104

my question is this:

I have HTML code in multiple pages, on each of them I used a JQgrid (jquery grid) for display some data. I knew that on each of those pages, the element that holds the JQgrid is named as "LIST_xxx". Now I need to make a javascript that takes that element "LIST_XXXX" on each page and does some stuff. How could I search for an element by ID but only knowing its initial part (of the ID ,like i mentioned previously):

$('#list_[XXXX]')... --> The part surrounded by [] is variable on each page, i want to discriminate that.

I hope i made myself clear. Thanks.

5 Answers 5

194

Try

$('div[id^="list_"]')

It should work

5
  • Much better layout on that reference than the jquery documentation. Feb 19, 2010 at 18:53
  • This works fine thanks... I used it to find an id that end with specific value like if($('div[id$="'+val+'"]').length > 0) execute something;
    – raphie
    Feb 20, 2013 at 0:22
  • well, Its working well for above simple IDs of controls. How to make it work for scenarios like I am having controls with such IDs "txt_0_city" , "txt_1_city" , "txt_2_city" , "txt_3_city" and so on, and I want the count of all such elements having IDs like "txt_*_city" Jun 23, 2015 at 5:27
  • 1
    @Rajiv if you have control over the html, it would be good to add a class like "city" to each of those elements. You can then easily count them. Jun 23, 2015 at 12:50
  • @Rajiv if you can't improve the html, then check out api.jquery.com/multiple-attribute-selector - you can combine the selectors. For example, $("span[id^='txt_'][id$='_city']") Jun 23, 2015 at 13:49
26

You need to use the attribute starts with selector, like this:

$('[id^=list_]').whatever()
2
  • well, Its working well for above simple IDs of controls. How to make it work for scenarios like I am having controls with such IDs "txt_0_city" , "txt_1_city" , "txt_2_city" , "txt_3_city" and so on, and I want the count of all such elements having IDs like "txt_*_city" Jun 23, 2015 at 5:26
  • Hi @Rajiv, welcome to stackoverflow. I've responded to the other copy of your comment. Jun 23, 2015 at 13:54
8

Give that element a common class name or some other attribute you can query for.

5
  • Hi, thanks for your answer, the problem with your suggestion is that there might be multiple tables holding JQgrid, so there could be: "LIST_customer", "LIST_carrier"... and so on. And I need to select both of them basen only on the initial ID part: "LIST_".
    – lidermin
    Feb 19, 2010 at 18:49
  • 1
    I understand, but making them all a List class seems like a more readable and descriptive approach to me. To each his own, you could always use the starts with selector in jquery as shown by other answers. Feb 19, 2010 at 18:50
  • @lidermin What Yuriy says should work. Why dont you add a class to your controls such as "list" since you have list_ as your prefix. so when you select that class it will get each of those controls. This will be the most efficient way of doing it.
    – Josh Mein
    Feb 19, 2010 at 18:51
  • Yuriy's answer will work. You can add the same class (for example "ListsINeedToFind") to all your "LIST_XXXX" elements, and then look them up using $('.ListsINeedToFind').
    – Annabelle
    Feb 19, 2010 at 18:54
  • Sometimes it's necessary to have multiple elements with the same class but different IDs.
    – Vincent
    Dec 3, 2018 at 20:54
5

Use the "attribute starts with" selector http://api.jquery.com/attribute-starts-with-selector/

$("[id^=list_]")

Be aware that this is inefficient. Prefix with the tag name and descend from the nearest parent if possible.

3

To get an element ending with a certain id/character

find('[id$=someid]')

To get an element starting with a certain id/character

find('[id*=anotherid]')

To get an element matching with a certain id/character

find('[id^=id]')
2
  • Doesn't work. Just returns false on every statement May 2, 2022 at 19:23
  • @AmitSharma Can you please post your command here? And what are you trying to query? Aug 19, 2022 at 11:57

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