Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a set of radio buttons:

<input type="radio" name="attending_days" value="06-18-13"/>Tuesday June 18, 2013
<input type="radio" name="attending_days" value="06-18-13"/>Wednesday June 19, 2013
<input type="radio" name="attending_days" value="both_days"/>Both days

Checkboxes:

<div id="checkboxes">
<input type="checkbox" name="checkboxes" value ="1"/>One<br />
<input type="checkbox" name="checkboxes" value ="2"/>Two <br />
<input type="checkbox" name="checkboxes" value ="3"/>Three

and so, 20 such checkboxes.

Based on what radio button value is selected, I want to limit my checkboxes.

for example for options one or two only 4(out of 20) checkboxes can be selected and for both days(radio 3) eight checkboxes can be selected.

I am not sure how to approach this. Any help would be highly appreciated.

share|improve this question
    
use something like $('input[name=attending_days]:checked', '#myForm').val() to get the value checked radio button, and then based on the result use if else statements to block the undesirable checkboxes –  auicsc Apr 22 '13 at 20:33
    
I think you should also mention what happens when (1) the user first clicks 'both_days', then (2) selects more than 4 checkboxes, then (3) user clicks one of the first two radio buttons. What should happen then? –  Terry Young Apr 22 '13 at 20:40
    
okay, if user clicks both days, he can select a maximum of any 8 topics from checkboxes and rest would be disabled, unless he changes his mind, unchecks and re-selects something else. When it is sny of the first two dates, user can select a maximum of 4 topics and rest get disabled. –  alice Apr 22 '13 at 20:44
    
I understand that part. You probably misunderstood my question. I'm pointing out a potential loophole in your design. IF the user initially chosen both_days AND initially checked more than 4 topics, THEN AFTER THAT the user decides to switch back to the one of the first two radio buttons, now you still have more than 4 checkboxes checked. How should this edge case be handled? –  Terry Young Apr 22 '13 at 20:49
    
Or did you mean to say we would have to disabled the first two radio buttons as well, in case the user checked more than 4 checkboxes? –  Terry Young Apr 22 '13 at 20:50

3 Answers 3

up vote 2 down vote accepted

Demo: http://jsfiddle.net/terryyounghk/xLCzp/

$('input[name=checkboxes]').on('click', function () {
    var lastOneChecked = $('input[name=attending_days]:last:checked').length,
        iLimit = lastOneChecked ? 8 : 4,
        iChecked = $('input[name=checkboxes]:checked').length;

    if (iChecked > iLimit) {
       return false;
    }

    return true; // added so that anonymous function always returns something
});

$('input[name=attending_days]').on('click', function () {
    $('input[name=checkboxes]').prop('checked', false);
});
share|improve this answer
    
You just made me smile after a really tough Monday! This is just perfect. :) –  alice Apr 22 '13 at 20:58
    
@alice You're welcome –  Terry Young Apr 22 '13 at 20:59
    
Hi, This is working for me, except: Now Komodo is showing me this warning: anonymous function does not always return a value and the first checkbox unchecks and checks itself when I click on other checkboxes. Just the first checkbox. Any ideas on how to fix that? –  alice Apr 23 '13 at 15:56
    
I've added the 'fix'. The warning you see is because the return false is inside the if statement. If the logic doesn't go in there, then it is not returning anything. Komodo is simply warning you about this inconsistency. Technically it shouldn't affect the big picture. –  Terry Young Apr 23 '13 at 16:02
    
Understood that, but would you happen to know why the first checkbox checks and unchecks itself when I click anything else? –  alice Apr 23 '13 at 16:07

An example would be using classes. You give each radio button and its checkboxes a class.

<input type="radio" class='both' name="attending_days" value="both_days"/>Both days

And checkboxes: (note that the checkboxes are disabled)

<input type="checkbox" class='both' name="checkboxes" value ="1" disabled/>One
<input type="checkbox" class='both' name="checkboxes" value ="2" disabled/>Two 

Then the JS

$('input[type="radio"]').click(function(){
   if($(this).is(':checked')){
     var class = $(this).attr('class');
     $('input[type="checkbox"]').prop('disabled', true); 
     $('.'+class).prop('disabled', false);
   }
});
share|improve this answer
    
@Spooky: Thanks for your response. Let me make it more clear. The options are not associated with a particular radio button user can opt for any four or any 8, depending on what days they want to attend and if I do display:none, wouldn't that hide all the checkboxes? I don't want to do that. user can select, disselect but only to a limit which would change as per radio button. –  alice Apr 22 '13 at 20:41

You can create a global look-up table of the Ids or values.

var lookup = {}; 

lookup['rdo1'] = ['rdo2','rdo3','rdo4']; 
lookup['rdo2'] = ['rdo5','rdo6','rdo7'];
...and so on...

Then, when a radiobutton is clicked, in the handler

// grabs all of the ids from the lookup
var ids = lookup[$(this).attr('id').toString()]

for (var i = 0; i < ids.length; i++) {
    $('#' + ids[i].toString()).addClass('enabledCss');
}
// then loop through the rest of the table and set all of their classes to 'disabledCss' or whatever. 

Another route you could take is storing the dependent Id's in a data-* attribute and grabbing them from there.

<input type="radio" data-dependents="2,3,4,5".../>

You can then pull them with var idStr= $(this).attr('data-dependents'); Replace all spaces and split them into an array and then use that array to enable/disable appropriately. var myArr = idStr.split(idStr.replace(' ',''),',');

This code will have to be extended out to all of your possibilities, but this is the gist. The data-* is probably the most succinct way.

Note This is rough, untested code. I just wanted to get you pointed in the right direction. You'll have to fully flesh it out as the rest is basically repeating what I've already shown a bunch more times.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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