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I am using jQuery SVG. I can't add or remove a class to an object. Anyone know my mistake?

The SVG:

<rect class="jimmy" id="p5" x="200" y="200" width="100" height="100" />

The jQuery that won't add the class:

$(".jimmy").click(function() {
    $(this).addClass("clicked");
});

I know the SVG and jQuery are working together fine because I can target the object and fire an alert when it's clicked:

$(".jimmy").click(function() {
    alert('Handler for .click() called.');
});
share|improve this question
2  
Good article here: toddmotto.com/… –  Kris Jun 12 '14 at 15:31
6  
So the actual question of WHY can't I use the jQuery *class functions remains unanswered... If I can access the properties of SVG elements via jQuery attr function, why can't the *class functions also do this? jQuery FAIL?!? –  Ryan Griggs Dec 2 '14 at 2:15
1  
Seriously, does anyone know WHY?? –  Ben Wilde Feb 20 at 18:33
    
Tiny library that adds this functionality for SVG files: github.com/toddmotto/lunar –  Chuck Apr 8 at 11:07

9 Answers 9

up vote 172 down vote accepted

JQuery can't add a class to an SVG.

.attr() works with SVG, so if you don't want to depend on another library:

// Instead of .addClass("newclass")
$("#item").attr("class", "oldclass newclass");
// Instead of .removeClass("newclass")
$("#item").attr("class", "oldclass");

And if you don't want to depend on jQuery:

var element = document.getElementById("item");
// Instead of .addClass("newclass")
element.setAttribute("class", "oldclass newclass");
// Instead of .removeClass("newclass")
element.setAttribute("class", "oldclass");
share|improve this answer
    
In support to forresto suggestion - discusscode.blogspot.in/2012/08/… –  helloworld Aug 5 '12 at 7:47
    
perfect. this should be the answer. though the REAL answer is for jquery to include this by default, at least as a setting or something. –  AwokeKnowing Nov 4 '13 at 23:39
    
.attr("class", "oldclass") (or the more cumbersome .setAttribute("class", "oldclass")) is really not equivalent to removing newclass! –  Tom Jul 29 '14 at 14:36
    
Great answer ( and v.nice technique ) ... but would it be an idea to edit the question so that it starts by stating that jquery can't add a class to an SVG ( if that's the case ... as it seems )? –  byronyasgur Dec 15 '14 at 23:33
    
The non-jQuery version won't work on old IE (certainly 7 and earlier, can't remember about 8) because setAttribute() is broken. –  Tim Down Feb 11 at 11:58

There is element.classList in the DOM API that works for both HTML and SVG elements. No need for jQuery SVG plugin or even jQuery.

$(".jimmy").click(function() {
    this.classList.add("clicked");
});
share|improve this answer
1  
I tested this, and .classList appears to be undefined for svg sub-elements, at least in Chrome. –  Chris Jaynes Apr 25 '13 at 18:36
2  
Works for me in Chrome. I have SVG embedded in HTML, so my document structure looks like this: <html><svg><circle class="jimmy" ...></svg></html> –  Tomas Mikula May 27 '13 at 21:32
1  
I used this to add class in a <g> SVG element, works fine in Chrome. –  Rachelle Uy Aug 14 '13 at 5:16
5  
IE does not implement .classList and API on SVG Elements. See caniuse.com/#feat=classlist and the "known issues" list. That mentions WebKit browsers also. –  Shenme Feb 13 '14 at 0:22
1  
And as time goes on, this answer becomes even more correct (and the best answer) –  Gerrat Apr 10 at 15:22

If you have dynamic classes or don't know what classes could be already applied then this method I believe is the best approach:

// addClass
$('path').attr('class', function(index, classNames) {
    return classNames + ' class-name';
});

// removeClass
$('path').attr('class', function(index, classNames) {
    return classNames.replace('class-name', '');
});
share|improve this answer

