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I have this html:

<div id="first">
  <input type="radio" name="one" value="yes" />Yes
  <input type="radio" name="one" value="no"  />No
</div>

<div id="second">
  <input type="radio" name="two" value="yes" />Yes
  <input type="radio" name="two" value="no"  />No
</div>

What I need is when in first div radio 'Yes' is checked then the other radio 'No' in second div should be automatically checked and vice versa. Also, when 'No' in one div then 'Yes' in other. How can I do that with jQuery?

share|improve this question
3  
Note that IDs have to be unique. – Felix Kling Feb 9 '14 at 0:26
1  
You cant have 2 elements with the same id – stackErr Feb 9 '14 at 0:27
    
Ok, i deleted IDs, thats not important. Will be class when in function – Yesian _ Feb 9 '14 at 0:29
    
Try to "get" one value first and put the code up. ;) – DOC ASAREL Feb 9 '14 at 0:30
up vote 4 down vote accepted

If one of the buttons is selected, find all others with the "opposite" value, excluding the one with the same name.

Example:

var $radios = $('input[type=radio]').change(function () {
    var value = this.value === 'yes' ? 'no' : 'yes';
    $radios.filter('[value=' + value + ']:not([name=' + this.name + '])')
        .prop('checked', true);
});

DEMO

share|improve this answer
    
This is great. I have just one more question. How to select just those two radio groups. Because I have more radios in that form with yes/no? Can I put them in one div with ID and select like $('#divid input[type=radio]') ? – Yesian _ Feb 9 '14 at 0:38
1  
@Yesian_ add a class to the two div containing the inputs, and use the selector $(".className input[type=radio]"). see fiddle jsfiddle.net/3jEFk/1 – BeNdErR Feb 9 '14 at 0:40
    
@Yesian_: Yes, putting them in the same div with an ID would work as well. – Felix Kling Feb 9 '14 at 0:59

Alternatively you can also use the .index() method:

var $elems = $('div').find('input').change(function() {
    $elems.not(this.parentNode)
          .find('input')
          .not(':eq('+$(this).index()+')')
          .prop('checked', true);
}).end();

http://jsfiddle.net/dYvCq/

share|improve this answer
    
Hey, I am just about to find out, why whithout the end() the function doesn't run once. To my understanding it would be only needed to make succeeding calls working!?! – DOC ASAREL Feb 9 '14 at 0:56
    
@dollarvar: Without .end $elems would contain the input elements, not the div elements, and $elems.not(this.parentNode).find('input') wouldn't work anymore, because the input elements don't contain other input elements. – Felix Kling Feb 9 '14 at 0:57
    
@FelixKling Damn, the whole change handler is then attached to input. :D Thanks! (Right?...) – DOC ASAREL Feb 9 '14 at 1:10
1  
@dollarvar: Well yeah, because of .find('input'). – Felix Kling Feb 9 '14 at 1:11
    
@FelixKling No, yeah, well, I thought the other .find('input'), I would have done it like this jsfiddle.net/dYvCq/1 and the whole var $elem = caching is new to me. ;) – DOC ASAREL Feb 9 '14 at 1:46

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