13

How would I build a Universal Binary 2 that supports both Intel and Apple Silicon using CMake/Make? I have found some documentation here - https://developer.apple.com/documentation/xcode/building_a_universal_macos_binary - but that uses XCode, which i'm not using in my project. Thanks!

1
  • That docs seems to talk about how to do it. I don't know cmake, but if you build a Makefile, it pretty much walks you through it. You have to build separate binaries for each target app then use the lipo tool to merge them. The doc you linked talks about all of it. Dec 5, 2020 at 15:35

1 Answer 1

26

To create a universal binary set the following variable

CMAKE_OSX_ARCHITECTURES=arm64;x86_64

If you use CMake GUI press "Add Entry" and then set Name to CMAKE_OSX_ARCHITECTURES, Type=String, Value=arm64;x86_64

Then Configure->Generate->make. Here is the output you should see after building (my exe name is sprint_5)

>> file sprint_5          
sprint_5: Mach-O universal binary with 2 architectures: [x86_64:Mach-O 64-bit executable x86_64] [arm64:Mach-O 64-bit executable arm64]
sprint_5 (for architecture x86_64): Mach-O 64-bit executable x86_64
sprint_5 (for architecture arm64):  Mach-O 64-bit executable arm64
6
  • The question is: How do you conditionally add this only when configuring on an Apple Silicon system? Trying this on an Intel system is going to fail, I assume.
    – Oscar
    Aug 22, 2022 at 6:42
  • 1
    @Oscar the following cmake discourse threads have some good related discussion: thread 1, thread 2
    – user
    Aug 31, 2022 at 2:24
  • 5
    In order to set it in the CMakeLists.txt you must declare the variable before project() and it is a cache variable so it is set this way: set(CMAKE_OSX_ARCHITECTURES "arm64;x86_64" CACHE STRING "" FORCE)
    – yan
    Oct 5, 2022 at 17:37
  • 1
    how to add this variable on command line? Dec 19, 2022 at 3:11
  • What Generator do you use? I am trying to use mingw64 but that seems to be ignoring the CMAKE_OSX_ARCHITECTURES line in CMakeLists.txt. Thanks! Dec 19, 2023 at 18:44

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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