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I have file "sample.xml" in my project set as content.

I am running this code:

  Uri uri = new Uri("/sample.xml", UriKind.Relative);
  StreamResourceInfo contentStream = Application.GetContentStream(uri);

Why it returns null contentStream?

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2 Answers

up vote 1 down vote accepted

It means probably that it does not find the file. Is the path correct?.

Return Value

Type: System.Windows.Resources.StreamResourceInfo

A StreamResourceInfo that contains a content data file that is located at the specified Uri. If a loose resource is not found, null is returned.

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The path is correct. But I have tried all the variations and still the same. –  husayt May 7 '11 at 0:09
    
@husayt this may seem obvious, but are you sure you want to load a .xml file instead of a .xaml? –  Aleadam May 7 '11 at 0:16
    
The file name is correct. –  husayt May 7 '11 at 1:10
    
@husayt take a look at this post: social.msdn.microsoft.com/forums/en-us/wpf/thread/… (the last comment). Change the xml extension to something else and retry. –  Aleadam May 7 '11 at 1:47
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You must set file's Build Action as Content, and Copy To Output Directory to Copy Always or Copy if newer.

enter image description here

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What you say is required if the file should be kept outside of the assembly and accessed through normal IO methods. The question is about ressources embedded into the assembly. –  LonelyPixel Feb 10 '13 at 0:22
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You're mixing resource files with the content files. Content files are standalone files that have an explicit assoiation with the application and resource files are embedded in the assembly. You can't retrieve a resource file with "Application.GetContentStream". You must use "Application.GetResourceStream" for embedded resource files. –  Muhammed Medeni Baykal Feb 13 '13 at 16:15
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