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I have the following scenario: I want to append the input field to a different parent. The code looks like this

    <div id="id1">
        <div id="id2">
             <input type="radio">
       </div>
    </div>

I want to append the input field to "id1" and delete the "id2". The final result should look like this

    <div id="id1">
        <input type="radio">
    </div>
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marked as duplicate by kapa May 28 at 14:16

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Have you tried anything? –  Shadow Wizard Oct 16 '12 at 10:59
    
post js code please.. –  bhb Oct 16 '12 at 10:59
    
yes, I did. what I am doing It's actually quite complicated. I am working on a HMTL5 page for mobile devices. I am using this script screwdefaultbuttons.com to add custom images to my page. However it is written I should use $(document).ready function but I actually have to replace it with $(document).bind('pageinit',function(){}); Now the problem is whenever a div with data-role=page is shown the script gets called again. The custom buttons are wrapped in a div that wraps the input field. each time I go to another page I get a deeper input field nested. I have to clean this somehow. –  bboydflo Oct 16 '12 at 13:03
    
This is how it looks when I go to the next page. The input field gets nested two times. I want to place it just under the .ui-radio class. <div class="ui-radio"><div style="background-image: url(...);class="styledRadio"><div style="background-image: url(...); class="styledRadio"><input name="radiobuttons" data-role="none" type="radio" style="display: none; " onclick="..."></div></div><label for="..." type="radio">Bærbare computere</label></div> –  bboydflo Oct 16 '12 at 13:08

8 Answers 8

up vote 3 down vote accepted
$('#id2 input').appendTo($('#id1'));
$('#id2').remove();
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thanks. it looks like it works the way I want. But there is one little thing I have to figure out. I will come up with another question if I won't fixed it myself. Thank you –  bboydflo Oct 16 '12 at 11:14
​$('#id2 input').​​​​appendTo($('#id1'))​​​​;
$('#id2').remove();

DEMO

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In one line:

​$("#id2"​​).find("input").appendTo("#id1"​).end().end().remove();​​​​​

Another one line:

​$("#id2 input"​​).unwrap("#id2");​​​​​

DEMO: http://jsfiddle.net/CrmMG/

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$('#id1').append($('#id2 input'))
$('#id2').remove();

Live Demo

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take your input

 var input =  $("inputselector");

Put it in desired container

var parentRef =  $("inputselector").parent();
 $("inputselector").parent().parent().append( $("inputselector"));

Delete parent

 parentRef.remove();
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$div = $('input:radio').clone();
$('#id2').remove();
$('#id1').append($div);

fiddle

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Use jQuery unwrap(). It removes the parent of selector leaving the selected element in it's place

$('#id2 input').unwrap()

API Reference http://api.jquery.com/unwrap/

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you can use either of them.

    $('#id2 input').​​​​appendTo($('#id1'))​​​​;
    $('#id2').remove();
    or
   $('#id2 input').unwrap();
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