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I have a page with many elements that have the same class attached to them:

<div class="everyDiv"></div>
<div class="everyDiv"></div>
<div class="everyDiv"></div>
<div class="everyDiv"></div>
...

I add additional classes based on filters the user chooses to hide/display them:

<div class="everyDiv hide1"></div>
<div class="everyDiv hide2"></div>
<div class="everyDiv hide3"></div>
<div class="everyDiv hide2 hide3"></div>
...

Now, I need to select a range (using slice()) of the .everyDiv elements that DON'T have any of the "hide" classse - .hide1 .hide2 .hide3.

How can I do this with jQuery?

I've tried the following without success:

$("div.everyDiv").not(".hide1").not(".hide2").not(".hide3").slice(n1, n2);

$("div.everyDiv:not(.hide1):not(.hide2):not(.hide3)").slice(n1, n2);

This doesn't work either:

$("div.everyDiv:not(.hide1), div.everyDiv:not(.hide2), div.everyDiv:not(.hide3)").slice(n1, n2);

Basically, all of the "hide#" classes have CSS of display: none;, so I need to select my specified range of the divs that aren't "hidden".

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So you do want select elements that have a hide# class? –  Neal Jun 20 '11 at 15:38
1  
Actually, what you're using is supposed to do as intended. There is a typo in your second selector. Could that be the cause? –  BoltClock Jun 20 '11 at 15:38
1  
Don't you want elements which don't have all three hide classes? –  Michael Mior Jun 20 '11 at 15:39
    
@Michael Mior: He means they're picking up elements with any one or two of the hide classes but not all three. –  BoltClock Jun 20 '11 at 15:40
1  
@BoltClock "DON'T have any" seems to be equal to "don't have ALL THREE" since any consists of three. –  Michael Mior Jun 20 '11 at 15:42

8 Answers 8

up vote 8 down vote accepted

this should do it:

$('div.everyDiv:not(.hide1, .hide2, .hide3)').hide();

http://jsfiddle.net/s9uyk/

as per comments: making it a little more obvious what the fiddle is doing: not it adds a class to all the ones that DON'T Have any of the hide classes. http://jsfiddle.net/s9uyk/2/

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your fiddle does nothing –  Neal Jun 20 '11 at 15:44
    
eh? it hides all the everyDiv that don't have a hide class... –  Patricia Jun 20 '11 at 15:45
    
Your code is pretty counterintuitive, maybe you should use something other than hide() to demonstrate it. But it does work, I'm not sure what Neal is saying. –  BoltClock Jun 20 '11 at 15:47
    
if you say so ;) changed it to add a class to them instead of hiding. –  Patricia Jun 20 '11 at 15:50
$('div.everyDiv').not(".hide1, .hide2, .hide3")

with a working Jsfiddle demo

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This works

$("div.everyDiv").not(".hide1, .hide2, .hide3")

It is successfully selecting the elements that DON'T have .hide1, .hide2, .hide3. checkout my example at jsfiddle . It is successfully hiding the elements that don't match the criteria, leaving the ones that don't visible. In this case it leaves 1,2,3,4 visable, because they DO have the .hide1, .hide2, .hide3 classes.

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$("div.everyDiv:not(.hide1), div.everyDiv:not(.hide2), div.everyDiv:not(.hide3)");
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It seems to be working for me:

http://jsfiddle.net/maniator/mTkNL/

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yeah, you're right. it does work there. maybe I have something else wrong with my code. thanks. –  Eric Belair Jun 20 '11 at 15:42
$("div.everyDiv").not(".hide1").not(".hide2").not(".hide3");
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This is the same thing as the first one OP tried. –  BoltClock Jun 20 '11 at 15:45

Try

$("[class=class2]")

or

$('.someclass[class="someclass"]')
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This is an OK trick except it looks at the exact class. Depending on the OP's actual code this may or may not work. –  BoltClock Jun 20 '11 at 15:46

I think your selector is fine - you're just not doing anything with it. Try this:

$("div.everyDiv").not(".hide1").not(".hide2").not(".hide3").fadeOut(1000);

You can also simplify this selector:

$("div.everyDiv").not(".hide1, .hide2, .hide3").fadeOut(1000);

You can see it working here:

http://jsfiddle.net/nS4jC/1/

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