Based on above answers I created the following API

/*
 * .addClassSVG(className)
 * Adds the specified class(es) to each of the set of matched SVG elements.
 */
$.fn.addClassSVG = function(className){
    $(this).attr('class', function(index, existingClassNames) {
        return existingClassNames + ' ' + className;
    });
    return this;
};

/*
 * .removeClassSVG(className)
 * Removes the specified class to each of the set of matched SVG elements.
 */
$.fn.removeClassSVG = function(className){
    $(this).attr('class', function(index, existingClassNames) {
        var re = new RegExp(className, 'g');
        return existingClassNames.replace(re, '');
    });
    return this;
};
share|improve this answer
    
you don't really need regexp here, plain string replace is much faster... –  ivanhoe Dec 30 '14 at 4:10

After loading jquery.svg.js you must load this file: http://keith-wood.name/js/jquery.svgdom.js.

Source: http://keith-wood.name/svg.html#dom

Working example: http://jsfiddle.net/74RbC/99/

share|improve this answer
    
Added it - still doesn't seem to work. I've been looking through the documentation on jquery SVG's site, but there is no clear explanation of what you need to do to make use of its extra functionality. –  Donny P Dec 27 '11 at 0:55
1  
Yes it does, added a working example. –  bennedich Dec 27 '11 at 1:57

Just add the missing prototype constructor to all SVG nodes:

SVGElement.prototype.hasClass = function (className) {
  return new RegExp('(\\s|^)' + className + '(\\s|$)').test(this.getAttribute('class'));
};

SVGElement.prototype.addClass = function (className) { 
  if (!this.hasClass(className)) {
    this.setAttribute('class', this.getAttribute('class') + ' ' + className);
  }
};

SVGElement.prototype.removeClass = function (className) {
  var removedClass = this.getAttribute('class').replace(new RegExp('(\\s|^)' + className + '(\\s|$)', 'g'), '$2');
  if (this.hasClass(className)) {
    this.setAttribute('class', removedClass);
  }
};

You can then use it this way without requiring jQuery:

this.addClass('clicked');

this.removeClass('clicked');

All credit goes to Todd Moto.

share|improve this answer

The Problem:

The reason jQuery's class manipulation functions do not work with the SVG elements is because jQuery uses the className property for these functions.

Excerpt from jQuery attributes/classes.js:

cur = elem.nodeType === 1 && ( elem.className ?
    ( " " + elem.className + " " ).replace( rclass, " " ) :
    " "
);

This behaves as expected for HTML elements, but for SVG elements className is a little different. For an SVG element, className is not a string, but an instance of SVGAnimatedString.

Consider the following code:

var test_div = document.getElementById('test-div');
var test_svg = document.getElementById('test-svg');
console.log(test_div.className);
console.log(test_svg.className);
#test-div {
    width: 200px;
    height: 50px;
    background: blue;
}
<div class="test div" id="test-div"></div>

<svg width="200" height="50" viewBox="0 0 200 50">
  <rect width="200" height="50" fill="green" class="test svg" id="test-svg" />
</svg>

If you run this code you will see something like the following in your developer console.

test div
SVGAnimatedString { baseVal="test svg",  animVal="test svg"}

If we were to cast that SVGAnimatedString object to a string as jQuery does, we would have [object SVGAnimatedString], which is where jQuery fails.

How the jQuery SVG plugin handles this:

The jQuery SVG plugin works around this by patching the relevant functions to add SVG support.

Excerpt from jQuery SVG jquery.svgdom.js:

function getClassNames(elem) {
    return (!$.svg.isSVGElem(elem) ? elem.className :
        (elem.className ? elem.className.baseVal : elem.getAttribute('class'))) || '';
}

This function will detect if an element is an SVG element, and if it is it will use the baseVal property of the SVGAnimatedString object if available, before falling back on the class attribute.

jQuery's stance on the issue:

jQuery currently lists this issue on their Won’t Fix page. Here is the relevant parts.

