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How do I fade out all the images inside the class bMenu that are not #b2 with jQuery? Thanks.

<div class="bMenu" id="b1"><img src='b1.jpg'></div>
<div class="bMenu" id="b2"><img src='b2.jpg'></div>
<div class="bMenu" id="b3"><img src='b3.jpg'></div>
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5 Answers 5

up vote 1 down vote accepted
$('img', '.bMenu:not(#b2)').fadeOut();
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the DIV means it's the CONTEXT of IMG (second parameter to jQuery function), so this answer should work also as yours gnarf :) –  Juraj Blahunka Jan 21 '10 at 22:03
    
I edited my post without noting it, sorry about that. So gnarf's comment was correct.. –  Per Holmäng Jan 21 '10 at 22:15
    
@juraj - yeah he had $('img:not(#b2)', '.bMenu'); when I posted that comment :) –  gnarf Jan 21 '10 at 22:21
    
@grarf :-D that's why Edit changes should be sometimes appended without allowing rewrite –  Juraj Blahunka Jan 21 '10 at 22:30
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Literal answer:

$(".bMenuL:not(#b2) img").fadeOut();

Assuming you want to make sure that the #b2 img is shown as well:

$("#b2 img").fadeIn();
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I'd really like to know why this got a -1 –  gnarf Jan 21 '10 at 22:21
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Try

$('.bMenu:not(#b2) img').fadeOut('slow');
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Get it all done at once with chaining:

$("#b2 img").show().parent().siblings(".bMenu").find("img").fadeOut();
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Nice chain there. –  gnarf Jan 21 '10 at 22:23
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Try this:

#('.bMenu > img').each(function(it){
    if(it.attr('id') != 'b2'){
        it.fadeOut();
    }
});

Might be a way to do it with pure selectors but this should work.

Added Later:

Ok, I went and did a test... here is what I came up with:

$('div[id!=b2].bMenu > img').each(function(){
    $(this).fadeOut();
});

This selector will return two images, not the one with b2.

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Again, #b2 is the div not the img –  gnarf Jan 21 '10 at 21:08
    
Oops... then it.parent().attr('id') != 'b2' or something similar. I think the other answers should work too. –  cjstehno Jan 21 '10 at 21:51
    
See my "added later" section for an updated version. –  cjstehno Jan 21 '10 at 22:00
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