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My target XHTML document (simplified) is like the following:

<html>
<head>
</head>
<body>
<span class="boris"> </span>
<span class="boris"> </span>
<span class="johnson"> </span>
</body>
</html>

I'm trying to select the last of class "boris."

The XPath expression

//span[@class="boris"]

selects all spans of class boris. How do I select the last one of these?

I've tried

//span[@class="boris" and last()]

which doesn't work because last() here refers to the last span in the WHOLE DOCUMENT.

How do I select all the spans of class boris... and then the last one of these?

I've read 5 or 6 XPath tutorials and done a lot of Googling and I can't find a way to do this in XPath alone :(

Thanks in advance for help :)

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This is FAQ: position() works against the axis direction and the default axe is child –  user357812 Dec 27 '10 at 19:20

2 Answers 2

(//span[@class="boris"])[last()]

The parens are necessary to make last() work the way you want. This:

//span[@class="boris"][last()]

is wrong because it would select multiple <span class="boris"> if they were the respective last-of-their-kind within their parents:

<div>
  <span class="boris">#1</span><!-- this one -->
</div>
<div>
  <span class="boris">#2</span><!-- this one not -->
  <span class="boris">#3</span><!-- but this -->
</div>
<div>
  <span class="boris">#4</span><!-- and this, too -->
  <span class="other">#5</span><!-- this not -->
</div>

The first expression would select only one: #4. This is the one you need.

The second expression selects #1, #3 and #4, as illustrated.


Your try (//span[@class="boris" and last()]) would select every <span class="boris">, but mainly because you got it wrong: last() evaluates to a number. And any number other than 0 evaluates to true in boolean context. This means the expression can never be false for a <span class="boris">.

You must do a proper comparison for boolean: What you meant was

//span[@class="boris" and position() = last()]

which is still wrong, though. It selects #1 and #3, because here both position() and last() count within the parent element.

When you use () parens you create a new temporary node-set, and last() can work on that.

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+1 for a good answer. –  Flack Dec 27 '10 at 15:31
    
Brilliant, thanks Tomalak. Using parentheses to create a temporary node-set is EXACTLY what I wanted to do. This is my first question on StackOverflow and I'm really impressed with the dedication of its users (you included) to answering questions. Well done :) Now I'm off to see if I can put my C++ knowledge to use and help anyone in return... –  Fintan Dec 29 '10 at 13:32
    
@Fintan: Glad I could help. Please don't forget to also mark the answer as accepted. :-) –  Tomalak Dec 29 '10 at 14:18

Just guessing here, but isn't it //span[@class="boris"][last()]?

EDIT:

I just saw you can also nest predicates (see here), so maybe you can do: //span[@class="boris"[last()]]

EDIT 2:

Nope, that doesn't work. Go with the first one. By the way, I tried your and last() online, and it seemed to do what you wanted. Huh.

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