95

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.

180

Try

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

It should work

5
  • Much better layout on that reference than the jquery documentation. – Yuriy Faktorovich Feb 19 '10 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 '13 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" – Rajiv Bhardwaj Jun 23 '15 at 5:27
  • @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. – Glen Little Jun 23 '15 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']") – Glen Little Jun 23 '15 at 13:49
22

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" – Rajiv Bhardwaj Jun 23 '15 at 5:26
  • Hi @Rajiv, welcome to stackoverflow. I've responded to the other copy of your comment. – Glen Little Jun 23 '15 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 '10 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. – Yuriy Faktorovich Feb 19 '10 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 '10 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 '10 at 18:54
  • Sometimes it's necessary to have multiple elements with the same class but different IDs. – Vincent Dec 3 '18 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.

1

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]')

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