Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Please, observe:

enter image description here

Can someone explain me the difference? Thanks.

EDIT

Let me indicate what puzzles me. Notice that:

  1. $row.is('tr.items:last') === false
  2. $row[0].id === $('tr.items:last')[0].id

The two statements seem to contradict each other. The first tells us that $row is not the last of tr.items. But the second one tells that $row is exactly $('tr.items:last'), i.e. the last of tr.items. No such thing occurs with the :last-of-type selector.

Please, explain what is going on here?

EDIT2

OK, I have deployed my humble experiment to an AWS EC2 instance. Here is how to reproduce:

  1. Navigate to http://ec2-23-22-204-49.compute-1.amazonaws.com/invoice.html?id=54919
  2. Focus the last input field of the last row (i.e. the one containing 531.70)
  3. Hit the tab key

Notice an alert window is open. This can help you find the relevant place in the javascript code, just look for window.alert - there is only one place where it is used.

Looking forward for the conclusions.

share|improve this question
    
Does row[0] === $('tr.items:last')[0] yield true? –  pimvdb Sep 1 '12 at 16:07
    
Indeed it does - see another edit of the question. –  mark Sep 1 '12 at 16:24
    
Need to see your HTML. –  BoltClock Sep 1 '12 at 16:26
    
Please, refer to EDIT2. –  mark Sep 2 '12 at 5:15

3 Answers 3

up vote 1 down vote accepted

jQuery does a different filter mechanism for .is when it comes to set filters like :last. The point is that it normally uses .filter on the current set and checks whether there are any elements left after filtering.

This works for cases such as:

$("<a></a><b></b>").is("b");  // true, there is a <b> after filtering

But for :last this fails, because such a filter is relative to the set. Consider a document with two elements:

$("a:first").is("a:last");  // would be true if the same method was used,
                            // because in the set with the first <a> element,
                            // the last <a> element is that element. So filtering
                            // with `a:last` yields something, and `.is` gets you
                            // true.

This is in contrast with what you may expect. So, jQuery instead searches for a:last in the current context and checks whether a:first is apparent in that set.

The problem in your case is that $(ev.target) (in handleKeyDown) makes the context to be that input element and not the document (which is the usual case). No tr.items can be found in that context and you get false. This is arguably a bug in jQuery.

Anyway, what you can do is checking against a set instead. It is faster to use the corresponding functions, anyway:

$row.is( $("tr.items").last() );  // true
share|improve this answer
    
I still do not get it, but suppose everything is like you say it is. $("tr.items").last() is by far not the same as $("tr.items:last"). If I have a 100 rows, then the first expression obtains the 100 rows and returns the last, whereas the second one is expected to pinpoint just the last row. For me, it is like doing SELECT in sql and then filter the list in code vs doing SELECT WHERE in the first place. I mean, no one doubts that the second form is the right one. So why are the relative selectors deprecated? CSS now has :last-of-type, which is exactly what I need. –  mark Sep 2 '12 at 12:56
    
@mark: My apologies, I was stretching it a bit. It is not deprecated but using those jQuery-only selectors disallows the (fast) CSS selector of the browser. But :last/.last() are the same - :last is applied after selecting the tr.items, which is what calling .last() does as well. –  pimvdb Sep 2 '12 at 13:00
    
Let me summarize for me: 1. :last is buggy. 2. use either .last() or :last-of-type, where the latter is unavailable in old browsers (how old?), but may be really faster than .last() if supported. Then comes the question - isn't jQuery supposed to spare us exactly these details? Shouldn't it implement :last as :last-of-type where supported and as .last() where is not? –  mark Sep 2 '12 at 13:32
    
@mark: :last and :last-of-type aren't the same thing. :last really just selects the last element of the matched elements, e.g. tr:last gives you the last tr element on the page. tr:last-of-type selects all tr that are the last of their siblings. If you have two tables, tr:last-of-type gives you two <tr> elements. tr:last will only ever give you one element. –  pimvdb Sep 2 '12 at 13:42
    
Oh, I see. But it does not matter in my particular case. Given that important distinction, is my summarization correct? –  mark Sep 2 '12 at 14:18

last-of-type is a CSS pseudo-class, which represents the last sibling of the given tag name. It may work as a jQuery selector if the browser supports querySelectorAll() and you're not using jQuery-only selectors; otherwise, it'll use Sizzle, which doesn't support it. See this jQuery ticket.

On the other hand, :last is a jQuery selector, which selects the last matched element.

share|improve this answer
    
Probably worth noting that :last-of-type is not included in jQuery itself. When querySelectorAll fails (e.g. in older browsers) then a selector with that pseudoclass will fail. –  pimvdb Sep 1 '12 at 14:41
    
@pimvdb: Indeed, thanks, I've edited my answer. –  João Silva Sep 1 '12 at 14:43
    
I have refined the question. –  mark Sep 1 '12 at 16:02
    
More information on which CSS selectors aren't implemented in jQuery: stackoverflow.com/questions/11745274/… –  BoltClock Sep 1 '12 at 16:05
1  
@mark: Can you provide the exact markup for your table? With this markup, jsfiddle.net/6mues, everything works as expected. –  João Silva Sep 1 '12 at 16:12

:last-of-type selects the last sibling with a specified tag name. Note that :last-of-type is not an "official" jQuery selector and only works in some browsers - specifically, those that support document.querySelectorAll() (newer versions of everything except IE).

share|improve this answer
    
I have refined the question. –  mark Sep 1 '12 at 16:02
    
Please, refer to EDIT2. –  mark Sep 2 '12 at 5:16

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.