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I have 3 dropdown where I want to add a class to a specific div depending on the value of the dropdown.

<select name="item1">
    <option>Blue</option>
    <option>Green</option>
    <option>Red</option>
</select>

<select name="item2">
    <option>Blue</option>
    <option>Green</option>
    <option>Red</option>
</select>

<select name="item3">
    <option>Blue</option>
    <option>Green</option>
    <option>Red</option>
</select>

<div class="product">
    <div class="item1"></div>
    <div class="item2"></div>
    <div class="item3"></div>
</div>

I'm trying to add a css class depending on the value of a dropdown. For example, if the option blue from the dropdown item1 is selected, I would like to add a class .blue to the div item1.

I used to have checkboxes instead of the dropdown and I had this code:

$(document).ready(function($){
    $('input#red').change(function(){
        if($(this).is(":checked")) {
            $('div.item1').addClass("red");
        } else {
            $('div.item1').removeClass("red");
        }
    });
    $('input#blue').change(function(){
        if($(this).is(":checked")) {
            $('div.item1').addClass("blue");
        } else {
            $('div.item1').removeClass("blue");
        }
    });
});

I created this: http://jsfiddle.net/uJcB7/14/ How does should be done correctly?

------------EDIT-----------

I am using gravity forms to generate the select box, and they are adding "|0" after the name of the option (I don't know why!).

For example "green|0" instead of "green". The "|0" is hidden in the field but the class generated is "green|0".

Any thought on how to remove that "|0" on the css class?

Also they generate a name for the selectbox, is it possible to use a class instead of using the name element?

Have a look on the updated code:

http://jsfiddle.net/uJcB7/24/

share|improve this question

6 Answers 6

Here's a general function that will add the text value of the selected option to the appropriate div:

$(document).ready(function($){

  $('select').change(function(){
    var s = $(this);
    var name = s.attr('name');
     $('.'+name).removeClass().addClass(name+' '+s.find(':selected').text().toLowerCase());
  });
});​

Demo: http://jsfiddle.net/jackwanders/xcEa9/4/

Even more generally, you can use $.map to obtain a list of the select menu's values so that you know which class names to remove on each change event:

$('select').change(function(){
    var $this = $(this);
    var values = $.map($this.find('option'),function(opt){ return opt.value.toLowerCase(); }).join(' ');
    $('.'+this.name).removeClass(values).addClass($(this).val().toLowerCase());
});

Demo: http://jsfiddle.net/jackwanders/xcEa9/5/

share|improve this answer
    
That's an unnecessary amount of jQuery to access properties that are readily available via this (the <select> element that triggered the event). –  Anthony Grist Jun 26 '12 at 13:19

The class of the <div> to add the class to is the same as the name property of the <select> element being changed, and the name of the class to add is the lower case version of the value of the option selected. With that in mind, this works:

$(document).ready(function($){
    $('select').change(function(){
        $('.' + this.name).attr('class', this.name + ' ' + this.value.toLowerCase());
    });
});

jsFiddle DEMO

share|improve this answer
    
Short and sweet. Nice! I would only warn the OP that this will act on any select element, so they may need to filter it in some way, like Roko suggested. –  chipcullen Jun 26 '12 at 13:44
    
It also hardcodes the class names to remove, so OP will need to remember to update this function if the values of the select menus change –  jackwanders Jun 26 '12 at 14:09
    
@jackwanders I couldn't decide on the best method to handle that, but have now. I've edited the code so that, rather than adding/removing specific classes, it simply overwrites the class attribute with the required new classes - that will be itemX and red/blue/green. –  Anthony Grist Jun 26 '12 at 14:14
    
that's what i had in my first solution; basically resetting the class. However, if the div looks like <div class="item 1 rounded-corners">, then you lose the rounded-corners class. that's why I settled on using $.map to get all option values –  jackwanders Jun 26 '12 at 14:16
    
@jackwanders Assuming the HTML in use actually looks like the HTML in the question, that wouldn't be an issue in this specific case. In general, however, you're correct; $.map() would be the more generic solution. –  Anthony Grist Jun 26 '12 at 14:21
$(document).ready(function() {

  $('#item1').change(function() {
    $('.item1').addClass($('#item1').val());
  });

  $('#item2').change(function() {
    $('.item2').addClass($('#item2').val());
  });

  $('#item3').change(function() {
    $('.item3').addClass($('#item3').val());
  });

});

You can also keep the individual segments within for loop if you like.

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$(function() {
  $('select').bind('change', function() {
    var $this = $(this);
    $this.find('option:not(:selected)').each(function(index, option) {
      $this.removeClass($(option).text());
    });
    $this.addClass($this.find('option:selected').text());
  });        
});

Updated JSFiddle

share|improve this answer

This clears the previously set color value in the class (if any) and sets the new one.

$(document).ready(function($){
    $('select').change(function(){
        name = $(this).attr('name');
        curClass = $('div.'+name).attr('class');
        $('div.'+name).removeClass(curClass).addClass(name + ' ' +$(this).val());
    });
});

Fiddle Here

share|improve this answer
    
thanks for your contribution! –  user1482757 Jun 27 '12 at 10:17

This one will work for all your select elements.

jsFiddle demo

$('select[name^=item]').change(function(){
    var val = $(this).val();
    $('div.'+$(this).attr('name')).removeClass('red blue green').addClass(val);
});

select[name^=item] Searches for a select element which name starts with item

share|improve this answer
    
Since you're not removing the other classes, this doesn't work if you select green and then switch the value back to red or blue because the .green CSS declaration takes precedence over the others. Also, as with jackwanders answer, considerably more jQuery than required. –  Anthony Grist Jun 26 '12 at 13:23
    
@AnthonyGrist Thanks for pointing that out. Corrected! –  Roko C. Buljan Jun 26 '12 at 13:27

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