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 the following code (reproduced in this jsFiddle) that is not working. There are three options in the Type select box. If the first (True/False) is selected I need the first div to be shown, and if the second or third options are chosen then the second div needs to be shown. What is wrong with this code?

HTML:

<form name="editform">
    Selector: <select class="selectors" name="1-type" id="1-type">
        <option value="tf" selected="selected">True/False</option>
        <option value="rd">Radio Button</option>
        <option value="chk">Checkboxes</option>
    </select>

    <div id="seldiv-1">
        Good Value: <select name="1-good_value" id="1-good_value">
                        <option value="true">True</option>
                        <option value="false">False</option>
                    </select>
    </div>

    <div id="textdiv-1" style="display:none;" disabled="disabled">
        Good Value:
        <textarea name="1-good_value" id="1-good_value"></textarea>
    </div>
</form>

Javascript:

$(document).ready(function(){
    $('.selectors').on('change',function (){
        var arr = $(this).name.split("-");
        var id = arr[0];
        var val = $(this).val();
        if(val=="tf") {
            $('#textdiv-'+id).hide();
            $('#seldiv'+id).show();
            //Make textarea disabled
            //Make selection enabled
        } else {
            $('#textdiv-'+id).hide();
            $('#seldiv'+id).show();
            //Disable selection
            //Enable textarea
        }
    });
});
share|improve this question
    
Run your code with an opened console and you'll see the error message. –  Ricardo Alvaro Lohmann Apr 8 '13 at 17:58
    
The error wasn't appearing on my site; I didn't even think to try it on jsFiddle. Thank you! –  Vaindil Apr 8 '13 at 18:01

6 Answers 6

up vote 2 down vote accepted

This line is your problem:

var arr = $(this).name.split("-");

on is working properly but the line above is throwing an exception.

var arr = $(this).attr("name").split("-");

There are a few ways you could fix this, above is one example.

share|improve this answer

Uncaught TypeError: Cannot call method 'split' of undefined.

Change $(this).name.split("-"); to this.name.split("-");

share|improve this answer

it is not the on but the split function is giving you error, you are trying to get the name method of jquery object which is not available...either you need to use attr() to get the name from jquery object..or use this DOM object to get name

try this

 var arr = $(this).attr('name').split("-");

or

 var arr=this.name.split('_');

NOTE both your codes inside if/else condition is same.. so you won't notice the difference..check it out in your fiddle

working fiddle example

share|improve this answer
    
This still doesn't work. He uses a variable tf, which is not defined. if(val==tf) –  David Apr 8 '13 at 18:02
1  
@David tf is a quoted string, not a variable.. –  Chad Apr 8 '13 at 18:08
    
not on the fiddle,which is where I was checking –  David Apr 8 '13 at 18:09
    
I fixed that and linked to the new version, thank you! –  Vaindil Apr 8 '13 at 18:12

It 100% does fire, you have an error with $(this).name being undefined. I think what you actually wanted to do there was this.name

jQuery objects don't act just like DOMElement objects, i.e they don't have the same properties (like .name). Next time, open your web console when trying to find out why something doesn't work and you will catch most of your problems there.

share|improve this answer
    
I had the console open but the error didn't appear on my site. I didn't think to try the console in jsFiddle also, but it is appearing there. Thank you! –  Vaindil Apr 8 '13 at 18:03

your problem is when trying to access $(this) which is undefined.

Try just this instead

this.name.split("-");
share|improve this answer

The name is not a valid property. Rather use id or change the way you access it to var arr = $(this).attr('name').split("-");.

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.