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The following code:

var things = {'foo':'bar'}
for ( thing in things ) {
  console.log(thing)
}

Consistently produces the following error in jshint:

Bad for in variable 'thing'.

I do not understand what makes the 'thing' variable 'bad' - as you can see, it is not being used anywhere else. What should I do differently to make jshint not consider this to be an error?

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9  
It's global, which is always bad (bad bad bad bad bad). Try for( var thing in things). Don't know if this is the reason for the error though :) – Felix Kling May 2 '12 at 18:57
1  
JSHint wants for in variables to be defined in the local scope (i.e. not in an outer function). It's related to this issue: github.com/jshint/jshint/issues/329 – dave1010 Nov 28 '12 at 9:47
2  
Since 'bad' is so vague, I submitted a pull request to jshint so that it explicitly states that the variable is global. – mikemaccana Nov 28 '12 at 12:04
up vote 25 down vote accepted

They always are - if they are not decalred. Try adding var if thing has not been previously declared.

for ( var thing in things ) {
  console.log(thing)
}

or

var thing;

//more code

for ( thing in things ) {
  console.log(thing)
}
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8  
Thanks! I wish jshint would say 'Undeclared variable' rather than 'Bad variable' - it would be a lot clearer. – mikemaccana May 2 '12 at 19:05
    
You're welcome! – Dutchie432 May 2 '12 at 19:20

Here is your code slightly modified, make sure all is declared before usage.

var things = {'foo':'bar'}, thing;
for ( thing in things ) {
  console.log(thing)
}
share|improve this answer

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