I want to add an option at selects with the same id.

Here is how my html looks like

  <div>
    <select id="essai">
      <option>1</option>
      <option>2</option>
    </select>
    <select id="essai">
      <option>1</option>
      <option>2</option>
    </select>
  </div>

Here is how my html looks like but it changes one the first select

$('#essai').append($('<option>my-option</option>'));

Here is the result i would like

  <div>
    <select id="essai">
      <option>1</option>
      <option>2</option>
      <option>my-option</option>
    </select>
    <select id="essai">
      <option>1</option>
      <option>2</option>
      <option>my-option</option>
    </select>
  </div>

Do you have an idea ? Thanks

  • 4
    1st You can't give same id . ID is UNIQUE but you can give Class for later select if you need – Munkhdelger Tumenbayar Oct 13 '17 at 9:40
  • 1
    IDs must be unique – Milind Anantwar Oct 13 '17 at 9:40
  • 2
    "1st You can give same id" I think what he means is CANT. He is right, you can not give 2 select input same ID as ID needs to be unique, you use class for that. Duplicate ID will cause one or both drop down to be ignored – Rey Norbert Besmonte Oct 13 '17 at 9:41
  • Yeah haha sorry for miss spelling – Munkhdelger Tumenbayar Oct 13 '17 at 9:44
up vote 3 down vote accepted

The id must be unique. Use class to do this. Use $.each for pass on all class.

$.each($(".essai"), function(){
  $(this).append($('<option>my-option</option>'));
})
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div>
    <select class="essai">
      <option>1</option>
      <option>2</option>
    </select>
    <select class="essai">
      <option>1</option>
      <option>2</option>
    </select>
  </div>

  • 2
    There's no need for $.each or all the extra calls to $() here. Simply $(".essai").append('<option>my-option</option>'); (note passing the string to append). – T.J. Crowder Oct 13 '17 at 9:43
  • Yes no need each. But with this he can be define different value if he want – P. Frank Oct 13 '17 at 9:44

Change your ID to class

$('.essai') will select class change # ti .

. will let you select Class

$('.essai').append($('<option>my-option</option>'));
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div>
    <select class="essai">
      <option>1</option>
      <option>2</option>
    </select>
    <select class="essai">
      <option>1</option>
      <option>2</option>
    </select>
  </div>

id must be unique. so here instead of using id, you should use class.

$('.essai').append($('<option>my-option</option>'));

now it will update all options.

<div>
    <select class="essai">
      <option>1</option>
      <option>2</option>
      <option>my-option</option>
    </select>
    <select class="essai">
      <option>1</option>
      <option>2</option>
      <option>my-option</option>
    </select>
  </div>

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