SVG/VML or Namespaced Elements Bugs

jQuery is primarily a library for the HTML DOM, so most problems related to SVG/VML documents or namespaced elements are out of scope. We do try to address problems that "bleed through" to HTML documents, such as events that bubble out of SVG.

Evidently jQuery considers full SVG support outside the scope of the jQuery core, and better suited for plugins.

share|improve this answer

jQuery does not support the classes of SVG elements. You can get the element directly $(el).get(0) and use classList and add / remove. There is a trick with this too in that the topmost SVG element is actually a normal DOM object and can be used like every other element in jQuery. In my project I created this to take care of what I needed but the documentation provided on the Mozilla Developer Network has a shim that can be used as an alternative.

example

function addRemoveClass(jqEl, className, addOrRemove) 
{
  var classAttr = jqEl.attr('class');
  if (!addOrRemove) {
    classAttr = classAttr.replace(new RegExp('\\s?' + className), '');
    jqEl.attr('class', classAttr);
  } else {
    classAttr = classAttr + (classAttr.length === 0 ? '' : ' ') + className;
    jqEl.attr('class', classAttr);
  }
}

An alternative all tougher is to use D3.js as your selector engine instead. My projects have charts that are built with it so it's also in my app scope. D3 correctly modifies the class attributes of vanilla DOM elements and SVG elements. Though adding D3 for just this case would likely be overkill.

d3.select(el).classed('myclass', true);
share|improve this answer
    
Thanks for that d3 bit... I actually already had d3 on the page so just decided to use that. Very useful :) –  Muers Dec 2 '14 at 19:29

Here is my rather inelegant but working code that deals with the following issues (without any dependencies):

  • classList not existing on <svg> elements in IE
  • className not representing the class attribute on <svg> elements in IE
  • Old IE's broken getAttribute() and setAttribute() implementations

It uses classList where possible.

Code:

var classNameContainsClass = function(fullClassName, className) {
    return !!fullClassName &&
           new RegExp("(?:^|\\s)" + className + "(?:\\s|$)").test(fullClassName);
};

var hasClass = function(el, className) {
    if (el.nodeType !== 1) {
        return false;
    }
    if (typeof el.classList == "object") {
        return (el.nodeType == 1) && el.classList.contains(className);
    } else {
        var classNameSupported = (typeof el.className == "string");
        var elClass = classNameSupported ? el.className : el.getAttribute("class");
        return classNameContainsClass(elClass, className);
    }
};

var addClass = function(el, className) {
    if (el.nodeType !== 1) {
        return;
    }
    if (typeof el.classList == "object") {
        el.classList.add(className);
    } else {
        var classNameSupported = (typeof el.className == "string");
        var elClass = classNameSupported ?
            el.className : el.getAttribute("class");
        if (elClass) {
            if (!classNameContainsClass(elClass, className)) {
                elClass += " " + className;
            }
        } else {
            elClass = className;
        }
        if (classNameSupported) {
            el.className = elClass;
        } else {
            el.setAttribute("class", elClass);
        }
    }
};

var removeClass = (function() {
    function replacer(matched, whiteSpaceBefore, whiteSpaceAfter) {
        return (whiteSpaceBefore && whiteSpaceAfter) ? " " : "";
    }

    return function(el, className) {
        if (el.nodeType !== 1) {
            return;
        }
        if (typeof el.classList == "object") {
            el.classList.remove(className);
        } else {
            var classNameSupported = (typeof el.className == "string");
            var elClass = classNameSupported ?
                el.className : el.getAttribute("class");
            elClass = elClass.replace(new RegExp("(^|\\s)" + className + "(\\s|$)"), replacer);
            if (classNameSupported) {
                el.className = elClass;
            } else {
                el.setAttribute("class", elClass);
            }
        }
    }
})();
share|improve this answer

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