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Take an example function here:

function a(b){
    console.log(b != null ? 1 : 2);
}

That code works fine, by printing 1 if you pass a parameter, and 2 if you don't.

However, JSLint gives me a warning, telling me to instead use strict equalities, i.e !==. Regardless of whether a parameter is passed or not, the function will print 1 when using !==.

So my question is, what is the best way to check whether a parameter has been passed? I do not want to use arguments.length, or in fact use the arguments object at all.

I tried using this:

function a(b){
    console.log(typeof(b) !== "undefined" ? 1 : 2);
}

^ that seemed to work, but is it the best method?

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1  
If you pass undefined then you will get a false negative. arguments.length (or variants) is the only way to see if the argument was passed. –  Esailija Aug 12 '12 at 21:01
    
@Esailija If it's not the intention of the function to explicitly work with undefined value, this should be okay imo. It's not the functions responsibility to catch every userfault possible. –  Christoph Aug 12 '12 at 21:06
    
@Christoph If you really need to know if an argument was passed then it's not ok. If you just want to know if the argument is empty or whatever, then != null !== undefined and so on are all just as fragile and good , there is no bulletproof in that. Prefer != null to check for undefined and null at the same time. –  Esailija Aug 12 '12 at 21:07
    
@Esailija It doesn't matter if an argument is passed with value undefined or no argument at all if the function does not accept undefined values. null however indicates that there IS a parameter passed, since it differs from undefined which is the case if no param is passed. So I would not check with !=null –  Christoph Aug 12 '12 at 21:09
    
That's why I said if you really need to know :P Of course it's not normal needing to know that. –  Esailija Aug 12 '12 at 21:11
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2 Answers 2

up vote 2 down vote accepted

You could use the falsy nature of undefined and just write:

(!b)?1:2

However this will also be true for 0, null and "".

If you want to write it the bulletproof way, typeof(b) === "undefined" is the best way.

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BTW if you want to use default values for the variables not passed to the function, you can write sth like b = b || defaultValue. It's a common JS idiom for if(!b){b = defaultValue;} -- with the same restrictions as above (!b is true if b is either 0, false, null, undefined or ""). –  jakub.g Aug 12 '12 at 21:09
1  
@jakub.g That is a bad idea, since you can never pass 0 or "" as a parameter this way. When working with default values you should check it the secure way and not use falsy nature. –  Christoph Aug 12 '12 at 21:13
    
That's right. Makes more sense however when the expected parameter should be an object (b = b || {}). –  jakub.g Aug 12 '12 at 21:15
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When no argument is passed, b is undefined, not null. So, the proper way to test for the existence of the argument b is this:

function a(b){
    console.log(b !== undefined ? 1 : 2);
}

!== is recommended because null and undefined can be coerced to be equal if you use == or !=, but using !== or === will not do type coercion so you can strictly tell if it's undefined or not.

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For the completeness, it's possible to get rid of typeof inside the function, because we're in the function scope, and undefined can't be overwritten here :) In global scope, it's safer to use typeof(foo) !== "undefined". –  jakub.g Aug 12 '12 at 21:23
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