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Imagine I have a table with more than 9 rows.

If I do this : $('table tr:gt(3):lt(6)'), shall I receive 3 or 6 elements at the end, and why ? Are all selectors applied to the same primary selection, or are they successively applied on different selections ?

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4 Answers

up vote 15 down vote accepted

They're applied sequentially, so first you will filter away the first four elements (:gt(3)), then you will filter away all elements after the sixth (:lt(6)) element of the already filtered set.

Imagine this HTML:

<br/><br/>
<br/><br/>
<br/><br/>
<br/><br/>
<br/><br/>
<br/><br/>

Then do the following jQuery:

$('br:gt(3):lt(6)').addClass('sel');

You will now have:

<br/><br/>
<br/><br/>
<br class="sel"/><br class="sel"/>
<br class="sel"/><br class="sel"/>
<br class="sel"/><br class="sel"/>
<br/><br/>
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Note that the :lt(n) and :lt(n) selectors are 0-indexed and non-inclusive. –  Blixt Jul 16 '09 at 12:39
    
Duly noted, thanks. –  subtenante Jul 16 '09 at 12:46
    
thanks sir very helpful! –  GianFS Jan 8 '13 at 4:13
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I suggest you use the slice() method instead.

http://docs.jquery.com/Traversing/slice#startend

$('table tr').slice(2, 5).addClass("something");

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1  
Doesn't answer the question, but is a clearer way of doing the selection. –  tvanfosson Jul 16 '09 at 12:36
    
I can't think of a reason why you'd chain lt and gt in this way, so perhaps subtenante will find this useful. –  ScottE Jul 16 '09 at 12:38
    
Yep, that's actually useful, although it does only partially answer the question. +1 though :) –  subtenante Jul 16 '09 at 12:45
1  
+1 for the practicality of the answer =) –  Blixt Jul 16 '09 at 12:58
1  
@harpo jsperf.com/lt-vs-slice I ran this in Chrome and IE10, both times slice was quicker. –  ToastyMallows Jan 22 at 20:52
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Not quite what you might think-

Working Demo

Basically, the second filter is applied sequentially, to the matched set of the first filter.

For example, on a table with 10 rows, :gt(3) will filter to elements 5 - 10, then :lt(6) will be applied to the 6 elements, not filtering any.

if you add /edit to the demo URL, you can play with the selector and see for yourself. If you change the second filter to :lt(2), you get rows 5 and 6 highlighted in red

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For some reason :lt(6) will be ignored in that selection, so it will return everything greater than 3 in this intsance.

However, if you switch it over, it will work as expected

$('table tr:lt(6):gt(3)')

will return 2 rows (only row 4 and 5 is between 6 and 3).

edit:using v.1.3.2

And also, lt(6) isn't ignored, not just working as I expected it to. So :gt(3):lt(6) will in fact return 6 elements (if you have enough rows, that is)

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Didn't work that way on the sample that I tried. What version of jQuery are you using? –  tvanfosson Jul 16 '09 at 12:34
1  
Not true, :lt(6) will be applied, you just didn't see it because :gt(3) returned more than 6 elements. However, it will work like you said if you switch them around. –  Blixt Jul 16 '09 at 12:36
    
aha! so it filters everything greater than 3, then does a new filter on what ever is recieved from that...nice. –  peirix Jul 16 '09 at 12:44
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