5

How to check whether an Xml file have processing Instruction

Example

 <?xml-stylesheet type="text/xsl" href="Sample.xsl"?>

 <Root>
    <Child/>
 </Root>

I need to read the processing instruction

<?xml-stylesheet type="text/xsl" href="Sample.xsl"?>

from the XML file.

Please help me to do this.

  • 1
    there's no such thing as "C# 3.5". You are asking about .NET 3.5. – John Saunders Jun 23 '10 at 9:50
16

How about:

XmlProcessingInstruction instruction = doc.SelectSingleNode("processing-instruction('xml-stylesheet')") as XmlProcessingInstruction;
5

You can use FirstChild property of XmlDocument class and XmlProcessingInstruction class:

XmlDocument doc = new XmlDocument();
doc.Load("example.xml");

if (doc.FirstChild is XmlProcessingInstruction)
{
    XmlProcessingInstruction processInfo = (XmlProcessingInstruction) doc.FirstChild;
    Console.WriteLine(processInfo.Data);
    Console.WriteLine(processInfo.Name);
    Console.WriteLine(processInfo.Target);
    Console.WriteLine(processInfo.Value);
}

Parse Value or Data properties to get appropriate values.

0

How about letting the compiler do more of the work for you:

XmlDocument Doc = new XmlDocument();
Doc.Load(openFileDialog1.FileName);

XmlProcessingInstruction StyleReference = 
    Doc.OfType<XmlProcessingInstruction>().Where(x => x.Name == "xml-stylesheet").FirstOrDefault();
  • Welcome to Stack Overflow! Please edit your answer to explain how does the code in this answer work. – dorukayhan Sep 23 '16 at 20:04

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