60

I am trying to find an input element with dynamic id name always ending with "register". So far I tried this

"//input[@id[ends-with(.,'register')]]"

and this

"//input[ends-with(@id,'register')]"

none of these result in an element. What am I doing wrong? At the same time this works:

"//input[@id[contains(.,'register')]]"

Here's the part of source:

<td class="input">
<input id="m.f0.menu.f2.volumeTabs.BLOCK_COMMON.tcw.form.register" name="m.f0.menu.f2.volumeTabs.BLOCK_COMMON.tcw.form.register" class="aranea-checkbox" type="checkbox"> </td>
5
  • 4
    which version of xpath do you use?
    – donfuxx
    Mar 16, 2014 at 12:42
  • 2
    In addition to the XPath version (1.0 does not have ends-with()), can you also show us some XML that shows the problem?
    – Thomas W
    Mar 16, 2014 at 12:59
  • 1
    ehm, not sure - how can I check version? I am testing via Google Chrome's console. Which version is Chrome using?
    – casper
    Mar 16, 2014 at 13:34
  • 1
    at least show sample XML that can reproduce the problem. Any chance that value of id attribute has whitespace at the end, so it doesn't precisely ends with 'register'?
    – har07
    Mar 16, 2014 at 13:53
  • possible duplicate of Why does xmlstarlet say there's no 'ends-with' function?
    – Jens Erat
    Mar 16, 2014 at 23:02

2 Answers 2

121

The ends-with function is part of xpath 2.0 but browsers (you indicate you're testing with chrome) generally only support 1.0. So you'll have to implement it yourself with a combination of string-length, substring and equals

substring(@id, string-length(@id) - string-length('register') +1) = 'register'
3

The accepted answer by Ian Roberts uses the @id attribute twice in his solution.

In this case I prefer to put the predicate on that @id like this:

//input[@id[substring(.,string-length(.) - string-length('register') + 1) = 'register']]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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