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I currently have

  <PropertyGroup>
    <PostBuildEvent>copy "$(TargetPath)" "$(SolutionDir)Shared.Lib\$(TargetFileName)"</PostBuildEvent>
  </PropertyGroup>

I want to do something like this, but one level above $(SolutionDir)

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3 Answers 3

up vote 8 down vote accepted

You can use ..\ to move up a directory.

 <PropertyGroup>
    <PostBuildEvent>copy "$(TargetPath)" "$(SolutionDir)..\Shared.Lib\$(TargetFileName)"</PostBuildEvent>
  </PropertyGroup>
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what if I just want to copy one particular binary, and not every output file? –  bevacqua Jun 21 '11 at 0:24
    
Are you saying that line currently copies more than one file? I would expect $(TargetPath) to point to the exe/library you are building for the project. –  joncham Jun 21 '11 at 0:30
    
yeah never mind that last comment –  bevacqua Jun 21 '11 at 0:55

Solution:

copy "$(TargetPath)" "$(SolutionDir)"..\"Shared.Lib\$(TargetFileName)"

If you have ..\ within the quotation marks, it will take it as literal instead of running the DOS command up one level.

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Thanks a lot. That's exactly what was missing! –  Bruno Bieri Feb 7 at 20:41

This is not working in VS2010 .. is not resolved but becomes part of the path

Studio is running command something like this copy drive$:\a\b\bin\debug drive$:\a\b..\c

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Make sure the path you choose exists, it didn't work for me until the path actually existed. –  bevacqua Jun 23 '11 at 12:57

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