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I'm working on project where I have fieldset #a like this.

<fieldset id="a">
      <input type="checkbox" name="c1" value="v1" checked="checked" />
      <input type="checkbox" name="c2" value="v2"/>
      <input type="checkbox" name="c3" value="v3"/>
</fieldset>

This fieldset #a checkbox : is checked value is Dynamic.

I have another fieldset #b on the same page.

What I want is to Assign/Copy checkbox : is checked value from fieldset #a to fieldset #b Serially on page load. [ Both fieldset have equal number of checkboxes. ]

<fieldset id="b">
      <input type="checkbox" name="cc1" value="vv1"/>
      <input type="checkbox" name="cc2" value="vv2"/>
      <input type="checkbox" name="cc3" value="vv3"/>
</fieldset>

How can I achieve this ? Thanks.

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3 Answers 3

up vote 1 down vote accepted

You could do it using that selector you mentioned and then looping each of the values, getting their index, and updating the next fieldsets checkboxes according to those indicies.

Like this:

$('fieldset#a input[type="checkbox"]:checked').each(function(){   
    $('fieldset#b input[type="checkbox"]').eq($(this).index()).prop('checked',true);
});

example: http://jsfiddle.net/niklasvh/hHnLu/

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Thanks Niklas ! It works Perfect :) –  MANnDAaR Jun 22 '11 at 12:56
    
@MANnDAaR I just made a small edit on it a moment ago, use that instead. –  Niklas Jun 22 '11 at 12:57
    
If some checkboxes was checked in fieldset #b then your code would fail. Let's check mine: jsfiddle.net/nPnMa and yours: jsfiddle.net/NVPN6 –  CoolEsh Jun 22 '11 at 12:59
    
@CoolEsh Yes, my answer doesn't take into account what the values are on the second fieldset are, as that wasn't part of the requirement. The easiest solution would be to just uncheck all checkboxes in my example with: $('fieldset#b input[type="checkbox"]').prop('checked',false) before copying, like here jsfiddle.net/niklasvh/NVPN6/1 –  Niklas Jun 22 '11 at 13:11
    
Agree, that's the best solution –  CoolEsh Jun 22 '11 at 13:24
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I was not able to get above stuff working hence I tried below approach and it worked.

// lets uncheck all the checkboxes in first fieldset                                                                                             
$('#b input[type=checkbox]').removeProp('checked');                                    

  cj('#b [type=checkbox]').each(function() {
     if (cj(this).prop('checked') ) {
         // here get the index of current element 
         // then modify below code to set prop checked
         cj('#a [type=checkbox]').prop('checked',true);
     }
});

Hope this helps!!!

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You can use something like this:

$( '#b' ).children( 'input:checkbox' ).each( function( i ) {
    var aChecked = $( '#a' ).children( 'input:checkbox' ).eq( i ).prop( 'checked' );
    if ( aChecked )
    {
        $( this ).prop( 'checked', true );
    }
    else
    {
        $( this ).removeProp( 'checked' );
    }
} );
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Hi CoolEsh ! Thanks for your answer. Even this works perefect :) –  MANnDAaR Jun 22 '11 at 13:01
    
I just noticed above that @Niklas code works perfectly if you don't care about which checkboxes WAS checked before the script execution in fieldset #b. –  CoolEsh Jun 22 '11 at 13:05
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