28

I have a table that has a date input

<td style="background-color:#c6efce"><input type="text" id="datepicker0"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker1"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker2"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker3"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker4"></td>

I am trying to access it via for the first one

<script>
    $(function() {
        $( "#datepicker0" ).datepicker({
            showButtonPanel: true
        });
    });
    </script>

How do I access everything?

68

You could use the "attribute starts-with" selector:

$(function() {
    $("input[id^='datepicker']").datepicker({
        showButtonPanel: true
    });
});

That selector will match any input element whose id value starts with "datepicker". An alternative would be to give all the required elements a common class.

You can also select multiple elements by id using a comma-separated list:

$("#datepicker0, #datepicker1, #datepicker2"); //List as many as necessary

But that's not particularly scalable if you ever need to add more inputs.

13

The best way is to use a class:

<td style="background-color:#c6efce"><input type="text" class="dp" id="datepicker0"></td>
<td style="background-color:#c6efce"><input type="text" class="dp" id="datepicker1"></td>
<td style="background-color:#c6efce"><input type="text" class="dp" id="datepicker2"></td>
<td style="background-color:#c6efce"><input type="text" class="dp" id="datepicker3"></td>
<td style="background-color:#c6efce"><input type="text" class="dp" id="datepicker4"></td>
<script>
    $(function() {
        $( ".dp" ).each(function(){
            $(this).datepicker({
                showButtonPanel: true
            });
        })
    });
</script>

but you can also use this:

<td style="background-color:#c6efce"><input type="text" id="datepicker0"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker1"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker2"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker3"></td>
<td style="background-color:#c6efce"><input type="text" id="datepicker4"></td>

<script>
    $(function() {
        $( "#datepicker0,#datepicker1,#datepicker2,#datepicker3,#datepicker4" ).datepicker({
            showButtonPanel: true
        });
    });
</script>

The second approach is not advised.

3
  • 1
    Why did you use an each function in the first example, instead of calling datepicker on the node list like the second one?
    – mikerobi
    Oct 22 '11 at 17:27
  • @mikerobi lol good point XD perhaps you can submit an answer as such? Oct 22 '11 at 17:32
  • Thank you @JosephMarikle
    – sradha
    Jul 26 '16 at 9:47
10

As I understand your question, you're trying to select multiple IDs using jQuery. Here's how you do that:

$('#1,#2,#3')

You just separate the IDs by commas.

But, this isn't the best way to accomplish this. You should really use a class: Assign each td a class and use:

$('td.myClass')

Alternatively, you could assign an ID to the table and select all of its td children. HTML:

<table id="myTable">
    <td>text</td>
    <td>text</td>
</table>

jQuery:

$('table#myTable td')
3

You can use this as well $('#datepicker0,#datepicker1,#datepicker2,#datepicker3,#datepicker4)

0

Instead of IDs, you should use a CSS class named something like has-datepicker and search for that.

0

jQuery UI automatically adds the "hasDatePicker" class to all elements that have a date picker. You can query the page for something like $("input.hasDatePicker") to get all of the date pickers.

2
  • Not before the datepicker has been applied to the element (as in this case...) Oct 22 '11 at 17:24
  • Ah, I read the original question wrong, thought the original question asked about accessing them, not creating them, but I guess the OP did provide a code snippet where he showed he was creating one...
    – ima007
    Oct 22 '11 at 17:49

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.