-2

I'm trying to create a in-place editor where I'm fetching the data by putting the custom data attributes in different tags. I want to access the data in jquery selector and update the value accordingly. Please guide me with the common syntax used to fetch data for different tags.

Thanks.

1

you can check like this.

 $('*').filter(function() {
   if($(this).data('custom')){
     console.log($(this).data('custom'));
   }
 });
    <script src="https://ajax.googleapis.com/ajax/libs/jquery/1.11.1/jquery.min.js"></script>
    <div data-custom="lol">
    1
    </div>
    <p data-custom="wew">
    2
    </p>
    <h1 data-custom="h1">h1</h1>

  • I've data-custom at lot of places and in different tags like I've in div tag also have in p tag, also have in h1 tag, etc. I'm looking for common selector to fetch data. – Nitish Kumar Mar 15 '16 at 3:00
  • i update the code. you can filter it. – mmativ Mar 15 '16 at 3:14
  • Thanks a lot for the answer it's working but I'm getting a "undefined" terms in my console.log, any luck in overcoming this bug? – Nitish Kumar Mar 15 '16 at 3:27
  • already updated the code, with condition so you cant get undefined. – mmativ Mar 15 '16 at 3:35
  • Thanks a lot its working. One last dumb question, how can we select this attribute to have jquery function for example hover function. – Nitish Kumar Mar 15 '16 at 9:48
1
<dic class='test' data-attr='abc' ></div>
$('div.test').attr('data-attr')
  • thanks a lot i know this selector. But in my web page I've data-* in <p> tag, <h1, h2, h3> tags too, etc. I want to have a common selector. – Nitish Kumar Mar 15 '16 at 2:33
  • Put a class to all the tags and select the tags using class name. – Aju John Mar 15 '16 at 2:35
  • few of my tags have class too, can I put two class in one tag? – Nitish Kumar Mar 15 '16 at 2:39
  • $('*[data-attr]') – Aju John Mar 15 '16 at 2:41
  • Try this...its a guess..☺ – Aju John Mar 15 '16 at 2:41
0

If you have different tags you can add a class to the tags, then select those elements by class name.

$('.my-class').each(function(){
    $(this).data('key', myVal);
});

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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