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.

I have a Visual Studio C++ project that relies on an external dll file. How can I make Visual Studio copy this dll automatically into the output directory (debug/release) when i build the project?

Thanks!

share|improve this question

4 Answers 4

up vote 40 down vote accepted

Use a post-build action in your project, and add the commands to copy the offending DLL. The post-build action are written as a batch script.

The output directory can be referenced as $(OutDir). The project directory is available as $(ProjDir). Try to use relative pathes where applicable, so that you can copy or move your project folder without breaking the post-build action.

share|improve this answer
7  
It's also worth pointing out that he can set the post-build event via Project > Properties > Build Events > Post-Build Event. –  Phil Booth Nov 21 '09 at 17:23
    
Works! :) thank you! –  Mat Nov 21 '09 at 17:27
15  
sample:eyeung003.blogspot.com/2009/11/… –  AntonioR Nov 9 '10 at 12:52
13  
In case the link ever breaks: "xcopy /y "$(ProjectDir)*.dll" "$(OutDir)" –  ace Mar 20 '12 at 16:19
2  
Add the /d flag to xCopy to prevent unnecessary recopying of files that haven't changed in the output directory. –  Dessix Machina Apr 15 at 14:01

(This answer only applies to C# not C++, sorry I misread the original question)

I've got through DLL hell like this before. My final solution was to store the unmanaged DLLs in the managed DLL as binary resources, and extract them to a temporary folder when the program launches and delete them when it gets disposed.

This should be part of the .NET or pinvoke infrastructure, since it is so useful.... It makes your managed DLL easy to manage, both using Xcopy or as a Project reference in a bigger Visual Studio solution. Once you do this, you don't have to worry about post-build events.

UPDATE:

I posted code here in another answer http://stackoverflow.com/a/11038376/364818

share|improve this answer

$(OutDir) turned out to be a relative path in VS2013, so I had to combine it with $(ProjectDir) to achieve the desired effect:

xcopy /y /d  "$(ProjectDir)External\*.dll" "$(ProjectDir)$(OutDir)"

BTW, you can easily debug the scripts by adding 'echo ' at the beginning and observe the expanded text in the build output window.

share|improve this answer

The details in the comments section above did not work for me (VS 2013) when trying to copy the output dll from one C++ project to the release and debug folder of another C# project within the same solution.

I had to add the following post build-action (right click on the project that has a .dll output) then properties -> configuration properties -> build events -> post-build event -> command line

now I added these two lines to copy the output dll into the two folders:

xcopy /y $(TargetPath) $(SolutionDir)aeiscontroller\bin\Release
xcopy /y $(TargetPath) $(SolutionDir)aeiscontroller\bin\Debug
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.