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I'm using Visual Studio 2012 RC to work with my C# solution. All my configuration-specific settings are stored within a single .props file which is then included by all my .csproj files.

Yet VS insists on putting this right in front of the include:

<PropertyGroup Condition="'$(Configuration)|$(Platform)' == 'Debug|AnyCPU'">
   <IntermediateOutputPath>C:\Users\xyz\AppData\Local\Temp\vs855E.tmp\Debug\</IntermediateOutputPath>
</PropertyGroup>
<PropertyGroup Condition="'$(Configuration)|$(Platform)' == 'Release|AnyCPU'">
   <IntermediateOutputPath>C:\Users\xyz\AppData\Local\Temp\vs855E.tmp\Release\</IntermediateOutputPath>
</PropertyGroup>

<Import Project="$(MSBuildProjectDirectory)\..\Common.props" />

Why is that?

FYI, my common file looks like this: http://pastebin.com/Uued1XY0

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The simply answer is that Microsoft never considers you will do such csproj file customization. Sometimes you might be able to customize the project files a little bit (by luck), but most of the times you just trouble yourself. –  Lex Li Jul 11 '12 at 3:04
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2 Answers

So you can override those settings, if needed. If your import came before, Visual Studio's properties would take precedence. In MSBuild, the last definition wins and is used. This is a good thing. Is it causing errors? Or do you just not like it?

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I don't like it, because these temp paths change every time I reload the project. Very annoying since the version control always things there were changes to all projects. –  Filip Jul 13 '12 at 18:53
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You have specified the in your project. The Property file will have the BaseIntermediateOutputPath. If you don't specify any value in it will be derived from your Base.

The full intermediate output path as derived from BaseIntermediateOutputPath, if no path is specified. For example, \obj\debug. If this property is overridden, then setting BaseIntermediateOutputPath has no effect.

Refer: http://msdn.microsoft.com/en-us/library/bb629394.aspx

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