Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can I get MSBuild to evaluate and print in a <Message /> task an absolute path given a relative path?

Property Group

<Source_Dir>..\..\..\Public\Server\</Source_Dir>
<Program_Dir>c:\Program Files (x86)\Program\</Program_Dir>

Task

<Message Importance="low" Text="Copying '$(Source_Dir.FullPath)' to '$(Program_Dir)'" />

Output

Copying '' to 'c:\Program Files (x86)\Program\'

share|improve this question
    
I think that FullPath metadata only applies to <ItemGroup> items, not <PropertyGroup> properties. –  Wayne Oct 7 '08 at 2:53
    
I think you are right, anyone know a way to get from the Property to an full/absolute path? –  spoon16 Oct 7 '08 at 2:55
1  
You could "kinda" get there by using $(ProjectDir)$(Source_Dir), but you'd have superfluous '..'s –  Wayne Oct 7 '08 at 2:57

5 Answers 5

up vote 55 down vote accepted

In MSBuild 4.0, the easiest way is the following:

$([System.IO.Path]::GetFullPath('$(MSBuildThisFileDirectory)\your\path'))

This method works even if the script is <Import>ed into another script; the path is relative to the file containing the above code.

(consolidated from Aaron's answer as well as the last part of Sayed's answer)


In MSBuild 3.5, you can use the ConvertToAbsolutePath task:

<Project xmlns="http://schemas.microsoft.com/developer/msbuild/2003"
         DefaultTargets="Test"
         ToolsVersion="3.5">
  <PropertyGroup>
    <Source_Dir>..\..\..\Public\Server\</Source_Dir>
    <Program_Dir>c:\Program Files (x86)\Program\</Program_Dir>
  </PropertyGroup>

  <Target Name="Test">
    <ConvertToAbsolutePath Paths="$(Source_Dir)">
      <Output TaskParameter="AbsolutePaths" PropertyName="Source_Dir_Abs"/>
    </ConvertToAbsolutePath>
    <Message Text='Copying "$(Source_Dir_Abs)" to "$(Program_Dir)".' />
  </Target>
</Project>

Relevant output:

Project "P:\software\perforce1\main\XxxxxxXxxx\Xxxxx.proj" on node 0 (default targets).
  Copying "P:\software\Public\Server\" to "c:\Program Files (x86)\Program\".

A little long-winded if you ask me, but it works. This will be relative to the "original" project file, so if placed inside a file that gets <Import>ed, this won't be relative to that file.


In MSBuild 2.0, there is an approach which doesn't resolve "..". It does however behave just like an absolute path:

<PropertyGroup>
    <Source_Dir_Abs>$(MSBuildProjectDirectory)\$(Source_Dir)</Source_Dir_Abs>
</PropertyGroup>

The $(MSBuildProjectDirectory) reserved property is always the directory of the script that contains this reference.

This will also be relative to the "original" project file, so if placed inside a file that gets <Import>ed, this won't be relative to that file.

share|improve this answer

MSBuild 4.0 added Property Functions which allow you to call into static functions in some of the .net system dlls. A really nice thing about Property Functions is that they will evaluate out side of a target.

To evaluate a full path you can use System.IO.Path.GetFullPath when defining a property like so:

<PropertyGroup>
  <Source_Dir>$([System.IO.Path]::GetFullPath('..\..\..\Public\Server\'))</Source_Dir>
</PropertyGroup>

The syntax is a little ugly but very powerful.

share|improve this answer
    
+1 Oh man. This is great! Exactly what I was looking for. Thanks. –  Asaf Jul 25 '11 at 13:08
    
Great tip. Thank you. –  Tim Sylvester Sep 1 '11 at 23:07
    
It also evaluates the path relatively to (as far as I see) the project file where the property is defined, which is very nice when you want to include that property in other files. For me, it was the perfect solution. –  Jean Hominal Apr 23 '12 at 12:39
    
