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Consider this simple example code:

<form name="text" id="frm1" method="post">
  <input type="checkbox" name="name[]" value="1000"> Chk1<br>
  <input type="checkbox" name="name[]" value="1001"> Chk2<br>
  <input type="checkbox" name="name[]" value="1002"> Chk3<br>
  <input type="checkbox" name="name[]" value="1003"> Chk4<br>
  <input type="checkbox" id="select_all"/> Select All<br>  
</form>

<form name="text" id="frm2" method="post">
  <input type="checkbox" name="name[]" value="4000"> Chk1<br>
  <input type="checkbox" name="name[]" value="4001"> Chk2<br>
  <input type="checkbox" name="name[]" value="4002"> Chk3<br>
  <input type="checkbox" name="name[]" value="4003"> Chk4<br>
  <input type="checkbox" id="select_all"/> Select All<br>  

I'm trying to get Select All to work in each form (forms are dynamically generated in my production code and have different, varying names)

I'm using this jquery but select_all only works for only the first form; it has not affect on forms below the first.

$('#select_all').change(function() {
  var checkboxes = $(this).closest('form').find(':checkbox');
  if($(this).is(':checked')) {
      checkboxes.attr('checked', 'checked');
  } else {
      checkboxes.removeAttr('checked');
  }
});

I can't figure out how to Check All checkboxes in any :checkbox contained within the form ID.

Can someone point me in the right direction?

Many thanks

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Shameless plug: check out my jQuery CheckAll plugin (still working on documentation) –  Matt Ball Nov 13 '10 at 21:40
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6 Answers

up vote 5 down vote accepted

You have multiple elements with the same ID, which is invalid HTML and is causing the problem you're seeing. Change id="select_all" to class="select_all", and $('#select_all') to $('.select_all'), and you should be good.

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If only I could reclaim the last hour and a half of google search. –  Chris Nov 13 '10 at 22:01
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IDs are unique. You have two. If you want multiple elements, use class="select_all" and $('.select_all')

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You have two elements with id select_all; that's not allowed. Change that to a class and try this:

$('.select_all').change(function() {
  var checkboxes = $(this).closest('form').find(':checkbox');
  checkboxes.attr('checked', $(this).is(':checked'));
});
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1  
No need to use .is(':checked') because you can just inspect the .checked property of the checkbox. No point having an extra jQuery call –  Gareth Nov 13 '10 at 21:23
1  
Eh, jQuery's cheap. It's unlikely that's going to be a bottleneck. –  kevingessner Nov 14 '10 at 0:26
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$('#select_all').click(function() {
    $("input:checkbox", $(this).closest('form')).attr("checked", this.checked)
});

However, you will need only one item with id select_all for this to work. If you can change to a class of select_all then just replace the # with a . and you're good to go

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Try this:

$("#select_all").click(function()               
        {
            var checked_status = this.checked;
            $("input[@name=name]").each(function()
            {
                this.checked = checked_status;
            });
        });
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Also make sure you have one "select_all" class instead of two IDs. –  cosmoo Nov 13 '10 at 21:23
    
This will not help. The problem is the duplicated ID. And then it will select all checkboxes of all forms. –  Felix Kling Nov 13 '10 at 21:24
    
Yes, I realized that after posting the code. Please view the first answer, it should solve your problem. –  cosmoo Nov 13 '10 at 21:33
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you can not have two items with the same ID. example

html:

<form name="text" id="frm1" method="post">
  <input type="checkbox" name="name[]" value="1000"> Chk1<br>
  <input type="checkbox" name="name[]" value="1001"> Chk2<br>
  <input type="checkbox" name="name[]" value="1002"> Chk3<br>
  <input type="checkbox" name="name[]" value="1003"> Chk4<br>
  <input type="checkbox" id="select_all_1"/> Select All<br>  
</form>

<form name="text" id="frm2" method="post">
  <input type="checkbox" name="name[]" value="4000"> Chk1<br>
  <input type="checkbox" name="name[]" value="4001"> Chk2<br>
  <input type="checkbox" name="name[]" value="4002"> Chk3<br>
  <input type="checkbox" name="name[]" value="4003"> Chk4<br>
  <input type="checkbox" id="select_all_2"/> Select All<br>  
</form>

JS:

$(function() {

    $('#select_all_1, #select_all_2').bind('click', function(event) {

        var 
            ref = this,
            refChecked = this.checked;

        $(this.form).find('input[type="checkbox"]').each(function(i, el) {
            if(this != ref)
              this.checked = refChecked;
        });

    });

});
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