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I have a small bit of jquery that applies the jquery-ui accordian to an array of divs.

The divs are generated dynamically and each one needs to have a unique ID. I have successfully generated unique IDs for divs with each one having a different number at the end. Now I would like the jquery to be flexible enough to handle any of the divs no matter what number is at the end. All the divs have IDs with the naming convention "activity-accordion123" or "activity-accordian+number"

Here is the code I am using currently for the divs that have already been generated:

$(function() {
    $( "#activity-accordion408,#activity-accordion410,#activity-accordion415,#activity-accordion428,#activity-accordion439,#activity-accordion427" ).accordion({
      collapsible: true,
heightStyle: "content",
active: false,
header: "h3",
navigation: true
    }); 
  });

I would like to change this javascript so that it will work with any div that has the ID of "activity-accordion+any number". Is this possible?

share|improve this question
    
This post probably answers it best: stackoverflow.com/questions/5376431/… – Code Whisperer Jul 19 '13 at 13:13
    
Can you also add a class which is the same for all divs? You could then select multiple divs. – Zlatko Jul 19 '13 at 13:13
up vote 0 down vote accepted

Use ID attribute selector wildcard 'start with' like that:

$('div[id^="activity-accordion"]').accordion({
    collapsible: true,
    heightStyle: "content",
    active: false,
    header: "h3",
    navigation: true
});
share|improve this answer

Use this css selector: *=

$(function() {
    $( "[id*='activity-accordion']" ).accordion({
         collapsible: true,
         heightStyle: "content",
         active: false,
         header: "h3",
         navigation: true
    }); 
});
share|improve this answer
    
Is this css3-only? – Zlatko Jul 19 '13 at 13:14
    
'*=' means contains not start with – A. Wolff Jul 19 '13 at 13:14
    
@zladuric that doesn't matter; it's jQuery so it'll work wherever the library works. – Pointy Jul 19 '13 at 13:14
    
@roasted see this question's accepted answer: stackoverflow.com/questions/12155833/… – Mohammad Areeb Siddiqui Jul 19 '13 at 13:15
    
@MohammadAreebSiddiqui your answer would work too but i was thinking OP wants ID starting with some string, not containing some string – A. Wolff Jul 19 '13 at 13:16

you could select them like this:

$("div[id^='activity-accordion'"])

Selects all div, that starts with activity-accordion

share|improve this answer

Is there any reason that you can not simply have each div possess an "activity-accordion" class? Classes are useful to style/manipulate multiple similar elements. You can then use $('.activity-accordion') to select all such elements.

share|improve this answer
    
Yes I thought of that but the jquery-ui accordion, if to be repeated on one page, needs to be applied to divs with unique IDs/Classes. As far as I could understand. – Ciaran Gaffey Jul 19 '13 at 13:16

use a class would be more didactic and correct to do

$(function() {
    $( ".accordions" ).accordion({
      collapsible: true,
heightStyle: "content",
active: false,
header: "h3",
navigation: true
    }); 
  });
share|improve this answer

To match all <div>s, with an id of the pattern activity-accordion<number>, you can use:

$('div').filter(function() {
    return /activity\-accordion\d+/.test(this.id);
}).accordion({
    ...
});
share|improve this answer

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