@JeanHominal If you use <Import>, it's still relative to the place where it's imported to, which is a shame. Still, this is the only approach that also works outside of targets, which gets it a +1 from me. See this answer for a way to work around the <Import> issue. –  romkyns Sep 2 '12 at 14:59
    
Yes, I was mistaken when I said what I did - all relative paths are always relative to the "executing project" path (the project that is currently being executed by MSBuild); however, you can use $(MSBuildThisFileDirectory) to get a full path to the currently executing file's directory. –  Jean Hominal Sep 2 '12 at 22:36

Wayne is correct that well-known metadata does not apply to properties - only to items. Using properties such as "MSBuildProjectDirectory" will work, but I'm not aware of a built in way to resolve the full path.

Another option is to write a simple, custom task that will take a relative path and spit out the fully-resolved path. It would look something like this:

public class ResolveRelativePath : Task
{
    [Required]
    public string RelativePath { get; set; }

    [Output]
    public string FullPath { get; private set; }

    public override bool Execute()
    {
    	try
    	{
    		DirectoryInfo dirInfo = new DirectoryInfo(RelativePath);
    		FullPath = dirInfo.FullName;
    	}
    	catch (Exception ex)
    	{
    		Log.LogErrorFromException(ex);
    	}
    	return !Log.HasLoggedErrors;
    }
}

And your MSBuild lines would look something like:

<PropertyGroup>
    <TaskAssembly>D:\BuildTasks\Build.Tasks.dll</TaskAssembly>
    <Source_Dir>..\..\..\Public\Server\</Source_Dir>
    <Program_Dir>c:\Program Files (x86)\Program\</Program_Dir>
</PropertyGroup>
<UsingTask AssemblyFile="$(TaskAssembly)" TaskName="ResolveRelativePath" />

<Target Name="Default">
    <ResolveRelativePath RelativePath="$(Source_Dir)">
    <Output TaskParameter="FullPath" PropertyName="_FullPath" />
    </ResolveRelativePath>
    <Message Importance="low" Text="Copying '$(_FullPath)' to '$(Program_Dir)'" />
</Target>
share|improve this answer
2  
Dude, I have learnt more about how to build an MS Task from that piece of code above, then I ever have in the MSBuild documentation. Thank you! :-) –  evilhomer Nov 6 '08 at 16:34

You are trying to access an item metadata property through a property, which isn't possible. What you want to do is something like this:

<PropertyGroup>
  <Program_Dir>c:\Program Files (x86)\Program\</Program_Dir>
</PropertyGroup>
<ItemGroup>
   <Source_Dir Include="..\Desktop"/>
</ItemGroup>     
<Target Name="BuildAll">
   <Message Text="Copying '%(Source_Dir.FullPath)' to '$(Program_Dir)'" />
</Target>

Which will generate output as:

 Copying 'C:\Users\sdorman\Desktop' to 'c:\Program Files (x86)\Program\'

(The script was run from my Documents folder, so ..\Desktop is the correct relative path to get to my desktop.)

In your case, replace the "..\Desktop" with "......\Public\Server" in the Source_Dir item and you should be all set.

share|improve this answer
    
+1 This works nicely and I (like others) landed here searching for a way to canonicalize an ItemGroup (pretty much assuming a batch and copy to a new ItemGroup was necessary) - the syntax you show does it without that confusion. IOW I had forgotten about the FullPath Well known metadata –  Ruben Bartelink Apr 11 '12 at 14:45

If you need to convert Properties to Items you have two options. With msbuild 2, you can use the CreateItem task

  <Target Name='Build'>
    <CreateItem Include='$(Source_Dir)'>
      <Output ItemName='SRCDIR' TaskParameter='Include' />
    </CreateItem>

and with MSBuild 3.5 you can have ItemGroups inside of a Task

  <Target Name='Build'>
    <ItemGroup>
      <SRCDIR2 Include='$(Source_Dir)' />
    </ItemGroup>
    <Message Text="%(SRCDIR2.FullPath)" />
    <Message Text="%(SRCDIR.FullPath)" />
  </Target>
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.