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I've been dealing with XSLT 2.0 in the past day, trying to parse a plain text file. apparently I couldn't even get to the part where I actually get it working, at the moment, the xsl doesn't have to do something, just to load properly in saxonb-xslt processor.

XSL:

<xsl:stylesheet xmlns:xsl="http://www.w3.org/1999/XSL/Transform" xmlns:fn="http://www.w3.org/2005/02/xpath-functions"  version="2.0">

<xsl:output method="xml" indent="yes"/>

<xsl:template match='/'>
<add_adverts>
<Body>
<Envelope>
<Advert>
<xsl:for-each select="tokenize(unparsed-text('A2.blm'), '\r?\n')">
 <fff>?</fff>
</xsl:for-each>
</Advert>
</Envelope>
</Body>
</add_adverts>  
</xsl:template>

</xsl:stylesheet>

How I run it:

saxonb-xslt -s:A2.blm -xsl:eraxsl.xsl -o:test.xml

the blm file is a plain text file, first line is: #HEADER# last line is #END# there is a line in it named #DATA# from which I want to parse until the end. each record is separated by ^.

Thanks,

share|improve this question
    
Are you passing the text file as input source in the commmand line? –  user357812 Apr 19 '11 at 12:29
    
Consider to provide minimal but complete samples allowing us to easily reproduce the problem? Which version of Saxon is that exactly? –  Martin Honnen Apr 19 '11 at 12:30
    
See my answer for a complete solution. Your problem is that the relative URI cannot be resolved successfully -- the file must be in the same directory as the XSLT stylesheet. Or, you need to provide an absolute URI. –  Dimitre Novatchev Apr 19 '11 at 13:31

2 Answers 2

up vote 1 down vote accepted

I do not repro this problem at all -- I have created the "A2.blm" file in the same directory as the XSLT stylesheet. The transformation works as expected.

This error is from the XML parser, not from the XSLT processor. Most probably you have provided as source XML file something that is not a well-formed XML document (or is completely missing).

Most probably the file "A2.blm" cannot be found or accessed -- check well.

In order of this file to be found, it must be in the same directory your stylesheet file is.

From the XSLT 2.0 W3C spec:

"The unparsed-text function reads an external resource (for example, a file) and returns its contents as a string.

The $href argument must be a string in the form of a URI. The URI must contain no fragment identifier, and must identify a resource that can be read as text. If the URI is a relative URI, then it is resolved relative to the base URI from the static context. "

And most importantly:

"Note: If a different base URI is appropriate (for example, when resolving a relative URI read from a source document) then the relative URI should be resolved using the resolve-uriFO function before passing it to the unparsed-text function."

Here is a proof that the rest of your transformation works as intended:

<xsl:stylesheet xmlns:xsl="http://www.w3.org/1999/XSL/Transform" xmlns:fn="http://www.w3.org/2005/02/xpath-functions"  version="2.0">
    <xsl:output method="xml" indent="yes"/>
    <xsl:template match='/'>
        <add_adverts>
            <Body>
                <Envelope>
                    <Advert>
                        <xsl:for-each select="tokenize(., '\r?\n')">
                            <fff>?</fff>
                        </xsl:for-each>
                    </Advert>
                </Envelope>
            </Body>
        </add_adverts>
    </xsl:template>
</xsl:stylesheet>

when this transformation is applied on this XML document:

<t>1&#xA;2&#xD;&#xA;3&#xA;</t>

the wanted, correct result is produced:

<add_adverts xmlns:fn="http://www.w3.org/2005/02/xpath-functions">
   <Body>
      <Envelope>
         <Advert>
            <fff>?</fff>
            <fff>?</fff>
            <fff>?</fff>
            <fff>?</fff>
         </Advert>
      </Envelope>
   </Body>
</add_adverts>
share|improve this answer
    
Again, amazing answer. btw, do my input file (the one I want to transform to XML) must have tags (in your example <t>...</t>), cant I use XSLT to transform regular text files to XML? –  snoofkin Apr 20 '11 at 13:25
1  
You can use anything -- I usually use <t/>. Or you may specify on the command-line an initial template name (check the syntax), in which case you do not specify source XML file at all. –  Dimitre Novatchev Apr 20 '11 at 13:40

The -s: parameter to saxon-xslt specifies the source document which has to be in xml format I think. In your example you don't need this source since you specify the file name in your template. The solution would be to remove the source parameter and to specify a named template instead of the match as the starting point:

<xsl:template name="main">
    <add_adverts>...<add_adverts>
</xsl:template>


saxonb-xslt -xsl:eraxsl.xsl -o:test.xml -it:main
share|improve this answer
    
+1. Thanks, I will also give it a try. –  snoofkin Apr 20 '11 at 13:26

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