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I'm using CodeKit to run jsHint over my scripts, and minimise them, and I'd like to understand the following error:

    // create a next button for each text input and wire it for nextQ()!
    var next = $('<a class="button next">Next</a>')
        .on( 'click', function() {
            nextQ( $(this) );
        })
        .insertAfter( $questions.find(':text') );

jsHint warns:

next is defined but never used

Given that the element is insertedAfter() on each page load, is this a limitation of jsHint, or am I doing something wrong? My jQuery is pretty basic, and I'd like to learn from the error!

share|improve this question
    
You are defining next. Where are you using it? – kojiro Dec 5 '12 at 13:29
    
Why do you even have "var next = " in your code? It should not be needed here. – Mark Schultheiss Dec 5 '12 at 13:29
up vote 4 down vote accepted

Well, you are defining a callback, which doesn't need to be assigned to a variable; you can simply do:

$('<a class="button next">Next</a>')
    .on( 'click', function() {
        nextQ( $(this) );
    })
.insertAfter( $questions.find(':text') );

So next serves no purpose.

share|improve this answer
    
ooohh.. penny drops :) – memeLab Dec 5 '12 at 14:47

The next var is unnecessary, as .insertAfter() is called on the return value from .on(). Unless you're going to call something on next, you can just do:

$('<a class="button next">Next</a>')
    .on( 'click', function() {
        nextQ( $(this) );
    })
    .insertAfter( $questions.find(':text') );
share|improve this answer
    
thanks for the explanation – memeLab Dec 5 '12 at 14:50

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