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I have XML files which contains a doctype:

<!DOCTYPE someName SYSTEM "fileName.dtd">

The file is provided by a 3rd party, I have no control over how it is generated. I use XSLT to transform the XML, but XSLT complains about the dtd not found; how do I tell XSLT to ommit it so it doesn't try to access the dtd file which I don't have.

Thanks

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3 Answers 3

You can set the EntityResolver of the XML parser to an EntityResolver that substitutes a local file (perhaps an empty file) when the DTD is requested. Create an XMLReader (parser) with this setting, then supply a SAXSource containing this XMLReader as the source input to the transformation.

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thanks, I use XslCompiledTransform though, I will check if I can find examples with the EntityResolver for it –  user706058 Nov 7 '11 at 13:59
    
+1 for a good answer. –  Dimitre Novatchev Nov 7 '11 at 14:24
    
I believe XslCompiledTransform uses an XmlResolver which has a similar purpose to Java's EntityResolver. –  Michael Kay Nov 7 '11 at 23:04

Which xslt-processor do you use? You have to find a way to disable validation for it. E.g. for Java you could do it so: http://www.stylusstudio.com/xsllist/200205/post80150.html

The main reason why it's here: the dtd could have default data which affects xml content. E.g. if an attribute "align" has default value "left", the xslt template match "[@align='left']" will match even if attribute is not occurring in an XML.

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Disabling validation won't prevent the DTD being read (or causing a failure if it can't be read): as you explain, the DTD contains information needed by the parser even when not validating. –  Michael Kay Nov 7 '11 at 12:21
    
So, the only solution is to provide fake DTD or EntityResolver. It was mentioned by the link above. –  kan Nov 7 '11 at 12:24
    
@kan: I use XslCompiledTransform in C# –  user706058 Nov 7 '11 at 13:56
up vote 0 down vote accepted

Found out how to do it for C#

XmlReaderSettings x = new XmlReaderSettings();
x.DtdProcessing = DtdProcessing.Ignore;
myXslTransform.Load(xslFile);
myXslTransform.Transform(XmlReader.Create(xslFile, x), XmlWriter.Create(xmlFileOutput));
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