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I have the following method (below), as you can see it serializes an object to an XML file. The main problem I am having is I want to get the function to overwrite a file if it exists. I know I could delete the file first if it does exist, but this would also mean that I might induce some error drag into my application. So I want it an all or nothing, overwrite method...

Here is the function, any ideas on how this can be accomplished?

/// <summary>
    /// Serializes an object to an xml file.
    /// </summary>
    /// <param name="obj">
    /// The object to serialize.
    /// </param>
    /// <param name="type">
    /// The class type of the object being passed.
    /// </param>
    /// <param name="fileName">
    /// The filename where the object should be saved to.
    /// </param>
    /// <param name="xsltPath">
    /// Pass a null if not required.
    /// </param>
    public static void SerializeToXmlFile(object obj, Type type, string fileName, string xsltPath )
    {
        var ns = new XmlSerializerNamespaces();
        ns.Add(String.Empty, String.Empty);
        var serializer = new XmlSerializer(type);

        var settings = new XmlWriterSettings {Indent = true, IndentChars = "\t"};


        using (var w = XmlWriter.Create(fileName,settings))
        {

            if (!String.IsNullOrEmpty(xsltPath))
            {
                w.WriteProcessingInstruction("xml-stylesheet", "type=\"text/xsl\" href=\"" + xsltPath + "\"");

            }
            serializer.Serialize(w, obj, ns);
        }
    }
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7 Answers 7

up vote 12 down vote accepted

Use the overloaded version of the XmlWriter.Create that takes a Stream instead of a string, and use File.Create to create/overwrite the file:

using (var w = XmlWriter.Create(File.Create(fileName), settings))
...
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I think it will work - awesome! and ty –  JL. Jan 14 '10 at 13:31
  1. Open the file using File.Open() with FileMode.Create, FileAccess.Write and FileShare.None.
  2. Pass the stream returned from File.Open() into XmlWriter.Create().

-

FileStream stream = File.Open(filename, FileMode.Create, FileAccess.Write, FileShare.None);
using (XmlWriter writer = XmlWriter.Create(stream))
{
    ...
}
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XmlWriter.Create(filename, settings) will overwrite the file. If you're getting an exception on this, then there's something else going on. See also: Error creating an XmlWriter when file already exists.

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The FileStream and XMLWriter should be placed in a using block

using (FileStream fs = File.Create(filename))
using (var w = XmlWriter.Create(fs, settings))
{
    // your code
}

I believe that using the code below will fail to release the file stream. So if you run the code twice in one session it will fail

using (var w = XmlWriter.Create(File.Create(filename), settings))
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Make a Backup of the Destination file if exist, if an error occurred, write back the file.

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1  
+1 it is an option. –  JL. Jan 14 '10 at 13:27

You can do something like following. Write your xml to a StringBuilder() and than write content of stringBuilder to file.

    public static void SerializeToXmlFile(object obj, Type type, string fileName, string xsltPath) {
        var ns = new XmlSerializerNamespaces();
        ns.Add(String.Empty, String.Empty);
        var serializer = new XmlSerializer(type);

        var settings = new XmlWriterSettings { Indent = true, IndentChars = "\t" };

        StringBuilder sb = new StringBuilder();
        using (var w = XmlWriter.Create(sb, settings)) {

            if (!String.IsNullOrEmpty(xsltPath)) {
                w.WriteProcessingInstruction("xml-stylesheet", "type=\"text/xsl\" href=\"" + xsltPath + "\"");

            }
            serializer.Serialize(w, obj, ns);
        }

        File.WriteAllText(fileName, sb.ToString());
    }
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You could save your new XML file in a temporary file :

./directory/myNewObject.xml.temp

then rename myNewObject.xml.temp in myNewObject.xml using File.MoveTo

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