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I am trying to make my jquery codes look better here. My functions are working correctly but I was wondering if anyone can make my codes less ugly. Thanks a lot!

HTML

<div class='image_layout'>
    <a href='#'><img src=' a.jpg '/></a> 
          <br><p class='credits'>hahahah 
          <br>Agency: Agency1
          <br>Picture ID: 5 </p> 
</div>

jQuery

$('#image_layout').on('hover', 'img', function() {
    $(this).parent().next().next().fadeIn('fast');
})
$('#image_layout').on('mouseout', 'img', function() {
    $(this).parent().next().next().fadeOut('fast');
})​
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4 Answers 4

up vote 2 down vote accepted

You can pass two functions to jQuery hover - one for mousein, one for mouseout. You can make this change as long as you don't have dynamically added images. Your code would also be a lot simpler if the element you are fading has an ID or class:

$('#image_layout img').hover(
    function () {
        $(this).closest('.someClass').fadeIn('fast');
    },
    function () {
        $(this).closest('.someClass').fadeOut('fast');
    }
);
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$('.image_layout').on('hover', 'img', function (e) {
    if(e.type == 'mouseover') {
        $(this).closest('.image_layout').find('.credits').stop().fadeIn('fast');
    } else {
        $(this).closest('.image_layout').find('.credits').stop().fadeOut('fast');
    }
})

You could also have done:

$('.image_layout').on('hover', 'img', function() {
    $(this).closest('.image_layout').find('.credits').stop().fadeIn('fast');
}, function() {
    $(this).closest('.image_layout').find('.credits').stop().fadeOut('fast');
});

If you're sure that nothing other than hovering the image will cause the element to fade, you could simply write:

$('.image_layout').on('hover', 'img', function() {
    $(this).closest('.image_layout').find('.credits').stop().fadeToggle('fast');
});
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Look into Douglas Crockford's JS Style Guide. He'd make your code look something like (with improvements):

var obj = $('#image_layout img');
obj.mouseover( function(){
  $(this).parent([selector]).next([selector]).fadeIn('fast');
});

obj.mouseout( function(){
    $(this).parent([selector]).next([selector]).fadeOut('fast');
});

You don't need the on, just call the function directly.

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I would use .eq as opposed to two next statements, additionally, hover takes two functions, the first being for the mouseenter event, and the second for mouseout

$('#image_layout').hover('hover', 'img', function () {
    $(this).parent().eq(2).fadeIn('fast');
}, function () {
    $(this).parent().eq(2).fadeOut('fast');
})

References

share|improve this answer
    
You can't pass two callback functions to on(), only hover() does that. –  jbabey Aug 7 '12 at 17:36
    
Absolutely correct, typo. Fixed it. –  Austin Aug 7 '12 at 17:44

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