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I have the next array:

var Images = $('.cs_slider').children();

Checked the array and it is not empty.

The array contains divs, each one of them, has another div inside it.

I would like to use fadeOut() on the inside div (.info) of the next image that slides.

I tried using this, but it doesn't work (Started with JQuery a month ago):

Images[CurrentImage].('.info').fadeOut();

CurrentImage is surely an integer.

The effect should run only once, so looping is not what I meant. Any ideas what's wrong with it?

Thanks!

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can you show us your HTML –  mgraph May 8 '12 at 13:36
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4 Answers

up vote 1 down vote accepted

Try this:

$('.info', Images[CurrentImage]).fadeOut();

which is equivalent to:

$(Images[CurrentImage]).find('.info').fadeOut();

Note that Images[CurrentImage]1 is a DOM element, not a jQuery object.


1 NB: those are bad variable names - upper case is normally reserved for classes

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@mgraph I don't follow you. He does say that Images is actually an array of divs, not img tags. –  Alnitak May 8 '12 at 13:57
    
sorry the var name is confusing, didn't pay attention –  mgraph May 8 '12 at 14:01
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Images.eq(CurrentImage).find('.info').fadeOut();
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try this

($Images[CurrentImage]).find('.info').fadeOut();
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More of your source code would help, but it looks like your not using the selector properly. Try something like this instead:

$( Images[CurrentImage] + ' .info ).fadeOut();

This will end up looking something like this to jQuery:

$( 'div_name .info' ).fadeOut();

Again, next time please let us see more of your source code or start up a JSFiddle

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you can't concatenate a DOM element and a string... –  Alnitak May 8 '12 at 13:28
    
Yep, I see what you mean now. Thought he had an array of div names, not the actual DOM element. –  Lowkase May 8 '12 at 13:30
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