:37
    
The behavior is not specific to firebug. Chrome console and even node.js prompt prints "undefined" when they encounter variable declaration. –  Rajkumar Masaniayan Apr 3 '14 at 17:39
    
Correct, changed that. Now looking for the kind of official statement on this. –  raina77ow Apr 3 '14 at 17:40
    
@Rajkumar Well, now I think I found an explanation. ) –  raina77ow Apr 3 '14 at 18:06
    
Added some details about Function Declaration statement - I've missed that part in the standard initially, and was wondering why it's not evaluated to the Function itself. But now, when I found the clear description of the difference between that and Function Expression, I think the final piece of a puzzle is there. ) –  raina77ow Apr 3 '14 at 21:04

because all you are doing is declaring there is a variable - what is it? a string, an integer, a boolean - we don't know yet - hence undefined

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Richie: As I have mentioned in other comments, even when I declare as well as define a variable, the console is print "undefined". –  Rajkumar Masaniayan Apr 3 '14 at 17:45
    
you are DECLARING a vairable - var a = 'hi please put aside some memory for something I am going to store. -> until you give it a value it is 'undefined' because it does not know what it is -> it is a variable - that is a generic name we give to an integer, an array, a boolean - it isn't actually ANYTHING until you give it a type or a value (at which point it works out its type) –  Graham Ritchie Apr 3 '14 at 17:51
    
When you type (var a = 1;), at the end of the statement execution, the variable is assigned a value of 1 but the console still chooses to display "undefined". –  Rajkumar Masaniayan Apr 3 '14 at 17:54
    
are you typing directly in the console? –  Graham Ritchie Apr 3 '14 at 17:55
    
It is console as well as node.js. And just realized that the variable in my example might have got hoisted and is broken into two separate statements. –  Rajkumar Masaniayan Apr 4 '14 at 1:57

The JavaScript Language Specification ECMAScript 262 5th Edition Section 12.2 on "Variable Statements" says:

Variables are initialised to undefined when created.

As such, when you type var a; into a JS console it echos the last value, which is "undefined".

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var a=1;
a

gives:

1

while

var a=1;

gives:

undefined

in the first case the console evaluates a so it prints the value of a

in the second case the console does not evaluate the value of a, but it evaluates the expression itself.

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