36

Can I cut (completely, with all styles and attributes) an element from a location and paste it in another location (like body) with jQuery?

Also, I want to place a string (or tag) in the old location, because I want to change its place to old location at the end of the script.

Can I? How?

Thank you.

  • Ive never heard of anything like this but maybe create an event handler for a copy command, (plenty of examples on google, then just remove the inner html, you will have to save the inner html code somewhere first, before pasting it. Maybe in xml or other methods. May be the object can only be cut when a paste has already been chosen, then you could do it all in one function. Dont think its impossible thought heres how to detect copy and paste events mkyong.com/jquery/… – AlexMorley-Finch Aug 25 '11 at 7:39
  • Note: Elegant solution to swap 2 neighboring items: stackoverflow.com/a/8638127/669677 – user669677 May 9 '14 at 12:46
40

appendTo() will automatically move the matched elements from their current location to the specified container, which seems to be what you want.

You can use after() to insert new content before moving the element:

$("#yourElement").after("<p>Element was there</p>").appendTo("body");
  • +1 but if the CSS is applied like this though .someContainer #yourElement { color: blue; } taking it out of the container will "ruin" the style. So it might be more complicated. – Shadow Wizard is Ear For You Aug 25 '11 at 7:48
  • Thank you. i was using appendTo() but I didn't know it will move elements. – mrdaliri Aug 25 '11 at 7:48
  • @kikio, unfortunately, unless the new container also exposes the someContainer class, the styles will indeed change. To my knowledge, there's no easy way to compute and reapply the original styles. Maybe you can change the CSS rules so the appropriate styles will apply to the element regardless of its container? – Frédéric Hamidi Aug 25 '11 at 8:04
  • yes, "I" can, but i'm developing a plugin, maybe my users can't – mrdaliri Aug 25 '11 at 8:11
17

.detach() is more appropriate for this task, as @lvan suggested.

jQuery(jQuery("#yourElement").detach()).appendTo("body");
8

you can do it by clone first copy it to another location

$('#yourElement').clone().appendTo('#anotherDiv');

then remove old one,

 $('#parentOfOldElement #yourElement').remove();

or you can replace it to get it later

  $('#parentOfOldElement #yourElement').replaceWith('<div id="toReplaceAgain">/div>');
  • Thank you. I'm newbie in jQuery, and didn't heard about remove() – mrdaliri Aug 25 '11 at 7:55
  • 8
    .detach() could be used instead of clone() and remove() – Ivan Ivanov Jul 17 '14 at 23:50
0

if you have this similar HTML code :

<div class="a">
   <div class="b"></div>
</div>

you can act as following:

var div = '<div class="a">'+
          '<div class="b"></div>'+
          '</div>';
$("body").append(div);

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