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I have an XML file:

<?xml version="1.0" standalone="yes"?>
<Questionnaire>
  <Temp_GridTypeTable_6>
    <Column2>Select Yes/No</Column2>
  </Temp_GridTypeTable_6>
  <Temp_GridTypeTable_1>
    <Column2>Rank 1,2,3</Column2>
  </Temp_GridTypeTable_1>
  <Temp_GridTypeTable_1>
    <Column1>I needed the income</Column1>
    <Column2>Why did you take a job on this project?</Column2>
  </Temp_GridTypeTable_1>
  <Temp_GridTypeTable_1>
    <Column1>Other</Column1>
    <Column2></Column2>
  </Temp_GridTypeTable_1>
  <Temp_GridTypeTable_2>
    <Column2>Select "Yes/No"</Column2>
  </Temp_GridTypeTable_2>
  <Temp_GridTypeTable_2>
    <Column1>No jobs</Column1>
    <Column2>344</Column2>
  </Temp_GridTypeTable_2>
  <Temp_GridTypeTable_3>
    <Column2>Input</Column2>
  </Temp_GridTypeTable_3>
  <Temp_GridTypeTable_3>
    <Column1>Unit</Column1>
    <Column2>123</Column2>
  </Temp_GridTypeTable_3>
</Questionnaire>

I want to access

<xsl:for-each select="Questionnaire/concat('Temp_GridTypeTablenode_',"1"))>

but this statement is not working.

share|improve this question
    
Hi if your pasting XML make sure to wrap it as a "Code Sample" (the button with 1s and 0s) – eddiegroves Apr 22 '09 at 10:20

This is quite an example of how not to use XML. "Temp_GridTypeTable" and "Column" numbers are data, not structure, they should not be contained in the element names. So why aren't you using something less painful, say:

<Questionnaire>
  <Temp_GridTypeTable type="6">
    <Column num="2">Select Yes/No</Column>
  </Temp_GridTypeTable>
  <Temp_GridTypeTable type="1">
    <!-- ... -->
  <Temp_GridTypeTable>
  <!-- ... -->
</Questionnaire>

That being said, for your current situation, this is needed:

<xsl:for-each select="Questionnaire/*[
  local-name()
  =
  concat('Temp_GridTypeTable_', '1')
]">

For the "less painful" version of the input, this would have been required:

<xsl:for-each select="Questionnaire/Temp_GridTypeTable[@type = 1]">

Despite the fact that the second expression is a lot simpler and more straightforward, it will also perform much better. If you can help it, I recommend to change the input XML.


EDIT: Following up the argument that unfolded itself in the comments, I try to emphasize the difference between the local-name() and name() XPath functions, and where the difference matters:

                            | XML has namespaces  |  XML has no namespaces
----------------------------+---------------------+-----------------------
I care about namespaces     | use `name()`        |  use either function
                            |                     |
don't care about namespaces | use `local-name()`  |  use either function

Generally: If you fall into the "don't care about namespaces" group (most XML novices or casual XML users do), it's okay (sometimes even beneficial) to just always use local-name(). However, be prepared to learn about XML namespaces when the results you get and the results you expect start to diverge. At this point you don't belong to the said group anymore.

If you fall into the "I care about namespaces" group, you don't need this advice anyway. ;-)

share|improve this answer
    
In the past I have raised the issue that using local-name() is not a good practice and generally may produce unwanted and unexpected results. Using the name() function is almost always the better answer. – Dimitre Novatchev Apr 22 '09 at 13:38
    
And as always I find that view domain-centric and at odds with practical reality. It's akin to picking a side in strongly vs weakly typed: both can be correct depending on the task. Couldn't agree more about the state of the XML. – annakata Apr 22 '09 at 13:44
    
@both: From an academic standpoint (which is the one Dimitre Novatchev usually takes), the use of local-name() will potentially yield false positives and is therefore incorrect. From a practical standpoint (which I am inclined to take looking at the actual XML in the question), I believe that local-name() is the better alternative here, since if XML namespaces are involved somehow (improbable as it is), this is almost certainly by accident. – Tomalak Apr 22 '09 at 13:56
1  
To clarify, my view is that whether you wish to look within a specific namespace or against any namespace is entirely dependant on the problem at hand. If you want to pick up from any namespace, name() yields false negatives. The pragmatic view (where we concur) is that namespaces are generally an obstruction, not a feature. That's just a consequence of how developers are using XML these days. – annakata Apr 22 '09 at 14:00
1  
To finish: local-name() should be recommended only if the OP has explicitly stated that they do not care about prefixes in the name. The correct question is not "Do yoy care about namespaces" but "Do you care about namespace prefixes". Even if a name belongs to some namespace, it still may have no prefix (when this namespace is the default namespace). – Dimitre Novatchev Apr 22 '09 at 16:50

Use:

        Questionnaire/*[name() = concat('', $vSuffix)]

where the variable $vSuffix contains the statically-unknown string -- in this case '1'.

Using local-name() as in Tomalak's answer is both unnecessarily long and imprecise, as in the general case it allows elements with a variety of (possibly unwanted and unexpected) names to be selected, such as:

  • OhMy:Temp_GridTypeTable_1
  • Different:Temp_GridTypeTable_1
  • UnWanted:Temp_GridTypeTable_1
share|improve this answer
    
I see your point, but with the case at hand I would think that it's safe to assume that they are far from actually using XML namespaces. The question shows what looks like a complete XML document with no namespaces whatsoever. Even if there was a default namespace involved somewhere, I'm almost certain that they want to ignore it, given their current lack of XML expertise. – Tomalak Apr 22 '09 at 13:48
    
@Tomalak name() works perfectly in case of a default namespace -- no need for local-name(). – Dimitre Novatchev Apr 22 '09 at 14:07
    
Oops, you are right of course. What I had in mind was "...if there was a namespace involved somewhere...". As I said, I can perfectly see your point, it was the practical experience that made me recommend local-name() over name(). – Tomalak Apr 22 '09 at 14:31
    
thanks it is working.. – pankaj May 20 '09 at 11:21

You cannot evaluate strings as XPath expressions at run-time with pure XSLT.

You need an extension function that can evaluate an xpath expression at runtime. See for instance the EXSLT project.

On my system, using xsltproc, I can accomplish what you want with:

<!-- load the saxon extensions -->
<xsl:stylesheet version="1.0" xmlns:xx="http://icl.com/saxon" 
    xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
...
...
<xsl:for-each 
    select="xx:evaluate(concat('Questionnaire/Temp_GridTypeTable_', '1'))">

Here, I use the evaluate function from the saxon extension library. EXSLT's evaluate function should work the same way.

Must XSLT processors/libraries have some sort of evaluate function built in. See your library's documentation.

share|improve this answer
    
It can be done without extensions (see my answer). It's just not nice, and it performs poorly. – Tomalak Apr 22 '09 at 12:40
    
Of course, saying that "this cannot be done in pure XSLT without extensions" is definitely wrong! – Dimitre Novatchev Apr 22 '09 at 13:25
    
I will be downvoting this answer as soon as I have more time available. – Dimitre Novatchev Apr 22 '09 at 13:25
    
Yes, you can get the result the question asks for using your approach. But the general issue of evaluating XPath in XSLT at runtime, is only doable with extensions to XSLT. In this particular case, it was possible to create an equivalent XPath expression. That may not always be the case. – codeape Apr 22 '09 at 13:27
    
An answer to the question that does not address the "particular case" has no place among the correct answers to the question. It is simply misleading. Please, consider deleting. – Dimitre Novatchev Apr 22 '09 at 13:33

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