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Is there a way in jQuery to get all CSS from an existing element and apply it to another without listing them all?

I know it would work if they were a style attribute with attr(), but all of my styles are in an external style sheet.

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5 Answers 5

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345

A couple years late, but here is a solution that retrieves both inline styling and external styling:

function css(a) {
    var sheets = document.styleSheets, o = {};
    for (var i in sheets) {
        var rules = sheets[i].rules || sheets[i].cssRules;
        for (var r in rules) {
            if (a.is(rules[r].selectorText)) {
                o = $.extend(o, css2json(rules[r].style), css2json(a.attr('style')));
            }
        }
    }
    return o;
}

function css2json(css) {
    var s = {};
    if (!css) return s;
    if (css instanceof CSSStyleDeclaration) {
        for (var i in css) {
            if ((css[i]).toLowerCase) {
                s[(css[i]).toLowerCase()] = (css[css[i]]);
            }
        }
    } else if (typeof css == "string") {
        css = css.split("; ");
        for (var i in css) {
            var l = css[i].split(": ");
            s[l[0].toLowerCase()] = (l[1]);
        }
    }
    return s;
}

Pass a jQuery object into css() and it will return an object, which you can then plug back into jQuery's $().css(), ex:

var style = css($("#elementToGetAllCSS"));
$("#elementToPutStyleInto").css(style);

:)

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28
  • 15
    BTW, when you say a JSON object, you just mean a JavaScript object right?
    – alex
    Apr 29, 2011 at 10:11
  • 3
    this looks awesome, but when I'm trying it it misses out on certain properties such as font-family.
    – Damon
    Aug 18, 2011 at 19:56
  • 3
    @Damon: That's a valid assumption, considering the first line of the answer says ...here is a solution that retrieves both inline styling and external styling.
    – alex
    Nov 23, 2011 at 23:44
  • 7
    This code doesn't work any more (always returns empty object in Chrome)
    – Ivan Castellanos
    Feb 26, 2013 at 10:40
  • 13
    Note: Moderators have modified my original code, I give no guarantee anything will work.
    – marknadal
    Jul 3, 2013 at 23:05
92

Two years late, but I have the solution you're looking for. Not intending to take credit form the original author, here's a plugin which I found works exceptionally well for what you need, but gets all possible styles in all browsers, even IE.

Warning: This code generates a lot of output, and should be used sparingly. It not only copies all standard CSS properties, but also all vendor CSS properties for that browser.

jquery.getStyleObject.js:

/*
 * getStyleObject Plugin for jQuery JavaScript Library
 * From: http://upshots.org/?p=112
 */

(function($){
    $.fn.getStyleObject = function(){
        var dom = this.get(0);
        var style;
        var returns = {};
        if(window.getComputedStyle){
            var camelize = function(a,b){
                return b.toUpperCase();
            };
            style = window.getComputedStyle(dom, null);
            for(var i = 0, l = style.length; i < l; i++){
                var prop = style[i];
                var camel = prop.replace(/\-([a-z])/g, camelize);
                var val = style.getPropertyValue(prop);
                returns[camel] = val;
            };
            return returns;
        };
        if(style = dom.currentStyle){
            for(var prop in style){
                returns[prop] = style[prop];
            };
            return returns;
        };
        return this.css();
    }
})(jQuery);

Basic usage is pretty simple, but he's written a function for that as well:

$.fn.copyCSS = function(source){
  var styles = $(source).getStyleObject();
  this.css(styles);
}
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6
  • 2
    @Damon: Thanks! I've updated my post, and edited the wording slightly to make it clear that this is not my work. Sorry about the previous wording, I think I typed this answer up late at night, but either way, it was pretty douchey.
    – Dakota
    Aug 23, 2011 at 5:35
  • 3
    Why does this return this.css()? There's no documentation for this method taking no arguments, and if this statement is reached, it throws an exception. I think it would be more appropriate to return returns; even if it's an empty object.
    – Tristan Lee
    Oct 8, 2014 at 18:01
  • 2
    Would it be possible to get a working demo of this? Not clear to me where to put this code and how to invoke it. It's also not clear to me where the output is being stored. Thanks.
    – Cymro
    Mar 7, 2016 at 18:06
  • 1
    I do not understand how to use it, There's something called jsfiddle that most people use to help. Good programmer are the worse teacher
    – Gino
    Jun 13, 2016 at 21:10
  • @Gino If you want to copy the style of div1 to div 2 just use: $("#div2").copyCSS($("#div1")); and to get the style of any element you could use: JSON.stringify($('#element').getStyleObject());
    – Wessam El Mahdy
    Jun 15, 2016 at 22:59
18

Why not use .style of the DOM element? It's an object which contains members such as width and backgroundColor.

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3
  • 1
    I'm pretty sure this is the only way to get the actual styles associated with the class. (as opposed to the calculated styles which are different)
    – cgp
    Apr 16, 2009 at 3:31
  • 35
    With .style you only get properties applied to the style attribute of the element, but not those applied with a CSS class.
    – acanimal
    Jun 29, 2012 at 18:18
  • +1 as i m using inline script and changing it dynamically afterwords
    – user991554
    Jun 10, 2013 at 6:55
11

I had tried many different solutions. This was the only one that worked for me in that it was able to pick up on styles applied at class level and at style as directly attributed on the element. So a font set at css file level and one as a style attribute; it returned the correct font.

It is simple! (Sorry, can't find where I originally found it)

//-- html object
var element = htmlObject; //e.g document.getElementById
//-- or jquery object
var element = htmlObject[0]; //e.g $(selector)

var stylearray = document.defaultView.getComputedStyle(element, null);
var font = stylearray["font-family"]

Alternatively you can list all the style by cycling through the array

for (var key in stylearray) {
console.log(key + ': ' + stylearray[key];
}
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1
4

@marknadal's solution wasn't grabbing hyphenated properties for me (e.g. max-width), but changing the first for loop in css2json() made it work, and I suspect performs fewer iterations:

for (var i = 0; i < css.length; i += 1) {
    s[css[i]] = css.getPropertyValue(css[i]);
}

Loops via length rather than in, retrieves via getPropertyValue() rather than toLowerCase().

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