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How can I select all elements that have a specific CSS property applied, using jQuery? For example:

.Title
{
    color:red;
    rounded:true;
}

.Caption
{
    color:black;
    rounded:true;
}

How to select by property named "rounded"?

CSS class name is very flexible.

$(".Title").corner();
$(".Caption").corner();

How to replace this two operation to one operation. Maybe something like this:

$(".*->rounded").corner();

Is there any better way to do this?

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8  
Hey there, folks: Please read the question before answering! This poor guy got four out of five completely wrong answers. –  Boldewyn Aug 3 '09 at 6:22

5 Answers 5

up vote 20 down vote accepted

You cannot (using a CSS selector) select elements based on the CSS properties that have been applied to them.

If you want to do this manually, you could select every element in the document, loop over them, and check the computed value of the property you are interested in (this would probably only work with real CSS properties though, not made up ones such as rounded). It would also would be slow.

Update in response to edits — group selectors:

$(".Title, .Caption").corner();
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1  
+1 for the only answer so far addressing the question :-) –  Boldewyn Aug 3 '09 at 6:24
    
@Quentin: Is this answer correct? See stackoverflow.com/questions/10651508 and api.jquery.com/css and meta.stackexchange.com/questions/132958/… –  Robert Harvey May 18 '12 at 15:22
    
@RobertHarvey — Yes it is. Note that in paragraph 1 I qualify the impossibility of it with "using a CSS selector". Paragraph 2 describes a work around. The linked to question has a number of answers, but the ones with positive voting scores are examples of the work around I described. –  Quentin May 18 '12 at 15:30
    
OK, thanks..... –  Robert Harvey May 18 '12 at 15:31

This is a two year old thread, but it was still useful to me so it could be useful to others, perhaps. Here's what I ended up doing:

var x = $('.myselector').filter(function () { 
    return this.style.some_prop == 'whatever' 
});

not as succinct as I would like, but I have never needed something like this except now, and it's not very efficient for general use anyway, as I see it.

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Thank you, Bijou. I used your solution, but used the jQuery .css instead of pure javascript, like this:

$('*').filter(function(){ return $(this).css('font-family').toLowerCase().indexOf('futura') > -1 })
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Yup, this one worked for me as well. I saved a working jsfiddle of it, for future reference. –  radu.luchian Aug 8 '13 at 8:07
    
you just saved me from my 3 hours long mind-ache.. +1 for that –  Thirumalai Parthasarathi Jul 7 '14 at 6:56

Similar as Bijou's. Just a little bit enhancement:

$('[class]').filter(function() {
    return $(this).css('your css property') == 'the expected value';
  }
).corner();

I think using $('[class]') is better:

  • no need to hard code the selector(s)
  • won't check all HTML elements one by one.

Here is an example.

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Custom CSS properties aren't inherited, so must be applied directly to each element (even if you use js to dynamically add properties, you should do it by adding a class), so...

CSS

.Title
{
    color:red;
}

.Caption
{
    color:black;
}

HTML

You don't need to define a rounded:true property at all. Just use the presence of the 'Rounded' class:

<div class='Title Rounded'><h1>Title</h1></div>
<div class='Caption Rounded'>Caption</div>

JS

jQuery( '.Rounded' ).corner();
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This in no way answers the question. –  Janus Bahs Jacquet Aug 28 '14 at 12:52

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