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In this post, Nick Craver provided an answer in which he used:

function(_, id)

This code doesn't declare the underscore as a variable before using it. My search on google and on here only points to references to the use of the underscore as a prefix., not as the variable itself. What does it do? I like the solution by Nick but that bit bothers me.

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4 Answers 4

up vote 10 down vote accepted

I've seen the underscore used to denote that the variable is a "don't care" variable. It means that it doesn't matter and isn't used at all.

In the case you pointed out, it was used to signify that his function had two arguments, but he only needed the second one.

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Thank you Ivan. But do u know why it can be used without being declared? I'd appreciate any reference I can read up more on this –  Siphiwe Gwebu Jul 10 '12 at 5:20
    
In the example you provided, _ is being declared as an argument in the function. He is not using it at all. –  Ivan Jul 10 '12 at 5:26
    
Ah! Got it. Thanx –  Siphiwe Gwebu Jul 10 '12 at 5:28
3  
Also, in case someone else was wondering, the reason he wrote function(_, id) instead of function(id) is because jQuery attr() takes a function that has 2 arguments, the element index and the attribute. He didn't need the index; that's why he marked it a 'don't care'. –  kitkat Jun 2 '13 at 4:22

Underscore is a valid JS variable name. The parameter named _ in the above example can be used as any other variable.

However, it is usually used to indicate to subsequent (human) reader of the code that whatever passed in will not be used. (The author of the code can be evil/ignorant and use it in the function, though).

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By style, _ is typically used as a placeholder variable. A variable which wont be really used in the scope.

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As all the other posters before have said, it can be seen as a placeholder, in cases where it is not expected to be used. I have seen something similar in python, when a function can return multiple values, but only the required ones are explicitly defined.

For example

 a, _, c = foo(bar)

In this case the potential return value of 'b' is being ignored (which could still be accessed by _), and 'a' and 'c' are going to be used.

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