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I'm validating a form, but I'm having problems with this particular select validation.

<div class="control-group" id="sukupuoli">
        <label class="control-label">Sukupuoli</label>
        <div class="controls">
            <select name="sukupuoli">
            <option value="Valitse">Valitse</option>
            <option value="Naaras">Naaras</option>
            <option value="Uros">Uros</option>
            </select>
        </div>
</div>

Here's the JS for the validation:

$('#ilmoittuminen').submit(function(){

        var Sukupuoli = $('input[name=sukupuoli]').val()

            if(Sukupuoli  == "Valitse"){
            $('.control-group#sukupuoli').addClass("error");
            $('select[name=sukupuoli]').focus();
            return false; 
            }

            var ilmoittautumisdata = $('#ilmoittuminen').serialize();
            $.ajax({
                url: "",
                data: ilmoittautumisdata,
                type: "POST"})
            .done(function () {

                })
            .error(function () {
            $('.control-group').addClass("alert");
            });

                return false;
});

It doesn't submit, but it doesn't add the class error either. A fiddle.

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2 Answers 2

up vote 4 down vote accepted

You should be using select here:

var Sukupuoli = $('select[name=sukupuoli]').val()

Example: http://jsfiddle.net/HV7sn/1/

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Oh, that's why it's not working. –  Christian Oct 27 '12 at 17:30

You don't need to use $('.control-group#sukupuoli').addClass("error"); just select it by the id only:

$('#sukupuoli').addClass("error");

share|improve this answer
    
It's for if I have a dublicate id for somereason. –  Christian Oct 27 '12 at 17:49
    
@ChristianNikkanen It is not good practice to have any duplicate id for any reason. Id should be unique in any aspect of programming related subject. –  sємsєм Oct 28 '12 at 2:13
1  
Yeah, but I'm only human... I could make a mistake. –  Christian Oct 30 '12 at 10:12
    
@ChristianNikkanen Well, and humans able to fix their errors, so fix it! –  sємsєм Oct 30 '12 at 15:48
1  
It's not an error, it's a backdoor for the script, if I manage to create an error. –  Christian Oct 31 '12 at 13:44

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