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Currently the ny variable shows as defined as it is global but when i call the test function i dont want to only check if the ny argument is set. I dont want the typeof(ny) to consider the global ny variable.

ny = 1;
var test = function(ny){
    console.log(typeof ny ==='undefined');
}
test();
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You could check arguments array in your function –  FSou1 Jul 24 '13 at 8:47
2  
your example is working on chrome –  Mangiucugna Jul 24 '13 at 8:48
    
Inside test, ny will always be the local variable, even if it is not passed; if it is not passed, its value will be undefined. So this should log "true" on all browsers. –  gpvos Jul 24 '13 at 9:10
    
This example is working on chrome sorry for the late reply bloody net crashed\ –  wilsonrufus Jul 24 '13 at 9:16

3 Answers 3

up vote 4 down vote accepted

I dont want the typeof(ny) to consider the global ny variable.

It won't. By using ny as an argument identifier you are shadowing the ny in the outer scope. Your example wil log true. As far as I can tell, that's what you want.

Side note: typeof is an operator, not a function. You don't need parentheses:

console.log(typeof ny === "undefined");
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hello i ran the code in chrome typeof ny === "undefined" returns true –  wilsonrufus Jul 24 '13 at 9:19
    
Yes, exactly. What are you expecting it to return? –  James Allardice Jul 24 '13 at 9:20
    
it should return false when i call test() –  wilsonrufus Jul 24 '13 at 9:22
1  
Inside the function ny is not the global variable. You have shadowed it. If you don't pass anything to the function, ny inside the function will be undefined. I don't really get what the problem is. –  James Allardice Jul 24 '13 at 9:38
1  
@wilsonrufus, what James means when he says 'shadowing' is that you are initiating a new ny variable. Defining ny as an argument to the function has the same effect as declaring var ny inside the function. The ny inside the function has local scope. If you want to access the global ny when the local ny is defined, refer to window.ny. –  Derek Henderson Jul 24 '13 at 9:51

If you want to check whether an argument has been passed into your function, just check the length of the arguments object.

Consider the following function:

var test = function (ny) {
    console.log(arguments.length > 0);
};

test() will log false.

test(ny) will log true.

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what if i have multiple arguments –  wilsonrufus Jul 24 '13 at 9:28
    
do we get argument.name by any means –  wilsonrufus Jul 24 '13 at 9:34
1  
@wilsonrufus, the function I wrote only checks for the presence of arguments. You can have any number of arguments. For example, if you changed the console statement in the function to console.log(arguments.length) and then called test(ny, 'second argument'), the log would show 2. You can't call the name property of the arguments, though, as that is not defined. arguments is an array, so you have access to all the properties of an array. –  Derek Henderson Jul 24 '13 at 9:46

The only ways I know:

  1. Don't make global variables.
  2. Don't use same variable names for differently scoped variables.

JavaScript will progressively check the scopes, expanding outwards. If you have a global variable by that name, JavaScript will eventually find it, and use it. You cannot make JavaScript ignore a variable, regardless of scope.

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While the advice is sound, please note that in the example code, ny will always refer to the local variable. –  gpvos Jul 24 '13 at 9:12

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