97

Let's say the rule is as follows:

.largeField {
    width: 65%;
}

Is there a way to get '65%' back somehow, and not the pixel value?

Thanks.

EDIT: Unfortunately using DOM methods is unreliable in my case, as I have a stylesheet which imports other stylesheets, and as a result the cssRules parameter ends up with either null or undefined value.

This approach, however, would work in most straightforward cases (one stylesheet, multiple separate stylesheet declarations inside the head tag of the document).

  • It would be best to seed this data on the element itself and then track how it changes in the future. – Travis J Nov 8 '17 at 22:14

12 Answers 12

49

There's no built-in way, I'm afraid. You can do something like this:

var width = ( 100 * parseFloat($('.largeField').css('width')) / parseFloat($('.largeField').parent().css('width')) ) + '%';
  • 18
    just to be clear, this doesn't tell you the value in your style, it gives you a computed value – Anthony Johnston Feb 4 '11 at 13:04
  • 4
    this is wrong, jsfiddle.net/v9DtD/1 – shevski Jan 23 '12 at 12:49
  • 2
    @shevski it works fine, you have to add class="largeField" to the span, currently you are selecting an empty set. – Adam Lassek Jan 24 '12 at 0:19
  • I know what's not working in it and that's why it's a counter-example. – shevski Jan 28 '12 at 21:40
  • 2
    @shevski my example gives a computed value of an existing element on the page, as Anthony already pointed out a year ago. Your comments are superfluous. – Adam Lassek Jan 28 '12 at 23:14
112

Most easy way

$('.largeField')[0].style.width

// >>> "65%"
  • 45
    Just a note: this will only work with css directly applied on the element (e.g. style="width:65%"). – brianreavis Sep 1 '12 at 20:56
  • 3
    Great!! To return just the numbers: parseInt($('.largeField')[0].style.width, 10); – Tiago Mar 18 '13 at 20:55
  • 4
    Tiago, you can just use parseFloat(). – Gavin Dec 10 '13 at 11:32
  • This works only in inline styling as @brianreavis said. – Akansh Gulati Jul 6 '17 at 11:06
82

This is most definitely possible!

You must first hide() the parent element. This will prevent JavaScript from calculating pixels for the child element.

$('.parent').hide();
var width = $('.child').width();
$('.parent').show();
alert(width);

See my example.

Now... I wonder if I'm first to discover this hack:)

Update:

One-liner

element.clone().appendTo('body').wrap('<div style="display: none"></div>').css('width');

It will leave behind a hidden element before the </body> tag, which you may want to .remove().

See an example of one-liner.

I'm open to better ideas!

  • 1
    This should be the accepted solution. I can also confirm it works for me where the other answers don't get the originally assigned percentage value. – Dwayne Nov 12 '13 at 4:14
  • 1
    To avoid flickering, clone the child, hide the parent, then retrieve the width. var clone = $('.child').clone(); – user1491819 Aug 8 '14 at 4:57
  • 3
    Update: function getCssWidth(childSelector){ return jQuery(childSelector).parent().clone().hide().find(childSelector).width(); } console.log('child width:' + getCssWidth('.child'));; – user1491819 Aug 8 '14 at 5:28
  • 1
    Awesome solution! Here's a pure-js equivalent of the script jsfiddle.net/Sjeiti/2qkftdjd – Sjeiti Jul 1 '15 at 11:49
  • 1
    If the $(...)[0].style.width answer works, then shouldn't that be the accepted solution? This solution, while elegant, does suffer from some performance shortcomings. – Mihai Danila Jan 23 '16 at 21:36
44

You could access the document.styleSheets object:

