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This is an extension to this question.
Suppose I'm creating items from other item's metadata:

<ItemGroup>
    <A>
        <files>f1;f2;f3;...</files>
        <x>...</x>
        <y>...</y>
        <z>...</z>
        ...
    </A>
    <B Include="%(A.files)">
        <x>%(A.x)</x>
        <y>%(A.y)</y>
        <z>%(A.z)</z>
        ...
    </B>
</ItemGroup>

%(A.files) is a list of files separated by ;, such that for each A item I'm creating many B items (one for each file).
But frequently when I process B item I need the original's A item metadata. In this example I copied each metadata manually from A to B.

Is there a way to copy all of A's metadata to B without explicitly specifying each one of them?

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3 Answers 3

up vote 2 down vote accepted

As far as I can tell, MSBuild only copies metadata when there is a one-to-one mapping between the input and output item lists. In your case, you're starting with one item and expanding to many items. To get around this, I suggest using item batching:

<?xml version="1.0" encoding="iso-8859-1"?>
<Project
    xmlns="http://schemas.microsoft.com/developer/msbuild/2003"
    ToolsVersion="4.0"
    DefaultTargets="Print">

    <ItemGroup>
        <A Include="A1">
            <files>test.htm;test_sol1.htm</files>
            <x>a1</x>
            <y>b1</y>
            <z>c1</z>
        </A>
        <A Include="A2">
            <files>test.proj</files>
            <x>a2</x>
            <y>b2</y>
            <z>c2</z>
        </A>
    </ItemGroup>

    <Target Name="ExpandA">
        <ItemGroup>
            <ExpandedA Include="%(A.files)">
                <Original>%(Identity)</Original>
            </ExpandedA>
        </ItemGroup>
    </Target>

    <Target
        Name="CopyMetadata"
        Outputs="%(ExpandedA.Identity)"
        DependsOnTargets="ExpandA">

        <PropertyGroup>
            <ExpandedAIdentity>%(ExpandedA.Identity)</ExpandedAIdentity>
            <ExpandedAOriginal>%(ExpandedA.Original)</ExpandedAOriginal>
        </PropertyGroup>
        <ItemGroup>
            <ExpandedAMetadata Include="@(A)" Condition=" '%(Identity)' == '$(ExpandedAOriginal)' ">
                <Expanded>$(ExpandedAIdentity)</Expanded>
            </ExpandedAMetadata>
        </ItemGroup>
    </Target>

    <Target Name="Print" DependsOnTargets="CopyMetadata">
        <ItemGroup>
            <B Include="@(ExpandedAMetadata->'%(Expanded)')" />
        </ItemGroup>

        <!--Use commas to illustrate that "files" has been expanded-->
        <Message Text="A: %(A.files)" />
        <Message Text="ExpandedA: @(ExpandedA, ',')" />
        <Message Text="ExpandedAMetadata: @(ExpandedAMetadata, ',')" />
        <Message Text="B: @(B->'%(Identity) x:%(x) y:%(y) z:%(z)', ',')" />
    </Target>
</Project>

and the output of the "Print" target:

Print:
  A: test.htm;test_sol1.htm
  A: test.proj
  ExpandedA: test.htm,test_sol1.htm,test.proj
  ExpandedAMetadata: A1,A1,A2
  B: test.htm x:a1 y:b1 z:c1,test_sol1.htm x:a1 y:b1 z:c1,test.proj x:a2 y:b2 z:c2

ExpandedA is similar to B in your original question; it is the expanded version of A but without any metadata. Then I run the CopyMetadata target once for each item in ExpandedA (thanks to item batching). Each run, the original A item is copied to the ExpandedAMetadata item group along with all of its metadata. The Original metadata is used to ensure that the correct A item is associated with each file. Finally, in the Print target, B is constructed using an item transformation, so that all the metadata from ExpandedAMetadata is copied over as well.

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Nice solution, I like the way you used batching to do that. But every time I need to copy metadata I'll need to write an extra "CopyMetadata" target to do the batching. I find myself copying metadata too often, I hoped there would be some "CopyMetadata" task or something similar that would allow me to do this without the overhead of writing another target for every copy operation. (perhaps a "CopyMetadata" inline task...) –  Amir Gonnen Dec 1 '11 at 12:01

Little late, but I like this solution better:

<B Include="@(A->Metadata('files'))" />

Full Example:

<?xml version="1.0" encoding="utf-8"?>
<Project DefaultTargets="Build" ToolsVersion="4.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">

    <ItemGroup>
        <A Include="A1">
            <files>a1_file1.htm;a1_file2.htm</files>
            <x>a1</x>
            <y>b1</y>
            <z>c1</z>
        </A>
        <A Include="A2">
            <files>a2_file.proj</files>
            <x>a2</x>
            <y>b2</y>
            <z>c2</z>
        </A>
        <B Include="@(A->Metadata('files'))" />
    </ItemGroup>

    <Target Name="Build">
        <Message Text="A: @(A->'%(Identity) x:%(x) y:%(y) z:%(z) files:%(files)', '&#x0D;&#x0A;   ')" />
        <Message Text="B: @(B->'%(Identity) x:%(x) y:%(y) z:%(z) files:%(files)', '&#x0D;&#x0A;   ')" />
    </Target>

</Project>

Output:

Build:
  A: A1 x:a1 y:b1 z:c1 files:a1_file1.htm;a1_file2.htm
     A2 x:a2 y:b2 z:c2 files:a2_file.proj
  B: a1_file1.htm x:a1 y:b1 z:c1 files:a1_file1.htm;a1_file2.htm
     a1_file2.htm x:a1 y:b1 z:c1 files:a1_file1.htm;a1_file2.htm
     a2_file.proj x:a2 y:b2 z:c2 files:a2_file.proj
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I'm not sure if I get what you need, but you can copy all A metedata to B as in the answer for related question:

<B Include="@(A)">

It should copy all metedata from A to B.

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No. I need to create a B item for every file in files metadata, not for every A item as you suggest. –  Amir Gonnen Dec 1 '11 at 9:32

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