6

Imagine this:

<svg>
    <g id="node1" class="node"></g>
    <g id="node2" class="node"></g>
</svg>

How can I find the 'g' tag, I want that all tags could be clicked, and not just 'node1' or 'node2'. I've tried simular to this, but could not get it work.

$('g').click(function(){
    alert("Hellooooo");
});
  • Unable to replicate. $('g').click() works fine. jsfiddle.net/ZLnJw – James Donnelly Jun 11 '13 at 12:01
  • Hmm, that's strange. I've tried it again and it works for me to. – Kungen Jun 11 '13 at 13:12
10

Use find() method for more info visit this

For eg $("body").find("p").css("background-color","#f00"); sets all body's <p> element background-color to red.

For your question try this:

$("svg").find("g").click(function(){

// your jquery code here

}
);
  • Thank you so much! Appreciate it. – Kungen Jun 11 '13 at 12:27
  • 5
    This... is a silly answer. $('svg').find('g') is exactly the same as $('g') but with an extra unnecessary method call. Equally you can just use $('p').css({...});. No need for find() here at all. – James Donnelly Jun 11 '13 at 13:14
  • 1
    @JamesDonnelly what happen if inside other tags is also "g" then he need to find within "svg" only. – Bhojendra Rauniyar Jun 12 '13 at 3:55
  • 2
    @C-Link g is only a valid SVG tag. Unless developing a shadow DOM site (which is unlikely in its current state), g will always be the child of svg. – James Donnelly Jun 12 '13 at 7:35
  • 1
    For flat <svg> docs, use $('g'), but when dealing with nested <svg> inside <svg>, I'd use $('svg')[0].find('g') to navigate the DOM tree. – Alvin K. Jun 13 '13 at 18:26
1

Thanks to C-Link I've solved this.

To be sure only the nodes are clickable I've wroted:

$("svg").find("g.node").click(function(){
    alert("Lolol");
});

And it works fine.

  • Hmm, why -1 on this? – Kungen Jun 11 '13 at 13:47
  • 1
    +1. Don't deserve a downvote as it is good to know the long way and short way. As explained above, in some cases, you'd need the long method. – Alvin K. Jun 13 '13 at 18:28

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.