<style type="text/css">
    .largeField {
        width: 65%;
    }
</style>
<script type="text/javascript">
    var rules = document.styleSheets[0].rules || document.styleSheets[0].cssRules;
    for (var i=0; i < rules.length; i++) {
        var rule = rules[i];
        if (rule.selectorText.toLowerCase() == ".largefield") {
            alert(rule.style.getPropertyValue("width"));
        }
    }
</script>
  • 8
    +1 proper usage of DOM methods (sometimes jQuery is not the answer) – bobince Apr 13 '09 at 18:52
  • 1
    +1 I'm with you here for accuracy. I'm curious about how each browser suppports this, but this is the right answer. – cgp Apr 14 '09 at 1:49
  • Works well in simpler cases, both FF and IE7, but not for me (see EDIT above). – montrealist Apr 15 '09 at 19:04
  • 1
    Have you tried running through all stylesheets too? My example just used the first (styleSheets[0]). – Gumbo Apr 15 '09 at 20:05
  • 1
    @exizt not a noob question. I got an infinite loop.. – paislee Mar 30 '12 at 2:10
18

Late, but for newer users, try this if the css style contains a percentage:

$element.prop('style')['width'];
  • Worked like a charm for css font-size. $element.prop('style')['font-size]; – Jason Jun 2 '17 at 18:40
10

A jQuery plugin based on Adams answer:

(function ($) {

    $.fn.getWidthInPercent = function () {
        var width = parseFloat($(this).css('width'))/parseFloat($(this).parent().css('width'));
        return Math.round(100*width)+'%';
    };

})(jQuery);

$('body').html($('.largeField').getWidthInPercent());​​​​​

Will return '65%'. Only returns rounded numbers to work better if you do like if (width=='65%'). If you would have used Adams answer directly, that hadn't worked (I got something like 64.93288590604027). :)

3

Building on timofey's excellent and surprising solution, here is a pure Javascript implementation:

function cssDimensions(element)
  var cn = element.cloneNode();
  var div = document.createElement('div');
  div.appendChild(cn);
  div.style.display = 'none';
  document.body.appendChild(div);
  var cs = window.getComputedStyle
    ? getComputedStyle(cn, null)
    : cn.currentStyle;
  var ret = { width: cs.width, height: cs.height };
  document.body.removeChild(div);
  return ret;
}

Hope it's helpful to someone.

  • a syntax error, you forgot { in end of first line. – Akansh Gulati Jul 6 '17 at 11:10
  • only this solution correctly shows 'auto' when width for div not set, jquery css('width') return '0px'. all other answers incorrect... – Alexey Obukhov Oct 17 '18 at 15:55
1

I have a similar issue in Getting values of global stylesheet in jQuery, eventually I came up with the same solution as above.

Just wanted to crosslink the two questions so others can benefit from later findings.

  • 2
    Your question and this one are already linked (see the “Linked” sidebar on the right) by virtue of shesek’s comment on your question. – Chris Johnsen Aug 20 '11 at 12:03
0

You could put styles you need to access with jQuery in either:

  1. the head of the document directly
  2. in an include, which server side script then puts in the head

Then it should be possible (though not necessarily easy) to write a js function to parse everything within the style tags in the document head and return the value you need.

0

You can use the css(width) function to return the current width of the element.

ie.

var myWidth = $("#myElement").css("width");

See also: http://api.jquery.com/width/ http://api.jquery.com/css/

0

There's nothing in jQuery, and nothing straightforward even in javascript. Taking timofey's answer and running with it, I created this function that works to get any properties you want:

// gets the style property as rendered via any means (style sheets, inline, etc) but does *not* compute values
// domNode - the node to get properties for 
// properties - Can be a single property to fetch or an array of properties to fetch
function getFinalStyle(domNode, properties) {
    if(!(properties instanceof Array)) properties = [properties]

    var parent = domNode.parentNode
    if(parent) {
        var originalDisplay = parent.style.display
        parent.style.display = 'none'
    }
    var computedStyles = getComputedStyle(domNode)

    var result = {}
    properties.forEach(function(prop) {
        result[prop] = computedStyles[prop]
    })

    if(parent) {
        parent.style.display = originalDisplay
    }

    return result
}
0

Convert from pixels to percentage using cross multiplication.

Formula Setup:

1.) (element_width_pixels/parent_width_pixels) = (element_width_percentage / 100)

2.) element_width_percentage = (100 * element_width_pixels) / parent_width_pixels

The actual code:

<script>

   var $width_percentage = (100 * $("#child").width()) / $("#parent").width();

</script>

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