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I have the following list of elements.

 <tr id="level_0">
 <tr class="level_0_1">
 <tr class="level_0_2">
 <tr class="level_0_2_1">
 <tr class="level_0_2_2">
 <tr class="level_0_2_3">
 <tr class="level_0_2_3_1">
 <tr class="level_0_2_3_2">

I am trying select all the elements that have class level_0_2_X and not level_0_2_X_X

Using the jQuery "starts with" selector I am able to select all the elements that have class level_0_2_X and level_0_2_X_X

   $("tr[class^='level_0_2_']").show();
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1  
Please be careful when posting questions. You kept referring to your class as id. I edited it accordingly to match your code. –  Sparky Feb 14 '13 at 19:07
    
Thanks for editing –  swathi Feb 14 '13 at 19:24

2 Answers 2

up vote 5 down vote accepted

You'd better combine a selector with a filtering function :

$('[id^=level_0_2_]').filter(function(){ return this.id.split('_').length<5 })

If what you want is in fact a filtering on the class, you may use this :

$('[class^=level_0_2_]').filter(function(){
    return this.className.split('_').length<5
})
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doh, you beat me to it . +1 –  naugtur Feb 14 '13 at 19:05
    
Another bikeshed here...:) –  Bhushan Firake Feb 14 '13 at 19:06
    
The question isn't clear as it mix id and class. Maybe an adjustment would be needed. –  dystroy Feb 14 '13 at 19:06
    
Just a note, OP said id but his code contained class. –  Sparky Feb 14 '13 at 19:06
    
+1, this is of course the better answer. –  Amar Feb 14 '13 at 19:12

Try using match(). Following must get the job done for you:

$('tr').each(function(){
     if( $(this).attr('id').match(/pattern/) ) {
          $(this).show();
     }
  }

Just use the pattern as required. Also above I have used 'id', you get the 'class' attribute if required and match against that.

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